2 ******************************************************************************
4 * Copyright (C) 1999-2015, International Business Machines
5 * Corporation and others. All Rights Reserved.
7 ******************************************************************************
10 * tab size: 8 (not used)
13 * created on: 1999jul27
14 * created by: Markus W. Scherer, updated by Matitiahu Allouche
19 #include "unicode/utypes.h"
20 #include "unicode/ustring.h"
21 #include "unicode/uchar.h"
22 #include "unicode/ubidi.h"
23 #include "unicode/utf16.h"
24 #include "ubidi_props.h"
29 * General implementation notes:
31 * Throughout the implementation, there are comments like (W2) that refer to
32 * rules of the BiDi algorithm, in this example to the second rule of the
33 * resolution of weak types.
35 * For handling surrogate pairs, where two UChar's form one "abstract" (or UTF-32)
36 * character according to UTF-16, the second UChar gets the directional property of
37 * the entire character assigned, while the first one gets a BN, a boundary
38 * neutral, type, which is ignored by most of the algorithm according to
39 * rule (X9) and the implementation suggestions of the BiDi algorithm.
41 * Later, adjustWSLevels() will set the level for each BN to that of the
42 * following character (UChar), which results in surrogate pairs getting the
43 * same level on each of their surrogates.
45 * In a UTF-8 implementation, the same thing could be done: the last byte of
46 * a multi-byte sequence would get the "real" property, while all previous
47 * bytes of that sequence would get BN.
49 * It is not possible to assign all those parts of a character the same real
50 * property because this would fail in the resolution of weak types with rules
51 * that look at immediately surrounding types.
53 * As a related topic, this implementation does not remove Boundary Neutral
54 * types from the input, but ignores them wherever this is relevant.
55 * For example, the loop for the resolution of the weak types reads
56 * types until it finds a non-BN.
57 * Also, explicit embedding codes are neither changed into BN nor removed.
58 * They are only treated the same way real BNs are.
59 * As stated before, adjustWSLevels() takes care of them at the end.
60 * For the purpose of conformance, the levels of all these codes
63 * Note that this implementation modifies the dirProps
64 * after the initial setup, when applying X5c (replace FSI by LRI or RLI),
65 * X6, N0 (replace paired brackets by L or R).
67 * In this implementation, the resolution of weak types (W1 to W6),
68 * neutrals (N1 and N2), and the assignment of the resolved level (In)
69 * are all done in one single loop, in resolveImplicitLevels().
70 * Changes of dirProp values are done on the fly, without writing
71 * them back to the dirProps array.
74 * This implementation contains code that allows to bypass steps of the
75 * algorithm that are not needed on the specific paragraph
76 * in order to speed up the most common cases considerably,
77 * like text that is entirely LTR, or RTL text without numbers.
79 * Most of this is done by setting a bit for each directional property
80 * in a flags variable and later checking for whether there are
81 * any LTR characters or any RTL characters, or both, whether
82 * there are any explicit embedding codes, etc.
84 * If the (Xn) steps are performed, then the flags are re-evaluated,
85 * because they will then not contain the embedding codes any more
86 * and will be adjusted for override codes, so that subsequently
87 * more bypassing may be possible than what the initial flags suggested.
89 * If the text is not mixed-directional, then the
90 * algorithm steps for the weak type resolution are not performed,
91 * and all levels are set to the paragraph level.
93 * If there are no explicit embedding codes, then the (Xn) steps
96 * If embedding levels are supplied as a parameter, then all
97 * explicit embedding codes are ignored, and the (Xn) steps
100 * White Space types could get the level of the run they belong to,
101 * and are checked with a test of (flags&MASK_EMBEDDING) to
102 * consider if the paragraph direction should be considered in
103 * the flags variable.
105 * If there are no White Space types in the paragraph, then
106 * (L1) is not necessary in adjustWSLevels().
109 /* to avoid some conditional statements, use tiny constant arrays */
110 static const Flags flagLR
[2]={ DIRPROP_FLAG(L
), DIRPROP_FLAG(R
) };
111 static const Flags flagE
[2]={ DIRPROP_FLAG(LRE
), DIRPROP_FLAG(RLE
) };
112 static const Flags flagO
[2]={ DIRPROP_FLAG(LRO
), DIRPROP_FLAG(RLO
) };
114 #define DIRPROP_FLAG_LR(level) flagLR[(level)&1]
115 #define DIRPROP_FLAG_E(level) flagE[(level)&1]
116 #define DIRPROP_FLAG_O(level) flagO[(level)&1]
118 #define DIR_FROM_STRONG(strong) ((strong)==L ? L : R)
120 #define NO_OVERRIDE(level) ((level)&~UBIDI_LEVEL_OVERRIDE)
122 /* UBiDi object management -------------------------------------------------- */
124 U_CAPI UBiDi
* U_EXPORT2
127 UErrorCode errorCode
=U_ZERO_ERROR
;
128 return ubidi_openSized(0, 0, &errorCode
);
131 U_CAPI UBiDi
* U_EXPORT2
132 ubidi_openSized(int32_t maxLength
, int32_t maxRunCount
, UErrorCode
*pErrorCode
) {
135 /* check the argument values */
136 if(pErrorCode
==NULL
|| U_FAILURE(*pErrorCode
)) {
138 } else if(maxLength
<0 || maxRunCount
<0) {
139 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
140 return NULL
; /* invalid arguments */
143 /* allocate memory for the object */
144 pBiDi
=(UBiDi
*)uprv_malloc(sizeof(UBiDi
));
146 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
150 /* reset the object, all pointers NULL, all flags FALSE, all sizes 0 */
151 uprv_memset(pBiDi
, 0, sizeof(UBiDi
));
153 /* get BiDi properties */
154 pBiDi
->bdp
=ubidi_getSingleton();
156 /* allocate memory for arrays as requested */
158 if( !getInitialDirPropsMemory(pBiDi
, maxLength
) ||
159 !getInitialLevelsMemory(pBiDi
, maxLength
)
161 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
164 pBiDi
->mayAllocateText
=TRUE
;
169 /* use simpleRuns[] */
170 pBiDi
->runsSize
=sizeof(Run
);
171 } else if(!getInitialRunsMemory(pBiDi
, maxRunCount
)) {
172 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
175 pBiDi
->mayAllocateRuns
=TRUE
;
178 if(U_SUCCESS(*pErrorCode
)) {
187 * We are allowed to allocate memory if memory==NULL or
188 * mayAllocate==TRUE for each array that we need.
189 * We also try to grow memory as needed if we
192 * Assume sizeNeeded>0.
193 * If *pMemory!=NULL, then assume *pSize>0.
195 * ### this realloc() may unnecessarily copy the old data,
196 * which we know we don't need any more;
197 * is this the best way to do this??
200 ubidi_getMemory(BidiMemoryForAllocation
*bidiMem
, int32_t *pSize
, UBool mayAllocate
, int32_t sizeNeeded
) {
201 void **pMemory
= (void **)bidiMem
;
202 /* check for existing memory */
204 /* we need to allocate memory */
205 if(mayAllocate
&& (*pMemory
=uprv_malloc(sizeNeeded
))!=NULL
) {
212 if(sizeNeeded
<=*pSize
) {
213 /* there is already enough memory */
216 else if(!mayAllocate
) {
217 /* not enough memory, and we must not allocate */
222 /* in most cases, we do not need the copy-old-data part of
223 * realloc, but it is needed when adding runs using getRunsMemory()
224 * in setParaRunsOnly()
226 if((memory
=uprv_realloc(*pMemory
, sizeNeeded
))!=NULL
) {
231 /* we failed to grow */
238 U_CAPI
void U_EXPORT2
239 ubidi_close(UBiDi
*pBiDi
) {
241 pBiDi
->pParaBiDi
=NULL
; /* in case one tries to reuse this block */
242 if(pBiDi
->dirInsertMemory
!=NULL
) {
243 uprv_free(pBiDi
->dirInsertMemory
);
245 if(pBiDi
->dirPropsMemory
!=NULL
) {
246 uprv_free(pBiDi
->dirPropsMemory
);
248 if(pBiDi
->levelsMemory
!=NULL
) {
249 uprv_free(pBiDi
->levelsMemory
);
251 if(pBiDi
->openingsMemory
!=NULL
) {
252 uprv_free(pBiDi
->openingsMemory
);
254 if(pBiDi
->parasMemory
!=NULL
) {
255 uprv_free(pBiDi
->parasMemory
);
257 if(pBiDi
->runsMemory
!=NULL
) {
258 uprv_free(pBiDi
->runsMemory
);
260 if(pBiDi
->isolatesMemory
!=NULL
) {
261 uprv_free(pBiDi
->isolatesMemory
);
263 if(pBiDi
->insertPoints
.points
!=NULL
) {
264 uprv_free(pBiDi
->insertPoints
.points
);
271 /* set to approximate "inverse BiDi" ---------------------------------------- */
273 U_CAPI
void U_EXPORT2
274 ubidi_setInverse(UBiDi
*pBiDi
, UBool isInverse
) {
276 pBiDi
->isInverse
=isInverse
;
277 pBiDi
->reorderingMode
= isInverse
? UBIDI_REORDER_INVERSE_NUMBERS_AS_L
278 : UBIDI_REORDER_DEFAULT
;
282 U_CAPI UBool U_EXPORT2
283 ubidi_isInverse(UBiDi
*pBiDi
) {
285 return pBiDi
->isInverse
;
291 /* FOOD FOR THOUGHT: currently the reordering modes are a mixture of
292 * algorithm for direct BiDi, algorithm for inverse BiDi and the bizarre
293 * concept of RUNS_ONLY which is a double operation.
294 * It could be advantageous to divide this into 3 concepts:
295 * a) Operation: direct / inverse / RUNS_ONLY
296 * b) Direct algorithm: default / NUMBERS_SPECIAL / GROUP_NUMBERS_WITH_R
297 * c) Inverse algorithm: default / INVERSE_LIKE_DIRECT / NUMBERS_SPECIAL
298 * This would allow combinations not possible today like RUNS_ONLY with
300 * Also allow to set INSERT_MARKS for the direct step of RUNS_ONLY and
301 * REMOVE_CONTROLS for the inverse step.
302 * Not all combinations would be supported, and probably not all do make sense.
303 * This would need to document which ones are supported and what are the
304 * fallbacks for unsupported combinations.
306 U_CAPI
void U_EXPORT2
307 ubidi_setReorderingMode(UBiDi
*pBiDi
, UBiDiReorderingMode reorderingMode
) {
308 if ((pBiDi
!=NULL
) && (reorderingMode
>= UBIDI_REORDER_DEFAULT
)
309 && (reorderingMode
< UBIDI_REORDER_COUNT
)) {
310 pBiDi
->reorderingMode
= reorderingMode
;
311 pBiDi
->isInverse
= (UBool
)(reorderingMode
== UBIDI_REORDER_INVERSE_NUMBERS_AS_L
);
315 U_CAPI UBiDiReorderingMode U_EXPORT2
316 ubidi_getReorderingMode(UBiDi
*pBiDi
) {
318 return pBiDi
->reorderingMode
;
320 return UBIDI_REORDER_DEFAULT
;
324 U_CAPI
void U_EXPORT2
325 ubidi_setReorderingOptions(UBiDi
*pBiDi
, uint32_t reorderingOptions
) {
326 if (reorderingOptions
& UBIDI_OPTION_REMOVE_CONTROLS
) {
327 reorderingOptions
&=~UBIDI_OPTION_INSERT_MARKS
;
330 pBiDi
->reorderingOptions
=reorderingOptions
;
334 U_CAPI
uint32_t U_EXPORT2
335 ubidi_getReorderingOptions(UBiDi
*pBiDi
) {
337 return pBiDi
->reorderingOptions
;
343 U_CAPI UBiDiDirection U_EXPORT2
344 ubidi_getBaseDirection(const UChar
*text
,
351 if( text
==NULL
|| length
<-1 ){
352 return UBIDI_NEUTRAL
;
356 length
=u_strlen(text
);
359 for( i
= 0 ; i
< length
; ) {
360 /* i is incremented by U16_NEXT */
361 U16_NEXT(text
, i
, length
, uchar
);
362 dir
= u_charDirection(uchar
);
363 if( dir
== U_LEFT_TO_RIGHT
)
365 if( dir
== U_RIGHT_TO_LEFT
|| dir
==U_RIGHT_TO_LEFT_ARABIC
)
368 return UBIDI_NEUTRAL
;
371 /* perform (P2)..(P3) ------------------------------------------------------- */
374 * Returns the directionality of the first strong character
375 * after the last B in prologue, if any.
376 * Requires prologue!=null.
379 firstL_R_AL(UBiDi
*pBiDi
) {
380 const UChar
*text
=pBiDi
->prologue
;
381 int32_t length
=pBiDi
->proLength
;
384 DirProp dirProp
, result
=ON
;
385 for(i
=0; i
<length
; ) {
386 /* i is incremented by U16_NEXT */
387 U16_NEXT(text
, i
, length
, uchar
);
388 dirProp
=(DirProp
)ubidi_getCustomizedClass(pBiDi
, uchar
);
390 if(dirProp
==L
|| dirProp
==R
|| dirProp
==AL
) {
403 * Check that there are enough entries in the array pointed to by pBiDi->paras
406 checkParaCount(UBiDi
*pBiDi
) {
407 int32_t count
=pBiDi
->paraCount
;
408 if(pBiDi
->paras
==pBiDi
->simpleParas
) {
409 if(count
<=SIMPLE_PARAS_COUNT
)
411 if(!getInitialParasMemory(pBiDi
, SIMPLE_PARAS_COUNT
* 2))
413 pBiDi
->paras
=pBiDi
->parasMemory
;
414 uprv_memcpy(pBiDi
->parasMemory
, pBiDi
->simpleParas
, SIMPLE_PARAS_COUNT
* sizeof(Para
));
417 if(!getInitialParasMemory(pBiDi
, count
* 2))
419 pBiDi
->paras
=pBiDi
->parasMemory
;
424 * Get the directional properties for the inserted bidi controls.
427 /* subset of bidi properties, fit in 4 bits */
428 enum { /* correspondence to standard class */
429 Insert_none
= 0, /* 0 all others */
430 Insert_L
, /* 1 L = U_LEFT_TO_RIGHT */
431 Insert_R
, /* 2 R = U_RIGHT_TO_LEFT */
432 Insert_AL
, /* 3 AL = U_RIGHT_TO_LEFT_ARABIC */
433 Insert_LRE
, /* 4 LRE = U_LEFT_TO_RIGHT_EMBEDDING */
434 Insert_LRO
, /* 5 LRO = U_LEFT_TO_RIGHT_OVERRIDE */
435 Insert_RLE
, /* 6 RLE = U_RIGHT_TO_LEFT_EMBEDDING */
436 Insert_RLO
, /* 7 RLO = U_RIGHT_TO_LEFT_OVERRIDE */
437 Insert_PDF
, /* 8 PDF = U_POP_DIRECTIONAL_FORMAT */
438 Insert_FSI
, /* 9 FSI = U_FIRST_STRONG_ISOLATE */
439 Insert_LRI
, /* 10 LRI = U_LEFT_TO_RIGHT_ISOLATE */
440 Insert_RLI
, /* 11 RLI = U_RIGHT_TO_LEFT_ISOLATE */
441 Insert_PDI
, /* 12 PDI = U_POP_DIRECTIONAL_ISOLATE */
442 Insert_B
, /* 13 B = U_BLOCK_SEPARATOR */
443 Insert_S
, /* 14 S = U_SEGMENT_SEPARATOR */
444 Insert_WS
, /* 15 WS = U_WHITE_SPACE_NEUTRAL */
445 Insert_count
/* 16 */
448 /* map standard dir class to special 4-bit insert value (Insert_none as default) */
449 static const uint16_t insertDirFromStdDir
[dirPropCount
] = {
450 Insert_none
, /* L= U_LEFT_TO_RIGHT */
451 Insert_none
, /* R= U_RIGHT_TO_LEFT, */
452 Insert_none
, /* EN= U_EUROPEAN_NUMBER */
453 Insert_none
, /* ES= U_EUROPEAN_NUMBER_SEPARATOR */
454 Insert_none
, /* ET= U_EUROPEAN_NUMBER_TERMINATOR */
455 Insert_none
, /* AN= U_ARABIC_NUMBER */
456 Insert_none
, /* CS= U_COMMON_NUMBER_SEPARATOR */
457 Insert_none
, /* B= U_BLOCK_SEPARATOR */
458 Insert_none
, /* S= U_SEGMENT_SEPARATOR */
459 Insert_none
, /* WS= U_WHITE_SPACE_NEUTRAL */
460 Insert_none
, /* ON= U_OTHER_NEUTRAL */
461 Insert_LRE
, /* LRE=U_LEFT_TO_RIGHT_EMBEDDING */
462 Insert_LRO
, /* LRO=U_LEFT_TO_RIGHT_OVERRIDE */
463 Insert_none
, /* AL= U_RIGHT_TO_LEFT_ARABIC */
464 Insert_RLE
, /* RLE=U_RIGHT_TO_LEFT_EMBEDDING */
465 Insert_RLO
, /* RLO=U_RIGHT_TO_LEFT_OVERRIDE */
466 Insert_PDF
, /* PDF=U_POP_DIRECTIONAL_FORMAT */
467 Insert_none
, /* NSM=U_DIR_NON_SPACING_MARK */
468 Insert_none
, /* BN= U_BOUNDARY_NEUTRAL */
469 Insert_FSI
, /* FSI=U_FIRST_STRONG_ISOLATE */
470 Insert_LRI
, /* LRI=U_LEFT_TO_RIGHT_ISOLATE */
471 Insert_RLI
, /* RLI=U_RIGHT_TO_LEFT_ISOLATE */
472 Insert_PDI
, /* PDI=U_POP_DIRECTIONAL_ISOLATE */
473 Insert_none
, /* ENL */
474 Insert_none
, /* ENR */
477 /* map special 4-bit insert direction class to standard dir class (ON as default) */
478 static const uint8_t stdDirFromInsertDir
[Insert_count
] = {
479 ON
, /* Insert_none > ON */
483 LRE
, /* Insert_LRE */
484 LRO
, /* Insert_LRO */
485 RLE
, /* Insert_RLE */
486 RLO
, /* Insert_RLO */
487 PDF
, /* Insert_PDF */
488 FSI
, /* Insert_FSI */
489 LRI
, /* Insert_LRI */
490 RLI
, /* Insert_RLI */
491 PDI
, /* Insert_PDI */
497 enum { kMaxControlStringLen
= 4 };
500 getDirInsert(UBiDi
*pBiDi
,
501 const int32_t *offsets
, int32_t offsetCount
,
502 const int32_t *controlStringIndices
,
503 const UChar
* const * controlStrings
) {
504 int32_t offset
, offsetsIndex
;
505 uint16_t *dirInsert
= pBiDi
->dirInsert
;
506 /* initialize dirInsert */
507 for (offset
= 0; offset
< pBiDi
->length
; offset
++) {
508 dirInsert
[offset
] = 0;
510 for (offsetsIndex
= 0; offsetsIndex
< offsetCount
; offsetsIndex
++) {
511 const UChar
* controlString
;
513 int32_t controlStringIndex
, dirInsertIndex
= 0;
514 uint16_t dirInsertValue
= 0;
515 offset
= offsets
[offsetsIndex
];
516 if (offset
< 0 || offset
>= pBiDi
->length
) {
517 return FALSE
; /* param err in offsets array */
519 controlStringIndex
= (controlStringIndices
== NULL
)? offsetsIndex
: controlStringIndices
[offsetsIndex
];
520 controlString
= controlStrings
[controlStringIndex
];
521 if (controlString
== NULL
) {
522 return FALSE
; /* param err in controlStrings array */
524 while ((uchar
= *controlString
++) != 0) {
525 uint16_t insertValue
= (U16_IS_SURROGATE(uchar
))? Insert_none
:
526 insertDirFromStdDir
[(uint32_t)ubidi_getCustomizedClass(pBiDi
, uchar
)];
527 if (dirInsertIndex
>= kMaxControlStringLen
|| insertValue
== Insert_none
) {
528 return FALSE
; /* param err in controlStrings array */
530 dirInsertValue
|= (insertValue
<< (4 * dirInsertIndex
++));
532 dirInsert
[offset
] = dirInsertValue
;
538 * Get the directional properties for the text, calculate the flags bit-set, and
539 * determine the paragraph level if necessary (in pBiDi->paras[i].level).
