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1 \input texinfo @c -*-texinfo-*-
2 @comment %**start of header
3 @setfilename bison.info
4 @include version.texi
5 @settitle Bison @value{VERSION}
6 @setchapternewpage odd
7
8 @finalout
9
10 @c SMALL BOOK version
11 @c This edition has been formatted so that you can format and print it in
12 @c the smallbook format.
13 @c @smallbook
14
15 @c Set following if you want to document %default-prec and %no-default-prec.
16 @c This feature is experimental and may change in future Bison versions.
17 @c @set defaultprec
18
19 @ifnotinfo
20 @syncodeindex fn cp
21 @syncodeindex vr cp
22 @syncodeindex tp cp
23 @end ifnotinfo
24 @ifinfo
25 @synindex fn cp
26 @synindex vr cp
27 @synindex tp cp
28 @end ifinfo
29 @comment %**end of header
30
31 @copying
32
33 This manual is for @acronym{GNU} Bison (version @value{VERSION},
34 @value{UPDATED}), the @acronym{GNU} parser generator.
35
36 Copyright @copyright{} 1988, 1989, 1990, 1991, 1992, 1993, 1995, 1998,
37 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006 Free Software Foundation, Inc.
38
39 @quotation
40 Permission is granted to copy, distribute and/or modify this document
41 under the terms of the @acronym{GNU} Free Documentation License,
42 Version 1.2 or any later version published by the Free Software
43 Foundation; with no Invariant Sections, with the Front-Cover texts
44 being ``A @acronym{GNU} Manual,'' and with the Back-Cover Texts as in
45 (a) below. A copy of the license is included in the section entitled
46 ``@acronym{GNU} Free Documentation License.''
47
48 (a) The @acronym{FSF}'s Back-Cover Text is: ``You have freedom to copy
49 and modify this @acronym{GNU} Manual, like @acronym{GNU} software.
50 Copies published by the Free Software Foundation raise funds for
51 @acronym{GNU} development.''
52 @end quotation
53 @end copying
54
55 @dircategory Software development
56 @direntry
57 * bison: (bison). @acronym{GNU} parser generator (Yacc replacement).
58 @end direntry
59
60 @titlepage
61 @title Bison
62 @subtitle The Yacc-compatible Parser Generator
63 @subtitle @value{UPDATED}, Bison Version @value{VERSION}
64
65 @author by Charles Donnelly and Richard Stallman
66
67 @page
68 @vskip 0pt plus 1filll
69 @insertcopying
70 @sp 2
71 Published by the Free Software Foundation @*
72 51 Franklin Street, Fifth Floor @*
73 Boston, MA 02110-1301 USA @*
74 Printed copies are available from the Free Software Foundation.@*
75 @acronym{ISBN} 1-882114-44-2
76 @sp 2
77 Cover art by Etienne Suvasa.
78 @end titlepage
79
80 @contents
81
82 @ifnottex
83 @node Top
84 @top Bison
85 @insertcopying
86 @end ifnottex
87
88 @menu
89 * Introduction::
90 * Conditions::
91 * Copying:: The @acronym{GNU} General Public License says
92 how you can copy and share Bison
93
94 Tutorial sections:
95 * Concepts:: Basic concepts for understanding Bison.
96 * Examples:: Three simple explained examples of using Bison.
97
98 Reference sections:
99 * Grammar File:: Writing Bison declarations and rules.
100 * Interface:: C-language interface to the parser function @code{yyparse}.
101 * Algorithm:: How the Bison parser works at run-time.
102 * Error Recovery:: Writing rules for error recovery.
103 * Context Dependency:: What to do if your language syntax is too
104 messy for Bison to handle straightforwardly.
105 * Debugging:: Understanding or debugging Bison parsers.
106 * Invocation:: How to run Bison (to produce the parser source file).
107 * C++ Language Interface:: Creating C++ parser objects.
108 * FAQ:: Frequently Asked Questions
109 * Table of Symbols:: All the keywords of the Bison language are explained.
110 * Glossary:: Basic concepts are explained.
111 * Copying This Manual:: License for copying this manual.
112 * Index:: Cross-references to the text.
113
114 @detailmenu
115 --- The Detailed Node Listing ---
116
117 The Concepts of Bison
118
119 * Language and Grammar:: Languages and context-free grammars,
120 as mathematical ideas.
121 * Grammar in Bison:: How we represent grammars for Bison's sake.
122 * Semantic Values:: Each token or syntactic grouping can have
123 a semantic value (the value of an integer,
124 the name of an identifier, etc.).
125 * Semantic Actions:: Each rule can have an action containing C code.
126 * GLR Parsers:: Writing parsers for general context-free languages.
127 * Locations Overview:: Tracking Locations.
128 * Bison Parser:: What are Bison's input and output,
129 how is the output used?
130 * Stages:: Stages in writing and running Bison grammars.
131 * Grammar Layout:: Overall structure of a Bison grammar file.
132
133 Writing @acronym{GLR} Parsers
134
135 * Simple GLR Parsers:: Using @acronym{GLR} parsers on unambiguous grammars.
136 * Merging GLR Parses:: Using @acronym{GLR} parsers to resolve ambiguities.
137 * GLR Semantic Actions:: Deferred semantic actions have special concerns.
138 * Compiler Requirements:: @acronym{GLR} parsers require a modern C compiler.
139
140 Examples
141
142 * RPN Calc:: Reverse polish notation calculator;
143 a first example with no operator precedence.
144 * Infix Calc:: Infix (algebraic) notation calculator.
145 Operator precedence is introduced.
146 * Simple Error Recovery:: Continuing after syntax errors.
147 * Location Tracking Calc:: Demonstrating the use of @@@var{n} and @@$.
148 * Multi-function Calc:: Calculator with memory and trig functions.
149 It uses multiple data-types for semantic values.
150 * Exercises:: Ideas for improving the multi-function calculator.
151
152 Reverse Polish Notation Calculator
153
154 * Decls: Rpcalc Decls. Prologue (declarations) for rpcalc.
155 * Rules: Rpcalc Rules. Grammar Rules for rpcalc, with explanation.
156 * Lexer: Rpcalc Lexer. The lexical analyzer.
157 * Main: Rpcalc Main. The controlling function.
158 * Error: Rpcalc Error. The error reporting function.
159 * Gen: Rpcalc Gen. Running Bison on the grammar file.
160 * Comp: Rpcalc Compile. Run the C compiler on the output code.
161
162 Grammar Rules for @code{rpcalc}
163
164 * Rpcalc Input::
165 * Rpcalc Line::
166 * Rpcalc Expr::
167
168 Location Tracking Calculator: @code{ltcalc}
169
170 * Decls: Ltcalc Decls. Bison and C declarations for ltcalc.
171 * Rules: Ltcalc Rules. Grammar rules for ltcalc, with explanations.
172 * Lexer: Ltcalc Lexer. The lexical analyzer.
173
174 Multi-Function Calculator: @code{mfcalc}
175
176 * Decl: Mfcalc Decl. Bison declarations for multi-function calculator.
177 * Rules: Mfcalc Rules. Grammar rules for the calculator.
178 * Symtab: Mfcalc Symtab. Symbol table management subroutines.
179
180 Bison Grammar Files
181
182 * Grammar Outline:: Overall layout of the grammar file.
183 * Symbols:: Terminal and nonterminal symbols.
184 * Rules:: How to write grammar rules.
185 * Recursion:: Writing recursive rules.
186 * Semantics:: Semantic values and actions.
187 * Locations:: Locations and actions.
188 * Declarations:: All kinds of Bison declarations are described here.
189 * Multiple Parsers:: Putting more than one Bison parser in one program.
190
191 Outline of a Bison Grammar
192
193 * Prologue:: Syntax and usage of the prologue.
194 * Bison Declarations:: Syntax and usage of the Bison declarations section.
195 * Grammar Rules:: Syntax and usage of the grammar rules section.
196 * Epilogue:: Syntax and usage of the epilogue.
197
198 Defining Language Semantics
199
200 * Value Type:: Specifying one data type for all semantic values.
201 * Multiple Types:: Specifying several alternative data types.
202 * Actions:: An action is the semantic definition of a grammar rule.
203 * Action Types:: Specifying data types for actions to operate on.
204 * Mid-Rule Actions:: Most actions go at the end of a rule.
205 This says when, why and how to use the exceptional
206 action in the middle of a rule.
207
208 Tracking Locations
209
210 * Location Type:: Specifying a data type for locations.
211 * Actions and Locations:: Using locations in actions.
212 * Location Default Action:: Defining a general way to compute locations.
213
214 Bison Declarations
215
216 * Require Decl:: Requiring a Bison version.
217 * Token Decl:: Declaring terminal symbols.
218 * Precedence Decl:: Declaring terminals with precedence and associativity.
219 * Union Decl:: Declaring the set of all semantic value types.
220 * Type Decl:: Declaring the choice of type for a nonterminal symbol.
221 * Initial Action Decl:: Code run before parsing starts.
222 * Destructor Decl:: Declaring how symbols are freed.
223 * Expect Decl:: Suppressing warnings about parsing conflicts.
224 * Start Decl:: Specifying the start symbol.
225 * Pure Decl:: Requesting a reentrant parser.
226 * Decl Summary:: Table of all Bison declarations.
227
228 Parser C-Language Interface
229
230 * Parser Function:: How to call @code{yyparse} and what it returns.
231 * Lexical:: You must supply a function @code{yylex}
232 which reads tokens.
233 * Error Reporting:: You must supply a function @code{yyerror}.
234 * Action Features:: Special features for use in actions.
235 * Internationalization:: How to let the parser speak in the user's
236 native language.
237
238 The Lexical Analyzer Function @code{yylex}
239
240 * Calling Convention:: How @code{yyparse} calls @code{yylex}.
241 * Token Values:: How @code{yylex} must return the semantic value
242 of the token it has read.
243 * Token Locations:: How @code{yylex} must return the text location
244 (line number, etc.) of the token, if the
245 actions want that.
246 * Pure Calling:: How the calling convention differs
247 in a pure parser (@pxref{Pure Decl, ,A Pure (Reentrant) Parser}).
248
249 The Bison Parser Algorithm
250
251 * Lookahead:: Parser looks one token ahead when deciding what to do.
252 * Shift/Reduce:: Conflicts: when either shifting or reduction is valid.
253 * Precedence:: Operator precedence works by resolving conflicts.
254 * Contextual Precedence:: When an operator's precedence depends on context.
255 * Parser States:: The parser is a finite-state-machine with stack.
256 * Reduce/Reduce:: When two rules are applicable in the same situation.
257 * Mystery Conflicts:: Reduce/reduce conflicts that look unjustified.
258 * Generalized LR Parsing:: Parsing arbitrary context-free grammars.
259 * Memory Management:: What happens when memory is exhausted. How to avoid it.
260
261 Operator Precedence
262
263 * Why Precedence:: An example showing why precedence is needed.
264 * Using Precedence:: How to specify precedence in Bison grammars.
265 * Precedence Examples:: How these features are used in the previous example.
266 * How Precedence:: How they work.
267
268 Handling Context Dependencies
269
270 * Semantic Tokens:: Token parsing can depend on the semantic context.
271 * Lexical Tie-ins:: Token parsing can depend on the syntactic context.
272 * Tie-in Recovery:: Lexical tie-ins have implications for how
273 error recovery rules must be written.
274
275 Debugging Your Parser
276
277 * Understanding:: Understanding the structure of your parser.
278 * Tracing:: Tracing the execution of your parser.
279
280 Invoking Bison
281
282 * Bison Options:: All the options described in detail,
283 in alphabetical order by short options.
284 * Option Cross Key:: Alphabetical list of long options.
285 * Yacc Library:: Yacc-compatible @code{yylex} and @code{main}.
286
287 C++ Language Interface
288
289 * C++ Parsers:: The interface to generate C++ parser classes
290 * A Complete C++ Example:: Demonstrating their use
291
292 C++ Parsers
293
294 * C++ Bison Interface:: Asking for C++ parser generation
295 * C++ Semantic Values:: %union vs. C++
296 * C++ Location Values:: The position and location classes
297 * C++ Parser Interface:: Instantiating and running the parser
298 * C++ Scanner Interface:: Exchanges between yylex and parse
299
300 A Complete C++ Example
301
302 * Calc++ --- C++ Calculator:: The specifications
303 * Calc++ Parsing Driver:: An active parsing context
304 * Calc++ Parser:: A parser class
305 * Calc++ Scanner:: A pure C++ Flex scanner
306 * Calc++ Top Level:: Conducting the band
307
308 Frequently Asked Questions
309
310 * Memory Exhausted:: Breaking the Stack Limits
311 * How Can I Reset the Parser:: @code{yyparse} Keeps some State
312 * Strings are Destroyed:: @code{yylval} Loses Track of Strings
313 * Implementing Gotos/Loops:: Control Flow in the Calculator
314 * Multiple start-symbols:: Factoring closely related grammars
315 * Secure? Conform?:: Is Bison @acronym{POSIX} safe?
316 * I can't build Bison:: Troubleshooting
317 * Where can I find help?:: Troubleshouting
318 * Bug Reports:: Troublereporting
319 * Other Languages:: Parsers in Java and others
320 * Beta Testing:: Experimenting development versions
321 * Mailing Lists:: Meeting other Bison users
322
323 Copying This Manual
324
325 * GNU Free Documentation License:: License for copying this manual.
326
327 @end detailmenu
328 @end menu
329
330 @node Introduction
331 @unnumbered Introduction
332 @cindex introduction
333
334 @dfn{Bison} is a general-purpose parser generator that converts an
335 annotated context-free grammar into an @acronym{LALR}(1) or
336 @acronym{GLR} parser for that grammar. Once you are proficient with
337 Bison, you can use it to develop a wide range of language parsers, from those
338 used in simple desk calculators to complex programming languages.
339
340 Bison is upward compatible with Yacc: all properly-written Yacc grammars
341 ought to work with Bison with no change. Anyone familiar with Yacc
342 should be able to use Bison with little trouble. You need to be fluent in
343 C or C++ programming in order to use Bison or to understand this manual.
344
345 We begin with tutorial chapters that explain the basic concepts of using
346 Bison and show three explained examples, each building on the last. If you
347 don't know Bison or Yacc, start by reading these chapters. Reference
348 chapters follow which describe specific aspects of Bison in detail.
349
350 Bison was written primarily by Robert Corbett; Richard Stallman made it
351 Yacc-compatible. Wilfred Hansen of Carnegie Mellon University added
352 multi-character string literals and other features.
353
354 This edition corresponds to version @value{VERSION} of Bison.
355
356 @node Conditions
357 @unnumbered Conditions for Using Bison
358
359 The distribution terms for Bison-generated parsers permit using the
360 parsers in nonfree programs. Before Bison version 2.2, these extra
361 permissions applied only when Bison was generating @acronym{LALR}(1)
362 parsers in C@. And before Bison version 1.24, Bison-generated
363 parsers could be used only in programs that were free software.
364
365 The other @acronym{GNU} programming tools, such as the @acronym{GNU} C
366 compiler, have never
367 had such a requirement. They could always be used for nonfree
368 software. The reason Bison was different was not due to a special
369 policy decision; it resulted from applying the usual General Public
370 License to all of the Bison source code.
371
372 The output of the Bison utility---the Bison parser file---contains a
373 verbatim copy of a sizable piece of Bison, which is the code for the
374 parser's implementation. (The actions from your grammar are inserted
375 into this implementation at one point, but most of the rest of the
376 implementation is not changed.) When we applied the @acronym{GPL}
377 terms to the skeleton code for the parser's implementation,
378 the effect was to restrict the use of Bison output to free software.
379
380 We didn't change the terms because of sympathy for people who want to
381 make software proprietary. @strong{Software should be free.} But we
382 concluded that limiting Bison's use to free software was doing little to
383 encourage people to make other software free. So we decided to make the
384 practical conditions for using Bison match the practical conditions for
385 using the other @acronym{GNU} tools.
386
387 This exception applies when Bison is generating code for a parser.
388 You can tell whether the exception applies to a Bison output file by
389 inspecting the file for text beginning with ``As a special
390 exception@dots{}''. The text spells out the exact terms of the
391 exception.
392
393 @include gpl.texi
394
395 @node Concepts
396 @chapter The Concepts of Bison
397
398 This chapter introduces many of the basic concepts without which the
399 details of Bison will not make sense. If you do not already know how to
400 use Bison or Yacc, we suggest you start by reading this chapter carefully.
401
402 @menu
403 * Language and Grammar:: Languages and context-free grammars,
404 as mathematical ideas.
405 * Grammar in Bison:: How we represent grammars for Bison's sake.
406 * Semantic Values:: Each token or syntactic grouping can have
407 a semantic value (the value of an integer,
408 the name of an identifier, etc.).
409 * Semantic Actions:: Each rule can have an action containing C code.
410 * GLR Parsers:: Writing parsers for general context-free languages.
411 * Locations Overview:: Tracking Locations.
412 * Bison Parser:: What are Bison's input and output,
413 how is the output used?
414 * Stages:: Stages in writing and running Bison grammars.
415 * Grammar Layout:: Overall structure of a Bison grammar file.
416 @end menu
417
418 @node Language and Grammar
419 @section Languages and Context-Free Grammars
420
421 @cindex context-free grammar
422 @cindex grammar, context-free
423 In order for Bison to parse a language, it must be described by a
424 @dfn{context-free grammar}. This means that you specify one or more
425 @dfn{syntactic groupings} and give rules for constructing them from their
426 parts. For example, in the C language, one kind of grouping is called an
427 `expression'. One rule for making an expression might be, ``An expression
428 can be made of a minus sign and another expression''. Another would be,
429 ``An expression can be an integer''. As you can see, rules are often
430 recursive, but there must be at least one rule which leads out of the
431 recursion.
432
433 @cindex @acronym{BNF}
434 @cindex Backus-Naur form
435 The most common formal system for presenting such rules for humans to read
436 is @dfn{Backus-Naur Form} or ``@acronym{BNF}'', which was developed in
437 order to specify the language Algol 60. Any grammar expressed in
438 @acronym{BNF} is a context-free grammar. The input to Bison is
439 essentially machine-readable @acronym{BNF}.
440
441 @cindex @acronym{LALR}(1) grammars
442 @cindex @acronym{LR}(1) grammars
443 There are various important subclasses of context-free grammar. Although it
444 can handle almost all context-free grammars, Bison is optimized for what
445 are called @acronym{LALR}(1) grammars.
446 In brief, in these grammars, it must be possible to
447 tell how to parse any portion of an input string with just a single
448 token of lookahead. Strictly speaking, that is a description of an
449 @acronym{LR}(1) grammar, and @acronym{LALR}(1) involves additional
450 restrictions that are
451 hard to explain simply; but it is rare in actual practice to find an
452 @acronym{LR}(1) grammar that fails to be @acronym{LALR}(1).
453 @xref{Mystery Conflicts, ,Mysterious Reduce/Reduce Conflicts}, for
454 more information on this.
455
456 @cindex @acronym{GLR} parsing
457 @cindex generalized @acronym{LR} (@acronym{GLR}) parsing
458 @cindex ambiguous grammars
459 @cindex nondeterministic parsing
460
461 Parsers for @acronym{LALR}(1) grammars are @dfn{deterministic}, meaning
462 roughly that the next grammar rule to apply at any point in the input is
463 uniquely determined by the preceding input and a fixed, finite portion
464 (called a @dfn{lookahead}) of the remaining input. A context-free
465 grammar can be @dfn{ambiguous}, meaning that there are multiple ways to
466 apply the grammar rules to get the same inputs. Even unambiguous
467 grammars can be @dfn{nondeterministic}, meaning that no fixed
468 lookahead always suffices to determine the next grammar rule to apply.
469 With the proper declarations, Bison is also able to parse these more
470 general context-free grammars, using a technique known as @acronym{GLR}
471 parsing (for Generalized @acronym{LR}). Bison's @acronym{GLR} parsers
472 are able to handle any context-free grammar for which the number of
473 possible parses of any given string is finite.
474
475 @cindex symbols (abstract)
476 @cindex token
477 @cindex syntactic grouping
478 @cindex grouping, syntactic
479 In the formal grammatical rules for a language, each kind of syntactic
480 unit or grouping is named by a @dfn{symbol}. Those which are built by
481 grouping smaller constructs according to grammatical rules are called
482 @dfn{nonterminal symbols}; those which can't be subdivided are called
483 @dfn{terminal symbols} or @dfn{token types}. We call a piece of input
484 corresponding to a single terminal symbol a @dfn{token}, and a piece
485 corresponding to a single nonterminal symbol a @dfn{grouping}.
486
487 We can use the C language as an example of what symbols, terminal and
488 nonterminal, mean. The tokens of C are identifiers, constants (numeric
489 and string), and the various keywords, arithmetic operators and
490 punctuation marks. So the terminal symbols of a grammar for C include
491 `identifier', `number', `string', plus one symbol for each keyword,
492 operator or punctuation mark: `if', `return', `const', `static', `int',
493 `char', `plus-sign', `open-brace', `close-brace', `comma' and many more.
494 (These tokens can be subdivided into characters, but that is a matter of
495 lexicography, not grammar.)
496
497 Here is a simple C function subdivided into tokens:
498
499 @ifinfo
500 @example
501 int /* @r{keyword `int'} */
502 square (int x) /* @r{identifier, open-paren, keyword `int',}
503 @r{identifier, close-paren} */
504 @{ /* @r{open-brace} */
505 return x * x; /* @r{keyword `return', identifier, asterisk,}
506 @r{identifier, semicolon} */
507 @} /* @r{close-brace} */
508 @end example
509 @end ifinfo
510 @ifnotinfo
511 @example
512 int /* @r{keyword `int'} */
513 square (int x) /* @r{identifier, open-paren, keyword `int', identifier, close-paren} */
514 @{ /* @r{open-brace} */
515 return x * x; /* @r{keyword `return', identifier, asterisk, identifier, semicolon} */
516 @} /* @r{close-brace} */
517 @end example
518 @end ifnotinfo
519
520 The syntactic groupings of C include the expression, the statement, the
521 declaration, and the function definition. These are represented in the
522 grammar of C by nonterminal symbols `expression', `statement',
523 `declaration' and `function definition'. The full grammar uses dozens of
524 additional language constructs, each with its own nonterminal symbol, in
525 order to express the meanings of these four. The example above is a
526 function definition; it contains one declaration, and one statement. In
527 the statement, each @samp{x} is an expression and so is @samp{x * x}.
528
529 Each nonterminal symbol must have grammatical rules showing how it is made
530 out of simpler constructs. For example, one kind of C statement is the
531 @code{return} statement; this would be described with a grammar rule which
532 reads informally as follows:
533
534 @quotation
535 A `statement' can be made of a `return' keyword, an `expression' and a
536 `semicolon'.
537 @end quotation
538
539 @noindent
540 There would be many other rules for `statement', one for each kind of
541 statement in C.
542
543 @cindex start symbol
544 One nonterminal symbol must be distinguished as the special one which
545 defines a complete utterance in the language. It is called the @dfn{start
546 symbol}. In a compiler, this means a complete input program. In the C
547 language, the nonterminal symbol `sequence of definitions and declarations'
548 plays this role.
549
550 For example, @samp{1 + 2} is a valid C expression---a valid part of a C
551 program---but it is not valid as an @emph{entire} C program. In the
552 context-free grammar of C, this follows from the fact that `expression' is
553 not the start symbol.
554
555 The Bison parser reads a sequence of tokens as its input, and groups the
556 tokens using the grammar rules. If the input is valid, the end result is
557 that the entire token sequence reduces to a single grouping whose symbol is
558 the grammar's start symbol. If we use a grammar for C, the entire input
559 must be a `sequence of definitions and declarations'. If not, the parser
560 reports a syntax error.
561
562 @node Grammar in Bison
563 @section From Formal Rules to Bison Input
564 @cindex Bison grammar
565 @cindex grammar, Bison
566 @cindex formal grammar
567
568 A formal grammar is a mathematical construct. To define the language
569 for Bison, you must write a file expressing the grammar in Bison syntax:
570 a @dfn{Bison grammar} file. @xref{Grammar File, ,Bison Grammar Files}.
571
572 A nonterminal symbol in the formal grammar is represented in Bison input
573 as an identifier, like an identifier in C@. By convention, it should be
574 in lower case, such as @code{expr}, @code{stmt} or @code{declaration}.
575
576 The Bison representation for a terminal symbol is also called a @dfn{token
577 type}. Token types as well can be represented as C-like identifiers. By
578 convention, these identifiers should be upper case to distinguish them from
579 nonterminals: for example, @code{INTEGER}, @code{IDENTIFIER}, @code{IF} or
580 @code{RETURN}. A terminal symbol that stands for a particular keyword in
581 the language should be named after that keyword converted to upper case.
582 The terminal symbol @code{error} is reserved for error recovery.
583 @xref{Symbols}.
584
585 A terminal symbol can also be represented as a character literal, just like
586 a C character constant. You should do this whenever a token is just a
587 single character (parenthesis, plus-sign, etc.): use that same character in
588 a literal as the terminal symbol for that token.
589
590 A third way to represent a terminal symbol is with a C string constant
591 containing several characters. @xref{Symbols}, for more information.
592
593 The grammar rules also have an expression in Bison syntax. For example,
594 here is the Bison rule for a C @code{return} statement. The semicolon in
595 quotes is a literal character token, representing part of the C syntax for
596 the statement; the naked semicolon, and the colon, are Bison punctuation
597 used in every rule.
598
599 @example
600 stmt: RETURN expr ';'
601 ;
602 @end example
603
604 @noindent
605 @xref{Rules, ,Syntax of Grammar Rules}.
606
607 @node Semantic Values
608 @section Semantic Values
609 @cindex semantic value
610 @cindex value, semantic
611
612 A formal grammar selects tokens only by their classifications: for example,
613 if a rule mentions the terminal symbol `integer constant', it means that
614 @emph{any} integer constant is grammatically valid in that position. The
615 precise value of the constant is irrelevant to how to parse the input: if
616 @samp{x+4} is grammatical then @samp{x+1} or @samp{x+3989} is equally
617 grammatical.
618
619 But the precise value is very important for what the input means once it is
620 parsed. A compiler is useless if it fails to distinguish between 4, 1 and
621 3989 as constants in the program! Therefore, each token in a Bison grammar
622 has both a token type and a @dfn{semantic value}. @xref{Semantics,
623 ,Defining Language Semantics},
624 for details.
625
626 The token type is a terminal symbol defined in the grammar, such as
627 @code{INTEGER}, @code{IDENTIFIER} or @code{','}. It tells everything
628 you need to know to decide where the token may validly appear and how to
629 group it with other tokens. The grammar rules know nothing about tokens
630 except their types.
631
632 The semantic value has all the rest of the information about the
633 meaning of the token, such as the value of an integer, or the name of an
634 identifier. (A token such as @code{','} which is just punctuation doesn't
635 need to have any semantic value.)
636
637 For example, an input token might be classified as token type
638 @code{INTEGER} and have the semantic value 4. Another input token might
639 have the same token type @code{INTEGER} but value 3989. When a grammar
640 rule says that @code{INTEGER} is allowed, either of these tokens is
641 acceptable because each is an @code{INTEGER}. When the parser accepts the
642 token, it keeps track of the token's semantic value.
643
644 Each grouping can also have a semantic value as well as its nonterminal
645 symbol. For example, in a calculator, an expression typically has a
646 semantic value that is a number. In a compiler for a programming
647 language, an expression typically has a semantic value that is a tree
648 structure describing the meaning of the expression.
649
650 @node Semantic Actions
651 @section Semantic Actions
652 @cindex semantic actions
653 @cindex actions, semantic
654
655 In order to be useful, a program must do more than parse input; it must
656 also produce some output based on the input. In a Bison grammar, a grammar
657 rule can have an @dfn{action} made up of C statements. Each time the
658 parser recognizes a match for that rule, the action is executed.
659 @xref{Actions}.
660
661 Most of the time, the purpose of an action is to compute the semantic value
662 of the whole construct from the semantic values of its parts. For example,
663 suppose we have a rule which says an expression can be the sum of two
664 expressions. When the parser recognizes such a sum, each of the
665 subexpressions has a semantic value which describes how it was built up.
666 The action for this rule should create a similar sort of value for the
667 newly recognized larger expression.
668
669 For example, here is a rule that says an expression can be the sum of
670 two subexpressions:
671
672 @example
673 expr: expr '+' expr @{ $$ = $1 + $3; @}
674 ;
675 @end example
676
677 @noindent
678 The action says how to produce the semantic value of the sum expression
679 from the values of the two subexpressions.
680
681 @node GLR Parsers
682 @section Writing @acronym{GLR} Parsers
683 @cindex @acronym{GLR} parsing
684 @cindex generalized @acronym{LR} (@acronym{GLR}) parsing
685 @findex %glr-parser
686 @cindex conflicts
687 @cindex shift/reduce conflicts
688 @cindex reduce/reduce conflicts
689
690 In some grammars, Bison's standard
691 @acronym{LALR}(1) parsing algorithm cannot decide whether to apply a
692 certain grammar rule at a given point. That is, it may not be able to
693 decide (on the basis of the input read so far) which of two possible
694 reductions (applications of a grammar rule) applies, or whether to apply
695 a reduction or read more of the input and apply a reduction later in the
696 input. These are known respectively as @dfn{reduce/reduce} conflicts
697 (@pxref{Reduce/Reduce}), and @dfn{shift/reduce} conflicts
698 (@pxref{Shift/Reduce}).
699
700 To use a grammar that is not easily modified to be @acronym{LALR}(1), a
701 more general parsing algorithm is sometimes necessary. If you include
702 @code{%glr-parser} among the Bison declarations in your file
703 (@pxref{Grammar Outline}), the result is a Generalized @acronym{LR}
704 (@acronym{GLR}) parser. These parsers handle Bison grammars that
705 contain no unresolved conflicts (i.e., after applying precedence
706 declarations) identically to @acronym{LALR}(1) parsers. However, when
707 faced with unresolved shift/reduce and reduce/reduce conflicts,
708 @acronym{GLR} parsers use the simple expedient of doing both,
709 effectively cloning the parser to follow both possibilities. Each of
710 the resulting parsers can again split, so that at any given time, there
711 can be any number of possible parses being explored. The parsers
712 proceed in lockstep; that is, all of them consume (shift) a given input
713 symbol before any of them proceed to the next. Each of the cloned
714 parsers eventually meets one of two possible fates: either it runs into
715 a parsing error, in which case it simply vanishes, or it merges with
716 another parser, because the two of them have reduced the input to an
717 identical set of symbols.
718
719 During the time that there are multiple parsers, semantic actions are
720 recorded, but not performed. When a parser disappears, its recorded
721 semantic actions disappear as well, and are never performed. When a
722 reduction makes two parsers identical, causing them to merge, Bison
723 records both sets of semantic actions. Whenever the last two parsers
724 merge, reverting to the single-parser case, Bison resolves all the
725 outstanding actions either by precedences given to the grammar rules
726 involved, or by performing both actions, and then calling a designated
727 user-defined function on the resulting values to produce an arbitrary
728 merged result.
729
730 @menu
731 * Simple GLR Parsers:: Using @acronym{GLR} parsers on unambiguous grammars.
732 * Merging GLR Parses:: Using @acronym{GLR} parsers to resolve ambiguities.
733 * GLR Semantic Actions:: Deferred semantic actions have special concerns.
734 * Compiler Requirements:: @acronym{GLR} parsers require a modern C compiler.
735 @end menu
736
737 @node Simple GLR Parsers
738 @subsection Using @acronym{GLR} on Unambiguous Grammars
739 @cindex @acronym{GLR} parsing, unambiguous grammars
740 @cindex generalized @acronym{LR} (@acronym{GLR}) parsing, unambiguous grammars
741 @findex %glr-parser
742 @findex %expect-rr
743 @cindex conflicts
744 @cindex reduce/reduce conflicts
745 @cindex shift/reduce conflicts
746
747 In the simplest cases, you can use the @acronym{GLR} algorithm
748 to parse grammars that are unambiguous, but fail to be @acronym{LALR}(1).
749 Such grammars typically require more than one symbol of lookahead,
750 or (in rare cases) fall into the category of grammars in which the
751 @acronym{LALR}(1) algorithm throws away too much information (they are in
752 @acronym{LR}(1), but not @acronym{LALR}(1), @ref{Mystery Conflicts}).
753
754 Consider a problem that
755 arises in the declaration of enumerated and subrange types in the
756 programming language Pascal. Here are some examples:
757
758 @example
759 type subrange = lo .. hi;
760 type enum = (a, b, c);
761 @end example
762
763 @noindent
764 The original language standard allows only numeric
765 literals and constant identifiers for the subrange bounds (@samp{lo}
766 and @samp{hi}), but Extended Pascal (@acronym{ISO}/@acronym{IEC}
767 10206) and many other
768 Pascal implementations allow arbitrary expressions there. This gives
769 rise to the following situation, containing a superfluous pair of
770 parentheses:
771
772 @example
773 type subrange = (a) .. b;
774 @end example
775
776 @noindent
777 Compare this to the following declaration of an enumerated
778 type with only one value:
779
780 @example
781 type enum = (a);
782 @end example
783
784 @noindent
785 (These declarations are contrived, but they are syntactically
786 valid, and more-complicated cases can come up in practical programs.)
787
788 These two declarations look identical until the @samp{..} token.
789 With normal @acronym{LALR}(1) one-token lookahead it is not
790 possible to decide between the two forms when the identifier
791 @samp{a} is parsed. It is, however, desirable
792 for a parser to decide this, since in the latter case
793 @samp{a} must become a new identifier to represent the enumeration
794 value, while in the former case @samp{a} must be evaluated with its
795 current meaning, which may be a constant or even a function call.
796
797 You could parse @samp{(a)} as an ``unspecified identifier in parentheses'',
798 to be resolved later, but this typically requires substantial
799 contortions in both semantic actions and large parts of the
800 grammar, where the parentheses are nested in the recursive rules for
801 expressions.
802
803 You might think of using the lexer to distinguish between the two
804 forms by returning different tokens for currently defined and
805 undefined identifiers. But if these declarations occur in a local
806 scope, and @samp{a} is defined in an outer scope, then both forms
807 are possible---either locally redefining @samp{a}, or using the
808 value of @samp{a} from the outer scope. So this approach cannot
809 work.
810
811 A simple solution to this problem is to declare the parser to
812 use the @acronym{GLR} algorithm.
813 When the @acronym{GLR} parser reaches the critical state, it
814 merely splits into two branches and pursues both syntax rules
815 simultaneously. Sooner or later, one of them runs into a parsing
816 error. If there is a @samp{..} token before the next
817 @samp{;}, the rule for enumerated types fails since it cannot
818 accept @samp{..} anywhere; otherwise, the subrange type rule
819 fails since it requires a @samp{..} token. So one of the branches
820 fails silently, and the other one continues normally, performing
821 all the intermediate actions that were postponed during the split.
822
823 If the input is syntactically incorrect, both branches fail and the parser
824 reports a syntax error as usual.
825
826 The effect of all this is that the parser seems to ``guess'' the
827 correct branch to take, or in other words, it seems to use more
828 lookahead than the underlying @acronym{LALR}(1) algorithm actually allows
829 for. In this example, @acronym{LALR}(2) would suffice, but also some cases
830 that are not @acronym{LALR}(@math{k}) for any @math{k} can be handled this way.
831
832 In general, a @acronym{GLR} parser can take quadratic or cubic worst-case time,
833 and the current Bison parser even takes exponential time and space
834 for some grammars. In practice, this rarely happens, and for many
835 grammars it is possible to prove that it cannot happen.
836 The present example contains only one conflict between two
837 rules, and the type-declaration context containing the conflict
838 cannot be nested. So the number of
839 branches that can exist at any time is limited by the constant 2,
840 and the parsing time is still linear.
841
842 Here is a Bison grammar corresponding to the example above. It
843 parses a vastly simplified form of Pascal type declarations.
844
845 @example
846 %token TYPE DOTDOT ID
847
848 @group
849 %left '+' '-'
850 %left '*' '/'
851 @end group
852
853 %%
854
855 @group
856 type_decl : TYPE ID '=' type ';'
857 ;
858 @end group
859
860 @group
861 type : '(' id_list ')'
862 | expr DOTDOT expr
863 ;
864 @end group
865
866 @group
867 id_list : ID
868 | id_list ',' ID
869 ;
870 @end group
871
872 @group
873 expr : '(' expr ')'
874 | expr '+' expr
875 | expr '-' expr
876 | expr '*' expr
877 | expr '/' expr
878 | ID
879 ;
880 @end group
881 @end example
882
883 When used as a normal @acronym{LALR}(1) grammar, Bison correctly complains
884 about one reduce/reduce conflict. In the conflicting situation the
885 parser chooses one of the alternatives, arbitrarily the one
886 declared first. Therefore the following correct input is not
887 recognized:
888
889 @example
890 type t = (a) .. b;
891 @end example
892
893 The parser can be turned into a @acronym{GLR} parser, while also telling Bison
894 to be silent about the one known reduce/reduce conflict, by
895 adding these two declarations to the Bison input file (before the first
896 @samp{%%}):
897
898 @example
899 %glr-parser
900 %expect-rr 1
901 @end example
902
903 @noindent
904 No change in the grammar itself is required. Now the
905 parser recognizes all valid declarations, according to the
906 limited syntax above, transparently. In fact, the user does not even
907 notice when the parser splits.
908
909 So here we have a case where we can use the benefits of @acronym{GLR},
910 almost without disadvantages. Even in simple cases like this, however,
911 there are at least two potential problems to beware. First, always
912 analyze the conflicts reported by Bison to make sure that @acronym{GLR}
913 splitting is only done where it is intended. A @acronym{GLR} parser
914 splitting inadvertently may cause problems less obvious than an
915 @acronym{LALR} parser statically choosing the wrong alternative in a
916 conflict. Second, consider interactions with the lexer (@pxref{Semantic
917 Tokens}) with great care. Since a split parser consumes tokens without
918 performing any actions during the split, the lexer cannot obtain
919 information via parser actions. Some cases of lexer interactions can be
920 eliminated by using @acronym{GLR} to shift the complications from the
921 lexer to the parser. You must check the remaining cases for
922 correctness.
923
924 In our example, it would be safe for the lexer to return tokens based on
925 their current meanings in some symbol table, because no new symbols are
926 defined in the middle of a type declaration. Though it is possible for
927 a parser to define the enumeration constants as they are parsed, before
928 the type declaration is completed, it actually makes no difference since
929 they cannot be used within the same enumerated type declaration.
930
931 @node Merging GLR Parses
932 @subsection Using @acronym{GLR} to Resolve Ambiguities
933 @cindex @acronym{GLR} parsing, ambiguous grammars
934 @cindex generalized @acronym{LR} (@acronym{GLR}) parsing, ambiguous grammars
935 @findex %dprec
936 @findex %merge
937 @cindex conflicts
938 @cindex reduce/reduce conflicts
939
940 Let's consider an example, vastly simplified from a C++ grammar.
941
942 @example
943 %@{
944 #include <stdio.h>
945 #define YYSTYPE char const *
946 int yylex (void);
947 void yyerror (char const *);
948 %@}
949
950 %token TYPENAME ID
951
952 %right '='
953 %left '+'
954
955 %glr-parser
956
957 %%
958
959 prog :
960 | prog stmt @{ printf ("\n"); @}
961 ;
962
963 stmt : expr ';' %dprec 1
964 | decl %dprec 2
965 ;
966
967 expr : ID @{ printf ("%s ", $$); @}
968 | TYPENAME '(' expr ')'
969 @{ printf ("%s <cast> ", $1); @}
970 | expr '+' expr @{ printf ("+ "); @}
971 | expr '=' expr @{ printf ("= "); @}
972 ;
973
974 decl : TYPENAME declarator ';'
975 @{ printf ("%s <declare> ", $1); @}
976 | TYPENAME declarator '=' expr ';'
977 @{ printf ("%s <init-declare> ", $1); @}
978 ;
979
980 declarator : ID @{ printf ("\"%s\" ", $1); @}
981 | '(' declarator ')'
982 ;
983 @end example
984
985 @noindent
986 This models a problematic part of the C++ grammar---the ambiguity between
987 certain declarations and statements. For example,
988
989 @example
990 T (x) = y+z;
991 @end example
992
993 @noindent
994 parses as either an @code{expr} or a @code{stmt}
995 (assuming that @samp{T} is recognized as a @code{TYPENAME} and
996 @samp{x} as an @code{ID}).
997 Bison detects this as a reduce/reduce conflict between the rules
998 @code{expr : ID} and @code{declarator : ID}, which it cannot resolve at the
999 time it encounters @code{x} in the example above. Since this is a
1000 @acronym{GLR} parser, it therefore splits the problem into two parses, one for
1001 each choice of resolving the reduce/reduce conflict.
1002 Unlike the example from the previous section (@pxref{Simple GLR Parsers}),
1003 however, neither of these parses ``dies,'' because the grammar as it stands is
1004 ambiguous. One of the parsers eventually reduces @code{stmt : expr ';'} and
1005 the other reduces @code{stmt : decl}, after which both parsers are in an
1006 identical state: they've seen @samp{prog stmt} and have the same unprocessed
1007 input remaining. We say that these parses have @dfn{merged.}
1008
1009 At this point, the @acronym{GLR} parser requires a specification in the
1010 grammar of how to choose between the competing parses.
1011 In the example above, the two @code{%dprec}
1012 declarations specify that Bison is to give precedence
1013 to the parse that interprets the example as a
1014 @code{decl}, which implies that @code{x} is a declarator.
1015 The parser therefore prints
1016
1017 @example
1018 "x" y z + T <init-declare>
1019 @end example
1020
1021 The @code{%dprec} declarations only come into play when more than one
1022 parse survives. Consider a different input string for this parser:
1023
1024 @example
1025 T (x) + y;
1026 @end example
1027
1028 @noindent
1029 This is another example of using @acronym{GLR} to parse an unambiguous
1030 construct, as shown in the previous section (@pxref{Simple GLR Parsers}).
