2 *******************************************************************************
4 * Copyright (C) 2005-2013, International Business Machines
5 * Corporation and others. All Rights Reserved.
7 *******************************************************************************
10 * tab size: 8 (not used)
13 * created on: 2005apr12
14 * created by: Markus W. Scherer
17 #include "unicode/utypes.h"
18 #include "unicode/ustring.h"
19 #include "unicode/unistr.h"
20 #include "unicode/chariter.h"
21 #include "unicode/utext.h"
22 #include "unicode/utf.h"
23 #include "unicode/utf8.h"
24 #include "unicode/utf16.h"
33 #define I32_FLAG(bitIndex) ((int32_t)1<<(bitIndex))
37 utext_access(UText
*ut
, int64_t index
, UBool forward
) {
38 return ut
->pFuncs
->access(ut
, index
, forward
);
43 U_CAPI UBool U_EXPORT2
44 utext_moveIndex32(UText
*ut
, int32_t delta
) {
48 if(ut
->chunkOffset
>=ut
->chunkLength
&& !utext_access(ut
, ut
->chunkNativeLimit
, TRUE
)) {
51 c
= ut
->chunkContents
[ut
->chunkOffset
];
52 if (U16_IS_SURROGATE(c
)) {
54 if (c
== U_SENTINEL
) {
64 if(ut
->chunkOffset
<=0 && !utext_access(ut
, ut
->chunkNativeStart
, FALSE
)) {
67 c
= ut
->chunkContents
[ut
->chunkOffset
-1];
68 if (U16_IS_SURROGATE(c
)) {
69 c
= utext_previous32(ut
);
70 if (c
== U_SENTINEL
) {
83 U_CAPI
int64_t U_EXPORT2
84 utext_nativeLength(UText
*ut
) {
85 return ut
->pFuncs
->nativeLength(ut
);
89 U_CAPI UBool U_EXPORT2
90 utext_isLengthExpensive(const UText
*ut
) {
91 UBool r
= (ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
)) != 0;
96 U_CAPI
int64_t U_EXPORT2
97 utext_getNativeIndex(const UText
*ut
) {
98 if(ut
->chunkOffset
<= ut
->nativeIndexingLimit
) {
99 return ut
->chunkNativeStart
+ut
->chunkOffset
;
101 return ut
->pFuncs
->mapOffsetToNative(ut
);
106 U_CAPI
void U_EXPORT2
107 utext_setNativeIndex(UText
*ut
, int64_t index
) {
108 if(index
<ut
->chunkNativeStart
|| index
>=ut
->chunkNativeLimit
) {
109 // The desired position is outside of the current chunk.
110 // Access the new position. Assume a forward iteration from here,
111 // which will also be optimimum for a single random access.
112 // Reverse iterations may suffer slightly.
113 ut
->pFuncs
->access(ut
, index
, TRUE
);
114 } else if((int32_t)(index
- ut
->chunkNativeStart
) <= ut
->nativeIndexingLimit
) {
116 ut
->chunkOffset
=(int32_t)(index
-ut
->chunkNativeStart
);
118 ut
->chunkOffset
=ut
->pFuncs
->mapNativeIndexToUTF16(ut
, index
);
120 // The convention is that the index must always be on a code point boundary.
121 // Adjust the index position if it is in the middle of a surrogate pair.
122 if (ut
->chunkOffset
<ut
->chunkLength
) {
123 UChar c
= ut
->chunkContents
[ut
->chunkOffset
];
124 if (U16_IS_TRAIL(c
)) {
125 if (ut
->chunkOffset
==0) {
126 ut
->pFuncs
->access(ut
, ut
->chunkNativeStart
, FALSE
);
128 if (ut
->chunkOffset
>0) {
129 UChar lead
= ut
->chunkContents
[ut
->chunkOffset
-1];
130 if (U16_IS_LEAD(lead
)) {
140 U_CAPI
int64_t U_EXPORT2
141 utext_getPreviousNativeIndex(UText
*ut
) {
143 // Fast-path the common case.
144 // Common means current position is not at the beginning of a chunk
145 // and the preceding character is not supplementary.
147 int32_t i
= ut
->chunkOffset
- 1;
150 UChar c
= ut
->chunkContents
[i
];
151 if (U16_IS_TRAIL(c
) == FALSE
) {
152 if (i
<= ut
->nativeIndexingLimit
) {
153 result
= ut
->chunkNativeStart
+ i
;
156 result
= ut
->pFuncs
->mapOffsetToNative(ut
);
163 // If at the start of text, simply return 0.
164 if (ut
->chunkOffset
==0 && ut
->chunkNativeStart
==0) {
168 // Harder, less common cases. We are at a chunk boundary, or on a surrogate.
169 // Keep it simple, use other functions to handle the edges.
171 utext_previous32(ut
);
172 result
= UTEXT_GETNATIVEINDEX(ut
);
179 // utext_current32. Get the UChar32 at the current position.
180 // UText iteration position is always on a code point boundary,
181 // never on the trail half of a surrogate pair.
183 U_CAPI UChar32 U_EXPORT2
184 utext_current32(UText
*ut
) {
186 if (ut
->chunkOffset
==ut
->chunkLength
) {
187 // Current position is just off the end of the chunk.
188 if (ut
->pFuncs
->access(ut
, ut
->chunkNativeLimit
, TRUE
) == FALSE
) {
189 // Off the end of the text.
194 c
= ut
->chunkContents
[ut
->chunkOffset
];
195 if (U16_IS_LEAD(c
) == FALSE
) {
196 // Normal, non-supplementary case.
201 // Possible supplementary char.
204 UChar32 supplementaryC
= c
;
205 if ((ut
->chunkOffset
+1) < ut
->chunkLength
) {
206 // The trail surrogate is in the same chunk.
207 trail
= ut
->chunkContents
[ut
->chunkOffset
+1];
209 // The trail surrogate is in a different chunk.
210 // Because we must maintain the iteration position, we need to switch forward
211 // into the new chunk, get the trail surrogate, then revert the chunk back to the
213 // An edge case to be careful of: the entire text may end with an unpaired
214 // leading surrogate. The attempt to access the trail will fail, but
215 // the original position before the unpaired lead still needs to be restored.
216 int64_t nativePosition
= ut
->chunkNativeLimit
;
217 int32_t originalOffset
= ut
->chunkOffset
;
218 if (ut
->pFuncs
->access(ut
, nativePosition
, TRUE
)) {
219 trail
= ut
->chunkContents
[ut
->chunkOffset
];
221 UBool r
= ut
->pFuncs
->access(ut
, nativePosition
, FALSE
); // reverse iteration flag loads preceding chunk
223 ut
->chunkOffset
= originalOffset
;
229 if (U16_IS_TRAIL(trail
)) {
230 supplementaryC
= U16_GET_SUPPLEMENTARY(c
, trail
);
232 return supplementaryC
;
237 U_CAPI UChar32 U_EXPORT2
238 utext_char32At(UText
*ut
, int64_t nativeIndex
) {
239 UChar32 c
= U_SENTINEL
;
241 // Fast path the common case.
242 if (nativeIndex
>=ut
->chunkNativeStart
&& nativeIndex
< ut
->chunkNativeStart
+ ut
->nativeIndexingLimit
) {
243 ut
->chunkOffset
= (int32_t)(nativeIndex
- ut
->chunkNativeStart
);
244 c
= ut
->chunkContents
[ut
->chunkOffset
];
245 if (U16_IS_SURROGATE(c
) == FALSE
) {
251 utext_setNativeIndex(ut
, nativeIndex
);
252 if (nativeIndex
>=ut
->chunkNativeStart
&& ut
->chunkOffset
<ut
->chunkLength
) {
253 c
= ut
->chunkContents
[ut
->chunkOffset
];
254 if (U16_IS_SURROGATE(c
)) {
255 // For surrogates, let current32() deal with the complications
256 // of supplementaries that may span chunk boundaries.
257 c
= utext_current32(ut
);
264 U_CAPI UChar32 U_EXPORT2
265 utext_next32(UText
*ut
) {
268 if (ut
->chunkOffset
>= ut
->chunkLength
) {
269 if (ut
->pFuncs
->access(ut
, ut
->chunkNativeLimit
, TRUE
) == FALSE
) {
274 c
= ut
->chunkContents
[ut
->chunkOffset
++];
275 if (U16_IS_LEAD(c
) == FALSE
) {
276 // Normal case, not supplementary.
277 // (A trail surrogate seen here is just returned as is, as a surrogate value.
278 // It cannot be part of a pair.)
282 if (ut
->chunkOffset
>= ut
->chunkLength
) {
283 if (ut
->pFuncs
->access(ut
, ut
->chunkNativeLimit
, TRUE
) == FALSE
) {
284 // c is an unpaired lead surrogate at the end of the text.
285 // return it as it is.
289 UChar32 trail
= ut
->chunkContents
[ut
->chunkOffset
];
290 if (U16_IS_TRAIL(trail
) == FALSE
) {
291 // c was an unpaired lead surrogate, not at the end of the text.
292 // return it as it is (unpaired). Iteration position is on the
293 // following character, possibly in the next chunk, where the
294 // trail surrogate would have been if it had existed.
298 UChar32 supplementary
= U16_GET_SUPPLEMENTARY(c
, trail
);
299 ut
->chunkOffset
++; // move iteration position over the trail surrogate.
300 return supplementary
;
304 U_CAPI UChar32 U_EXPORT2
305 utext_previous32(UText
*ut
) {
308 if (ut
->chunkOffset
<= 0) {
309 if (ut
->pFuncs
->access(ut
, ut
->chunkNativeStart
, FALSE
) == FALSE
) {
314 c
= ut
->chunkContents
[ut
->chunkOffset
];
315 if (U16_IS_TRAIL(c
) == FALSE
) {
316 // Normal case, not supplementary.
317 // (A lead surrogate seen here is just returned as is, as a surrogate value.
318 // It cannot be part of a pair.)
322 if (ut
->chunkOffset
<= 0) {
323 if (ut
->pFuncs
->access(ut
, ut
->chunkNativeStart
, FALSE
) == FALSE
) {
324 // c is an unpaired trail surrogate at the start of the text.
325 // return it as it is.
330 UChar32 lead
= ut
->chunkContents
[ut
->chunkOffset
-1];
331 if (U16_IS_LEAD(lead
) == FALSE
) {
332 // c was an unpaired trail surrogate, not at the end of the text.
333 // return it as it is (unpaired). Iteration position is at c
337 UChar32 supplementary
= U16_GET_SUPPLEMENTARY(lead
, c
);
338 ut
->chunkOffset
--; // move iteration position over the lead surrogate.
339 return supplementary
;
344 U_CAPI UChar32 U_EXPORT2
345 utext_next32From(UText
*ut
, int64_t index
) {
346 UChar32 c
= U_SENTINEL
;
348 if(index
<ut
->chunkNativeStart
|| index
>=ut
->chunkNativeLimit
) {
349 // Desired position is outside of the current chunk.
350 if(!ut
->pFuncs
->access(ut
, index
, TRUE
)) {
351 // no chunk available here
354 } else if (index
- ut
->chunkNativeStart
<= (int64_t)ut
->nativeIndexingLimit
) {
355 // Desired position is in chunk, with direct 1:1 native to UTF16 indexing
356 ut
->chunkOffset
= (int32_t)(index
- ut
->chunkNativeStart
);
358 // Desired position is in chunk, with non-UTF16 indexing.
359 ut
->chunkOffset
= ut
->pFuncs
->mapNativeIndexToUTF16(ut
, index
);
362 c
= ut
->chunkContents
[ut
->chunkOffset
++];
363 if (U16_IS_SURROGATE(c
)) {
364 // Surrogates. Many edge cases. Use other functions that already
365 // deal with the problems.