540 * FSI initiators are also resolved and their dirProp replaced with LRI or RLI.
541 * When encountering an FSI, it is initially replaced with an LRI, which is the
542 * default. Only if a strong R or AL is found within its scope will the LRI be
543 * replaced by an RLI.
546 getDirProps(UBiDi
*pBiDi
) {
547 const UChar
*text
=pBiDi
->text
;
548 DirProp
*dirProps
=pBiDi
->dirPropsMemory
; /* pBiDi->dirProps is const */
549 uint16_t *dirInsert
= pBiDi
->dirInsert
; /* may be NULL */
551 int32_t i
=0, originalLength
=pBiDi
->originalLength
;
552 Flags flags
=0; /* collect all directionalities in the text */
554 DirProp dirProp
=0, defaultParaLevel
=0; /* initialize to avoid compiler warnings */
555 int32_t dirInsertValue
;
556 int8_t dirInsertIndex
; /* position within dirInsertValue, if any */
557 UBool isDefaultLevel
=IS_DEFAULT_LEVEL(pBiDi
->paraLevel
);
558 /* for inverse BiDi, the default para level is set to RTL if there is a
559 strong R or AL character at either end of the text */
560 UBool isDefaultLevelInverse
=isDefaultLevel
&& (UBool
)
561 (pBiDi
->reorderingMode
==UBIDI_REORDER_INVERSE_LIKE_DIRECT
||
562 pBiDi
->reorderingMode
==UBIDI_REORDER_INVERSE_FOR_NUMBERS_SPECIAL
);
563 int32_t lastArabicPos
=-1;
564 int32_t controlCount
=0;
565 UBool removeBiDiControls
= (UBool
)(pBiDi
->reorderingOptions
&
566 UBIDI_OPTION_REMOVE_CONTROLS
);
569 NOT_SEEKING_STRONG
, /* 0: not contextual paraLevel, not after FSI */
570 SEEKING_STRONG_FOR_PARA
, /* 1: looking for first strong char in para */
571 SEEKING_STRONG_FOR_FSI
, /* 2: looking for first strong after FSI */
572 LOOKING_FOR_PDI
/* 3: found strong after FSI, looking for PDI */
575 DirProp lastStrong
=ON
; /* for default level & inverse BiDi */
576 /* The following stacks are used to manage isolate sequences. Those
577 sequences may be nested, but obviously never more deeply than the
578 maximum explicit embedding level.
579 lastStack is the index of the last used entry in the stack. A value of -1
580 means that there is no open isolate sequence.
581 lastStack is reset to -1 on paragraph boundaries. */
582 /* The following stack contains the position of the initiator of
583 each open isolate sequence */
584 int32_t isolateStartStack
[UBIDI_MAX_EXPLICIT_LEVEL
+1];
585 int8_t isolateStartInsertIndex
[UBIDI_MAX_EXPLICIT_LEVEL
+1];
586 /* The following stack contains the last known state before
587 encountering the initiator of an isolate sequence */
588 int8_t previousStateStack
[UBIDI_MAX_EXPLICIT_LEVEL
+1];
589 int32_t stackLast
=-1;
591 if(pBiDi
->reorderingOptions
& UBIDI_OPTION_STREAMING
)
593 defaultParaLevel
=pBiDi
->paraLevel
&1;
595 pBiDi
->paras
[0].level
=defaultParaLevel
;
596 lastStrong
=defaultParaLevel
;
597 if(pBiDi
->proLength
>0 && /* there is a prologue */
598 (dirProp
=firstL_R_AL(pBiDi
))!=ON
) { /* with a strong character */
600 pBiDi
->paras
[0].level
=0; /* set the default para level */
602 pBiDi
->paras
[0].level
=1; /* set the default para level */
603 state
=NOT_SEEKING_STRONG
;
605 state
=SEEKING_STRONG_FOR_PARA
;
608 pBiDi
->paras
[0].level
=pBiDi
->paraLevel
;
609 state
=NOT_SEEKING_STRONG
;
611 /* count paragraphs and determine the paragraph level (P2..P3) */
613 * see comment in ubidi.h:
614 * the UBIDI_DEFAULT_XXX values are designed so that
615 * their bit 0 alone yields the intended default
618 dirInsertIndex
= -1; /* indicate that we have not checked dirInsert yet */
619 for( /* i=0 above */ ; i
<originalLength
; ) {
620 if (dirInsert
!= NULL
&& dirInsertIndex
< 0) {
621 dirInsertValue
= dirInsert
[i
];
623 if (dirInsertValue
> 0) {
625 dirProp
= (DirProp
)stdDirFromInsertDir
[dirInsertValue
& 0x000F];
626 dirInsertValue
>>= 4;
627 flags
|=DIRPROP_FLAG(dirProp
);
631 /* i is incremented by U16_NEXT */
632 U16_NEXT(text
, i
, originalLength
, uchar
);
633 flags
|=DIRPROP_FLAG(dirProp
=(DirProp
)ubidi_getCustomizedClass(pBiDi
, uchar
));
634 dirProps
[i
-1]=dirProp
;
635 if(uchar
>0xffff) { /* set the lead surrogate's property to BN */
636 flags
|=DIRPROP_FLAG(BN
);
640 if(removeBiDiControls
&& IS_BIDI_CONTROL_CHAR(uchar
))
643 if(state
==SEEKING_STRONG_FOR_PARA
) {
644 pBiDi
->paras
[pBiDi
->paraCount
-1].level
=0;
645 state
=NOT_SEEKING_STRONG
;
647 else if(state
==SEEKING_STRONG_FOR_FSI
) {
648 if(stackLast
<=UBIDI_MAX_EXPLICIT_LEVEL
) {
649 /* no need for next statement, already set by default */
650 /* dirProps[isolateStartStack[stackLast]]=LRI; */
651 flags
|=DIRPROP_FLAG(LRI
);
653 state
=LOOKING_FOR_PDI
;
658 if(dirProp
==R
|| dirProp
==AL
) {
659 if(state
==SEEKING_STRONG_FOR_PARA
) {
660 pBiDi
->paras
[pBiDi
->paraCount
-1].level
=1;
661 state
=NOT_SEEKING_STRONG
;
663 else if(state
==SEEKING_STRONG_FOR_FSI
) {
664 if(stackLast
<=UBIDI_MAX_EXPLICIT_LEVEL
) {
665 if (isolateStartInsertIndex
[stackLast
] < 0) {
666 dirProps
[isolateStartStack
[stackLast
]]=RLI
;
668 dirInsert
[stackLast
] &= ~(0x000F << (4*isolateStartInsertIndex
[stackLast
]));
669 dirInsert
[stackLast
] |= (Insert_RLI
<< (4*isolateStartInsertIndex
[stackLast
]));
671 flags
|=DIRPROP_FLAG(RLI
);
673 state
=LOOKING_FOR_PDI
;
680 if(dirProp
>=FSI
&& dirProp
<=RLI
) { /* FSI, LRI or RLI */
682 if(stackLast
<=UBIDI_MAX_EXPLICIT_LEVEL
) {
683 isolateStartStack
[stackLast
]= (dirInsertIndex
< 0)? i
-1: i
/* we have not incremented with U16_NEXT yet */;
684 isolateStartInsertIndex
[stackLast
] = dirInsertIndex
;
685 previousStateStack
[stackLast
]=state
;
688 if (dirInsertIndex
< 0) {
689 dirProps
[i
-1]=LRI
; /* default if no strong char */
691 dirInsert
[i
] &= ~(0x000F << (4*dirInsertIndex
));
692 dirInsert
[i
] |= (Insert_LRI
<< (4*dirInsertIndex
));
694 state
=SEEKING_STRONG_FOR_FSI
;
697 state
=LOOKING_FOR_PDI
;
701 if(state
==SEEKING_STRONG_FOR_FSI
) {
702 if(stackLast
<=UBIDI_MAX_EXPLICIT_LEVEL
) {
703 /* no need for next statement, already set by default */
704 /* dirProps[isolateStartStack[stackLast]]=LRI; */
705 flags
|=DIRPROP_FLAG(LRI
);
709 if(stackLast
<=UBIDI_MAX_EXPLICIT_LEVEL
)
710 state
=previousStateStack
[stackLast
];
716 if(i
<originalLength
&& uchar
==CR
&& text
[i
]==LF
) /* do nothing on the CR */
718 pBiDi
->paras
[pBiDi
->paraCount
-1].limit
=i
;
719 if(isDefaultLevelInverse
&& lastStrong
==R
)
720 pBiDi
->paras
[pBiDi
->paraCount
-1].level
=1;
721 if(pBiDi
->reorderingOptions
& UBIDI_OPTION_STREAMING
) {
722 /* When streaming, we only process whole paragraphs
723 thus some updates are only done on paragraph boundaries */
724 pBiDi
->length
=i
; /* i is index to next character */
725 pBiDi
->controlCount
=controlCount
;
727 if(i
<originalLength
) { /* B not last char in text */
729 if(checkParaCount(pBiDi
)==FALSE
) /* not enough memory for a new para entry */
732 pBiDi
->paras
[pBiDi
->paraCount
-1].level
=defaultParaLevel
;
733 state
=SEEKING_STRONG_FOR_PARA
;
734 lastStrong
=defaultParaLevel
;
736 pBiDi
->paras
[pBiDi
->paraCount
-1].level
=pBiDi
->paraLevel
;
737 state
=NOT_SEEKING_STRONG
;
744 /* Ignore still open isolate sequences with overflow */
745 if(stackLast
>UBIDI_MAX_EXPLICIT_LEVEL
) {
746 stackLast
=UBIDI_MAX_EXPLICIT_LEVEL
;
747 state
=SEEKING_STRONG_FOR_FSI
; /* to be on the safe side */
749 /* Resolve direction of still unresolved open FSI sequences */
750 while(stackLast
>=0) {
751 if(state
==SEEKING_STRONG_FOR_FSI
) {
752 /* no need for next statement, already set by default */
753 /* dirProps[isolateStartStack[stackLast]]=LRI; */
754 flags
|=DIRPROP_FLAG(LRI
);
757 state
=previousStateStack
[stackLast
];
760 /* When streaming, ignore text after the last paragraph separator */
761 if(pBiDi
->reorderingOptions
& UBIDI_OPTION_STREAMING
) {
762 if(pBiDi
->length
<originalLength
)
765 pBiDi
->paras
[pBiDi
->paraCount
-1].limit
=originalLength
;
766 pBiDi
->controlCount
=controlCount
;
768 /* For inverse bidi, default para direction is RTL if there is
769 a strong R or AL at either end of the paragraph */
770 if(isDefaultLevelInverse
&& lastStrong
==R
) {
771 pBiDi
->paras
[pBiDi
->paraCount
-1].level
=1;
774 pBiDi
->paraLevel
=pBiDi
->paras
[0].level
;
776 /* The following is needed to resolve the text direction for default level
777 paragraphs containing no strong character */
778 for(i
=0; i
<pBiDi
->paraCount
; i
++)
779 flags
|=DIRPROP_FLAG_LR(pBiDi
->paras
[i
].level
);
781 if(pBiDi
->orderParagraphsLTR
&& (flags
&DIRPROP_FLAG(B
))) {
782 flags
|=DIRPROP_FLAG(L
);
785 pBiDi
->lastArabicPos
=lastArabicPos
;
789 /* determine the paragraph level at position index */
791 ubidi_getParaLevelAtIndex(const UBiDi
*pBiDi
, int32_t pindex
) {
793 for(i
=0; i
<pBiDi
->paraCount
; i
++)
794 if(pindex
<pBiDi
->paras
[i
].limit
)
796 if(i
>=pBiDi
->paraCount
)
797 i
=pBiDi
->paraCount
-1;
798 return (UBiDiLevel
)(pBiDi
->paras
[i
].level
);
801 /* Functions for handling paired brackets ----------------------------------- */
803 /* In the isoRuns array, the first entry is used for text outside of any
804 isolate sequence. Higher entries are used for each more deeply nested
805 isolate sequence. isoRunLast is the index of the last used entry. The
806 openings array is used to note the data of opening brackets not yet
807 matched by a closing bracket, or matched but still susceptible to change
809 Each isoRun entry contains the index of the first and
810 one-after-last openings entries for pending opening brackets it
811 contains. The next openings entry to use is the one-after-last of the
812 most deeply nested isoRun entry.
813 isoRun entries also contain their current embedding level and the last
814 encountered strong character, since these will be needed to resolve
815 the level of paired brackets. */
818 bracketInit(UBiDi
*pBiDi
, BracketData
*bd
) {
821 bd
->isoRuns
[0].start
=0;
822 bd
->isoRuns
[0].limit
=0;
823 bd
->isoRuns
[0].level
=GET_PARALEVEL(pBiDi
, 0);
824 bd
->isoRuns
[0].lastStrong
=bd
->isoRuns
[0].lastBase
=bd
->isoRuns
[0].contextDir
=GET_PARALEVEL(pBiDi
, 0)&1;
825 bd
->isoRuns
[0].contextPos
=0;
826 if(pBiDi
->openingsMemory
) {
827 bd
->openings
=pBiDi
->openingsMemory
;
828 bd
->openingsCount
=pBiDi
->openingsSize
/ sizeof(Opening
);
830 bd
->openings
=bd
->simpleOpenings
;
831 bd
->openingsCount
=SIMPLE_OPENINGS_COUNT
;
833 bd
->isNumbersSpecial
=bd
->pBiDi
->reorderingMode
==UBIDI_REORDER_NUMBERS_SPECIAL
||
834 bd
->pBiDi
->reorderingMode
==UBIDI_REORDER_INVERSE_FOR_NUMBERS_SPECIAL
;
837 /* paragraph boundary */
839 bracketProcessB(BracketData
*bd
, UBiDiLevel level
) {
841 bd
->isoRuns
[0].limit
=0;
842 bd
->isoRuns
[0].level
=level
;
843 bd
->isoRuns
[0].lastStrong
=bd
->isoRuns
[0].lastBase
=bd
->isoRuns
[0].contextDir
=level
&1;
844 bd
->isoRuns
[0].contextPos
=0;
847 /* LRE, LRO, RLE, RLO, PDF */
849 bracketProcessBoundary(BracketData
*bd
, int32_t lastCcPos
, DirProp lastCcDirProp
,
850 UBiDiLevel contextLevel
, UBiDiLevel embeddingLevel
) {
851 IsoRun
*pLastIsoRun
=&bd
->isoRuns
[bd
->isoRunLast
];
852 if(DIRPROP_FLAG(lastCcDirProp
)&MASK_ISO
) /* after an isolate */
854 if(NO_OVERRIDE(embeddingLevel
)>NO_OVERRIDE(contextLevel
)) /* not a PDF */
855 contextLevel
=embeddingLevel
;
856 pLastIsoRun
->limit
=pLastIsoRun
->start
;
857 pLastIsoRun
->level
=embeddingLevel
;
858 pLastIsoRun
->lastStrong
=pLastIsoRun
->lastBase
=pLastIsoRun
->contextDir
=contextLevel
&1;
859 pLastIsoRun
->contextPos
=lastCcPos
;
864 bracketProcessLRI_RLI(BracketData
*bd
, UBiDiLevel level
) {
865 IsoRun
*pLastIsoRun
=&bd
->isoRuns
[bd
->isoRunLast
];
867 pLastIsoRun
->lastBase
=ON
;
868 lastLimit
=pLastIsoRun
->limit
;
871 pLastIsoRun
->start
=pLastIsoRun
->limit
=lastLimit
;
872 pLastIsoRun
->level
=level
;
873 pLastIsoRun
->lastStrong
=pLastIsoRun
->lastBase
=pLastIsoRun
->contextDir
=level
&1;
874 pLastIsoRun
->contextPos
=0;
879 bracketProcessPDI(BracketData
*bd
) {
882 pLastIsoRun
=&bd
->isoRuns
[bd
->isoRunLast
];
883 pLastIsoRun
->lastBase
=ON
;
886 /* newly found opening bracket: create an openings entry */
887 static UBool
/* return TRUE if success */
888 bracketAddOpening(BracketData
*bd
, UChar match
, int32_t position
) {
889 IsoRun
*pLastIsoRun
=&bd
->isoRuns
[bd
->isoRunLast
];
891 if(pLastIsoRun
->limit
>=bd
->openingsCount
) { /* no available new entry */
892 UBiDi
*pBiDi
=bd
->pBiDi
;
893 if(!getInitialOpeningsMemory(pBiDi
, pLastIsoRun
->limit
* 2))
895 if(bd
->openings
==bd
->simpleOpenings
)
896 uprv_memcpy(pBiDi
->openingsMemory
, bd
->simpleOpenings
,
897 SIMPLE_OPENINGS_COUNT
* sizeof(Opening
));
898 bd
->openings
=pBiDi
->openingsMemory
; /* may have changed */
899 bd
->openingsCount
=pBiDi
->openingsSize
/ sizeof(Opening
);
901 pOpening
=&bd
->openings
[pLastIsoRun
->limit
];
902 pOpening
->position
=position
;
903 pOpening
->match
=match
;
904 pOpening
->contextDir
=pLastIsoRun
->contextDir
;
905 pOpening
->contextPos
=pLastIsoRun
->contextPos
;
907 pLastIsoRun
->limit
++;
911 /* change N0c1 to N0c2 when a preceding bracket is assigned the embedding level */
913 fixN0c(BracketData
*bd
, int32_t openingIndex
, int32_t newPropPosition
, DirProp newProp
) {
914 /* This function calls itself recursively */
915 IsoRun
*pLastIsoRun
=&bd
->isoRuns
[bd
->isoRunLast
];
917 DirProp
*dirProps
=bd
->pBiDi
->dirProps
;
918 int32_t k
, openingPosition
, closingPosition
;
919 for(k
=openingIndex
+1, qOpening
=&bd
->openings
[k
]; k
<pLastIsoRun
->limit
; k
++, qOpening
++) {
920 if(qOpening
->match
>=0) /* not an N0c match */
922 if(newPropPosition
<qOpening
->contextPos
)
924 if(newPropPosition
>=qOpening
->position
)
926 if(newProp
==qOpening
->contextDir
)
928 openingPosition
=qOpening
->position
;
929 dirProps
[openingPosition
]=newProp
;
930 closingPosition
=-(qOpening
->match
);
931 dirProps
[closingPosition
]=newProp
;
932 qOpening
->match
=0; /* prevent further changes */
933 fixN0c(bd
, k
, openingPosition
, newProp
);
934 fixN0c(bd
, k
, closingPosition
, newProp
);
938 /* process closing bracket */
939 static DirProp
/* return L or R if N0b or N0c, ON if N0d */
940 bracketProcessClosing(BracketData
*bd
, int32_t openIdx
, int32_t position
) {
941 IsoRun
*pLastIsoRun
=&bd
->isoRuns
[bd
->isoRunLast
];
942 Opening
*pOpening
, *qOpening
;
943 UBiDiDirection direction
;
946 pOpening
=&bd
->openings
[openIdx
];
947 direction
=pLastIsoRun
->level
&1;
948 stable
=TRUE
; /* assume stable until proved otherwise */
950 /* The stable flag is set when brackets are paired and their
951 level is resolved and cannot be changed by what will be
952 found later in the source string.