1031 Here, there is no ambiguity (this cannot be parsed as a declaration).
1032 However, at the time the Bison parser encounters @code{x}, it does not
1033 have enough information to resolve the reduce/reduce conflict (again,
1034 between @code{x} as an @code{expr} or a @code{declarator}). In this
1035 case, no precedence declaration is used. Again, the parser splits
1036 into two, one assuming that @code{x} is an @code{expr}, and the other
1037 assuming @code{x} is a @code{declarator}. The second of these parsers
1038 then vanishes when it sees @code{+}, and the parser prints
1039
1040 @example
1041 x T <cast> y +
1042 @end example
1043
1044 Suppose that instead of resolving the ambiguity, you wanted to see all
1045 the possibilities. For this purpose, you must merge the semantic
1046 actions of the two possible parsers, rather than choosing one over the
1047 other. To do so, you could change the declaration of @code{stmt} as
1048 follows:
1049
1050 @example
1051 stmt : expr ';' %merge <stmtMerge>
1052 | decl %merge <stmtMerge>
1053 ;
1054 @end example
1055
1056 @noindent
1057 and define the @code{stmtMerge} function as:
1058
1059 @example
1060 static YYSTYPE
1061 stmtMerge (YYSTYPE x0, YYSTYPE x1)
1062 @{
1063 printf ("<OR> ");
1064 return "";
1065 @}
1066 @end example
1067
1068 @noindent
1069 with an accompanying forward declaration
1070 in the C declarations at the beginning of the file:
1071
1072 @example
1073 %@{
1074 #define YYSTYPE char const *
1075 static YYSTYPE stmtMerge (YYSTYPE x0, YYSTYPE x1);
1076 %@}
1077 @end example
1078
1079 @noindent
1080 With these declarations, the resulting parser parses the first example
1081 as both an @code{expr} and a @code{decl}, and prints
1082
1083 @example
1084 "x" y z + T <init-declare> x T <cast> y z + = <OR>
1085 @end example
1086
1087 Bison requires that all of the
1088 productions that participate in any particular merge have identical
1089 @samp{%merge} clauses. Otherwise, the ambiguity would be unresolvable,
1090 and the parser will report an error during any parse that results in
1091 the offending merge.
1092
1093 @node GLR Semantic Actions
1094 @subsection GLR Semantic Actions
1095
1096 @cindex deferred semantic actions
1097 By definition, a deferred semantic action is not performed at the same time as
1098 the associated reduction.
1099 This raises caveats for several Bison features you might use in a semantic
1100 action in a @acronym{GLR} parser.
1101
1102 @vindex yychar
1103 @cindex @acronym{GLR} parsers and @code{yychar}
1104 @vindex yylval
1105 @cindex @acronym{GLR} parsers and @code{yylval}
1106 @vindex yylloc
1107 @cindex @acronym{GLR} parsers and @code{yylloc}
1108 In any semantic action, you can examine @code{yychar} to determine the type of
1109 the lookahead token present at the time of the associated reduction.
1110 After checking that @code{yychar} is not set to @code{YYEMPTY} or @code{YYEOF},
1111 you can then examine @code{yylval} and @code{yylloc} to determine the
1112 lookahead token's semantic value and location, if any.
1113 In a nondeferred semantic action, you can also modify any of these variables to
1114 influence syntax analysis.
1115 @xref{Lookahead, ,Lookahead Tokens}.
1116
1117 @findex yyclearin
1118 @cindex @acronym{GLR} parsers and @code{yyclearin}
1119 In a deferred semantic action, it's too late to influence syntax analysis.
1120 In this case, @code{yychar}, @code{yylval}, and @code{yylloc} are set to
1121 shallow copies of the values they had at the time of the associated reduction.
1122 For this reason alone, modifying them is dangerous.
1123 Moreover, the result of modifying them is undefined and subject to change with
1124 future versions of Bison.
1125 For example, if a semantic action might be deferred, you should never write it
1126 to invoke @code{yyclearin} (@pxref{Action Features}) or to attempt to free
1127 memory referenced by @code{yylval}.
1128
1129 @findex YYERROR
1130 @cindex @acronym{GLR} parsers and @code{YYERROR}
1131 Another Bison feature requiring special consideration is @code{YYERROR}
1132 (@pxref{Action Features}), which you can invoke in a semantic action to
1133 initiate error recovery.
1134 During deterministic @acronym{GLR} operation, the effect of @code{YYERROR} is
1135 the same as its effect in an @acronym{LALR}(1) parser.
1136 In a deferred semantic action, its effect is undefined.
1137 @c The effect is probably a syntax error at the split point.
1138
1139 Also, see @ref{Location Default Action, ,Default Action for Locations}, which
1140 describes a special usage of @code{YYLLOC_DEFAULT} in @acronym{GLR} parsers.
1141
1142 @node Compiler Requirements
1143 @subsection Considerations when Compiling @acronym{GLR} Parsers
1144 @cindex @code{inline}
1145 @cindex @acronym{GLR} parsers and @code{inline}
1146
1147 The @acronym{GLR} parsers require a compiler for @acronym{ISO} C89 or
1148 later. In addition, they use the @code{inline} keyword, which is not
1149 C89, but is C99 and is a common extension in pre-C99 compilers. It is
1150 up to the user of these parsers to handle
1151 portability issues. For instance, if using Autoconf and the Autoconf
1152 macro @code{AC_C_INLINE}, a mere
1153
1154 @example
1155 %@{
1156 #include <config.h>
1157 %@}
1158 @end example
1159
1160 @noindent
1161 will suffice. Otherwise, we suggest
1162
1163 @example
1164 %@{
1165 #if __STDC_VERSION__ < 199901 && ! defined __GNUC__ && ! defined inline
1166 #define inline
1167 #endif
1168 %@}
1169 @end example
1170
1171 @node Locations Overview
1172 @section Locations
1173 @cindex location
1174 @cindex textual location
1175 @cindex location, textual
1176
1177 Many applications, like interpreters or compilers, have to produce verbose
1178 and useful error messages. To achieve this, one must be able to keep track of
1179 the @dfn{textual location}, or @dfn{location}, of each syntactic construct.
1180 Bison provides a mechanism for handling these locations.
1181
1182 Each token has a semantic value. In a similar fashion, each token has an
1183 associated location, but the type of locations is the same for all tokens and
1184 groupings. Moreover, the output parser is equipped with a default data
1185 structure for storing locations (@pxref{Locations}, for more details).
1186
1187 Like semantic values, locations can be reached in actions using a dedicated
1188 set of constructs. In the example above, the location of the whole grouping
1189 is @code{@@$}, while the locations of the subexpressions are @code{@@1} and
1190 @code{@@3}.
1191
1192 When a rule is matched, a default action is used to compute the semantic value
1193 of its left hand side (@pxref{Actions}). In the same way, another default
1194 action is used for locations. However, the action for locations is general
1195 enough for most cases, meaning there is usually no need to describe for each
1196 rule how @code{@@$} should be formed. When building a new location for a given
1197 grouping, the default behavior of the output parser is to take the beginning
1198 of the first symbol, and the end of the last symbol.
1199
1200 @node Bison Parser
1201 @section Bison Output: the Parser File
1202 @cindex Bison parser
1203 @cindex Bison utility
1204 @cindex lexical analyzer, purpose
1205 @cindex parser
1206
1207 When you run Bison, you give it a Bison grammar file as input. The output
1208 is a C source file that parses the language described by the grammar.
1209 This file is called a @dfn{Bison parser}. Keep in mind that the Bison
1210 utility and the Bison parser are two distinct programs: the Bison utility
1211 is a program whose output is the Bison parser that becomes part of your
1212 program.
1213
1214 The job of the Bison parser is to group tokens into groupings according to
1215 the grammar rules---for example, to build identifiers and operators into
1216 expressions. As it does this, it runs the actions for the grammar rules it
1217 uses.
1218
1219 The tokens come from a function called the @dfn{lexical analyzer} that
1220 you must supply in some fashion (such as by writing it in C). The Bison
1221 parser calls the lexical analyzer each time it wants a new token. It
1222 doesn't know what is ``inside'' the tokens (though their semantic values
1223 may reflect this). Typically the lexical analyzer makes the tokens by
1224 parsing characters of text, but Bison does not depend on this.
1225 @xref{Lexical, ,The Lexical Analyzer Function @code{yylex}}.
1226
1227 The Bison parser file is C code which defines a function named
1228 @code{yyparse} which implements that grammar. This function does not make
1229 a complete C program: you must supply some additional functions. One is
1230 the lexical analyzer. Another is an error-reporting function which the
1231 parser calls to report an error. In addition, a complete C program must
1232 start with a function called @code{main}; you have to provide this, and
1233 arrange for it to call @code{yyparse} or the parser will never run.
1234 @xref{Interface, ,Parser C-Language Interface}.
1235
1236 Aside from the token type names and the symbols in the actions you
1237 write, all symbols defined in the Bison parser file itself
1238 begin with @samp{yy} or @samp{YY}. This includes interface functions
1239 such as the lexical analyzer function @code{yylex}, the error reporting
1240 function @code{yyerror} and the parser function @code{yyparse} itself.
1241 This also includes numerous identifiers used for internal purposes.
1242 Therefore, you should avoid using C identifiers starting with @samp{yy}
1243 or @samp{YY} in the Bison grammar file except for the ones defined in
1244 this manual. Also, you should avoid using the C identifiers
1245 @samp{malloc} and @samp{free} for anything other than their usual
1246 meanings.
1247
1248 In some cases the Bison parser file includes system headers, and in
1249 those cases your code should respect the identifiers reserved by those
1250 headers. On some non-@acronym{GNU} hosts, @code{<alloca.h>}, @code{<malloc.h>},
1251 @code{<stddef.h>}, and @code{<stdlib.h>} are included as needed to
1252 declare memory allocators and related types. @code{<libintl.h>} is
1253 included if message translation is in use
1254 (@pxref{Internationalization}). Other system headers may
1255 be included if you define @code{YYDEBUG} to a nonzero value
1256 (@pxref{Tracing, ,Tracing Your Parser}).
1257
1258 @node Stages
1259 @section Stages in Using Bison
1260 @cindex stages in using Bison
1261 @cindex using Bison
1262
1263 The actual language-design process using Bison, from grammar specification
1264 to a working compiler or interpreter, has these parts:
1265
1266 @enumerate
1267 @item
1268 Formally specify the grammar in a form recognized by Bison
1269 (@pxref{Grammar File, ,Bison Grammar Files}). For each grammatical rule
1270 in the language, describe the action that is to be taken when an
1271 instance of that rule is recognized. The action is described by a
1272 sequence of C statements.
1273
1274 @item
1275 Write a lexical analyzer to process input and pass tokens to the parser.
1276 The lexical analyzer may be written by hand in C (@pxref{Lexical, ,The
1277 Lexical Analyzer Function @code{yylex}}). It could also be produced
1278 using Lex, but the use of Lex is not discussed in this manual.
1279
1280 @item
1281 Write a controlling function that calls the Bison-produced parser.
1282
1283 @item
1284 Write error-reporting routines.
1285 @end enumerate
1286
1287 To turn this source code as written into a runnable program, you
1288 must follow these steps:
1289
1290 @enumerate
1291 @item
1292 Run Bison on the grammar to produce the parser.
1293
1294 @item
1295 Compile the code output by Bison, as well as any other source files.
1296
1297 @item
1298 Link the object files to produce the finished product.
1299 @end enumerate
1300
1301 @node Grammar Layout
1302 @section The Overall Layout of a Bison Grammar
1303 @cindex grammar file
1304 @cindex file format
1305 @cindex format of grammar file
1306 @cindex layout of Bison grammar
1307
1308 The input file for the Bison utility is a @dfn{Bison grammar file}. The
1309 general form of a Bison grammar file is as follows:
1310
1311 @example
1312 %@{
1313 @var{Prologue}
1314 %@}
1315
1316 @var{Bison declarations}
1317
1318 %%
1319 @var{Grammar rules}
1320 %%
1321 @var{Epilogue}
1322 @end example
1323
1324 @noindent
1325 The @samp{%%}, @samp{%@{} and @samp{%@}} are punctuation that appears
1326 in every Bison grammar file to separate the sections.
1327
1328 The prologue may define types and variables used in the actions. You can
1329 also use preprocessor commands to define macros used there, and use
1330 @code{#include} to include header files that do any of these things.
1331 You need to declare the lexical analyzer @code{yylex} and the error
1332 printer @code{yyerror} here, along with any other global identifiers
1333 used by the actions in the grammar rules.
1334
1335 The Bison declarations declare the names of the terminal and nonterminal
1336 symbols, and may also describe operator precedence and the data types of
1337 semantic values of various symbols.
1338
1339 The grammar rules define how to construct each nonterminal symbol from its
1340 parts.
1341
1342 The epilogue can contain any code you want to use. Often the
1343 definitions of functions declared in the prologue go here. In a
1344 simple program, all the rest of the program can go here.
1345
1346 @node Examples
1347 @chapter Examples
1348 @cindex simple examples
1349 @cindex examples, simple
1350
1351 Now we show and explain three sample programs written using Bison: a
1352 reverse polish notation calculator, an algebraic (infix) notation
1353 calculator, and a multi-function calculator. All three have been tested
1354 under BSD Unix 4.3; each produces a usable, though limited, interactive
1355 desk-top calculator.
1356
1357 These examples are simple, but Bison grammars for real programming
1358 languages are written the same way. You can copy these examples into a
1359 source file to try them.
1360
1361 @menu
1362 * RPN Calc:: Reverse polish notation calculator;
1363 a first example with no operator precedence.
1364 * Infix Calc:: Infix (algebraic) notation calculator.
1365 Operator precedence is introduced.
1366 * Simple Error Recovery:: Continuing after syntax errors.
1367 * Location Tracking Calc:: Demonstrating the use of @@@var{n} and @@$.
1368 * Multi-function Calc:: Calculator with memory and trig functions.
1369 It uses multiple data-types for semantic values.
1370 * Exercises:: Ideas for improving the multi-function calculator.
1371 @end menu
1372
1373 @node RPN Calc
1374 @section Reverse Polish Notation Calculator
1375 @cindex reverse polish notation
1376 @cindex polish notation calculator
1377 @cindex @code{rpcalc}
1378 @cindex calculator, simple
1379
1380 The first example is that of a simple double-precision @dfn{reverse polish
1381 notation} calculator (a calculator using postfix operators). This example
1382 provides a good starting point, since operator precedence is not an issue.
1383 The second example will illustrate how operator precedence is handled.
1384
1385 The source code for this calculator is named @file{rpcalc.y}. The
1386 @samp{.y} extension is a convention used for Bison input files.
1387
1388 @menu
1389 * Decls: Rpcalc Decls. Prologue (declarations) for rpcalc.
1390 * Rules: Rpcalc Rules. Grammar Rules for rpcalc, with explanation.
1391 * Lexer: Rpcalc Lexer. The lexical analyzer.
1392 * Main: Rpcalc Main. The controlling function.
1393 * Error: Rpcalc Error. The error reporting function.
1394 * Gen: Rpcalc Gen. Running Bison on the grammar file.
1395 * Comp: Rpcalc Compile. Run the C compiler on the output code.
1396 @end menu
1397
1398 @node Rpcalc Decls
1399 @subsection Declarations for @code{rpcalc}
1400
1401 Here are the C and Bison declarations for the reverse polish notation
1402 calculator. As in C, comments are placed between @samp{/*@dots{}*/}.
1403
1404 @example
1405 /* Reverse polish notation calculator. */
1406
1407 %@{
1408 #define YYSTYPE double
1409 #include <math.h>
1410 int yylex (void);
1411 void yyerror (char const *);
1412 %@}
1413
1414 %token NUM
1415
1416 %% /* Grammar rules and actions follow. */
1417 @end example
1418
1419 The declarations section (@pxref{Prologue, , The prologue}) contains two
1420 preprocessor directives and two forward declarations.
1421
1422 The @code{#define} directive defines the macro @code{YYSTYPE}, thus
1423 specifying the C data type for semantic values of both tokens and
1424 groupings (@pxref{Value Type, ,Data Types of Semantic Values}). The
1425 Bison parser will use whatever type @code{YYSTYPE} is defined as; if you
1426 don't define it, @code{int} is the default. Because we specify
1427 @code{double}, each token and each expression has an associated value,
1428 which is a floating point number.
1429
1430 The @code{#include} directive is used to declare the exponentiation
1431 function @code{pow}.
1432
1433 The forward declarations for @code{yylex} and @code{yyerror} are
1434 needed because the C language requires that functions be declared
1435 before they are used. These functions will be defined in the
1436 epilogue, but the parser calls them so they must be declared in the
1437 prologue.
1438
1439 The second section, Bison declarations, provides information to Bison
1440 about the token types (@pxref{Bison Declarations, ,The Bison
1441 Declarations Section}). Each terminal symbol that is not a
1442 single-character literal must be declared here. (Single-character
1443 literals normally don't need to be declared.) In this example, all the
1444 arithmetic operators are designated by single-character literals, so the
1445 only terminal symbol that needs to be declared is @code{NUM}, the token
1446 type for numeric constants.
1447
1448 @node Rpcalc Rules
1449 @subsection Grammar Rules for @code{rpcalc}
1450
1451 Here are the grammar rules for the reverse polish notation calculator.
1452
1453 @example
1454 input: /* empty */
1455 | input line
1456 ;
1457
1458 line: '\n'
1459 | exp '\n' @{ printf ("\t%.10g\n", $1); @}
1460 ;
1461
1462 exp: NUM @{ $$ = $1; @}
1463 | exp exp '+' @{ $$ = $1 + $2; @}
1464 | exp exp '-' @{ $$ = $1 - $2; @}
1465 | exp exp '*' @{ $$ = $1 * $2; @}
1466 | exp exp '/' @{ $$ = $1 / $2; @}
1467 /* Exponentiation */
1468 | exp exp '^' @{ $$ = pow ($1, $2); @}
1469 /* Unary minus */
1470 | exp 'n' @{ $$ = -$1; @}
1471 ;
1472 %%
1473 @end example
1474
1475 The groupings of the rpcalc ``language'' defined here are the expression
1476 (given the name @code{exp}), the line of input (@code{line}), and the
1477 complete input transcript (@code{input}). Each of these nonterminal
1478 symbols has several alternate rules, joined by the vertical bar @samp{|}
1479 which is read as ``or''. The following sections explain what these rules
1480 mean.
1481
1482 The semantics of the language is determined by the actions taken when a
1483 grouping is recognized. The actions are the C code that appears inside
1484 braces. @xref{Actions}.
1485
1486 You must specify these actions in C, but Bison provides the means for
1487 passing semantic values between the rules. In each action, the
1488 pseudo-variable @code{$$} stands for the semantic value for the grouping
1489 that the rule is going to construct. Assigning a value to @code{$$} is the
1490 main job of most actions. The semantic values of the components of the
1491 rule are referred to as @code{$1}, @code{$2}, and so on.
1492
1493 @menu
1494 * Rpcalc Input::
1495 * Rpcalc Line::
1496 * Rpcalc Expr::
1497 @end menu
1498
1499 @node Rpcalc Input
1500 @subsubsection Explanation of @code{input}
1501
1502 Consider the definition of @code{input}:
1503
1504 @example
1505 input: /* empty */
1506 | input line
1507 ;
1508 @end example
1509
1510 This definition reads as follows: ``A complete input is either an empty
1511 string, or a complete input followed by an input line''. Notice that
1512 ``complete input'' is defined in terms of itself. This definition is said
1513 to be @dfn{left recursive} since @code{input} appears always as the
1514 leftmost symbol in the sequence. @xref{Recursion, ,Recursive Rules}.
1515
1516 The first alternative is empty because there are no symbols between the
1517 colon and the first @samp{|}; this means that @code{input} can match an
1518 empty string of input (no tokens). We write the rules this way because it
1519 is legitimate to type @kbd{Ctrl-d} right after you start the calculator.
1520 It's conventional to put an empty alternative first and write the comment
1521 @samp{/* empty */} in it.
1522
1523 The second alternate rule (@code{input line}) handles all nontrivial input.
1524 It means, ``After reading any number of lines, read one more line if
1525 possible.'' The left recursion makes this rule into a loop. Since the
1526 first alternative matches empty input, the loop can be executed zero or
1527 more times.
1528
1529 The parser function @code{yyparse} continues to process input until a
1530 grammatical error is seen or the lexical analyzer says there are no more
1531 input tokens; we will arrange for the latter to happen at end-of-input.
1532
1533 @node Rpcalc Line
1534 @subsubsection Explanation of @code{line}
1535
1536 Now consider the definition of @code{line}:
1537
1538 @example
1539 line: '\n'
1540 | exp '\n' @{ printf ("\t%.10g\n", $1); @}
1541 ;
1542 @end example
1543
1544 The first alternative is a token which is a newline character; this means
1545 that rpcalc accepts a blank line (and ignores it, since there is no
1546 action). The second alternative is an expression followed by a newline.
1547 This is the alternative that makes rpcalc useful. The semantic value of
1548 the @code{exp} grouping is the value of @code{$1} because the @code{exp} in
1549 question is the first symbol in the alternative. The action prints this
1550 value, which is the result of the computation the user asked for.
1551
1552 This action is unusual because it does not assign a value to @code{$$}. As
1553 a consequence, the semantic value associated with the @code{line} is
1554 uninitialized (its value will be unpredictable). This would be a bug if
1555 that value were ever used, but we don't use it: once rpcalc has printed the
1556 value of the user's input line, that value is no longer needed.
1557
1558 @node Rpcalc Expr
1559 @subsubsection Explanation of @code{expr}
1560
1561 The @code{exp} grouping has several rules, one for each kind of expression.
1562 The first rule handles the simplest expressions: those that are just numbers.
1563 The second handles an addition-expression, which looks like two expressions
1564 followed by a plus-sign. The third handles subtraction, and so on.
1565
1566 @example
1567 exp: NUM
1568 | exp exp '+' @{ $$ = $1 + $2; @}
1569 | exp exp '-' @{ $$ = $1 - $2; @}
1570 @dots{}
1571 ;
1572 @end example
1573
1574 We have used @samp{|} to join all the rules for @code{exp}, but we could
1575 equally well have written them separately:
1576
1577 @example
1578 exp: NUM ;
1579 exp: exp exp '+' @{ $$ = $1 + $2; @} ;
1580 exp: exp exp '-' @{ $$ = $1 - $2; @} ;
1581 @dots{}
1582 @end example
1583
1584 Most of the rules have actions that compute the value of the expression in
1585 terms of the value of its parts. For example, in the rule for addition,
1586 @code{$1} refers to the first component @code{exp} and @code{$2} refers to
1587 the second one. The third component, @code{'+'}, has no meaningful
1588 associated semantic value, but if it had one you could refer to it as
1589 @code{$3}. When @code{yyparse} recognizes a sum expression using this
1590 rule, the sum of the two subexpressions' values is produced as the value of
1591 the entire expression. @xref{Actions}.
1592
1593 You don't have to give an action for every rule. When a rule has no
1594 action, Bison by default copies the value of @code{$1} into @code{$$}.
1595 This is what happens in the first rule (the one that uses @code{NUM}).
1596
1597 The formatting shown here is the recommended convention, but Bison does
1598 not require it. You can add or change white space as much as you wish.
1599 For example, this:
1600
1601 @example
1602 exp : NUM | exp exp '+' @{$$ = $1 + $2; @} | @dots{} ;
1603 @end example
1604
1605 @noindent
1606 means the same thing as this:
1607
1608 @example
1609 exp: NUM
1610 | exp exp '+' @{ $$ = $1 + $2; @}
1611 | @dots{}
1612 ;
1613 @end example
1614
1615 @noindent
1616 The latter, however, is much more readable.
1617
1618 @node Rpcalc Lexer
1619 @subsection The @code{rpcalc} Lexical Analyzer
1620 @cindex writing a lexical analyzer
1621 @cindex lexical analyzer, writing
1622
1623 The lexical analyzer's job is low-level parsing: converting characters
1624 or sequences of characters into tokens. The Bison parser gets its
1625 tokens by calling the lexical analyzer. @xref{Lexical, ,The Lexical
1626 Analyzer Function @code{yylex}}.
1627
1628 Only a simple lexical analyzer is needed for the @acronym{RPN}
1629 calculator. This
1630 lexical analyzer skips blanks and tabs, then reads in numbers as
1631 @code{double} and returns them as @code{NUM} tokens. Any other character
1632 that isn't part of a number is a separate token. Note that the token-code
1633 for such a single-character token is the character itself.
1634
1635 The return value of the lexical analyzer function is a numeric code which
1636 represents a token type. The same text used in Bison rules to stand for
1637 this token type is also a C expression for the numeric code for the type.
1638 This works in two ways. If the token type is a character literal, then its
1639 numeric code is that of the character; you can use the same
1640 character literal in the lexical analyzer to express the number. If the
1641 token type is an identifier, that identifier is defined by Bison as a C
1642 macro whose definition is the appropriate number. In this example,
1643 therefore, @code{NUM} becomes a macro for @code{yylex} to use.
1644
1645 The semantic value of the token (if it has one) is stored into the
1646 global variable @code{yylval}, which is where the Bison parser will look
1647 for it. (The C data type of @code{yylval} is @code{YYSTYPE}, which was
1648 defined at the beginning of the grammar; @pxref{Rpcalc Decls,
1649 ,Declarations for @code{rpcalc}}.)
1650
1651 A token type code of zero is returned if the end-of-input is encountered.
1652 (Bison recognizes any nonpositive value as indicating end-of-input.)
1653
1654 Here is the code for the lexical analyzer:
1655
1656 @example
1657 @group
1658 /* The lexical analyzer returns a double floating point
1659 number on the stack and the token NUM, or the numeric code
1660 of the character read if not a number. It skips all blanks
1661 and tabs, and returns 0 for end-of-input. */
1662
1663 #include <ctype.h>
1664 @end group
1665
1666 @group
1667 int
1668 yylex (void)
1669 @{
1670 int c;
1671
1672 /* Skip white space. */
1673 while ((c = getchar ()) == ' ' || c == '\t')
1674 ;
1675 @end group
1676 @group
1677 /* Process numbers. */
1678 if (c == '.' || isdigit (c))
1679 @{
1680 ungetc (c, stdin);
1681 scanf ("%lf", &yylval);
1682 return NUM;
1683 @}
1684 @end group
1685 @group
1686 /* Return end-of-input. */
1687 if (c == EOF)
1688 return 0;
1689 /* Return a single char. */
1690 return c;
1691 @}
1692 @end group
1693 @end example
1694
1695 @node Rpcalc Main
1696 @subsection The Controlling Function
1697 @cindex controlling function
1698 @cindex main function in simple example
1699
1700 In keeping with the spirit of this example, the controlling function is
1701 kept to the bare minimum. The only requirement is that it call
1702 @code{yyparse} to start the process of parsing.
1703
1704 @example
1705 @group
1706 int
1707 main (void)
1708 @{
1709 return yyparse ();
1710 @}
1711 @end group
1712 @end example
1713
1714 @node Rpcalc Error
1715 @subsection The Error Reporting Routine
1716 @cindex error reporting routine
1717
1718 When @code{yyparse} detects a syntax error, it calls the error reporting
1719 function @code{yyerror} to print an error message (usually but not
1720 always @code{"syntax error"}). It is up to the programmer to supply
1721 @code{yyerror} (@pxref{Interface, ,Parser C-Language Interface}), so
1722 here is the definition we will use:
1723
1724 @example
1725 @group
1726 #include <stdio.h>
1727
1728 /* Called by yyparse on error. */
1729 void
1730 yyerror (char const *s)
1731 @{
1732 fprintf (stderr, "%s\n", s);
1733 @}
1734 @end group
1735 @end example
1736
1737 After @code{yyerror} returns, the Bison parser may recover from the error
1738 and continue parsing if the grammar contains a suitable error rule
1739 (@pxref{Error Recovery}). Otherwise, @code{yyparse} returns nonzero. We
1740 have not written any error rules in this example, so any invalid input will
1741 cause the calculator program to exit. This is not clean behavior for a
1742 real calculator, but it is adequate for the first example.
1743
1744 @node Rpcalc Gen
1745 @subsection Running Bison to Make the Parser
1746 @cindex running Bison (introduction)
1747
1748 Before running Bison to produce a parser, we need to decide how to
1749 arrange all the source code in one or more source files. For such a
1750 simple example, the easiest thing is to put everything in one file. The
1751 definitions of @code{yylex}, @code{yyerror} and @code{main} go at the
1752 end, in the epilogue of the file
1753 (@pxref{Grammar Layout, ,The Overall Layout of a Bison Grammar}).
1754
1755 For a large project, you would probably have several source files, and use
1756 @code{make} to arrange to recompile them.
1757
1758 With all the source in a single file, you use the following command to
1759 convert it into a parser file:
1760
1761 @example
1762 bison @var{file}.y
1763 @end example
1764
1765 @noindent
1766 In this example the file was called @file{rpcalc.y} (for ``Reverse Polish
1767 @sc{calc}ulator''). Bison produces a file named @file{@var{file}.tab.c},
1768 removing the @samp{.y} from the original file name. The file output by
1769 Bison contains the source code for @code{yyparse}. The additional
1770 functions in the input file (@code{yylex}, @code{yyerror} and @code{main})
1771 are copied verbatim to the output.
1772
1773 @node Rpcalc Compile
1774 @subsection Compiling the Parser File
1775 @cindex compiling the parser
1776
1777 Here is how to compile and run the parser file:
1778
1779 @example
1780 @group
1781 # @r{List files in current directory.}
1782 $ @kbd{ls}
1783 rpcalc.tab.c rpcalc.y
1784 @end group
1785
1786 @group
1787 # @r{Compile the Bison parser.}
1788 # @r{@samp{-lm} tells compiler to search math library for @code{pow}.}
1789 $ @kbd{cc -lm -o rpcalc rpcalc.tab.c}
1790 @end group
1791
1792 @group
1793 # @r{List files again.}
1794 $ @kbd{ls}
1795 rpcalc rpcalc.tab.c rpcalc.y
1796 @end group
1797 @end example
1798
1799 The file @file{rpcalc} now contains the executable code. Here is an
1800 example session using @code{rpcalc}.
1801
1802 @example
1803 $ @kbd{rpcalc}
1804 @kbd{4 9 +}
1805 13
1806 @kbd{3 7 + 3 4 5 *+-}
1807 -13
1808 @kbd{3 7 + 3 4 5 * + - n} @r{Note the unary minus, @samp{n}}
1809 13
1810 @kbd{5 6 / 4 n +}
1811 -3.166666667
1812 @kbd{3 4 ^} @r{Exponentiation}
1813 81
1814 @kbd{^D} @r{End-of-file indicator}
1815 $
1816 @end example
1817
1818 @node Infix Calc
1819 @section Infix Notation Calculator: @code{calc}
1820 @cindex infix notation calculator
1821 @cindex @code{calc}
1822 @cindex calculator, infix notation
1823
1824 We now modify rpcalc to handle infix operators instead of postfix. Infix
1825 notation involves the concept of operator precedence and the need for
1826 parentheses nested to arbitrary depth. Here is the Bison code for
1827 @file{calc.y}, an infix desk-top calculator.
1828
1829 @example
1830 /* Infix notation calculator. */
1831
1832 %@{
1833 #define YYSTYPE double
1834 #include <math.h>
1835 #include <stdio.h>
1836 int yylex (void);
1837 void yyerror (char const *);
1838 %@}
1839
1840 /* Bison declarations. */
1841 %token NUM
1842 %left '-' '+'
1843 %left '*' '/'
1844 %left NEG /* negation--unary minus */
1845 %right '^' /* exponentiation */
1846
1847 %% /* The grammar follows. */
1848 input: /* empty */
1849 | input line
1850 ;
1851
1852 line: '\n'
1853 | exp '\n' @{ printf ("\t%.10g\n", $1); @}
1854 ;
1855
1856 exp: NUM @{ $$ = $1; @}
1857 | exp '+' exp @{ $$ = $1 + $3; @}
1858 | exp '-' exp @{ $$ = $1 - $3; @}
1859 | exp '*' exp @{ $$ = $1 * $3; @}
1860 | exp '/' exp @{ $$ = $1 / $3; @}
1861 | '-' exp %prec NEG @{ $$ = -$2; @}
1862 | exp '^' exp @{ $$ = pow ($1, $3); @}
1863 | '(' exp ')' @{ $$ = $2; @}
1864 ;
1865 %%
1866 @end example
1867
1868 @noindent
1869 The functions @code{yylex}, @code{yyerror} and @code{main} can be the
1870 same as before.
1871
1872 There are two important new features shown in this code.
1873
1874 In the second section (Bison declarations), @code{%left} declares token
1875 types and says they are left-associative operators. The declarations
1876 @code{%left} and @code{%right} (right associativity) take the place of
1877 @code{%token} which is used to declare a token type name without
1878 associativity. (These tokens are single-character literals, which
1879 ordinarily don't need to be declared. We declare them here to specify
1880 the associativity.)
1881
1882 Operator precedence is determined by the line ordering of the
1883 declarations; the higher the line number of the declaration (lower on
1884 the page or screen), the higher the precedence. Hence, exponentiation
1885 has the highest precedence, unary minus (@code{NEG}) is next, followed
1886 by @samp{*} and @samp{/}, and so on. @xref{Precedence, ,Operator
1887 Precedence}.
1888
1889 The other important new feature is the @code{%prec} in the grammar
1890 section for the unary minus operator. The @code{%prec} simply instructs
1891 Bison that the rule @samp{| '-' exp} has the same precedence as
1892 @code{NEG}---in this case the next-to-highest. @xref{Contextual
1893 Precedence, ,Context-Dependent Precedence}.
1894
1895 Here is a sample run of @file{calc.y}:
1896
1897 @need 500
1898 @example
1899 $ @kbd{calc}
1900 @kbd{4 + 4.5 - (34/(8*3+-3))}
1901 6.880952381
1902 @kbd{-56 + 2}
1903 -54
1904 @kbd{3 ^ 2}
1905 9
1906 @end example
1907
1908 @node Simple Error Recovery
1909 @section Simple Error Recovery
1910 @cindex error recovery, simple
1911
1912 Up to this point, this manual has not addressed the issue of @dfn{error
1913 recovery}---how to continue parsing after the parser detects a syntax
1914 error. All we have handled is error reporting with @code{yyerror}.
1915 Recall that by default @code{yyparse} returns after calling
1916 @code{yyerror}. This means that an erroneous input line causes the
1917 calculator program to exit. Now we show how to rectify this deficiency.
1918
1919 The Bison language itself includes the reserved word @code{error}, which
1920 may be included in the grammar rules. In the example below it has
1921 been added to one of the alternatives for @code{line}:
1922
1923 @example
1924 @group
1925 line: '\n'
1926 | exp '\n' @{ printf ("\t%.10g\n", $1); @}
1927 | error '\n' @{ yyerrok; @}
1928 ;
1929 @end group
1930 @end example
1931
1932 This addition to the grammar allows for simple error recovery in the
1933 event of a syntax error. If an expression that cannot be evaluated is
1934 read, the error will be recognized by the third rule for @code{line},
1935 and parsing will continue. (The @code{yyerror} function is still called
1936 upon to print its message as well.) The action executes the statement
1937 @code{yyerrok}, a macro defined automatically by Bison; its meaning is
1938 that error recovery is complete (@pxref{Error Recovery}). Note the
1939 difference between @code{yyerrok} and @code{yyerror}; neither one is a
1940 misprint.
1941
1942 This form of error recovery deals with syntax errors. There are other
1943 kinds of errors; for example, division by zero, which raises an exception
1944 signal that is normally fatal. A real calculator program must handle this
1945 signal and use @code{longjmp} to return to @code{main} and resume parsing
1946 input lines; it would also have to discard the rest of the current line of
1947 input. We won't discuss this issue further because it is not specific to
1948 Bison programs.
1949
1950 @node Location Tracking Calc
1951 @section Location Tracking Calculator: @code{ltcalc}
1952 @cindex location tracking calculator
1953 @cindex @code{ltcalc}
1954 @cindex calculator, location tracking
1955
1956 This example extends the infix notation calculator with location
1957 tracking. This feature will be used to improve the error messages. For
1958 the sake of clarity, this example is a simple integer calculator, since
1959 most of the work needed to use locations will be done in the lexical
1960 analyzer.
1961
1962 @menu
1963 * Decls: Ltcalc Decls. Bison and C declarations for ltcalc.
1964 * Rules: Ltcalc Rules. Grammar rules for ltcalc, with explanations.
1965 * Lexer: Ltcalc Lexer. The lexical analyzer.
1966 @end menu
1967
1968 @node Ltcalc Decls
1969 @subsection Declarations for @code{ltcalc}
1970
1971 The C and Bison declarations for the location tracking calculator are
1972 the same as the declarations for the infix notation calculator.
1973
1974 @example
1975 /* Location tracking calculator. */
1976
1977 %@{
1978 #define YYSTYPE int
1979 #include <math.h>
1980 int yylex (void);
1981 void yyerror (char const *);
1982 %@}
1983
1984 /* Bison declarations. */
1985 %token NUM
1986
1987 %left '-' '+'
1988 %left '*' '/'
1989 %left NEG
1990 %right '^'
1991
1992 %% /* The grammar follows. */
1993 @end example
1994
1995 @noindent
1996 Note there are no declarations specific to locations. Defining a data
1997 type for storing locations is not needed: we will use the type provided
1998 by default (@pxref{Location Type, ,Data Types of Locations}), which is a
1999 four member structure with the following integer fields:
2000 @code{first_line}, @code{first_column}, @code{last_line} and
2001 @code{last_column}. By conventions, and in accordance with the GNU
2002 Coding Standards and common practice, the line and column count both
2003 start at 1.
2004
2005 @node Ltcalc Rules
2006 @subsection Grammar Rules for @code{ltcalc}
2007
2008 Whether handling locations or not has no effect on the syntax of your
2009 language. Therefore, grammar rules for this example will be very close
2010 to those of the previous example: we will only modify them to benefit
2011 from the new information.
2012
2013 Here, we will use locations to report divisions by zero, and locate the
2014 wrong expressions or subexpressions.
2015
2016 @example
2017 @group
2018 input : /* empty */
2019 | input line
2020 ;
2021 @end group
2022
2023 @group
2024 line : '\n'
2025 | exp '\n' @{ printf ("%d\n", $1); @}
2026 ;
2027 @end group
2028
2029 @group
2030 exp : NUM @{ $$ = $1; @}
2031 | exp '+' exp @{ $$ = $1 + $3; @}
2032 | exp '-' exp @{ $$ = $1 - $3; @}
2033 | exp '*' exp @{ $$ = $1 * $3; @}
2034 @end group
2035 @group
2036 | exp '/' exp
2037 @{
2038 if ($3)
2039 $$ = $1 / $3;
2040 else
2041 @{
2042 $$ = 1;
2043 fprintf (stderr, "%d.%d-%d.%d: division by zero",
2044 @@3.first_line, @@3.first_column,
2045 @@3.last_line, @@3.last_column);
2046 @}
2047 @}
2048 @end group
2049 @group
2050 | '-' exp %preg NEG @{ $$ = -$2; @}
2051 | exp '^' exp @{ $$ = pow ($1, $3); @}
2052 | '(' exp ')' @{ $$ = $2; @}
2053 @end group
2054 @end example
2055
2056 This code shows how to reach locations inside of semantic actions, by
2057 using the pseudo-variables @code{@@@var{n}} for rule components, and the
2058 pseudo-variable @code{@@$} for groupings.
2059
2060 We don't need to assign a value to @code{@@$}: the output parser does it
2061 automatically. By default, before executing the C code of each action,
2062 @code{@@$} is set to range from the beginning of @code{@@1} to the end
2063 of @code{@@@var{n}}, for a rule with @var{n} components. This behavior
2064 can be redefined (@pxref{Location Default Action, , Default Action for
2065 Locations}), and for very specific rules, @code{@@$} can be computed by
2066 hand.
2067
2068 @node Ltcalc Lexer
2069 @subsection The @code{ltcalc} Lexical Analyzer.
2070
2071 Until now, we relied on Bison's defaults to enable location
2072 tracking. The next step is to rewrite the lexical analyzer, and make it
2073 able to feed the parser with the token locations, as it already does for
2074 semantic values.
2075
2076 To this end, we must take into account every single character of the
2077 input text, to avoid the computed locations of being fuzzy or wrong:
2078
2079 @example
2080 @group
2081 int
2082 yylex (void)
2083 @{
2084 int c;
2085 @end group
2086
2087 @group
2088 /* Skip white space. */
2089 while ((c = getchar ()) == ' ' || c == '\t')
2090 ++yylloc.last_column;
2091 @end group
2092
2093 @group
2094 /* Step. */
2095 yylloc.first_line = yylloc.last_line;
2096 yylloc.first_column = yylloc.last_column;
2097 @end group
2098
2099 @group
2100 /* Process numbers. */
2101 if (isdigit (c))
2102 @{
2103 yylval = c - '0';
2104 ++yylloc.last_column;
2105 while (isdigit (c = getchar ()))
2106 @{
2107 ++yylloc.last_column;
2108 yylval = yylval * 10 + c - '0';
2109 @}
2110 ungetc (c, stdin);
2111 return NUM;
2112 @}
2113 @end group
2114
2115 /* Return end-of-input. */
2116 if (c == EOF)
2117 return 0;
2118
2119 /* Return a single char, and update location. */
2120 if (c == '\n')
2121 @{
2122 ++yylloc.last_line;
2123 yylloc.last_column = 0;
2124 @}
2125 else
2126 ++yylloc.last_column;
2127 return c;
2128 @}
2129 @end example
2130
2131 Basically, the lexical analyzer performs the same processing as before:
2132 it skips blanks and tabs, and reads numbers or single-character tokens.
2133 In addition, it updates @code{yylloc}, the global variable (of type
2134 @code{YYLTYPE}) containing the token's location.
2135
2136 Now, each time this function returns a token, the parser has its number
2137 as well as its semantic value, and its location in the text. The last
2138 needed change is to initialize @code{yylloc}, for example in the
2139 controlling function:
2140
2141 @example
2142 @group
2143 int
2144 main (void)
2145 @{
2146 yylloc.first_line = yylloc.last_line = 1;
2147 yylloc.first_column = yylloc.last_column = 0;
2148 return yyparse ();
2149 @}
2150 @end group
2151 @end example
2152
2153 Remember that computing locations is not a matter of syntax. Every
2154 character must be associated to a location update, whether it is in
2155 valid input, in comments, in literal strings, and so on.
2156
2157 @node Multi-function Calc
2158 @section Multi-Function Calculator: @code{mfcalc}
2159 @cindex multi-function calculator
2160 @cindex @code{mfcalc}
2161 @cindex calculator, multi-function
2162
2163 Now that the basics of Bison have been discussed, it is time to move on to
2164 a more advanced problem. The above calculators provided only five
2165 functions, @samp{+}, @samp{-}, @samp{*}, @samp{/} and @samp{^}. It would
2166 be nice to have a calculator that provides other mathematical functions such
2167 as @code{sin}, @code{cos}, etc.
2168
2169 It is easy to add new operators to the infix calculator as long as they are
2170 only single-character literals. The lexical analyzer @code{yylex} passes
2171 back all nonnumeric characters as tokens, so new grammar rules suffice for
2172 adding a new operator. But we want something more flexible: built-in
2173 functions whose syntax has this form:
2174
2175 @example
2176 @var{function_name} (@var{argument})
2177 @end example
2178
2179 @noindent
2180 At the same time, we will add memory to the calculator, by allowing you
2181 to create named variables, store values in them, and use them later.