366 utext_setNativeIndex(ut
, index
);
367 c
= utext_next32(ut
);
373 U_CAPI UChar32 U_EXPORT2
374 utext_previous32From(UText
*ut
, int64_t index
) {
376 // Return the character preceding the specified index.
377 // Leave the iteration position at the start of the character that was returned.
379 UChar32 cPrev
; // The character preceding cCurr, which is what we will return.
381 // Address the chunk containg the position preceding the incoming index
382 // A tricky edge case:
383 // We try to test the requested native index against the chunkNativeStart to determine
384 // whether the character preceding the one at the index is in the current chunk.
385 // BUT, this test can fail with UTF-8 (or any other multibyte encoding), when the
386 // requested index is on something other than the first position of the first char.
388 if(index
<=ut
->chunkNativeStart
|| index
>ut
->chunkNativeLimit
) {
389 // Requested native index is outside of the current chunk.
390 if(!ut
->pFuncs
->access(ut
, index
, FALSE
)) {
391 // no chunk available here
394 } else if(index
- ut
->chunkNativeStart
<= (int64_t)ut
->nativeIndexingLimit
) {
395 // Direct UTF-16 indexing.
396 ut
->chunkOffset
= (int32_t)(index
- ut
->chunkNativeStart
);
398 ut
->chunkOffset
=ut
->pFuncs
->mapNativeIndexToUTF16(ut
, index
);
399 if (ut
->chunkOffset
==0 && !ut
->pFuncs
->access(ut
, index
, FALSE
)) {
400 // no chunk available here
406 // Simple case with no surrogates.
409 cPrev
= ut
->chunkContents
[ut
->chunkOffset
];
411 if (U16_IS_SURROGATE(cPrev
)) {
412 // Possible supplementary. Many edge cases.
413 // Let other functions do the heavy lifting.
414 utext_setNativeIndex(ut
, index
);
415 cPrev
= utext_previous32(ut
);
421 U_CAPI
int32_t U_EXPORT2
422 utext_extract(UText
*ut
,
423 int64_t start
, int64_t limit
,
424 UChar
*dest
, int32_t destCapacity
,
425 UErrorCode
*status
) {
426 return ut
->pFuncs
->extract(ut
, start
, limit
, dest
, destCapacity
, status
);
431 U_CAPI UBool U_EXPORT2
432 utext_equals(const UText
*a
, const UText
*b
) {
433 if (a
==NULL
|| b
==NULL
||
434 a
->magic
!= UTEXT_MAGIC
||
435 b
->magic
!= UTEXT_MAGIC
) {
436 // Null or invalid arguments don't compare equal to anything.
440 if (a
->pFuncs
!= b
->pFuncs
) {
441 // Different types of text providers.
445 if (a
->context
!= b
->context
) {
446 // Different sources (different strings)
449 if (utext_getNativeIndex(a
) != utext_getNativeIndex(b
)) {
450 // Different current position in the string.
457 U_CAPI UBool U_EXPORT2
458 utext_isWritable(const UText
*ut
)
460 UBool b
= (ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_WRITABLE
)) != 0;
465 U_CAPI
void U_EXPORT2
466 utext_freeze(UText
*ut
) {
467 // Zero out the WRITABLE flag.
468 ut
->providerProperties
&= ~(I32_FLAG(UTEXT_PROVIDER_WRITABLE
));
472 U_CAPI UBool U_EXPORT2
473 utext_hasMetaData(const UText
*ut
)
475 UBool b
= (ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_HAS_META_DATA
)) != 0;
481 U_CAPI
int32_t U_EXPORT2
482 utext_replace(UText
*ut
,
483 int64_t nativeStart
, int64_t nativeLimit
,
484 const UChar
*replacementText
, int32_t replacementLength
,
487 if (U_FAILURE(*status
)) {
490 if ((ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_WRITABLE
)) == 0) {
491 *status
= U_NO_WRITE_PERMISSION
;
494 int32_t i
= ut
->pFuncs
->replace(ut
, nativeStart
, nativeLimit
, replacementText
, replacementLength
, status
);
498 U_CAPI
void U_EXPORT2
499 utext_copy(UText
*ut
,
500 int64_t nativeStart
, int64_t nativeLimit
,
505 if (U_FAILURE(*status
)) {
508 if ((ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_WRITABLE
)) == 0) {
509 *status
= U_NO_WRITE_PERMISSION
;
512 ut
->pFuncs
->copy(ut
, nativeStart
, nativeLimit
, destIndex
, move
, status
);
517 U_CAPI UText
* U_EXPORT2
518 utext_clone(UText
*dest
, const UText
*src
, UBool deep
, UBool readOnly
, UErrorCode
*status
) {
520 result
= src
->pFuncs
->clone(dest
, src
, deep
, status
);
522 utext_freeze(result
);
529 //------------------------------------------------------------------------------
531 // UText common functions implementation
533 //------------------------------------------------------------------------------
536 // UText.flags bit definitions
539 UTEXT_HEAP_ALLOCATED
= 1, // 1 if ICU has allocated this UText struct on the heap.
540 // 0 if caller provided storage for the UText.
542 UTEXT_EXTRA_HEAP_ALLOCATED
= 2, // 1 if ICU has allocated extra storage as a separate
544 // 0 if there is no separate allocation. Either no extra
545 // storage was requested, or it is appended to the end
546 // of the main UText storage.
548 UTEXT_OPEN
= 4 // 1 if this UText is currently open
549 // 0 if this UText is not open.
554 // Extended form of a UText. The purpose is to aid in computing the total size required
555 // when a provider asks for a UText to be allocated with extra storage.
557 struct ExtendedUText
{
559 UAlignedMemory extension
;
562 static const UText emptyText
= UTEXT_INITIALIZER
;
564 U_CAPI UText
* U_EXPORT2
565 utext_setup(UText
*ut
, int32_t extraSpace
, UErrorCode
*status
) {
566 if (U_FAILURE(*status
)) {
571 // We need to heap-allocate storage for the new UText
572 int32_t spaceRequired
= sizeof(UText
);
573 if (extraSpace
> 0) {
574 spaceRequired
= sizeof(ExtendedUText
) + extraSpace
- sizeof(UAlignedMemory
);
576 ut
= (UText
*)uprv_malloc(spaceRequired
);
578 *status
= U_MEMORY_ALLOCATION_ERROR
;
582 ut
->flags
|= UTEXT_HEAP_ALLOCATED
;
583 if (spaceRequired
>0) {
584 ut
->extraSize
= extraSpace
;
585 ut
->pExtra
= &((ExtendedUText
*)ut
)->extension
;
589 // We have been supplied with an already existing UText.
590 // Verify that it really appears to be a UText.
591 if (ut
->magic
!= UTEXT_MAGIC
) {
592 *status
= U_ILLEGAL_ARGUMENT_ERROR
;
595 // If the ut is already open and there's a provider supplied close
596 // function, call it.
597 if ((ut
->flags
& UTEXT_OPEN
) && ut
->pFuncs
->close
!= NULL
) {
598 ut
->pFuncs
->close(ut
);
600 ut
->flags
&= ~UTEXT_OPEN
;
602 // If extra space was requested by our caller, check whether
603 // sufficient already exists, and allocate new if needed.
604 if (extraSpace
> ut
->extraSize
) {
605 // Need more space. If there is existing separately allocated space,
606 // delete it first, then allocate new space.
607 if (ut
->flags
& UTEXT_EXTRA_HEAP_ALLOCATED
) {
608 uprv_free(ut
->pExtra
);
611 ut
->pExtra
= uprv_malloc(extraSpace
);
612 if (ut
->pExtra
== NULL
) {
613 *status
= U_MEMORY_ALLOCATION_ERROR
;
615 ut
->extraSize
= extraSpace
;
616 ut
->flags
|= UTEXT_EXTRA_HEAP_ALLOCATED
;
620 if (U_SUCCESS(*status
)) {
621 ut
->flags
|= UTEXT_OPEN
;
623 // Initialize all remaining fields of the UText.
626 ut
->chunkContents
= NULL
;
635 ut
->chunkNativeStart
= 0;
636 ut
->chunkNativeLimit
= 0;
637 ut
->nativeIndexingLimit
= 0;
638 ut
->providerProperties
= 0;
643 if (ut
->pExtra
!=NULL
&& ut
->extraSize
>0)
644 uprv_memset(ut
->pExtra
, 0, ut
->extraSize
);
651 U_CAPI UText
* U_EXPORT2
652 utext_close(UText
*ut
) {
654 ut
->magic
!= UTEXT_MAGIC
||
655 (ut
->flags
& UTEXT_OPEN
) == 0)
657 // The supplied ut is not an open UText.
662 // If the provider gave us a close function, call it now.
663 // This will clean up anything allocated specifically by the provider.
664 if (ut
->pFuncs
->close
!= NULL
) {
665 ut
->pFuncs
->close(ut
);
667 ut
->flags
&= ~UTEXT_OPEN
;
669 // If we (the framework) allocated the UText or subsidiary storage,
671 if (ut
->flags
& UTEXT_EXTRA_HEAP_ALLOCATED
) {
672 uprv_free(ut
->pExtra
);
674 ut
->flags
&= ~UTEXT_EXTRA_HEAP_ALLOCATED
;
678 // Zero out function table of the closed UText. This is a defensive move,
679 // inteded to cause applications that inadvertantly use a closed
680 // utext to crash with null pointer errors.
683 if (ut
->flags
& UTEXT_HEAP_ALLOCATED
) {
684 // This UText was allocated by UText setup. We need to free it.
685 // Clear magic, so we can detect if the user messes up and immediately
686 // tries to reopen another UText using the deleted storage.
698 // invalidateChunk Reset a chunk to have no contents, so that the next call
699 // to access will cause new data to load.
700 // This is needed when copy/move/replace operate directly on the
701 // backing text, potentially putting it out of sync with the
702 // contents in the chunk.
705 invalidateChunk(UText
*ut
) {
707 ut
->chunkNativeLimit
= 0;
708 ut
->chunkNativeStart
= 0;
710 ut
->nativeIndexingLimit
= 0;
714 // pinIndex Do range pinning on a native index parameter.
715 // 64 bit pinning is done in place.
716 // 32 bit truncated result is returned as a convenience for
717 // use in providers that don't need 64 bits.
719 pinIndex(int64_t &index
, int64_t limit
) {
722 } else if (index
> limit
) {
725 return (int32_t)index
;
732 // Pointer relocation function,
733 // a utility used by shallow clone.
734 // Adjust a pointer that refers to something within one UText (the source)
735 // to refer to the same relative offset within a another UText (the target)
737 static void adjustPointer(UText
*dest
, const void **destPtr
, const UText
*src
) {
738 // convert all pointers to (char *) so that byte address arithmetic will work.
739 char *dptr
= (char *)*destPtr
;
740 char *dUText
= (char *)dest
;
741 char *sUText
= (char *)src
;
743 if (dptr
>= (char *)src
->pExtra
&& dptr
< ((char*)src
->pExtra
)+src
->extraSize
) {
744 // target ptr was to something within the src UText's pExtra storage.
745 // relocate it into the target UText's pExtra region.
746 *destPtr
= ((char *)dest
->pExtra
) + (dptr
- (char *)src
->pExtra
);
747 } else if (dptr
>=sUText
&& dptr
< sUText
+src
->sizeOfStruct
) {
748 // target ptr was pointing to somewhere within the source UText itself.
749 // Move it to the same offset within the target UText.
750 *destPtr
= dUText
+ (dptr
-sUText
);
756 // Clone. This is a generic copy-the-utext-by-value clone function that can be
757 // used as-is with some utext types, and as a helper by other clones.
759 static UText
* U_CALLCONV
760 shallowTextClone(UText
* dest
, const UText
* src
, UErrorCode
* status
) {
761 if (U_FAILURE(*status
)) {
764 int32_t srcExtraSize
= src
->extraSize
;
767 // Use the generic text_setup to allocate storage if required.