953 An unstable match can occur only when applying N0c, where
954 the resolved level depends on the preceding context, and
955 this context may be affected by text occurring later.
956 Example: RTL paragraph containing: abc[(latin) HEBREW]
957 When the closing parenthesis is encountered, it appears
958 that N0c1 must be applied since 'abc' sets an opposite
959 direction context and both parentheses receive level 2.
960 However, when the closing square bracket is processed,
961 N0b applies because of 'HEBREW' being included within the
962 brackets, thus the square brackets are treated like R and
963 receive level 1. However, this changes the preceding
964 context of the opening parenthesis, and it now appears
965 that N0c2 must be applied to the parentheses rather than
968 if((direction
==0 && pOpening
->flags
&FOUND_L
) ||
969 (direction
==1 && pOpening
->flags
&FOUND_R
)) { /* N0b */
972 else if(pOpening
->flags
&(FOUND_L
|FOUND_R
)) { /* N0c */
973 /* it is stable if there is no containing pair or in
974 conditions too complicated and not worth checking */
975 stable
=(openIdx
==pLastIsoRun
->start
);
976 if(direction
!=pOpening
->contextDir
)
977 newProp
=pOpening
->contextDir
; /* N0c1 */
979 newProp
=direction
; /* N0c2 */
981 /* forget this and any brackets nested within this pair */
982 pLastIsoRun
->limit
=openIdx
;
985 bd
->pBiDi
->dirProps
[pOpening
->position
]=newProp
;
986 bd
->pBiDi
->dirProps
[position
]=newProp
;
987 /* Update nested N0c pairs that may be affected */
988 fixN0c(bd
, openIdx
, pOpening
->position
, newProp
);
990 pLastIsoRun
->limit
=openIdx
; /* forget any brackets nested within this pair */
991 /* remove lower located synonyms if any */
992 while(pLastIsoRun
->limit
>pLastIsoRun
->start
&&
993 bd
->openings
[pLastIsoRun
->limit
-1].position
==pOpening
->position
)
994 pLastIsoRun
->limit
--;
997 pOpening
->match
=-position
;
998 /* neutralize lower located synonyms if any */
1000 while(k
>=pLastIsoRun
->start
&&
1001 bd
->openings
[k
].position
==pOpening
->position
)
1002 bd
->openings
[k
--].match
=0;
1003 /* neutralize any unmatched opening between the current pair;
1004 this will also neutralize higher located synonyms if any */
1005 for(k
=openIdx
+1; k
<pLastIsoRun
->limit
; k
++) {
1006 qOpening
=&bd
->openings
[k
];
1007 if(qOpening
->position
>=position
)
1009 if(qOpening
->match
>0)
1016 /* handle strong characters, digits and candidates for closing brackets */
1017 static UBool
/* return TRUE if success */
1018 bracketProcessChar(BracketData
*bd
, int32_t position
) {
1019 IsoRun
*pLastIsoRun
=&bd
->isoRuns
[bd
->isoRunLast
];
1020 DirProp
*dirProps
, dirProp
, newProp
;
1022 dirProps
=bd
->pBiDi
->dirProps
;
1023 dirProp
=dirProps
[position
];
1027 /* First see if it is a matching closing bracket. Hopefully, this is
1028 more efficient than checking if it is a closing bracket at all */
1029 c
=bd
->pBiDi
->text
[position
];
1030 for(idx
=pLastIsoRun
->limit
-1; idx
>=pLastIsoRun
->start
; idx
--) {
1031 if(bd
->openings
[idx
].match
!=c
)
1033 /* We have a match */
1034 newProp
=bracketProcessClosing(bd
, idx
, position
);
1035 if(newProp
==ON
) { /* N0d */
1036 c
=0; /* prevent handling as an opening */
1039 pLastIsoRun
->lastBase
=ON
;
1040 pLastIsoRun
->contextDir
=newProp
;
1041 pLastIsoRun
->contextPos
=position
;
1042 level
=bd
->pBiDi
->levels
[position
];
1043 if(level
&UBIDI_LEVEL_OVERRIDE
) { /* X4, X5 */
1047 pLastIsoRun
->lastStrong
=newProp
;
1048 flag
=DIRPROP_FLAG(newProp
);
1049 for(i
=pLastIsoRun
->start
; i
<idx
; i
++)
1050 bd
->openings
[i
].flags
|=flag
;
1051 /* matching brackets are not overridden by LRO/RLO */
1052 bd
->pBiDi
->levels
[position
]&=~UBIDI_LEVEL_OVERRIDE
;
1054 /* matching brackets are not overridden by LRO/RLO */
1055 bd
->pBiDi
->levels
[bd
->openings
[idx
].position
]&=~UBIDI_LEVEL_OVERRIDE
;
1058 /* We get here only if the ON character is not a matching closing
1059 bracket or it is a case of N0d */
1060 /* Now see if it is an opening bracket */
1062 match
=u_getBidiPairedBracket(c
); /* get the matching char */
1065 if(match
!=c
&& /* has a matching char */
1066 ubidi_getPairedBracketType(bd
->pBiDi
->bdp
, c
)==U_BPT_OPEN
) { /* opening bracket */
1067 /* special case: process synonyms
1068 create an opening entry for each synonym */
1069 if(match
==0x232A) { /* RIGHT-POINTING ANGLE BRACKET */
1070 if(!bracketAddOpening(bd
, 0x3009, position
))
1073 else if(match
==0x3009) { /* RIGHT ANGLE BRACKET */
1074 if(!bracketAddOpening(bd
, 0x232A, position
))
1077 if(!bracketAddOpening(bd
, match
, position
))
1081 level
=bd
->pBiDi
->levels
[position
];
1082 if(level
&UBIDI_LEVEL_OVERRIDE
) { /* X4, X5 */
1084 if(dirProp
!=S
&& dirProp
!=WS
&& dirProp
!=ON
)
1085 dirProps
[position
]=newProp
;
1086 pLastIsoRun
->lastBase
=newProp
;
1087 pLastIsoRun
->lastStrong
=newProp
;
1088 pLastIsoRun
->contextDir
=newProp
;
1089 pLastIsoRun
->contextPos
=position
;
1091 else if(dirProp
<=R
|| dirProp
==AL
) {
1092 newProp
=DIR_FROM_STRONG(dirProp
);
1093 pLastIsoRun
->lastBase
=dirProp
;
1094 pLastIsoRun
->lastStrong
=dirProp
;
1095 pLastIsoRun
->contextDir
=newProp
;
1096 pLastIsoRun
->contextPos
=position
;
1098 else if(dirProp
==EN
) {
1099 pLastIsoRun
->lastBase
=EN
;
1100 if(pLastIsoRun
->lastStrong
==L
) {
1102 if(!bd
->isNumbersSpecial
)
1103 dirProps
[position
]=ENL
;
1104 pLastIsoRun
->contextDir
=L
;
1105 pLastIsoRun
->contextPos
=position
;
1109 if(pLastIsoRun
->lastStrong
==AL
)
1110 dirProps
[position
]=AN
; /* W2 */
1112 dirProps
[position
]=ENR
;
1113 pLastIsoRun
->contextDir
=R
;
1114 pLastIsoRun
->contextPos
=position
;
1117 else if(dirProp
==AN
) {
1119 pLastIsoRun
->lastBase
=AN
;
1120 pLastIsoRun
->contextDir
=R
;
1121 pLastIsoRun
->contextPos
=position
;
1123 else if(dirProp
==NSM
) {
1124 /* if the last real char was ON, change NSM to ON so that it
1125 will stay ON even if the last real char is a bracket which
1126 may be changed to L or R */
1127 newProp
=pLastIsoRun
->lastBase
;
1129 dirProps
[position
]=newProp
;
1133 pLastIsoRun
->lastBase
=dirProp
;
1135 if(newProp
<=R
|| newProp
==AL
) {
1137 uint16_t flag
=DIRPROP_FLAG(DIR_FROM_STRONG(newProp
));
1138 for(i
=pLastIsoRun
->start
; i
<pLastIsoRun
->limit
; i
++)
1139 if(position
>bd
->openings
[i
].position
)
1140 bd
->openings
[i
].flags
|=flag
;
1145 /* perform (X1)..(X9) ------------------------------------------------------- */
1147 /* determine if the text is mixed-directional or single-directional */
1148 static UBiDiDirection
1149 directionFromFlags(UBiDi
*pBiDi
) {
1150 Flags flags
=pBiDi
->flags
;
1151 /* if the text contains AN and neutrals, then some neutrals may become RTL */
1152 if(!(flags
&MASK_RTL
|| ((flags
&DIRPROP_FLAG(AN
)) && (flags
&MASK_POSSIBLE_N
)))) {
1154 } else if(!(flags
&MASK_LTR
)) {
1162 * Resolve the explicit levels as specified by explicit embedding codes.
1163 * Recalculate the flags to have them reflect the real properties
1164 * after taking the explicit embeddings into account.
1166 * The BiDi algorithm is designed to result in the same behavior whether embedding
1167 * levels are externally specified (from "styled text", supposedly the preferred
1168 * method) or set by explicit embedding codes (LRx, RLx, PDF, FSI, PDI) in the plain text.
1169 * That is why (X9) instructs to remove all not-isolate explicit codes (and BN).
1170 * However, in a real implementation, the removal of these codes and their index
1171 * positions in the plain text is undesirable since it would result in
1172 * reallocated, reindexed text.
1173 * Instead, this implementation leaves the codes in there and just ignores them
1174 * in the subsequent processing.
1175 * In order to get the same reordering behavior, positions with a BN or a not-isolate
1176 * explicit embedding code just get the same level assigned as the last "real"
1179 * Some implementations, not this one, then overwrite some of these
1180 * directionality properties at "real" same-level-run boundaries by
1181 * L or R codes so that the resolution of weak types can be performed on the
1182 * entire paragraph at once instead of having to parse it once more and
1183 * perform that resolution on same-level-runs.
1184 * This limits the scope of the implicit rules in effectively
1185 * the same way as the run limits.
1187 * Instead, this implementation does not modify these codes, except for
1188 * paired brackets whose properties (ON) may be replaced by L or R.
1189 * On one hand, the paragraph has to be scanned for same-level-runs, but
1190 * on the other hand, this saves another loop to reset these codes,
1191 * or saves making and modifying a copy of dirProps[].
1194 * Note that (Pn) and (Xn) changed significantly from version 4 of the BiDi algorithm.
1197 * Handling the stack of explicit levels (Xn):
1199 * With the BiDi stack of explicit levels, as pushed with each
1200 * LRE, RLE, LRO, RLO, LRI, RLI and FSI and popped with each PDF and PDI,
1201 * the explicit level must never exceed UBIDI_MAX_EXPLICIT_LEVEL.
1203 * In order to have a correct push-pop semantics even in the case of overflows,
1204 * overflow counters and a valid isolate counter are used as described in UAX#9
1205 * section 3.3.2 "Explicit Levels and Directions".
1207 * This implementation assumes that UBIDI_MAX_EXPLICIT_LEVEL is odd.
1209 * Returns normally the direction; -1 if there was a memory shortage
1212 static UBiDiDirection
1213 resolveExplicitLevels(UBiDi
*pBiDi
, UErrorCode
*pErrorCode
) {
1214 DirProp
*dirProps
=pBiDi
->dirProps
;
1215 uint16_t *dirInsert
= pBiDi
->dirInsert
; /* may be NULL */
1216 UBiDiLevel
*levels
=pBiDi
->levels
;
1217 const UChar
*text
=pBiDi
->text
;
1219 int32_t i
=0, length
=pBiDi
->length
;
1220 Flags flags
=pBiDi
->flags
; /* collect all directionalities in the text */
1222 int32_t dirInsertValue
;
1223 int8_t dirInsertIndex
; /* position within dirInsertValue, if any */
1224 UBiDiLevel level
=GET_PARALEVEL(pBiDi
, 0);
1225 UBiDiDirection direction
;
1226 pBiDi
->isolateCount
=0;
1228 if(U_FAILURE(*pErrorCode
)) { return UBIDI_LTR
; }
1230 /* determine if the text is mixed-directional or single-directional */
1231 direction
=directionFromFlags(pBiDi
);
1233 /* we may not need to resolve any explicit levels */
1234 if((direction
!=UBIDI_MIXED
)) {
1235 /* not mixed directionality: levels don't matter - trailingWSStart will be 0 */
1238 if(pBiDi
->reorderingMode
> UBIDI_REORDER_LAST_LOGICAL_TO_VISUAL
) {
1239 /* inverse BiDi: mixed, but all characters are at the same embedding level */
1240 /* set all levels to the paragraph level */
1241 int32_t paraIndex
, start
, limit
;
1242 for(paraIndex
=0; paraIndex
<pBiDi
->paraCount
; paraIndex
++) {
1246 start
=pBiDi
->paras
[paraIndex
-1].limit
;
1247 limit
=pBiDi
->paras
[paraIndex
].limit
;
1248 level
=pBiDi
->paras
[paraIndex
].level
;
1249 for(i
=start
; i
<limit
; i
++)
1252 return direction
; /* no bracket matching for inverse BiDi */
1254 if(!(flags
&(MASK_EXPLICIT
|MASK_ISO
))) {
1255 /* no embeddings, set all levels to the paragraph level */
1256 /* we still have to perform bracket matching */
1257 int32_t paraIndex
, start
, limit
;
1258 BracketData bracketData
;
1259 bracketInit(pBiDi
, &bracketData
);
1260 for(paraIndex
=0; paraIndex
<pBiDi
->paraCount
; paraIndex
++) {
1264 start
=pBiDi
->paras
[paraIndex
-1].limit
;
1265 limit
=pBiDi
->paras
[paraIndex
].limit
;
1266 level
=pBiDi
->paras
[paraIndex
].level
;
1267 for(i
=start
; i
<limit
; i
++) {
1269 dirProp
=dirProps
[i
];
1274 if(text
[i
]==CR
&& text
[i
+1]==LF
)
1275 continue; /* skip CR when followed by LF */
1276 bracketProcessB(&bracketData
, level
);
1280 if(!bracketProcessChar(&bracketData
, i
)) {
1281 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
1289 /* continue to perform (Xn) */
1291 /* (X1) level is set for all codes, embeddingLevel keeps track of the push/pop operations */
1292 /* both variables may carry the UBIDI_LEVEL_OVERRIDE flag to indicate the override status */
1293 UBiDiLevel embeddingLevel
=level
, newLevel
;
1294 UBiDiLevel previousLevel
=level
; /* previous level for regular (not CC) characters */
1295 int32_t lastCcPos
=0; /* index of last effective LRx,RLx, PDx */
1296 DirProp lastCcDirProp
=0; /* dirProp of last effective LRx,RLx, PDx */
1298 /* The following stack remembers the embedding level and the ISOLATE flag of level runs.