2182 Here is a sample session with the multi-function calculator:
2183
2184 @example
2185 $ @kbd{mfcalc}
2186 @kbd{pi = 3.141592653589}
2187 3.1415926536
2188 @kbd{sin(pi)}
2189 0.0000000000
2190 @kbd{alpha = beta1 = 2.3}
2191 2.3000000000
2192 @kbd{alpha}
2193 2.3000000000
2194 @kbd{ln(alpha)}
2195 0.8329091229
2196 @kbd{exp(ln(beta1))}
2197 2.3000000000
2198 $
2199 @end example
2200
2201 Note that multiple assignment and nested function calls are permitted.
2202
2203 @menu
2204 * Decl: Mfcalc Decl. Bison declarations for multi-function calculator.
2205 * Rules: Mfcalc Rules. Grammar rules for the calculator.
2206 * Symtab: Mfcalc Symtab. Symbol table management subroutines.
2207 @end menu
2208
2209 @node Mfcalc Decl
2210 @subsection Declarations for @code{mfcalc}
2211
2212 Here are the C and Bison declarations for the multi-function calculator.
2213
2214 @smallexample
2215 @group
2216 %@{
2217 #include <math.h> /* For math functions, cos(), sin(), etc. */
2218 #include "calc.h" /* Contains definition of `symrec'. */
2219 int yylex (void);
2220 void yyerror (char const *);
2221 %@}
2222 @end group
2223 @group
2224 %union @{
2225 double val; /* For returning numbers. */
2226 symrec *tptr; /* For returning symbol-table pointers. */
2227 @}
2228 @end group
2229 %token <val> NUM /* Simple double precision number. */
2230 %token <tptr> VAR FNCT /* Variable and Function. */
2231 %type <val> exp
2232
2233 @group
2234 %right '='
2235 %left '-' '+'
2236 %left '*' '/'
2237 %left NEG /* negation--unary minus */
2238 %right '^' /* exponentiation */
2239 @end group
2240 %% /* The grammar follows. */
2241 @end smallexample
2242
2243 The above grammar introduces only two new features of the Bison language.
2244 These features allow semantic values to have various data types
2245 (@pxref{Multiple Types, ,More Than One Value Type}).
2246
2247 The @code{%union} declaration specifies the entire list of possible types;
2248 this is instead of defining @code{YYSTYPE}. The allowable types are now
2249 double-floats (for @code{exp} and @code{NUM}) and pointers to entries in
2250 the symbol table. @xref{Union Decl, ,The Collection of Value Types}.
2251
2252 Since values can now have various types, it is necessary to associate a
2253 type with each grammar symbol whose semantic value is used. These symbols
2254 are @code{NUM}, @code{VAR}, @code{FNCT}, and @code{exp}. Their
2255 declarations are augmented with information about their data type (placed
2256 between angle brackets).
2257
2258 The Bison construct @code{%type} is used for declaring nonterminal
2259 symbols, just as @code{%token} is used for declaring token types. We
2260 have not used @code{%type} before because nonterminal symbols are
2261 normally declared implicitly by the rules that define them. But
2262 @code{exp} must be declared explicitly so we can specify its value type.
2263 @xref{Type Decl, ,Nonterminal Symbols}.
2264
2265 @node Mfcalc Rules
2266 @subsection Grammar Rules for @code{mfcalc}
2267
2268 Here are the grammar rules for the multi-function calculator.
2269 Most of them are copied directly from @code{calc}; three rules,
2270 those which mention @code{VAR} or @code{FNCT}, are new.
2271
2272 @smallexample
2273 @group
2274 input: /* empty */
2275 | input line
2276 ;
2277 @end group
2278
2279 @group
2280 line:
2281 '\n'
2282 | exp '\n' @{ printf ("\t%.10g\n", $1); @}
2283 | error '\n' @{ yyerrok; @}
2284 ;
2285 @end group
2286
2287 @group
2288 exp: NUM @{ $$ = $1; @}
2289 | VAR @{ $$ = $1->value.var; @}
2290 | VAR '=' exp @{ $$ = $3; $1->value.var = $3; @}
2291 | FNCT '(' exp ')' @{ $$ = (*($1->value.fnctptr))($3); @}
2292 | exp '+' exp @{ $$ = $1 + $3; @}
2293 | exp '-' exp @{ $$ = $1 - $3; @}
2294 | exp '*' exp @{ $$ = $1 * $3; @}
2295 | exp '/' exp @{ $$ = $1 / $3; @}
2296 | '-' exp %prec NEG @{ $$ = -$2; @}
2297 | exp '^' exp @{ $$ = pow ($1, $3); @}
2298 | '(' exp ')' @{ $$ = $2; @}
2299 ;
2300 @end group
2301 /* End of grammar. */
2302 %%
2303 @end smallexample
2304
2305 @node Mfcalc Symtab
2306 @subsection The @code{mfcalc} Symbol Table
2307 @cindex symbol table example
2308
2309 The multi-function calculator requires a symbol table to keep track of the
2310 names and meanings of variables and functions. This doesn't affect the
2311 grammar rules (except for the actions) or the Bison declarations, but it
2312 requires some additional C functions for support.
2313
2314 The symbol table itself consists of a linked list of records. Its
2315 definition, which is kept in the header @file{calc.h}, is as follows. It
2316 provides for either functions or variables to be placed in the table.
2317
2318 @smallexample
2319 @group
2320 /* Function type. */
2321 typedef double (*func_t) (double);
2322 @end group
2323
2324 @group
2325 /* Data type for links in the chain of symbols. */
2326 struct symrec
2327 @{
2328 char *name; /* name of symbol */
2329 int type; /* type of symbol: either VAR or FNCT */
2330 union
2331 @{
2332 double var; /* value of a VAR */
2333 func_t fnctptr; /* value of a FNCT */
2334 @} value;
2335 struct symrec *next; /* link field */
2336 @};
2337 @end group
2338
2339 @group
2340 typedef struct symrec symrec;
2341
2342 /* The symbol table: a chain of `struct symrec'. */
2343 extern symrec *sym_table;
2344
2345 symrec *putsym (char const *, int);
2346 symrec *getsym (char const *);
2347 @end group
2348 @end smallexample
2349
2350 The new version of @code{main} includes a call to @code{init_table}, a
2351 function that initializes the symbol table. Here it is, and
2352 @code{init_table} as well:
2353
2354 @smallexample
2355 #include <stdio.h>
2356
2357 @group
2358 /* Called by yyparse on error. */
2359 void
2360 yyerror (char const *s)
2361 @{
2362 printf ("%s\n", s);
2363 @}
2364 @end group
2365
2366 @group
2367 struct init
2368 @{
2369 char const *fname;
2370 double (*fnct) (double);
2371 @};
2372 @end group
2373
2374 @group
2375 struct init const arith_fncts[] =
2376 @{
2377 "sin", sin,
2378 "cos", cos,
2379 "atan", atan,
2380 "ln", log,
2381 "exp", exp,
2382 "sqrt", sqrt,
2383 0, 0
2384 @};
2385 @end group
2386
2387 @group
2388 /* The symbol table: a chain of `struct symrec'. */
2389 symrec *sym_table;
2390 @end group
2391
2392 @group
2393 /* Put arithmetic functions in table. */
2394 void
2395 init_table (void)
2396 @{
2397 int i;
2398 symrec *ptr;
2399 for (i = 0; arith_fncts[i].fname != 0; i++)
2400 @{
2401 ptr = putsym (arith_fncts[i].fname, FNCT);
2402 ptr->value.fnctptr = arith_fncts[i].fnct;
2403 @}
2404 @}
2405 @end group
2406
2407 @group
2408 int
2409 main (void)
2410 @{
2411 init_table ();
2412 return yyparse ();
2413 @}
2414 @end group
2415 @end smallexample
2416
2417 By simply editing the initialization list and adding the necessary include
2418 files, you can add additional functions to the calculator.
2419
2420 Two important functions allow look-up and installation of symbols in the
2421 symbol table. The function @code{putsym} is passed a name and the type
2422 (@code{VAR} or @code{FNCT}) of the object to be installed. The object is
2423 linked to the front of the list, and a pointer to the object is returned.
2424 The function @code{getsym} is passed the name of the symbol to look up. If
2425 found, a pointer to that symbol is returned; otherwise zero is returned.
2426
2427 @smallexample
2428 symrec *
2429 putsym (char const *sym_name, int sym_type)
2430 @{
2431 symrec *ptr;
2432 ptr = (symrec *) malloc (sizeof (symrec));
2433 ptr->name = (char *) malloc (strlen (sym_name) + 1);
2434 strcpy (ptr->name,sym_name);
2435 ptr->type = sym_type;
2436 ptr->value.var = 0; /* Set value to 0 even if fctn. */
2437 ptr->next = (struct symrec *)sym_table;
2438 sym_table = ptr;
2439 return ptr;
2440 @}
2441
2442 symrec *
2443 getsym (char const *sym_name)
2444 @{
2445 symrec *ptr;
2446 for (ptr = sym_table; ptr != (symrec *) 0;
2447 ptr = (symrec *)ptr->next)
2448 if (strcmp (ptr->name,sym_name) == 0)
2449 return ptr;
2450 return 0;
2451 @}
2452 @end smallexample
2453
2454 The function @code{yylex} must now recognize variables, numeric values, and
2455 the single-character arithmetic operators. Strings of alphanumeric
2456 characters with a leading letter are recognized as either variables or
2457 functions depending on what the symbol table says about them.
2458
2459 The string is passed to @code{getsym} for look up in the symbol table. If
2460 the name appears in the table, a pointer to its location and its type
2461 (@code{VAR} or @code{FNCT}) is returned to @code{yyparse}. If it is not
2462 already in the table, then it is installed as a @code{VAR} using
2463 @code{putsym}. Again, a pointer and its type (which must be @code{VAR}) is
2464 returned to @code{yyparse}.
2465
2466 No change is needed in the handling of numeric values and arithmetic
2467 operators in @code{yylex}.
2468
2469 @smallexample
2470 @group
2471 #include <ctype.h>
2472 @end group
2473
2474 @group
2475 int
2476 yylex (void)
2477 @{
2478 int c;
2479
2480 /* Ignore white space, get first nonwhite character. */
2481 while ((c = getchar ()) == ' ' || c == '\t');
2482
2483 if (c == EOF)
2484 return 0;
2485 @end group
2486
2487 @group
2488 /* Char starts a number => parse the number. */
2489 if (c == '.' || isdigit (c))
2490 @{
2491 ungetc (c, stdin);
2492 scanf ("%lf", &yylval.val);
2493 return NUM;
2494 @}
2495 @end group
2496
2497 @group
2498 /* Char starts an identifier => read the name. */
2499 if (isalpha (c))
2500 @{
2501 symrec *s;
2502 static char *symbuf = 0;
2503 static int length = 0;
2504 int i;
2505 @end group
2506
2507 @group
2508 /* Initially make the buffer long enough
2509 for a 40-character symbol name. */
2510 if (length == 0)
2511 length = 40, symbuf = (char *)malloc (length + 1);
2512
2513 i = 0;
2514 do
2515 @end group
2516 @group
2517 @{
2518 /* If buffer is full, make it bigger. */
2519 if (i == length)
2520 @{
2521 length *= 2;
2522 symbuf = (char *) realloc (symbuf, length + 1);
2523 @}
2524 /* Add this character to the buffer. */
2525 symbuf[i++] = c;
2526 /* Get another character. */
2527 c = getchar ();
2528 @}
2529 @end group
2530 @group
2531 while (isalnum (c));
2532
2533 ungetc (c, stdin);
2534 symbuf[i] = '\0';
2535 @end group
2536
2537 @group
2538 s = getsym (symbuf);
2539 if (s == 0)
2540 s = putsym (symbuf, VAR);
2541 yylval.tptr = s;
2542 return s->type;
2543 @}
2544
2545 /* Any other character is a token by itself. */
2546 return c;
2547 @}
2548 @end group
2549 @end smallexample
2550
2551 This program is both powerful and flexible. You may easily add new
2552 functions, and it is a simple job to modify this code to install
2553 predefined variables such as @code{pi} or @code{e} as well.
2554
2555 @node Exercises
2556 @section Exercises
2557 @cindex exercises
2558
2559 @enumerate
2560 @item
2561 Add some new functions from @file{math.h} to the initialization list.
2562
2563 @item
2564 Add another array that contains constants and their values. Then
2565 modify @code{init_table} to add these constants to the symbol table.
2566 It will be easiest to give the constants type @code{VAR}.
2567
2568 @item
2569 Make the program report an error if the user refers to an
2570 uninitialized variable in any way except to store a value in it.
2571 @end enumerate
2572
2573 @node Grammar File
2574 @chapter Bison Grammar Files
2575
2576 Bison takes as input a context-free grammar specification and produces a
2577 C-language function that recognizes correct instances of the grammar.
2578
2579 The Bison grammar input file conventionally has a name ending in @samp{.y}.
2580 @xref{Invocation, ,Invoking Bison}.
2581
2582 @menu
2583 * Grammar Outline:: Overall layout of the grammar file.
2584 * Symbols:: Terminal and nonterminal symbols.
2585 * Rules:: How to write grammar rules.
2586 * Recursion:: Writing recursive rules.
2587 * Semantics:: Semantic values and actions.
2588 * Locations:: Locations and actions.
2589 * Declarations:: All kinds of Bison declarations are described here.
2590 * Multiple Parsers:: Putting more than one Bison parser in one program.
2591 @end menu
2592
2593 @node Grammar Outline
2594 @section Outline of a Bison Grammar
2595
2596 A Bison grammar file has four main sections, shown here with the
2597 appropriate delimiters:
2598
2599 @example
2600 %@{
2601 @var{Prologue}
2602 %@}
2603
2604 @var{Bison declarations}
2605
2606 %%
2607 @var{Grammar rules}
2608 %%
2609
2610 @var{Epilogue}
2611 @end example
2612
2613 Comments enclosed in @samp{/* @dots{} */} may appear in any of the sections.
2614 As a @acronym{GNU} extension, @samp{//} introduces a comment that
2615 continues until end of line.
2616
2617 @menu
2618 * Prologue:: Syntax and usage of the prologue.
2619 * Bison Declarations:: Syntax and usage of the Bison declarations section.
2620 * Grammar Rules:: Syntax and usage of the grammar rules section.
2621 * Epilogue:: Syntax and usage of the epilogue.
2622 @end menu
2623
2624 @node Prologue
2625 @subsection The prologue
2626 @cindex declarations section
2627 @cindex Prologue
2628 @cindex declarations
2629
2630 The @var{Prologue} section contains macro definitions and declarations
2631 of functions and variables that are used in the actions in the grammar
2632 rules. These are copied to the beginning of the parser file so that
2633 they precede the definition of @code{yyparse}. You can use
2634 @samp{#include} to get the declarations from a header file. If you
2635 don't need any C declarations, you may omit the @samp{%@{} and
2636 @samp{%@}} delimiters that bracket this section.
2637
2638 The @var{Prologue} section is terminated by the first occurrence
2639 of @samp{%@}} that is outside a comment, a string literal, or a
2640 character constant.
2641
2642 You may have more than one @var{Prologue} section, intermixed with the
2643 @var{Bison declarations}. This allows you to have C and Bison
2644 declarations that refer to each other. For example, the @code{%union}
2645 declaration may use types defined in a header file, and you may wish to
2646 prototype functions that take arguments of type @code{YYSTYPE}. This
2647 can be done with two @var{Prologue} blocks, one before and one after the
2648 @code{%union} declaration.
2649
2650 @smallexample
2651 %@{
2652 #include <stdio.h>
2653 #include "ptypes.h"
2654 %@}
2655
2656 %union @{
2657 long int n;
2658 tree t; /* @r{@code{tree} is defined in @file{ptypes.h}.} */
2659 @}
2660
2661 %@{
2662 static void print_token_value (FILE *, int, YYSTYPE);
2663 #define YYPRINT(F, N, L) print_token_value (F, N, L)
2664 %@}
2665
2666 @dots{}
2667 @end smallexample
2668
2669 @findex %before-header
2670 @findex %start-header
2671 @findex %after-header
2672 If you've instructed Bison to generate a header file (@pxref{Table of Symbols,
2673 ,%defines}), you probably want @code{#include "ptypes.h"} to appear
2674 in that header file as well.
2675 In that case, use @code{%before-header}, @code{%start-header}, and
2676 @code{%after-header} instead of @var{Prologue} sections
2677 (@pxref{Table of Symbols, ,%start-header}):
2678
2679 @smallexample
2680 %before-header @{
2681 #include <stdio.h>
2682 @}
2683
2684 %start-header @{
2685 #include "ptypes.h"
2686 @}
2687 %union @{
2688 long int n;
2689 tree t; /* @r{@code{tree} is defined in @file{ptypes.h}.} */
2690 @}
2691
2692 %after-header @{
2693 static void print_token_value (FILE *, int, YYSTYPE);
2694 #define YYPRINT(F, N, L) print_token_value (F, N, L)
2695 @}
2696
2697 @dots{}
2698 @end smallexample
2699
2700 @node Bison Declarations
2701 @subsection The Bison Declarations Section
2702 @cindex Bison declarations (introduction)
2703 @cindex declarations, Bison (introduction)
2704
2705 The @var{Bison declarations} section contains declarations that define
2706 terminal and nonterminal symbols, specify precedence, and so on.
2707 In some simple grammars you may not need any declarations.
2708 @xref{Declarations, ,Bison Declarations}.
2709
2710 @node Grammar Rules
2711 @subsection The Grammar Rules Section
2712 @cindex grammar rules section
2713 @cindex rules section for grammar
2714
2715 The @dfn{grammar rules} section contains one or more Bison grammar
2716 rules, and nothing else. @xref{Rules, ,Syntax of Grammar Rules}.
2717
2718 There must always be at least one grammar rule, and the first
2719 @samp{%%} (which precedes the grammar rules) may never be omitted even
2720 if it is the first thing in the file.
2721
2722 @node Epilogue
2723 @subsection The epilogue
2724 @cindex additional C code section
2725 @cindex epilogue
2726 @cindex C code, section for additional
2727
2728 The @var{Epilogue} is copied verbatim to the end of the parser file, just as
2729 the @var{Prologue} is copied to the beginning. This is the most convenient
2730 place to put anything that you want to have in the parser file but which need
2731 not come before the definition of @code{yyparse}. For example, the
2732 definitions of @code{yylex} and @code{yyerror} often go here. Because
2733 C requires functions to be declared before being used, you often need
2734 to declare functions like @code{yylex} and @code{yyerror} in the Prologue,
2735 even if you define them in the Epilogue.
2736 @xref{Interface, ,Parser C-Language Interface}.
2737
2738 If the last section is empty, you may omit the @samp{%%} that separates it
2739 from the grammar rules.
2740
2741 The Bison parser itself contains many macros and identifiers whose names
2742 start with @samp{yy} or @samp{YY}, so it is a good idea to avoid using
2743 any such names (except those documented in this manual) in the epilogue
2744 of the grammar file.
2745
2746 @node Symbols
2747 @section Symbols, Terminal and Nonterminal
2748 @cindex nonterminal symbol
2749 @cindex terminal symbol
2750 @cindex token type
2751 @cindex symbol
2752
2753 @dfn{Symbols} in Bison grammars represent the grammatical classifications
2754 of the language.
2755
2756 A @dfn{terminal symbol} (also known as a @dfn{token type}) represents a
2757 class of syntactically equivalent tokens. You use the symbol in grammar
2758 rules to mean that a token in that class is allowed. The symbol is
2759 represented in the Bison parser by a numeric code, and the @code{yylex}
2760 function returns a token type code to indicate what kind of token has
2761 been read. You don't need to know what the code value is; you can use
2762 the symbol to stand for it.
2763
2764 A @dfn{nonterminal symbol} stands for a class of syntactically
2765 equivalent groupings. The symbol name is used in writing grammar rules.
2766 By convention, it should be all lower case.
2767
2768 Symbol names can contain letters, digits (not at the beginning),
2769 underscores and periods. Periods make sense only in nonterminals.
2770
2771 There are three ways of writing terminal symbols in the grammar:
2772
2773 @itemize @bullet
2774 @item
2775 A @dfn{named token type} is written with an identifier, like an
2776 identifier in C@. By convention, it should be all upper case. Each
2777 such name must be defined with a Bison declaration such as
2778 @code{%token}. @xref{Token Decl, ,Token Type Names}.
2779
2780 @item
2781 @cindex character token
2782 @cindex literal token
2783 @cindex single-character literal
2784 A @dfn{character token type} (or @dfn{literal character token}) is
2785 written in the grammar using the same syntax used in C for character
2786 constants; for example, @code{'+'} is a character token type. A
2787 character token type doesn't need to be declared unless you need to
2788 specify its semantic value data type (@pxref{Value Type, ,Data Types of
2789 Semantic Values}), associativity, or precedence (@pxref{Precedence,
2790 ,Operator Precedence}).
2791
2792 By convention, a character token type is used only to represent a
2793 token that consists of that particular character. Thus, the token
2794 type @code{'+'} is used to represent the character @samp{+} as a
2795 token. Nothing enforces this convention, but if you depart from it,
2796 your program will confuse other readers.
2797
2798 All the usual escape sequences used in character literals in C can be
2799 used in Bison as well, but you must not use the null character as a
2800 character literal because its numeric code, zero, signifies
2801 end-of-input (@pxref{Calling Convention, ,Calling Convention
2802 for @code{yylex}}). Also, unlike standard C, trigraphs have no
2803 special meaning in Bison character literals, nor is backslash-newline
2804 allowed.
2805
2806 @item
2807 @cindex string token
2808 @cindex literal string token
2809 @cindex multicharacter literal
2810 A @dfn{literal string token} is written like a C string constant; for
2811 example, @code{"<="} is a literal string token. A literal string token
2812 doesn't need to be declared unless you need to specify its semantic
2813 value data type (@pxref{Value Type}), associativity, or precedence
2814 (@pxref{Precedence}).
2815
2816 You can associate the literal string token with a symbolic name as an
2817 alias, using the @code{%token} declaration (@pxref{Token Decl, ,Token
2818 Declarations}). If you don't do that, the lexical analyzer has to
2819 retrieve the token number for the literal string token from the
2820 @code{yytname} table (@pxref{Calling Convention}).
2821
2822 @strong{Warning}: literal string tokens do not work in Yacc.
2823
2824 By convention, a literal string token is used only to represent a token
2825 that consists of that particular string. Thus, you should use the token
2826 type @code{"<="} to represent the string @samp{<=} as a token. Bison
2827 does not enforce this convention, but if you depart from it, people who
2828 read your program will be confused.
2829
2830 All the escape sequences used in string literals in C can be used in
2831 Bison as well, except that you must not use a null character within a
2832 string literal. Also, unlike Standard C, trigraphs have no special
2833 meaning in Bison string literals, nor is backslash-newline allowed. A
2834 literal string token must contain two or more characters; for a token
2835 containing just one character, use a character token (see above).
2836 @end itemize
2837
2838 How you choose to write a terminal symbol has no effect on its
2839 grammatical meaning. That depends only on where it appears in rules and
2840 on when the parser function returns that symbol.
2841
2842 The value returned by @code{yylex} is always one of the terminal
2843 symbols, except that a zero or negative value signifies end-of-input.
2844 Whichever way you write the token type in the grammar rules, you write
2845 it the same way in the definition of @code{yylex}. The numeric code
2846 for a character token type is simply the positive numeric code of the
2847 character, so @code{yylex} can use the identical value to generate the
2848 requisite code, though you may need to convert it to @code{unsigned
2849 char} to avoid sign-extension on hosts where @code{char} is signed.
2850 Each named token type becomes a C macro in
2851 the parser file, so @code{yylex} can use the name to stand for the code.
2852 (This is why periods don't make sense in terminal symbols.)
2853 @xref{Calling Convention, ,Calling Convention for @code{yylex}}.
2854
2855 If @code{yylex} is defined in a separate file, you need to arrange for the
2856 token-type macro definitions to be available there. Use the @samp{-d}
2857 option when you run Bison, so that it will write these macro definitions
2858 into a separate header file @file{@var{name}.tab.h} which you can include
2859 in the other source files that need it. @xref{Invocation, ,Invoking Bison}.
2860
2861 If you want to write a grammar that is portable to any Standard C
2862 host, you must use only nonnull character tokens taken from the basic
2863 execution character set of Standard C@. This set consists of the ten
2864 digits, the 52 lower- and upper-case English letters, and the
2865 characters in the following C-language string:
2866
2867 @example
2868 "\a\b\t\n\v\f\r !\"#%&'()*+,-./:;<=>?[\\]^_@{|@}~"
2869 @end example
2870
2871 The @code{yylex} function and Bison must use a consistent character set
2872 and encoding for character tokens. For example, if you run Bison in an
2873 @acronym{ASCII} environment, but then compile and run the resulting
2874 program in an environment that uses an incompatible character set like
2875 @acronym{EBCDIC}, the resulting program may not work because the tables
2876 generated by Bison will assume @acronym{ASCII} numeric values for
2877 character tokens. It is standard practice for software distributions to
2878 contain C source files that were generated by Bison in an
2879 @acronym{ASCII} environment, so installers on platforms that are
2880 incompatible with @acronym{ASCII} must rebuild those files before
2881 compiling them.
2882
2883 The symbol @code{error} is a terminal symbol reserved for error recovery
2884 (@pxref{Error Recovery}); you shouldn't use it for any other purpose.
2885 In particular, @code{yylex} should never return this value. The default
2886 value of the error token is 256, unless you explicitly assigned 256 to
2887 one of your tokens with a @code{%token} declaration.
2888
2889 @node Rules
2890 @section Syntax of Grammar Rules
2891 @cindex rule syntax
2892 @cindex grammar rule syntax
2893 @cindex syntax of grammar rules
2894
2895 A Bison grammar rule has the following general form:
2896
2897 @example
2898 @group
2899 @var{result}: @var{components}@dots{}
2900 ;
2901 @end group
2902 @end example
2903
2904 @noindent
2905 where @var{result} is the nonterminal symbol that this rule describes,
2906 and @var{components} are various terminal and nonterminal symbols that
2907 are put together by this rule (@pxref{Symbols}).
2908
2909 For example,
2910
2911 @example
2912 @group
2913 exp: exp '+' exp
2914 ;
2915 @end group
2916 @end example
2917
2918 @noindent
2919 says that two groupings of type @code{exp}, with a @samp{+} token in between,
2920 can be combined into a larger grouping of type @code{exp}.
2921
2922 White space in rules is significant only to separate symbols. You can add
2923 extra white space as you wish.
2924
2925 Scattered among the components can be @var{actions} that determine
2926 the semantics of the rule. An action looks like this:
2927
2928 @example
2929 @{@var{C statements}@}
2930 @end example
2931
2932 @noindent
2933 @cindex braced code
2934 This is an example of @dfn{braced code}, that is, C code surrounded by
2935 braces, much like a compound statement in C@. Braced code can contain
2936 any sequence of C tokens, so long as its braces are balanced. Bison
2937 does not check the braced code for correctness directly; it merely
2938 copies the code to the output file, where the C compiler can check it.
2939
2940 Within braced code, the balanced-brace count is not affected by braces
2941 within comments, string literals, or character constants, but it is
2942 affected by the C digraphs @samp{<%} and @samp{%>} that represent
2943 braces. At the top level braced code must be terminated by @samp{@}}
2944 and not by a digraph. Bison does not look for trigraphs, so if braced
2945 code uses trigraphs you should ensure that they do not affect the
2946 nesting of braces or the boundaries of comments, string literals, or
2947 character constants.
2948
2949 Usually there is only one action and it follows the components.
2950 @xref{Actions}.
2951
2952 @findex |
2953 Multiple rules for the same @var{result} can be written separately or can
2954 be joined with the vertical-bar character @samp{|} as follows:
2955
2956 @example
2957 @group
2958 @var{result}: @var{rule1-components}@dots{}
2959 | @var{rule2-components}@dots{}
2960 @dots{}
2961 ;
2962 @end group
2963 @end example
2964
2965 @noindent
2966 They are still considered distinct rules even when joined in this way.
2967
2968 If @var{components} in a rule is empty, it means that @var{result} can
2969 match the empty string. For example, here is how to define a
2970 comma-separated sequence of zero or more @code{exp} groupings:
2971
2972 @example
2973 @group
2974 expseq: /* empty */
2975 | expseq1
2976 ;
2977 @end group
2978
2979 @group
2980 expseq1: exp
2981 | expseq1 ',' exp
2982 ;
2983 @end group
2984 @end example
2985
2986 @noindent
2987 It is customary to write a comment @samp{/* empty */} in each rule
2988 with no components.
2989
2990 @node Recursion
2991 @section Recursive Rules
2992 @cindex recursive rule
2993
2994 A rule is called @dfn{recursive} when its @var{result} nonterminal
2995 appears also on its right hand side. Nearly all Bison grammars need to
2996 use recursion, because that is the only way to define a sequence of any
2997 number of a particular thing. Consider this recursive definition of a
2998 comma-separated sequence of one or more expressions:
2999
3000 @example
3001 @group
3002 expseq1: exp
3003 | expseq1 ',' exp
3004 ;
3005 @end group
3006 @end example
3007
3008 @cindex left recursion
3009 @cindex right recursion
3010 @noindent
3011 Since the recursive use of @code{expseq1} is the leftmost symbol in the
3012 right hand side, we call this @dfn{left recursion}. By contrast, here
3013 the same construct is defined using @dfn{right recursion}:
3014
3015 @example
3016 @group
3017 expseq1: exp
3018 | exp ',' expseq1
3019 ;
3020 @end group
3021 @end example
3022
3023 @noindent
3024 Any kind of sequence can be defined using either left recursion or right
3025 recursion, but you should always use left recursion, because it can
3026 parse a sequence of any number of elements with bounded stack space.
3027 Right recursion uses up space on the Bison stack in proportion to the
3028 number of elements in the sequence, because all the elements must be
3029 shifted onto the stack before the rule can be applied even once.
3030 @xref{Algorithm, ,The Bison Parser Algorithm}, for further explanation
3031 of this.
3032
3033 @cindex mutual recursion
3034 @dfn{Indirect} or @dfn{mutual} recursion occurs when the result of the
3035 rule does not appear directly on its right hand side, but does appear
3036 in rules for other nonterminals which do appear on its right hand
3037 side.
3038
3039 For example:
3040
3041 @example
3042 @group
3043 expr: primary
3044 | primary '+' primary
3045 ;
3046 @end group
3047
3048 @group
3049 primary: constant
3050 | '(' expr ')'
3051 ;
3052 @end group
3053 @end example
3054
3055 @noindent
3056 defines two mutually-recursive nonterminals, since each refers to the
3057 other.
3058
3059 @node Semantics
3060 @section Defining Language Semantics
3061 @cindex defining language semantics
3062 @cindex language semantics, defining
3063
3064 The grammar rules for a language determine only the syntax. The semantics
3065 are determined by the semantic values associated with various tokens and
3066 groupings, and by the actions taken when various groupings are recognized.
3067
3068 For example, the calculator calculates properly because the value
3069 associated with each expression is the proper number; it adds properly
3070 because the action for the grouping @w{@samp{@var{x} + @var{y}}} is to add
3071 the numbers associated with @var{x} and @var{y}.
3072
3073 @menu
3074 * Value Type:: Specifying one data type for all semantic values.
3075 * Multiple Types:: Specifying several alternative data types.
3076 * Actions:: An action is the semantic definition of a grammar rule.
3077 * Action Types:: Specifying data types for actions to operate on.
3078 * Mid-Rule Actions:: Most actions go at the end of a rule.
3079 This says when, why and how to use the exceptional
3080 action in the middle of a rule.
3081 @end menu
3082
3083 @node Value Type
3084 @subsection Data Types of Semantic Values
3085 @cindex semantic value type
3086 @cindex value type, semantic
3087 @cindex data types of semantic values
3088 @cindex default data type
3089
3090 In a simple program it may be sufficient to use the same data type for
3091 the semantic values of all language constructs. This was true in the
3092 @acronym{RPN} and infix calculator examples (@pxref{RPN Calc, ,Reverse Polish
3093 Notation Calculator}).
3094
3095 Bison normally uses the type @code{int} for semantic values if your
3096 program uses the same data type for all language constructs. To
3097 specify some other type, define @code{YYSTYPE} as a macro, like this:
3098
3099 @example
3100 #define YYSTYPE double
3101 @end example
3102
3103 @noindent
3104 @code{YYSTYPE}'s replacement list should be a type name
3105 that does not contain parentheses or square brackets.
3106 This macro definition must go in the prologue of the grammar file
3107 (@pxref{Grammar Outline, ,Outline of a Bison Grammar}).
3108
3109 @node Multiple Types
3110 @subsection More Than One Value Type
3111
3112 In most programs, you will need different data types for different kinds
3113 of tokens and groupings. For example, a numeric constant may need type
3114 @code{int} or @code{long int}, while a string constant needs type
3115 @code{char *}, and an identifier might need a pointer to an entry in the
3116 symbol table.
3117
3118 To use more than one data type for semantic values in one parser, Bison
3119 requires you to do two things:
3120
3121 @itemize @bullet
3122 @item
3123 Specify the entire collection of possible data types, either by using the
3124 @code{%union} Bison declaration (@pxref{Union Decl, ,The Collection of
3125 Value Types}), or by using a @code{typedef} or a @code{#define} to
3126 define @code{YYSTYPE} to be a union type whose member names are
3127 the type tags.
3128
3129 @item
3130 Choose one of those types for each symbol (terminal or nonterminal) for
3131 which semantic values are used. This is done for tokens with the
3132 @code{%token} Bison declaration (@pxref{Token Decl, ,Token Type Names})
3133 and for groupings with the @code{%type} Bison declaration (@pxref{Type
3134 Decl, ,Nonterminal Symbols}).
3135 @end itemize
3136
3137 @node Actions
3138 @subsection Actions
3139 @cindex action
3140 @vindex $$
3141 @vindex $@var{n}
3142
3143 An action accompanies a syntactic rule and contains C code to be executed
3144 each time an instance of that rule is recognized. The task of most actions
3145 is to compute a semantic value for the grouping built by the rule from the
3146 semantic values associated with tokens or smaller groupings.
3147
3148 An action consists of braced code containing C statements, and can be
3149 placed at any position in the rule;
3150 it is executed at that position. Most rules have just one action at the
3151 end of the rule, following all the components. Actions in the middle of
3152 a rule are tricky and used only for special purposes (@pxref{Mid-Rule
3153 Actions, ,Actions in Mid-Rule}).
3154
3155 The C code in an action can refer to the semantic values of the components
3156 matched by the rule with the construct @code{$@var{n}}, which stands for
3157 the value of the @var{n}th component. The semantic value for the grouping
3158 being constructed is @code{$$}. Bison translates both of these
3159 constructs into expressions of the appropriate type when it copies the
3160 actions into the parser file. @code{$$} is translated to a modifiable
3161 lvalue, so it can be assigned to.
3162
3163 Here is a typical example:
3164
3165 @example
3166 @group
3167 exp: @dots{}
3168 | exp '+' exp
3169 @{ $$ = $1 + $3; @}
3170 @end group
3171 @end example
3172
3173 @noindent
3174 This rule constructs an @code{exp} from two smaller @code{exp} groupings
3175 connected by a plus-sign token. In the action, @code{$1} and @code{$3}
3176 refer to the semantic values of the two component @code{exp} groupings,
3177 which are the first and third symbols on the right hand side of the rule.
3178 The sum is stored into @code{$$} so that it becomes the semantic value of
3179 the addition-expression just recognized by the rule. If there were a
3180 useful semantic value associated with the @samp{+} token, it could be
3181 referred to as @code{$2}.
3182
3183 Note that the vertical-bar character @samp{|} is really a rule
3184 separator, and actions are attached to a single rule. This is a
3185 difference with tools like Flex, for which @samp{|} stands for either
3186 ``or'', or ``the same action as that of the next rule''. In the
3187 following example, the action is triggered only when @samp{b} is found:
3188
3189 @example
3190 @group
3191 a-or-b: 'a'|'b' @{ a_or_b_found = 1; @};
3192 @end group
3193 @end example
3194
3195 @cindex default action
3196 If you don't specify an action for a rule, Bison supplies a default:
3197 @w{@code{$$ = $1}.} Thus, the value of the first symbol in the rule
3198 becomes the value of the whole rule. Of course, the default action is
3199 valid only if the two data types match. There is no meaningful default
3200 action for an empty rule; every empty rule must have an explicit action
3201 unless the rule's value does not matter.
3202
3203 @code{$@var{n}} with @var{n} zero or negative is allowed for reference
3204 to tokens and groupings on the stack @emph{before} those that match the
3205 current rule. This is a very risky practice, and to use it reliably
3206 you must be certain of the context in which the rule is applied. Here
3207 is a case in which you can use this reliably:
3208
3209 @example
3210 @group
3211 foo: expr bar '+' expr @{ @dots{} @}
3212 | expr bar '-' expr @{ @dots{} @}
3213 ;
3214 @end group
3215
3216 @group
3217 bar: /* empty */
3218 @{ previous_expr = $0; @}
3219 ;
3220 @end group
3221 @end example
3222
3223 As long as @code{bar} is used only in the fashion shown here, @code{$0}
3224 always refers to the @code{expr} which precedes @code{bar} in the
3225 definition of @code{foo}.
3226
3227 @vindex yylval
3228 It is also possible to access the semantic value of the lookahead token, if
3229 any, from a semantic action.
3230 This semantic value is stored in @code{yylval}.
3231 @xref{Action Features, ,Special Features for Use in Actions}.
3232
3233 @node Action Types
3234 @subsection Data Types of Values in Actions
3235 @cindex action data types
3236 @cindex data types in actions
3237
3238 If you have chosen a single data type for semantic values, the @code{$$}
3239 and @code{$@var{n}} constructs always have that data type.
3240
3241 If you have used @code{%union} to specify a variety of data types, then you
3242 must declare a choice among these types for each terminal or nonterminal
3243 symbol that can have a semantic value. Then each time you use @code{$$} or
3244 @code{$@var{n}}, its data type is determined by which symbol it refers to
3245 in the rule. In this example,
3246
3247 @example
3248 @group
3249 exp: @dots{}
3250 | exp '+' exp
3251 @{ $$ = $1 + $3; @}
3252 @end group
3253 @end example
3254
3255 @noindent
3256 @code{$1} and @code{$3} refer to instances of @code{exp}, so they all
3257 have the data type declared for the nonterminal symbol @code{exp}. If
3258 @code{$2} were used, it would have the data type declared for the
3259 terminal symbol @code{'+'}, whatever that might be.
3260
3261 Alternatively, you can specify the data type when you refer to the value,
3262 by inserting @samp{<@var{type}>} after the @samp{$} at the beginning of the
3263 reference. For example, if you have defined types as shown here:
3264
3265 @example
3266 @group
3267 %union @{
3268 int itype;
3269 double dtype;
3270 @}
3271 @end group
3272 @end example
3273
3274 @noindent
3275 then you can write @code{$<itype>1} to refer to the first subunit of the
3276 rule as an integer, or @code{$<dtype>1} to refer to it as a double.
3277
3278 @node Mid-Rule Actions
3279 @subsection Actions in Mid-Rule
3280 @cindex actions in mid-rule
3281 @cindex mid-rule actions
3282
3283 Occasionally it is useful to put an action in the middle of a rule.
3284 These actions are written just like usual end-of-rule actions, but they
3285 are executed before the parser even recognizes the following components.
3286
3287 A mid-rule action may refer to the components preceding it using
3288 @code{$@var{n}}, but it may not refer to subsequent components because
3289 it is run before they are parsed.
3290
3291 The mid-rule action itself counts as one of the components of the rule.
3292 This makes a difference when there is another action later in the same rule
3293 (and usually there is another at the end): you have to count the actions
3294 along with the symbols when working out which number @var{n} to use in
3295 @code{$@var{n}}.
3296
3297 The mid-rule action can also have a semantic value. The action can set
3298 its value with an assignment to @code{$$}, and actions later in the rule
3299 can refer to the value using @code{$@var{n}}. Since there is no symbol
3300 to name the action, there is no way to declare a data type for the value
3301 in advance, so you must use the @samp{$<@dots{}>@var{n}} construct to
3302 specify a data type each time you refer to this value.
3303
3304 There is no way to set the value of the entire rule with a mid-rule
3305 action, because assignments to @code{$$} do not have that effect. The
3306 only way to set the value for the entire rule is with an ordinary action
3307 at the end of the rule.
3308
3309 Here is an example from a hypothetical compiler, handling a @code{let}
3310 statement that looks like @samp{let (@var{variable}) @var{statement}} and
3311 serves to create a variable named @var{variable} temporarily for the
3312 duration of @var{statement}. To parse this construct, we must put
3313 @var{variable} into the symbol table while @var{statement} is parsed, then
3314 remove it afterward. Here is how it is done:
3315
3316 @example
3317 @group
3318 stmt: LET '(' var ')'
3319 @{ $<context>$ = push_context ();
3320 declare_variable ($3); @}
3321 stmt @{ $$ = $6;
3322 pop_context ($<context>5); @}
3323 @end group
3324 @end example
3325
3326 @noindent
3327 As soon as @samp{let (@var{variable})} has been recognized, the first
3328 action is run. It saves a copy of the current semantic context (the
3329 list of accessible variables) as its semantic value, using alternative
3330 @code{context} in the data-type union. Then it calls
3331 @code{declare_variable} to add the new variable to that list. Once the
3332 first action is finished, the embedded statement @code{stmt} can be
3333 parsed. Note that the mid-rule action is component number 5, so the
3334 @samp{stmt} is component number 6.
3335
3336 After the embedded statement is parsed, its semantic value becomes the
3337 value of the entire @code{let}-statement. Then the semantic value from the
3338 earlier action is used to restore the prior list of variables. This
3339 removes the temporary @code{let}-variable from the list so that it won't
3340 appear to exist while the rest of the program is parsed.
3341
3342 @findex %destructor
3343 @cindex discarded symbols, mid-rule actions
3344 @cindex error recovery, mid-rule actions
3345 In the above example, if the parser initiates error recovery (@pxref{Error
3346 Recovery}) while parsing the tokens in the embedded statement @code{stmt},
3347 it might discard the previous semantic context @code{$<context>5} without
3348 restoring it.
3349 Thus, @code{$<context>5} needs a destructor (@pxref{Destructor Decl, , Freeing
3350 Discarded Symbols}).
3351 However, Bison currently provides no means to declare a destructor specific to
3352 a particular mid-rule action's semantic value.