769 dest
= utext_setup(dest
, srcExtraSize
, status
);
770 if (U_FAILURE(*status
)) {
775 // flags (how the UText was allocated) and the pointer to the
776 // extra storage must retain the values in the cloned utext that
777 // were set up by utext_setup. Save them separately before
778 // copying the whole struct.
780 void *destExtra
= dest
->pExtra
;
781 int32_t flags
= dest
->flags
;
785 // Copy the whole UText struct by value.
786 // Any "Extra" storage is copied also.
788 int sizeToCopy
= src
->sizeOfStruct
;
789 if (sizeToCopy
> dest
->sizeOfStruct
) {
790 sizeToCopy
= dest
->sizeOfStruct
;
792 uprv_memcpy(dest
, src
, sizeToCopy
);
793 dest
->pExtra
= destExtra
;
795 if (srcExtraSize
> 0) {
796 uprv_memcpy(dest
->pExtra
, src
->pExtra
, srcExtraSize
);
800 // Relocate any pointers in the target that refer to the UText itself
801 // to point to the cloned copy rather than the original source.
803 adjustPointer(dest
, &dest
->context
, src
);
804 adjustPointer(dest
, &dest
->p
, src
);
805 adjustPointer(dest
, &dest
->q
, src
);
806 adjustPointer(dest
, &dest
->r
, src
);
807 adjustPointer(dest
, (const void **)&dest
->chunkContents
, src
);
809 // The newly shallow-cloned UText does _not_ own the underlying storage for the text.
810 // (The source for the clone may or may not have owned the text.)
812 dest
->providerProperties
&= ~I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
);
822 //------------------------------------------------------------------------------
824 // UText implementation for UTF-8 char * strings (read-only)
825 // Limitation: string length must be <= 0x7fffffff in length.
826 // (length must for in an int32_t variable)
828 // Use of UText data members:
829 // context pointer to UTF-8 string
830 // utext.b is the input string length (bytes).
831 // utext.c Length scanned so far in string
832 // (for optimizing finding length of zero terminated strings.)
833 // utext.p pointer to the current buffer
834 // utext.q pointer to the other buffer.
836 //------------------------------------------------------------------------------
839 // Must be less than 85, because of byte mapping from UChar indexes to native indexes.
840 // Worst case is three native bytes to one UChar. (Supplemenaries are 4 native bytes
843 enum { UTF8_TEXT_CHUNK_SIZE
=32 };
846 // UTF8Buf Two of these structs will be set up in the UText's extra allocated space.
847 // Each contains the UChar chunk buffer, the to and from native maps, and
850 // because backwards iteration fills the buffers starting at the end and
851 // working towards the front, the filled part of the buffers may not begin
852 // at the start of the available storage for the buffers.
854 // Buffer size is one bigger than the specified UTF8_TEXT_CHUNK_SIZE to allow for
855 // the last character added being a supplementary, and thus requiring a surrogate
856 // pair. Doing this is simpler than checking for the edge case.
860 int32_t bufNativeStart
; // Native index of first char in UChar buf
861 int32_t bufNativeLimit
; // Native index following last char in buf.
862 int32_t bufStartIdx
; // First filled position in buf.
863 int32_t bufLimitIdx
; // Limit of filled range in buf.
864 int32_t bufNILimit
; // Limit of native indexing part of buf
865 int32_t toUCharsMapStart
; // Native index corresponding to
867 // Set to bufNativeStart when filling forwards.
868 // Set to computed value when filling backwards.
870 UChar buf
[UTF8_TEXT_CHUNK_SIZE
+4]; // The UChar buffer. Requires one extra position beyond the
871 // the chunk size, to allow for surrogate at the end.
872 // Length must be identical to mapToNative array, below,
873 // because of the way indexing works when the array is
874 // filled backwards during a reverse iteration. Thus,
875 // the additional extra size.
876 uint8_t mapToNative
[UTF8_TEXT_CHUNK_SIZE
+4]; // map UChar index in buf to
877 // native offset from bufNativeStart.
878 // Requires two extra slots,
879 // one for a supplementary starting in the last normal position,
880 // and one for an entry for the buffer limit position.
881 uint8_t mapToUChars
[UTF8_TEXT_CHUNK_SIZE
*3+6]; // Map native offset from bufNativeStart to
882 // correspoding offset in filled part of buf.
891 // Get the length of the string. If we don't already know it,
892 // we'll need to scan for the trailing nul.
894 static int64_t U_CALLCONV
895 utf8TextLength(UText
*ut
) {
897 // Zero terminated string, and we haven't scanned to the end yet.
899 const char *r
= (const char *)ut
->context
+ ut
->c
;
903 if ((r
- (const char *)ut
->context
) < 0x7fffffff) {
904 ut
->b
= (int32_t)(r
- (const char *)ut
->context
);
906 // Actual string was bigger (more than 2 gig) than we
907 // can handle. Clip it to 2 GB.
910 ut
->providerProperties
&= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
920 static UBool U_CALLCONV
921 utf8TextAccess(UText
*ut
, int64_t index
, UBool forward
) {
923 // Apologies to those who are allergic to goto statements.
924 // Consider each goto to a labelled block to be the equivalent of
925 // call the named block as if it were a function();
928 const uint8_t *s8
=(const uint8_t *)ut
->context
;
930 int32_t length
= ut
->b
; // Length of original utf-8
931 int32_t ix
= (int32_t)index
; // Requested index, trimmed to 32 bits.
932 int32_t mapIndex
= 0;
935 } else if (index
> 0x7fffffff) {
936 // Strings with 64 bit lengths not supported by this UTF-8 provider.
940 // Pin requested index to the string length.
944 } else if (ix
>=ut
->c
) {
945 // Zero terminated string, and requested index is beyond
946 // the region that has already been scanned.
947 // Scan up to either the end of the string or to the
948 // requested position, whichever comes first.
949 while (ut
->c
<ix
&& s8
[ut
->c
]!=0) {
952 // TODO: support for null terminated string length > 32 bits.
953 if (s8
[ut
->c
] == 0) {
954 // We just found the actual length of the string.
955 // Trim the requested index back to that.
959 ut
->providerProperties
&= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
965 // Dispatch to the appropriate action for a forward iteration request.
968 if (ix
==ut
->chunkNativeLimit
) {
969 // Check for normal sequential iteration cases first.
971 // Just reached end of string
972 // Don't swap buffers, but do set the
973 // current buffer position.
974 ut
->chunkOffset
= ut
->chunkLength
;
977 // End of current buffer.
978 // check whether other buffer already has what we need.
979 UTF8Buf
*altB
= (UTF8Buf
*)ut
->q
;
980 if (ix
>=altB
->bufNativeStart
&& ix
<altB
->bufNativeLimit
) {
986 // A random access. Desired index could be in either or niether buf.
987 // For optimizing the order of testing, first check for the index
988 // being in the other buffer. This will be the case for uses that
989 // move back and forth over a fairly limited range
991 u8b
= (UTF8Buf
*)ut
->q
; // the alternate buffer
992 if (ix
>=u8b
->bufNativeStart
&& ix
<u8b
->bufNativeLimit
) {
993 // Requested index is in the other buffer.
997 // Requested index is end-of-string.
998 // (this is the case of randomly seeking to the end.
999 // The case of iterating off the end is handled earlier.)
1000 if (ix
== ut
->chunkNativeLimit
) {
1001 // Current buffer extends up to the end of the string.
1002 // Leave it as the current buffer.
1003 ut
->chunkOffset
= ut
->chunkLength
;
1006 if (ix
== u8b
->bufNativeLimit
) {
1007 // Alternate buffer extends to the end of string.
1008 // Swap it in as the current buffer.
1009 goto swapBuffersAndFail
;
1012 // Neither existing buffer extends to the end of the string.
1013 goto makeStubBuffer
;
1016 if (ix
<ut
->chunkNativeStart
|| ix
>=ut
->chunkNativeLimit
) {
1017 // Requested index is in neither buffer.
1021 // Requested index is in this buffer.
1022 u8b
= (UTF8Buf
*)ut
->p
; // the current buffer
1023 mapIndex
= ix
- u8b
->toUCharsMapStart
;
1024 ut
->chunkOffset
= u8b
->mapToUChars
[mapIndex
] - u8b
->bufStartIdx
;
1032 // Dispatch to the appropriate action for a
1033 // Backwards Diretion iteration request.
1035 if (ix
==ut
->chunkNativeStart
) {
1036 // Check for normal sequential iteration cases first.
1038 // Just reached the start of string
1039 // Don't swap buffers, but do set the
1040 // current buffer position.
1041 ut
->chunkOffset
= 0;
1044 // Start of current buffer.
1045 // check whether other buffer already has what we need.
1046 UTF8Buf
*altB
= (UTF8Buf
*)ut
->q
;
1047 if (ix
>altB
->bufNativeStart
&& ix
<=altB
->bufNativeLimit
) {
1053 // A random access. Desired index could be in either or niether buf.
1054 // For optimizing the order of testing,
1055 // Most likely case: in the other buffer.
1056 // Second most likely: in neither buffer.
1057 // Unlikely, but must work: in the current buffer.
1058 u8b
= (UTF8Buf
*)ut
->q
; // the alternate buffer
1059 if (ix
>u8b
->bufNativeStart
&& ix
<=u8b
->bufNativeLimit
) {
1060 // Requested index is in the other buffer.
1063 // Requested index is start-of-string.
1064 // (this is the case of randomly seeking to the start.
1065 // The case of iterating off the start is handled earlier.)
1067 if (u8b
->bufNativeStart
==0) {
1068 // Alternate buffer contains the data for the start string.
1069 // Make it be the current buffer.
1070 goto swapBuffersAndFail
;
1072 // Request for data before the start of string,
1073 // neither buffer is usable.
1074 // set up a zero-length buffer.
1075 goto makeStubBuffer
;
1079 if (ix
<=ut
->chunkNativeStart
|| ix
>ut
->chunkNativeLimit
) {
1080 // Requested index is in neither buffer.
1084 // Requested index is in this buffer.
1085 // Set the utf16 buffer index.
1086 u8b
= (UTF8Buf
*)ut
->p
;
1087 mapIndex
= ix
- u8b
->toUCharsMapStart
;
1088 ut
->chunkOffset
= u8b
->mapToUChars
[mapIndex
] - u8b
->bufStartIdx
;
1089 if (ut
->chunkOffset
==0) {
1090 // This occurs when the first character in the text is
1091 // a multi-byte UTF-8 char, and the requested index is to
1092 // one of the trailing bytes. Because there is no preceding ,
1093 // character, this access fails. We can't pick up on the
1094 // situation sooner because the requested index is not zero.
1103 // The alternate buffer (ut->q) has the string data that was requested.
1104 // Swap the primary and alternate buffers, and set the
1105 // chunk index into the new primary buffer.
1107 u8b
= (UTF8Buf
*)ut
->q
;
1110 ut
->chunkContents
= &u8b
->buf
[u8b
->bufStartIdx
];
1111 ut
->chunkLength
= u8b
->bufLimitIdx
- u8b
->bufStartIdx
;
1112 ut
->chunkNativeStart
= u8b
->bufNativeStart
;
1113 ut
->chunkNativeLimit
= u8b
->bufNativeLimit
;
1114 ut
->nativeIndexingLimit
= u8b
->bufNILimit
;
1116 // Index into the (now current) chunk
1117 // Use the map to set the chunk index. It's more trouble than it's worth
1118 // to check whether native indexing can be used.