1299 stackLast points to its current entry. */
1300 uint16_t stack
[UBIDI_MAX_EXPLICIT_LEVEL
+2]; /* we never push anything >=UBIDI_MAX_EXPLICIT_LEVEL
1301 but we need one more entry as base */
1302 uint32_t stackLast
=0;
1303 int32_t overflowIsolateCount
=0;
1304 int32_t overflowEmbeddingCount
=0;
1305 int32_t validIsolateCount
=0;
1306 BracketData bracketData
;
1307 bracketInit(pBiDi
, &bracketData
);
1308 stack
[0]=level
; /* initialize base entry to para level, no override, no isolate */
1310 /* recalculate the flags */
1314 dirInsertIndex
= -1; /* indicate that we have not checked dirInsert yet */
1315 for(i
=0; i
<length
; ) { /* now conditionally increment at end */
1316 if (dirInsert
!= NULL
&& dirInsertIndex
< 0) {
1317 dirInsertValue
= dirInsert
[i
];
1319 if (dirInsertValue
> 0) {
1321 dirProp
= (DirProp
)stdDirFromInsertDir
[dirInsertValue
& 0x000F];
1322 dirInsertValue
>>= 4;
1324 dirInsertIndex
= -1;
1325 dirProp
=dirProps
[i
];
1332 /* (X2, X3, X4, X5) */
1333 flags
|=DIRPROP_FLAG(BN
);
1334 levels
[i
]=previousLevel
;
1335 if (dirProp
==LRE
|| dirProp
==LRO
)
1336 /* least greater even level */
1337 newLevel
=(UBiDiLevel
)((embeddingLevel
+2)&~(UBIDI_LEVEL_OVERRIDE
|1));
1339 /* least greater odd level */
1340 newLevel
=(UBiDiLevel
)((NO_OVERRIDE(embeddingLevel
)+1)|1);
1341 if(newLevel
<=UBIDI_MAX_EXPLICIT_LEVEL
&& overflowIsolateCount
==0 &&
1342 overflowEmbeddingCount
==0) {
1344 lastCcDirProp
= dirProp
;
1345 embeddingLevel
=newLevel
;
1346 if(dirProp
==LRO
|| dirProp
==RLO
)
1347 embeddingLevel
|=UBIDI_LEVEL_OVERRIDE
;
1349 stack
[stackLast
]=embeddingLevel
;
1350 /* we don't need to set UBIDI_LEVEL_OVERRIDE off for LRE and RLE
1351 since this has already been done for newLevel which is
1352 the source for embeddingLevel.
1355 if(overflowIsolateCount
==0)
1356 overflowEmbeddingCount
++;
1361 flags
|=DIRPROP_FLAG(BN
);
1362 levels
[i
]=previousLevel
;
1363 /* handle all the overflow cases first */
1364 if(overflowIsolateCount
) {
1367 if(overflowEmbeddingCount
) {
1368 overflowEmbeddingCount
--;
1371 if(stackLast
>0 && stack
[stackLast
]<ISOLATE
) { /* not an isolate entry */
1373 lastCcDirProp
= dirProp
;
1375 embeddingLevel
=(UBiDiLevel
)stack
[stackLast
];
1380 flags
|=(DIRPROP_FLAG(ON
)|DIRPROP_FLAG_LR(embeddingLevel
));
1381 levels
[i
]=NO_OVERRIDE(embeddingLevel
);
1382 if(NO_OVERRIDE(embeddingLevel
)!=NO_OVERRIDE(previousLevel
)) {
1383 bracketProcessBoundary(&bracketData
, lastCcPos
, lastCcDirProp
,
1384 previousLevel
, embeddingLevel
);
1385 flags
|=DIRPROP_FLAG_MULTI_RUNS
;
1387 previousLevel
=embeddingLevel
;
1390 /* least greater even level */
1391 newLevel
=(UBiDiLevel
)((embeddingLevel
+2)&~(UBIDI_LEVEL_OVERRIDE
|1));
1393 /* least greater odd level */
1394 newLevel
=(UBiDiLevel
)((NO_OVERRIDE(embeddingLevel
)+1)|1);
1395 if(newLevel
<=UBIDI_MAX_EXPLICIT_LEVEL
&& overflowIsolateCount
==0 &&
1396 overflowEmbeddingCount
==0) {
1397 flags
|=DIRPROP_FLAG(dirProp
);
1399 lastCcDirProp
= dirProp
;
1400 validIsolateCount
++;
1401 if(validIsolateCount
>pBiDi
->isolateCount
)
1402 pBiDi
->isolateCount
=validIsolateCount
;
1403 embeddingLevel
=newLevel
;
1404 /* we can increment stackLast without checking because newLevel
1405 will exceed UBIDI_MAX_EXPLICIT_LEVEL before stackLast overflows */
1407 stack
[stackLast
]=embeddingLevel
+ISOLATE
;
1408 bracketProcessLRI_RLI(&bracketData
, embeddingLevel
);
1410 /* make it WS so that it is handled by adjustWSLevels() */
1411 if (dirInsertIndex
< 0) {
1414 dirInsert
[i
] &= ~(0x000F << (4*dirInsertIndex
));
1415 dirInsert
[i
] |= (Insert_WS
<< (4*dirInsertIndex
));
1417 overflowIsolateCount
++;
1421 if(NO_OVERRIDE(embeddingLevel
)!=NO_OVERRIDE(previousLevel
)) {
1422 bracketProcessBoundary(&bracketData
, lastCcPos
, lastCcDirProp
,
1423 previousLevel
, embeddingLevel
);
1424 flags
|=DIRPROP_FLAG_MULTI_RUNS
;
1427 if(overflowIsolateCount
) {
1428 overflowIsolateCount
--;
1429 /* make it WS so that it is handled by adjustWSLevels() */
1430 if (dirInsertIndex
< 0) {
1433 dirInsert
[i
] &= ~(0x000F << (4*dirInsertIndex
));
1434 dirInsert
[i
] |= (Insert_WS
<< (4*dirInsertIndex
));
1437 else if(validIsolateCount
) {
1438 flags
|=DIRPROP_FLAG(PDI
);
1440 lastCcDirProp
= dirProp
;
1441 overflowEmbeddingCount
=0;
1442 while(stack
[stackLast
]<ISOLATE
) /* pop embedding entries */
1443 stackLast
--; /* until the last isolate entry */
1444 stackLast
--; /* pop also the last isolate entry */
1445 validIsolateCount
--;
1446 bracketProcessPDI(&bracketData
);
1448 /* make it WS so that it is handled by adjustWSLevels() */
1449 if (dirInsertIndex
< 0) {
1452 dirInsert
[i
] &= ~(0x000F << (4*dirInsertIndex
));
1453 dirInsert
[i
] |= (Insert_WS
<< (4*dirInsertIndex
));
1455 embeddingLevel
=(UBiDiLevel
)stack
[stackLast
]&~ISOLATE
;
1456 flags
|=(DIRPROP_FLAG(ON
)|DIRPROP_FLAG_LR(embeddingLevel
));
1457 previousLevel
=embeddingLevel
;
1458 levels
[i
]=NO_OVERRIDE(embeddingLevel
);
1461 flags
|=DIRPROP_FLAG(B
);
1462 levels
[i
]=GET_PARALEVEL(pBiDi
, i
);
1464 if(text
[i
]==CR
&& text
[i
+1]==LF
)
1465 break; /* skip CR when followed by LF */
1466 overflowEmbeddingCount
=overflowIsolateCount
=0;
1467 validIsolateCount
=0;
1469 previousLevel
=embeddingLevel
=GET_PARALEVEL(pBiDi
, i
+1);
1470 stack
[0]=embeddingLevel
; /* initialize base entry to para level, no override, no isolate */
1471 bracketProcessB(&bracketData
, embeddingLevel
);
1475 /* BN, LRE, RLE, and PDF are supposed to be removed (X9) */
1476 /* they will get their levels set correctly in adjustWSLevels() */
1477 levels
[i
]=previousLevel
;
1478 flags
|=DIRPROP_FLAG(BN
);
1481 /* all other types are normal characters and get the "real" level */
1482 if(NO_OVERRIDE(embeddingLevel
)!=NO_OVERRIDE(previousLevel
)) {
1483 bracketProcessBoundary(&bracketData
, lastCcPos
, lastCcDirProp
,
1484 previousLevel
, embeddingLevel
);
1485 flags
|=DIRPROP_FLAG_MULTI_RUNS
;
1486 if(embeddingLevel
&UBIDI_LEVEL_OVERRIDE
)
1487 flags
|=DIRPROP_FLAG_O(embeddingLevel
);
1489 flags
|=DIRPROP_FLAG_E(embeddingLevel
);
1491 previousLevel
=embeddingLevel
;
1492 levels
[i
]=embeddingLevel
;
1493 if(!bracketProcessChar(&bracketData
, i
))
1495 /* the dirProp may have been changed in bracketProcessChar() */
1496 flags
|=DIRPROP_FLAG(dirProps
[i
]);
1499 if (dirInsertIndex
< 0) {
1503 if(flags
&MASK_EMBEDDING
)
1504 flags
|=DIRPROP_FLAG_LR(pBiDi
->paraLevel
);
1505 if(pBiDi
->orderParagraphsLTR
&& (flags
&DIRPROP_FLAG(B
)))
1506 flags
|=DIRPROP_FLAG(L
);
1507 /* again, determine if the text is mixed-directional or single-directional */
1509 direction
=directionFromFlags(pBiDi
);
1515 * Use a pre-specified embedding levels array:
1517 * Adjust the directional properties for overrides (->LEVEL_OVERRIDE),
1518 * ignore all explicit codes (X9),
1519 * and check all the preset levels.
1521 * Recalculate the flags to have them reflect the real properties
1522 * after taking the explicit embeddings into account.
1524 static UBiDiDirection
1525 checkExplicitLevels(UBiDi
*pBiDi
, UErrorCode
*pErrorCode
) {
1526 DirProp
*dirProps
=pBiDi
->dirProps
;
1528 UBiDiLevel
*levels
=pBiDi
->levels
;
1529 int32_t isolateCount
=0;
1531 int32_t i
, length
=pBiDi
->length
;
1532 Flags flags
=0; /* collect all directionalities in the text */
1534 pBiDi
->isolateCount
=0;
1536 for(i
=0; i
<length
; ++i
) {
1538 dirProp
=dirProps
[i
];
1539 if(dirProp
==LRI
|| dirProp
==RLI
) {
1541 if(isolateCount
>pBiDi
->isolateCount
)
1542 pBiDi
->isolateCount
=isolateCount
;
1544 else if(dirProp
==PDI
)
1548 if(level
&UBIDI_LEVEL_OVERRIDE
) {
1549 /* keep the override flag in levels[i] but adjust the flags */
1550 level
&=~UBIDI_LEVEL_OVERRIDE
; /* make the range check below simpler */
1551 flags
|=DIRPROP_FLAG_O(level
);
1554 flags
|=DIRPROP_FLAG_E(level
)|DIRPROP_FLAG(dirProp
);
1556 if((level
<GET_PARALEVEL(pBiDi
, i
) &&
1557 !((0==level
)&&(dirProp
==B
))) ||
1558 (UBIDI_MAX_EXPLICIT_LEVEL
<level
)) {
1559 /* level out of bounds */
1560 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
1564 if(flags
&MASK_EMBEDDING
)
1565 flags
|=DIRPROP_FLAG_LR(pBiDi
->paraLevel
);
1566 /* determine if the text is mixed-directional or single-directional */
1568 return directionFromFlags(pBiDi
);
1571 /******************************************************************
1572 The Properties state machine table
1573 *******************************************************************
1575 All table cells are 8 bits:
1576 bits 0..4: next state
1577 bits 5..7: action to perform (if > 0)
1579 Cells may be of format "n" where n represents the next state
1580 (except for the rightmost column).
1581 Cells may also be of format "s(x,y)" where x represents an action
1582 to perform and y represents the next state.
1584 *******************************************************************
1585 Definitions and type for properties state table
1586 *******************************************************************
1588 #define IMPTABPROPS_COLUMNS 16
1589 #define IMPTABPROPS_RES (IMPTABPROPS_COLUMNS - 1)
1590 #define GET_STATEPROPS(cell) ((cell)&0x1f)
1591 #define GET_ACTIONPROPS(cell) ((cell)>>5)
1592 #define s(action, newState) ((uint8_t)(newState+(action<<5)))
1594 static const uint8_t groupProp
[] = /* dirProp regrouped */
1596 /* L R EN ES ET AN CS B S WS ON LRE LRO AL RLE RLO PDF NSM BN FSI LRI RLI PDI ENL ENR */
1597 0, 1, 2, 7, 8, 3, 9, 6, 5, 4, 4, 10, 10, 12, 10, 10, 10, 11, 10, 4, 4, 4, 4, 13, 14
1599 enum { DirProp_L
=0, DirProp_R
=1, DirProp_EN
=2, DirProp_AN
=3, DirProp_ON
=4, DirProp_S
=5, DirProp_B
=6 }; /* reduced dirProp */
1601 /******************************************************************
1603 PROPERTIES STATE TABLE
1605 In table impTabProps,
1606 - the ON column regroups ON and WS, FSI, RLI, LRI and PDI
1607 - the BN column regroups BN, LRE, RLE, LRO, RLO, PDF
1608 - the Res column is the reduced property assigned to a run
1610 Action 1: process current run1, init new run1
1612 3: process run1, process run2, init new run1
1613 4: process run1, set run1=run2, init new run2
1616 1) This table is used in resolveImplicitLevels().
1617 2) This table triggers actions when there is a change in the Bidi
1618 property of incoming characters (action 1).
1619 3) Most such property sequences are processed immediately (in
1620 fact, passed to processPropertySeq().
1621 4) However, numbers are assembled as one sequence. This means
1622 that undefined situations (like CS following digits, until
1623 it is known if the next char will be a digit) are held until
1624 following chars define them.
1625 Example: digits followed by CS, then comes another CS or ON;
1626 the digits will be processed, then the CS assigned
1627 as the start of an ON sequence (action 3).
1628 5) There are cases where more than one sequence must be
1629 processed, for instance digits followed by CS followed by L:
1630 the digits must be processed as one sequence, and the CS
1631 must be processed as an ON sequence, all this before starting
1632 assembling chars for the opening L sequence.
1636 static const uint8_t impTabProps
[][IMPTABPROPS_COLUMNS
] =
1638 /* L , R , EN , AN , ON , S , B , ES , ET , CS , BN , NSM , AL , ENL , ENR , Res */
1639 /* 0 Init */ { 1 , 2 , 4 , 5 , 7 , 15 , 17 , 7 , 9 , 7 , 0 , 7 , 3 , 18 , 21 , DirProp_ON
},
1640 /* 1 L */ { 1 , s(1,2), s(1,4), s(1,5), s(1,7),s(1,15),s(1,17), s(1,7), s(1,9), s(1,7), 1 , 1 , s(1,3),s(1,18),s(1,21), DirProp_L
},
1641 /* 2 R */ { s(1,1), 2 , s(1,4), s(1,5), s(1,7),s(1,15),s(1,17), s(1,7), s(1,9), s(1,7), 2 , 2 , s(1,3),s(1,18),s(1,21), DirProp_R
},
1642 /* 3 AL */ { s(1,1), s(1,2), s(1,6), s(1,6), s(1,8),s(1,16),s(1,17), s(1,8), s(1,8), s(1,8), 3 , 3 , 3 ,s(1,18),s(1,21), DirProp_R
},
1643 /* 4 EN */ { s(1,1), s(1,2), 4 , s(1,5), s(1,7),s(1,15),s(1,17),s(2,10), 11 ,s(2,10), 4 , 4 , s(1,3), 18 , 21 , DirProp_EN
},
1644 /* 5 AN */ { s(1,1), s(1,2), s(1,4), 5 , s(1,7),s(1,15),s(1,17), s(1,7), s(1,9),s(2,12), 5 , 5 , s(1,3),s(1,18),s(1,21), DirProp_AN
},
1645 /* 6 AL:EN/AN */ { s(1,1), s(1,2), 6 , 6 , s(1,8),s(1,16),s(1,17), s(1,8), s(1,8),s(2,13), 6 , 6 , s(1,3), 18 , 21 , DirProp_AN
},
1646 /* 7 ON */ { s(1,1), s(1,2), s(1,4), s(1,5), 7 ,s(1,15),s(1,17), 7 ,s(2,14), 7 , 7 , 7 , s(1,3),s(1,18),s(1,21), DirProp_ON
},
1647 /* 8 AL:ON */ { s(1,1), s(1,2), s(1,6), s(1,6), 8 ,s(1,16),s(1,17), 8 , 8 , 8 , 8 , 8 , s(1,3),s(1,18),s(1,21), DirProp_ON
},
1648 /* 9 ET */ { s(1,1), s(1,2), 4 , s(1,5), 7 ,s(1,15),s(1,17), 7 , 9 , 7 , 9 , 9 , s(1,3), 18 , 21 , DirProp_ON
},
1649 /*10 EN+ES/CS */ { s(3,1), s(3,2), 4 , s(3,5), s(4,7),s(3,15),s(3,17), s(4,7),s(4,14), s(4,7), 10 , s(4,7), s(3,3), 18 , 21 , DirProp_EN
},
1650 /*11 EN+ET */ { s(1,1), s(1,2), 4 , s(1,5), s(1,7),s(1,15),s(1,17), s(1,7), 11 , s(1,7), 11 , 11 , s(1,3), 18 , 21 , DirProp_EN
},
1651 /*12 AN+CS */ { s(3,1), s(3,2), s(3,4), 5 , s(4,7),s(3,15),s(3,17), s(4,7),s(4,14), s(4,7), 12 , s(4,7), s(3,3),s(3,18),s(3,21), DirProp_AN
},
1652 /*13 AL:EN/AN+CS */ { s(3,1), s(3,2), 6 , 6 , s(4,8),s(3,16),s(3,17), s(4,8), s(4,8), s(4,8), 13 , s(4,8), s(3,3), 18 , 21 , DirProp_AN
},
1653 /*14 ON+ET */ { s(1,1), s(1,2), s(4,4), s(1,5), 7 ,s(1,15),s(1,17), 7 , 14 , 7 , 14 , 14 , s(1,3),s(4,18),s(4,21), DirProp_ON
},
1654 /*15 S */ { s(1,1), s(1,2), s(1,4), s(1,5), s(1,7), 15 ,s(1,17), s(1,7), s(1,9), s(1,7), 15 , s(1,7), s(1,3),s(1,18),s(1,21), DirProp_S
},
1655 /*16 AL:S */ { s(1,1), s(1,2), s(1,6), s(1,6), s(1,8), 16 ,s(1,17), s(1,8), s(1,8), s(1,8), 16 , s(1,8), s(1,3),s(1,18),s(1,21), DirProp_S
},
1656 /*17 B */ { s(1,1), s(1,2), s(1,4), s(1,5), s(1,7),s(1,15), 17 , s(1,7), s(1,9), s(1,7), 17 , s(1,7), s(1,3),s(1,18),s(1,21), DirProp_B
},
1657 /*18 ENL */ { s(1,1), s(1,2), 18 , s(1,5), s(1,7),s(1,15),s(1,17),s(2,19), 20 ,s(2,19), 18 , 18 , s(1,3), 18 , 21 , DirProp_L
},
1658 /*19 ENL+ES/CS */ { s(3,1), s(3,2), 18 , s(3,5), s(4,7),s(3,15),s(3,17), s(4,7),s(4,14), s(4,7), 19 , s(4,7), s(3,3), 18 , 21 , DirProp_L
},
1659 /*20 ENL+ET */ { s(1,1), s(1,2), 18 , s(1,5), s(1,7),s(1,15),s(1,17), s(1,7), 20 , s(1,7), 20 , 20 , s(1,3), 18 , 21 , DirProp_L
},
1660 /*21 ENR */ { s(1,1), s(1,2), 21 , s(1,5), s(1,7),s(1,15),s(1,17),s(2,22), 23 ,s(2,22), 21 , 21 , s(1,3), 18 , 21 , DirProp_AN
},
1661 /*22 ENR+ES/CS */ { s(3,1), s(3,2), 21 , s(3,5), s(4,7),s(3,15),s(3,17), s(4,7),s(4,14), s(4,7), 22 , s(4,7), s(3,3), 18 , 21 , DirProp_AN
},
1662 /*23 ENR+ET */ { s(1,1), s(1,2), 21 , s(1,5), s(1,7),s(1,15),s(1,17), s(1,7), 23 , s(1,7), 23 , 23 , s(1,3), 18 , 21 , DirProp_AN
}
1665 /* we must undef macro s because the levels tables have a different
1666 * structure (4 bits for action and 4 bits for next state.