3353
3354 One solution is to bury the mid-rule action inside a nonterminal symbol and to
3355 declare a destructor for that symbol:
3356
3357 @example
3358 @group
3359 %type <context> let
3360 %destructor @{ pop_context ($$); @} let
3361
3362 %%
3363
3364 stmt: let stmt
3365 @{ $$ = $2;
3366 pop_context ($1); @}
3367 ;
3368
3369 let: LET '(' var ')'
3370 @{ $$ = push_context ();
3371 declare_variable ($3); @}
3372 ;
3373
3374 @end group
3375 @end example
3376
3377 @noindent
3378 Note that the action is now at the end of its rule.
3379 Any mid-rule action can be converted to an end-of-rule action in this way, and
3380 this is what Bison actually does to implement mid-rule actions.
3381
3382 Taking action before a rule is completely recognized often leads to
3383 conflicts since the parser must commit to a parse in order to execute the
3384 action. For example, the following two rules, without mid-rule actions,
3385 can coexist in a working parser because the parser can shift the open-brace
3386 token and look at what follows before deciding whether there is a
3387 declaration or not:
3388
3389 @example
3390 @group
3391 compound: '@{' declarations statements '@}'
3392 | '@{' statements '@}'
3393 ;
3394 @end group
3395 @end example
3396
3397 @noindent
3398 But when we add a mid-rule action as follows, the rules become nonfunctional:
3399
3400 @example
3401 @group
3402 compound: @{ prepare_for_local_variables (); @}
3403 '@{' declarations statements '@}'
3404 @end group
3405 @group
3406 | '@{' statements '@}'
3407 ;
3408 @end group
3409 @end example
3410
3411 @noindent
3412 Now the parser is forced to decide whether to run the mid-rule action
3413 when it has read no farther than the open-brace. In other words, it
3414 must commit to using one rule or the other, without sufficient
3415 information to do it correctly. (The open-brace token is what is called
3416 the @dfn{lookahead} token at this time, since the parser is still
3417 deciding what to do about it. @xref{Lookahead, ,Lookahead Tokens}.)
3418
3419 You might think that you could correct the problem by putting identical
3420 actions into the two rules, like this:
3421
3422 @example
3423 @group
3424 compound: @{ prepare_for_local_variables (); @}
3425 '@{' declarations statements '@}'
3426 | @{ prepare_for_local_variables (); @}
3427 '@{' statements '@}'
3428 ;
3429 @end group
3430 @end example
3431
3432 @noindent
3433 But this does not help, because Bison does not realize that the two actions
3434 are identical. (Bison never tries to understand the C code in an action.)
3435
3436 If the grammar is such that a declaration can be distinguished from a
3437 statement by the first token (which is true in C), then one solution which
3438 does work is to put the action after the open-brace, like this:
3439
3440 @example
3441 @group
3442 compound: '@{' @{ prepare_for_local_variables (); @}
3443 declarations statements '@}'
3444 | '@{' statements '@}'
3445 ;
3446 @end group
3447 @end example
3448
3449 @noindent
3450 Now the first token of the following declaration or statement,
3451 which would in any case tell Bison which rule to use, can still do so.
3452
3453 Another solution is to bury the action inside a nonterminal symbol which
3454 serves as a subroutine:
3455
3456 @example
3457 @group
3458 subroutine: /* empty */
3459 @{ prepare_for_local_variables (); @}
3460 ;
3461
3462 @end group
3463
3464 @group
3465 compound: subroutine
3466 '@{' declarations statements '@}'
3467 | subroutine
3468 '@{' statements '@}'
3469 ;
3470 @end group
3471 @end example
3472
3473 @noindent
3474 Now Bison can execute the action in the rule for @code{subroutine} without
3475 deciding which rule for @code{compound} it will eventually use.
3476
3477 @node Locations
3478 @section Tracking Locations
3479 @cindex location
3480 @cindex textual location
3481 @cindex location, textual
3482
3483 Though grammar rules and semantic actions are enough to write a fully
3484 functional parser, it can be useful to process some additional information,
3485 especially symbol locations.
3486
3487 The way locations are handled is defined by providing a data type, and
3488 actions to take when rules are matched.
3489
3490 @menu
3491 * Location Type:: Specifying a data type for locations.
3492 * Actions and Locations:: Using locations in actions.
3493 * Location Default Action:: Defining a general way to compute locations.
3494 @end menu
3495
3496 @node Location Type
3497 @subsection Data Type of Locations
3498 @cindex data type of locations
3499 @cindex default location type
3500
3501 Defining a data type for locations is much simpler than for semantic values,
3502 since all tokens and groupings always use the same type.
3503
3504 You can specify the type of locations by defining a macro called
3505 @code{YYLTYPE}, just as you can specify the semantic value type by
3506 defining a @code{YYSTYPE} macro (@pxref{Value Type}).
3507 When @code{YYLTYPE} is not defined, Bison uses a default structure type with
3508 four members:
3509
3510 @example
3511 typedef struct YYLTYPE
3512 @{
3513 int first_line;
3514 int first_column;
3515 int last_line;
3516 int last_column;
3517 @} YYLTYPE;
3518 @end example
3519
3520 At the beginning of the parsing, Bison initializes all these fields to 1
3521 for @code{yylloc}.
3522
3523 @node Actions and Locations
3524 @subsection Actions and Locations
3525 @cindex location actions
3526 @cindex actions, location
3527 @vindex @@$
3528 @vindex @@@var{n}
3529
3530 Actions are not only useful for defining language semantics, but also for
3531 describing the behavior of the output parser with locations.
3532
3533 The most obvious way for building locations of syntactic groupings is very
3534 similar to the way semantic values are computed. In a given rule, several
3535 constructs can be used to access the locations of the elements being matched.
3536 The location of the @var{n}th component of the right hand side is
3537 @code{@@@var{n}}, while the location of the left hand side grouping is
3538 @code{@@$}.
3539
3540 Here is a basic example using the default data type for locations:
3541
3542 @example
3543 @group
3544 exp: @dots{}
3545 | exp '/' exp
3546 @{
3547 @@$.first_column = @@1.first_column;
3548 @@$.first_line = @@1.first_line;
3549 @@$.last_column = @@3.last_column;
3550 @@$.last_line = @@3.last_line;
3551 if ($3)
3552 $$ = $1 / $3;
3553 else
3554 @{
3555 $$ = 1;
3556 fprintf (stderr,
3557 "Division by zero, l%d,c%d-l%d,c%d",
3558 @@3.first_line, @@3.first_column,
3559 @@3.last_line, @@3.last_column);
3560 @}
3561 @}
3562 @end group
3563 @end example
3564
3565 As for semantic values, there is a default action for locations that is
3566 run each time a rule is matched. It sets the beginning of @code{@@$} to the
3567 beginning of the first symbol, and the end of @code{@@$} to the end of the
3568 last symbol.
3569
3570 With this default action, the location tracking can be fully automatic. The
3571 example above simply rewrites this way:
3572
3573 @example
3574 @group
3575 exp: @dots{}
3576 | exp '/' exp
3577 @{
3578 if ($3)
3579 $$ = $1 / $3;
3580 else
3581 @{
3582 $$ = 1;
3583 fprintf (stderr,
3584 "Division by zero, l%d,c%d-l%d,c%d",
3585 @@3.first_line, @@3.first_column,
3586 @@3.last_line, @@3.last_column);
3587 @}
3588 @}
3589 @end group
3590 @end example
3591
3592 @vindex yylloc
3593 It is also possible to access the location of the lookahead token, if any,
3594 from a semantic action.
3595 This location is stored in @code{yylloc}.
3596 @xref{Action Features, ,Special Features for Use in Actions}.
3597
3598 @node Location Default Action
3599 @subsection Default Action for Locations
3600 @vindex YYLLOC_DEFAULT
3601 @cindex @acronym{GLR} parsers and @code{YYLLOC_DEFAULT}
3602
3603 Actually, actions are not the best place to compute locations. Since
3604 locations are much more general than semantic values, there is room in
3605 the output parser to redefine the default action to take for each
3606 rule. The @code{YYLLOC_DEFAULT} macro is invoked each time a rule is
3607 matched, before the associated action is run. It is also invoked
3608 while processing a syntax error, to compute the error's location.
3609 Before reporting an unresolvable syntactic ambiguity, a @acronym{GLR}
3610 parser invokes @code{YYLLOC_DEFAULT} recursively to compute the location
3611 of that ambiguity.
3612
3613 Most of the time, this macro is general enough to suppress location
3614 dedicated code from semantic actions.
3615
3616 The @code{YYLLOC_DEFAULT} macro takes three parameters. The first one is
3617 the location of the grouping (the result of the computation). When a
3618 rule is matched, the second parameter identifies locations of
3619 all right hand side elements of the rule being matched, and the third
3620 parameter is the size of the rule's right hand side.
3621 When a @acronym{GLR} parser reports an ambiguity, which of multiple candidate
3622 right hand sides it passes to @code{YYLLOC_DEFAULT} is undefined.
3623 When processing a syntax error, the second parameter identifies locations
3624 of the symbols that were discarded during error processing, and the third
3625 parameter is the number of discarded symbols.
3626
3627 By default, @code{YYLLOC_DEFAULT} is defined this way:
3628
3629 @smallexample
3630 @group
3631 # define YYLLOC_DEFAULT(Current, Rhs, N) \
3632 do \
3633 if (N) \
3634 @{ \
3635 (Current).first_line = YYRHSLOC(Rhs, 1).first_line; \
3636 (Current).first_column = YYRHSLOC(Rhs, 1).first_column; \
3637 (Current).last_line = YYRHSLOC(Rhs, N).last_line; \
3638 (Current).last_column = YYRHSLOC(Rhs, N).last_column; \
3639 @} \
3640 else \
3641 @{ \
3642 (Current).first_line = (Current).last_line = \
3643 YYRHSLOC(Rhs, 0).last_line; \
3644 (Current).first_column = (Current).last_column = \
3645 YYRHSLOC(Rhs, 0).last_column; \
3646 @} \
3647 while (0)
3648 @end group
3649 @end smallexample
3650
3651 where @code{YYRHSLOC (rhs, k)} is the location of the @var{k}th symbol
3652 in @var{rhs} when @var{k} is positive, and the location of the symbol
3653 just before the reduction when @var{k} and @var{n} are both zero.
3654
3655 When defining @code{YYLLOC_DEFAULT}, you should consider that:
3656
3657 @itemize @bullet
3658 @item
3659 All arguments are free of side-effects. However, only the first one (the
3660 result) should be modified by @code{YYLLOC_DEFAULT}.
3661
3662 @item
3663 For consistency with semantic actions, valid indexes within the
3664 right hand side range from 1 to @var{n}. When @var{n} is zero, only 0 is a
3665 valid index, and it refers to the symbol just before the reduction.
3666 During error processing @var{n} is always positive.
3667
3668 @item
3669 Your macro should parenthesize its arguments, if need be, since the
3670 actual arguments may not be surrounded by parentheses. Also, your
3671 macro should expand to something that can be used as a single
3672 statement when it is followed by a semicolon.
3673 @end itemize
3674
3675 @node Declarations
3676 @section Bison Declarations
3677 @cindex declarations, Bison
3678 @cindex Bison declarations
3679
3680 The @dfn{Bison declarations} section of a Bison grammar defines the symbols
3681 used in formulating the grammar and the data types of semantic values.
3682 @xref{Symbols}.
3683
3684 All token type names (but not single-character literal tokens such as
3685 @code{'+'} and @code{'*'}) must be declared. Nonterminal symbols must be
3686 declared if you need to specify which data type to use for the semantic
3687 value (@pxref{Multiple Types, ,More Than One Value Type}).
3688
3689 The first rule in the file also specifies the start symbol, by default.
3690 If you want some other symbol to be the start symbol, you must declare
3691 it explicitly (@pxref{Language and Grammar, ,Languages and Context-Free
3692 Grammars}).
3693
3694 @menu
3695 * Require Decl:: Requiring a Bison version.
3696 * Token Decl:: Declaring terminal symbols.
3697 * Precedence Decl:: Declaring terminals with precedence and associativity.
3698 * Union Decl:: Declaring the set of all semantic value types.
3699 * Type Decl:: Declaring the choice of type for a nonterminal symbol.
3700 * Initial Action Decl:: Code run before parsing starts.
3701 * Destructor Decl:: Declaring how symbols are freed.
3702 * Expect Decl:: Suppressing warnings about parsing conflicts.
3703 * Start Decl:: Specifying the start symbol.
3704 * Pure Decl:: Requesting a reentrant parser.
3705 * Decl Summary:: Table of all Bison declarations.
3706 @end menu
3707
3708 @node Require Decl
3709 @subsection Require a Version of Bison
3710 @cindex version requirement
3711 @cindex requiring a version of Bison
3712 @findex %require
3713
3714 You may require the minimum version of Bison to process the grammar. If
3715 the requirement is not met, @command{bison} exits with an error (exit
3716 status 63).
3717
3718 @example
3719 %require "@var{version}"
3720 @end example
3721
3722 @node Token Decl
3723 @subsection Token Type Names
3724 @cindex declaring token type names
3725 @cindex token type names, declaring
3726 @cindex declaring literal string tokens
3727 @findex %token
3728
3729 The basic way to declare a token type name (terminal symbol) is as follows:
3730
3731 @example
3732 %token @var{name}
3733 @end example
3734
3735 Bison will convert this into a @code{#define} directive in
3736 the parser, so that the function @code{yylex} (if it is in this file)
3737 can use the name @var{name} to stand for this token type's code.
3738
3739 Alternatively, you can use @code{%left}, @code{%right}, or
3740 @code{%nonassoc} instead of @code{%token}, if you wish to specify
3741 associativity and precedence. @xref{Precedence Decl, ,Operator
3742 Precedence}.
3743
3744 You can explicitly specify the numeric code for a token type by appending
3745 a decimal or hexadecimal integer value in the field immediately
3746 following the token name:
3747
3748 @example
3749 %token NUM 300
3750 %token XNUM 0x12d // a GNU extension
3751 @end example
3752
3753 @noindent
3754 It is generally best, however, to let Bison choose the numeric codes for
3755 all token types. Bison will automatically select codes that don't conflict
3756 with each other or with normal characters.
3757
3758 In the event that the stack type is a union, you must augment the
3759 @code{%token} or other token declaration to include the data type
3760 alternative delimited by angle-brackets (@pxref{Multiple Types, ,More
3761 Than One Value Type}).
3762
3763 For example:
3764
3765 @example
3766 @group
3767 %union @{ /* define stack type */
3768 double val;
3769 symrec *tptr;
3770 @}
3771 %token <val> NUM /* define token NUM and its type */
3772 @end group
3773 @end example
3774
3775 You can associate a literal string token with a token type name by
3776 writing the literal string at the end of a @code{%token}
3777 declaration which declares the name. For example:
3778
3779 @example
3780 %token arrow "=>"
3781 @end example
3782
3783 @noindent
3784 For example, a grammar for the C language might specify these names with
3785 equivalent literal string tokens:
3786
3787 @example
3788 %token <operator> OR "||"
3789 %token <operator> LE 134 "<="
3790 %left OR "<="
3791 @end example
3792
3793 @noindent
3794 Once you equate the literal string and the token name, you can use them
3795 interchangeably in further declarations or the grammar rules. The
3796 @code{yylex} function can use the token name or the literal string to
3797 obtain the token type code number (@pxref{Calling Convention}).
3798
3799 @node Precedence Decl
3800 @subsection Operator Precedence
3801 @cindex precedence declarations
3802 @cindex declaring operator precedence
3803 @cindex operator precedence, declaring
3804
3805 Use the @code{%left}, @code{%right} or @code{%nonassoc} declaration to
3806 declare a token and specify its precedence and associativity, all at
3807 once. These are called @dfn{precedence declarations}.
3808 @xref{Precedence, ,Operator Precedence}, for general information on
3809 operator precedence.
3810
3811 The syntax of a precedence declaration is the same as that of
3812 @code{%token}: either
3813
3814 @example
3815 %left @var{symbols}@dots{}
3816 @end example
3817
3818 @noindent
3819 or
3820
3821 @example
3822 %left <@var{type}> @var{symbols}@dots{}
3823 @end example
3824
3825 And indeed any of these declarations serves the purposes of @code{%token}.
3826 But in addition, they specify the associativity and relative precedence for
3827 all the @var{symbols}:
3828
3829 @itemize @bullet
3830 @item
3831 The associativity of an operator @var{op} determines how repeated uses
3832 of the operator nest: whether @samp{@var{x} @var{op} @var{y} @var{op}
3833 @var{z}} is parsed by grouping @var{x} with @var{y} first or by
3834 grouping @var{y} with @var{z} first. @code{%left} specifies
3835 left-associativity (grouping @var{x} with @var{y} first) and
3836 @code{%right} specifies right-associativity (grouping @var{y} with
3837 @var{z} first). @code{%nonassoc} specifies no associativity, which
3838 means that @samp{@var{x} @var{op} @var{y} @var{op} @var{z}} is
3839 considered a syntax error.
3840
3841 @item
3842 The precedence of an operator determines how it nests with other operators.
3843 All the tokens declared in a single precedence declaration have equal
3844 precedence and nest together according to their associativity.
3845 When two tokens declared in different precedence declarations associate,
3846 the one declared later has the higher precedence and is grouped first.
3847 @end itemize
3848
3849 @node Union Decl
3850 @subsection The Collection of Value Types
3851 @cindex declaring value types
3852 @cindex value types, declaring
3853 @findex %union
3854
3855 The @code{%union} declaration specifies the entire collection of
3856 possible data types for semantic values. The keyword @code{%union} is
3857 followed by braced code containing the same thing that goes inside a
3858 @code{union} in C@.
3859
3860 For example:
3861
3862 @example
3863 @group
3864 %union @{
3865 double val;
3866 symrec *tptr;
3867 @}
3868 @end group
3869 @end example
3870
3871 @noindent
3872 This says that the two alternative types are @code{double} and @code{symrec
3873 *}. They are given names @code{val} and @code{tptr}; these names are used
3874 in the @code{%token} and @code{%type} declarations to pick one of the types
3875 for a terminal or nonterminal symbol (@pxref{Type Decl, ,Nonterminal Symbols}).
3876
3877 As an extension to @acronym{POSIX}, a tag is allowed after the
3878 @code{union}. For example:
3879
3880 @example
3881 @group
3882 %union value @{
3883 double val;
3884 symrec *tptr;
3885 @}
3886 @end group
3887 @end example
3888
3889 @noindent
3890 specifies the union tag @code{value}, so the corresponding C type is
3891 @code{union value}. If you do not specify a tag, it defaults to
3892 @code{YYSTYPE}.
3893
3894 As another extension to @acronym{POSIX}, you may specify multiple
3895 @code{%union} declarations; their contents are concatenated. However,
3896 only the first @code{%union} declaration can specify a tag.
3897
3898 Note that, unlike making a @code{union} declaration in C, you need not write
3899 a semicolon after the closing brace.
3900
3901 Instead of @code{%union}, you can define and use your own union type
3902 @code{YYSTYPE} if your grammar contains at least one
3903 @samp{<@var{type}>} tag. For example, you can put the following into
3904 a header file @file{parser.h}:
3905
3906 @example
3907 @group
3908 union YYSTYPE @{
3909 double val;
3910 symrec *tptr;
3911 @};
3912 typedef union YYSTYPE YYSTYPE;
3913 @end group
3914 @end example
3915
3916 @noindent
3917 and then your grammar can use the following
3918 instead of @code{%union}:
3919
3920 @example
3921 @group
3922 %@{
3923 #include "parser.h"
3924 %@}
3925 %type <val> expr
3926 %token <tptr> ID
3927 @end group
3928 @end example
3929
3930 @node Type Decl
3931 @subsection Nonterminal Symbols
3932 @cindex declaring value types, nonterminals
3933 @cindex value types, nonterminals, declaring
3934 @findex %type
3935
3936 @noindent
3937 When you use @code{%union} to specify multiple value types, you must
3938 declare the value type of each nonterminal symbol for which values are
3939 used. This is done with a @code{%type} declaration, like this:
3940
3941 @example
3942 %type <@var{type}> @var{nonterminal}@dots{}
3943 @end example
3944
3945 @noindent
3946 Here @var{nonterminal} is the name of a nonterminal symbol, and
3947 @var{type} is the name given in the @code{%union} to the alternative
3948 that you want (@pxref{Union Decl, ,The Collection of Value Types}). You
3949 can give any number of nonterminal symbols in the same @code{%type}
3950 declaration, if they have the same value type. Use spaces to separate
3951 the symbol names.
3952
3953 You can also declare the value type of a terminal symbol. To do this,
3954 use the same @code{<@var{type}>} construction in a declaration for the
3955 terminal symbol. All kinds of token declarations allow
3956 @code{<@var{type}>}.
3957
3958 @node Initial Action Decl
3959 @subsection Performing Actions before Parsing
3960 @findex %initial-action
3961
3962 Sometimes your parser needs to perform some initializations before
3963 parsing. The @code{%initial-action} directive allows for such arbitrary
3964 code.
3965
3966 @deffn {Directive} %initial-action @{ @var{code} @}
3967 @findex %initial-action
3968 Declare that the braced @var{code} must be invoked before parsing each time
3969 @code{yyparse} is called. The @var{code} may use @code{$$} and
3970 @code{@@$} --- initial value and location of the lookahead --- and the
3971 @code{%parse-param}.
3972 @end deffn
3973
3974 For instance, if your locations use a file name, you may use
3975
3976 @example
3977 %parse-param @{ char const *file_name @};
3978 %initial-action
3979 @{
3980 @@$.initialize (file_name);
3981 @};
3982 @end example
3983
3984
3985 @node Destructor Decl
3986 @subsection Freeing Discarded Symbols
3987 @cindex freeing discarded symbols
3988 @findex %destructor
3989 @findex %symbol-default
3990
3991 During error recovery (@pxref{Error Recovery}), symbols already pushed
3992 on the stack and tokens coming from the rest of the file are discarded
3993 until the parser falls on its feet. If the parser runs out of memory,
3994 or if it returns via @code{YYABORT} or @code{YYACCEPT}, all the
3995 symbols on the stack must be discarded. Even if the parser succeeds, it
3996 must discard the start symbol.
3997
3998 When discarded symbols convey heap based information, this memory is
3999 lost. While this behavior can be tolerable for batch parsers, such as
4000 in traditional compilers, it is unacceptable for programs like shells or
4001 protocol implementations that may parse and execute indefinitely.
4002
4003 The @code{%destructor} directive defines code that is called when a
4004 symbol is automatically discarded.
4005
4006 @deffn {Directive} %destructor @{ @var{code} @} @var{symbols}
4007 @findex %destructor
4008 Invoke the braced @var{code} whenever the parser discards one of the
4009 @var{symbols}.
4010 Within @var{code}, @code{$$} designates the semantic value associated
4011 with the discarded symbol, and @code{@@$} designates its location.
4012 The additional parser parameters are also available (@pxref{Parser Function, ,
4013 The Parser Function @code{yyparse}}).
4014 @end deffn
4015
4016 @deffn {Directive} %destructor @{ @var{code} @} %symbol-default
4017 @cindex default %destructor
4018 @findex %symbol-default
4019 Invoke the braced @var{code} whenever the parser discards any user-defined
4020 grammar symbol for which the user has not specifically declared any
4021 @code{%destructor}.
4022 This is known as the default @code{%destructor}.
4023 As in the previous form, @code{$$}, @code{@@$}, and the additional parser
4024 parameters are available.
4025 @end deffn
4026
4027 For instance:
4028
4029 @smallexample
4030 %union @{ char *string; @}
4031 %token <string> STRING1
4032 %token <string> STRING2
4033 %type <string> string1
4034 %type <string> string2
4035 %destructor @{ free ($$); @} %symbol-default
4036 %destructor @{ free ($$); printf ("%d", @@$.first_line); @} STRING1 string1
4037 @end smallexample
4038
4039 @noindent
4040 guarantees that, when the parser discards any user-defined symbol, it passes
4041 its semantic value to @code{free}.
4042 However, when the parser discards a @code{STRING1} or a @code{string1}, it also
4043 prints its line number to @code{stdout}.
4044 It performs only the second @code{%destructor} in this case, so it invokes
4045 @code{free} only once.
4046
4047 Notice that a Bison-generated parser invokes the default @code{%destructor}
4048 only for user-defined as opposed to Bison-defined symbols.
4049 For example, the parser will not invoke it for the special Bison-defined
4050 symbols @code{$accept}, @code{$undefined}, or @code{$end} (@pxref{Table of
4051 Symbols, ,Bison Symbols}), none of which you can reference in your grammar.
4052 It also will not invoke it for the @code{error} token (@pxref{Table of Symbols,
4053 ,error}), which is always defined by Bison regardless of whether you reference
4054 it in your grammar.
4055 However, it will invoke it for the end token (token 0) if you redefine it from
4056 @code{$end} to, for example, @code{END}:
4057
4058 @smallexample
4059 %token END 0
4060 @end smallexample
4061
4062 @ignore
4063 @noindent
4064 In the future, it may be possible to redefine the @code{error} token as a
4065 nonterminal that captures the discarded symbols.
4066 In that case, the parser will invoke the default destructor for it as well.
4067 @end ignore
4068
4069 @sp 1
4070
4071 @cindex discarded symbols
4072 @dfn{Discarded symbols} are the following:
4073
4074 @itemize
4075 @item
4076 stacked symbols popped during the first phase of error recovery,
4077 @item
4078 incoming terminals during the second phase of error recovery,
4079 @item
4080 the current lookahead and the entire stack (except the current
4081 right-hand side symbols) when the parser returns immediately, and
4082 @item
4083 the start symbol, when the parser succeeds.
4084 @end itemize
4085
4086 The parser can @dfn{return immediately} because of an explicit call to
4087 @code{YYABORT} or @code{YYACCEPT}, or failed error recovery, or memory
4088 exhaustion.
4089
4090 Right-hand size symbols of a rule that explicitly triggers a syntax
4091 error via @code{YYERROR} are not discarded automatically. As a rule
4092 of thumb, destructors are invoked only when user actions cannot manage
4093 the memory.
4094
4095 @node Expect Decl
4096 @subsection Suppressing Conflict Warnings
4097 @cindex suppressing conflict warnings
4098 @cindex preventing warnings about conflicts
4099 @cindex warnings, preventing
4100 @cindex conflicts, suppressing warnings of
4101 @findex %expect
4102 @findex %expect-rr
4103
4104 Bison normally warns if there are any conflicts in the grammar
4105 (@pxref{Shift/Reduce, ,Shift/Reduce Conflicts}), but most real grammars
4106 have harmless shift/reduce conflicts which are resolved in a predictable
4107 way and would be difficult to eliminate. It is desirable to suppress
4108 the warning about these conflicts unless the number of conflicts
4109 changes. You can do this with the @code{%expect} declaration.
4110
4111 The declaration looks like this:
4112
4113 @example
4114 %expect @var{n}
4115 @end example
4116
4117 Here @var{n} is a decimal integer. The declaration says there should
4118 be @var{n} shift/reduce conflicts and no reduce/reduce conflicts.
4119 Bison reports an error if the number of shift/reduce conflicts differs
4120 from @var{n}, or if there are any reduce/reduce conflicts.
4121
4122 For normal @acronym{LALR}(1) parsers, reduce/reduce conflicts are more
4123 serious, and should be eliminated entirely. Bison will always report
4124 reduce/reduce conflicts for these parsers. With @acronym{GLR}
4125 parsers, however, both kinds of conflicts are routine; otherwise,
4126 there would be no need to use @acronym{GLR} parsing. Therefore, it is
4127 also possible to specify an expected number of reduce/reduce conflicts
4128 in @acronym{GLR} parsers, using the declaration:
4129
4130 @example
4131 %expect-rr @var{n}
4132 @end example
4133
4134 In general, using @code{%expect} involves these steps:
4135
4136 @itemize @bullet
4137 @item
4138 Compile your grammar without @code{%expect}. Use the @samp{-v} option
4139 to get a verbose list of where the conflicts occur. Bison will also
4140 print the number of conflicts.
4141
4142 @item
4143 Check each of the conflicts to make sure that Bison's default
4144 resolution is what you really want. If not, rewrite the grammar and
4145 go back to the beginning.
4146
4147 @item
4148 Add an @code{%expect} declaration, copying the number @var{n} from the
4149 number which Bison printed. With @acronym{GLR} parsers, add an
4150 @code{%expect-rr} declaration as well.
4151 @end itemize
4152
4153 Now Bison will warn you if you introduce an unexpected conflict, but
4154 will keep silent otherwise.
4155
4156 @node Start Decl
4157 @subsection The Start-Symbol
4158 @cindex declaring the start symbol
4159 @cindex start symbol, declaring
4160 @cindex default start symbol
4161 @findex %start
4162
4163 Bison assumes by default that the start symbol for the grammar is the first
4164 nonterminal specified in the grammar specification section. The programmer
4165 may override this restriction with the @code{%start} declaration as follows:
4166
4167 @example
4168 %start @var{symbol}
4169 @end example
4170
4171 @node Pure Decl
4172 @subsection A Pure (Reentrant) Parser
4173 @cindex reentrant parser
4174 @cindex pure parser
4175 @findex %pure-parser
4176
4177 A @dfn{reentrant} program is one which does not alter in the course of
4178 execution; in other words, it consists entirely of @dfn{pure} (read-only)
4179 code. Reentrancy is important whenever asynchronous execution is possible;
4180 for example, a nonreentrant program may not be safe to call from a signal
4181 handler. In systems with multiple threads of control, a nonreentrant
4182 program must be called only within interlocks.
4183
4184 Normally, Bison generates a parser which is not reentrant. This is
4185 suitable for most uses, and it permits compatibility with Yacc. (The
4186 standard Yacc interfaces are inherently nonreentrant, because they use
4187 statically allocated variables for communication with @code{yylex},
4188 including @code{yylval} and @code{yylloc}.)
4189
4190 Alternatively, you can generate a pure, reentrant parser. The Bison
4191 declaration @code{%pure-parser} says that you want the parser to be
4192 reentrant. It looks like this:
4193
4194 @example
4195 %pure-parser
4196 @end example
4197
4198 The result is that the communication variables @code{yylval} and
4199 @code{yylloc} become local variables in @code{yyparse}, and a different
4200 calling convention is used for the lexical analyzer function
4201 @code{yylex}. @xref{Pure Calling, ,Calling Conventions for Pure
4202 Parsers}, for the details of this. The variable @code{yynerrs} also
4203 becomes local in @code{yyparse} (@pxref{Error Reporting, ,The Error
4204 Reporting Function @code{yyerror}}). The convention for calling
4205 @code{yyparse} itself is unchanged.
4206
4207 Whether the parser is pure has nothing to do with the grammar rules.
4208 You can generate either a pure parser or a nonreentrant parser from any
4209 valid grammar.
4210
4211 @node Decl Summary
4212 @subsection Bison Declaration Summary
4213 @cindex Bison declaration summary
4214 @cindex declaration summary
4215 @cindex summary, Bison declaration
4216
4217 Here is a summary of the declarations used to define a grammar:
4218
4219 @deffn {Directive} %union
4220 Declare the collection of data types that semantic values may have
4221 (@pxref{Union Decl, ,The Collection of Value Types}).
4222 @end deffn
4223
4224 @deffn {Directive} %token
4225 Declare a terminal symbol (token type name) with no precedence
4226 or associativity specified (@pxref{Token Decl, ,Token Type Names}).
4227 @end deffn
4228
4229 @deffn {Directive} %right
4230 Declare a terminal symbol (token type name) that is right-associative
4231 (@pxref{Precedence Decl, ,Operator Precedence}).
4232 @end deffn
4233
4234 @deffn {Directive} %left
4235 Declare a terminal symbol (token type name) that is left-associative
4236 (@pxref{Precedence Decl, ,Operator Precedence}).
4237 @end deffn
4238
4239 @deffn {Directive} %nonassoc
4240 Declare a terminal symbol (token type name) that is nonassociative
4241 (@pxref{Precedence Decl, ,Operator Precedence}).
4242 Using it in a way that would be associative is a syntax error.
4243 @end deffn
4244
4245 @ifset defaultprec
4246 @deffn {Directive} %default-prec
4247 Assign a precedence to rules lacking an explicit @code{%prec} modifier
4248 (@pxref{Contextual Precedence, ,Context-Dependent Precedence}).
4249 @end deffn
4250 @end ifset
4251
4252 @deffn {Directive} %type
4253 Declare the type of semantic values for a nonterminal symbol
4254 (@pxref{Type Decl, ,Nonterminal Symbols}).
4255 @end deffn
4256
4257 @deffn {Directive} %start
4258 Specify the grammar's start symbol (@pxref{Start Decl, ,The
4259 Start-Symbol}).
4260 @end deffn
4261
4262 @deffn {Directive} %expect
4263 Declare the expected number of shift-reduce conflicts
4264 (@pxref{Expect Decl, ,Suppressing Conflict Warnings}).
4265 @end deffn
4266
4267
4268 @sp 1
4269 @noindent
4270 In order to change the behavior of @command{bison}, use the following
4271 directives:
4272
4273 @deffn {Directive} %debug
4274 In the parser file, define the macro @code{YYDEBUG} to 1 if it is not
4275 already defined, so that the debugging facilities are compiled.
4276 @end deffn
4277 @xref{Tracing, ,Tracing Your Parser}.
4278
4279 @deffn {Directive} %defines
4280 Write a header file containing macro definitions for the token type
4281 names defined in the grammar as well as a few other declarations.
4282 If the parser output file is named @file{@var{name}.c} then this file
4283 is named @file{@var{name}.h}.
4284
4285 For C parsers, the output header declares @code{YYSTYPE} unless
4286 @code{YYSTYPE} is already defined as a macro or you have used a
4287 @code{<@var{type}>} tag without using @code{%union}.
4288 Therefore, if you are using a @code{%union}
4289 (@pxref{Multiple Types, ,More Than One Value Type}) with components that
4290 require other definitions, or if you have defined a @code{YYSTYPE} macro
4291 or type definition
4292 (@pxref{Value Type, ,Data Types of Semantic Values}), you need to
4293 arrange for these definitions to be propagated to all modules, e.g., by
4294 putting them in a prerequisite header that is included both by your
4295 parser and by any other module that needs @code{YYSTYPE}.
4296
4297 Unless your parser is pure, the output header declares @code{yylval}
4298 as an external variable. @xref{Pure Decl, ,A Pure (Reentrant)
4299 Parser}.
4300
4301 If you have also used locations, the output header declares
4302 @code{YYLTYPE} and @code{yylloc} using a protocol similar to that of
4303 the @code{YYSTYPE} macro and @code{yylval}. @xref{Locations, ,Tracking
4304 Locations}.
4305
4306 This output file is normally essential if you wish to put the definition
4307 of @code{yylex} in a separate source file, because @code{yylex}
4308 typically needs to be able to refer to the above-mentioned declarations
4309 and to the token type codes. @xref{Token Values, ,Semantic Values of
4310 Tokens}.
4311
4312 @findex %start-header
4313 @findex %end-header
4314 If you have declared @code{%start-header} or @code{%end-header}, the output
4315 header also contains their code.
4316 @xref{Table of Symbols, ,%start-header}.
4317 @end deffn
4318
4319 @deffn {Directive} %destructor
4320 Specify how the parser should reclaim the memory associated to
4321 discarded symbols. @xref{Destructor Decl, , Freeing Discarded Symbols}.
4322 @end deffn
4323
4324 @deffn {Directive} %file-prefix="@var{prefix}"
4325 Specify a prefix to use for all Bison output file names. The names are
4326 chosen as if the input file were named @file{@var{prefix}.y}.
4327 @end deffn
4328
4329 @deffn {Directive} %locations
4330 Generate the code processing the locations (@pxref{Action Features,
4331 ,Special Features for Use in Actions}). This mode is enabled as soon as
4332 the grammar uses the special @samp{@@@var{n}} tokens, but if your
4333 grammar does not use it, using @samp{%locations} allows for more
4334 accurate syntax error messages.
4335 @end deffn
4336
4337 @deffn {Directive} %name-prefix="@var{prefix}"
4338 Rename the external symbols used in the parser so that they start with
4339 @var{prefix} instead of @samp{yy}. The precise list of symbols renamed
4340 in C parsers
4341 is @code{yyparse}, @code{yylex}, @code{yyerror}, @code{yynerrs},
4342 @code{yylval}, @code{yychar}, @code{yydebug}, and
4343 (if locations are used) @code{yylloc}. For example, if you use
4344 @samp{%name-prefix="c_"}, the names become @code{c_parse}, @code{c_lex},
4345 and so on. In C++ parsers, it is only the surrounding namespace which is
4346 named @var{prefix} instead of @samp{yy}.
4347 @xref{Multiple Parsers, ,Multiple Parsers in the Same Program}.
4348 @end deffn
4349
4350 @ifset defaultprec
4351 @deffn {Directive} %no-default-prec
4352 Do not assign a precedence to rules lacking an explicit @code{%prec}
4353 modifier (@pxref{Contextual Precedence, ,Context-Dependent
4354 Precedence}).
4355 @end deffn
4356 @end ifset
4357
4358 @deffn {Directive} %no-parser
4359 Do not include any C code in the parser file; generate tables only. The
4360 parser file contains just @code{#define} directives and static variable
4361 declarations.
4362
4363 This option also tells Bison to write the C code for the grammar actions
4364 into a file named @file{@var{file}.act}, in the form of a
4365 brace-surrounded body fit for a @code{switch} statement.
4366 @end deffn
4367
4368 @deffn {Directive} %no-lines
4369 Don't generate any @code{#line} preprocessor commands in the parser
4370 file. Ordinarily Bison writes these commands in the parser file so that
4371 the C compiler and debuggers will associate errors and object code with
4372 your source file (the grammar file). This directive causes them to
4373 associate errors with the parser file, treating it an independent source
4374 file in its own right.
4375 @end deffn
4376
4377 @deffn {Directive} %output="@var{file}"
4378 Specify @var{file} for the parser file.
4379 @end deffn
4380
4381 @deffn {Directive} %pure-parser
4382 Request a pure (reentrant) parser program (@pxref{Pure Decl, ,A Pure
4383 (Reentrant) Parser}).
4384 @end deffn
4385
4386 @deffn {Directive} %require "@var{version}"
4387 Require version @var{version} or higher of Bison. @xref{Require Decl, ,
4388 Require a Version of Bison}.
4389 @end deffn
4390
4391 @deffn {Directive} %token-table
4392 Generate an array of token names in the parser file. The name of the
4393 array is @code{yytname}; @code{yytname[@var{i}]} is the name of the
4394 token whose internal Bison token code number is @var{i}. The first
4395 three elements of @code{yytname} correspond to the predefined tokens
4396 @code{"$end"},
4397 @code{"error"}, and @code{"$undefined"}; after these come the symbols
4398 defined in the grammar file.
4399
4400 The name in the table includes all the characters needed to represent
4401 the token in Bison. For single-character literals and literal
4402 strings, this includes the surrounding quoting characters and any
4403 escape sequences. For example, the Bison single-character literal
4404 @code{'+'} corresponds to a three-character name, represented in C as
4405 @code{"'+'"}; and the Bison two-character literal string @code{"\\/"}
4406 corresponds to a five-character name, represented in C as
4407 @code{"\"\\\\/\""}.
4408
4409 When you specify @code{%token-table}, Bison also generates macro
4410 definitions for macros @code{YYNTOKENS}, @code{YYNNTS}, and
4411 @code{YYNRULES}, and @code{YYNSTATES}:
4412
4413 @table @code
4414 @item YYNTOKENS
4415 The highest token number, plus one.
4416 @item YYNNTS
4417 The number of nonterminal symbols.
4418 @item YYNRULES
4419 The number of grammar rules,
4420 @item YYNSTATES
4421 The number of parser states (@pxref{Parser States}).
4422 @end table
4423 @end deffn
4424
4425 @deffn {Directive} %verbose
4426 Write an extra output file containing verbose descriptions of the
4427 parser states and what is done for each type of lookahead token in
4428 that state. @xref{Understanding, , Understanding Your Parser}, for more
4429 information.
4430 @end deffn
4431
4432 @deffn {Directive} %yacc
4433 Pretend the option @option{--yacc} was given, i.e., imitate Yacc,
4434 including its naming conventions. @xref{Bison Options}, for more.
4435 @end deffn
4436
4437
4438 @node Multiple Parsers
4439 @section Multiple Parsers in the Same Program
4440
4441 Most programs that use Bison parse only one language and therefore contain
4442 only one Bison parser. But what if you want to parse more than one
4443 language with the same program? Then you need to avoid a name conflict
4444 between different definitions of @code{yyparse}, @code{yylval}, and so on.
4445
4446 The easy way to do this is to use the option @samp{-p @var{prefix}}
4447 (@pxref{Invocation, ,Invoking Bison}). This renames the interface
4448 functions and variables of the Bison parser to start with @var{prefix}
4449 instead of @samp{yy}. You can use this to give each parser distinct
4450 names that do not conflict.
4451
4452 The precise list of symbols renamed is @code{yyparse}, @code{yylex},
4453 @code{yyerror}, @code{yynerrs}, @code{yylval}, @code{yylloc},
4454 @code{yychar} and @code{yydebug}. For example, if you use @samp{-p c},
4455 the names become @code{cparse}, @code{clex}, and so on.
4456
4457 @strong{All the other variables and macros associated with Bison are not
4458 renamed.} These others are not global; there is no conflict if the same
4459 name is used in different parsers. For example, @code{YYSTYPE} is not
4460 renamed, but defining this in different ways in different parsers causes
4461 no trouble (@pxref{Value Type, ,Data Types of Semantic Values}).
4462
4463 The @samp{-p} option works by adding macro definitions to the beginning
4464 of the parser source file, defining @code{yyparse} as
4465 @code{@var{prefix}parse}, and so on. This effectively substitutes one
4466 name for the other in the entire parser file.
4467
4468 @node Interface
4469 @chapter Parser C-Language Interface
4470 @cindex C-language interface
4471 @cindex interface
4472
4473 The Bison parser is actually a C function named @code{yyparse}. Here we
4474 describe the interface conventions of @code{yyparse} and the other
4475 functions that it needs to use.
4476
4477 Keep in mind that the parser uses many C identifiers starting with
4478 @samp{yy} and @samp{YY} for internal purposes. If you use such an
4479 identifier (aside from those in this manual) in an action or in epilogue
4480 in the grammar file, you are likely to run into trouble.
4481
4482 @menu
4483 * Parser Function:: How to call @code{yyparse} and what it returns.
4484 * Lexical:: You must supply a function @code{yylex}
4485 which reads tokens.