1119 U_ASSERT(ix
>=u8b
->bufNativeStart
);
1120 U_ASSERT(ix
<=u8b
->bufNativeLimit
);
1121 mapIndex
= ix
- u8b
->toUCharsMapStart
;
1122 U_ASSERT(mapIndex
>=0);
1123 U_ASSERT(mapIndex
<(int32_t)sizeof(u8b
->mapToUChars
));
1124 ut
->chunkOffset
= u8b
->mapToUChars
[mapIndex
] - u8b
->bufStartIdx
;
1131 // We got a request for either the start or end of the string,
1132 // with iteration continuing in the out-of-bounds direction.
1133 // The alternate buffer already contains the data up to the
1135 // Swap the buffers, then return failure, indicating that we couldn't
1136 // make things correct for continuing the iteration in the requested
1137 // direction. The position & buffer are correct should the
1138 // user decide to iterate in the opposite direction.
1139 u8b
= (UTF8Buf
*)ut
->q
;
1142 ut
->chunkContents
= &u8b
->buf
[u8b
->bufStartIdx
];
1143 ut
->chunkLength
= u8b
->bufLimitIdx
- u8b
->bufStartIdx
;
1144 ut
->chunkNativeStart
= u8b
->bufNativeStart
;
1145 ut
->chunkNativeLimit
= u8b
->bufNativeLimit
;
1146 ut
->nativeIndexingLimit
= u8b
->bufNILimit
;
1148 // Index into the (now current) chunk
1149 // For this function (swapBuffersAndFail), the requested index
1150 // will always be at either the start or end of the chunk.
1151 if (ix
==u8b
->bufNativeLimit
) {
1152 ut
->chunkOffset
= ut
->chunkLength
;
1154 ut
->chunkOffset
= 0;
1155 U_ASSERT(ix
== u8b
->bufNativeStart
);
1160 // The user has done a seek/access past the start or end
1161 // of the string. Rather than loading data that is likely
1162 // to never be used, just set up a zero-length buffer at
1164 u8b
= (UTF8Buf
*)ut
->q
;
1165 u8b
->bufNativeStart
= ix
;
1166 u8b
->bufNativeLimit
= ix
;
1167 u8b
->bufStartIdx
= 0;
1168 u8b
->bufLimitIdx
= 0;
1169 u8b
->bufNILimit
= 0;
1170 u8b
->toUCharsMapStart
= ix
;
1171 u8b
->mapToNative
[0] = 0;
1172 u8b
->mapToUChars
[0] = 0;
1173 goto swapBuffersAndFail
;
1179 // Move the incoming index to a code point boundary.
1180 U8_SET_CP_START(s8
, 0, ix
);
1182 // Swap the UText buffers.
1183 // We want to fill what was previously the alternate buffer,
1184 // and make what was the current buffer be the new alternate.
1185 UTF8Buf
*u8b
= (UTF8Buf
*)ut
->q
;
1189 int32_t strLen
= ut
->b
;
1190 UBool nulTerminated
= FALSE
;
1192 strLen
= 0x7fffffff;
1193 nulTerminated
= TRUE
;
1196 UChar
*buf
= u8b
->buf
;
1197 uint8_t *mapToNative
= u8b
->mapToNative
;
1198 uint8_t *mapToUChars
= u8b
->mapToUChars
;
1201 UBool seenNonAscii
= FALSE
;
1204 // Fill the chunk buffer and mapping arrays.
1205 while (destIx
<UTF8_TEXT_CHUNK_SIZE
) {
1207 if (c
>0 && c
<0x80) {
1208 // Special case ASCII range for speed.
1209 // zero is excluded to simplify bounds checking.
1210 buf
[destIx
] = (UChar
)c
;
1211 mapToNative
[destIx
] = (uint8_t)(srcIx
- ix
);
1212 mapToUChars
[srcIx
-ix
] = (uint8_t)destIx
;
1216 // General case, handle everything.
1217 if (seenNonAscii
== FALSE
) {
1218 seenNonAscii
= TRUE
;
1219 u8b
->bufNILimit
= destIx
;
1222 int32_t cIx
= srcIx
;
1223 int32_t dIx
= destIx
;
1224 int32_t dIxSaved
= destIx
;
1225 U8_NEXT_OR_FFFD(s8
, srcIx
, strLen
, c
);
1226 if (c
==0 && nulTerminated
) {
1231 U16_APPEND_UNSAFE(buf
, destIx
, c
);
1233 mapToNative
[dIx
++] = (uint8_t)(cIx
- ix
);
1234 } while (dIx
< destIx
);
1237 mapToUChars
[cIx
++ - ix
] = (uint8_t)dIxSaved
;
1238 } while (cIx
< srcIx
);
1240 if (srcIx
>=strLen
) {
1246 // store Native <--> Chunk Map entries for the end of the buffer.
1247 // There is no actual character here, but the index position is valid.
1248 mapToNative
[destIx
] = (uint8_t)(srcIx
- ix
);
1249 mapToUChars
[srcIx
- ix
] = (uint8_t)destIx
;
1251 // fill in Buffer descriptor
1252 u8b
->bufNativeStart
= ix
;
1253 u8b
->bufNativeLimit
= srcIx
;
1254 u8b
->bufStartIdx
= 0;
1255 u8b
->bufLimitIdx
= destIx
;
1256 if (seenNonAscii
== FALSE
) {
1257 u8b
->bufNILimit
= destIx
;
1259 u8b
->toUCharsMapStart
= u8b
->bufNativeStart
;
1261 // Set UText chunk to refer to this buffer.
1262 ut
->chunkContents
= buf
;
1263 ut
->chunkOffset
= 0;
1264 ut
->chunkLength
= u8b
->bufLimitIdx
;
1265 ut
->chunkNativeStart
= u8b
->bufNativeStart
;
1266 ut
->chunkNativeLimit
= u8b
->bufNativeLimit
;
1267 ut
->nativeIndexingLimit
= u8b
->bufNILimit
;
1269 // For zero terminated strings, keep track of the maximum point
1271 if (nulTerminated
&& srcIx
>ut
->c
) {
1274 // We scanned to the end.
1275 // Remember the actual length.
1277 ut
->providerProperties
&= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
1286 // Move the incoming index to a code point boundary.
1287 // Can only do this if the incoming index is somewhere in the interior of the string.
1288 // If index is at the end, there is no character there to look at.
1290 U8_SET_CP_START(s8
, 0, ix
);
1293 // Swap the UText buffers.
1294 // We want to fill what was previously the alternate buffer,
1295 // and make what was the current buffer be the new alternate.
1296 UTF8Buf
*u8b
= (UTF8Buf
*)ut
->q
;
1300 UChar
*buf
= u8b
->buf
;
1301 uint8_t *mapToNative
= u8b
->mapToNative
;
1302 uint8_t *mapToUChars
= u8b
->mapToUChars
;
1303 int32_t toUCharsMapStart
= ix
- (UTF8_TEXT_CHUNK_SIZE
*3 + 1);
1304 int32_t destIx
= UTF8_TEXT_CHUNK_SIZE
+2; // Start in the overflow region
1305 // at end of buffer to leave room
1306 // for a surrogate pair at the
1309 int32_t bufNILimit
= destIx
;
1312 // Map to/from Native Indexes, fill in for the position at the end of
1315 mapToNative
[destIx
] = (uint8_t)(srcIx
- toUCharsMapStart
);
1316 mapToUChars
[srcIx
- toUCharsMapStart
] = (uint8_t)destIx
;
1318 // Fill the chunk buffer
1319 // Work backwards, filling from the end of the buffer towards the front.
1321 while (destIx
>2 && (srcIx
- toUCharsMapStart
> 5) && (srcIx
> 0)) {
1325 // Get last byte of the UTF-8 character
1328 // Special case ASCII range for speed.
1329 buf
[destIx
] = (UChar
)c
;
1330 mapToUChars
[srcIx
- toUCharsMapStart
] = (uint8_t)destIx
;
1331 mapToNative
[destIx
] = (uint8_t)(srcIx
- toUCharsMapStart
);
1333 // General case, handle everything non-ASCII.
1335 int32_t sIx
= srcIx
; // ix of last byte of multi-byte u8 char
1337 // Get the full character from the UTF8 string.
1338 // use code derived from tbe macros in utf8.h
1339 // Leaves srcIx pointing at the first byte of the UTF-8 char.
1341 c
=utf8_prevCharSafeBody(s8
, 0, &srcIx
, c
, -3);
1342 // leaves srcIx at first byte of the multi-byte char.
1344 // Store the character in UTF-16 buffer.
1346 buf
[destIx
] = (UChar
)c
;
1347 mapToNative
[destIx
] = (uint8_t)(srcIx
- toUCharsMapStart
);
1349 buf
[destIx
] = U16_TRAIL(c
);
1350 mapToNative
[destIx
] = (uint8_t)(srcIx
- toUCharsMapStart
);
1351 buf
[--destIx
] = U16_LEAD(c
);
1352 mapToNative
[destIx
] = (uint8_t)(srcIx
- toUCharsMapStart
);
1355 // Fill in the map from native indexes to UChars buf index.
1357 mapToUChars
[sIx
-- - toUCharsMapStart
] = (uint8_t)destIx
;
1358 } while (sIx
>= srcIx
);
1360 // Set native indexing limit to be the current position.
1361 // We are processing a non-ascii, non-native-indexing char now;
1362 // the limit will be here if the rest of the chars to be
1363 // added to this buffer are ascii.
1364 bufNILimit
= destIx
;
1367 u8b
->bufNativeStart
= srcIx
;
1368 u8b
->bufNativeLimit
= ix
;
1369 u8b
->bufStartIdx
= destIx
;
1370 u8b
->bufLimitIdx
= UTF8_TEXT_CHUNK_SIZE
+2;
1371 u8b
->bufNILimit
= bufNILimit
- u8b
->bufStartIdx
;
1372 u8b
->toUCharsMapStart
= toUCharsMapStart
;
1374 ut
->chunkContents
= &buf
[u8b
->bufStartIdx
];
1375 ut
->chunkLength
= u8b
->bufLimitIdx
- u8b
->bufStartIdx
;
1376 ut
->chunkOffset
= ut
->chunkLength
;
1377 ut
->chunkNativeStart
= u8b
->bufNativeStart
;
1378 ut
->chunkNativeLimit
= u8b
->bufNativeLimit
;
1379 ut
->nativeIndexingLimit
= u8b
->bufNILimit
;
1388 // This is a slightly modified copy of u_strFromUTF8,
1389 // Inserts a Replacement Char rather than failing on invalid UTF-8
1390 // Removes unnecessary features.
1393 utext_strFromUTF8(UChar
*dest
,
1394 int32_t destCapacity
,
1395 int32_t *pDestLength
,
1397 int32_t srcLength
, // required. NUL terminated not supported.
1398 UErrorCode
*pErrorCode
1402 UChar
*pDest
= dest
;
1403 UChar
*pDestLimit
= (dest
!=NULL
)?(dest
+destCapacity
):NULL
;
1406 int32_t reqLength
= 0;
1407 uint8_t* pSrc
= (uint8_t*) src
;
1410 while((index
< srcLength
)&&(pDest
<pDestLimit
)){
1415 ch
=utf8_nextCharSafeBody(pSrc
, &index
, srcLength
, ch
, -3);
1417 *(pDest
++)=(UChar
)ch
;
1419 *(pDest
++)=U16_LEAD(ch
);
1420 if(pDest
<pDestLimit
){
1421 *(pDest
++)=U16_TRAIL(ch
);
1429 /* donot fill the dest buffer just count the UChars needed */
1430 while(index
< srcLength
){
1435 ch
=utf8_nextCharSafeBody(pSrc
, &index
, srcLength
, ch
, -3);
1436 reqLength
+=U16_LENGTH(ch
);
1440 reqLength
+=(int32_t)(pDest
- dest
);
1443 *pDestLength
= reqLength
;
1446 /* Terminate the buffer */
1447 u_terminateUChars(dest
,destCapacity
,reqLength
,pErrorCode
);
1454 static int32_t U_CALLCONV
1455 utf8TextExtract(UText
*ut
,
1456 int64_t start
, int64_t limit
,
1457 UChar
*dest
, int32_t destCapacity
,
1458 UErrorCode
*pErrorCode
) {
1459 if(U_FAILURE(*pErrorCode
)) {
1462 if(destCapacity
<0 || (dest
==NULL
&& destCapacity
>0)) {
1463 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
1466 int32_t length
= ut
->b
;
1467 int32_t start32
= pinIndex(start
, length
);
1468 int32_t limit32
= pinIndex(limit
, length
);
1470 if(start32
>limit32
) {
1471 *pErrorCode
=U_INDEX_OUTOFBOUNDS_ERROR
;
1476 // adjust the incoming indexes to land on code point boundaries if needed.
