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      1 /*
      2 *******************************************************************************
      3 *
      4 *   Copyright (C) 2005-2012, International Business Machines
      5 *   Corporation and others.  All Rights Reserved.
      6 *
      7 *******************************************************************************
      8 *   file name:  utext.cpp
      9 *   encoding:   US-ASCII
     10 *   tab size:   8 (not used)
     11 *   indentation:4
     12 *
     13 *   created on: 2005apr12
     14 *   created by: Markus W. Scherer
     15 */
     16 
     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"
     25 #include "ustr_imp.h"
     26 #include "cmemory.h"
     27 #include "cstring.h"
     28 #include "uassert.h"
     29 #include "putilimp.h"
     30 
     31 U_NAMESPACE_USE
     32 
     33 #define I32_FLAG(bitIndex) ((int32_t)1<<(bitIndex))
     34 
     35 
     36 static UBool
     37 utext_access(UText *ut, int64_t index, UBool forward) {
     38     return ut->pFuncs->access(ut, index, forward);
     39 }
     40 
     41 
     42 
     43 U_CAPI UBool U_EXPORT2
     44 utext_moveIndex32(UText *ut, int32_t delta) {
     45     UChar32  c;
     46     if (delta > 0) {
     47         do {
     48             if(ut->chunkOffset>=ut->chunkLength && !utext_access(ut, ut->chunkNativeLimit, TRUE)) {
     49                 return FALSE;
     50             }
     51             c = ut->chunkContents[ut->chunkOffset];
     52             if (U16_IS_SURROGATE(c)) {
     53                 c = utext_next32(ut);
     54                 if (c == U_SENTINEL) {
     55                     return FALSE;
     56                 }
     57             } else {
     58                 ut->chunkOffset++;
     59             }
     60         } while(--delta>0);
     61 
     62     } else if (delta<0) {
     63         do {
     64             if(ut->chunkOffset<=0 && !utext_access(ut, ut->chunkNativeStart, FALSE)) {
     65                 return FALSE;
     66             }
     67             c = ut->chunkContents[ut->chunkOffset-1];
     68             if (U16_IS_SURROGATE(c)) {
     69                 c = utext_previous32(ut);
     70                 if (c == U_SENTINEL) {
     71                     return FALSE;
     72                 }
     73             } else {
     74                 ut->chunkOffset--;
     75             }
     76         } while(++delta<0);
     77     }
     78 
     79     return TRUE;
     80 }
     81 
     82 
     83 U_CAPI int64_t U_EXPORT2
     84 utext_nativeLength(UText *ut) {
     85     return ut->pFuncs->nativeLength(ut);
     86 }
     87 
     88 
     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;
     92     return r;
     93 }
     94 
     95 
     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;
    100     } else {
    101         return ut->pFuncs->mapOffsetToNative(ut);
    102     }
    103 }
    104 
    105 
    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) {
    115         // utf-16 indexing.
    116         ut->chunkOffset=(int32_t)(index-ut->chunkNativeStart);
    117     } else {
    118          ut->chunkOffset=ut->pFuncs->mapNativeIndexToUTF16(ut, index);
    119     }
    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);
    127             }
    128             if (ut->chunkOffset>0) {
    129                 UChar lead = ut->chunkContents[ut->chunkOffset-1];
    130                 if (U16_IS_LEAD(lead)) {
    131                     ut->chunkOffset--;
    132                 }
    133             }
    134         }
    135     }
    136 }
    137 
    138 
    139 
    140 U_CAPI int64_t U_EXPORT2
    141 utext_getPreviousNativeIndex(UText *ut) {
    142     //
    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.
    146     //
    147     int32_t i = ut->chunkOffset - 1;
    148     int64_t result;
    149     if (i >= 0) {
    150         UChar c = ut->chunkContents[i];
    151         if (U16_IS_TRAIL(c) == FALSE) {
    152             if (i <= ut->nativeIndexingLimit) {
    153                 result = ut->chunkNativeStart + i;
    154             } else {
    155                 ut->chunkOffset = i;
    156                 result = ut->pFuncs->mapOffsetToNative(ut);
    157                 ut->chunkOffset++;
    158             }
    159             return result;
    160         }
    161     }
    162 
    163     // If at the start of text, simply return 0.
    164     if (ut->chunkOffset==0 && ut->chunkNativeStart==0) {
    165         return 0;
    166     }
    167 
    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.