4486 * Error Reporting:: You must supply a function @code{yyerror}.
4487 * Action Features:: Special features for use in actions.
4488 * Internationalization:: How to let the parser speak in the user's
4489 native language.
4490 @end menu
4491
4492 @node Parser Function
4493 @section The Parser Function @code{yyparse}
4494 @findex yyparse
4495
4496 You call the function @code{yyparse} to cause parsing to occur. This
4497 function reads tokens, executes actions, and ultimately returns when it
4498 encounters end-of-input or an unrecoverable syntax error. You can also
4499 write an action which directs @code{yyparse} to return immediately
4500 without reading further.
4501
4502
4503 @deftypefun int yyparse (void)
4504 The value returned by @code{yyparse} is 0 if parsing was successful (return
4505 is due to end-of-input).
4506
4507 The value is 1 if parsing failed because of invalid input, i.e., input
4508 that contains a syntax error or that causes @code{YYABORT} to be
4509 invoked.
4510
4511 The value is 2 if parsing failed due to memory exhaustion.
4512 @end deftypefun
4513
4514 In an action, you can cause immediate return from @code{yyparse} by using
4515 these macros:
4516
4517 @defmac YYACCEPT
4518 @findex YYACCEPT
4519 Return immediately with value 0 (to report success).
4520 @end defmac
4521
4522 @defmac YYABORT
4523 @findex YYABORT
4524 Return immediately with value 1 (to report failure).
4525 @end defmac
4526
4527 If you use a reentrant parser, you can optionally pass additional
4528 parameter information to it in a reentrant way. To do so, use the
4529 declaration @code{%parse-param}:
4530
4531 @deffn {Directive} %parse-param @{@var{argument-declaration}@}
4532 @findex %parse-param
4533 Declare that an argument declared by the braced-code
4534 @var{argument-declaration} is an additional @code{yyparse} argument.
4535 The @var{argument-declaration} is used when declaring
4536 functions or prototypes. The last identifier in
4537 @var{argument-declaration} must be the argument name.
4538 @end deffn
4539
4540 Here's an example. Write this in the parser:
4541
4542 @example
4543 %parse-param @{int *nastiness@}
4544 %parse-param @{int *randomness@}
4545 @end example
4546
4547 @noindent
4548 Then call the parser like this:
4549
4550 @example
4551 @{
4552 int nastiness, randomness;
4553 @dots{} /* @r{Store proper data in @code{nastiness} and @code{randomness}.} */
4554 value = yyparse (&nastiness, &randomness);
4555 @dots{}
4556 @}
4557 @end example
4558
4559 @noindent
4560 In the grammar actions, use expressions like this to refer to the data:
4561
4562 @example
4563 exp: @dots{} @{ @dots{}; *randomness += 1; @dots{} @}
4564 @end example
4565
4566
4567 @node Lexical
4568 @section The Lexical Analyzer Function @code{yylex}
4569 @findex yylex
4570 @cindex lexical analyzer
4571
4572 The @dfn{lexical analyzer} function, @code{yylex}, recognizes tokens from
4573 the input stream and returns them to the parser. Bison does not create
4574 this function automatically; you must write it so that @code{yyparse} can
4575 call it. The function is sometimes referred to as a lexical scanner.
4576
4577 In simple programs, @code{yylex} is often defined at the end of the Bison
4578 grammar file. If @code{yylex} is defined in a separate source file, you
4579 need to arrange for the token-type macro definitions to be available there.
4580 To do this, use the @samp{-d} option when you run Bison, so that it will
4581 write these macro definitions into a separate header file
4582 @file{@var{name}.tab.h} which you can include in the other source files
4583 that need it. @xref{Invocation, ,Invoking Bison}.
4584
4585 @menu
4586 * Calling Convention:: How @code{yyparse} calls @code{yylex}.
4587 * Token Values:: How @code{yylex} must return the semantic value
4588 of the token it has read.
4589 * Token Locations:: How @code{yylex} must return the text location
4590 (line number, etc.) of the token, if the
4591 actions want that.
4592 * Pure Calling:: How the calling convention differs
4593 in a pure parser (@pxref{Pure Decl, ,A Pure (Reentrant) Parser}).
4594 @end menu
4595
4596 @node Calling Convention
4597 @subsection Calling Convention for @code{yylex}
4598
4599 The value that @code{yylex} returns must be the positive numeric code
4600 for the type of token it has just found; a zero or negative value
4601 signifies end-of-input.
4602
4603 When a token is referred to in the grammar rules by a name, that name
4604 in the parser file becomes a C macro whose definition is the proper
4605 numeric code for that token type. So @code{yylex} can use the name
4606 to indicate that type. @xref{Symbols}.
4607
4608 When a token is referred to in the grammar rules by a character literal,
4609 the numeric code for that character is also the code for the token type.
4610 So @code{yylex} can simply return that character code, possibly converted
4611 to @code{unsigned char} to avoid sign-extension. The null character
4612 must not be used this way, because its code is zero and that
4613 signifies end-of-input.
4614
4615 Here is an example showing these things:
4616
4617 @example
4618 int
4619 yylex (void)
4620 @{
4621 @dots{}
4622 if (c == EOF) /* Detect end-of-input. */
4623 return 0;
4624 @dots{}
4625 if (c == '+' || c == '-')
4626 return c; /* Assume token type for `+' is '+'. */
4627 @dots{}
4628 return INT; /* Return the type of the token. */
4629 @dots{}
4630 @}
4631 @end example
4632
4633 @noindent
4634 This interface has been designed so that the output from the @code{lex}
4635 utility can be used without change as the definition of @code{yylex}.
4636
4637 If the grammar uses literal string tokens, there are two ways that
4638 @code{yylex} can determine the token type codes for them:
4639
4640 @itemize @bullet
4641 @item
4642 If the grammar defines symbolic token names as aliases for the
4643 literal string tokens, @code{yylex} can use these symbolic names like
4644 all others. In this case, the use of the literal string tokens in
4645 the grammar file has no effect on @code{yylex}.
4646
4647 @item
4648 @code{yylex} can find the multicharacter token in the @code{yytname}
4649 table. The index of the token in the table is the token type's code.
4650 The name of a multicharacter token is recorded in @code{yytname} with a
4651 double-quote, the token's characters, and another double-quote. The
4652 token's characters are escaped as necessary to be suitable as input
4653 to Bison.
4654
4655 Here's code for looking up a multicharacter token in @code{yytname},
4656 assuming that the characters of the token are stored in
4657 @code{token_buffer}, and assuming that the token does not contain any
4658 characters like @samp{"} that require escaping.
4659
4660 @smallexample
4661 for (i = 0; i < YYNTOKENS; i++)
4662 @{
4663 if (yytname[i] != 0
4664 && yytname[i][0] == '"'
4665 && ! strncmp (yytname[i] + 1, token_buffer,
4666 strlen (token_buffer))
4667 && yytname[i][strlen (token_buffer) + 1] == '"'
4668 && yytname[i][strlen (token_buffer) + 2] == 0)
4669 break;
4670 @}
4671 @end smallexample
4672
4673 The @code{yytname} table is generated only if you use the
4674 @code{%token-table} declaration. @xref{Decl Summary}.
4675 @end itemize
4676
4677 @node Token Values
4678 @subsection Semantic Values of Tokens
4679
4680 @vindex yylval
4681 In an ordinary (nonreentrant) parser, the semantic value of the token must
4682 be stored into the global variable @code{yylval}. When you are using
4683 just one data type for semantic values, @code{yylval} has that type.
4684 Thus, if the type is @code{int} (the default), you might write this in
4685 @code{yylex}:
4686
4687 @example
4688 @group
4689 @dots{}
4690 yylval = value; /* Put value onto Bison stack. */
4691 return INT; /* Return the type of the token. */
4692 @dots{}
4693 @end group
4694 @end example
4695
4696 When you are using multiple data types, @code{yylval}'s type is a union
4697 made from the @code{%union} declaration (@pxref{Union Decl, ,The
4698 Collection of Value Types}). So when you store a token's value, you
4699 must use the proper member of the union. If the @code{%union}
4700 declaration looks like this:
4701
4702 @example
4703 @group
4704 %union @{
4705 int intval;
4706 double val;
4707 symrec *tptr;
4708 @}
4709 @end group
4710 @end example
4711
4712 @noindent
4713 then the code in @code{yylex} might look like this:
4714
4715 @example
4716 @group
4717 @dots{}
4718 yylval.intval = value; /* Put value onto Bison stack. */
4719 return INT; /* Return the type of the token. */
4720 @dots{}
4721 @end group
4722 @end example
4723
4724 @node Token Locations
4725 @subsection Textual Locations of Tokens
4726
4727 @vindex yylloc
4728 If you are using the @samp{@@@var{n}}-feature (@pxref{Locations, ,
4729 Tracking Locations}) in actions to keep track of the textual locations
4730 of tokens and groupings, then you must provide this information in
4731 @code{yylex}. The function @code{yyparse} expects to find the textual
4732 location of a token just parsed in the global variable @code{yylloc}.
4733 So @code{yylex} must store the proper data in that variable.
4734
4735 By default, the value of @code{yylloc} is a structure and you need only
4736 initialize the members that are going to be used by the actions. The
4737 four members are called @code{first_line}, @code{first_column},
4738 @code{last_line} and @code{last_column}. Note that the use of this
4739 feature makes the parser noticeably slower.
4740
4741 @tindex YYLTYPE
4742 The data type of @code{yylloc} has the name @code{YYLTYPE}.
4743
4744 @node Pure Calling
4745 @subsection Calling Conventions for Pure Parsers
4746
4747 When you use the Bison declaration @code{%pure-parser} to request a
4748 pure, reentrant parser, the global communication variables @code{yylval}
4749 and @code{yylloc} cannot be used. (@xref{Pure Decl, ,A Pure (Reentrant)
4750 Parser}.) In such parsers the two global variables are replaced by
4751 pointers passed as arguments to @code{yylex}. You must declare them as
4752 shown here, and pass the information back by storing it through those
4753 pointers.
4754
4755 @example
4756 int
4757 yylex (YYSTYPE *lvalp, YYLTYPE *llocp)
4758 @{
4759 @dots{}
4760 *lvalp = value; /* Put value onto Bison stack. */
4761 return INT; /* Return the type of the token. */
4762 @dots{}
4763 @}
4764 @end example
4765
4766 If the grammar file does not use the @samp{@@} constructs to refer to
4767 textual locations, then the type @code{YYLTYPE} will not be defined. In
4768 this case, omit the second argument; @code{yylex} will be called with
4769 only one argument.
4770
4771
4772 If you wish to pass the additional parameter data to @code{yylex}, use
4773 @code{%lex-param} just like @code{%parse-param} (@pxref{Parser
4774 Function}).
4775
4776 @deffn {Directive} lex-param @{@var{argument-declaration}@}
4777 @findex %lex-param
4778 Declare that the braced-code @var{argument-declaration} is an
4779 additional @code{yylex} argument declaration.
4780 @end deffn
4781
4782 For instance:
4783
4784 @example
4785 %parse-param @{int *nastiness@}
4786 %lex-param @{int *nastiness@}
4787 %parse-param @{int *randomness@}
4788 @end example
4789
4790 @noindent
4791 results in the following signature:
4792
4793 @example
4794 int yylex (int *nastiness);
4795 int yyparse (int *nastiness, int *randomness);
4796 @end example
4797
4798 If @code{%pure-parser} is added:
4799
4800 @example
4801 int yylex (YYSTYPE *lvalp, int *nastiness);
4802 int yyparse (int *nastiness, int *randomness);
4803 @end example
4804
4805 @noindent
4806 and finally, if both @code{%pure-parser} and @code{%locations} are used:
4807
4808 @example
4809 int yylex (YYSTYPE *lvalp, YYLTYPE *llocp, int *nastiness);
4810 int yyparse (int *nastiness, int *randomness);
4811 @end example
4812
4813 @node Error Reporting
4814 @section The Error Reporting Function @code{yyerror}
4815 @cindex error reporting function
4816 @findex yyerror
4817 @cindex parse error
4818 @cindex syntax error
4819
4820 The Bison parser detects a @dfn{syntax error} or @dfn{parse error}
4821 whenever it reads a token which cannot satisfy any syntax rule. An
4822 action in the grammar can also explicitly proclaim an error, using the
4823 macro @code{YYERROR} (@pxref{Action Features, ,Special Features for Use
4824 in Actions}).
4825
4826 The Bison parser expects to report the error by calling an error
4827 reporting function named @code{yyerror}, which you must supply. It is
4828 called by @code{yyparse} whenever a syntax error is found, and it
4829 receives one argument. For a syntax error, the string is normally
4830 @w{@code{"syntax error"}}.
4831
4832 @findex %error-verbose
4833 If you invoke the directive @code{%error-verbose} in the Bison
4834 declarations section (@pxref{Bison Declarations, ,The Bison Declarations
4835 Section}), then Bison provides a more verbose and specific error message
4836 string instead of just plain @w{@code{"syntax error"}}.
4837
4838 The parser can detect one other kind of error: memory exhaustion. This
4839 can happen when the input contains constructions that are very deeply
4840 nested. It isn't likely you will encounter this, since the Bison
4841 parser normally extends its stack automatically up to a very large limit. But
4842 if memory is exhausted, @code{yyparse} calls @code{yyerror} in the usual
4843 fashion, except that the argument string is @w{@code{"memory exhausted"}}.
4844
4845 In some cases diagnostics like @w{@code{"syntax error"}} are
4846 translated automatically from English to some other language before
4847 they are passed to @code{yyerror}. @xref{Internationalization}.
4848
4849 The following definition suffices in simple programs:
4850
4851 @example
4852 @group
4853 void
4854 yyerror (char const *s)
4855 @{
4856 @end group
4857 @group
4858 fprintf (stderr, "%s\n", s);
4859 @}
4860 @end group
4861 @end example
4862
4863 After @code{yyerror} returns to @code{yyparse}, the latter will attempt
4864 error recovery if you have written suitable error recovery grammar rules
4865 (@pxref{Error Recovery}). If recovery is impossible, @code{yyparse} will
4866 immediately return 1.
4867
4868 Obviously, in location tracking pure parsers, @code{yyerror} should have
4869 an access to the current location.
4870 This is indeed the case for the @acronym{GLR}
4871 parsers, but not for the Yacc parser, for historical reasons. I.e., if
4872 @samp{%locations %pure-parser} is passed then the prototypes for
4873 @code{yyerror} are:
4874
4875 @example
4876 void yyerror (char const *msg); /* Yacc parsers. */
4877 void yyerror (YYLTYPE *locp, char const *msg); /* GLR parsers. */
4878 @end example
4879
4880 If @samp{%parse-param @{int *nastiness@}} is used, then:
4881
4882 @example
4883 void yyerror (int *nastiness, char const *msg); /* Yacc parsers. */
4884 void yyerror (int *nastiness, char const *msg); /* GLR parsers. */
4885 @end example
4886
4887 Finally, @acronym{GLR} and Yacc parsers share the same @code{yyerror} calling
4888 convention for absolutely pure parsers, i.e., when the calling
4889 convention of @code{yylex} @emph{and} the calling convention of
4890 @code{%pure-parser} are pure. I.e.:
4891
4892 @example
4893 /* Location tracking. */
4894 %locations
4895 /* Pure yylex. */
4896 %pure-parser
4897 %lex-param @{int *nastiness@}
4898 /* Pure yyparse. */
4899 %parse-param @{int *nastiness@}
4900 %parse-param @{int *randomness@}
4901 @end example
4902
4903 @noindent
4904 results in the following signatures for all the parser kinds:
4905
4906 @example
4907 int yylex (YYSTYPE *lvalp, YYLTYPE *llocp, int *nastiness);
4908 int yyparse (int *nastiness, int *randomness);
4909 void yyerror (YYLTYPE *locp,
4910 int *nastiness, int *randomness,
4911 char const *msg);
4912 @end example
4913
4914 @noindent
4915 The prototypes are only indications of how the code produced by Bison
4916 uses @code{yyerror}. Bison-generated code always ignores the returned
4917 value, so @code{yyerror} can return any type, including @code{void}.
4918 Also, @code{yyerror} can be a variadic function; that is why the
4919 message is always passed last.
4920
4921 Traditionally @code{yyerror} returns an @code{int} that is always
4922 ignored, but this is purely for historical reasons, and @code{void} is
4923 preferable since it more accurately describes the return type for
4924 @code{yyerror}.
4925
4926 @vindex yynerrs
4927 The variable @code{yynerrs} contains the number of syntax errors
4928 reported so far. Normally this variable is global; but if you
4929 request a pure parser (@pxref{Pure Decl, ,A Pure (Reentrant) Parser})
4930 then it is a local variable which only the actions can access.
4931
4932 @node Action Features
4933 @section Special Features for Use in Actions
4934 @cindex summary, action features
4935 @cindex action features summary
4936
4937 Here is a table of Bison constructs, variables and macros that
4938 are useful in actions.
4939
4940 @deffn {Variable} $$
4941 Acts like a variable that contains the semantic value for the
4942 grouping made by the current rule. @xref{Actions}.
4943 @end deffn
4944
4945 @deffn {Variable} $@var{n}
4946 Acts like a variable that contains the semantic value for the
4947 @var{n}th component of the current rule. @xref{Actions}.
4948 @end deffn
4949
4950 @deffn {Variable} $<@var{typealt}>$
4951 Like @code{$$} but specifies alternative @var{typealt} in the union
4952 specified by the @code{%union} declaration. @xref{Action Types, ,Data
4953 Types of Values in Actions}.
4954 @end deffn
4955
4956 @deffn {Variable} $<@var{typealt}>@var{n}
4957 Like @code{$@var{n}} but specifies alternative @var{typealt} in the
4958 union specified by the @code{%union} declaration.
4959 @xref{Action Types, ,Data Types of Values in Actions}.
4960 @end deffn
4961
4962 @deffn {Macro} YYABORT;
4963 Return immediately from @code{yyparse}, indicating failure.
4964 @xref{Parser Function, ,The Parser Function @code{yyparse}}.
4965 @end deffn
4966
4967 @deffn {Macro} YYACCEPT;
4968 Return immediately from @code{yyparse}, indicating success.
4969 @xref{Parser Function, ,The Parser Function @code{yyparse}}.
4970 @end deffn
4971
4972 @deffn {Macro} YYBACKUP (@var{token}, @var{value});
4973 @findex YYBACKUP
4974 Unshift a token. This macro is allowed only for rules that reduce
4975 a single value, and only when there is no lookahead token.
4976 It is also disallowed in @acronym{GLR} parsers.
4977 It installs a lookahead token with token type @var{token} and
4978 semantic value @var{value}; then it discards the value that was
4979 going to be reduced by this rule.
4980
4981 If the macro is used when it is not valid, such as when there is
4982 a lookahead token already, then it reports a syntax error with
4983 a message @samp{cannot back up} and performs ordinary error
4984 recovery.
4985
4986 In either case, the rest of the action is not executed.
4987 @end deffn
4988
4989 @deffn {Macro} YYEMPTY
4990 @vindex YYEMPTY
4991 Value stored in @code{yychar} when there is no lookahead token.
4992 @end deffn
4993
4994 @deffn {Macro} YYEOF
4995 @vindex YYEOF
4996 Value stored in @code{yychar} when the lookahead is the end of the input
4997 stream.
4998 @end deffn
4999
5000 @deffn {Macro} YYERROR;
5001 @findex YYERROR
5002 Cause an immediate syntax error. This statement initiates error
5003 recovery just as if the parser itself had detected an error; however, it
5004 does not call @code{yyerror}, and does not print any message. If you
5005 want to print an error message, call @code{yyerror} explicitly before
5006 the @samp{YYERROR;} statement. @xref{Error Recovery}.
5007 @end deffn
5008
5009 @deffn {Macro} YYRECOVERING
5010 @findex YYRECOVERING
5011 The expression @code{YYRECOVERING ()} yields 1 when the parser
5012 is recovering from a syntax error, and 0 otherwise.
5013 @xref{Error Recovery}.
5014 @end deffn
5015
5016 @deffn {Variable} yychar
5017 Variable containing either the lookahead token, or @code{YYEOF} when the
5018 lookahead is the end of the input stream, or @code{YYEMPTY} when no lookahead
5019 has been performed so the next token is not yet known.
5020 Do not modify @code{yychar} in a deferred semantic action (@pxref{GLR Semantic
5021 Actions}).
5022 @xref{Lookahead, ,Lookahead Tokens}.
5023 @end deffn
5024
5025 @deffn {Macro} yyclearin;
5026 Discard the current lookahead token. This is useful primarily in
5027 error rules.
5028 Do not invoke @code{yyclearin} in a deferred semantic action (@pxref{GLR
5029 Semantic Actions}).
5030 @xref{Error Recovery}.
5031 @end deffn
5032
5033 @deffn {Macro} yyerrok;
5034 Resume generating error messages immediately for subsequent syntax
5035 errors. This is useful primarily in error rules.
5036 @xref{Error Recovery}.
5037 @end deffn
5038
5039 @deffn {Variable} yylloc
5040 Variable containing the lookahead token location when @code{yychar} is not set
5041 to @code{YYEMPTY} or @code{YYEOF}.
5042 Do not modify @code{yylloc} in a deferred semantic action (@pxref{GLR Semantic
5043 Actions}).
5044 @xref{Actions and Locations, ,Actions and Locations}.
5045 @end deffn
5046
5047 @deffn {Variable} yylval
5048 Variable containing the lookahead token semantic value when @code{yychar} is
5049 not set to @code{YYEMPTY} or @code{YYEOF}.
5050 Do not modify @code{yylval} in a deferred semantic action (@pxref{GLR Semantic
5051 Actions}).
5052 @xref{Actions, ,Actions}.
5053 @end deffn
5054
5055 @deffn {Value} @@$
5056 @findex @@$
5057 Acts like a structure variable containing information on the textual location
5058 of the grouping made by the current rule. @xref{Locations, ,
5059 Tracking Locations}.
5060
5061 @c Check if those paragraphs are still useful or not.
5062
5063 @c @example
5064 @c struct @{
5065 @c int first_line, last_line;
5066 @c int first_column, last_column;
5067 @c @};
5068 @c @end example
5069
5070 @c Thus, to get the starting line number of the third component, you would
5071 @c use @samp{@@3.first_line}.
5072
5073 @c In order for the members of this structure to contain valid information,
5074 @c you must make @code{yylex} supply this information about each token.
5075 @c If you need only certain members, then @code{yylex} need only fill in
5076 @c those members.
5077
5078 @c The use of this feature makes the parser noticeably slower.
5079 @end deffn
5080
5081 @deffn {Value} @@@var{n}
5082 @findex @@@var{n}
5083 Acts like a structure variable containing information on the textual location
5084 of the @var{n}th component of the current rule. @xref{Locations, ,
5085 Tracking Locations}.
5086 @end deffn
5087
5088 @node Internationalization
5089 @section Parser Internationalization
5090 @cindex internationalization
5091 @cindex i18n
5092 @cindex NLS
5093 @cindex gettext
5094 @cindex bison-po
5095
5096 A Bison-generated parser can print diagnostics, including error and
5097 tracing messages. By default, they appear in English. However, Bison
5098 also supports outputting diagnostics in the user's native language. To
5099 make this work, the user should set the usual environment variables.
5100 @xref{Users, , The User's View, gettext, GNU @code{gettext} utilities}.
5101 For example, the shell command @samp{export LC_ALL=fr_CA.UTF-8} might
5102 set the user's locale to French Canadian using the @acronym{UTF}-8
5103 encoding. The exact set of available locales depends on the user's
5104 installation.
5105
5106 The maintainer of a package that uses a Bison-generated parser enables
5107 the internationalization of the parser's output through the following
5108 steps. Here we assume a package that uses @acronym{GNU} Autoconf and
5109 @acronym{GNU} Automake.
5110
5111 @enumerate
5112 @item
5113 @cindex bison-i18n.m4
5114 Into the directory containing the @acronym{GNU} Autoconf macros used
5115 by the package---often called @file{m4}---copy the
5116 @file{bison-i18n.m4} file installed by Bison under
5117 @samp{share/aclocal/bison-i18n.m4} in Bison's installation directory.
5118 For example:
5119
5120 @example
5121 cp /usr/local/share/aclocal/bison-i18n.m4 m4/bison-i18n.m4
5122 @end example
5123
5124 @item
5125 @findex BISON_I18N
5126 @vindex BISON_LOCALEDIR
5127 @vindex YYENABLE_NLS
5128 In the top-level @file{configure.ac}, after the @code{AM_GNU_GETTEXT}
5129 invocation, add an invocation of @code{BISON_I18N}. This macro is
5130 defined in the file @file{bison-i18n.m4} that you copied earlier. It
5131 causes @samp{configure} to find the value of the
5132 @code{BISON_LOCALEDIR} variable, and it defines the source-language
5133 symbol @code{YYENABLE_NLS} to enable translations in the
5134 Bison-generated parser.
5135
5136 @item
5137 In the @code{main} function of your program, designate the directory
5138 containing Bison's runtime message catalog, through a call to
5139 @samp{bindtextdomain} with domain name @samp{bison-runtime}.
5140 For example:
5141
5142 @example
5143 bindtextdomain ("bison-runtime", BISON_LOCALEDIR);
5144 @end example
5145
5146 Typically this appears after any other call @code{bindtextdomain
5147 (PACKAGE, LOCALEDIR)} that your package already has. Here we rely on
5148 @samp{BISON_LOCALEDIR} to be defined as a string through the
5149 @file{Makefile}.
5150
5151 @item
5152 In the @file{Makefile.am} that controls the compilation of the @code{main}
5153 function, make @samp{BISON_LOCALEDIR} available as a C preprocessor macro,
5154 either in @samp{DEFS} or in @samp{AM_CPPFLAGS}. For example:
5155
5156 @example
5157 DEFS = @@DEFS@@ -DBISON_LOCALEDIR='"$(BISON_LOCALEDIR)"'
5158 @end example
5159
5160 or:
5161
5162 @example
5163 AM_CPPFLAGS = -DBISON_LOCALEDIR='"$(BISON_LOCALEDIR)"'
5164 @end example
5165
5166 @item
5167 Finally, invoke the command @command{autoreconf} to generate the build
5168 infrastructure.
5169 @end enumerate
5170
5171
5172 @node Algorithm
5173 @chapter The Bison Parser Algorithm
5174 @cindex Bison parser algorithm
5175 @cindex algorithm of parser
5176 @cindex shifting
5177 @cindex reduction
5178 @cindex parser stack
5179 @cindex stack, parser
5180
5181 As Bison reads tokens, it pushes them onto a stack along with their
5182 semantic values. The stack is called the @dfn{parser stack}. Pushing a
5183 token is traditionally called @dfn{shifting}.
5184
5185 For example, suppose the infix calculator has read @samp{1 + 5 *}, with a
5186 @samp{3} to come. The stack will have four elements, one for each token
5187 that was shifted.
5188
5189 But the stack does not always have an element for each token read. When
5190 the last @var{n} tokens and groupings shifted match the components of a
5191 grammar rule, they can be combined according to that rule. This is called
5192 @dfn{reduction}. Those tokens and groupings are replaced on the stack by a
5193 single grouping whose symbol is the result (left hand side) of that rule.
5194 Running the rule's action is part of the process of reduction, because this
5195 is what computes the semantic value of the resulting grouping.
5196
5197 For example, if the infix calculator's parser stack contains this:
5198
5199 @example
5200 1 + 5 * 3
5201 @end example
5202
5203 @noindent
5204 and the next input token is a newline character, then the last three
5205 elements can be reduced to 15 via the rule:
5206
5207 @example
5208 expr: expr '*' expr;
5209 @end example
5210
5211 @noindent
5212 Then the stack contains just these three elements:
5213
5214 @example
5215 1 + 15
5216 @end example
5217
5218 @noindent
5219 At this point, another reduction can be made, resulting in the single value
5220 16. Then the newline token can be shifted.
5221
5222 The parser tries, by shifts and reductions, to reduce the entire input down
5223 to a single grouping whose symbol is the grammar's start-symbol
5224 (@pxref{Language and Grammar, ,Languages and Context-Free Grammars}).
5225
5226 This kind of parser is known in the literature as a bottom-up parser.
5227
5228 @menu
5229 * Lookahead:: Parser looks one token ahead when deciding what to do.
5230 * Shift/Reduce:: Conflicts: when either shifting or reduction is valid.
5231 * Precedence:: Operator precedence works by resolving conflicts.
5232 * Contextual Precedence:: When an operator's precedence depends on context.
5233 * Parser States:: The parser is a finite-state-machine with stack.
5234 * Reduce/Reduce:: When two rules are applicable in the same situation.
5235 * Mystery Conflicts:: Reduce/reduce conflicts that look unjustified.
5236 * Generalized LR Parsing:: Parsing arbitrary context-free grammars.
5237 * Memory Management:: What happens when memory is exhausted. How to avoid it.
5238 @end menu
5239
5240 @node Lookahead
5241 @section Lookahead Tokens
5242 @cindex lookahead token
5243
5244 The Bison parser does @emph{not} always reduce immediately as soon as the
5245 last @var{n} tokens and groupings match a rule. This is because such a
5246 simple strategy is inadequate to handle most languages. Instead, when a
5247 reduction is possible, the parser sometimes ``looks ahead'' at the next
5248 token in order to decide what to do.
5249
5250 When a token is read, it is not immediately shifted; first it becomes the
5251 @dfn{lookahead token}, which is not on the stack. Now the parser can
5252 perform one or more reductions of tokens and groupings on the stack, while
5253 the lookahead token remains off to the side. When no more reductions
5254 should take place, the lookahead token is shifted onto the stack. This
5255 does not mean that all possible reductions have been done; depending on the
5256 token type of the lookahead token, some rules may choose to delay their
5257 application.
5258
5259 Here is a simple case where lookahead is needed. These three rules define
5260 expressions which contain binary addition operators and postfix unary
5261 factorial operators (@samp{!}), and allow parentheses for grouping.
5262
5263 @example
5264 @group
5265 expr: term '+' expr
5266 | term
5267 ;
5268 @end group
5269
5270 @group
5271 term: '(' expr ')'
5272 | term '!'
5273 | NUMBER
5274 ;
5275 @end group
5276 @end example
5277
5278 Suppose that the tokens @w{@samp{1 + 2}} have been read and shifted; what
5279 should be done? If the following token is @samp{)}, then the first three
5280 tokens must be reduced to form an @code{expr}. This is the only valid
5281 course, because shifting the @samp{)} would produce a sequence of symbols
5282 @w{@code{term ')'}}, and no rule allows this.
5283
5284 If the following token is @samp{!}, then it must be shifted immediately so
5285 that @w{@samp{2 !}} can be reduced to make a @code{term}. If instead the
5286 parser were to reduce before shifting, @w{@samp{1 + 2}} would become an
5287 @code{expr}. It would then be impossible to shift the @samp{!} because
5288 doing so would produce on the stack the sequence of symbols @code{expr
5289 '!'}. No rule allows that sequence.
5290
5291 @vindex yychar
5292 @vindex yylval
5293 @vindex yylloc
5294 The lookahead token is stored in the variable @code{yychar}.
5295 Its semantic value and location, if any, are stored in the variables
5296 @code{yylval} and @code{yylloc}.
5297 @xref{Action Features, ,Special Features for Use in Actions}.
5298
5299 @node Shift/Reduce
5300 @section Shift/Reduce Conflicts
5301 @cindex conflicts
5302 @cindex shift/reduce conflicts
5303 @cindex dangling @code{else}
5304 @cindex @code{else}, dangling
5305
5306 Suppose we are parsing a language which has if-then and if-then-else
5307 statements, with a pair of rules like this:
5308
5309 @example
5310 @group
5311 if_stmt:
5312 IF expr THEN stmt
5313 | IF expr THEN stmt ELSE stmt
5314 ;
5315 @end group
5316 @end example
5317
5318 @noindent
5319 Here we assume that @code{IF}, @code{THEN} and @code{ELSE} are
5320 terminal symbols for specific keyword tokens.
5321
5322 When the @code{ELSE} token is read and becomes the lookahead token, the
5323 contents of the stack (assuming the input is valid) are just right for
5324 reduction by the first rule. But it is also legitimate to shift the
5325 @code{ELSE}, because that would lead to eventual reduction by the second
5326 rule.
5327
5328 This situation, where either a shift or a reduction would be valid, is
5329 called a @dfn{shift/reduce conflict}. Bison is designed to resolve
5330 these conflicts by choosing to shift, unless otherwise directed by
5331 operator precedence declarations. To see the reason for this, let's
5332 contrast it with the other alternative.
5333
5334 Since the parser prefers to shift the @code{ELSE}, the result is to attach
5335 the else-clause to the innermost if-statement, making these two inputs
5336 equivalent:
5337
5338 @example
5339 if x then if y then win (); else lose;
5340
5341 if x then do; if y then win (); else lose; end;
5342 @end example
5343
5344 But if the parser chose to reduce when possible rather than shift, the
5345 result would be to attach the else-clause to the outermost if-statement,
5346 making these two inputs equivalent:
5347
5348 @example
5349 if x then if y then win (); else lose;
5350
5351 if x then do; if y then win (); end; else lose;
5352 @end example
5353
5354 The conflict exists because the grammar as written is ambiguous: either
5355 parsing of the simple nested if-statement is legitimate. The established
5356 convention is that these ambiguities are resolved by attaching the
5357 else-clause to the innermost if-statement; this is what Bison accomplishes
5358 by choosing to shift rather than reduce. (It would ideally be cleaner to
5359 write an unambiguous grammar, but that is very hard to do in this case.)
5360 This particular ambiguity was first encountered in the specifications of
5361 Algol 60 and is called the ``dangling @code{else}'' ambiguity.
5362
5363 To avoid warnings from Bison about predictable, legitimate shift/reduce
5364 conflicts, use the @code{%expect @var{n}} declaration. There will be no
5365 warning as long as the number of shift/reduce conflicts is exactly @var{n}.
5366 @xref{Expect Decl, ,Suppressing Conflict Warnings}.
5367
5368 The definition of @code{if_stmt} above is solely to blame for the
5369 conflict, but the conflict does not actually appear without additional
5370 rules. Here is a complete Bison input file that actually manifests the
5371 conflict:
5372
5373 @example
5374 @group
5375 %token IF THEN ELSE variable
5376 %%
5377 @end group
5378 @group
5379 stmt: expr
5380 | if_stmt
5381 ;
5382 @end group
5383
5384 @group
5385 if_stmt:
5386 IF expr THEN stmt
5387 | IF expr THEN stmt ELSE stmt
5388 ;
5389 @end group
5390
5391 expr: variable
5392 ;
5393 @end example
5394
5395 @node Precedence
5396 @section Operator Precedence
5397 @cindex operator precedence
5398 @cindex precedence of operators
5399
5400 Another situation where shift/reduce conflicts appear is in arithmetic
5401 expressions. Here shifting is not always the preferred resolution; the
5402 Bison declarations for operator precedence allow you to specify when to
5403 shift and when to reduce.
5404
5405 @menu
5406 * Why Precedence:: An example showing why precedence is needed.
5407 * Using Precedence:: How to specify precedence in Bison grammars.
5408 * Precedence Examples:: How these features are used in the previous example.
5409 * How Precedence:: How they work.
5410 @end menu
5411
5412 @node Why Precedence
5413 @subsection When Precedence is Needed
5414
5415 Consider the following ambiguous grammar fragment (ambiguous because the
5416 input @w{@samp{1 - 2 * 3}} can be parsed in two different ways):
5417
5418 @example
5419 @group
5420 expr: expr '-' expr
5421 | expr '*' expr
5422 | expr '<' expr
5423 | '(' expr ')'
5424 @dots{}
5425 ;
5426 @end group
5427 @end example
5428
5429 @noindent
5430 Suppose the parser has seen the tokens @samp{1}, @samp{-} and @samp{2};
5431 should it reduce them via the rule for the subtraction operator? It
5432 depends on the next token. Of course, if the next token is @samp{)}, we
5433 must reduce; shifting is invalid because no single rule can reduce the
5434 token sequence @w{@samp{- 2 )}} or anything starting with that. But if
5435 the next token is @samp{*} or @samp{<}, we have a choice: either
5436 shifting or reduction would allow the parse to complete, but with
5437 different results.
5438
5439 To decide which one Bison should do, we must consider the results. If
5440 the next operator token @var{op} is shifted, then it must be reduced
5441 first in order to permit another opportunity to reduce the difference.
5442 The result is (in effect) @w{@samp{1 - (2 @var{op} 3)}}. On the other
5443 hand, if the subtraction is reduced before shifting @var{op}, the result
5444 is @w{@samp{(1 - 2) @var{op} 3}}. Clearly, then, the choice of shift or
5445 reduce should depend on the relative precedence of the operators
5446 @samp{-} and @var{op}: @samp{*} should be shifted first, but not
5447 @samp{<}.
5448
5449 @cindex associativity
5450 What about input such as @w{@samp{1 - 2 - 5}}; should this be
5451 @w{@samp{(1 - 2) - 5}} or should it be @w{@samp{1 - (2 - 5)}}? For most
5452 operators we prefer the former, which is called @dfn{left association}.
5453 The latter alternative, @dfn{right association}, is desirable for
5454 assignment operators. The choice of left or right association is a
5455 matter of whether the parser chooses to shift or reduce when the stack
5456 contains @w{@samp{1 - 2}} and the lookahead token is @samp{-}: shifting
5457 makes right-associativity.
5458
5459 @node Using Precedence
5460 @subsection Specifying Operator Precedence
5461 @findex %left
5462 @findex %right
5463 @findex %nonassoc
5464
5465 Bison allows you to specify these choices with the operator precedence
5466 declarations @code{%left} and @code{%right}. Each such declaration
5467 contains a list of tokens, which are operators whose precedence and
5468 associativity is being declared. The @code{%left} declaration makes all
5469 those operators left-associative and the @code{%right} declaration makes
5470 them right-associative. A third alternative is @code{%nonassoc}, which
5471 declares that it is a syntax error to find the same operator twice ``in a
5472 row''.
5473
5474 The relative precedence of different operators is controlled by the
5475 order in which they are declared. The first @code{%left} or
5476 @code{%right} declaration in the file declares the operators whose
5477 precedence is lowest, the next such declaration declares the operators
5478 whose precedence is a little higher, and so on.
5479
5480 @node Precedence Examples
5481 @subsection Precedence Examples
5482
5483 In our example, we would want the following declarations:
5484
5485 @example
5486 %left '<'
5487 %left '-'
5488 %left '*'
5489 @end example
5490
5491 In a more complete example, which supports other operators as well, we
5492 would declare them in groups of equal precedence. For example, @code{'+'} is
5493 declared with @code{'-'}:
5494
5495 @example
5496 %left '<' '>' '=' NE LE GE
5497 %left '+' '-'
5498 %left '*' '/'
5499 @end example
5500
5501 @noindent
5502 (Here @code{NE} and so on stand for the operators for ``not equal''
5503 and so on. We assume that these tokens are more than one character long
5504 and therefore are represented by names, not character literals.)
5505
5506 @node How Precedence
5507 @subsection How Precedence Works
5508
5509 The first effect of the precedence declarations is to assign precedence
5510 levels to the terminal symbols declared. The second effect is to assign
5511 precedence levels to certain rules: each rule gets its precedence from
5512 the last terminal symbol mentioned in the components. (You can also
5513 specify explicitly the precedence of a rule. @xref{Contextual
5514 Precedence, ,Context-Dependent Precedence}.)
5515
5516 Finally, the resolution of conflicts works by comparing the precedence
5517 of the rule being considered with that of the lookahead token. If the
5518 token's precedence is higher, the choice is to shift. If the rule's
5519 precedence is higher, the choice is to reduce. If they have equal
5520 precedence, the choice is made based on the associativity of that
5521 precedence level. The verbose output file made by @samp{-v}
5522 (@pxref{Invocation, ,Invoking Bison}) says how each conflict was
5523 resolved.
5524
5525 Not all rules and not all tokens have precedence. If either the rule or
5526 the lookahead token has no precedence, then the default is to shift.
5527
5528 @node Contextual Precedence
5529 @section Context-Dependent Precedence
5530 @cindex context-dependent precedence
5531 @cindex unary operator precedence
5532 @cindex precedence, context-dependent
5533 @cindex precedence, unary operator
5534 @findex %prec
5535
5536 Often the precedence of an operator depends on the context. This sounds
5537 outlandish at first, but it is really very common. For example, a minus
5538 sign typically has a very high precedence as a unary operator, and a
5539 somewhat lower precedence (lower than multiplication) as a binary operator.
5540
5541 The Bison precedence declarations, @code{%left}, @code{%right} and
5542 @code{%nonassoc}, can only be used once for a given token; so a token has
5543 only one precedence declared in this way. For context-dependent
5544 precedence, you need to use an additional mechanism: the @code{%prec}
5545 modifier for rules.
5546
5547 The @code{%prec} modifier declares the precedence of a particular rule by
5548 specifying a terminal symbol whose precedence should be used for that rule.
5549 It's not necessary for that symbol to appear otherwise in the rule. The
5550 modifier's syntax is:
5551
5552 @example
5553 %prec @var{terminal-symbol}
5554 @end example
5555
5556 @noindent
5557 and it is written after the components of the rule. Its effect is to
5558 assign the rule the precedence of @var{terminal-symbol}, overriding
5559 the precedence that would be deduced for it in the ordinary way. The
5560 altered rule precedence then affects how conflicts involving that rule
5561 are resolved (@pxref{Precedence, ,Operator Precedence}).
5562
5563 Here is how @code{%prec} solves the problem of unary minus. First, declare
5564 a precedence for a fictitious terminal symbol named @code{UMINUS}. There
5565 are no tokens of this type, but the symbol serves to stand for its
5566 precedence:
5567
5568 @example
5569 @dots{}
5570 %left '+' '-'
5571 %left '*'
5572 %left UMINUS
5573 @end example
5574
5575 Now the precedence of @code{UMINUS} can be used in specific rules:
5576
5577 @example
5578 @group
5579 exp: @dots{}
5580 | exp '-' exp
5581 @dots{}
5582 | '-' exp %prec UMINUS
5583 @end group
5584 @end example
5585
5586 @ifset defaultprec
5587 If you forget to append @code{%prec UMINUS} to the rule for unary
5588 minus, Bison silently assumes that minus has its usual precedence.
5589 This kind of problem can be tricky to debug, since one typically
5590 discovers the mistake only by testing the code.
5591
5592 The @code{%no-default-prec;} declaration makes it easier to discover
5593 this kind of problem systematically. It causes rules that lack a
5594 @code{%prec} modifier to have no precedence, even if the last terminal
5595 symbol mentioned in their components has a declared precedence.