1477 // adjust by no more than three, because that is the largest number of trail bytes
1478 // in a well formed UTF8 character.
1479 const uint8_t *buf
= (const uint8_t *)ut
->context
;
1481 if (start32
< ut
->chunkNativeLimit
) {
1482 for (i
=0; i
<3; i
++) {
1483 if (U8_IS_SINGLE(buf
[start32
]) || U8_IS_LEAD(buf
[start32
]) || start32
==0) {
1490 if (limit32
< ut
->chunkNativeLimit
) {
1491 for (i
=0; i
<3; i
++) {
1492 if (U8_IS_SINGLE(buf
[limit32
]) || U8_IS_LEAD(buf
[limit32
]) || limit32
==0) {
1499 // Do the actual extract.
1500 int32_t destLength
=0;
1501 utext_strFromUTF8(dest
, destCapacity
, &destLength
,
1502 (const char *)ut
->context
+start32
, limit32
-start32
,
1504 utf8TextAccess(ut
, limit32
, TRUE
);
1509 // utf8TextMapOffsetToNative
1511 // Map a chunk (UTF-16) offset to a native index.
1512 static int64_t U_CALLCONV
1513 utf8TextMapOffsetToNative(const UText
*ut
) {
1515 UTF8Buf
*u8b
= (UTF8Buf
*)ut
->p
;
1516 U_ASSERT(ut
->chunkOffset
>ut
->nativeIndexingLimit
&& ut
->chunkOffset
<=ut
->chunkLength
);
1517 int32_t nativeOffset
= u8b
->mapToNative
[ut
->chunkOffset
+ u8b
->bufStartIdx
] + u8b
->toUCharsMapStart
;
1518 U_ASSERT(nativeOffset
>= ut
->chunkNativeStart
&& nativeOffset
<= ut
->chunkNativeLimit
);
1519 return nativeOffset
;
1523 // Map a native index to the corrsponding chunk offset
1525 static int32_t U_CALLCONV
1526 utf8TextMapIndexToUTF16(const UText
*ut
, int64_t index64
) {
1527 U_ASSERT(index64
<= 0x7fffffff);
1528 int32_t index
= (int32_t)index64
;
1529 UTF8Buf
*u8b
= (UTF8Buf
*)ut
->p
;
1530 U_ASSERT(index
>=ut
->chunkNativeStart
+ut
->nativeIndexingLimit
);
1531 U_ASSERT(index
<=ut
->chunkNativeLimit
);
1532 int32_t mapIndex
= index
- u8b
->toUCharsMapStart
;
1533 int32_t offset
= u8b
->mapToUChars
[mapIndex
] - u8b
->bufStartIdx
;
1534 U_ASSERT(offset
>=0 && offset
<=ut
->chunkLength
);
1538 static UText
* U_CALLCONV
1539 utf8TextClone(UText
*dest
, const UText
*src
, UBool deep
, UErrorCode
*status
)
1541 // First do a generic shallow clone. Does everything needed for the UText struct itself.
1542 dest
= shallowTextClone(dest
, src
, status
);
1544 // For deep clones, make a copy of the string.
1545 // The copied storage is owned by the newly created clone.
1547 // TODO: There is an isssue with using utext_nativeLength().
1548 // That function is non-const in cases where the input was NUL terminated
1549 // and the length has not yet been determined.
1550 // This function (clone()) is const.
1551 // There potentially a thread safety issue lurking here.
1553 if (deep
&& U_SUCCESS(*status
)) {
1554 int32_t len
= (int32_t)utext_nativeLength((UText
*)src
);
1555 char *copyStr
= (char *)uprv_malloc(len
+1);
1556 if (copyStr
== NULL
) {
1557 *status
= U_MEMORY_ALLOCATION_ERROR
;
1559 uprv_memcpy(copyStr
, src
->context
, len
+1);
1560 dest
->context
= copyStr
;
1561 dest
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
);
1568 static void U_CALLCONV
1569 utf8TextClose(UText
*ut
) {
1570 // Most of the work of close is done by the generic UText framework close.
1571 // All that needs to be done here is to delete the UTF8 string if the UText
1572 // owns it. This occurs if the UText was created by cloning.
1573 if (ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
)) {
1574 char *s
= (char *)ut
->context
;
1583 static const struct UTextFuncs utf8Funcs
=
1586 0, 0, 0, // Reserved alignment padding
1593 utf8TextMapOffsetToNative
,
1594 utf8TextMapIndexToUTF16
,
1602 static const char gEmptyString
[] = {0};
1604 U_CAPI UText
* U_EXPORT2
1605 utext_openUTF8(UText
*ut
, const char *s
, int64_t length
, UErrorCode
*status
) {
1606 if(U_FAILURE(*status
)) {
1609 if(s
==NULL
&& length
==0) {
1613 if(s
==NULL
|| length
<-1 || length
>INT32_MAX
) {
1614 *status
=U_ILLEGAL_ARGUMENT_ERROR
;
1618 ut
= utext_setup(ut
, sizeof(UTF8Buf
) * 2, status
);
1619 if (U_FAILURE(*status
)) {
1623 ut
->pFuncs
= &utf8Funcs
;
1625 ut
->b
= (int32_t)length
;
1626 ut
->c
= (int32_t)length
;
1629 ut
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
1632 ut
->q
= (char *)ut
->pExtra
+ sizeof(UTF8Buf
);
1644 //------------------------------------------------------------------------------
1646 // UText implementation wrapper for Replaceable (read/write)
1648 // Use of UText data members:
1649 // context pointer to Replaceable.
1650 // p pointer to Replaceable if it is owned by the UText.
1652 //------------------------------------------------------------------------------
1656 // minimum chunk size for this implementation: 3
1657 // to allow for possible trimming for code point boundaries
1658 enum { REP_TEXT_CHUNK_SIZE
=10 };
1663 * +1 to simplify filling with surrogate pair at the end.
1665 UChar s
[REP_TEXT_CHUNK_SIZE
+1];
1671 static UText
* U_CALLCONV
1672 repTextClone(UText
*dest
, const UText
*src
, UBool deep
, UErrorCode
*status
) {
1673 // First do a generic shallow clone. Does everything needed for the UText struct itself.
1674 dest
= shallowTextClone(dest
, src
, status
);
1676 // For deep clones, make a copy of the Replaceable.
1677 // The copied Replaceable storage is owned by the newly created UText clone.
1678 // A non-NULL pointer in UText.p is the signal to the close() function to delete
1681 if (deep
&& U_SUCCESS(*status
)) {
1682 const Replaceable
*replSrc
= (const Replaceable
*)src
->context
;
1683 dest
->context
= replSrc
->clone();
1684 dest
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
);
1686 // with deep clone, the copy is writable, even when the source is not.
1687 dest
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_WRITABLE
);
1693 static void U_CALLCONV
1694 repTextClose(UText
*ut
) {
1695 // Most of the work of close is done by the generic UText framework close.
1696 // All that needs to be done here is delete the Replaceable if the UText
1697 // owns it. This occurs if the UText was created by cloning.
1698 if (ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
)) {
1699 Replaceable
*rep
= (Replaceable
*)ut
->context
;
1706 static int64_t U_CALLCONV
1707 repTextLength(UText
*ut
) {
1708 const Replaceable
*replSrc
= (const Replaceable
*)ut
->context
;
1709 int32_t len
= replSrc
->length();
1714 static UBool U_CALLCONV
1715 repTextAccess(UText
*ut
, int64_t index
, UBool forward
) {
1716 const Replaceable
*rep
=(const Replaceable
*)ut
->context
;
1717 int32_t length
=rep
->length(); // Full length of the input text (bigger than a chunk)
1719 // clip the requested index to the limits of the text.
1720 int32_t index32
= pinIndex(index
, length
);
1721 U_ASSERT(index
<=INT32_MAX
);
1725 * Compute start/limit boundaries around index, for a segment of text
1727 * To allow for the possibility that our user gave an index to the trailing
1728 * half of a surrogate pair, we must request one extra preceding UChar when
1729 * going in the forward direction. This will ensure that the buffer has the
1730 * entire code point at the specified index.
1734 if (index32
>=ut
->chunkNativeStart
&& index32
<ut
->chunkNativeLimit
) {
1735 // Buffer already contains the requested position.
1736 ut
->chunkOffset
= (int32_t)(index
- ut
->chunkNativeStart
);
1739 if (index32
>=length
&& ut
->chunkNativeLimit
==length
) {
1740 // Request for end of string, and buffer already extends up to it.
1741 // Can't get the data, but don't change the buffer.
1742 ut
->chunkOffset
= length
- (int32_t)ut
->chunkNativeStart
;
1746 ut
->chunkNativeLimit
= index
+ REP_TEXT_CHUNK_SIZE
- 1;
1747 // Going forward, so we want to have the buffer with stuff at and beyond
1748 // the requested index. The -1 gets us one code point before the
1749 // requested index also, to handle the case of the index being on
1750 // a trail surrogate of a surrogate pair.
1751 if(ut
->chunkNativeLimit
> length
) {
1752 ut
->chunkNativeLimit
= length
;
1754 // unless buffer ran off end, start is index-1.
1755 ut
->chunkNativeStart
= ut
->chunkNativeLimit
- REP_TEXT_CHUNK_SIZE
;
1756 if(ut
->chunkNativeStart
< 0) {
1757 ut
->chunkNativeStart
= 0;
1760 // Reverse iteration. Fill buffer with data preceding the requested index.
1761 if (index32
>ut
->chunkNativeStart
&& index32
<=ut
->chunkNativeLimit
) {
1762 // Requested position already in buffer.
1763 ut
->chunkOffset
= index32
- (int32_t)ut
->chunkNativeStart
;
1766 if (index32
==0 && ut
->chunkNativeStart
==0) {
1767 // Request for start, buffer already begins at start.
1768 // No data, but keep the buffer as is.
1769 ut
->chunkOffset
= 0;
1773 // Figure out the bounds of the chunk to extract for reverse iteration.
1774 // Need to worry about chunk not splitting surrogate pairs, and while still
1775 // containing the data we need.
1776 // Fix by requesting a chunk that includes an extra UChar at the end.
1777 // If this turns out to be a lead surrogate, we can lop it off and still have
1778 // the data we wanted.
1779 ut
->chunkNativeStart
= index32
+ 1 - REP_TEXT_CHUNK_SIZE
;
1780 if (ut
->chunkNativeStart
< 0) {
1781 ut
->chunkNativeStart
= 0;
1784 ut
->chunkNativeLimit
= index32
+ 1;
1785 if (ut
->chunkNativeLimit
> length
) {
1786 ut
->chunkNativeLimit
= length
;
1790 // Extract the new chunk of text from the Replaceable source.