    170     //
    171     utext_previous32(ut);
    172     result = UTEXT_GETNATIVEINDEX(ut);
    173     utext_next32(ut);
    174     return result;
    175 }
    176 
    177 
    178 //
    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.
    182 //
    183 U_CAPI UChar32 U_EXPORT2
    184 utext_current32(UText *ut) {
    185     UChar32  c;
    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.
    190             return U_SENTINEL;
    191         }
    192     }
    193 
    194     c = ut->chunkContents[ut->chunkOffset];
    195     if (U16_IS_LEAD(c) == FALSE) {
    196         // Normal, non-supplementary case.
    197         return c;
    198     }
    199 
    200     //
    201     //  Possible supplementary char.
    202     //
    203     UChar32   trail = 0;
    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];
    208     } else {
    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
    212         //     original one.
    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];
    220         }
    221         UBool r = ut->pFuncs->access(ut, nativePosition, FALSE);  // reverse iteration flag loads preceding chunk
    222         U_ASSERT(r==TRUE);
    223         ut->chunkOffset = originalOffset;
    224         if(!r) {
    225             return U_SENTINEL;
    226         }
    227     }
    228 
    229     if (U16_IS_TRAIL(trail)) {
    230         supplementaryC = U16_GET_SUPPLEMENTARY(c, trail);
    231     }
    232     return supplementaryC;
    233 
    234 }
    235 
    236 
    237 U_CAPI UChar32 U_EXPORT2
    238 utext_char32At(UText *ut, int64_t nativeIndex) {
    239     UChar32 c = U_SENTINEL;
    240 
    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) {
    246             return c;
    247         }
    248     }
    249 
    250 
    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);
    258         }
    259     }
    260     return c;
    261 }
    262 
    263 
    264 U_CAPI UChar32 U_EXPORT2
    265 utext_next32(UText *ut) {
    266     UChar32       c;
    267 
    268     if (ut->chunkOffset >= ut->chunkLength) {
    269         if (ut->pFuncs->access(ut, ut->chunkNativeLimit, TRUE) == FALSE) {
    270             return U_SENTINEL;
    271         }
    272     }
    273 
    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.)
    279         return c;
    280     }
    281 
    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.
    286             return c;
    287         }
    288     }
    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.
    295         return c;
    296     }
    297 
    298     UChar32 supplementary = U16_GET_SUPPLEMENTARY(c, trail);
    299     ut->chunkOffset++;   // move iteration position over the trail surrogate.
    300     return supplementary;
    301     }
    302 
    303 
    304 U_CAPI UChar32 U_EXPORT2
    305 utext_previous32(UText *ut) {
    306     UChar32       c;
    307 
    308     if (ut->chunkOffset <= 0) {
    309         if (ut->pFuncs->access(ut, ut->chunkNativeStart, FALSE) == FALSE) {
    310             return U_SENTINEL;
    311         }
    312     }
    313     ut->chunkOffset--;
    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.)
    319         return c;
    320     }
    321 
    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.
    326             return c;
    327         }
    328     }
    329 
    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
    334         return c;
    335     }
    336 
    337     UChar32 supplementary = U16_GET_SUPPLEMENTARY(lead, c);
    338     ut->chunkOffset--;   // move iteration position over the lead surrogate.
    339     return supplementary;
    340 }
    341 
    342 
    343 
    344 U_CAPI UChar32 U_EXPORT2
    345 utext_next32From(UText *ut, int64_t index) {
    346     UChar32       c      = U_SENTINEL;
    347 
    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
    352             return U_SENTINEL;
    353         }
    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);
    357     } else {
    358         // Desired position is in chunk, with non-UTF16 indexing.
    359         ut->chunkOffset = ut->pFuncs->mapNativeIndexToUTF16(ut, index);
    360     }
    361 
    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);
    368     }
    369     return c;
    370 }
    371 
    372 
    373 U_CAPI UChar32 U_EXPORT2
    374 utext_previous32From(UText *ut, int64_t index) {
    375     //
    376     //  Return the character preceding the specified index.
    377     //  Leave the iteration position at the start of the character that was returned.
    378     //
    379     UChar32     cPrev;    // The character preceding cCurr, which is what we will return.
    380 
    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.
    387     //
    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
    392             return U_SENTINEL;
    393         }
    394     } else if(index - ut->chunkNativeStart <= (int64_t)ut->nativeIndexingLimit) {
    395         // Direct UTF-16 indexing.