5596
5597 If @code{%no-default-prec;} is in effect, you must specify @code{%prec}
5598 for all rules that participate in precedence conflict resolution.
5599 Then you will see any shift/reduce conflict until you tell Bison how
5600 to resolve it, either by changing your grammar or by adding an
5601 explicit precedence. This will probably add declarations to the
5602 grammar, but it helps to protect against incorrect rule precedences.
5603
5604 The effect of @code{%no-default-prec;} can be reversed by giving
5605 @code{%default-prec;}, which is the default.
5606 @end ifset
5607
5608 @node Parser States
5609 @section Parser States
5610 @cindex finite-state machine
5611 @cindex parser state
5612 @cindex state (of parser)
5613
5614 The function @code{yyparse} is implemented using a finite-state machine.
5615 The values pushed on the parser stack are not simply token type codes; they
5616 represent the entire sequence of terminal and nonterminal symbols at or
5617 near the top of the stack. The current state collects all the information
5618 about previous input which is relevant to deciding what to do next.
5619
5620 Each time a lookahead token is read, the current parser state together
5621 with the type of lookahead token are looked up in a table. This table
5622 entry can say, ``Shift the lookahead token.'' In this case, it also
5623 specifies the new parser state, which is pushed onto the top of the
5624 parser stack. Or it can say, ``Reduce using rule number @var{n}.''
5625 This means that a certain number of tokens or groupings are taken off
5626 the top of the stack, and replaced by one grouping. In other words,
5627 that number of states are popped from the stack, and one new state is
5628 pushed.
5629
5630 There is one other alternative: the table can say that the lookahead token
5631 is erroneous in the current state. This causes error processing to begin
5632 (@pxref{Error Recovery}).
5633
5634 @node Reduce/Reduce
5635 @section Reduce/Reduce Conflicts
5636 @cindex reduce/reduce conflict
5637 @cindex conflicts, reduce/reduce
5638
5639 A reduce/reduce conflict occurs if there are two or more rules that apply
5640 to the same sequence of input. This usually indicates a serious error
5641 in the grammar.
5642
5643 For example, here is an erroneous attempt to define a sequence
5644 of zero or more @code{word} groupings.
5645
5646 @example
5647 sequence: /* empty */
5648 @{ printf ("empty sequence\n"); @}
5649 | maybeword
5650 | sequence word
5651 @{ printf ("added word %s\n", $2); @}
5652 ;
5653
5654 maybeword: /* empty */
5655 @{ printf ("empty maybeword\n"); @}
5656 | word
5657 @{ printf ("single word %s\n", $1); @}
5658 ;
5659 @end example
5660
5661 @noindent
5662 The error is an ambiguity: there is more than one way to parse a single
5663 @code{word} into a @code{sequence}. It could be reduced to a
5664 @code{maybeword} and then into a @code{sequence} via the second rule.
5665 Alternatively, nothing-at-all could be reduced into a @code{sequence}
5666 via the first rule, and this could be combined with the @code{word}
5667 using the third rule for @code{sequence}.
5668
5669 There is also more than one way to reduce nothing-at-all into a
5670 @code{sequence}. This can be done directly via the first rule,
5671 or indirectly via @code{maybeword} and then the second rule.
5672
5673 You might think that this is a distinction without a difference, because it
5674 does not change whether any particular input is valid or not. But it does
5675 affect which actions are run. One parsing order runs the second rule's
5676 action; the other runs the first rule's action and the third rule's action.
5677 In this example, the output of the program changes.
5678
5679 Bison resolves a reduce/reduce conflict by choosing to use the rule that
5680 appears first in the grammar, but it is very risky to rely on this. Every
5681 reduce/reduce conflict must be studied and usually eliminated. Here is the
5682 proper way to define @code{sequence}:
5683
5684 @example
5685 sequence: /* empty */
5686 @{ printf ("empty sequence\n"); @}
5687 | sequence word
5688 @{ printf ("added word %s\n", $2); @}
5689 ;
5690 @end example
5691
5692 Here is another common error that yields a reduce/reduce conflict:
5693
5694 @example
5695 sequence: /* empty */
5696 | sequence words
5697 | sequence redirects
5698 ;
5699
5700 words: /* empty */
5701 | words word
5702 ;
5703
5704 redirects:/* empty */
5705 | redirects redirect
5706 ;
5707 @end example
5708
5709 @noindent
5710 The intention here is to define a sequence which can contain either
5711 @code{word} or @code{redirect} groupings. The individual definitions of
5712 @code{sequence}, @code{words} and @code{redirects} are error-free, but the
5713 three together make a subtle ambiguity: even an empty input can be parsed
5714 in infinitely many ways!
5715
5716 Consider: nothing-at-all could be a @code{words}. Or it could be two
5717 @code{words} in a row, or three, or any number. It could equally well be a
5718 @code{redirects}, or two, or any number. Or it could be a @code{words}
5719 followed by three @code{redirects} and another @code{words}. And so on.
5720
5721 Here are two ways to correct these rules. First, to make it a single level
5722 of sequence:
5723
5724 @example
5725 sequence: /* empty */
5726 | sequence word
5727 | sequence redirect
5728 ;
5729 @end example
5730
5731 Second, to prevent either a @code{words} or a @code{redirects}
5732 from being empty:
5733
5734 @example
5735 sequence: /* empty */
5736 | sequence words
5737 | sequence redirects
5738 ;
5739
5740 words: word
5741 | words word
5742 ;
5743
5744 redirects:redirect
5745 | redirects redirect
5746 ;
5747 @end example
5748
5749 @node Mystery Conflicts
5750 @section Mysterious Reduce/Reduce Conflicts
5751
5752 Sometimes reduce/reduce conflicts can occur that don't look warranted.
5753 Here is an example:
5754
5755 @example
5756 @group
5757 %token ID
5758
5759 %%
5760 def: param_spec return_spec ','
5761 ;
5762 param_spec:
5763 type
5764 | name_list ':' type
5765 ;
5766 @end group
5767 @group
5768 return_spec:
5769 type
5770 | name ':' type
5771 ;
5772 @end group
5773 @group
5774 type: ID
5775 ;
5776 @end group
5777 @group
5778 name: ID
5779 ;
5780 name_list:
5781 name
5782 | name ',' name_list
5783 ;
5784 @end group
5785 @end example
5786
5787 It would seem that this grammar can be parsed with only a single token
5788 of lookahead: when a @code{param_spec} is being read, an @code{ID} is
5789 a @code{name} if a comma or colon follows, or a @code{type} if another
5790 @code{ID} follows. In other words, this grammar is @acronym{LR}(1).
5791
5792 @cindex @acronym{LR}(1)
5793 @cindex @acronym{LALR}(1)
5794 However, Bison, like most parser generators, cannot actually handle all
5795 @acronym{LR}(1) grammars. In this grammar, two contexts, that after
5796 an @code{ID}
5797 at the beginning of a @code{param_spec} and likewise at the beginning of
5798 a @code{return_spec}, are similar enough that Bison assumes they are the
5799 same. They appear similar because the same set of rules would be
5800 active---the rule for reducing to a @code{name} and that for reducing to
5801 a @code{type}. Bison is unable to determine at that stage of processing
5802 that the rules would require different lookahead tokens in the two
5803 contexts, so it makes a single parser state for them both. Combining
5804 the two contexts causes a conflict later. In parser terminology, this
5805 occurrence means that the grammar is not @acronym{LALR}(1).
5806
5807 In general, it is better to fix deficiencies than to document them. But
5808 this particular deficiency is intrinsically hard to fix; parser
5809 generators that can handle @acronym{LR}(1) grammars are hard to write
5810 and tend to
5811 produce parsers that are very large. In practice, Bison is more useful
5812 as it is now.
5813
5814 When the problem arises, you can often fix it by identifying the two
5815 parser states that are being confused, and adding something to make them
5816 look distinct. In the above example, adding one rule to
5817 @code{return_spec} as follows makes the problem go away:
5818
5819 @example
5820 @group
5821 %token BOGUS
5822 @dots{}
5823 %%
5824 @dots{}
5825 return_spec:
5826 type
5827 | name ':' type
5828 /* This rule is never used. */
5829 | ID BOGUS
5830 ;
5831 @end group
5832 @end example
5833
5834 This corrects the problem because it introduces the possibility of an
5835 additional active rule in the context after the @code{ID} at the beginning of
5836 @code{return_spec}. This rule is not active in the corresponding context
5837 in a @code{param_spec}, so the two contexts receive distinct parser states.
5838 As long as the token @code{BOGUS} is never generated by @code{yylex},
5839 the added rule cannot alter the way actual input is parsed.
5840
5841 In this particular example, there is another way to solve the problem:
5842 rewrite the rule for @code{return_spec} to use @code{ID} directly
5843 instead of via @code{name}. This also causes the two confusing
5844 contexts to have different sets of active rules, because the one for
5845 @code{return_spec} activates the altered rule for @code{return_spec}
5846 rather than the one for @code{name}.
5847
5848 @example
5849 param_spec:
5850 type
5851 | name_list ':' type
5852 ;
5853 return_spec:
5854 type
5855 | ID ':' type
5856 ;
5857 @end example
5858
5859 For a more detailed exposition of @acronym{LALR}(1) parsers and parser
5860 generators, please see:
5861 Frank DeRemer and Thomas Pennello, Efficient Computation of
5862 @acronym{LALR}(1) Look-Ahead Sets, @cite{@acronym{ACM} Transactions on
5863 Programming Languages and Systems}, Vol.@: 4, No.@: 4 (October 1982),
5864 pp.@: 615--649 @uref{http://doi.acm.org/10.1145/69622.357187}.
5865
5866 @node Generalized LR Parsing
5867 @section Generalized @acronym{LR} (@acronym{GLR}) Parsing
5868 @cindex @acronym{GLR} parsing
5869 @cindex generalized @acronym{LR} (@acronym{GLR}) parsing
5870 @cindex ambiguous grammars
5871 @cindex nondeterministic parsing
5872
5873 Bison produces @emph{deterministic} parsers that choose uniquely
5874 when to reduce and which reduction to apply
5875 based on a summary of the preceding input and on one extra token of lookahead.
5876 As a result, normal Bison handles a proper subset of the family of
5877 context-free languages.
5878 Ambiguous grammars, since they have strings with more than one possible
5879 sequence of reductions cannot have deterministic parsers in this sense.
5880 The same is true of languages that require more than one symbol of
5881 lookahead, since the parser lacks the information necessary to make a
5882 decision at the point it must be made in a shift-reduce parser.
5883 Finally, as previously mentioned (@pxref{Mystery Conflicts}),
5884 there are languages where Bison's particular choice of how to
5885 summarize the input seen so far loses necessary information.
5886
5887 When you use the @samp{%glr-parser} declaration in your grammar file,
5888 Bison generates a parser that uses a different algorithm, called
5889 Generalized @acronym{LR} (or @acronym{GLR}). A Bison @acronym{GLR}
5890 parser uses the same basic
5891 algorithm for parsing as an ordinary Bison parser, but behaves
5892 differently in cases where there is a shift-reduce conflict that has not
5893 been resolved by precedence rules (@pxref{Precedence}) or a
5894 reduce-reduce conflict. When a @acronym{GLR} parser encounters such a
5895 situation, it
5896 effectively @emph{splits} into a several parsers, one for each possible
5897 shift or reduction. These parsers then proceed as usual, consuming
5898 tokens in lock-step. Some of the stacks may encounter other conflicts
5899 and split further, with the result that instead of a sequence of states,
5900 a Bison @acronym{GLR} parsing stack is what is in effect a tree of states.
5901
5902 In effect, each stack represents a guess as to what the proper parse
5903 is. Additional input may indicate that a guess was wrong, in which case
5904 the appropriate stack silently disappears. Otherwise, the semantics
5905 actions generated in each stack are saved, rather than being executed
5906 immediately. When a stack disappears, its saved semantic actions never
5907 get executed. When a reduction causes two stacks to become equivalent,
5908 their sets of semantic actions are both saved with the state that
5909 results from the reduction. We say that two stacks are equivalent
5910 when they both represent the same sequence of states,
5911 and each pair of corresponding states represents a
5912 grammar symbol that produces the same segment of the input token
5913 stream.
5914
5915 Whenever the parser makes a transition from having multiple
5916 states to having one, it reverts to the normal @acronym{LALR}(1) parsing
5917 algorithm, after resolving and executing the saved-up actions.
5918 At this transition, some of the states on the stack will have semantic
5919 values that are sets (actually multisets) of possible actions. The
5920 parser tries to pick one of the actions by first finding one whose rule
5921 has the highest dynamic precedence, as set by the @samp{%dprec}
5922 declaration. Otherwise, if the alternative actions are not ordered by
5923 precedence, but there the same merging function is declared for both
5924 rules by the @samp{%merge} declaration,
5925 Bison resolves and evaluates both and then calls the merge function on
5926 the result. Otherwise, it reports an ambiguity.
5927
5928 It is possible to use a data structure for the @acronym{GLR} parsing tree that
5929 permits the processing of any @acronym{LALR}(1) grammar in linear time (in the
5930 size of the input), any unambiguous (not necessarily
5931 @acronym{LALR}(1)) grammar in
5932 quadratic worst-case time, and any general (possibly ambiguous)
5933 context-free grammar in cubic worst-case time. However, Bison currently
5934 uses a simpler data structure that requires time proportional to the
5935 length of the input times the maximum number of stacks required for any
5936 prefix of the input. Thus, really ambiguous or nondeterministic
5937 grammars can require exponential time and space to process. Such badly
5938 behaving examples, however, are not generally of practical interest.
5939 Usually, nondeterminism in a grammar is local---the parser is ``in
5940 doubt'' only for a few tokens at a time. Therefore, the current data
5941 structure should generally be adequate. On @acronym{LALR}(1) portions of a
5942 grammar, in particular, it is only slightly slower than with the default
5943 Bison parser.
5944
5945 For a more detailed exposition of @acronym{GLR} parsers, please see: Elizabeth
5946 Scott, Adrian Johnstone and Shamsa Sadaf Hussain, Tomita-Style
5947 Generalised @acronym{LR} Parsers, Royal Holloway, University of
5948 London, Department of Computer Science, TR-00-12,
5949 @uref{http://www.cs.rhul.ac.uk/research/languages/publications/tomita_style_1.ps},
5950 (2000-12-24).
5951
5952 @node Memory Management
5953 @section Memory Management, and How to Avoid Memory Exhaustion
5954 @cindex memory exhaustion
5955 @cindex memory management
5956 @cindex stack overflow
5957 @cindex parser stack overflow
5958 @cindex overflow of parser stack
5959
5960 The Bison parser stack can run out of memory if too many tokens are shifted and
5961 not reduced. When this happens, the parser function @code{yyparse}
5962 calls @code{yyerror} and then returns 2.
5963
5964 Because Bison parsers have growing stacks, hitting the upper limit
5965 usually results from using a right recursion instead of a left
5966 recursion, @xref{Recursion, ,Recursive Rules}.
5967
5968 @vindex YYMAXDEPTH
5969 By defining the macro @code{YYMAXDEPTH}, you can control how deep the
5970 parser stack can become before memory is exhausted. Define the
5971 macro with a value that is an integer. This value is the maximum number
5972 of tokens that can be shifted (and not reduced) before overflow.
5973
5974 The stack space allowed is not necessarily allocated. If you specify a
5975 large value for @code{YYMAXDEPTH}, the parser normally allocates a small
5976 stack at first, and then makes it bigger by stages as needed. This
5977 increasing allocation happens automatically and silently. Therefore,
5978 you do not need to make @code{YYMAXDEPTH} painfully small merely to save
5979 space for ordinary inputs that do not need much stack.
5980
5981 However, do not allow @code{YYMAXDEPTH} to be a value so large that
5982 arithmetic overflow could occur when calculating the size of the stack
5983 space. Also, do not allow @code{YYMAXDEPTH} to be less than
5984 @code{YYINITDEPTH}.
5985
5986 @cindex default stack limit
5987 The default value of @code{YYMAXDEPTH}, if you do not define it, is
5988 10000.
5989
5990 @vindex YYINITDEPTH
5991 You can control how much stack is allocated initially by defining the
5992 macro @code{YYINITDEPTH} to a positive integer. For the C
5993 @acronym{LALR}(1) parser, this value must be a compile-time constant
5994 unless you are assuming C99 or some other target language or compiler
5995 that allows variable-length arrays. The default is 200.
5996
5997 Do not allow @code{YYINITDEPTH} to be greater than @code{YYMAXDEPTH}.
5998
5999 @c FIXME: C++ output.
6000 Because of semantical differences between C and C++, the
6001 @acronym{LALR}(1) parsers in C produced by Bison cannot grow when compiled
6002 by C++ compilers. In this precise case (compiling a C parser as C++) you are
6003 suggested to grow @code{YYINITDEPTH}. The Bison maintainers hope to fix
6004 this deficiency in a future release.
6005
6006 @node Error Recovery
6007 @chapter Error Recovery
6008 @cindex error recovery
6009 @cindex recovery from errors
6010
6011 It is not usually acceptable to have a program terminate on a syntax
6012 error. For example, a compiler should recover sufficiently to parse the
6013 rest of the input file and check it for errors; a calculator should accept
6014 another expression.
6015
6016 In a simple interactive command parser where each input is one line, it may
6017 be sufficient to allow @code{yyparse} to return 1 on error and have the
6018 caller ignore the rest of the input line when that happens (and then call
6019 @code{yyparse} again). But this is inadequate for a compiler, because it
6020 forgets all the syntactic context leading up to the error. A syntax error
6021 deep within a function in the compiler input should not cause the compiler
6022 to treat the following line like the beginning of a source file.
6023
6024 @findex error
6025 You can define how to recover from a syntax error by writing rules to
6026 recognize the special token @code{error}. This is a terminal symbol that
6027 is always defined (you need not declare it) and reserved for error
6028 handling. The Bison parser generates an @code{error} token whenever a
6029 syntax error happens; if you have provided a rule to recognize this token
6030 in the current context, the parse can continue.
6031
6032 For example:
6033
6034 @example
6035 stmnts: /* empty string */
6036 | stmnts '\n'
6037 | stmnts exp '\n'
6038 | stmnts error '\n'
6039 @end example
6040
6041 The fourth rule in this example says that an error followed by a newline
6042 makes a valid addition to any @code{stmnts}.
6043
6044 What happens if a syntax error occurs in the middle of an @code{exp}? The
6045 error recovery rule, interpreted strictly, applies to the precise sequence
6046 of a @code{stmnts}, an @code{error} and a newline. If an error occurs in
6047 the middle of an @code{exp}, there will probably be some additional tokens
6048 and subexpressions on the stack after the last @code{stmnts}, and there
6049 will be tokens to read before the next newline. So the rule is not
6050 applicable in the ordinary way.
6051
6052 But Bison can force the situation to fit the rule, by discarding part of
6053 the semantic context and part of the input. First it discards states
6054 and objects from the stack until it gets back to a state in which the
6055 @code{error} token is acceptable. (This means that the subexpressions
6056 already parsed are discarded, back to the last complete @code{stmnts}.)
6057 At this point the @code{error} token can be shifted. Then, if the old
6058 lookahead token is not acceptable to be shifted next, the parser reads
6059 tokens and discards them until it finds a token which is acceptable. In
6060 this example, Bison reads and discards input until the next newline so
6061 that the fourth rule can apply. Note that discarded symbols are
6062 possible sources of memory leaks, see @ref{Destructor Decl, , Freeing
6063 Discarded Symbols}, for a means to reclaim this memory.
6064
6065 The choice of error rules in the grammar is a choice of strategies for
6066 error recovery. A simple and useful strategy is simply to skip the rest of
6067 the current input line or current statement if an error is detected:
6068
6069 @example
6070 stmnt: error ';' /* On error, skip until ';' is read. */
6071 @end example
6072
6073 It is also useful to recover to the matching close-delimiter of an
6074 opening-delimiter that has already been parsed. Otherwise the
6075 close-delimiter will probably appear to be unmatched, and generate another,
6076 spurious error message:
6077
6078 @example
6079 primary: '(' expr ')'
6080 | '(' error ')'
6081 @dots{}
6082 ;
6083 @end example
6084
6085 Error recovery strategies are necessarily guesses. When they guess wrong,
6086 one syntax error often leads to another. In the above example, the error
6087 recovery rule guesses that an error is due to bad input within one
6088 @code{stmnt}. Suppose that instead a spurious semicolon is inserted in the
6089 middle of a valid @code{stmnt}. After the error recovery rule recovers
6090 from the first error, another syntax error will be found straightaway,
6091 since the text following the spurious semicolon is also an invalid
6092 @code{stmnt}.
6093
6094 To prevent an outpouring of error messages, the parser will output no error
6095 message for another syntax error that happens shortly after the first; only
6096 after three consecutive input tokens have been successfully shifted will
6097 error messages resume.
6098
6099 Note that rules which accept the @code{error} token may have actions, just
6100 as any other rules can.
6101
6102 @findex yyerrok
6103 You can make error messages resume immediately by using the macro
6104 @code{yyerrok} in an action. If you do this in the error rule's action, no
6105 error messages will be suppressed. This macro requires no arguments;
6106 @samp{yyerrok;} is a valid C statement.
6107
6108 @findex yyclearin
6109 The previous lookahead token is reanalyzed immediately after an error. If
6110 this is unacceptable, then the macro @code{yyclearin} may be used to clear
6111 this token. Write the statement @samp{yyclearin;} in the error rule's
6112 action.
6113 @xref{Action Features, ,Special Features for Use in Actions}.
6114
6115 For example, suppose that on a syntax error, an error handling routine is
6116 called that advances the input stream to some point where parsing should
6117 once again commence. The next symbol returned by the lexical scanner is
6118 probably correct. The previous lookahead token ought to be discarded
6119 with @samp{yyclearin;}.
6120
6121 @vindex YYRECOVERING
6122 The expression @code{YYRECOVERING ()} yields 1 when the parser
6123 is recovering from a syntax error, and 0 otherwise.
6124 Syntax error diagnostics are suppressed while recovering from a syntax
6125 error.
6126
6127 @node Context Dependency
6128 @chapter Handling Context Dependencies
6129
6130 The Bison paradigm is to parse tokens first, then group them into larger
6131 syntactic units. In many languages, the meaning of a token is affected by
6132 its context. Although this violates the Bison paradigm, certain techniques
6133 (known as @dfn{kludges}) may enable you to write Bison parsers for such
6134 languages.
6135
6136 @menu
6137 * Semantic Tokens:: Token parsing can depend on the semantic context.
6138 * Lexical Tie-ins:: Token parsing can depend on the syntactic context.
6139 * Tie-in Recovery:: Lexical tie-ins have implications for how
6140 error recovery rules must be written.
6141 @end menu
6142
6143 (Actually, ``kludge'' means any technique that gets its job done but is
6144 neither clean nor robust.)
6145
6146 @node Semantic Tokens
6147 @section Semantic Info in Token Types
6148
6149 The C language has a context dependency: the way an identifier is used
6150 depends on what its current meaning is. For example, consider this:
6151
6152 @example
6153 foo (x);
6154 @end example
6155
6156 This looks like a function call statement, but if @code{foo} is a typedef
6157 name, then this is actually a declaration of @code{x}. How can a Bison
6158 parser for C decide how to parse this input?
6159
6160 The method used in @acronym{GNU} C is to have two different token types,
6161 @code{IDENTIFIER} and @code{TYPENAME}. When @code{yylex} finds an
6162 identifier, it looks up the current declaration of the identifier in order
6163 to decide which token type to return: @code{TYPENAME} if the identifier is
6164 declared as a typedef, @code{IDENTIFIER} otherwise.
6165
6166 The grammar rules can then express the context dependency by the choice of
6167 token type to recognize. @code{IDENTIFIER} is accepted as an expression,
6168 but @code{TYPENAME} is not. @code{TYPENAME} can start a declaration, but
6169 @code{IDENTIFIER} cannot. In contexts where the meaning of the identifier
6170 is @emph{not} significant, such as in declarations that can shadow a
6171 typedef name, either @code{TYPENAME} or @code{IDENTIFIER} is
6172 accepted---there is one rule for each of the two token types.
6173
6174 This technique is simple to use if the decision of which kinds of
6175 identifiers to allow is made at a place close to where the identifier is
6176 parsed. But in C this is not always so: C allows a declaration to
6177 redeclare a typedef name provided an explicit type has been specified
6178 earlier:
6179
6180 @example
6181 typedef int foo, bar;
6182 int baz (void)
6183 @{
6184 static bar (bar); /* @r{redeclare @code{bar} as static variable} */
6185 extern foo foo (foo); /* @r{redeclare @code{foo} as function} */
6186 return foo (bar);
6187 @}
6188 @end example
6189
6190 Unfortunately, the name being declared is separated from the declaration
6191 construct itself by a complicated syntactic structure---the ``declarator''.
6192
6193 As a result, part of the Bison parser for C needs to be duplicated, with
6194 all the nonterminal names changed: once for parsing a declaration in
6195 which a typedef name can be redefined, and once for parsing a
6196 declaration in which that can't be done. Here is a part of the
6197 duplication, with actions omitted for brevity:
6198
6199 @example
6200 initdcl:
6201 declarator maybeasm '='
6202 init
6203 | declarator maybeasm
6204 ;
6205
6206 notype_initdcl:
6207 notype_declarator maybeasm '='
6208 init
6209 | notype_declarator maybeasm
6210 ;
6211 @end example
6212
6213 @noindent
6214 Here @code{initdcl} can redeclare a typedef name, but @code{notype_initdcl}
6215 cannot. The distinction between @code{declarator} and
6216 @code{notype_declarator} is the same sort of thing.
6217
6218 There is some similarity between this technique and a lexical tie-in
6219 (described next), in that information which alters the lexical analysis is
6220 changed during parsing by other parts of the program. The difference is
6221 here the information is global, and is used for other purposes in the
6222 program. A true lexical tie-in has a special-purpose flag controlled by
6223 the syntactic context.
6224
6225 @node Lexical Tie-ins
6226 @section Lexical Tie-ins
6227 @cindex lexical tie-in
6228
6229 One way to handle context-dependency is the @dfn{lexical tie-in}: a flag
6230 which is set by Bison actions, whose purpose is to alter the way tokens are
6231 parsed.
6232
6233 For example, suppose we have a language vaguely like C, but with a special
6234 construct @samp{hex (@var{hex-expr})}. After the keyword @code{hex} comes
6235 an expression in parentheses in which all integers are hexadecimal. In
6236 particular, the token @samp{a1b} must be treated as an integer rather than
6237 as an identifier if it appears in that context. Here is how you can do it:
6238
6239 @example
6240 @group
6241 %@{
6242 int hexflag;
6243 int yylex (void);
6244 void yyerror (char const *);
6245 %@}
6246 %%
6247 @dots{}
6248 @end group
6249 @group
6250 expr: IDENTIFIER
6251 | constant
6252 | HEX '('
6253 @{ hexflag = 1; @}
6254 expr ')'
6255 @{ hexflag = 0;
6256 $$ = $4; @}
6257 | expr '+' expr
6258 @{ $$ = make_sum ($1, $3); @}
6259 @dots{}
6260 ;
6261 @end group
6262
6263 @group
6264 constant:
6265 INTEGER
6266 | STRING
6267 ;
6268 @end group
6269 @end example
6270
6271 @noindent
6272 Here we assume that @code{yylex} looks at the value of @code{hexflag}; when
6273 it is nonzero, all integers are parsed in hexadecimal, and tokens starting
6274 with letters are parsed as integers if possible.
6275
6276 The declaration of @code{hexflag} shown in the prologue of the parser file
6277 is needed to make it accessible to the actions (@pxref{Prologue, ,The Prologue}).
6278 You must also write the code in @code{yylex} to obey the flag.
6279
6280 @node Tie-in Recovery
6281 @section Lexical Tie-ins and Error Recovery
6282
6283 Lexical tie-ins make strict demands on any error recovery rules you have.
6284 @xref{Error Recovery}.
6285
6286 The reason for this is that the purpose of an error recovery rule is to
6287 abort the parsing of one construct and resume in some larger construct.
6288 For example, in C-like languages, a typical error recovery rule is to skip
6289 tokens until the next semicolon, and then start a new statement, like this:
6290
6291 @example
6292 stmt: expr ';'
6293 | IF '(' expr ')' stmt @{ @dots{} @}
6294 @dots{}
6295 error ';'
6296 @{ hexflag = 0; @}
6297 ;
6298 @end example
6299
6300 If there is a syntax error in the middle of a @samp{hex (@var{expr})}
6301 construct, this error rule will apply, and then the action for the
6302 completed @samp{hex (@var{expr})} will never run. So @code{hexflag} would
6303 remain set for the entire rest of the input, or until the next @code{hex}
6304 keyword, causing identifiers to be misinterpreted as integers.
6305
6306 To avoid this problem the error recovery rule itself clears @code{hexflag}.
6307
6308 There may also be an error recovery rule that works within expressions.
6309 For example, there could be a rule which applies within parentheses
6310 and skips to the close-parenthesis:
6311
6312 @example
6313 @group
6314 expr: @dots{}
6315 | '(' expr ')'
6316 @{ $$ = $2; @}
6317 | '(' error ')'
6318 @dots{}
6319 @end group
6320 @end example
6321
6322 If this rule acts within the @code{hex} construct, it is not going to abort
6323 that construct (since it applies to an inner level of parentheses within
6324 the construct). Therefore, it should not clear the flag: the rest of
6325 the @code{hex} construct should be parsed with the flag still in effect.
6326
6327 What if there is an error recovery rule which might abort out of the
6328 @code{hex} construct or might not, depending on circumstances? There is no
6329 way you can write the action to determine whether a @code{hex} construct is
6330 being aborted or not. So if you are using a lexical tie-in, you had better
6331 make sure your error recovery rules are not of this kind. Each rule must
6332 be such that you can be sure that it always will, or always won't, have to
6333 clear the flag.
6334
6335 @c ================================================== Debugging Your Parser
6336
6337 @node Debugging
6338 @chapter Debugging Your Parser
6339
6340 Developing a parser can be a challenge, especially if you don't
6341 understand the algorithm (@pxref{Algorithm, ,The Bison Parser
6342 Algorithm}). Even so, sometimes a detailed description of the automaton
6343 can help (@pxref{Understanding, , Understanding Your Parser}), or
6344 tracing the execution of the parser can give some insight on why it
6345 behaves improperly (@pxref{Tracing, , Tracing Your Parser}).
6346
6347 @menu
6348 * Understanding:: Understanding the structure of your parser.
6349 * Tracing:: Tracing the execution of your parser.
6350 @end menu
6351
6352 @node Understanding
6353 @section Understanding Your Parser
6354
6355 As documented elsewhere (@pxref{Algorithm, ,The Bison Parser Algorithm})
6356 Bison parsers are @dfn{shift/reduce automata}. In some cases (much more
6357 frequent than one would hope), looking at this automaton is required to
6358 tune or simply fix a parser. Bison provides two different
6359 representation of it, either textually or graphically (as a @acronym{VCG}
6360 file).
6361
6362 The textual file is generated when the options @option{--report} or
6363 @option{--verbose} are specified, see @xref{Invocation, , Invoking
6364 Bison}. Its name is made by removing @samp{.tab.c} or @samp{.c} from
6365 the parser output file name, and adding @samp{.output} instead.
6366 Therefore, if the input file is @file{foo.y}, then the parser file is
6367 called @file{foo.tab.c} by default. As a consequence, the verbose
6368 output file is called @file{foo.output}.
6369
6370 The following grammar file, @file{calc.y}, will be used in the sequel:
6371
6372 @example
6373 %token NUM STR
6374 %left '+' '-'
6375 %left '*'
6376 %%
6377 exp: exp '+' exp
6378 | exp '-' exp
6379 | exp '*' exp
6380 | exp '/' exp
6381 | NUM
6382 ;
6383 useless: STR;
6384 %%
6385 @end example
6386
6387 @command{bison} reports:
6388
6389 @example
6390 calc.y: warning: 1 useless nonterminal and 1 useless rule
6391 calc.y:11.1-7: warning: useless nonterminal: useless
6392 calc.y:11.10-12: warning: useless rule: useless: STR
6393 calc.y: conflicts: 7 shift/reduce
6394 @end example
6395
6396 When given @option{--report=state}, in addition to @file{calc.tab.c}, it
6397 creates a file @file{calc.output} with contents detailed below. The
6398 order of the output and the exact presentation might vary, but the
6399 interpretation is the same.
6400
6401 The first section includes details on conflicts that were solved thanks
6402 to precedence and/or associativity:
6403
6404 @example
6405 Conflict in state 8 between rule 2 and token '+' resolved as reduce.
6406 Conflict in state 8 between rule 2 and token '-' resolved as reduce.
6407 Conflict in state 8 between rule 2 and token '*' resolved as shift.
6408 @exdent @dots{}
6409 @end example
6410
6411 @noindent
6412 The next section lists states that still have conflicts.
6413
6414 @example
6415 State 8 conflicts: 1 shift/reduce
6416 State 9 conflicts: 1 shift/reduce
6417 State 10 conflicts: 1 shift/reduce
6418 State 11 conflicts: 4 shift/reduce
6419 @end example
6420
6421 @noindent
6422 @cindex token, useless
6423 @cindex useless token
6424 @cindex nonterminal, useless
6425 @cindex useless nonterminal
6426 @cindex rule, useless
6427 @cindex useless rule
6428 The next section reports useless tokens, nonterminal and rules. Useless
6429 nonterminals and rules are removed in order to produce a smaller parser,
6430 but useless tokens are preserved, since they might be used by the
6431 scanner (note the difference between ``useless'' and ``not used''
6432 below):
6433
6434 @example
6435 Useless nonterminals:
6436 useless
6437
6438 Terminals which are not used:
6439 STR
6440
6441 Useless rules:
6442 #6 useless: STR;
6443 @end example
6444
6445 @noindent
6446 The next section reproduces the exact grammar that Bison used:
6447
6448 @example
6449 Grammar
6450
6451 Number, Line, Rule
6452 0 5 $accept -> exp $end
6453 1 5 exp -> exp '+' exp
6454 2 6 exp -> exp '-' exp
6455 3 7 exp -> exp '*' exp
6456 4 8 exp -> exp '/' exp
6457 5 9 exp -> NUM
6458 @end example
6459
6460 @noindent
6461 and reports the uses of the symbols:
6462
6463 @example
6464 Terminals, with rules where they appear
6465
6466 $end (0) 0
6467 '*' (42) 3
6468 '+' (43) 1
6469 '-' (45) 2
6470 '/' (47) 4
6471 error (256)
6472 NUM (258) 5
6473
6474 Nonterminals, with rules where they appear
6475
6476 $accept (8)
6477 on left: 0
6478 exp (9)
6479 on left: 1 2 3 4 5, on right: 0 1 2 3 4
6480 @end example
6481
6482 @noindent
6483 @cindex item
6484 @cindex pointed rule
6485 @cindex rule, pointed
6486 Bison then proceeds onto the automaton itself, describing each state
6487 with it set of @dfn{items}, also known as @dfn{pointed rules}. Each
6488 item is a production rule together with a point (marked by @samp{.})
6489 that the input cursor.
6490
6491 @example
6492 state 0
6493
6494 $accept -> . exp $ (rule 0)
6495
6496 NUM shift, and go to state 1
6497
6498 exp go to state 2
6499 @end example
6500
6501 This reads as follows: ``state 0 corresponds to being at the very
6502 beginning of the parsing, in the initial rule, right before the start
6503 symbol (here, @code{exp}). When the parser returns to this state right
6504 after having reduced a rule that produced an @code{exp}, the control
6505 flow jumps to state 2. If there is no such transition on a nonterminal
6506 symbol, and the lookahead is a @code{NUM}, then this token is shifted on
6507 the parse stack, and the control flow jumps to state 1. Any other
6508 lookahead triggers a syntax error.''
6509
6510 @cindex core, item set
6511 @cindex item set core
6512 @cindex kernel, item set
6513 @cindex item set core
6514 Even though the only active rule in state 0 seems to be rule 0, the
6515 report lists @code{NUM} as a lookahead token because @code{NUM} can be
6516 at the beginning of any rule deriving an @code{exp}. By default Bison
6517 reports the so-called @dfn{core} or @dfn{kernel} of the item set, but if
6518 you want to see more detail you can invoke @command{bison} with
6519 @option{--report=itemset} to list all the items, include those that can
6520 be derived:
6521
6522 @example
6523 state 0
6524
6525 $accept -> . exp $ (rule 0)
6526 exp -> . exp '+' exp (rule 1)
6527 exp -> . exp '-' exp (rule 2)
6528 exp -> . exp '*' exp (rule 3)
6529 exp -> . exp '/' exp (rule 4)
6530 exp -> . NUM (rule 5)
6531
6532 NUM shift, and go to state 1
6533
6534 exp go to state 2
6535 @end example
6536
6537 @noindent
6538 In the state 1...
6539
6540 @example
6541 state 1
6542
6543 exp -> NUM . (rule 5)
6544
6545 $default reduce using rule 5 (exp)
6546 @end example
6547
6548 @noindent
6549 the rule 5, @samp{exp: NUM;}, is completed. Whatever the lookahead token
6550 (@samp{$default}), the parser will reduce it. If it was coming from
6551 state 0, then, after this reduction it will return to state 0, and will
6552 jump to state 2 (@samp{exp: go to state 2}).
6553
6554 @example
6555 state 2
6556
6557 $accept -> exp . $ (rule 0)
6558 exp -> exp . '+' exp (rule 1)
6559 exp -> exp . '-' exp (rule 2)
6560 exp -> exp . '*' exp (rule 3)
6561 exp -> exp . '/' exp (rule 4)
6562
6563 $ shift, and go to state 3
6564 '+' shift, and go to state 4
6565 '-' shift, and go to state 5
6566 '*' shift, and go to state 6
6567 '/' shift, and go to state 7
6568 @end example
6569
6570 @noindent
6571 In state 2, the automaton can only shift a symbol. For instance,
6572 because of the item @samp{exp -> exp . '+' exp}, if the lookahead if
6573 @samp{+}, it will be shifted on the parse stack, and the automaton
6574 control will jump to state 4, corresponding to the item @samp{exp -> exp
6575 '+' . exp}. Since there is no default action, any other token than
6576 those listed above will trigger a syntax error.
6577
6578 The state 3 is named the @dfn{final state}, or the @dfn{accepting
6579 state}:
6580
6581 @example
6582 state 3
6583
6584 $accept -> exp $ . (rule 0)
6585
6586 $default accept
6587 @end example
6588
6589 @noindent
6590 the initial rule is completed (the start symbol and the end
6591 of input were read), the parsing exits successfully.
6592
6593 The interpretation of states 4 to 7 is straightforward, and is left to
6594 the reader.
6595
6596 @example
6597 state 4
6598
6599 exp -> exp '+' . exp (rule 1)
6600
6601 NUM shift, and go to state 1
6602
6603 exp go to state 8
6604
6605 state 5
6606
6607 exp -> exp '-' . exp (rule 2)
6608
6609 NUM shift, and go to state 1
6610
6611 exp go to state 9
6612
6613 state 6
6614
6615 exp -> exp '*' . exp (rule 3)
6616
6617 NUM shift, and go to state 1
6618
6619 exp go to state 10
6620
6621 state 7
6622
6623 exp -> exp '/' . exp (rule 4)
6624
6625 NUM shift, and go to state 1
6626
6627 exp go to state 11
6628 @end example
6629
6630 As was announced in beginning of the report, @samp{State 8 conflicts:
6631 1 shift/reduce}:
6632
6633 @example
6634 state 8
6635
6636 exp -> exp . '+' exp (rule 1)
6637 exp -> exp '+' exp . (rule 1)
6638 exp -> exp . '-' exp (rule 2)
6639 exp -> exp . '*' exp (rule 3)
6640 exp -> exp . '/' exp (rule 4)
6641
6642 '*' shift, and go to state 6
6643 '/' shift, and go to state 7
6644
6645 '/' [reduce using rule 1 (exp)]
6646 $default reduce using rule 1 (exp)
6647 @end example
6648
6649 Indeed, there are two actions associated to the lookahead @samp{/}:
6650 either shifting (and going to state 7), or reducing rule 1. The
6651 conflict means that either the grammar is ambiguous, or the parser lacks
6652 information to make the right decision. Indeed the grammar is
6653 ambiguous, as, since we did not specify the precedence of @samp{/}, the
6654 sentence @samp{NUM + NUM / NUM} can be parsed as @samp{NUM + (NUM /
6655 NUM)}, which corresponds to shifting @samp{/}, or as @samp{(NUM + NUM) /
6656 NUM}, which corresponds to reducing rule 1.
6657
6658 Because in @acronym{LALR}(1) parsing a single decision can be made, Bison
6659 arbitrarily chose to disable the reduction, see @ref{Shift/Reduce, ,
6660 Shift/Reduce Conflicts}. Discarded actions are reported in between
6661 square brackets.
6662
6663 Note that all the previous states had a single possible action: either
6664 shifting the next token and going to the corresponding state, or
6665 reducing a single rule. In the other cases, i.e., when shifting
6666 @emph{and} reducing is possible or when @emph{several} reductions are
6667 possible, the lookahead is required to select the action. State 8 is
6668 one such state: if the lookahead is @samp{*} or @samp{/} then the action
6669 is shifting, otherwise the action is reducing rule 1. In other words,
6670 the first two items, corresponding to rule 1, are not eligible when the
6671 lookahead token is @samp{*}, since we specified that @samp{*} has higher
6672 precedence than @samp{+}. More generally, some items are eligible only
6673 with some set of possible lookahead tokens. When run with
6674 @option{--report=lookahead}, Bison specifies these lookahead tokens:
6675
6676 @example
6677 state 8
6678
6679 exp -> exp . '+' exp [$, '+', '-', '/'] (rule 1)
6680 exp -> exp '+' exp . [$, '+', '-', '/'] (rule 1)
6681 exp -> exp . '-' exp (rule 2)
6682 exp -> exp . '*' exp (rule 3)
6683 exp -> exp . '/' exp (rule 4)
6684
6685 '*' shift, and go to state 6
6686 '/' shift, and go to state 7
6687
6688 '/' [reduce using rule 1 (exp)]
6689 $default reduce using rule 1 (exp)
6690 @end example
6691
6692 The remaining states are similar:
6693
6694 @example
6695 state 9
6696
6697 exp -> exp . '+' exp (rule 1)
6698 exp -> exp . '-' exp (rule 2)
6699 exp -> exp '-' exp . (rule 2)
6700 exp -> exp . '*' exp (rule 3)
6701 exp -> exp . '/' exp (rule 4)
6702
6703 '*' shift, and go to state 6
6704 '/' shift, and go to state 7
6705
6706 '/' [reduce using rule 2 (exp)]
6707 $default reduce using rule 2 (exp)
6708
6709 state 10
6710
6711 exp -> exp . '+' exp (rule 1)
6712 exp -> exp . '-' exp (rule 2)
6713 exp -> exp . '*' exp (rule 3)
6714 exp -> exp '*' exp . (rule 3)
6715 exp -> exp . '/' exp (rule 4)
6716
6717 '/' shift, and go to state 7
6718
6719 '/' [reduce using rule 3 (exp)]
6720 $default reduce using rule 3 (exp)
6721
6722 state 11
6723
6724 exp -> exp . '+' exp (rule 1)
6725 exp -> exp . '-' exp (rule 2)
6726 exp -> exp . '*' exp (rule 3)
6727 exp -> exp . '/' exp (rule 4)
6728 exp -> exp '/' exp . (rule 4)
6729
6730 '+' shift, and go to state 4
6731 '-' shift, and go to state 5
6732 '*' shift, and go to state 6
6733 '/' shift, and go to state 7
6734
6735 '+' [reduce using rule 4 (exp)]
6736 '-' [reduce using rule 4 (exp)]
6737 '*' [reduce using rule 4 (exp)]
6738 '/' [reduce using rule 4 (exp)]
6739 $default reduce using rule 4 (exp)
6740 @end example
6741
6742 @noindent
6743 Observe that state 11 contains conflicts not only due to the lack of
6744 precedence of @samp{/} with respect to @samp{+}, @samp{-}, and
6745 @samp{*}, but also because the
6746 associativity of @samp{/} is not specified.