1670 /******************************************************************
1671 The levels state machine tables
1672 *******************************************************************
1674 All table cells are 8 bits:
1675 bits 0..3: next state
1676 bits 4..7: action to perform (if > 0)
1678 Cells may be of format "n" where n represents the next state
1679 (except for the rightmost column).
1680 Cells may also be of format "s(x,y)" where x represents an action
1681 to perform and y represents the next state.
1683 This format limits each table to 16 states each and to 15 actions.
1685 *******************************************************************
1686 Definitions and type for levels state tables
1687 *******************************************************************
1689 #define IMPTABLEVELS_COLUMNS (DirProp_B + 2)
1690 #define IMPTABLEVELS_RES (IMPTABLEVELS_COLUMNS - 1)
1691 #define GET_STATE(cell) ((cell)&0x0f)
1692 #define GET_ACTION(cell) ((cell)>>4)
1693 #define s(action, newState) ((uint8_t)(newState+(action<<4)))
1695 typedef uint8_t ImpTab
[][IMPTABLEVELS_COLUMNS
];
1696 typedef uint8_t ImpAct
[];
1698 /* FOOD FOR THOUGHT: each ImpTab should have its associated ImpAct,
1699 * instead of having a pair of ImpTab and a pair of ImpAct.
1701 typedef struct ImpTabPair
{
1702 const void * pImpTab
[2];
1703 const void * pImpAct
[2];
1706 /******************************************************************
1710 In all levels state tables,
1711 - state 0 is the initial state
1712 - the Res column is the increment to add to the text level
1713 for this property sequence.
1715 The impAct arrays for each table of a pair map the local action
1716 numbers of the table to the total list of actions. For instance,
1717 action 2 in a given table corresponds to the action number which
1718 appears in entry [2] of the impAct array for that table.
1719 The first entry of all impAct arrays must be 0.
1721 Action 1: init conditional sequence
1722 2: prepend conditional sequence to current sequence
1723 3: set ON sequence to new level - 1
1724 4: init EN/AN/ON sequence
1725 5: fix EN/AN/ON sequence followed by R
1726 6: set previous level sequence to level 2
1729 1) These tables are used in processPropertySeq(). The input
1730 is property sequences as determined by resolveImplicitLevels.
1731 2) Most such property sequences are processed immediately
1732 (levels are assigned).
1733 3) However, some sequences cannot be assigned a final level till
1734 one or more following sequences are received. For instance,
1735 ON following an R sequence within an even-level paragraph.
1736 If the following sequence is R, the ON sequence will be
1737 assigned basic run level+1, and so will the R sequence.
1738 4) S is generally handled like ON, since its level will be fixed
1739 to paragraph level in adjustWSLevels().
1743 static const ImpTab impTabL_DEFAULT
= /* Even paragraph level */
1744 /* In this table, conditional sequences receive the lower possible level
1745 until proven otherwise.
1748 /* L , R , EN , AN , ON , S , B , Res */
1749 /* 0 : init */ { 0 , 1 , 0 , 2 , 0 , 0 , 0 , 0 },
1750 /* 1 : R */ { 0 , 1 , 3 , 3 , s(1,4), s(1,4), 0 , 1 },
1751 /* 2 : AN */ { 0 , 1 , 0 , 2 , s(1,5), s(1,5), 0 , 2 },
1752 /* 3 : R+EN/AN */ { 0 , 1 , 3 , 3 , s(1,4), s(1,4), 0 , 2 },
1753 /* 4 : R+ON */ { 0 , s(2,1), s(3,3), s(3,3), 4 , 4 , 0 , 0 },
1754 /* 5 : AN+ON */ { 0 , s(2,1), 0 , s(3,2), 5 , 5 , 0 , 0 }
1756 static const ImpTab impTabR_DEFAULT
= /* Odd paragraph level */
1757 /* In this table, conditional sequences receive the lower possible level
1758 until proven otherwise.
1761 /* L , R , EN , AN , ON , S , B , Res */
1762 /* 0 : init */ { 1 , 0 , 2 , 2 , 0 , 0 , 0 , 0 },
1763 /* 1 : L */ { 1 , 0 , 1 , 3 , s(1,4), s(1,4), 0 , 1 },
1764 /* 2 : EN/AN */ { 1 , 0 , 2 , 2 , 0 , 0 , 0 , 1 },
1765 /* 3 : L+AN */ { 1 , 0 , 1 , 3 , 5 , 5 , 0 , 1 },
1766 /* 4 : L+ON */ { s(2,1), 0 , s(2,1), 3 , 4 , 4 , 0 , 0 },
1767 /* 5 : L+AN+ON */ { 1 , 0 , 1 , 3 , 5 , 5 , 0 , 0 }
1769 static const ImpAct impAct0
= {0,1,2,3,4};
1770 static const ImpTabPair impTab_DEFAULT
= {{&impTabL_DEFAULT
,
1772 {&impAct0
, &impAct0
}};
1774 static const ImpTab impTabL_NUMBERS_SPECIAL
= /* Even paragraph level */
1775 /* In this table, conditional sequences receive the lower possible level
1776 until proven otherwise.
1779 /* L , R , EN , AN , ON , S , B , Res */
1780 /* 0 : init */ { 0 , 2 , s(1,1), s(1,1), 0 , 0 , 0 , 0 },
1781 /* 1 : L+EN/AN */ { 0 , s(4,2), 1 , 1 , 0 , 0 , 0 , 0 },
1782 /* 2 : R */ { 0 , 2 , 4 , 4 , s(1,3), s(1,3), 0 , 1 },
1783 /* 3 : R+ON */ { 0 , s(2,2), s(3,4), s(3,4), 3 , 3 , 0 , 0 },
1784 /* 4 : R+EN/AN */ { 0 , 2 , 4 , 4 , s(1,3), s(1,3), 0 , 2 }
1786 static const ImpTabPair impTab_NUMBERS_SPECIAL
= {{&impTabL_NUMBERS_SPECIAL
,
1788 {&impAct0
, &impAct0
}};
1790 static const ImpTab impTabL_GROUP_NUMBERS_WITH_R
=
1791 /* In this table, EN/AN+ON sequences receive levels as if associated with R
1792 until proven that there is L or sor/eor on both sides. AN is handled like EN.
1795 /* L , R , EN , AN , ON , S , B , Res */
1796 /* 0 init */ { 0 , 3 , s(1,1), s(1,1), 0 , 0 , 0 , 0 },
1797 /* 1 EN/AN */ { s(2,0), 3 , 1 , 1 , 2 , s(2,0), s(2,0), 2 },
1798 /* 2 EN/AN+ON */ { s(2,0), 3 , 1 , 1 , 2 , s(2,0), s(2,0), 1 },
1799 /* 3 R */ { 0 , 3 , 5 , 5 , s(1,4), 0 , 0 , 1 },
1800 /* 4 R+ON */ { s(2,0), 3 , 5 , 5 , 4 , s(2,0), s(2,0), 1 },
1801 /* 5 R+EN/AN */ { 0 , 3 , 5 , 5 , s(1,4), 0 , 0 , 2 }
1803 static const ImpTab impTabR_GROUP_NUMBERS_WITH_R
=
1804 /* In this table, EN/AN+ON sequences receive levels as if associated with R
1805 until proven that there is L on both sides. AN is handled like EN.
1808 /* L , R , EN , AN , ON , S , B , Res */
1809 /* 0 init */ { 2 , 0 , 1 , 1 , 0 , 0 , 0 , 0 },
1810 /* 1 EN/AN */ { 2 , 0 , 1 , 1 , 0 , 0 , 0 , 1 },
1811 /* 2 L */ { 2 , 0 , s(1,4), s(1,4), s(1,3), 0 , 0 , 1 },
1812 /* 3 L+ON */ { s(2,2), 0 , 4 , 4 , 3 , 0 , 0 , 0 },
1813 /* 4 L+EN/AN */ { s(2,2), 0 , 4 , 4 , 3 , 0 , 0 , 1 }
1815 static const ImpTabPair impTab_GROUP_NUMBERS_WITH_R
= {
1816 {&impTabL_GROUP_NUMBERS_WITH_R
,
1817 &impTabR_GROUP_NUMBERS_WITH_R
},
1818 {&impAct0
, &impAct0
}};
1821 static const ImpTab impTabL_INVERSE_NUMBERS_AS_L
=
1822 /* This table is identical to the Default LTR table except that EN and AN are
1826 /* L , R , EN , AN , ON , S , B , Res */
1827 /* 0 : init */ { 0 , 1 , 0 , 0 , 0 , 0 , 0 , 0 },
1828 /* 1 : R */ { 0 , 1 , 0 , 0 , s(1,4), s(1,4), 0 , 1 },
1829 /* 2 : AN */ { 0 , 1 , 0 , 0 , s(1,5), s(1,5), 0 , 2 },
1830 /* 3 : R+EN/AN */ { 0 , 1 , 0 , 0 , s(1,4), s(1,4), 0 , 2 },
1831 /* 4 : R+ON */ { s(2,0), 1 , s(2,0), s(2,0), 4 , 4 , s(2,0), 1 },
1832 /* 5 : AN+ON */ { s(2,0), 1 , s(2,0), s(2,0), 5 , 5 , s(2,0), 1 }
1834 static const ImpTab impTabR_INVERSE_NUMBERS_AS_L
=
1835 /* This table is identical to the Default RTL table except that EN and AN are
1839 /* L , R , EN , AN , ON , S , B , Res */
1840 /* 0 : init */ { 1 , 0 , 1 , 1 , 0 , 0 , 0 , 0 },
1841 /* 1 : L */ { 1 , 0 , 1 , 1 , s(1,4), s(1,4), 0 , 1 },
1842 /* 2 : EN/AN */ { 1 , 0 , 1 , 1 , 0 , 0 , 0 , 1 },
1843 /* 3 : L+AN */ { 1 , 0 , 1 , 1 , 5 , 5 , 0 , 1 },
1844 /* 4 : L+ON */ { s(2,1), 0 , s(2,1), s(2,1), 4 , 4 , 0 , 0 },
1845 /* 5 : L+AN+ON */ { 1 , 0 , 1 , 1 , 5 , 5 , 0 , 0 }
1847 static const ImpTabPair impTab_INVERSE_NUMBERS_AS_L
= {
1848 {&impTabL_INVERSE_NUMBERS_AS_L
,
1849 &impTabR_INVERSE_NUMBERS_AS_L
},
1850 {&impAct0
, &impAct0
}};
1852 static const ImpTab impTabR_INVERSE_LIKE_DIRECT
= /* Odd paragraph level */
1853 /* In this table, conditional sequences receive the lower possible level
1854 until proven otherwise.
1857 /* L , R , EN , AN , ON , S , B , Res */
1858 /* 0 : init */ { 1 , 0 , 2 , 2 , 0 , 0 , 0 , 0 },
1859 /* 1 : L */ { 1 , 0 , 1 , 2 , s(1,3), s(1,3), 0 , 1 },
1860 /* 2 : EN/AN */ { 1 , 0 , 2 , 2 , 0 , 0 , 0 , 1 },
1861 /* 3 : L+ON */ { s(2,1), s(3,0), 6 , 4 , 3 , 3 , s(3,0), 0 },
1862 /* 4 : L+ON+AN */ { s(2,1), s(3,0), 6 , 4 , 5 , 5 , s(3,0), 3 },
1863 /* 5 : L+AN+ON */ { s(2,1), s(3,0), 6 , 4 , 5 , 5 , s(3,0), 2 },
1864 /* 6 : L+ON+EN */ { s(2,1), s(3,0), 6 , 4 , 3 , 3 , s(3,0), 1 }
1866 static const ImpAct impAct1
= {0,1,13,14};
1867 /* FOOD FOR THOUGHT: in LTR table below, check case "JKL 123abc"
1869 static const ImpTabPair impTab_INVERSE_LIKE_DIRECT
= {
1871 &impTabR_INVERSE_LIKE_DIRECT
},
1872 {&impAct0
, &impAct1
}};
1874 static const ImpTab impTabL_INVERSE_LIKE_DIRECT_WITH_MARKS
=
1875 /* The case handled in this table is (visually): R EN L
1878 /* L , R , EN , AN , ON , S , B , Res */
1879 /* 0 : init */ { 0 , s(6,3), 0 , 1 , 0 , 0 , 0 , 0 },
1880 /* 1 : L+AN */ { 0 , s(6,3), 0 , 1 , s(1,2), s(3,0), 0 , 4 },
1881 /* 2 : L+AN+ON */ { s(2,0), s(6,3), s(2,0), 1 , 2 , s(3,0), s(2,0), 3 },
1882 /* 3 : R */ { 0 , s(6,3), s(5,5), s(5,6), s(1,4), s(3,0), 0 , 3 },
1883 /* 4 : R+ON */ { s(3,0), s(4,3), s(5,5), s(5,6), 4 , s(3,0), s(3,0), 3 },
1884 /* 5 : R+EN */ { s(3,0), s(4,3), 5 , s(5,6), s(1,4), s(3,0), s(3,0), 4 },
1885 /* 6 : R+AN */ { s(3,0), s(4,3), s(5,5), 6 , s(1,4), s(3,0), s(3,0), 4 }
1887 static const ImpTab impTabR_INVERSE_LIKE_DIRECT_WITH_MARKS
=
1888 /* The cases handled in this table are (visually): R EN L
1892 /* L , R , EN , AN , ON , S , B , Res */
1893 /* 0 : init */ { s(1,3), 0 , 1 , 1 , 0 , 0 , 0 , 0 },
1894 /* 1 : R+EN/AN */ { s(2,3), 0 , 1 , 1 , 2 , s(4,0), 0 , 1 },
1895 /* 2 : R+EN/AN+ON */ { s(2,3), 0 , 1 , 1 , 2 , s(4,0), 0 , 0 },
1896 /* 3 : L */ { 3 , 0 , 3 , s(3,6), s(1,4), s(4,0), 0 , 1 },
1897 /* 4 : L+ON */ { s(5,3), s(4,0), 5 , s(3,6), 4 , s(4,0), s(4,0), 0 },
1898 /* 5 : L+ON+EN */ { s(5,3), s(4,0), 5 , s(3,6), 4 , s(4,0), s(4,0), 1 },
1899 /* 6 : L+AN */ { s(5,3), s(4,0), 6 , 6 , 4 , s(4,0), s(4,0), 3 }
1901 static const ImpAct impAct2
= {0,1,2,5,6,7,8};
1902 static const ImpAct impAct3
= {0,1,9,10,11,12};
1903 static const ImpTabPair impTab_INVERSE_LIKE_DIRECT_WITH_MARKS
= {
1904 {&impTabL_INVERSE_LIKE_DIRECT_WITH_MARKS
,
1905 &impTabR_INVERSE_LIKE_DIRECT_WITH_MARKS
},
1906 {&impAct2
, &impAct3
}};
1908 static const ImpTabPair impTab_INVERSE_FOR_NUMBERS_SPECIAL
= {
1909 {&impTabL_NUMBERS_SPECIAL
,
1910 &impTabR_INVERSE_LIKE_DIRECT
},
1911 {&impAct0
, &impAct1
}};
1913 static const ImpTab impTabL_INVERSE_FOR_NUMBERS_SPECIAL_WITH_MARKS
=
1914 /* The case handled in this table is (visually): R EN L
1917 /* L , R , EN , AN , ON , S , B , Res */
1918 /* 0 : init */ { 0 , s(6,2), 1 , 1 , 0 , 0 , 0 , 0 },
1919 /* 1 : L+EN/AN */ { 0 , s(6,2), 1 , 1 , 0 , s(3,0), 0 , 4 },
1920 /* 2 : R */ { 0 , s(6,2), s(5,4), s(5,4), s(1,3), s(3,0), 0 , 3 },
1921 /* 3 : R+ON */ { s(3,0), s(4,2), s(5,4), s(5,4), 3 , s(3,0), s(3,0), 3 },
1922 /* 4 : R+EN/AN */ { s(3,0), s(4,2), 4 , 4 , s(1,3), s(3,0), s(3,0), 4 }
1924 static const ImpTabPair impTab_INVERSE_FOR_NUMBERS_SPECIAL_WITH_MARKS
= {
1925 {&impTabL_INVERSE_FOR_NUMBERS_SPECIAL_WITH_MARKS
,
1926 &impTabR_INVERSE_LIKE_DIRECT_WITH_MARKS
},
1927 {&impAct2
, &impAct3
}};
1932 const ImpTab
* pImpTab
; /* level table pointer */
1933 const ImpAct
* pImpAct
; /* action map array */
1934 int32_t startON
; /* start of ON sequence */
1935 int32_t startL2EN
; /* start of level 2 sequence */
1936 int32_t lastStrongRTL
; /* index of last found R or AL */
1937 int32_t state
; /* current state */
1938 int32_t runStart
; /* start position of the run */
1939 UBiDiLevel runLevel
; /* run level before implicit solving */
1942 /*------------------------------------------------------------------------*/
1945 addPoint(UBiDi
*pBiDi
, int32_t pos
, int32_t flag
)
1946 /* param pos: position where to insert
1947 param flag: one of LRM_BEFORE, LRM_AFTER, RLM_BEFORE, RLM_AFTER
1950 #define FIRSTALLOC 10
1952 InsertPoints
* pInsertPoints
=&(pBiDi
->insertPoints
);
1954 if (pInsertPoints
->capacity
== 0)
1956 pInsertPoints
->points
=uprv_malloc(sizeof(Point
)*FIRSTALLOC
);
1957 if (pInsertPoints
->points
== NULL
)
1959 pInsertPoints
->errorCode
=U_MEMORY_ALLOCATION_ERROR
;
1962 pInsertPoints
->capacity
=FIRSTALLOC
;
1964 if (pInsertPoints
->size
>= pInsertPoints
->capacity
) /* no room for new point */
1966 void * savePoints
=pInsertPoints
->points
;
1967 pInsertPoints
->points
=uprv_realloc(pInsertPoints
->points
,
1968 pInsertPoints
->capacity
*2*sizeof(Point
));
1969 if (pInsertPoints
->points
== NULL
)
1971 pInsertPoints
->points
=savePoints
;
1972 pInsertPoints
->errorCode
=U_MEMORY_ALLOCATION_ERROR
;
1975 else pInsertPoints
->capacity
*=2;
1979 pInsertPoints
->points
[pInsertPoints
->size
]=point
;
1980 pInsertPoints
->size
++;
1985 setLevelsOutsideIsolates(UBiDi
*pBiDi
, int32_t start
, int32_t limit
, UBiDiLevel level
)
1987 DirProp
*dirProps
=pBiDi
->dirProps
, dirProp
;
1988 uint16_t *dirInsert
= pBiDi
->dirInsert
; /* may be NULL */
1989 UBiDiLevel
*levels
=pBiDi
->levels
;
1990 int32_t dirInsertValue
;
1991 int8_t dirInsertIndex
; /* position within dirInsertValue, if any */
1992 int32_t isolateCount
=0, k
;
1994 dirInsertIndex
= -1; /* indicate that we have not checked dirInsert yet */
1995 for(k
=start
; k
<limit
; k
++) {
1996 if (dirInsert
!= NULL
&& dirInsertIndex
< 0) {
1997 dirInsertValue
= dirInsert
[k
];
1999 if (dirInsertValue
> 0) {
2001 dirProp
= (DirProp
)stdDirFromInsertDir
[dirInsertValue
& 0x000F];
2002 dirInsertValue
>>= 4;
2004 dirInsertIndex
= -1;
2005 dirProp
=dirProps
[k
];
2011 if(dirProp
==LRI
|| dirProp
==RLI
)
2016 /* perform rules (Wn), (Nn), and (In) on a run of the text ------------------ */
2019 * This implementation of the (Wn) rules applies all rules in one pass.