1791 ReplExtra
*ex
= (ReplExtra
*)ut
->pExtra
;
1792 // UnicodeString with its buffer a writable alias to the chunk buffer
1793 UnicodeString
buffer(ex
->s
, 0 /*buffer length*/, REP_TEXT_CHUNK_SIZE
/*buffer capacity*/);
1794 rep
->extractBetween((int32_t)ut
->chunkNativeStart
, (int32_t)ut
->chunkNativeLimit
, buffer
);
1796 ut
->chunkContents
= ex
->s
;
1797 ut
->chunkLength
= (int32_t)(ut
->chunkNativeLimit
- ut
->chunkNativeStart
);
1798 ut
->chunkOffset
= (int32_t)(index32
- ut
->chunkNativeStart
);
1800 // Surrogate pairs from the input text must not span chunk boundaries.
1801 // If end of chunk could be the start of a surrogate, trim it off.
1802 if (ut
->chunkNativeLimit
< length
&&
1803 U16_IS_LEAD(ex
->s
[ut
->chunkLength
-1])) {
1805 ut
->chunkNativeLimit
--;
1806 if (ut
->chunkOffset
> ut
->chunkLength
) {
1807 ut
->chunkOffset
= ut
->chunkLength
;
1811 // if the first UChar in the chunk could be the trailing half of a surrogate pair,
1813 if(ut
->chunkNativeStart
>0 && U16_IS_TRAIL(ex
->s
[0])) {
1814 ++(ut
->chunkContents
);
1815 ++(ut
->chunkNativeStart
);
1816 --(ut
->chunkLength
);
1817 --(ut
->chunkOffset
);
1820 // adjust the index/chunkOffset to a code point boundary
1821 U16_SET_CP_START(ut
->chunkContents
, 0, ut
->chunkOffset
);
1823 // Use fast indexing for get/setNativeIndex()
1824 ut
->nativeIndexingLimit
= ut
->chunkLength
;
1831 static int32_t U_CALLCONV
1832 repTextExtract(UText
*ut
,
1833 int64_t start
, int64_t limit
,
1834 UChar
*dest
, int32_t destCapacity
,
1835 UErrorCode
*status
) {
1836 const Replaceable
*rep
=(const Replaceable
*)ut
->context
;
1837 int32_t length
=rep
->length();
1839 if(U_FAILURE(*status
)) {
1842 if(destCapacity
<0 || (dest
==NULL
&& destCapacity
>0)) {
1843 *status
=U_ILLEGAL_ARGUMENT_ERROR
;
1846 *status
=U_INDEX_OUTOFBOUNDS_ERROR
;
1850 int32_t start32
= pinIndex(start
, length
);
1851 int32_t limit32
= pinIndex(limit
, length
);
1853 // adjust start, limit if they point to trail half of surrogates
1854 if (start32
<length
&& U16_IS_TRAIL(rep
->charAt(start32
)) &&
1855 U_IS_SUPPLEMENTARY(rep
->char32At(start32
))){
1858 if (limit32
<length
&& U16_IS_TRAIL(rep
->charAt(limit32
)) &&
1859 U_IS_SUPPLEMENTARY(rep
->char32At(limit32
))){
1863 length
=limit32
-start32
;
1864 if(length
>destCapacity
) {
1865 limit32
= start32
+ destCapacity
;
1867 UnicodeString
buffer(dest
, 0, destCapacity
); // writable alias
1868 rep
->extractBetween(start32
, limit32
, buffer
);
1869 repTextAccess(ut
, limit32
, TRUE
);
1871 return u_terminateUChars(dest
, destCapacity
, length
, status
);
1874 static int32_t U_CALLCONV
1875 repTextReplace(UText
*ut
,
1876 int64_t start
, int64_t limit
,
1877 const UChar
*src
, int32_t length
,
1878 UErrorCode
*status
) {
1879 Replaceable
*rep
=(Replaceable
*)ut
->context
;
1882 if(U_FAILURE(*status
)) {
1885 if(src
==NULL
&& length
!=0) {
1886 *status
=U_ILLEGAL_ARGUMENT_ERROR
;
1889 oldLength
=rep
->length(); // will subtract from new length
1891 *status
=U_INDEX_OUTOFBOUNDS_ERROR
;
1895 int32_t start32
= pinIndex(start
, oldLength
);
1896 int32_t limit32
= pinIndex(limit
, oldLength
);
1898 // Snap start & limit to code point boundaries.
1899 if (start32
<oldLength
&& U16_IS_TRAIL(rep
->charAt(start32
)) &&
1900 start32
>0 && U16_IS_LEAD(rep
->charAt(start32
-1)))
1904 if (limit32
<oldLength
&& U16_IS_LEAD(rep
->charAt(limit32
-1)) &&
1905 U16_IS_TRAIL(rep
->charAt(limit32
)))
1910 // Do the actual replace operation using methods of the Replaceable class
1911 UnicodeString
replStr((UBool
)(length
<0), src
, length
); // read-only alias
1912 rep
->handleReplaceBetween(start32
, limit32
, replStr
);
1913 int32_t newLength
= rep
->length();
1914 int32_t lengthDelta
= newLength
- oldLength
;
1916 // Is the UText chunk buffer OK?
1917 if (ut
->chunkNativeLimit
> start32
) {
1918 // this replace operation may have impacted the current chunk.
1919 // invalidate it, which will force a reload on the next access.
1920 invalidateChunk(ut
);
1923 // set the iteration position to the end of the newly inserted replacement text.
1924 int32_t newIndexPos
= limit32
+ lengthDelta
;
1925 repTextAccess(ut
, newIndexPos
, TRUE
);
1931 static void U_CALLCONV
1932 repTextCopy(UText
*ut
,
1933 int64_t start
, int64_t limit
,
1938 Replaceable
*rep
=(Replaceable
*)ut
->context
;
1939 int32_t length
=rep
->length();
1941 if(U_FAILURE(*status
)) {
1944 if (start
>limit
|| (start
<destIndex
&& destIndex
<limit
))
1946 *status
=U_INDEX_OUTOFBOUNDS_ERROR
;
1950 int32_t start32
= pinIndex(start
, length
);
1951 int32_t limit32
= pinIndex(limit
, length
);
1952 int32_t destIndex32
= pinIndex(destIndex
, length
);
1954 // TODO: snap input parameters to code point boundaries.
1957 // move: copy to destIndex, then replace original with nothing
1958 int32_t segLength
=limit32
-start32
;
1959 rep
->copy(start32
, limit32
, destIndex32
);
1960 if(destIndex32
<start32
) {
1964 rep
->handleReplaceBetween(start32
, limit32
, UnicodeString());
1967 rep
->copy(start32
, limit32
, destIndex32
);
1970 // If the change to the text touched the region in the chunk buffer,
1971 // invalidate the buffer.
1972 int32_t firstAffectedIndex
= destIndex32
;
1973 if (move
&& start32
<firstAffectedIndex
) {
1974 firstAffectedIndex
= start32
;
1976 if (firstAffectedIndex
< ut
->chunkNativeLimit
) {
1977 // changes may have affected range covered by the chunk
1978 invalidateChunk(ut
);
1981 // Put iteration position at the newly inserted (moved) block,
1982 int32_t nativeIterIndex
= destIndex32
+ limit32
- start32
;
1983 if (move
&& destIndex32
>start32
) {
1984 // moved a block of text towards the end of the string.
1985 nativeIterIndex
= destIndex32
;
1988 // Set position, reload chunk if needed.
1989 repTextAccess(ut
, nativeIterIndex
, TRUE
);
1992 static const struct UTextFuncs repFuncs
=
1995 0, 0, 0, // Reserved alignment padding
2002 NULL
, // MapOffsetToNative,
2003 NULL
, // MapIndexToUTF16,
2011 U_CAPI UText
* U_EXPORT2
2012 utext_openReplaceable(UText
*ut
, Replaceable
*rep
, UErrorCode
*status
)
2014 if(U_FAILURE(*status
)) {
2018 *status
=U_ILLEGAL_ARGUMENT_ERROR
;
2021 ut
= utext_setup(ut
, sizeof(ReplExtra
), status
);
2023 ut
->providerProperties
= I32_FLAG(UTEXT_PROVIDER_WRITABLE
);
2024 if(rep
->hasMetaData()) {
2025 ut
->providerProperties
|=I32_FLAG(UTEXT_PROVIDER_HAS_META_DATA
);
2028 ut
->pFuncs
= &repFuncs
;
2042 //------------------------------------------------------------------------------
2044 // UText implementation for UnicodeString (read/write) and
2045 // for const UnicodeString (read only)
2046 // (same implementation, only the flags are different)
2048 // Use of UText data members:
2049 // context pointer to UnicodeString
2050 // p pointer to UnicodeString IF this UText owns the string
2051 // and it must be deleted on close(). NULL otherwise.
2053 //------------------------------------------------------------------------------
2058 static UText
* U_CALLCONV
2059 unistrTextClone(UText
*dest
, const UText
*src
, UBool deep
, UErrorCode
*status
) {
2060 // First do a generic shallow clone. Does everything needed for the UText struct itself.
2061 dest
= shallowTextClone(dest
, src
, status
);
2063 // For deep clones, make a copy of the UnicodeSring.
2064 // The copied UnicodeString storage is owned by the newly created UText clone.
2065 // A non-NULL pointer in UText.p is the signal to the close() function to delete
2068 if (deep
&& U_SUCCESS(*status
)) {
2069 const UnicodeString
*srcString
= (const UnicodeString
*)src
->context
;
2070 dest
->context
= new UnicodeString(*srcString
);
2071 dest
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
);
2073 // with deep clone, the copy is writable, even when the source is not.
2074 dest
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_WRITABLE
);
2079 static void U_CALLCONV
2080 unistrTextClose(UText
*ut
) {
2081 // Most of the work of close is done by the generic UText framework close.
2082 // All that needs to be done here is delete the UnicodeString if the UText
2083 // owns it. This occurs if the UText was created by cloning.
2084 if (ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
)) {
2085 UnicodeString
*str
= (UnicodeString
*)ut
->context
;
2092 static int64_t U_CALLCONV
2093 unistrTextLength(UText
*t
) {
2094 return ((const UnicodeString
*)t
->context
)->length();
2098 static UBool U_CALLCONV
2099 unistrTextAccess(UText
*ut
, int64_t index
, UBool forward
) {
2100 int32_t length
= ut
->chunkLength
;
2101 ut
->chunkOffset
= pinIndex(index
, length
);
2103 // Check whether request is at the start or end
2104 UBool retVal
= (forward
&& index
<length
) || (!forward
&& index
>0);
2110 static int32_t U_CALLCONV
2111 unistrTextExtract(UText
*t
,
2112 int64_t start
, int64_t limit
,
2113 UChar
*dest
, int32_t destCapacity
,
2114 UErrorCode
*pErrorCode
) {
2115 const UnicodeString
*us
=(const UnicodeString
*)t
->context
;
2116 int32_t length
=us
->length();
2118 if(U_FAILURE(*pErrorCode
)) {
2121 if(destCapacity
<0 || (dest
==NULL
&& destCapacity
>0)) {
2122 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
2124 if(start
<0 || start
>limit
) {
2125 *pErrorCode
=U_INDEX_OUTOFBOUNDS_ERROR
;
2129 int32_t start32
= start
<length
? us
->getChar32Start((int32_t)start
) : length
;
2130 int32_t limit32
= limit
<length
? us
->getChar32Start((int32_t)limit
) : length
;
2132 length
=limit32
-start32
;
2133 if (destCapacity
>0 && dest
!=NULL
) {
2134 int32_t trimmedLength
= length
;
2135 if(trimmedLength
>destCapacity
) {
2136 trimmedLength
=destCapacity
;
2138 us
->extract(start32
, trimmedLength
, dest
);
2139 t
->chunkOffset
= start32
+trimmedLength
;
2141 t
->chunkOffset
= start32
;
2143 u_terminateUChars(dest
, destCapacity
, length
, pErrorCode
);
2147 static int32_t U_CALLCONV
2148 unistrTextReplace(UText
*ut
,
2149 int64_t start
, int64_t limit
,
2150 const UChar
*src
, int32_t length
,
2151 UErrorCode
*pErrorCode
) {
2152 UnicodeString
*us
=(UnicodeString
*)ut
->context
;
2155 if(U_FAILURE(*pErrorCode
)) {
2158 if(src
==NULL
&& length
!=0) {
2159 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
2162 *pErrorCode
=U_INDEX_OUTOFBOUNDS_ERROR
;
2165 oldLength
=us
->length();
2166 int32_t start32
= pinIndex(start
, oldLength
);
2167 int32_t limit32
= pinIndex(limit
, oldLength
);
2168 if (start32
< oldLength
) {
2169 start32
= us
->getChar32Start(start32
);
2171 if (limit32
< oldLength
) {
2172 limit32
= us
->getChar32Start(limit32
);
2176 us
->replace(start32
, limit32
-start32
, src
, length
);
2177 int32_t newLength
= us
->length();
2179 // Update the chunk description.