6747
6748
6749 @node Tracing
6750 @section Tracing Your Parser
6751 @findex yydebug
6752 @cindex debugging
6753 @cindex tracing the parser
6754
6755 If a Bison grammar compiles properly but doesn't do what you want when it
6756 runs, the @code{yydebug} parser-trace feature can help you figure out why.
6757
6758 There are several means to enable compilation of trace facilities:
6759
6760 @table @asis
6761 @item the macro @code{YYDEBUG}
6762 @findex YYDEBUG
6763 Define the macro @code{YYDEBUG} to a nonzero value when you compile the
6764 parser. This is compliant with @acronym{POSIX} Yacc. You could use
6765 @samp{-DYYDEBUG=1} as a compiler option or you could put @samp{#define
6766 YYDEBUG 1} in the prologue of the grammar file (@pxref{Prologue, , The
6767 Prologue}).
6768
6769 @item the option @option{-t}, @option{--debug}
6770 Use the @samp{-t} option when you run Bison (@pxref{Invocation,
6771 ,Invoking Bison}). This is @acronym{POSIX} compliant too.
6772
6773 @item the directive @samp{%debug}
6774 @findex %debug
6775 Add the @code{%debug} directive (@pxref{Decl Summary, ,Bison
6776 Declaration Summary}). This is a Bison extension, which will prove
6777 useful when Bison will output parsers for languages that don't use a
6778 preprocessor. Unless @acronym{POSIX} and Yacc portability matter to
6779 you, this is
6780 the preferred solution.
6781 @end table
6782
6783 We suggest that you always enable the debug option so that debugging is
6784 always possible.
6785
6786 The trace facility outputs messages with macro calls of the form
6787 @code{YYFPRINTF (stderr, @var{format}, @var{args})} where
6788 @var{format} and @var{args} are the usual @code{printf} format and
6789 arguments. If you define @code{YYDEBUG} to a nonzero value but do not
6790 define @code{YYFPRINTF}, @code{<stdio.h>} is automatically included
6791 and @code{YYFPRINTF} is defined to @code{fprintf}.
6792
6793 Once you have compiled the program with trace facilities, the way to
6794 request a trace is to store a nonzero value in the variable @code{yydebug}.
6795 You can do this by making the C code do it (in @code{main}, perhaps), or
6796 you can alter the value with a C debugger.
6797
6798 Each step taken by the parser when @code{yydebug} is nonzero produces a
6799 line or two of trace information, written on @code{stderr}. The trace
6800 messages tell you these things:
6801
6802 @itemize @bullet
6803 @item
6804 Each time the parser calls @code{yylex}, what kind of token was read.
6805
6806 @item
6807 Each time a token is shifted, the depth and complete contents of the
6808 state stack (@pxref{Parser States}).
6809
6810 @item
6811 Each time a rule is reduced, which rule it is, and the complete contents
6812 of the state stack afterward.
6813 @end itemize
6814
6815 To make sense of this information, it helps to refer to the listing file
6816 produced by the Bison @samp{-v} option (@pxref{Invocation, ,Invoking
6817 Bison}). This file shows the meaning of each state in terms of
6818 positions in various rules, and also what each state will do with each
6819 possible input token. As you read the successive trace messages, you
6820 can see that the parser is functioning according to its specification in
6821 the listing file. Eventually you will arrive at the place where
6822 something undesirable happens, and you will see which parts of the
6823 grammar are to blame.
6824
6825 The parser file is a C program and you can use C debuggers on it, but it's
6826 not easy to interpret what it is doing. The parser function is a
6827 finite-state machine interpreter, and aside from the actions it executes
6828 the same code over and over. Only the values of variables show where in
6829 the grammar it is working.
6830
6831 @findex YYPRINT
6832 The debugging information normally gives the token type of each token
6833 read, but not its semantic value. You can optionally define a macro
6834 named @code{YYPRINT} to provide a way to print the value. If you define
6835 @code{YYPRINT}, it should take three arguments. The parser will pass a
6836 standard I/O stream, the numeric code for the token type, and the token
6837 value (from @code{yylval}).
6838
6839 Here is an example of @code{YYPRINT} suitable for the multi-function
6840 calculator (@pxref{Mfcalc Decl, ,Declarations for @code{mfcalc}}):
6841
6842 @smallexample
6843 %@{
6844 static void print_token_value (FILE *, int, YYSTYPE);
6845 #define YYPRINT(file, type, value) print_token_value (file, type, value)
6846 %@}
6847
6848 @dots{} %% @dots{} %% @dots{}
6849
6850 static void
6851 print_token_value (FILE *file, int type, YYSTYPE value)
6852 @{
6853 if (type == VAR)
6854 fprintf (file, "%s", value.tptr->name);
6855 else if (type == NUM)
6856 fprintf (file, "%d", value.val);
6857 @}
6858 @end smallexample
6859
6860 @c ================================================= Invoking Bison
6861
6862 @node Invocation
6863 @chapter Invoking Bison
6864 @cindex invoking Bison
6865 @cindex Bison invocation
6866 @cindex options for invoking Bison
6867
6868 The usual way to invoke Bison is as follows:
6869
6870 @example
6871 bison @var{infile}
6872 @end example
6873
6874 Here @var{infile} is the grammar file name, which usually ends in
6875 @samp{.y}. The parser file's name is made by replacing the @samp{.y}
6876 with @samp{.tab.c} and removing any leading directory. Thus, the
6877 @samp{bison foo.y} file name yields
6878 @file{foo.tab.c}, and the @samp{bison hack/foo.y} file name yields
6879 @file{foo.tab.c}. It's also possible, in case you are writing
6880 C++ code instead of C in your grammar file, to name it @file{foo.ypp}
6881 or @file{foo.y++}. Then, the output files will take an extension like
6882 the given one as input (respectively @file{foo.tab.cpp} and
6883 @file{foo.tab.c++}).
6884 This feature takes effect with all options that manipulate file names like
6885 @samp{-o} or @samp{-d}.
6886
6887 For example :
6888
6889 @example
6890 bison -d @var{infile.yxx}
6891 @end example
6892 @noindent
6893 will produce @file{infile.tab.cxx} and @file{infile.tab.hxx}, and
6894
6895 @example
6896 bison -d -o @var{output.c++} @var{infile.y}
6897 @end example
6898 @noindent
6899 will produce @file{output.c++} and @file{outfile.h++}.
6900
6901 For compatibility with @acronym{POSIX}, the standard Bison
6902 distribution also contains a shell script called @command{yacc} that
6903 invokes Bison with the @option{-y} option.
6904
6905 @menu
6906 * Bison Options:: All the options described in detail,
6907 in alphabetical order by short options.
6908 * Option Cross Key:: Alphabetical list of long options.
6909 * Yacc Library:: Yacc-compatible @code{yylex} and @code{main}.
6910 @end menu
6911
6912 @node Bison Options
6913 @section Bison Options
6914
6915 Bison supports both traditional single-letter options and mnemonic long
6916 option names. Long option names are indicated with @samp{--} instead of
6917 @samp{-}. Abbreviations for option names are allowed as long as they
6918 are unique. When a long option takes an argument, like
6919 @samp{--file-prefix}, connect the option name and the argument with
6920 @samp{=}.
6921
6922 Here is a list of options that can be used with Bison, alphabetized by
6923 short option. It is followed by a cross key alphabetized by long
6924 option.
6925
6926 @c Please, keep this ordered as in `bison --help'.
6927 @noindent
6928 Operations modes:
6929 @table @option
6930 @item -h
6931 @itemx --help
6932 Print a summary of the command-line options to Bison and exit.
6933
6934 @item -V
6935 @itemx --version
6936 Print the version number of Bison and exit.
6937
6938 @item --print-localedir
6939 Print the name of the directory containing locale-dependent data.
6940
6941 @item -y
6942 @itemx --yacc
6943 Act more like the traditional Yacc command. This can cause
6944 different diagnostics to be generated, and may change behavior in
6945 other minor ways. Most importantly, imitate Yacc's output
6946 file name conventions, so that the parser output file is called
6947 @file{y.tab.c}, and the other outputs are called @file{y.output} and
6948 @file{y.tab.h}.
6949 Also, if generating an @acronym{LALR}(1) parser in C, generate @code{#define}
6950 statements in addition to an @code{enum} to associate token numbers with token
6951 names.
6952 Thus, the following shell script can substitute for Yacc, and the Bison
6953 distribution contains such a script for compatibility with @acronym{POSIX}:
6954
6955 @example
6956 #! /bin/sh
6957 bison -y "$@@"
6958 @end example
6959
6960 The @option{-y}/@option{--yacc} option is intended for use with
6961 traditional Yacc grammars. If your grammar uses a Bison extension
6962 like @samp{%glr-parser}, Bison might not be Yacc-compatible even if
6963 this option is specified.
6964
6965 @end table
6966
6967 @noindent
6968 Tuning the parser:
6969
6970 @table @option
6971 @item -S @var{file}
6972 @itemx --skeleton=@var{file}
6973 Specify the skeleton to use. You probably don't need this option unless
6974 you are developing Bison.
6975
6976 @item -t
6977 @itemx --debug
6978 In the parser file, define the macro @code{YYDEBUG} to 1 if it is not
6979 already defined, so that the debugging facilities are compiled.
6980 @xref{Tracing, ,Tracing Your Parser}.
6981
6982 @item --locations
6983 Pretend that @code{%locations} was specified. @xref{Decl Summary}.
6984
6985 @item -p @var{prefix}
6986 @itemx --name-prefix=@var{prefix}
6987 Pretend that @code{%name-prefix="@var{prefix}"} was specified.
6988 @xref{Decl Summary}.
6989
6990 @item -l
6991 @itemx --no-lines
6992 Don't put any @code{#line} preprocessor commands in the parser file.
6993 Ordinarily Bison puts them in the parser file so that the C compiler
6994 and debuggers will associate errors with your source file, the
6995 grammar file. This option causes them to associate errors with the
6996 parser file, treating it as an independent source file in its own right.
6997
6998 @item -n
6999 @itemx --no-parser
7000 Pretend that @code{%no-parser} was specified. @xref{Decl Summary}.
7001
7002 @item -k
7003 @itemx --token-table
7004 Pretend that @code{%token-table} was specified. @xref{Decl Summary}.
7005 @end table
7006
7007 @noindent
7008 Adjust the output:
7009
7010 @table @option
7011 @item -d
7012 @itemx --defines
7013 Pretend that @code{%defines} was specified, i.e., write an extra output
7014 file containing macro definitions for the token type names defined in
7015 the grammar, as well as a few other declarations. @xref{Decl Summary}.
7016
7017 @item --defines=@var{defines-file}
7018 Same as above, but save in the file @var{defines-file}.
7019
7020 @item -b @var{file-prefix}
7021 @itemx --file-prefix=@var{prefix}
7022 Pretend that @code{%file-prefix} was specified, i.e., specify prefix to use
7023 for all Bison output file names. @xref{Decl Summary}.
7024
7025 @item -r @var{things}
7026 @itemx --report=@var{things}
7027 Write an extra output file containing verbose description of the comma
7028 separated list of @var{things} among:
7029
7030 @table @code
7031 @item state
7032 Description of the grammar, conflicts (resolved and unresolved), and
7033 @acronym{LALR} automaton.
7034
7035 @item lookahead
7036 Implies @code{state} and augments the description of the automaton with
7037 each rule's lookahead set.
7038
7039 @item itemset
7040 Implies @code{state} and augments the description of the automaton with
7041 the full set of items for each state, instead of its core only.
7042 @end table
7043
7044 @item -v
7045 @itemx --verbose
7046 Pretend that @code{%verbose} was specified, i.e., write an extra output
7047 file containing verbose descriptions of the grammar and
7048 parser. @xref{Decl Summary}.
7049
7050 @item -o @var{file}
7051 @itemx --output=@var{file}
7052 Specify the @var{file} for the parser file.
7053
7054 The other output files' names are constructed from @var{file} as
7055 described under the @samp{-v} and @samp{-d} options.
7056
7057 @item -g
7058 Output a @acronym{VCG} definition of the @acronym{LALR}(1) grammar
7059 automaton computed by Bison. If the grammar file is @file{foo.y}, the
7060 @acronym{VCG} output file will
7061 be @file{foo.vcg}.
7062
7063 @item --graph=@var{graph-file}
7064 The behavior of @var{--graph} is the same than @samp{-g}. The only
7065 difference is that it has an optional argument which is the name of
7066 the output graph file.
7067 @end table
7068
7069 @node Option Cross Key
7070 @section Option Cross Key
7071
7072 @c FIXME: How about putting the directives too?
7073 Here is a list of options, alphabetized by long option, to help you find
7074 the corresponding short option.
7075
7076 @multitable {@option{--defines=@var{defines-file}}} {@option{-b @var{file-prefix}XXX}}
7077 @headitem Long Option @tab Short Option
7078 @item @option{--debug} @tab @option{-t}
7079 @item @option{--defines=@var{defines-file}} @tab @option{-d}
7080 @item @option{--file-prefix=@var{prefix}} @tab @option{-b @var{file-prefix}}
7081 @item @option{--graph=@var{graph-file}} @tab @option{-d}
7082 @item @option{--help} @tab @option{-h}
7083 @item @option{--name-prefix=@var{prefix}} @tab @option{-p @var{name-prefix}}
7084 @item @option{--no-lines} @tab @option{-l}
7085 @item @option{--no-parser} @tab @option{-n}
7086 @item @option{--output=@var{outfile}} @tab @option{-o @var{outfile}}
7087 @item @option{--print-localedir} @tab
7088 @item @option{--token-table} @tab @option{-k}
7089 @item @option{--verbose} @tab @option{-v}
7090 @item @option{--version} @tab @option{-V}
7091 @item @option{--yacc} @tab @option{-y}
7092 @end multitable
7093
7094 @node Yacc Library
7095 @section Yacc Library
7096
7097 The Yacc library contains default implementations of the
7098 @code{yyerror} and @code{main} functions. These default
7099 implementations are normally not useful, but @acronym{POSIX} requires
7100 them. To use the Yacc library, link your program with the
7101 @option{-ly} option. Note that Bison's implementation of the Yacc
7102 library is distributed under the terms of the @acronym{GNU} General
7103 Public License (@pxref{Copying}).
7104
7105 If you use the Yacc library's @code{yyerror} function, you should
7106 declare @code{yyerror} as follows:
7107
7108 @example
7109 int yyerror (char const *);
7110 @end example
7111
7112 Bison ignores the @code{int} value returned by this @code{yyerror}.
7113 If you use the Yacc library's @code{main} function, your
7114 @code{yyparse} function should have the following type signature:
7115
7116 @example
7117 int yyparse (void);
7118 @end example
7119
7120 @c ================================================= C++ Bison
7121
7122 @node C++ Language Interface
7123 @chapter C++ Language Interface
7124
7125 @menu
7126 * C++ Parsers:: The interface to generate C++ parser classes
7127 * A Complete C++ Example:: Demonstrating their use
7128 @end menu
7129
7130 @node C++ Parsers
7131 @section C++ Parsers
7132
7133 @menu
7134 * C++ Bison Interface:: Asking for C++ parser generation
7135 * C++ Semantic Values:: %union vs. C++
7136 * C++ Location Values:: The position and location classes
7137 * C++ Parser Interface:: Instantiating and running the parser
7138 * C++ Scanner Interface:: Exchanges between yylex and parse
7139 @end menu
7140
7141 @node C++ Bison Interface
7142 @subsection C++ Bison Interface
7143 @c - %skeleton "lalr1.cc"
7144 @c - Always pure
7145 @c - initial action
7146
7147 The C++ parser @acronym{LALR}(1) skeleton is named @file{lalr1.cc}. To
7148 select it, you may either pass the option @option{--skeleton=lalr1.cc}
7149 to Bison, or include the directive @samp{%skeleton "lalr1.cc"} in the
7150 grammar preamble. When run, @command{bison} will create several
7151 entities in the @samp{yy} namespace. Use the @samp{%name-prefix}
7152 directive to change the namespace name, see @ref{Decl Summary}. The
7153 various classes are generated in the following files:
7154
7155 @table @file
7156 @item position.hh
7157 @itemx location.hh
7158 The definition of the classes @code{position} and @code{location},
7159 used for location tracking. @xref{C++ Location Values}.
7160
7161 @item stack.hh
7162 An auxiliary class @code{stack} used by the parser.
7163
7164 @item @var{file}.hh
7165 @itemx @var{file}.cc
7166 (Assuming the extension of the input file was @samp{.yy}.) The
7167 declaration and implementation of the C++ parser class. The basename
7168 and extension of these two files follow the same rules as with regular C
7169 parsers (@pxref{Invocation}).
7170
7171 The header is @emph{mandatory}; you must either pass
7172 @option{-d}/@option{--defines} to @command{bison}, or use the
7173 @samp{%defines} directive.
7174 @end table
7175
7176 All these files are documented using Doxygen; run @command{doxygen}
7177 for a complete and accurate documentation.
7178
7179 @node C++ Semantic Values
7180 @subsection C++ Semantic Values
7181 @c - No objects in unions
7182 @c - YSTYPE
7183 @c - Printer and destructor
7184
7185 The @code{%union} directive works as for C, see @ref{Union Decl, ,The
7186 Collection of Value Types}. In particular it produces a genuine
7187 @code{union}@footnote{In the future techniques to allow complex types
7188 within pseudo-unions (similar to Boost variants) might be implemented to
7189 alleviate these issues.}, which have a few specific features in C++.
7190 @itemize @minus
7191 @item
7192 The type @code{YYSTYPE} is defined but its use is discouraged: rather
7193 you should refer to the parser's encapsulated type
7194 @code{yy::parser::semantic_type}.
7195 @item
7196 Non POD (Plain Old Data) types cannot be used. C++ forbids any
7197 instance of classes with constructors in unions: only @emph{pointers}
7198 to such objects are allowed.
7199 @end itemize
7200
7201 Because objects have to be stored via pointers, memory is not
7202 reclaimed automatically: using the @code{%destructor} directive is the
7203 only means to avoid leaks. @xref{Destructor Decl, , Freeing Discarded
7204 Symbols}.
7205
7206
7207 @node C++ Location Values
7208 @subsection C++ Location Values
7209 @c - %locations
7210 @c - class Position
7211 @c - class Location
7212 @c - %define "filename_type" "const symbol::Symbol"
7213
7214 When the directive @code{%locations} is used, the C++ parser supports
7215 location tracking, see @ref{Locations, , Locations Overview}. Two
7216 auxiliary classes define a @code{position}, a single point in a file,
7217 and a @code{location}, a range composed of a pair of
7218 @code{position}s (possibly spanning several files).
7219
7220 @deftypemethod {position} {std::string*} file
7221 The name of the file. It will always be handled as a pointer, the
7222 parser will never duplicate nor deallocate it. As an experimental
7223 feature you may change it to @samp{@var{type}*} using @samp{%define
7224 "filename_type" "@var{type}"}.
7225 @end deftypemethod
7226
7227 @deftypemethod {position} {unsigned int} line
7228 The line, starting at 1.
7229 @end deftypemethod
7230
7231 @deftypemethod {position} {unsigned int} lines (int @var{height} = 1)
7232 Advance by @var{height} lines, resetting the column number.
7233 @end deftypemethod
7234
7235 @deftypemethod {position} {unsigned int} column
7236 The column, starting at 0.
7237 @end deftypemethod
7238
7239 @deftypemethod {position} {unsigned int} columns (int @var{width} = 1)
7240 Advance by @var{width} columns, without changing the line number.
7241 @end deftypemethod
7242
7243 @deftypemethod {position} {position&} operator+= (position& @var{pos}, int @var{width})
7244 @deftypemethodx {position} {position} operator+ (const position& @var{pos}, int @var{width})
7245 @deftypemethodx {position} {position&} operator-= (const position& @var{pos}, int @var{width})
7246 @deftypemethodx {position} {position} operator- (position& @var{pos}, int @var{width})
7247 Various forms of syntactic sugar for @code{columns}.
7248 @end deftypemethod
7249
7250 @deftypemethod {position} {position} operator<< (std::ostream @var{o}, const position& @var{p})
7251 Report @var{p} on @var{o} like this:
7252 @samp{@var{file}:@var{line}.@var{column}}, or
7253 @samp{@var{line}.@var{column}} if @var{file} is null.
7254 @end deftypemethod
7255
7256 @deftypemethod {location} {position} begin
7257 @deftypemethodx {location} {position} end
7258 The first, inclusive, position of the range, and the first beyond.
7259 @end deftypemethod
7260
7261 @deftypemethod {location} {unsigned int} columns (int @var{width} = 1)
7262 @deftypemethodx {location} {unsigned int} lines (int @var{height} = 1)
7263 Advance the @code{end} position.
7264 @end deftypemethod
7265
7266 @deftypemethod {location} {location} operator+ (const location& @var{begin}, const location& @var{end})
7267 @deftypemethodx {location} {location} operator+ (const location& @var{begin}, int @var{width})
7268 @deftypemethodx {location} {location} operator+= (const location& @var{loc}, int @var{width})
7269 Various forms of syntactic sugar.
7270 @end deftypemethod
7271
7272 @deftypemethod {location} {void} step ()
7273 Move @code{begin} onto @code{end}.
7274 @end deftypemethod
7275
7276
7277 @node C++ Parser Interface
7278 @subsection C++ Parser Interface
7279 @c - define parser_class_name
7280 @c - Ctor
7281 @c - parse, error, set_debug_level, debug_level, set_debug_stream,
7282 @c debug_stream.
7283 @c - Reporting errors
7284
7285 The output files @file{@var{output}.hh} and @file{@var{output}.cc}
7286 declare and define the parser class in the namespace @code{yy}. The
7287 class name defaults to @code{parser}, but may be changed using
7288 @samp{%define "parser_class_name" "@var{name}"}. The interface of
7289 this class is detailed below. It can be extended using the
7290 @code{%parse-param} feature: its semantics is slightly changed since
7291 it describes an additional member of the parser class, and an
7292 additional argument for its constructor.
7293
7294 @defcv {Type} {parser} {semantic_value_type}
7295 @defcvx {Type} {parser} {location_value_type}
7296 The types for semantics value and locations.
7297 @end defcv
7298
7299 @deftypemethod {parser} {} parser (@var{type1} @var{arg1}, ...)
7300 Build a new parser object. There are no arguments by default, unless
7301 @samp{%parse-param @{@var{type1} @var{arg1}@}} was used.
7302 @end deftypemethod
7303
7304 @deftypemethod {parser} {int} parse ()
7305 Run the syntactic analysis, and return 0 on success, 1 otherwise.
7306 @end deftypemethod
7307
7308 @deftypemethod {parser} {std::ostream&} debug_stream ()
7309 @deftypemethodx {parser} {void} set_debug_stream (std::ostream& @var{o})
7310 Get or set the stream used for tracing the parsing. It defaults to
7311 @code{std::cerr}.
7312 @end deftypemethod
7313
7314 @deftypemethod {parser} {debug_level_type} debug_level ()
7315 @deftypemethodx {parser} {void} set_debug_level (debug_level @var{l})
7316 Get or set the tracing level. Currently its value is either 0, no trace,
7317 or nonzero, full tracing.
7318 @end deftypemethod
7319
7320 @deftypemethod {parser} {void} error (const location_type& @var{l}, const std::string& @var{m})
7321 The definition for this member function must be supplied by the user:
7322 the parser uses it to report a parser error occurring at @var{l},
7323 described by @var{m}.
7324 @end deftypemethod
7325
7326
7327 @node C++ Scanner Interface
7328 @subsection C++ Scanner Interface
7329 @c - prefix for yylex.
7330 @c - Pure interface to yylex
7331 @c - %lex-param
7332
7333 The parser invokes the scanner by calling @code{yylex}. Contrary to C
7334 parsers, C++ parsers are always pure: there is no point in using the
7335 @code{%pure-parser} directive. Therefore the interface is as follows.
7336
7337 @deftypemethod {parser} {int} yylex (semantic_value_type& @var{yylval}, location_type& @var{yylloc}, @var{type1} @var{arg1}, ...)
7338 Return the next token. Its type is the return value, its semantic
7339 value and location being @var{yylval} and @var{yylloc}. Invocations of
7340 @samp{%lex-param @{@var{type1} @var{arg1}@}} yield additional arguments.
7341 @end deftypemethod
7342
7343
7344 @node A Complete C++ Example
7345 @section A Complete C++ Example
7346
7347 This section demonstrates the use of a C++ parser with a simple but
7348 complete example. This example should be available on your system,
7349 ready to compile, in the directory @dfn{../bison/examples/calc++}. It
7350 focuses on the use of Bison, therefore the design of the various C++
7351 classes is very naive: no accessors, no encapsulation of members etc.
7352 We will use a Lex scanner, and more precisely, a Flex scanner, to
7353 demonstrate the various interaction. A hand written scanner is
7354 actually easier to interface with.
7355
7356 @menu
7357 * Calc++ --- C++ Calculator:: The specifications
7358 * Calc++ Parsing Driver:: An active parsing context
7359 * Calc++ Parser:: A parser class
7360 * Calc++ Scanner:: A pure C++ Flex scanner
7361 * Calc++ Top Level:: Conducting the band
7362 @end menu
7363
7364 @node Calc++ --- C++ Calculator
7365 @subsection Calc++ --- C++ Calculator
7366
7367 Of course the grammar is dedicated to arithmetics, a single
7368 expression, possibly preceded by variable assignments. An
7369 environment containing possibly predefined variables such as
7370 @code{one} and @code{two}, is exchanged with the parser. An example
7371 of valid input follows.
7372
7373 @example
7374 three := 3
7375 seven := one + two * three
7376 seven * seven
7377 @end example
7378
7379 @node Calc++ Parsing Driver
7380 @subsection Calc++ Parsing Driver
7381 @c - An env
7382 @c - A place to store error messages
7383 @c - A place for the result
7384
7385 To support a pure interface with the parser (and the scanner) the
7386 technique of the ``parsing context'' is convenient: a structure
7387 containing all the data to exchange. Since, in addition to simply
7388 launch the parsing, there are several auxiliary tasks to execute (open
7389 the file for parsing, instantiate the parser etc.), we recommend
7390 transforming the simple parsing context structure into a fully blown
7391 @dfn{parsing driver} class.
7392
7393 The declaration of this driver class, @file{calc++-driver.hh}, is as
7394 follows. The first part includes the CPP guard and imports the
7395 required standard library components, and the declaration of the parser
7396 class.
7397
7398 @comment file: calc++-driver.hh
7399 @example
7400 #ifndef CALCXX_DRIVER_HH
7401 # define CALCXX_DRIVER_HH
7402 # include <string>
7403 # include <map>
7404 # include "calc++-parser.hh"
7405 @end example
7406
7407
7408 @noindent
7409 Then comes the declaration of the scanning function. Flex expects
7410 the signature of @code{yylex} to be defined in the macro
7411 @code{YY_DECL}, and the C++ parser expects it to be declared. We can
7412 factor both as follows.
7413
7414 @comment file: calc++-driver.hh
7415 @example
7416 // Announce to Flex the prototype we want for lexing function, ...
7417 # define YY_DECL \
7418 yy::calcxx_parser::token_type \
7419 yylex (yy::calcxx_parser::semantic_type* yylval, \
7420 yy::calcxx_parser::location_type* yylloc, \
7421 calcxx_driver& driver)
7422 // ... and declare it for the parser's sake.
7423 YY_DECL;
7424 @end example
7425
7426 @noindent
7427 The @code{calcxx_driver} class is then declared with its most obvious
7428 members.
7429
7430 @comment file: calc++-driver.hh
7431 @example
7432 // Conducting the whole scanning and parsing of Calc++.
7433 class calcxx_driver
7434 @{
7435 public:
7436 calcxx_driver ();
7437 virtual ~calcxx_driver ();
7438
7439 std::map<std::string, int> variables;
7440
7441 int result;
7442 @end example
7443
7444 @noindent
7445 To encapsulate the coordination with the Flex scanner, it is useful to
7446 have two members function to open and close the scanning phase.
7447
7448 @comment file: calc++-driver.hh
7449 @example
7450 // Handling the scanner.
7451 void scan_begin ();
7452 void scan_end ();
7453 bool trace_scanning;
7454 @end example
7455
7456 @noindent
7457 Similarly for the parser itself.
7458
7459 @comment file: calc++-driver.hh
7460 @example
7461 // Handling the parser.
7462 void parse (const std::string& f);
7463 std::string file;
7464 bool trace_parsing;
7465 @end example
7466
7467 @noindent
7468 To demonstrate pure handling of parse errors, instead of simply
7469 dumping them on the standard error output, we will pass them to the
7470 compiler driver using the following two member functions. Finally, we
7471 close the class declaration and CPP guard.
7472
7473 @comment file: calc++-driver.hh
7474 @example
7475 // Error handling.
7476 void error (const yy::location& l, const std::string& m);
7477 void error (const std::string& m);
7478 @};
7479 #endif // ! CALCXX_DRIVER_HH
7480 @end example
7481
7482 The implementation of the driver is straightforward. The @code{parse}
7483 member function deserves some attention. The @code{error} functions
7484 are simple stubs, they should actually register the located error
7485 messages and set error state.
7486
7487 @comment file: calc++-driver.cc
7488 @example
7489 #include "calc++-driver.hh"
7490 #include "calc++-parser.hh"
7491
7492 calcxx_driver::calcxx_driver ()
7493 : trace_scanning (false), trace_parsing (false)
7494 @{
7495 variables["one"] = 1;
7496 variables["two"] = 2;
7497 @}
7498
7499 calcxx_driver::~calcxx_driver ()
7500 @{
7501 @}
7502
7503 void
7504 calcxx_driver::parse (const std::string &f)
7505 @{
7506 file = f;
7507 scan_begin ();
7508 yy::calcxx_parser parser (*this);
7509 parser.set_debug_level (trace_parsing);
7510 parser.parse ();
7511 scan_end ();
7512 @}
7513
7514 void
7515 calcxx_driver::error (const yy::location& l, const std::string& m)
7516 @{
7517 std::cerr << l << ": " << m << std::endl;
7518 @}
7519
7520 void
7521 calcxx_driver::error (const std::string& m)
7522 @{
7523 std::cerr << m << std::endl;
7524 @}
7525 @end example
7526
7527 @node Calc++ Parser
7528 @subsection Calc++ Parser
7529
7530 The parser definition file @file{calc++-parser.yy} starts by asking for
7531 the C++ LALR(1) skeleton, the creation of the parser header file, and
7532 specifies the name of the parser class. Because the C++ skeleton
7533 changed several times, it is safer to require the version you designed
7534 the grammar for.
7535
7536 @comment file: calc++-parser.yy
7537 @example
7538 %skeleton "lalr1.cc" /* -*- C++ -*- */
7539 %require "2.1a"
7540 %defines
7541 %define "parser_class_name" "calcxx_parser"
7542 @end example
7543
7544 @noindent
7545 @findex %start-header
7546 Then come the declarations/inclusions needed to define the
7547 @code{%union}. Because the parser uses the parsing driver and
7548 reciprocally, both cannot include the header of the other. Because the
7549 driver's header needs detailed knowledge about the parser class (in
7550 particular its inner types), it is the parser's header which will simply
7551 use a forward declaration of the driver.
7552 @xref{Table of Symbols, ,%start-header}.
7553
7554 @comment file: calc++-parser.yy
7555 @example
7556 %start-header @{
7557 # include <string>
7558 class calcxx_driver;
7559 @}
7560 @end example
7561
7562 @noindent
7563 The driver is passed by reference to the parser and to the scanner.
7564 This provides a simple but effective pure interface, not relying on
7565 global variables.
7566
7567 @comment file: calc++-parser.yy
7568 @example
7569 // The parsing context.
7570 %parse-param @{ calcxx_driver& driver @}
7571 %lex-param @{ calcxx_driver& driver @}
7572 @end example
7573
7574 @noindent
7575 Then we request the location tracking feature, and initialize the
7576 first location's file name. Afterwards new locations are computed
7577 relatively to the previous locations: the file name will be
7578 automatically propagated.
7579
7580 @comment file: calc++-parser.yy
7581 @example
7582 %locations
7583 %initial-action
7584 @{
7585 // Initialize the initial location.
7586 @@$.begin.filename = @@$.end.filename = &driver.file;
7587 @};
7588 @end example
7589
7590 @noindent
7591 Use the two following directives to enable parser tracing and verbose
7592 error messages.
7593
7594 @comment file: calc++-parser.yy
7595 @example
7596 %debug
7597 %error-verbose
7598 @end example
7599
7600 @noindent
7601 Semantic values cannot use ``real'' objects, but only pointers to
7602 them.
7603
7604 @comment file: calc++-parser.yy
7605 @example
7606 // Symbols.
7607 %union
7608 @{
7609 int ival;
7610 std::string *sval;
7611 @};
7612 @end example
7613
7614 @noindent
7615 @findex %after-header
7616 The code between @samp{%after-header @{} and @samp{@}} is output in the
7617 @file{*.cc} file; it needs detailed knowledge about the driver.
7618
7619 @comment file: calc++-parser.yy
7620 @example
7621 %after-header @{
7622 # include "calc++-driver.hh"
7623 @}
7624 @end example
7625
7626
7627 @noindent
7628 The token numbered as 0 corresponds to end of file; the following line
7629 allows for nicer error messages referring to ``end of file'' instead
7630 of ``$end''. Similarly user friendly named are provided for each
7631 symbol. Note that the tokens names are prefixed by @code{TOKEN_} to
7632 avoid name clashes.
7633
7634 @comment file: calc++-parser.yy
7635 @example
7636 %token END 0 "end of file"
7637 %token ASSIGN ":="
7638 %token <sval> IDENTIFIER "identifier"
7639 %token <ival> NUMBER "number"
7640 %type <ival> exp "expression"
7641 @end example
7642
7643 @noindent
7644 To enable memory deallocation during error recovery, use
7645 @code{%destructor}.
7646
7647 @c FIXME: Document %printer, and mention that it takes a braced-code operand.
7648 @comment file: calc++-parser.yy
7649 @example
7650 %printer @{ debug_stream () << *$$; @} "identifier"
7651 %destructor @{ delete $$; @} "identifier"
7652
7653 %printer @{ debug_stream () << $$; @} "number" "expression"
7654 @end example
7655
7656 @noindent
7657 The grammar itself is straightforward.
7658
7659 @comment file: calc++-parser.yy
7660 @example
7661 %%
7662 %start unit;
7663 unit: assignments exp @{ driver.result = $2; @};
7664
7665 assignments: assignments assignment @{@}
7666 | /* Nothing. */ @{@};
7667
7668 assignment: "identifier" ":=" exp @{ driver.variables[*$1] = $3; @};
7669
7670 %left '+' '-';
7671 %left '*' '/';
7672 exp: exp '+' exp @{ $$ = $1 + $3; @}
7673 | exp '-' exp @{ $$ = $1 - $3; @}
7674 | exp '*' exp @{ $$ = $1 * $3; @}
7675 | exp '/' exp @{ $$ = $1 / $3; @}
7676 | "identifier" @{ $$ = driver.variables[*$1]; @}
7677 | "number" @{ $$ = $1; @};
7678 %%
7679 @end example
7680
7681 @noindent
7682 Finally the @code{error} member function registers the errors to the
7683 driver.
7684
7685 @comment file: calc++-parser.yy
7686 @example
7687 void
7688 yy::calcxx_parser::error (const yy::calcxx_parser::location_type& l,
7689 const std::string& m)
7690 @{
7691 driver.error (l, m);
7692 @}
7693 @end example
7694
7695 @node Calc++ Scanner
7696 @subsection Calc++ Scanner
7697
7698 The Flex scanner first includes the driver declaration, then the
7699 parser's to get the set of defined tokens.
7700
7701 @comment file: calc++-scanner.ll
7702 @example
7703 %@{ /* -*- C++ -*- */
7704 # include <cstdlib>
7705 # include <errno.h>
7706 # include <limits.h>
7707 # include <string>
7708 # include "calc++-driver.hh"
7709 # include "calc++-parser.hh"
7710
7711 /* Work around an incompatibility in flex (at least versions
7712 2.5.31 through 2.5.33): it generates code that does
7713 not conform to C89. See Debian bug 333231
7714 <http://bugs.debian.org/cgi-bin/bugreport.cgi?bug=333231>. */
7715 # undef yywrap
7716 # define yywrap() 1
7717
7718 /* By default yylex returns int, we use token_type.
7719 Unfortunately yyterminate by default returns 0, which is
7720 not of token_type. */
7721 #define yyterminate() return token::END
7722 %@}
7723 @end example
7724
7725 @noindent
7726 Because there is no @code{#include}-like feature we don't need
7727 @code{yywrap}, we don't need @code{unput} either, and we parse an
7728 actual file, this is not an interactive session with the user.
7729 Finally we enable the scanner tracing features.
7730
7731 @comment file: calc++-scanner.ll
7732 @example
7733 %option noyywrap nounput batch debug
7734 @end example
7735
7736 @noindent
7737 Abbreviations allow for more readable rules.
7738
7739 @comment file: calc++-scanner.ll
7740 @example
7741 id [a-zA-Z][a-zA-Z_0-9]*
7742 int [0-9]+
7743 blank [ \t]
7744 @end example
7745
7746 @noindent
7747 The following paragraph suffices to track locations accurately. Each
7748 time @code{yylex} is invoked, the begin position is moved onto the end
7749 position. Then when a pattern is matched, the end position is
7750 advanced of its width. In case it matched ends of lines, the end
7751 cursor is adjusted, and each time blanks are matched, the begin cursor
7752 is moved onto the end cursor to effectively ignore the blanks
7753 preceding tokens. Comments would be treated equally.
7754
7755 @comment file: calc++-scanner.ll
7756 @example
7757 %@{
7758 # define YY_USER_ACTION yylloc->columns (yyleng);
7759 %@}
7760 %%
7761 %@{
7762 yylloc->step ();
7763 %@}
7764 @{blank@}+ yylloc->step ();
7765 [\n]+ yylloc->lines (yyleng); yylloc->step ();
7766 @end example
7767
7768 @noindent
7769 The rules are simple, just note the use of the driver to report errors.
7770 It is convenient to use a typedef to shorten
7771 @code{yy::calcxx_parser::token::identifier} into
7772 @code{token::identifier} for instance.
7773
7774 @comment file: calc++-scanner.ll
7775 @example
7776 %@{
7777 typedef yy::calcxx_parser::token token;
7778 %@}
7779 /* Convert ints to the actual type of tokens. */
7780 [-+*/] return yy::calcxx_parser::token_type (yytext[0]);
7781 ":=" return token::ASSIGN;
7782 @{int@} @{
7783 errno = 0;
7784 long n = strtol (yytext, NULL, 10);
7785 if (! (INT_MIN <= n && n <= INT_MAX && errno != ERANGE))
7786 driver.error (*yylloc, "integer is out of range");
7787 yylval->ival = n;
7788 return token::NUMBER;
7789 @}
7790 @{id@} yylval->sval = new std::string (yytext); return token::IDENTIFIER;
7791 . driver.error (*yylloc, "invalid character");
7792 %%
7793 @end example
7794
7795 @noindent
7796 Finally, because the scanner related driver's member function depend
7797 on the scanner's data, it is simpler to implement them in this file.
7798
7799 @comment file: calc++-scanner.ll
7800 @example
7801 void
7802 calcxx_driver::scan_begin ()
7803 @{
7804 yy_flex_debug = trace_scanning;
7805 if (!(yyin = fopen (file.c_str (), "r")))
7806 error (std::string ("cannot open ") + file);
7807 @}
7808
7809 void
7810 calcxx_driver::scan_end ()
7811 @{
7812 fclose (yyin);
7813 @}
7814 @end example
7815
7816 @node Calc++ Top Level
7817 @subsection Calc++ Top Level
7818
7819 The top level file, @file{calc++.cc}, poses no problem.
7820
7821 @comment file: calc++.cc
7822 @example
7823 #include <iostream>
7824 #include "calc++-driver.hh"
7825
7826 int
7827 main (int argc, char *argv[])
7828 @{
7829 calcxx_driver driver;
7830 for (++argv; argv[0]; ++argv)
7831 if (*argv == std::string ("-p"))
7832 driver.trace_parsing = true;
7833 else if (*argv == std::string ("-s"))
7834 driver.trace_scanning = true;
7835 else
7836 @{
7837 driver.parse (*argv);
7838 std::cout << driver.result << std::endl;
7839 @}
7840 @}
7841 @end example
7842
7843 @c ================================================= FAQ
7844
7845 @node FAQ
7846 @chapter Frequently Asked Questions
7847 @cindex frequently asked questions
7848 @cindex questions
7849
7850 Several questions about Bison come up occasionally. Here some of them
7851 are addressed.
7852
7853 @menu
7854 * Memory Exhausted:: Breaking the Stack Limits
7855 * How Can I Reset the Parser:: @code{yyparse} Keeps some State
7856 * Strings are Destroyed:: @code{yylval} Loses Track of Strings
7857 * Implementing Gotos/Loops:: Control Flow in the Calculator
7858 * Multiple start-symbols:: Factoring closely related grammars
7859 * Secure? Conform?:: Is Bison @acronym{POSIX} safe?