2020 * In order to do so, it needs a look-ahead of typically 1 character
2021 * (except for W5: sequences of ET) and keeps track of changes
2022 * in a rule Wp that affect a later Wq (p<q).
2024 * The (Nn) and (In) rules are also performed in that same single loop,
2025 * but effectively one iteration behind for white space.
2027 * Since all implicit rules are performed in one step, it is not necessary
2028 * to actually store the intermediate directional properties in dirProps[].
2032 processPropertySeq(UBiDi
*pBiDi
, LevState
*pLevState
, uint8_t _prop
,
2033 int32_t start
, int32_t limit
) {
2034 uint8_t cell
, oldStateSeq
, actionSeq
;
2035 const ImpTab
* pImpTab
=pLevState
->pImpTab
;
2036 const ImpAct
* pImpAct
=pLevState
->pImpAct
;
2037 UBiDiLevel
* levels
=pBiDi
->levels
;
2038 UBiDiLevel level
, addLevel
;
2039 InsertPoints
* pInsertPoints
;
2042 start0
=start
; /* save original start position */
2043 oldStateSeq
=(uint8_t)pLevState
->state
;
2044 cell
=(*pImpTab
)[oldStateSeq
][_prop
];
2045 pLevState
->state
=GET_STATE(cell
); /* isolate the new state */
2046 actionSeq
=(*pImpAct
)[GET_ACTION(cell
)]; /* isolate the action */
2047 addLevel
=(*pImpTab
)[pLevState
->state
][IMPTABLEVELS_RES
];
2051 case 1: /* init ON seq */
2052 pLevState
->startON
=start0
;
2055 case 2: /* prepend ON seq to current seq */
2056 start
=pLevState
->startON
;
2059 case 3: /* EN/AN after R+ON */
2060 level
=pLevState
->runLevel
+1;
2061 setLevelsOutsideIsolates(pBiDi
, pLevState
->startON
, start0
, level
);
2064 case 4: /* EN/AN before R for NUMBERS_SPECIAL */
2065 level
=pLevState
->runLevel
+2;
2066 setLevelsOutsideIsolates(pBiDi
, pLevState
->startON
, start0
, level
);
2069 case 5: /* L or S after possible relevant EN/AN */
2070 /* check if we had EN after R/AL */
2071 if (pLevState
->startL2EN
>= 0) {
2072 addPoint(pBiDi
, pLevState
->startL2EN
, LRM_BEFORE
);
2074 pLevState
->startL2EN
=-1; /* not within previous if since could also be -2 */
2075 /* check if we had any relevant EN/AN after R/AL */
2076 pInsertPoints
=&(pBiDi
->insertPoints
);
2077 if ((pInsertPoints
->capacity
== 0) ||
2078 (pInsertPoints
->size
<= pInsertPoints
->confirmed
))
2080 /* nothing, just clean up */
2081 pLevState
->lastStrongRTL
=-1;
2082 /* check if we have a pending conditional segment */
2083 level
=(*pImpTab
)[oldStateSeq
][IMPTABLEVELS_RES
];
2084 if ((level
& 1) && (pLevState
->startON
> 0)) { /* after ON */
2085 start
=pLevState
->startON
; /* reset to basic run level */
2087 if (_prop
== DirProp_S
) /* add LRM before S */
2089 addPoint(pBiDi
, start0
, LRM_BEFORE
);
2090 pInsertPoints
->confirmed
=pInsertPoints
->size
;
2094 /* reset previous RTL cont to level for LTR text */
2095 for (k
=pLevState
->lastStrongRTL
+1; k
<start0
; k
++)
2097 /* reset odd level, leave runLevel+2 as is */
2098 levels
[k
]=(levels
[k
] - 2) & ~1;
2100 /* mark insert points as confirmed */
2101 pInsertPoints
->confirmed
=pInsertPoints
->size
;
2102 pLevState
->lastStrongRTL
=-1;
2103 if (_prop
== DirProp_S
) /* add LRM before S */
2105 addPoint(pBiDi
, start0
, LRM_BEFORE
);
2106 pInsertPoints
->confirmed
=pInsertPoints
->size
;
2110 case 6: /* R/AL after possible relevant EN/AN */
2112 pInsertPoints
=&(pBiDi
->insertPoints
);
2113 if (pInsertPoints
->capacity
> 0)
2114 /* remove all non confirmed insert points */
2115 pInsertPoints
->size
=pInsertPoints
->confirmed
;
2116 pLevState
->startON
=-1;
2117 pLevState
->startL2EN
=-1;
2118 pLevState
->lastStrongRTL
=limit
- 1;
2121 case 7: /* EN/AN after R/AL + possible cont */
2122 /* check for real AN */
2123 if ((_prop
== DirProp_AN
) && (pBiDi
->dirProps
[start0
] == AN
) &&
2124 (pBiDi
->reorderingMode
!=UBIDI_REORDER_INVERSE_FOR_NUMBERS_SPECIAL
))
2127 if (pLevState
->startL2EN
== -1) /* if no relevant EN already found */
2129 /* just note the righmost digit as a strong RTL */
2130 pLevState
->lastStrongRTL
=limit
- 1;
2133 if (pLevState
->startL2EN
>= 0) /* after EN, no AN */
2135 addPoint(pBiDi
, pLevState
->startL2EN
, LRM_BEFORE
);
2136 pLevState
->startL2EN
=-2;
2139 addPoint(pBiDi
, start0
, LRM_BEFORE
);
2142 /* if first EN/AN after R/AL */
2143 if (pLevState
->startL2EN
== -1) {
2144 pLevState
->startL2EN
=start0
;
2148 case 8: /* note location of latest R/AL */
2149 pLevState
->lastStrongRTL
=limit
- 1;
2150 pLevState
->startON
=-1;
2153 case 9: /* L after R+ON/EN/AN */
2154 /* include possible adjacent number on the left */
2155 for (k
=start0
-1; k
>=0 && !(levels
[k
]&1); k
--);
2157 addPoint(pBiDi
, k
, RLM_BEFORE
); /* add RLM before */
2158 pInsertPoints
=&(pBiDi
->insertPoints
);
2159 pInsertPoints
->confirmed
=pInsertPoints
->size
; /* confirm it */
2161 pLevState
->startON
=start0
;
2164 case 10: /* AN after L */
2165 /* AN numbers between L text on both sides may be trouble. */
2166 /* tentatively bracket with LRMs; will be confirmed if followed by L */
2167 addPoint(pBiDi
, start0
, LRM_BEFORE
); /* add LRM before */
2168 addPoint(pBiDi
, start0
, LRM_AFTER
); /* add LRM after */
2171 case 11: /* R after L+ON/EN/AN */
2172 /* false alert, infirm LRMs around previous AN */
2173 pInsertPoints
=&(pBiDi
->insertPoints
);
2174 pInsertPoints
->size
=pInsertPoints
->confirmed
;
2175 if (_prop
== DirProp_S
) /* add RLM before S */
2177 addPoint(pBiDi
, start0
, RLM_BEFORE
);
2178 pInsertPoints
->confirmed
=pInsertPoints
->size
;
2182 case 12: /* L after L+ON/AN */
2183 level
=pLevState
->runLevel
+ addLevel
;
2184 for(k
=pLevState
->startON
; k
<start0
; k
++) {
2185 if (levels
[k
]<level
)
2188 pInsertPoints
=&(pBiDi
->insertPoints
);
2189 pInsertPoints
->confirmed
=pInsertPoints
->size
; /* confirm inserts */
2190 pLevState
->startON
=start0
;
2193 case 13: /* L after L+ON+EN/AN/ON */
2194 level
=pLevState
->runLevel
;
2195 for(k
=start0
-1; k
>=pLevState
->startON
; k
--) {
2196 if(levels
[k
]==level
+3) {
2197 while(levels
[k
]==level
+3) {
2200 while(levels
[k
]==level
) {
2204 if(levels
[k
]==level
+2) {
2212 case 14: /* R after L+ON+EN/AN/ON */
2213 level
=pLevState
->runLevel
+1;
2214 for(k
=start0
-1; k
>=pLevState
->startON
; k
--) {
2215 if(levels
[k
]>level
) {
2221 default: /* we should never get here */
2226 if((addLevel
) || (start
< start0
)) {
2227 level
=pLevState
->runLevel
+ addLevel
;
2228 if(start
>=pLevState
->runStart
) {
2229 for(k
=start
; k
<limit
; k
++) {
2233 setLevelsOutsideIsolates(pBiDi
, start
, limit
, level
);
2239 * Returns the directionality of the last strong character at the end of the prologue, if any.
2240 * Requires prologue!=null.
2243 lastL_R_AL(UBiDi
*pBiDi
) {
2244 const UChar
*text
=pBiDi
->prologue
;
2245 int32_t length
=pBiDi
->proLength
;
2249 for(i
=length
; i
>0; ) {
2250 /* i is decremented by U16_PREV */
2251 U16_PREV(text
, 0, i
, uchar
);
2252 dirProp
=(DirProp
)ubidi_getCustomizedClass(pBiDi
, uchar
);
2256 if(dirProp
==R
|| dirProp
==AL
) {
2267 * Returns the directionality of the first strong character, or digit, in the epilogue, if any.
2268 * Requires epilogue!=null.
2271 firstL_R_AL_EN_AN(UBiDi
*pBiDi
) {
2272 const UChar
*text
=pBiDi
->epilogue
;
2273 int32_t length
=pBiDi
->epiLength
;
2277 for(i
=0; i
<length
; ) {
2278 /* i is incremented by U16_NEXT */
2279 U16_NEXT(text
, i
, length
, uchar
);
2280 dirProp
=(DirProp
)ubidi_getCustomizedClass(pBiDi
, uchar
);
2284 if(dirProp
==R
|| dirProp
==AL
) {
2298 resolveImplicitLevels(UBiDi
*pBiDi
,
2299 int32_t start
, int32_t limit
,
2300 DirProp sor
, DirProp eor
) {
2301 const DirProp
*dirProps
=pBiDi
->dirProps
;
2302 uint16_t *dirInsert
= pBiDi
->dirInsert
; /* may be NULL */
2304 int32_t dirInsertValue
;
2305 int8_t dirInsertIndex
; /* position within dirInsertValue, if any */
2307 int32_t i
, start1
, start2
;
2308 uint16_t oldStateImp
, stateImp
, actionImp
;
2309 uint8_t gprop
, resProp
, cell
;
2311 DirProp nextStrongProp
=R
;
2312 int32_t nextStrongPos
=-1;
2314 /* check for RTL inverse BiDi mode */
2315 /* FOOD FOR THOUGHT: in case of RTL inverse BiDi, it would make sense to
2316 * loop on the text characters from end to start.
2317 * This would need a different properties state table (at least different
2318 * actions) and different levels state tables (maybe very similar to the
2319 * LTR corresponding ones.