2180 ut
->chunkContents
= us
->getBuffer();
2181 ut
->chunkLength
= newLength
;
2182 ut
->chunkNativeLimit
= newLength
;
2183 ut
->nativeIndexingLimit
= newLength
;
2185 // Set iteration position to the point just following the newly inserted text.
2186 int32_t lengthDelta
= newLength
- oldLength
;
2187 ut
->chunkOffset
= limit32
+ lengthDelta
;
2192 static void U_CALLCONV
2193 unistrTextCopy(UText
*ut
,
2194 int64_t start
, int64_t limit
,
2197 UErrorCode
*pErrorCode
) {
2198 UnicodeString
*us
=(UnicodeString
*)ut
->context
;
2199 int32_t length
=us
->length();
2201 if(U_FAILURE(*pErrorCode
)) {
2204 int32_t start32
= pinIndex(start
, length
);
2205 int32_t limit32
= pinIndex(limit
, length
);
2206 int32_t destIndex32
= pinIndex(destIndex
, length
);
2208 if( start32
>limit32
|| (start32
<destIndex32
&& destIndex32
<limit32
)) {
2209 *pErrorCode
=U_INDEX_OUTOFBOUNDS_ERROR
;
2214 // move: copy to destIndex, then replace original with nothing
2215 int32_t segLength
=limit32
-start32
;
2216 us
->copy(start32
, limit32
, destIndex32
);
2217 if(destIndex32
<start32
) {
2220 us
->replace(start32
, segLength
, NULL
, 0);
2223 us
->copy(start32
, limit32
, destIndex32
);
2226 // update chunk description, set iteration position.
2227 ut
->chunkContents
= us
->getBuffer();
2229 // copy operation, string length grows
2230 ut
->chunkLength
+= limit32
-start32
;
2231 ut
->chunkNativeLimit
= ut
->chunkLength
;
2232 ut
->nativeIndexingLimit
= ut
->chunkLength
;
2235 // Iteration position to end of the newly inserted text.
2236 ut
->chunkOffset
= destIndex32
+limit32
-start32
;
2237 if (move
&& destIndex32
>start32
) {
2238 ut
->chunkOffset
= destIndex32
;
2243 static const struct UTextFuncs unistrFuncs
=
2246 0, 0, 0, // Reserved alignment padding
2253 NULL
, // MapOffsetToNative,
2254 NULL
, // MapIndexToUTF16,
2266 U_CAPI UText
* U_EXPORT2
2267 utext_openUnicodeString(UText
*ut
, UnicodeString
*s
, UErrorCode
*status
) {
2268 ut
= utext_openConstUnicodeString(ut
, s
, status
);
2269 if (U_SUCCESS(*status
)) {
2270 ut
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_WRITABLE
);
2277 U_CAPI UText
* U_EXPORT2
2278 utext_openConstUnicodeString(UText
*ut
, const UnicodeString
*s
, UErrorCode
*status
) {
2279 if (U_SUCCESS(*status
) && s
->isBogus()) {
2280 // The UnicodeString is bogus, but we still need to detach the UText
2281 // from whatever it was hooked to before, if anything.
2282 utext_openUChars(ut
, NULL
, 0, status
);
2283 *status
= U_ILLEGAL_ARGUMENT_ERROR
;
2286 ut
= utext_setup(ut
, 0, status
);
2287 // note: use the standard (writable) function table for UnicodeString.
2288 // The flag settings disable writing, so having the functions in
2289 // the table is harmless.
2290 if (U_SUCCESS(*status
)) {
2291 ut
->pFuncs
= &unistrFuncs
;
2293 ut
->providerProperties
= I32_FLAG(UTEXT_PROVIDER_STABLE_CHUNKS
);
2294 ut
->chunkContents
= s
->getBuffer();
2295 ut
->chunkLength
= s
->length();
2296 ut
->chunkNativeStart
= 0;
2297 ut
->chunkNativeLimit
= ut
->chunkLength
;
2298 ut
->nativeIndexingLimit
= ut
->chunkLength
;
2303 //------------------------------------------------------------------------------
2305 // UText implementation for const UChar * strings
2307 // Use of UText data members:
2308 // context pointer to UnicodeString
2309 // a length. -1 if not yet known.
2311 // TODO: support 64 bit lengths.
2313 //------------------------------------------------------------------------------
2318 static UText
* U_CALLCONV
2319 ucstrTextClone(UText
*dest
, const UText
* src
, UBool deep
, UErrorCode
* status
) {
2320 // First do a generic shallow clone.
2321 dest
= shallowTextClone(dest
, src
, status
);
2323 // For deep clones, make a copy of the string.
2324 // The copied storage is owned by the newly created clone.
2325 // A non-NULL pointer in UText.p is the signal to the close() function to delete
2328 if (deep
&& U_SUCCESS(*status
)) {
2329 U_ASSERT(utext_nativeLength(dest
) < INT32_MAX
);
2330 int32_t len
= (int32_t)utext_nativeLength(dest
);
2332 // The cloned string IS going to be NUL terminated, whether or not the original was.
2333 const UChar
*srcStr
= (const UChar
*)src
->context
;
2334 UChar
*copyStr
= (UChar
*)uprv_malloc((len
+1) * sizeof(UChar
));
2335 if (copyStr
== NULL
) {
2336 *status
= U_MEMORY_ALLOCATION_ERROR
;
2339 for (i
=0; i
<len
; i
++) {
2340 copyStr
[i
] = srcStr
[i
];
2343 dest
->context
= copyStr
;
2344 dest
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
);
2351 static void U_CALLCONV
2352 ucstrTextClose(UText
*ut
) {
2353 // Most of the work of close is done by the generic UText framework close.
2354 // All that needs to be done here is delete the string if the UText
2355 // owns it. This occurs if the UText was created by cloning.
2356 if (ut
->providerProperties
& I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT
)) {
2357 UChar
*s
= (UChar
*)ut
->context
;
2365 static int64_t U_CALLCONV
2366 ucstrTextLength(UText
*ut
) {
2368 // null terminated, we don't yet know the length. Scan for it.
2369 // Access is not convenient for doing this
2370 // because the current interation postion can't be changed.
2371 const UChar
*str
= (const UChar
*)ut
->context
;
2373 if (str
[ut
->chunkNativeLimit
] == 0) {
2376 ut
->chunkNativeLimit
++;
2378 ut
->a
= ut
->chunkNativeLimit
;
2379 ut
->chunkLength
= (int32_t)ut
->chunkNativeLimit
;
2380 ut
->nativeIndexingLimit
= ut
->chunkLength
;
2381 ut
->providerProperties
&= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
2387 static UBool U_CALLCONV
2388 ucstrTextAccess(UText
*ut
, int64_t index
, UBool forward
) {
2389 const UChar
*str
= (const UChar
*)ut
->context
;
2391 // pin the requested index to the bounds of the string,
2392 // and set current iteration position.
2395 } else if (index
< ut
->chunkNativeLimit
) {
2396 // The request data is within the chunk as it is known so far.
2397 // Put index on a code point boundary.
2398 U16_SET_CP_START(str
, 0, index
);
2399 } else if (ut
->a
>= 0) {
2400 // We know the length of this string, and the user is requesting something
2401 // at or beyond the length. Pin the requested index to the length.
2404 // Null terminated string, length not yet known, and the requested index
2405 // is beyond where we have scanned so far.
2406 // Scan to 32 UChars beyond the requested index. The strategy here is
2407 // to avoid fully scanning a long string when the caller only wants to
2408 // see a few characters at its beginning.
2409 int32_t scanLimit
= (int32_t)index
+ 32;
2410 if ((index
+ 32)>INT32_MAX
|| (index
+ 32)<0 ) { // note: int64 expression
2411 scanLimit
= INT32_MAX
;
2414 int32_t chunkLimit
= (int32_t)ut
->chunkNativeLimit
;
2415 for (; chunkLimit
<scanLimit
; chunkLimit
++) {
2416 if (str
[chunkLimit
] == 0) {
2417 // We found the end of the string. Remember it, pin the requested index to it,
2418 // and bail out of here.
2420 ut
->chunkLength
= chunkLimit
;
2421 ut
->nativeIndexingLimit
= chunkLimit
;
2422 if (index
>= chunkLimit
) {
2425 U16_SET_CP_START(str
, 0, index
);
2428 ut
->chunkNativeLimit
= chunkLimit
;
2429 ut
->providerProperties
&= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
2433 // We scanned through the next batch of UChars without finding the end.
2434 U16_SET_CP_START(str
, 0, index
);
2435 if (chunkLimit
== INT32_MAX
) {
2436 // Scanned to the limit of a 32 bit length.
2437 // Forceably trim the overlength string back so length fits in int32
2438 // TODO: add support for 64 bit strings.
2440 ut
->chunkLength
= chunkLimit
;
2441 ut
->nativeIndexingLimit
= chunkLimit
;
2442 if (index
> chunkLimit
) {
2445 ut
->chunkNativeLimit
= chunkLimit
;
2446 ut
->providerProperties
&= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
2448 // The endpoint of a chunk must not be left in the middle of a surrogate pair.
2449 // If the current end is on a lead surrogate, back the end up by one.
2450 // It doesn't matter if the end char happens to be an unpaired surrogate,
2451 // and it's simpler not to worry about it.
2452 if (U16_IS_LEAD(str
[chunkLimit
-1])) {
2455 // Null-terminated chunk with end still unknown.
2456 // Update the chunk length to reflect what has been scanned thus far.
2457 // That the full length is still unknown is (still) flagged by
2459 ut
->chunkNativeLimit
= chunkLimit
;
2460 ut
->nativeIndexingLimit
= chunkLimit
;
2461 ut
->chunkLength
= chunkLimit
;
2466 U_ASSERT(index
<=INT32_MAX
);
2467 ut
->chunkOffset
= (int32_t)index
;
2469 // Check whether request is at the start or end
2470 UBool retVal
= (forward
&& index
<ut
->chunkNativeLimit
) || (!forward
&& index
>0);
2476 static int32_t U_CALLCONV
2477 ucstrTextExtract(UText
*ut
,
2478 int64_t start
, int64_t limit
,
2479 UChar
*dest
, int32_t destCapacity
,
2480 UErrorCode
*pErrorCode
)
2482 if(U_FAILURE(*pErrorCode
)) {
2485 if(destCapacity
<0 || (dest
==NULL
&& destCapacity
>0) || start
>limit
) {
2486 *pErrorCode
=U_ILLEGAL_ARGUMENT_ERROR
;
2490 //const UChar *s=(const UChar *)ut->context;
2496 // Access the start. Does two things we need:
2497 // Pins 'start' to the length of the string, if it came in out-of-bounds.
2498 // Snaps 'start' to the beginning of a code point.