7860 * I can't build Bison:: Troubleshooting
7861 * Where can I find help?:: Troubleshouting
7862 * Bug Reports:: Troublereporting
7863 * Other Languages:: Parsers in Java and others
7864 * Beta Testing:: Experimenting development versions
7865 * Mailing Lists:: Meeting other Bison users
7866 @end menu
7867
7868 @node Memory Exhausted
7869 @section Memory Exhausted
7870
7871 @display
7872 My parser returns with error with a @samp{memory exhausted}
7873 message. What can I do?
7874 @end display
7875
7876 This question is already addressed elsewhere, @xref{Recursion,
7877 ,Recursive Rules}.
7878
7879 @node How Can I Reset the Parser
7880 @section How Can I Reset the Parser
7881
7882 The following phenomenon has several symptoms, resulting in the
7883 following typical questions:
7884
7885 @display
7886 I invoke @code{yyparse} several times, and on correct input it works
7887 properly; but when a parse error is found, all the other calls fail
7888 too. How can I reset the error flag of @code{yyparse}?
7889 @end display
7890
7891 @noindent
7892 or
7893
7894 @display
7895 My parser includes support for an @samp{#include}-like feature, in
7896 which case I run @code{yyparse} from @code{yyparse}. This fails
7897 although I did specify I needed a @code{%pure-parser}.
7898 @end display
7899
7900 These problems typically come not from Bison itself, but from
7901 Lex-generated scanners. Because these scanners use large buffers for
7902 speed, they might not notice a change of input file. As a
7903 demonstration, consider the following source file,
7904 @file{first-line.l}:
7905
7906 @verbatim
7907 %{
7908 #include <stdio.h>
7909 #include <stdlib.h>
7910 %}
7911 %%
7912 .*\n ECHO; return 1;
7913 %%
7914 int
7915 yyparse (char const *file)
7916 {
7917 yyin = fopen (file, "r");
7918 if (!yyin)
7919 exit (2);
7920 /* One token only. */
7921 yylex ();
7922 if (fclose (yyin) != 0)
7923 exit (3);
7924 return 0;
7925 }
7926
7927 int
7928 main (void)
7929 {
7930 yyparse ("input");
7931 yyparse ("input");
7932 return 0;
7933 }
7934 @end verbatim
7935
7936 @noindent
7937 If the file @file{input} contains
7938
7939 @verbatim
7940 input:1: Hello,
7941 input:2: World!
7942 @end verbatim
7943
7944 @noindent
7945 then instead of getting the first line twice, you get:
7946
7947 @example
7948 $ @kbd{flex -ofirst-line.c first-line.l}
7949 $ @kbd{gcc -ofirst-line first-line.c -ll}
7950 $ @kbd{./first-line}
7951 input:1: Hello,
7952 input:2: World!
7953 @end example
7954
7955 Therefore, whenever you change @code{yyin}, you must tell the
7956 Lex-generated scanner to discard its current buffer and switch to the
7957 new one. This depends upon your implementation of Lex; see its
7958 documentation for more. For Flex, it suffices to call
7959 @samp{YY_FLUSH_BUFFER} after each change to @code{yyin}. If your
7960 Flex-generated scanner needs to read from several input streams to
7961 handle features like include files, you might consider using Flex
7962 functions like @samp{yy_switch_to_buffer} that manipulate multiple
7963 input buffers.
7964
7965 If your Flex-generated scanner uses start conditions (@pxref{Start
7966 conditions, , Start conditions, flex, The Flex Manual}), you might
7967 also want to reset the scanner's state, i.e., go back to the initial
7968 start condition, through a call to @samp{BEGIN (0)}.
7969
7970 @node Strings are Destroyed
7971 @section Strings are Destroyed
7972
7973 @display
7974 My parser seems to destroy old strings, or maybe it loses track of
7975 them. Instead of reporting @samp{"foo", "bar"}, it reports
7976 @samp{"bar", "bar"}, or even @samp{"foo\nbar", "bar"}.
7977 @end display
7978
7979 This error is probably the single most frequent ``bug report'' sent to
7980 Bison lists, but is only concerned with a misunderstanding of the role
7981 of the scanner. Consider the following Lex code:
7982
7983 @verbatim
7984 %{
7985 #include <stdio.h>
7986 char *yylval = NULL;
7987 %}
7988 %%
7989 .* yylval = yytext; return 1;
7990 \n /* IGNORE */
7991 %%
7992 int
7993 main ()
7994 {
7995 /* Similar to using $1, $2 in a Bison action. */
7996 char *fst = (yylex (), yylval);
7997 char *snd = (yylex (), yylval);
7998 printf ("\"%s\", \"%s\"\n", fst, snd);
7999 return 0;
8000 }
8001 @end verbatim
8002
8003 If you compile and run this code, you get:
8004
8005 @example
8006 $ @kbd{flex -osplit-lines.c split-lines.l}
8007 $ @kbd{gcc -osplit-lines split-lines.c -ll}
8008 $ @kbd{printf 'one\ntwo\n' | ./split-lines}
8009 "one
8010 two", "two"
8011 @end example
8012
8013 @noindent
8014 this is because @code{yytext} is a buffer provided for @emph{reading}
8015 in the action, but if you want to keep it, you have to duplicate it
8016 (e.g., using @code{strdup}). Note that the output may depend on how
8017 your implementation of Lex handles @code{yytext}. For instance, when
8018 given the Lex compatibility option @option{-l} (which triggers the
8019 option @samp{%array}) Flex generates a different behavior:
8020
8021 @example
8022 $ @kbd{flex -l -osplit-lines.c split-lines.l}
8023 $ @kbd{gcc -osplit-lines split-lines.c -ll}
8024 $ @kbd{printf 'one\ntwo\n' | ./split-lines}
8025 "two", "two"
8026 @end example
8027
8028
8029 @node Implementing Gotos/Loops
8030 @section Implementing Gotos/Loops
8031
8032 @display
8033 My simple calculator supports variables, assignments, and functions,
8034 but how can I implement gotos, or loops?
8035 @end display
8036
8037 Although very pedagogical, the examples included in the document blur
8038 the distinction to make between the parser---whose job is to recover
8039 the structure of a text and to transmit it to subsequent modules of
8040 the program---and the processing (such as the execution) of this
8041 structure. This works well with so called straight line programs,
8042 i.e., precisely those that have a straightforward execution model:
8043 execute simple instructions one after the others.
8044
8045 @cindex abstract syntax tree
8046 @cindex @acronym{AST}
8047 If you want a richer model, you will probably need to use the parser
8048 to construct a tree that does represent the structure it has
8049 recovered; this tree is usually called the @dfn{abstract syntax tree},
8050 or @dfn{@acronym{AST}} for short. Then, walking through this tree,
8051 traversing it in various ways, will enable treatments such as its
8052 execution or its translation, which will result in an interpreter or a
8053 compiler.
8054
8055 This topic is way beyond the scope of this manual, and the reader is
8056 invited to consult the dedicated literature.
8057
8058
8059 @node Multiple start-symbols
8060 @section Multiple start-symbols
8061
8062 @display
8063 I have several closely related grammars, and I would like to share their
8064 implementations. In fact, I could use a single grammar but with
8065 multiple entry points.
8066 @end display
8067
8068 Bison does not support multiple start-symbols, but there is a very
8069 simple means to simulate them. If @code{foo} and @code{bar} are the two
8070 pseudo start-symbols, then introduce two new tokens, say
8071 @code{START_FOO} and @code{START_BAR}, and use them as switches from the
8072 real start-symbol:
8073
8074 @example
8075 %token START_FOO START_BAR;
8076 %start start;
8077 start: START_FOO foo
8078 | START_BAR bar;
8079 @end example
8080
8081 These tokens prevents the introduction of new conflicts. As far as the
8082 parser goes, that is all that is needed.
8083
8084 Now the difficult part is ensuring that the scanner will send these
8085 tokens first. If your scanner is hand-written, that should be
8086 straightforward. If your scanner is generated by Lex, them there is
8087 simple means to do it: recall that anything between @samp{%@{ ... %@}}
8088 after the first @code{%%} is copied verbatim in the top of the generated
8089 @code{yylex} function. Make sure a variable @code{start_token} is
8090 available in the scanner (e.g., a global variable or using
8091 @code{%lex-param} etc.), and use the following:
8092
8093 @example
8094 /* @r{Prologue.} */
8095 %%
8096 %@{
8097 if (start_token)
8098 @{
8099 int t = start_token;
8100 start_token = 0;
8101 return t;
8102 @}
8103 %@}
8104 /* @r{The rules.} */
8105 @end example
8106
8107
8108 @node Secure? Conform?
8109 @section Secure? Conform?
8110
8111 @display
8112 Is Bison secure? Does it conform to POSIX?
8113 @end display
8114
8115 If you're looking for a guarantee or certification, we don't provide it.
8116 However, Bison is intended to be a reliable program that conforms to the
8117 @acronym{POSIX} specification for Yacc. If you run into problems,
8118 please send us a bug report.
8119
8120 @node I can't build Bison
8121 @section I can't build Bison
8122
8123 @display
8124 I can't build Bison because @command{make} complains that
8125 @code{msgfmt} is not found.
8126 What should I do?
8127 @end display
8128
8129 Like most GNU packages with internationalization support, that feature
8130 is turned on by default. If you have problems building in the @file{po}
8131 subdirectory, it indicates that your system's internationalization
8132 support is lacking. You can re-configure Bison with
8133 @option{--disable-nls} to turn off this support, or you can install GNU
8134 gettext from @url{ftp://ftp.gnu.org/gnu/gettext/} and re-configure
8135 Bison. See the file @file{ABOUT-NLS} for more information.
8136
8137
8138 @node Where can I find help?
8139 @section Where can I find help?
8140
8141 @display
8142 I'm having trouble using Bison. Where can I find help?
8143 @end display
8144
8145 First, read this fine manual. Beyond that, you can send mail to
8146 @email{help-bison@@gnu.org}. This mailing list is intended to be
8147 populated with people who are willing to answer questions about using
8148 and installing Bison. Please keep in mind that (most of) the people on
8149 the list have aspects of their lives which are not related to Bison (!),
8150 so you may not receive an answer to your question right away. This can
8151 be frustrating, but please try not to honk them off; remember that any
8152 help they provide is purely voluntary and out of the kindness of their
8153 hearts.
8154
8155 @node Bug Reports
8156 @section Bug Reports
8157
8158 @display
8159 I found a bug. What should I include in the bug report?
8160 @end display
8161
8162 Before you send a bug report, make sure you are using the latest
8163 version. Check @url{ftp://ftp.gnu.org/pub/gnu/bison/} or one of its
8164 mirrors. Be sure to include the version number in your bug report. If
8165 the bug is present in the latest version but not in a previous version,
8166 try to determine the most recent version which did not contain the bug.
8167
8168 If the bug is parser-related, you should include the smallest grammar
8169 you can which demonstrates the bug. The grammar file should also be
8170 complete (i.e., I should be able to run it through Bison without having
8171 to edit or add anything). The smaller and simpler the grammar, the
8172 easier it will be to fix the bug.
8173
8174 Include information about your compilation environment, including your
8175 operating system's name and version and your compiler's name and
8176 version. If you have trouble compiling, you should also include a
8177 transcript of the build session, starting with the invocation of
8178 `configure'. Depending on the nature of the bug, you may be asked to
8179 send additional files as well (such as `config.h' or `config.cache').
8180
8181 Patches are most welcome, but not required. That is, do not hesitate to
8182 send a bug report just because you can not provide a fix.
8183
8184 Send bug reports to @email{bug-bison@@gnu.org}.
8185
8186 @node Other Languages
8187 @section Other Languages
8188
8189 @display
8190 Will Bison ever have C++ support? How about Java or @var{insert your
8191 favorite language here}?
8192 @end display
8193
8194 C++ support is there now, and is documented. We'd love to add other
8195 languages; contributions are welcome.
8196
8197 @node Beta Testing
8198 @section Beta Testing
8199
8200 @display
8201 What is involved in being a beta tester?
8202 @end display
8203
8204 It's not terribly involved. Basically, you would download a test
8205 release, compile it, and use it to build and run a parser or two. After
8206 that, you would submit either a bug report or a message saying that
8207 everything is okay. It is important to report successes as well as
8208 failures because test releases eventually become mainstream releases,
8209 but only if they are adequately tested. If no one tests, development is
8210 essentially halted.
8211
8212 Beta testers are particularly needed for operating systems to which the
8213 developers do not have easy access. They currently have easy access to
8214 recent GNU/Linux and Solaris versions. Reports about other operating
8215 systems are especially welcome.
8216
8217 @node Mailing Lists
8218 @section Mailing Lists
8219
8220 @display
8221 How do I join the help-bison and bug-bison mailing lists?
8222 @end display
8223
8224 See @url{http://lists.gnu.org/}.
8225
8226 @c ================================================= Table of Symbols
8227
8228 @node Table of Symbols
8229 @appendix Bison Symbols
8230 @cindex Bison symbols, table of
8231 @cindex symbols in Bison, table of
8232
8233 @deffn {Variable} @@$
8234 In an action, the location of the left-hand side of the rule.
8235 @xref{Locations, , Locations Overview}.
8236 @end deffn
8237
8238 @deffn {Variable} @@@var{n}
8239 In an action, the location of the @var{n}-th symbol of the right-hand
8240 side of the rule. @xref{Locations, , Locations Overview}.
8241 @end deffn
8242
8243 @deffn {Variable} $$
8244 In an action, the semantic value of the left-hand side of the rule.
8245 @xref{Actions}.
8246 @end deffn
8247
8248 @deffn {Variable} $@var{n}
8249 In an action, the semantic value of the @var{n}-th symbol of the
8250 right-hand side of the rule. @xref{Actions}.
8251 @end deffn
8252
8253 @deffn {Delimiter} %%
8254 Delimiter used to separate the grammar rule section from the
8255 Bison declarations section or the epilogue.
8256 @xref{Grammar Layout, ,The Overall Layout of a Bison Grammar}.
8257 @end deffn
8258
8259 @c Don't insert spaces, or check the DVI output.
8260 @deffn {Delimiter} %@{@var{code}%@}
8261 All code listed between @samp{%@{} and @samp{%@}} is copied directly to
8262 the output file uninterpreted. Such code forms the prologue of the input
8263 file. @xref{Grammar Outline, ,Outline of a Bison
8264 Grammar}.
8265 @end deffn
8266
8267 @deffn {Construct} /*@dots{}*/
8268 Comment delimiters, as in C.
8269 @end deffn
8270
8271 @deffn {Delimiter} :
8272 Separates a rule's result from its components. @xref{Rules, ,Syntax of
8273 Grammar Rules}.
8274 @end deffn
8275
8276 @deffn {Delimiter} ;
8277 Terminates a rule. @xref{Rules, ,Syntax of Grammar Rules}.
8278 @end deffn
8279
8280 @deffn {Delimiter} |
8281 Separates alternate rules for the same result nonterminal.
8282 @xref{Rules, ,Syntax of Grammar Rules}.
8283 @end deffn
8284
8285 @deffn {Symbol} $accept
8286 The predefined nonterminal whose only rule is @samp{$accept: @var{start}
8287 $end}, where @var{start} is the start symbol. @xref{Start Decl, , The
8288 Start-Symbol}. It cannot be used in the grammar.
8289 @end deffn
8290
8291 @deffn {Directive} %after-header @{@var{code}@}
8292 Specifies code to be inserted into the code file after the contents of the
8293 header file.
8294 @xref{Table of Symbols, ,%start-header}.
8295 @end deffn
8296
8297 @deffn {Directive} %before-header @{@var{code}@}
8298 Specifies code to be inserted into the code file before the contents of the
8299 header file.
8300 @xref{Table of Symbols, ,%start-header}.
8301 @end deffn
8302
8303 @deffn {Directive} %end-header @{@var{code}@}
8304 Specifies code to be inserted both into the header file (if generated;
8305 @pxref{Table of Symbols, ,%defines}) and into the code file after any
8306 Bison-generated definitions.
8307 @xref{Table of Symbols, ,%start-header}.
8308 @end deffn
8309
8310 @deffn {Directive} %start-header @{@var{code}@}
8311 Specifies code to be inserted both into the header file (if generated;
8312 @pxref{Table of Symbols, ,%defines}) and into the code file before any
8313 Bison-generated definitions.
8314
8315 @cindex Prologue
8316 @findex %before-header
8317 @findex %union
8318 @findex %end-header
8319 @findex %after-header
8320 For example, the following declaration order in the grammar file reflects the
8321 order in which Bison will output these code blocks. However, you are free to
8322 declare these code blocks in your grammar file in whatever order is most
8323 convenient for you:
8324
8325 @smallexample
8326 %before-header @{
8327 /* Bison treats this block like a pre-prologue block: it inserts it
8328 * into the code file before the contents of the header file. It
8329 * does *not* insert it into the header file. This is a good place
8330 * to put #include's that you want at the top of your code file. A
8331 * common example is `#include "system.h"'. */
8332 @}
8333 %start-header @{
8334 /* Bison inserts this block into both the header file and the code
8335 * file. In both files, the point of insertion is before any
8336 * Bison-generated token, semantic type, location type, and class
8337 * definitions. This is a good place to define %union
8338 * dependencies, for example. */
8339 @}
8340 %union @{
8341 /* Unlike the traditional Yacc prologue blocks, the output order
8342 * for the %*-header blocks is not affected by their declaration
8343 * position relative to any %union in the grammar file. */
8344 @}
8345 %end-header @{
8346 /* Bison inserts this block into both the header file and the code
8347 * file. In both files, the point of insertion is after the
8348 * Bison-generated definitions. This is a good place to declare or
8349 * define public functions or data structures that depend on the
8350 * Bison-generated definitions. */
8351 @}
8352 %after-header @{
8353 /* Bison treats this block like a post-prologue block: it inserts
8354 * it into the code file after the contents of the header file. It
8355 * does *not* insert it into the header file. This is a good place
8356 * to declare or define internal functions or data structures that
8357 * depend on the Bison-generated definitions. */
8358 @}
8359 @end smallexample
8360
8361 If you have multiple occurrences of any one of the above declarations, Bison
8362 will concatenate the contents in declaration order.
8363
8364 @xref{Prologue, ,The Prologue}.
8365 @end deffn
8366
8367 @deffn {Directive} %debug
8368 Equip the parser for debugging. @xref{Decl Summary}.
8369 @end deffn
8370
8371 @deffn {Directive} %debug
8372 Equip the parser for debugging. @xref{Decl Summary}.
8373 @end deffn
8374
8375 @ifset defaultprec
8376 @deffn {Directive} %default-prec
8377 Assign a precedence to rules that lack an explicit @samp{%prec}
8378 modifier. @xref{Contextual Precedence, ,Context-Dependent
8379 Precedence}.
8380 @end deffn
8381 @end ifset
8382
8383 @deffn {Directive} %defines
8384 Bison declaration to create a header file meant for the scanner.
8385 @xref{Decl Summary}.
8386 @end deffn
8387
8388 @deffn {Directive} %destructor
8389 Specify how the parser should reclaim the memory associated to
8390 discarded symbols. @xref{Destructor Decl, , Freeing Discarded Symbols}.
8391 @end deffn
8392
8393 @deffn {Directive} %dprec
8394 Bison declaration to assign a precedence to a rule that is used at parse
8395 time to resolve reduce/reduce conflicts. @xref{GLR Parsers, ,Writing
8396 @acronym{GLR} Parsers}.
8397 @end deffn
8398
8399 @deffn {Symbol} $end
8400 The predefined token marking the end of the token stream. It cannot be
8401 used in the grammar.
8402 @end deffn
8403
8404 @deffn {Symbol} error
8405 A token name reserved for error recovery. This token may be used in
8406 grammar rules so as to allow the Bison parser to recognize an error in
8407 the grammar without halting the process. In effect, a sentence
8408 containing an error may be recognized as valid. On a syntax error, the
8409 token @code{error} becomes the current lookahead token. Actions
8410 corresponding to @code{error} are then executed, and the lookahead
8411 token is reset to the token that originally caused the violation.
8412 @xref{Error Recovery}.
8413 @end deffn
8414
8415 @deffn {Directive} %error-verbose
8416 Bison declaration to request verbose, specific error message strings
8417 when @code{yyerror} is called.
8418 @end deffn
8419
8420 @deffn {Directive} %file-prefix="@var{prefix}"
8421 Bison declaration to set the prefix of the output files. @xref{Decl
8422 Summary}.
8423 @end deffn
8424
8425 @deffn {Directive} %glr-parser
8426 Bison declaration to produce a @acronym{GLR} parser. @xref{GLR
8427 Parsers, ,Writing @acronym{GLR} Parsers}.
8428 @end deffn
8429
8430 @deffn {Directive} %initial-action
8431 Run user code before parsing. @xref{Initial Action Decl, , Performing Actions before Parsing}.
8432 @end deffn
8433
8434 @deffn {Directive} %left
8435 Bison declaration to assign left associativity to token(s).
8436 @xref{Precedence Decl, ,Operator Precedence}.
8437 @end deffn
8438
8439 @deffn {Directive} %lex-param @{@var{argument-declaration}@}
8440 Bison declaration to specifying an additional parameter that
8441 @code{yylex} should accept. @xref{Pure Calling,, Calling Conventions
8442 for Pure Parsers}.
8443 @end deffn
8444
8445 @deffn {Directive} %merge
8446 Bison declaration to assign a merging function to a rule. If there is a
8447 reduce/reduce conflict with a rule having the same merging function, the
8448 function is applied to the two semantic values to get a single result.
8449 @xref{GLR Parsers, ,Writing @acronym{GLR} Parsers}.
8450 @end deffn
8451
8452 @deffn {Directive} %name-prefix="@var{prefix}"
8453 Bison declaration to rename the external symbols. @xref{Decl Summary}.
8454 @end deffn
8455
8456 @ifset defaultprec
8457 @deffn {Directive} %no-default-prec
8458 Do not assign a precedence to rules that lack an explicit @samp{%prec}
8459 modifier. @xref{Contextual Precedence, ,Context-Dependent
8460 Precedence}.
8461 @end deffn
8462 @end ifset
8463
8464 @deffn {Directive} %no-lines
8465 Bison declaration to avoid generating @code{#line} directives in the
8466 parser file. @xref{Decl Summary}.
8467 @end deffn
8468
8469 @deffn {Directive} %nonassoc
8470 Bison declaration to assign nonassociativity to token(s).
8471 @xref{Precedence Decl, ,Operator Precedence}.
8472 @end deffn
8473
8474 @deffn {Directive} %output="@var{file}"
8475 Bison declaration to set the name of the parser file. @xref{Decl
8476 Summary}.
8477 @end deffn
8478
8479 @deffn {Directive} %parse-param @{@var{argument-declaration}@}
8480 Bison declaration to specifying an additional parameter that
8481 @code{yyparse} should accept. @xref{Parser Function,, The Parser
8482 Function @code{yyparse}}.
8483 @end deffn
8484
8485 @deffn {Directive} %prec
8486 Bison declaration to assign a precedence to a specific rule.
8487 @xref{Contextual Precedence, ,Context-Dependent Precedence}.
8488 @end deffn
8489
8490 @deffn {Directive} %pure-parser
8491 Bison declaration to request a pure (reentrant) parser.
8492 @xref{Pure Decl, ,A Pure (Reentrant) Parser}.
8493 @end deffn
8494
8495 @deffn {Directive} %require "@var{version}"
8496 Require version @var{version} or higher of Bison. @xref{Require Decl, ,
8497 Require a Version of Bison}.
8498 @end deffn
8499
8500 @deffn {Directive} %right
8501 Bison declaration to assign right associativity to token(s).
8502 @xref{Precedence Decl, ,Operator Precedence}.
8503 @end deffn
8504
8505 @deffn {Directive} %start
8506 Bison declaration to specify the start symbol. @xref{Start Decl, ,The
8507 Start-Symbol}.
8508 @end deffn
8509
8510 @deffn {Directive} %symbol-default
8511 Used to declare a default @code{%destructor} or default @code{%printer}.
8512 @xref{Destructor Decl, , Freeing Discarded Symbols}.
8513 @end deffn
8514
8515 @deffn {Directive} %token
8516 Bison declaration to declare token(s) without specifying precedence.
8517 @xref{Token Decl, ,Token Type Names}.
8518 @end deffn
8519
8520 @deffn {Directive} %token-table
8521 Bison declaration to include a token name table in the parser file.
8522 @xref{Decl Summary}.
8523 @end deffn
8524
8525 @deffn {Directive} %type
8526 Bison declaration to declare nonterminals. @xref{Type Decl,
8527 ,Nonterminal Symbols}.
8528 @end deffn
8529
8530 @deffn {Symbol} $undefined
8531 The predefined token onto which all undefined values returned by
8532 @code{yylex} are mapped. It cannot be used in the grammar, rather, use
8533 @code{error}.
8534 @end deffn
8535
8536 @deffn {Directive} %union
8537 Bison declaration to specify several possible data types for semantic
8538 values. @xref{Union Decl, ,The Collection of Value Types}.
8539 @end deffn
8540
8541 @deffn {Macro} YYABORT
8542 Macro to pretend that an unrecoverable syntax error has occurred, by
8543 making @code{yyparse} return 1 immediately. The error reporting
8544 function @code{yyerror} is not called. @xref{Parser Function, ,The
8545 Parser Function @code{yyparse}}.
8546 @end deffn
8547
8548 @deffn {Macro} YYACCEPT
8549 Macro to pretend that a complete utterance of the language has been
8550 read, by making @code{yyparse} return 0 immediately.
8551 @xref{Parser Function, ,The Parser Function @code{yyparse}}.
8552 @end deffn
8553
8554 @deffn {Macro} YYBACKUP
8555 Macro to discard a value from the parser stack and fake a lookahead
8556 token. @xref{Action Features, ,Special Features for Use in Actions}.
8557 @end deffn
8558
8559 @deffn {Variable} yychar
8560 External integer variable that contains the integer value of the
8561 lookahead token. (In a pure parser, it is a local variable within
8562 @code{yyparse}.) Error-recovery rule actions may examine this variable.
8563 @xref{Action Features, ,Special Features for Use in Actions}.
8564 @end deffn
8565
8566 @deffn {Variable} yyclearin
8567 Macro used in error-recovery rule actions. It clears the previous
8568 lookahead token. @xref{Error Recovery}.
8569 @end deffn
8570
8571 @deffn {Macro} YYDEBUG
8572 Macro to define to equip the parser with tracing code. @xref{Tracing,
8573 ,Tracing Your Parser}.
8574 @end deffn
8575
8576 @deffn {Variable} yydebug
8577 External integer variable set to zero by default. If @code{yydebug}
8578 is given a nonzero value, the parser will output information on input
8579 symbols and parser action. @xref{Tracing, ,Tracing Your Parser}.
8580 @end deffn
8581
8582 @deffn {Macro} yyerrok
8583 Macro to cause parser to recover immediately to its normal mode
8584 after a syntax error. @xref{Error Recovery}.
8585 @end deffn
8586
8587 @deffn {Macro} YYERROR
8588 Macro to pretend that a syntax error has just been detected: call
8589 @code{yyerror} and then perform normal error recovery if possible
8590 (@pxref{Error Recovery}), or (if recovery is impossible) make
8591 @code{yyparse} return 1. @xref{Error Recovery}.
8592 @end deffn
8593
8594 @deffn {Function} yyerror
8595 User-supplied function to be called by @code{yyparse} on error.
8596 @xref{Error Reporting, ,The Error
8597 Reporting Function @code{yyerror}}.
8598 @end deffn
8599
8600 @deffn {Macro} YYERROR_VERBOSE
8601 An obsolete macro that you define with @code{#define} in the prologue
8602 to request verbose, specific error message strings
8603 when @code{yyerror} is called. It doesn't matter what definition you
8604 use for @code{YYERROR_VERBOSE}, just whether you define it. Using
8605 @code{%error-verbose} is preferred.
8606 @end deffn
8607
8608 @deffn {Macro} YYINITDEPTH
8609 Macro for specifying the initial size of the parser stack.
8610 @xref{Memory Management}.
8611 @end deffn
8612
8613 @deffn {Function} yylex
8614 User-supplied lexical analyzer function, called with no arguments to get
8615 the next token. @xref{Lexical, ,The Lexical Analyzer Function
8616 @code{yylex}}.
8617 @end deffn
8618
8619 @deffn {Macro} YYLEX_PARAM
8620 An obsolete macro for specifying an extra argument (or list of extra
8621 arguments) for @code{yyparse} to pass to @code{yylex}. The use of this
8622 macro is deprecated, and is supported only for Yacc like parsers.
8623 @xref{Pure Calling,, Calling Conventions for Pure Parsers}.
8624 @end deffn
8625
8626 @deffn {Variable} yylloc
8627 External variable in which @code{yylex} should place the line and column
8628 numbers associated with a token. (In a pure parser, it is a local
8629 variable within @code{yyparse}, and its address is passed to
8630 @code{yylex}.)
8631 You can ignore this variable if you don't use the @samp{@@} feature in the
8632 grammar actions.
8633 @xref{Token Locations, ,Textual Locations of Tokens}.
8634 In semantic actions, it stores the location of the lookahead token.
8635 @xref{Actions and Locations, ,Actions and Locations}.
8636 @end deffn
8637
8638 @deffn {Type} YYLTYPE
8639 Data type of @code{yylloc}; by default, a structure with four
8640 members. @xref{Location Type, , Data Types of Locations}.
8641 @end deffn
8642
8643 @deffn {Variable} yylval
8644 External variable in which @code{yylex} should place the semantic
8645 value associated with a token. (In a pure parser, it is a local
8646 variable within @code{yyparse}, and its address is passed to
8647 @code{yylex}.)
8648 @xref{Token Values, ,Semantic Values of Tokens}.
8649 In semantic actions, it stores the semantic value of the lookahead token.
8650 @xref{Actions, ,Actions}.
8651 @end deffn
8652
8653 @deffn {Macro} YYMAXDEPTH
8654 Macro for specifying the maximum size of the parser stack. @xref{Memory
8655 Management}.
8656 @end deffn
8657
8658 @deffn {Variable} yynerrs
8659 Global variable which Bison increments each time it reports a syntax error.
8660 (In a pure parser, it is a local variable within @code{yyparse}.)
8661 @xref{Error Reporting, ,The Error Reporting Function @code{yyerror}}.
8662 @end deffn
8663
8664 @deffn {Function} yyparse
8665 The parser function produced by Bison; call this function to start
8666 parsing. @xref{Parser Function, ,The Parser Function @code{yyparse}}.
8667 @end deffn
8668
8669 @deffn {Macro} YYPARSE_PARAM
8670 An obsolete macro for specifying the name of a parameter that
8671 @code{yyparse} should accept. The use of this macro is deprecated, and
8672 is supported only for Yacc like parsers. @xref{Pure Calling,, Calling
8673 Conventions for Pure Parsers}.
8674 @end deffn
8675
8676 @deffn {Macro} YYRECOVERING
8677 The expression @code{YYRECOVERING ()} yields 1 when the parser
8678 is recovering from a syntax error, and 0 otherwise.
8679 @xref{Action Features, ,Special Features for Use in Actions}.
8680 @end deffn
8681
8682 @deffn {Macro} YYSTACK_USE_ALLOCA
8683 Macro used to control the use of @code{alloca} when the C
8684 @acronym{LALR}(1) parser needs to extend its stacks. If defined to 0,
8685 the parser will use @code{malloc} to extend its stacks. If defined to
8686 1, the parser will use @code{alloca}. Values other than 0 and 1 are
8687 reserved for future Bison extensions. If not defined,
8688 @code{YYSTACK_USE_ALLOCA} defaults to 0.
8689
8690 In the all-too-common case where your code may run on a host with a
8691 limited stack and with unreliable stack-overflow checking, you should
8692 set @code{YYMAXDEPTH} to a value that cannot possibly result in
8693 unchecked stack overflow on any of your target hosts when
8694 @code{alloca} is called. You can inspect the code that Bison
8695 generates in order to determine the proper numeric values. This will
8696 require some expertise in low-level implementation details.
8697 @end deffn
8698
8699 @deffn {Type} YYSTYPE
8700 Data type of semantic values; @code{int} by default.
8701 @xref{Value Type, ,Data Types of Semantic Values}.
8702 @end deffn
8703
8704 @node Glossary
8705 @appendix Glossary
8706 @cindex glossary
8707
8708 @table @asis
8709 @item Backus-Naur Form (@acronym{BNF}; also called ``Backus Normal Form'')
8710 Formal method of specifying context-free grammars originally proposed
8711 by John Backus, and slightly improved by Peter Naur in his 1960-01-02
8712 committee document contributing to what became the Algol 60 report.
8713 @xref{Language and Grammar, ,Languages and Context-Free Grammars}.
8714
8715 @item Context-free grammars
8716 Grammars specified as rules that can be applied regardless of context.
8717 Thus, if there is a rule which says that an integer can be used as an
8718 expression, integers are allowed @emph{anywhere} an expression is
8719 permitted. @xref{Language and Grammar, ,Languages and Context-Free
8720 Grammars}.
8721
8722 @item Dynamic allocation
8723 Allocation of memory that occurs during execution, rather than at
8724 compile time or on entry to a function.
8725
8726 @item Empty string
8727 Analogous to the empty set in set theory, the empty string is a
8728 character string of length zero.
8729
8730 @item Finite-state stack machine
8731 A ``machine'' that has discrete states in which it is said to exist at
8732 each instant in time. As input to the machine is processed, the
8733 machine moves from state to state as specified by the logic of the
8734 machine. In the case of the parser, the input is the language being
8735 parsed, and the states correspond to various stages in the grammar
8736 rules. @xref{Algorithm, ,The Bison Parser Algorithm}.
8737
8738 @item Generalized @acronym{LR} (@acronym{GLR})
8739 A parsing algorithm that can handle all context-free grammars, including those
8740 that are not @acronym{LALR}(1). It resolves situations that Bison's
8741 usual @acronym{LALR}(1)
8742 algorithm cannot by effectively splitting off multiple parsers, trying all
8743 possible parsers, and discarding those that fail in the light of additional
8744 right context. @xref{Generalized LR Parsing, ,Generalized
8745 @acronym{LR} Parsing}.
8746
8747 @item Grouping
8748 A language construct that is (in general) grammatically divisible;
8749 for example, `expression' or `declaration' in C@.
8750 @xref{Language and Grammar, ,Languages and Context-Free Grammars}.
8751
8752 @item Infix operator
8753 An arithmetic operator that is placed between the operands on which it
8754 performs some operation.
8755
8756 @item Input stream
8757 A continuous flow of data between devices or programs.
8758
8759 @item Language construct
8760 One of the typical usage schemas of the language. For example, one of
8761 the constructs of the C language is the @code{if} statement.
8762 @xref{Language and Grammar, ,Languages and Context-Free Grammars}.
8763
8764 @item Left associativity
8765 Operators having left associativity are analyzed from left to right:
8766 @samp{a+b+c} first computes @samp{a+b} and then combines with
8767 @samp{c}. @xref{Precedence, ,Operator Precedence}.
8768
8769 @item Left recursion
8770 A rule whose result symbol is also its first component symbol; for
8771 example, @samp{expseq1 : expseq1 ',' exp;}. @xref{Recursion, ,Recursive
8772 Rules}.
8773
8774 @item Left-to-right parsing
8775 Parsing a sentence of a language by analyzing it token by token from
8776 left to right. @xref{Algorithm, ,The Bison Parser Algorithm}.
8777
8778 @item Lexical analyzer (scanner)
8779 A function that reads an input stream and returns tokens one by one.
8780 @xref{Lexical, ,The Lexical Analyzer Function @code{yylex}}.
8781
8782 @item Lexical tie-in
8783 A flag, set by actions in the grammar rules, which alters the way
8784 tokens are parsed. @xref{Lexical Tie-ins}.
8785
8786 @item Literal string token
8787 A token which consists of two or more fixed characters. @xref{Symbols}.
8788
8789 @item Lookahead token
8790 A token already read but not yet shifted. @xref{Lookahead, ,Lookahead
8791 Tokens}.
8792
8793 @item @acronym{LALR}(1)
8794 The class of context-free grammars that Bison (like most other parser
8795 generators) can handle; a subset of @acronym{LR}(1). @xref{Mystery
8796 Conflicts, ,Mysterious Reduce/Reduce Conflicts}.
8797
8798 @item @acronym{LR}(1)
8799 The class of context-free grammars in which at most one token of
8800 lookahead is needed to disambiguate the parsing of any piece of input.
8801
8802 @item Nonterminal symbol
8803 A grammar symbol standing for a grammatical construct that can
8804 be expressed through rules in terms of smaller constructs; in other
8805 words, a construct that is not a token. @xref{Symbols}.
8806
8807 @item Parser
8808 A function that recognizes valid sentences of a language by analyzing
8809 the syntax structure of a set of tokens passed to it from a lexical
8810 analyzer.
8811
8812 @item Postfix operator
8813 An arithmetic operator that is placed after the operands upon which it
8814 performs some operation.
8815
8816 @item Reduction
8817 Replacing a string of nonterminals and/or terminals with a single
8818 nonterminal, according to a grammar rule. @xref{Algorithm, ,The Bison
8819 Parser Algorithm}.
8820
8821 @item Reentrant
8822 A reentrant subprogram is a subprogram which can be in invoked any
8823 number of times in parallel, without interference between the various
8824 invocations. @xref{Pure Decl, ,A Pure (Reentrant) Parser}.
8825
8826 @item Reverse polish notation
8827 A language in which all operators are postfix operators.
8828
8829 @item Right recursion
8830 A rule whose result symbol is also its last component symbol; for
8831 example, @samp{expseq1: exp ',' expseq1;}. @xref{Recursion, ,Recursive
8832 Rules}.
8833
8834 @item Semantics
8835 In computer languages, the semantics are specified by the actions
8836 taken for each instance of the language, i.e., the meaning of
8837 each statement. @xref{Semantics, ,Defining Language Semantics}.
8838
8839 @item Shift
8840 A parser is said to shift when it makes the choice of analyzing
8841 further input from the stream rather than reducing immediately some
8842 already-recognized rule. @xref{Algorithm, ,The Bison Parser Algorithm}.
8843
8844 @item Single-character literal
8845 A single character that is recognized and interpreted as is.
8846 @xref{Grammar in Bison, ,From Formal Rules to Bison Input}.
8847
8848 @item Start symbol
8849 The nonterminal symbol that stands for a complete valid utterance in
8850 the language being parsed. The start symbol is usually listed as the
8851 first nonterminal symbol in a language specification.
8852 @xref{Start Decl, ,The Start-Symbol}.
8853
8854 @item Symbol table
8855 A data structure where symbol names and associated data are stored
8856 during parsing to allow for recognition and use of existing
8857 information in repeated uses of a symbol. @xref{Multi-function Calc}.
8858
8859 @item Syntax error
8860 An error encountered during parsing of an input stream due to invalid
8861 syntax. @xref{Error Recovery}.
8862
8863 @item Token
8864 A basic, grammatically indivisible unit of a language. The symbol
8865 that describes a token in the grammar is a terminal symbol.
8866 The input of the Bison parser is a stream of tokens which comes from
8867 the lexical analyzer. @xref{Symbols}.
8868
8869 @item Terminal symbol
8870 A grammar symbol that has no rules in the grammar and therefore is
8871 grammatically indivisible. The piece of text it represents is a token.
8872 @xref{Language and Grammar, ,Languages and Context-Free Grammars}.
8873 @end table
8874
8875 @node Copying This Manual
8876 @appendix Copying This Manual
8877
8878 @menu
8879 * GNU Free Documentation License:: License for copying this manual.
8880 @end menu
8881
8882 @include fdl.texi
8883
8884 @node Index
8885 @unnumbered Index
8886
8887 @printindex cp
8888
8889 @bye
8890
8891 @c LocalWords: texinfo setfilename settitle setchapternewpage finalout
8892 @c LocalWords: ifinfo smallbook shorttitlepage titlepage GPL FIXME iftex
8893 @c LocalWords: akim fn cp syncodeindex vr tp synindex dircategory direntry
8894 @c LocalWords: ifset vskip pt filll insertcopying sp ISBN Etienne Suvasa
8895 @c LocalWords: ifnottex yyparse detailmenu GLR RPN Calc var Decls Rpcalc
8896 @c LocalWords: rpcalc Lexer Gen Comp Expr ltcalc mfcalc Decl Symtab yylex
8897 @c LocalWords: yyerror pxref LR yylval cindex dfn LALR samp gpl BNF xref
8898 @c LocalWords: const int paren ifnotinfo AC noindent emph expr stmt findex
8899 @c LocalWords: glr YYSTYPE TYPENAME prog dprec printf decl init stmtMerge
8900 @c LocalWords: pre STDC GNUC endif yy YY alloca lf stddef stdlib YYDEBUG
8901 @c LocalWords: NUM exp subsubsection kbd Ctrl ctype EOF getchar isdigit
8902 @c LocalWords: ungetc stdin scanf sc calc ulator ls lm cc NEG prec yyerrok
8903 @c LocalWords: longjmp fprintf stderr preg yylloc YYLTYPE cos ln
8904 @c LocalWords: smallexample symrec val tptr FNCT fnctptr func struct sym
8905 @c LocalWords: fnct putsym getsym fname arith fncts atan ptr malloc sizeof
8906 @c LocalWords: strlen strcpy fctn strcmp isalpha symbuf realloc isalnum
8907 @c LocalWords: ptypes itype YYPRINT trigraphs yytname expseq vindex dtype
8908 @c LocalWords: Rhs YYRHSLOC LE nonassoc op deffn typeless typefull yynerrs
8909 @c LocalWords: yychar yydebug msg YYNTOKENS YYNNTS YYNRULES YYNSTATES
8910 @c LocalWords: cparse clex deftypefun NE defmac YYACCEPT YYABORT param
8911 @c LocalWords: strncmp intval tindex lvalp locp llocp typealt YYBACKUP
8912 @c LocalWords: YYEMPTY YYEOF YYRECOVERING yyclearin GE def UMINUS maybeword
8913 @c LocalWords: Johnstone Shamsa Sadaf Hussain Tomita TR uref YYMAXDEPTH
8914 @c LocalWords: YYINITDEPTH stmnts ref stmnt initdcl maybeasm VCG notype
8915 @c LocalWords: hexflag STR exdent itemset asis DYYDEBUG YYFPRINTF args
8916 @c LocalWords: infile ypp yxx outfile itemx vcg tex leaderfill
8917 @c LocalWords: hbox hss hfill tt ly yyin fopen fclose ofirst gcc ll
8918 @c LocalWords: yyrestart nbar yytext fst snd osplit ntwo strdup AST
8919 @c LocalWords: YYSTACK DVI fdl printindex