2322 ((start
<pBiDi
->lastArabicPos
) && (GET_PARALEVEL(pBiDi
, start
) & 1) &&
2323 (pBiDi
->reorderingMode
==UBIDI_REORDER_INVERSE_LIKE_DIRECT
||
2324 pBiDi
->reorderingMode
==UBIDI_REORDER_INVERSE_FOR_NUMBERS_SPECIAL
));
2326 /* initialize for property and levels state tables */
2327 levState
.startL2EN
=-1; /* used for INVERSE_LIKE_DIRECT_WITH_MARKS */
2328 levState
.lastStrongRTL
=-1; /* used for INVERSE_LIKE_DIRECT_WITH_MARKS */
2329 levState
.runStart
=start
;
2330 levState
.runLevel
=pBiDi
->levels
[start
];
2331 levState
.pImpTab
=(const ImpTab
*)((pBiDi
->pImpTabPair
)->pImpTab
)[levState
.runLevel
&1];
2332 levState
.pImpAct
=(const ImpAct
*)((pBiDi
->pImpTabPair
)->pImpAct
)[levState
.runLevel
&1];
2333 if(start
==0 && pBiDi
->proLength
>0) {
2334 DirProp lastStrong
=lastL_R_AL(pBiDi
);
2335 if(lastStrong
!=DirProp_ON
) {
2339 /* The isolates[] entries contain enough information to
2340 resume the bidi algorithm in the same state as it was
2341 when it was interrupted by an isolate sequence. */
2343 if (dirInsert
!= NULL
) {
2344 dirInsertValue
= dirInsert
[start
];
2345 while (dirInsertValue
> 0) {
2346 if ((dirInsertValue
& 0x000F) == Insert_PDI
) {
2349 dirInsertValue
>>= 4;
2352 if((dirProps
[start
]==PDI
|| dirInsertValue
>0) && pBiDi
->isolateCount
>= 0) {
2353 levState
.startON
=pBiDi
->isolates
[pBiDi
->isolateCount
].startON
;
2354 start1
=pBiDi
->isolates
[pBiDi
->isolateCount
].start1
;
2355 stateImp
=pBiDi
->isolates
[pBiDi
->isolateCount
].stateImp
;
2356 levState
.state
=pBiDi
->isolates
[pBiDi
->isolateCount
].state
;
2357 pBiDi
->isolateCount
--;
2359 levState
.startON
=-1;
2361 if(dirProps
[start
]==NSM
)
2366 processPropertySeq(pBiDi
, &levState
, sor
, start
, start
);
2368 start2
=start
; /* to make Java compiler happy */
2370 for(i
=start
; i
<=limit
; i
++) {
2374 for(k
=limit
-1; k
>start
&& dirInsertValue
<= 0; k
--) {
2375 dirProp
= dirProps
[k
];
2376 if ((DIRPROP_FLAG(dirProp
)&MASK_BN_EXPLICIT
) == 0) {
2380 if (dirInsert
!= NULL
) {
2381 dirInsertValue
= dirInsert
[k
];
2382 while (dirInsertValue
> 0) {
2383 dirProp
= (DirProp
)stdDirFromInsertDir
[dirInsertValue
& 0x000F];
2384 if ((DIRPROP_FLAG(dirProp
)&MASK_BN_EXPLICIT
) == 0) {
2387 dirInsertValue
>>= 4;
2392 dirProp
= dirProps
[k
];
2394 if(dirProp
==LRI
|| dirProp
==RLI
)
2395 break; /* no forced closing for sequence ending with LRI/RLI */
2398 DirProp prop
, prop1
;
2401 pBiDi
->isolateCount
=-1; /* current isolates stack entry == none */
2405 /* AL before EN does not make it AN */
2407 } else if(prop
==EN
) {
2408 if(nextStrongPos
<=i
) {
2409 /* look for next strong char (L/R/AL) */
2411 nextStrongProp
=R
; /* set default */
2412 nextStrongPos
=limit
;
2413 for(j
=i
+1; j
<limit
; j
++) {
2415 if(prop1
==L
|| prop1
==R
|| prop1
==AL
) {
2416 nextStrongProp
=prop1
;
2422 if(nextStrongProp
==AL
) {
2427 gprop
=groupProp
[prop
];
2429 oldStateImp
=stateImp
;
2430 cell
=impTabProps
[oldStateImp
][gprop
];
2431 stateImp
=GET_STATEPROPS(cell
); /* isolate the new state */
2432 actionImp
=GET_ACTIONPROPS(cell
); /* isolate the action */
2433 if((i
==limit
) && (actionImp
==0)) {
2434 /* there is an unprocessed sequence if its property == eor */
2435 actionImp
=1; /* process the last sequence */
2438 resProp
=impTabProps
[oldStateImp
][IMPTABPROPS_RES
];
2440 case 1: /* process current seq1, init new seq1 */
2441 processPropertySeq(pBiDi
, &levState
, resProp
, start1
, i
);
2444 case 2: /* init new seq2 */
2447 case 3: /* process seq1, process seq2, init new seq1 */
2448 processPropertySeq(pBiDi
, &levState
, resProp
, start1
, start2
);
2449 processPropertySeq(pBiDi
, &levState
, DirProp_ON
, start2
, i
);
2452 case 4: /* process seq1, set seq1=seq2, init new seq2 */
2453 processPropertySeq(pBiDi
, &levState
, resProp
, start1
, start2
);
2457 default: /* we should never get here */
2464 /* flush possible pending sequence, e.g. ON */
2465 if(limit
==pBiDi
->length
&& pBiDi
->epiLength
>0) {
2466 DirProp firstStrong
=firstL_R_AL_EN_AN(pBiDi
);
2467 if(firstStrong
!=DirProp_ON
) {
2472 /* look for the last char not a BN or LRE/RLE/LRO/RLO/PDF */
2474 for(i
=limit
-1; i
>start
&& dirInsertValue
<= 0; i
--) {
2475 dirProp
=dirProps
[i
];
2476 if ((DIRPROP_FLAG(dirProp
)&MASK_BN_EXPLICIT
) == 0) {
2480 if (dirInsert
!= NULL
) {
2481 dirInsertValue
= dirInsert
[i
];
2482 while (dirInsertValue
> 0) {
2483 dirProp
= (DirProp
)stdDirFromInsertDir
[dirInsertValue
& 0x000F];
2484 if ((DIRPROP_FLAG(dirProp
)&MASK_BN_EXPLICIT
) == 0) {
2487 dirInsertValue
>>= 4;
2492 dirProp
=dirProps
[i
];
2494 if((dirProp
==LRI
|| dirProp
==RLI
) && limit
<pBiDi
->length
) {
2495 pBiDi
->isolateCount
++;
2496 pBiDi
->isolates
[pBiDi
->isolateCount
].stateImp
=stateImp
;
2497 pBiDi
->isolates
[pBiDi
->isolateCount
].state
=levState
.state
;
2498 pBiDi
->isolates
[pBiDi
->isolateCount
].start1
=start1
;
2499 pBiDi
->isolates
[pBiDi
->isolateCount
].startON
=levState
.startON
;
2502 processPropertySeq(pBiDi
, &levState
, eor
, limit
, limit
);
2505 /* perform (L1) and (X9) ---------------------------------------------------- */
2508 * Reset the embedding levels for some non-graphic characters (L1).
2509 * This function also sets appropriate levels for BN, and
2510 * explicit embedding types that are supposed to have been removed
2511 * from the paragraph in (X9).
2514 adjustWSLevels(UBiDi
*pBiDi
) {
2515 const DirProp
*dirProps
=pBiDi
->dirProps
;
2516 UBiDiLevel
*levels
=pBiDi
->levels
;
2519 if(pBiDi
->flags
&MASK_WS
) {
2520 UBool orderParagraphsLTR
=pBiDi
->orderParagraphsLTR
;
2523 i
=pBiDi
->trailingWSStart
;
2525 /* reset a sequence of WS/BN before eop and B/S to the paragraph paraLevel */
2526 while(i
>0 && (flag
=DIRPROP_FLAG(dirProps
[--i
]))&MASK_WS
) {
2527 if(orderParagraphsLTR
&&(flag
&DIRPROP_FLAG(B
))) {
2530 levels
[i
]=GET_PARALEVEL(pBiDi
, i
);
2534 /* reset BN to the next character's paraLevel until B/S, which restarts above loop */
2535 /* here, i+1 is guaranteed to be <length */
2537 flag
=DIRPROP_FLAG(dirProps
[--i
]);
2538 if(flag
&MASK_BN_EXPLICIT
) {
2539 levels
[i
]=levels
[i
+1];
2540 } else if(orderParagraphsLTR
&&(flag
&DIRPROP_FLAG(B
))) {
2543 } else if(flag
&MASK_B_S
) {
2544 levels
[i
]=GET_PARALEVEL(pBiDi
, i
);
2552 U_CAPI
void U_EXPORT2
2553 ubidi_setContext(UBiDi
*pBiDi
,
2554 const UChar
*prologue
, int32_t proLength
,
2555 const UChar
*epilogue
, int32_t epiLength
,
2556 UErrorCode
*pErrorCode
) {
2557 /* check the argument values */
2558 RETURN_VOID_IF_NULL_OR_FAILING_ERRCODE(pErrorCode
);
2559 if(pBiDi
==NULL
|| proLength
<-1 || epiLength
<-1 ||
2560 (prologue
==NULL
&& proLength
!=0) || (epilogue
==NULL
&& epiLength
!=0)) {
2561 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
2566 pBiDi
->proLength
=u_strlen(prologue
);
2568 pBiDi
->proLength
=proLength
;
2571 pBiDi
->epiLength
=u_strlen(epilogue
);
2573 pBiDi
->epiLength
=epiLength
;
2575 pBiDi
->prologue
=prologue
;
2576 pBiDi
->epilogue
=epilogue
;
2580 setParaSuccess(UBiDi
*pBiDi
) {
2581 pBiDi
->proLength
=0; /* forget the last context */
2583 pBiDi
->pParaBiDi
=pBiDi
; /* mark successful setPara */
2586 #define BIDI_MIN(x, y) ((x)<(y) ? (x) : (y))
2587 #define BIDI_ABS(x) ((x)>=0 ? (x) : (-(x)))
2590 setParaRunsOnly(UBiDi
*pBiDi
, const UChar
*text
, int32_t length
,
2591 UBiDiLevel paraLevel
, UErrorCode
*pErrorCode
) {
2592 void *runsOnlyMemory
= NULL
;
2595 int32_t saveLength
, saveTrailingWSStart
;
2596 const UBiDiLevel
*levels
;
2597 UBiDiLevel
*saveLevels
;
2598 UBiDiDirection saveDirection
;
2599 UBool saveMayAllocateText
;
2601 int32_t visualLength
, i
, j
, visualStart
, logicalStart
,
2602 runCount
, runLength
, addedRuns
, insertRemove
,
2603 start
, limit
, step
, indexOddBit
, logicalPos
,
2605 uint32_t saveOptions
;
2607 pBiDi
->reorderingMode
=UBIDI_REORDER_DEFAULT
;
2609 ubidi_setPara(pBiDi
, text
, length
, paraLevel
, NULL
, pErrorCode
);
2612 /* obtain memory for mapping table and visual text */
2613 runsOnlyMemory
=uprv_malloc(length
*(sizeof(int32_t)+sizeof(UChar
)+sizeof(UBiDiLevel
)));
2614 if(runsOnlyMemory
==NULL
) {
2615 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
2618 visualMap
=runsOnlyMemory
;
2619 visualText
=(UChar
*)&visualMap
[length
];
2620 saveLevels
=(UBiDiLevel
*)&visualText
[length
];
2621 saveOptions
=pBiDi
->reorderingOptions
;
2622 if(saveOptions
& UBIDI_OPTION_INSERT_MARKS
) {
2623 pBiDi
->reorderingOptions
&=~UBIDI_OPTION_INSERT_MARKS
;
2624 pBiDi
->reorderingOptions
|=UBIDI_OPTION_REMOVE_CONTROLS
;
2626 paraLevel
&=1; /* accept only 0 or 1 */
2627 ubidi_setPara(pBiDi
, text
, length
, paraLevel
, NULL
, pErrorCode
);
2628 if(U_FAILURE(*pErrorCode
)) {
2631 /* we cannot access directly pBiDi->levels since it is not yet set if
2632 * direction is not MIXED
2634 levels
=ubidi_getLevels(pBiDi
, pErrorCode
);
2635 uprv_memcpy(saveLevels
, levels
, pBiDi
->length
*sizeof(UBiDiLevel
));
2636 saveTrailingWSStart
=pBiDi
->trailingWSStart
;
2637 saveLength
=pBiDi
->length
;
2638 saveDirection
=pBiDi
->direction
;
2640 /* FOOD FOR THOUGHT: instead of writing the visual text, we could use
2641 * the visual map and the dirProps array to drive the second call
2642 * to ubidi_setPara (but must make provision for possible removal of
2643 * BiDi controls. Alternatively, only use the dirProps array via
2644 * customized classifier callback.
2646 visualLength
=ubidi_writeReordered(pBiDi
, visualText
, length
,
2647 UBIDI_DO_MIRRORING
, pErrorCode
);
2648 ubidi_getVisualMap(pBiDi
, visualMap
, pErrorCode
);
2649 if(U_FAILURE(*pErrorCode
)) {
2652 pBiDi
->reorderingOptions
=saveOptions
;
2654 pBiDi
->reorderingMode
=UBIDI_REORDER_INVERSE_LIKE_DIRECT
;
2656 /* Because what we did with reorderingOptions, visualText may be shorter
2657 * than the original text. But we don't want the levels memory to be
2658 * reallocated shorter than the original length, since we need to restore
2659 * the levels as after the first call to ubidi_setpara() before returning.
2660 * We will force mayAllocateText to FALSE before the second call to
2661 * ubidi_setpara(), and will restore it afterwards.
2663 saveMayAllocateText
=pBiDi
->mayAllocateText
;
2664 pBiDi
->mayAllocateText
=FALSE
;
2665 ubidi_setPara(pBiDi
, visualText
, visualLength
, paraLevel
, NULL
, pErrorCode
);
2666 pBiDi
->mayAllocateText
=saveMayAllocateText
;
2667 ubidi_getRuns(pBiDi
, pErrorCode
);
2668 if(U_FAILURE(*pErrorCode
)) {
2671 /* check if some runs must be split, count how many splits */
2673 runCount
=pBiDi
->runCount
;
2676 for(i
=0; i
<runCount
; i
++, visualStart
+=runLength
) {
2677 runLength
=runs
[i
].visualLimit
-visualStart
;
2681 logicalStart
=GET_INDEX(runs
[i
].logicalStart
);
2682 for(j
=logicalStart
+1; j
<logicalStart
+runLength
; j
++) {
2683 index0
=visualMap
[j
];
2684 index1
=visualMap
[j
-1];
2685 if((BIDI_ABS(index0
-index1
)!=1) || (saveLevels
[index0
]!=saveLevels
[index1
])) {
2691 if(getRunsMemory(pBiDi
, runCount
+addedRuns
)) {
2693 /* because we switch from UBiDi.simpleRuns to UBiDi.runs */
2694 pBiDi
->runsMemory
[0]=runs
[0];
2696 runs
=pBiDi
->runs
=pBiDi
->runsMemory
;
2697 pBiDi
->runCount
+=addedRuns
;
2702 /* split runs which are not consecutive in source text */
2703 for(i
=runCount
-1; i
>=0; i
--) {
2704 runLength
= i
==0 ? runs
[0].visualLimit
:
2705 runs
[i
].visualLimit
-runs
[i
-1].visualLimit
;
2706 logicalStart
=runs
[i
].logicalStart
;
2707 indexOddBit
=GET_ODD_BIT(logicalStart
);
2708 logicalStart
=GET_INDEX(logicalStart
);
2711 runs
[i
+addedRuns
]=runs
[i
];
2713 logicalPos
=visualMap
[logicalStart
];
2714 runs
[i
+addedRuns
].logicalStart
=MAKE_INDEX_ODD_PAIR(logicalPos
,
2715 saveLevels
[logicalPos
]^indexOddBit
);
2720 limit
=logicalStart
+runLength
-1;
2723 start
=logicalStart
+runLength
-1;
2727 for(j
=start
; j
!=limit
; j
+=step
) {
2728 index0
=visualMap
[j
];
2729 index1
=visualMap
[j
+step
];
2730 if((BIDI_ABS(index0
-index1
)!=1) || (saveLevels
[index0
]!=saveLevels
[index1
])) {
2731 logicalPos
=BIDI_MIN(visualMap
[start
], index0
);
2732 runs
[i
+addedRuns
].logicalStart
=MAKE_INDEX_ODD_PAIR(logicalPos
,
2733 saveLevels
[logicalPos
]^indexOddBit
);
2734 runs
[i
+addedRuns
].visualLimit
=runs
[i
].visualLimit
;
2735 runs
[i
].visualLimit
-=BIDI_ABS(j
-start
)+1;
2736 insertRemove
=runs
[i
].insertRemove
&(LRM_AFTER
|RLM_AFTER
);
2737 runs
[i
+addedRuns
].insertRemove
=insertRemove
;
2738 runs
[i
].insertRemove
&=~insertRemove
;
2744 runs
[i
+addedRuns
]=runs
[i
];
2746 logicalPos
=BIDI_MIN(visualMap
[start
], visualMap
[limit
]);
2747 runs
[i
+addedRuns
].logicalStart
=MAKE_INDEX_ODD_PAIR(logicalPos
,
2748 saveLevels
[logicalPos
]^indexOddBit
);
2752 /* restore initial paraLevel */
2753 pBiDi
->paraLevel
^=1;
2755 /* restore real text */
2757 pBiDi
->length
=saveLength
;
2758 pBiDi
->originalLength
=length
;
2759 pBiDi
->direction
=saveDirection
;
2760 /* the saved levels should never excess levelsSize, but we check anyway */
2761 if(saveLength
>pBiDi
->levelsSize
) {
2762 saveLength
=pBiDi
->levelsSize
;
2764 uprv_memcpy(pBiDi
->levels
, saveLevels
, saveLength
*sizeof(UBiDiLevel
));
2765 pBiDi
->trailingWSStart
=saveTrailingWSStart
;
2766 if(pBiDi
->runCount
>1) {
2767 pBiDi
->direction
=UBIDI_MIXED
;
2770 /* free memory for mapping table and visual text */
2771 uprv_free(runsOnlyMemory
);
2773 pBiDi
->reorderingMode
=UBIDI_REORDER_RUNS_ONLY
;
2776 /* -------------------------------------------------------------------------- */
2777 /* internal proptotype */
2780 ubidi_setParaInternal(UBiDi
*pBiDi
,
2781 const UChar
*text
, int32_t length
,
2782 UBiDiLevel paraLevel
,
2783 UBiDiLevel
*embeddingLevels
,
2784 const int32_t *offsets
, int32_t offsetCount
,
2785 const int32_t *controlStringIndices
,
2786 const UChar
* const * controlStrings
,
2787 UErrorCode
*pErrorCode
);
2789 /* ubidi_setPara ------------------------------------------------------------ */
2791 U_CAPI
void U_EXPORT2
2792 ubidi_setPara(UBiDi
*pBiDi
, const UChar
*text
, int32_t length
,
2793 UBiDiLevel paraLevel
, UBiDiLevel
*embeddingLevels
,
2794 UErrorCode
*pErrorCode
) {
2795 RETURN_VOID_IF_NULL_OR_FAILING_ERRCODE(pErrorCode
);
2796 ubidi_setParaInternal(pBiDi
, text
, length
, paraLevel
,
2798 NULL
, 0, NULL
, NULL
,
2802 /* ubidi_setParaWithControls ------------------------------------------------ */
2804 U_CAPI
void U_EXPORT2
2805 ubidi_setParaWithControls(UBiDi
*pBiDi
,
2806 const UChar
*text
, int32_t length
,
2807 UBiDiLevel paraLevel
,
2808 const int32_t *offsets
, int32_t offsetCount
,
2809 const int32_t *controlStringIndices
,
2810 const UChar
* const * controlStrings
,
2811 UErrorCode
*pErrorCode
) {
2812 RETURN_VOID_IF_NULL_OR_FAILING_ERRCODE(pErrorCode
);
2813 /* check the argument values that are not already checked in ubidi_setParaInternal */
2814 if ( offsetCount
< 0 || (offsetCount
> 0 && (offsets
== NULL
|| controlStrings
== NULL
)) ) {
2815 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
2818 ubidi_setParaInternal(pBiDi
, text
, length
, paraLevel
,
2820 offsets
, offsetCount
, controlStringIndices
, controlStrings
,
2824 /* ubidi_setParaInternal ---------------------------------------------------- */
2827 ubidi_setParaInternal(UBiDi
*pBiDi
,
2828 const UChar
*text
, int32_t length
,
2829 UBiDiLevel paraLevel
,
2830 UBiDiLevel
*embeddingLevels
,
2831 const int32_t *offsets
, int32_t offsetCount
,
2832 const int32_t *controlStringIndices
,
2833 const UChar
* const * controlStrings
,
2834 UErrorCode
*pErrorCode
) {
2835 UBiDiDirection direction
;
2838 /* check the argument values (pErrorCode status alrecy checked before getting here) */
2839 if(pBiDi
==NULL
|| text
==NULL
|| length
<-1 ||
2840 (paraLevel
>UBIDI_MAX_EXPLICIT_LEVEL
&& paraLevel
<UBIDI_DEFAULT_LTR
)) {
2841 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
2846 length
=u_strlen(text
);
2848 if (offsetCount
> 0 && pBiDi
->reorderingMode
> UBIDI_REORDER_GROUP_NUMBERS_WITH_R
) {
2852 /* special treatment for RUNS_ONLY mode */
2853 if(pBiDi
->reorderingMode
==UBIDI_REORDER_RUNS_ONLY
) {
2854 setParaRunsOnly(pBiDi
, text
, length
, paraLevel
, pErrorCode
);
2858 /* initialize the UBiDi structure */
2859 pBiDi
->pParaBiDi
=NULL
; /* mark unfinished setPara */
2861 pBiDi
->length
=pBiDi
->originalLength
=pBiDi
->resultLength
=length
;
2862 pBiDi
->paraLevel
=paraLevel
;
2863 pBiDi
->direction
=paraLevel
&1;
2866 pBiDi
->dirInsert
=NULL
;
2867 pBiDi
->dirProps
=NULL
;
2870 pBiDi
->insertPoints
.size
=0; /* clean up from last call */
2871 pBiDi
->insertPoints
.confirmed
=0; /* clean up from last call */
2874 * Save the original paraLevel if contextual; otherwise, set to 0.