2499 ucstrTextAccess(ut
, start
, TRUE
);
2500 const UChar
*s
=ut
->chunkContents
;
2501 start32
= ut
->chunkOffset
;
2503 int32_t strLength
=(int32_t)ut
->a
;
2504 if (strLength
>= 0) {
2505 limit32
= pinIndex(limit
, strLength
);
2507 limit32
= pinIndex(limit
, INT32_MAX
);
2510 for (si
=start32
; si
<limit32
; si
++) {
2511 if (strLength
<0 && s
[si
]==0) {
2512 // Just hit the end of a null-terminated string.
2513 ut
->a
= si
; // set string length for this UText
2514 ut
->chunkNativeLimit
= si
;
2515 ut
->chunkLength
= si
;
2516 ut
->nativeIndexingLimit
= si
;
2520 U_ASSERT(di
>=0); /* to ensure di never exceeds INT32_MAX, which must not happen logically */
2521 if (di
<destCapacity
) {
2522 // only store if there is space.
2526 // We have filled the destination buffer, and the string length is known.
2527 // Cut the loop short. There is no need to scan string termination.
2528 di
= limit32
- start32
;
2536 // If the limit index points to a lead surrogate of a pair,
2537 // add the corresponding trail surrogate to the destination.
2538 if (si
>0 && U16_IS_LEAD(s
[si
-1]) &&
2539 ((si
<strLength
|| strLength
<0) && U16_IS_TRAIL(s
[si
])))
2541 if (di
<destCapacity
) {
2542 // store only if there is space in the output buffer.
2543 dest
[di
++] = s
[si
++];
2547 // Put iteration position at the point just following the extracted text
2548 ut
->chunkOffset
= uprv_min(strLength
, start32
+ destCapacity
);
2550 // Add a terminating NUL if space in the buffer permits,
2551 // and set the error status as required.
2552 u_terminateUChars(dest
, destCapacity
, di
, pErrorCode
);
2556 static const struct UTextFuncs ucstrFuncs
=
2559 0, 0, 0, // Reserved alignment padding
2566 NULL
, // MapOffsetToNative,
2567 NULL
, // MapIndexToUTF16,
2576 static const UChar gEmptyUString
[] = {0};
2578 U_CAPI UText
* U_EXPORT2
2579 utext_openUChars(UText
*ut
, const UChar
*s
, int64_t length
, UErrorCode
*status
) {
2580 if (U_FAILURE(*status
)) {
2583 if(s
==NULL
&& length
==0) {
2586 if (s
==NULL
|| length
< -1 || length
>INT32_MAX
) {
2587 *status
= U_ILLEGAL_ARGUMENT_ERROR
;
2590 ut
= utext_setup(ut
, 0, status
);
2591 if (U_SUCCESS(*status
)) {
2592 ut
->pFuncs
= &ucstrFuncs
;
2594 ut
->providerProperties
= I32_FLAG(UTEXT_PROVIDER_STABLE_CHUNKS
);
2596 ut
->providerProperties
|= I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE
);
2599 ut
->chunkContents
= s
;
2600 ut
->chunkNativeStart
= 0;
2601 ut
->chunkNativeLimit
= length
>=0? length
: 0;
2602 ut
->chunkLength
= (int32_t)ut
->chunkNativeLimit
;
2603 ut
->chunkOffset
= 0;
2604 ut
->nativeIndexingLimit
= ut
->chunkLength
;
2610 //------------------------------------------------------------------------------
2612 // UText implementation for text from ICU CharacterIterators
2614 // Use of UText data members:
2615 // context pointer to the CharacterIterator
2616 // a length of the full text.
2617 // p pointer to buffer 1
2618 // b start index of local buffer 1 contents
2619 // q pointer to buffer 2
2620 // c start index of local buffer 2 contents
2621 // r pointer to the character iterator if the UText owns it.
2624 //------------------------------------------------------------------------------
2625 #define CIBufSize 16
2628 static void U_CALLCONV
2629 charIterTextClose(UText
*ut
) {
2630 // Most of the work of close is done by the generic UText framework close.
2631 // All that needs to be done here is delete the CharacterIterator if the UText
2632 // owns it. This occurs if the UText was created by cloning.
2633 CharacterIterator
*ci
= (CharacterIterator
*)ut
->r
;
2638 static int64_t U_CALLCONV
2639 charIterTextLength(UText
*ut
) {
2640 return (int32_t)ut
->a
;
2643 static UBool U_CALLCONV
2644 charIterTextAccess(UText
*ut
, int64_t index
, UBool forward
) {
2645 CharacterIterator
*ci
= (CharacterIterator
*)ut
->context
;
2647 int32_t clippedIndex
= (int32_t)index
;
2648 if (clippedIndex
<0) {
2650 } else if (clippedIndex
>=ut
->a
) {
2651 clippedIndex
=(int32_t)ut
->a
;
2653 int32_t neededIndex
= clippedIndex
;
2654 if (!forward
&& neededIndex
>0) {
2655 // reverse iteration, want the position just before what was asked for.
2657 } else if (forward
&& neededIndex
==ut
->a
&& neededIndex
>0) {
2658 // Forward iteration, don't ask for something past the end of the text.
2662 // Find the native index of the start of the buffer containing what we want.
2663 neededIndex
-= neededIndex
% CIBufSize
;
2666 UBool needChunkSetup
= TRUE
;
2668 if (ut
->chunkNativeStart
== neededIndex
) {
2669 // The buffer we want is already the current chunk.
2670 needChunkSetup
= FALSE
;
2671 } else if (ut
->b
== neededIndex
) {
2672 // The first buffer (buffer p) has what we need.
2673 buf
= (UChar
*)ut
->p
;
2674 } else if (ut
->c
== neededIndex
) {
2675 // The second buffer (buffer q) has what we need.
2676 buf
= (UChar
*)ut
->q
;
2678 // Neither buffer already has what we need.
2679 // Load new data from the character iterator.
2680 // Use the buf that is not the current buffer.
2681 buf
= (UChar
*)ut
->p
;
2682 if (ut
->p
== ut
->chunkContents
) {
2683 buf
= (UChar
*)ut
->q
;
2685 ci
->setIndex(neededIndex
);
2686 for (i
=0; i
<CIBufSize
; i
++) {
2687 buf
[i
] = ci
->nextPostInc();
2688 if (i
+neededIndex
> ut
->a
) {
2694 // We have a buffer with the data we need.
2695 // Set it up as the current chunk, if it wasn't already.
2696 if (needChunkSetup
) {
2697 ut
->chunkContents
= buf
;
2698 ut
->chunkLength
= CIBufSize
;
2699 ut
->chunkNativeStart
= neededIndex
;
2700 ut
->chunkNativeLimit
= neededIndex
+ CIBufSize
;
2701 if (ut
->chunkNativeLimit
> ut
->a
) {
2702 ut
->chunkNativeLimit
= ut
->a
;
2703 ut
->chunkLength
= (int32_t)(ut
->chunkNativeLimit
)-(int32_t)(ut
->chunkNativeStart
);
2705 ut
->nativeIndexingLimit
= ut
->chunkLength
;
2706 U_ASSERT(ut
->chunkOffset
>=0 && ut
->chunkOffset
<=CIBufSize
);
2708 ut
->chunkOffset
= clippedIndex
- (int32_t)ut
->chunkNativeStart
;
2709 UBool success
= (forward
? ut
->chunkOffset
<ut
->chunkLength
: ut
->chunkOffset
>0);
2713 static UText
* U_CALLCONV
2714 charIterTextClone(UText
*dest
, const UText
*src
, UBool deep
, UErrorCode
* status
) {
2715 if (U_FAILURE(*status
)) {
2720 // There is no CharacterIterator API for cloning the underlying text storage.
2721 *status
= U_UNSUPPORTED_ERROR
;
2724 CharacterIterator
*srcCI
=(CharacterIterator
*)src
->context
;
2725 srcCI
= srcCI
->clone();
2726 dest
= utext_openCharacterIterator(dest
, srcCI
, status
);
2727 // cast off const on getNativeIndex.
2728 // For CharacterIterator based UTexts, this is safe, the operation is const.
2729 int64_t ix
= utext_getNativeIndex((UText
*)src
);
2730 utext_setNativeIndex(dest
, ix
);
2731 dest
->r
= srcCI
; // flags that this UText owns the CharacterIterator
2736 static int32_t U_CALLCONV
2737 charIterTextExtract(UText
*ut
,
2738 int64_t start
, int64_t limit
,
2739 UChar
*dest
, int32_t destCapacity
,
2742 if(U_FAILURE(*status
)) {
2745 if(destCapacity
<0 || (dest
==NULL
&& destCapacity
>0) || start
>limit
) {
2746 *status
=U_ILLEGAL_ARGUMENT_ERROR
;
2749 int32_t length
= (int32_t)ut
->a
;
2750 int32_t start32
= pinIndex(start
, length
);
2751 int32_t limit32
= pinIndex(limit
, length
);
2756 CharacterIterator
*ci
= (CharacterIterator
*)ut
->context
;
2757 ci
->setIndex32(start32
); // Moves ix to lead of surrogate pair, if needed.
2758 srci
= ci
->getIndex();
2760 while (srci
<limit32
) {
2761 UChar32 c
= ci
->next32PostInc();
2762 int32_t len
= U16_LENGTH(c
);
2763 U_ASSERT(desti
+len
>0); /* to ensure desti+len never exceeds MAX_INT32, which must not happen logically */
2764 if (desti
+len
<= destCapacity
) {
2765 U16_APPEND_UNSAFE(dest
, desti
, c
);
2766 copyLimit
= srci
+len
;
2769 *status
= U_BUFFER_OVERFLOW_ERROR
;
2774 charIterTextAccess(ut
, copyLimit
, TRUE
);
2776 u_terminateUChars(dest
, destCapacity
, desti
, status
);
2780 static const struct UTextFuncs charIterFuncs
=
2783 0, 0, 0, // Reserved alignment padding
2787 charIterTextExtract
,
2790 NULL
, // MapOffsetToNative,
2791 NULL
, // MapIndexToUTF16,
2800 U_CAPI UText
* U_EXPORT2
2801 utext_openCharacterIterator(UText
*ut
, CharacterIterator
*ci
, UErrorCode
*status
) {
2802 if (U_FAILURE(*status
)) {
2806 if (ci
->startIndex() > 0) {
2807 // No support for CharacterIterators that do not start indexing from zero.
2808 *status
= U_UNSUPPORTED_ERROR
;
2812 // Extra space in UText for 2 buffers of CIBufSize UChars each.
2813 int32_t extraSpace
= 2 * CIBufSize
* sizeof(UChar
);
2814 ut
= utext_setup(ut
, extraSpace
, status
);
2815 if (U_SUCCESS(*status
)) {
2816 ut
->pFuncs
= &charIterFuncs
;
2818 ut
->providerProperties
= 0;
2819 ut
->a
= ci
->endIndex(); // Length of text
2820 ut
->p
= ut
->pExtra
; // First buffer
2821 ut
->b
= -1; // Native index of first buffer contents
2822 ut
->q
= (UChar
*)ut
->pExtra
+CIBufSize
; // Second buffer
2823 ut
->c
= -1; // Native index of second buffer contents
2825 // Initialize current chunk contents to be empty.
2826 // First access will fault something in.
2827 // Note: The initial nativeStart and chunkOffset must sum to zero
2828 // so that getNativeIndex() will correctly compute to zero
2829 // if no call to Access() has ever been made. They can't be both
2830 // zero without Access() thinking that the chunk is valid.
2831 ut
->chunkContents
= (UChar
*)ut
->p
;
2832 ut
->chunkNativeStart
= -1;
2833 ut
->chunkOffset
= 1;
2834 ut
->chunkNativeLimit
= 0;
2835 ut
->chunkLength
= 0;
2836 ut
->nativeIndexingLimit
= ut
->chunkOffset
; // enables native indexing