2876 pBiDi
->defaultParaLevel
=IS_DEFAULT_LEVEL(paraLevel
);
2880 * For an empty paragraph, create a UBiDi object with the paraLevel and
2881 * the flags and the direction set but without allocating zero-length arrays.
2882 * There is nothing more to do.
2884 if(IS_DEFAULT_LEVEL(paraLevel
)) {
2885 pBiDi
->paraLevel
&=1;
2886 pBiDi
->defaultParaLevel
=0;
2888 pBiDi
->flags
=DIRPROP_FLAG_LR(paraLevel
);
2891 setParaSuccess(pBiDi
); /* mark successful setPara */
2897 /* allocate paras memory */
2898 if(pBiDi
->parasMemory
)
2899 pBiDi
->paras
=pBiDi
->parasMemory
;
2901 pBiDi
->paras
=pBiDi
->simpleParas
;
2904 * Get the inserted directional properties
2907 if (offsetCount
> 0) {
2908 if(getDirInsertMemory(pBiDi
, length
)) {
2909 pBiDi
->dirInsert
=pBiDi
->dirInsertMemory
;
2910 if(!getDirInsert(pBiDi
, offsets
, offsetCount
, controlStringIndices
, controlStrings
)) {
2911 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
2915 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
2921 * Get the directional properties,
2922 * the flags bit-set, and
2923 * determine the paragraph level if necessary.
2925 if(getDirPropsMemory(pBiDi
, length
)) {
2926 pBiDi
->dirProps
=pBiDi
->dirPropsMemory
;
2927 if(!getDirProps(pBiDi
)) {
2928 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
2932 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
2935 dirProps
=pBiDi
->dirProps
;
2936 /* the processed length may have changed if UBIDI_OPTION_STREAMING */
2937 length
= pBiDi
->length
;
2938 pBiDi
->trailingWSStart
=length
; /* the levels[] will reflect the WS run */
2940 /* are explicit levels specified? */
2941 if(embeddingLevels
==NULL
) {
2942 /* no: determine explicit levels according to the (Xn) rules */\
2943 if(getLevelsMemory(pBiDi
, length
)) {
2944 pBiDi
->levels
=pBiDi
->levelsMemory
;
2945 direction
=resolveExplicitLevels(pBiDi
, pErrorCode
);
2946 if(U_FAILURE(*pErrorCode
)) {
2950 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
2954 /* set BN for all explicit codes, check that all levels are 0 or paraLevel..UBIDI_MAX_EXPLICIT_LEVEL */
2955 pBiDi
->levels
=embeddingLevels
;
2956 direction
=checkExplicitLevels(pBiDi
, pErrorCode
);
2957 if(U_FAILURE(*pErrorCode
)) {
2962 /* allocate isolate memory */
2963 if(pBiDi
->isolateCount
<=SIMPLE_ISOLATES_COUNT
)
2964 pBiDi
->isolates
=pBiDi
->simpleIsolates
;
2966 if((int32_t)(pBiDi
->isolateCount
*sizeof(Isolate
))<=pBiDi
->isolatesSize
)
2967 pBiDi
->isolates
=pBiDi
->isolatesMemory
;
2969 if(getInitialIsolatesMemory(pBiDi
, pBiDi
->isolateCount
)) {
2970 pBiDi
->isolates
=pBiDi
->isolatesMemory
;
2972 *pErrorCode
=U_MEMORY_ALLOCATION_ERROR
;
2976 pBiDi
->isolateCount
=-1; /* current isolates stack entry == none */
2979 * The steps after (X9) in the UBiDi algorithm are performed only if
2980 * the paragraph text has mixed directionality!
2982 pBiDi
->direction
=direction
;
2985 /* all levels are implicitly at paraLevel (important for ubidi_getLevels()) */
2986 pBiDi
->trailingWSStart
=0;
2989 /* all levels are implicitly at paraLevel (important for ubidi_getLevels()) */
2990 pBiDi
->trailingWSStart
=0;
2994 * Choose the right implicit state table
2996 switch(pBiDi
->reorderingMode
) {
2997 case UBIDI_REORDER_DEFAULT
:
2998 pBiDi
->pImpTabPair
=&impTab_DEFAULT
;
3000 case UBIDI_REORDER_NUMBERS_SPECIAL
:
3001 pBiDi
->pImpTabPair
=&impTab_NUMBERS_SPECIAL
;
3003 case UBIDI_REORDER_GROUP_NUMBERS_WITH_R
:
3004 pBiDi
->pImpTabPair
=&impTab_GROUP_NUMBERS_WITH_R
;
3006 case UBIDI_REORDER_INVERSE_NUMBERS_AS_L
:
3007 pBiDi
->pImpTabPair
=&impTab_INVERSE_NUMBERS_AS_L
;
3009 case UBIDI_REORDER_INVERSE_LIKE_DIRECT
:
3010 if (pBiDi
->reorderingOptions
& UBIDI_OPTION_INSERT_MARKS
) {
3011 pBiDi
->pImpTabPair
=&impTab_INVERSE_LIKE_DIRECT_WITH_MARKS
;
3013 pBiDi
->pImpTabPair
=&impTab_INVERSE_LIKE_DIRECT
;
3016 case UBIDI_REORDER_INVERSE_FOR_NUMBERS_SPECIAL
:
3017 if (pBiDi
->reorderingOptions
& UBIDI_OPTION_INSERT_MARKS
) {
3018 pBiDi
->pImpTabPair
=&impTab_INVERSE_FOR_NUMBERS_SPECIAL_WITH_MARKS
;
3020 pBiDi
->pImpTabPair
=&impTab_INVERSE_FOR_NUMBERS_SPECIAL
;
3024 /* we should never get here */
3029 * If there are no external levels specified and there
3030 * are no significant explicit level codes in the text,
3031 * then we can treat the entire paragraph as one run.
3032 * Otherwise, we need to perform the following rules on runs of
3033 * the text with the same embedding levels. (X10)
3034 * "Significant" explicit level codes are ones that actually
3035 * affect non-BN characters.
3036 * Examples for "insignificant" ones are empty embeddings
3037 * LRE-PDF, LRE-RLE-PDF-PDF, etc.
3039 if(embeddingLevels
==NULL
&& pBiDi
->paraCount
<=1 &&
3040 !(pBiDi
->flags
&DIRPROP_FLAG_MULTI_RUNS
)) {
3041 resolveImplicitLevels(pBiDi
, 0, length
,
3042 GET_LR_FROM_LEVEL(GET_PARALEVEL(pBiDi
, 0)),
3043 GET_LR_FROM_LEVEL(GET_PARALEVEL(pBiDi
, length
-1)));
3045 /* sor, eor: start and end types of same-level-run */
3046 UBiDiLevel
*levels
=pBiDi
->levels
;
3047 int32_t start
, limit
=0;
3048 UBiDiLevel level
, nextLevel
;
3051 /* determine the first sor and set eor to it because of the loop body (sor=eor there) */
3052 level
=GET_PARALEVEL(pBiDi
, 0);
3053 nextLevel
=levels
[0];
3054 if(level
<nextLevel
) {
3055 eor
=GET_LR_FROM_LEVEL(nextLevel
);
3057 eor
=GET_LR_FROM_LEVEL(level
);
3061 /* determine start and limit of the run (end points just behind the run) */
3063 /* the values for this run's start are the same as for the previous run's end */
3066 if((start
>0) && (dirProps
[start
-1]==B
)) {
3067 /* except if this is a new paragraph, then set sor = para level */
3068 sor
=GET_LR_FROM_LEVEL(GET_PARALEVEL(pBiDi
, start
));
3073 /* search for the limit of this run */
3074 while((++limit
<length
) &&
3075 ((levels
[limit
]==level
) ||
3076 (DIRPROP_FLAG(dirProps
[limit
])&MASK_BN_EXPLICIT
))) {}
3078 /* get the correct level of the next run */
3080 nextLevel
=levels
[limit
];
3082 nextLevel
=GET_PARALEVEL(pBiDi
, length
-1);
3085 /* determine eor from max(level, nextLevel); sor is last run's eor */
3086 if(NO_OVERRIDE(level
)<NO_OVERRIDE(nextLevel
)) {
3087 eor
=GET_LR_FROM_LEVEL(nextLevel
);
3089 eor
=GET_LR_FROM_LEVEL(level
);
3092 /* if the run consists of overridden directional types, then there
3093 are no implicit types to be resolved */
3094 if(!(level
&UBIDI_LEVEL_OVERRIDE
)) {
3095 resolveImplicitLevels(pBiDi
, start
, limit
, sor
, eor
);
3097 /* remove the UBIDI_LEVEL_OVERRIDE flags */
3099 levels
[start
++]&=~UBIDI_LEVEL_OVERRIDE
;
3100 } while(start
<limit
);
3102 } while(limit
<length
);
3104 /* check if we got any memory shortage while adding insert points */
3105 if (U_FAILURE(pBiDi
->insertPoints
.errorCode
))
3107 *pErrorCode
=pBiDi
->insertPoints
.errorCode
;
3110 /* reset the embedding levels for some non-graphic characters (L1), (X9) */
3111 adjustWSLevels(pBiDi
);
3114 /* add RLM for inverse Bidi with contextual orientation resolving
3115 * to RTL which would not round-trip otherwise
3117 if((pBiDi
->defaultParaLevel
>0) &&
3118 (pBiDi
->reorderingOptions
& UBIDI_OPTION_INSERT_MARKS
) &&
3119 ((pBiDi
->reorderingMode
==UBIDI_REORDER_INVERSE_LIKE_DIRECT
) ||
3120 (pBiDi
->reorderingMode
==UBIDI_REORDER_INVERSE_FOR_NUMBERS_SPECIAL
))) {
3121 int32_t i
, j
, start
, last
;
3124 for(i
=0; i
<pBiDi
->paraCount
; i
++) {
3125 last
=(pBiDi
->paras
[i
].limit
)-1;
3126 level
=pBiDi
->paras
[i
].level
;
3128 continue; /* LTR paragraph */
3129 start
= i
==0 ? 0 : pBiDi
->paras
[i
-1].limit
;
3130 for(j
=last
; j
>=start
; j
--) {
3131 dirProp
=dirProps
[j
];
3134 while(dirProps
[last
]==B
) {
3138 addPoint(pBiDi
, last
, RLM_BEFORE
);
3141 if(DIRPROP_FLAG(dirProp
) & MASK_R_AL
) {
3148 if(pBiDi
->reorderingOptions
& UBIDI_OPTION_REMOVE_CONTROLS
) {
3149 pBiDi
->resultLength
-= pBiDi
->controlCount
;
3151 pBiDi
->resultLength
+= pBiDi
->insertPoints
.size
;
3153 setParaSuccess(pBiDi
); /* mark successful setPara */
3156 /* -------------------------------------------------------------------------- */
3158 U_CAPI
void U_EXPORT2
3159 ubidi_orderParagraphsLTR(UBiDi
*pBiDi
, UBool orderParagraphsLTR
) {
3161 pBiDi
->orderParagraphsLTR
=orderParagraphsLTR
;
3165 U_CAPI UBool U_EXPORT2
3166 ubidi_isOrderParagraphsLTR(UBiDi
*pBiDi
) {
3168 return pBiDi
->orderParagraphsLTR
;
3174 U_CAPI UBiDiDirection U_EXPORT2
3175 ubidi_getDirection(const UBiDi
*pBiDi
) {
3176 if(IS_VALID_PARA_OR_LINE(pBiDi
)) {
3177 return pBiDi
->direction
;
3183 U_CAPI
const UChar
* U_EXPORT2
3184 ubidi_getText(const UBiDi
*pBiDi
) {
3185 if(IS_VALID_PARA_OR_LINE(pBiDi
)) {
3192 U_CAPI
int32_t U_EXPORT2
3193 ubidi_getLength(const UBiDi
*pBiDi
) {
3194 if(IS_VALID_PARA_OR_LINE(pBiDi
)) {
3195 return pBiDi
->originalLength
;
3201 U_CAPI
int32_t U_EXPORT2
3202 ubidi_getProcessedLength(const UBiDi
*pBiDi
) {
3203 if(IS_VALID_PARA_OR_LINE(pBiDi
)) {
3204 return pBiDi
->length
;
3210 U_CAPI
int32_t U_EXPORT2
3211 ubidi_getResultLength(const UBiDi
*pBiDi
) {
3212 if(IS_VALID_PARA_OR_LINE(pBiDi
)) {
3213 return pBiDi
->resultLength
;
3219 /* paragraphs API functions ------------------------------------------------- */
3221 U_CAPI UBiDiLevel U_EXPORT2
3222 ubidi_getParaLevel(const UBiDi
*pBiDi
) {
3223 if(IS_VALID_PARA_OR_LINE(pBiDi
)) {
3224 return pBiDi
->paraLevel
;
3230 U_CAPI
int32_t U_EXPORT2
3231 ubidi_countParagraphs(UBiDi
*pBiDi
) {
3232 if(!IS_VALID_PARA_OR_LINE(pBiDi
)) {
3235 return pBiDi
->paraCount
;
3239 U_CAPI
void U_EXPORT2
3240 ubidi_getParagraphByIndex(const UBiDi
*pBiDi
, int32_t paraIndex
,
3241 int32_t *pParaStart
, int32_t *pParaLimit
,
3242 UBiDiLevel
*pParaLevel
, UErrorCode
*pErrorCode
) {
3245 /* check the argument values */
3246 RETURN_VOID_IF_NULL_OR_FAILING_ERRCODE(pErrorCode
);
3247 RETURN_VOID_IF_NOT_VALID_PARA_OR_LINE(pBiDi
, *pErrorCode
);
3248 RETURN_VOID_IF_BAD_RANGE(paraIndex
, 0, pBiDi
->paraCount
, *pErrorCode
);
3250 pBiDi
=pBiDi
->pParaBiDi
; /* get Para object if Line object */
3252 paraStart
=pBiDi
->paras
[paraIndex
-1].limit
;
3256 if(pParaStart
!=NULL
) {
3257 *pParaStart
=paraStart
;
3259 if(pParaLimit
!=NULL
) {
3260 *pParaLimit
=pBiDi
->paras
[paraIndex
].limit
;
3262 if(pParaLevel
!=NULL
) {
3263 *pParaLevel
=GET_PARALEVEL(pBiDi
, paraStart
);
3267 U_CAPI
int32_t U_EXPORT2
3268 ubidi_getParagraph(const UBiDi
*pBiDi
, int32_t charIndex
,
3269 int32_t *pParaStart
, int32_t *pParaLimit
,
3270 UBiDiLevel
*pParaLevel
, UErrorCode
*pErrorCode
) {
3273 /* check the argument values */
3274 /* pErrorCode will be checked by the call to ubidi_getParagraphByIndex */
3275 RETURN_IF_NULL_OR_FAILING_ERRCODE(pErrorCode
, -1);
3276 RETURN_IF_NOT_VALID_PARA_OR_LINE(pBiDi
, *pErrorCode
, -1);
3277 pBiDi
=pBiDi
->pParaBiDi
; /* get Para object if Line object */
3278 RETURN_IF_BAD_RANGE(charIndex
, 0, pBiDi
->length
, *pErrorCode
, -1);
3280 for(paraIndex
=0; charIndex
>=pBiDi
->paras
[paraIndex
].limit
; paraIndex
++);
3281 ubidi_getParagraphByIndex(pBiDi
, paraIndex
, pParaStart
, pParaLimit
, pParaLevel
, pErrorCode
);
3285 U_CAPI
void U_EXPORT2
3286 ubidi_setClassCallback(UBiDi
*pBiDi
, UBiDiClassCallback
*newFn
,
3287 const void *newContext
, UBiDiClassCallback
**oldFn
,
3288 const void **oldContext
, UErrorCode
*pErrorCode
)
3290 RETURN_VOID_IF_NULL_OR_FAILING_ERRCODE(pErrorCode
);
3292 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
3297 *oldFn
= pBiDi
->fnClassCallback
;
3301 *oldContext
= pBiDi
->coClassCallback
;
3303 pBiDi
->fnClassCallback
= newFn
;
3304 pBiDi
->coClassCallback
= newContext
;
3307 U_CAPI
void U_EXPORT2
3308 ubidi_getClassCallback(UBiDi
*pBiDi
, UBiDiClassCallback
**fn
, const void **context
)
3315 *fn
= pBiDi
->fnClassCallback
;
3319 *context
= pBiDi
->coClassCallback
;
3323 U_CAPI UCharDirection U_EXPORT2
3324 ubidi_getCustomizedClass(UBiDi
*pBiDi
, UChar32 c
)
3328 if( pBiDi
->fnClassCallback
== NULL
||
3329 (dir
= (*pBiDi
->fnClassCallback
)(pBiDi
->coClassCallback
, c
)) == U_BIDI_CLASS_DEFAULT
)
3331 dir
= ubidi_getClass(pBiDi
->bdp
, c
);
3333 if(dir
>= U_CHAR_DIRECTION_COUNT
) {