    396         ut->chunkOffset = (int32_t)(index - ut->chunkNativeStart);
    397     } else {
    398         ut->chunkOffset=ut->pFuncs->mapNativeIndexToUTF16(ut, index);
    399         if (ut->chunkOffset==0 && !ut->pFuncs->access(ut, index, FALSE)) {
    400             // no chunk available here
    401             return U_SENTINEL;
    402         }
    403     }
    404 
    405     //
    406     // Simple case with no surrogates.
    407     //
    408     ut->chunkOffset--;
    409     cPrev = ut->chunkContents[ut->chunkOffset];
    410 
    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);
    416     }
    417     return cPrev;
    418 }
    419 
    420 
    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);
    427              }
    428 
    429 
    430 
    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.
    437             return FALSE;
    438     }
    439 
    440     if (a->pFuncs != b->pFuncs) {
    441         // Different types of text providers.
    442         return FALSE;
    443     }
    444 
    445     if (a->context != b->context) {
    446         // Different sources (different strings)
    447         return FALSE;
    448     }
    449     if (utext_getNativeIndex(a) != utext_getNativeIndex(b)) {
    450         // Different current position in the string.
    451         return FALSE;
    452     }
    453 
    454     return TRUE;
    455 }
    456 
    457 U_CAPI UBool U_EXPORT2
    458 utext_isWritable(const UText *ut)
    459 {
    460     UBool b = (ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_WRITABLE)) != 0;
    461     return b;
    462 }
    463 
    464 
    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));
    469 }
    470 
    471 
    472 U_CAPI UBool U_EXPORT2
    473 utext_hasMetaData(const UText *ut)
    474 {
    475     UBool b = (ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_HAS_META_DATA)) != 0;
    476     return b;
    477 }
    478 
    479 
    480 
    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,
    485              UErrorCode *status)
    486 {
    487     if (U_FAILURE(*status)) {
    488         return 0;
    489     }
    490     if ((ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_WRITABLE)) == 0) {
    491         *status = U_NO_WRITE_PERMISSION;
    492         return 0;
    493     }
    494     int32_t i = ut->pFuncs->replace(ut, nativeStart, nativeLimit, replacementText, replacementLength, status);
    495     return i;
    496 }
    497 
    498 U_CAPI void U_EXPORT2
    499 utext_copy(UText *ut,
    500           int64_t nativeStart, int64_t nativeLimit,
    501           int64_t destIndex,
    502           UBool move,
    503           UErrorCode *status)
    504 {
    505     if (U_FAILURE(*status)) {
    506         return;
    507     }
    508     if ((ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_WRITABLE)) == 0) {
    509         *status = U_NO_WRITE_PERMISSION;
    510         return;
    511     }
    512     ut->pFuncs->copy(ut, nativeStart, nativeLimit, destIndex, move, status);
    513 }
    514 
    515 
    516 
    517 U_CAPI UText * U_EXPORT2
    518 utext_clone(UText *dest, const UText *src, UBool deep, UBool readOnly, UErrorCode *status) {
    519     UText *result;
    520     result = src->pFuncs->clone(dest, src, deep, status);
    521     if (readOnly) {
    522         utext_freeze(result);
    523     }
    524     return result;
    525 }
    526 
    527 
    528 
    529 //------------------------------------------------------------------------------
    530 //
    531 //   UText common functions implementation
    532 //
    533 //------------------------------------------------------------------------------
    534 
    535 //
    536 //  UText.flags bit definitions
    537 //
    538 enum {
    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.
    541 
    542     UTEXT_EXTRA_HEAP_ALLOCATED = 2, //  1 if ICU has allocated extra storage as a separate
    543                                     //     heap block.
    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.
    547 
    548     UTEXT_OPEN = 4                  //  1 if this UText is currently open
    549                                     //  0 if this UText is not open.
    550 };
    551 
    552 
    553 //
    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.
    556 
    557 struct ExtendedUText {
    558     UText          ut;
    559     UAlignedMemory extension;
    560 };
    561 
    562 static const UText emptyText = UTEXT_INITIALIZER;
    563 
    564 U_CAPI UText * U_EXPORT2
    565 utext_setup(UText *ut, int32_t extraSpace, UErrorCode *status) {
    566     if (U_FAILURE(*status)) {
    567         return ut;
    568     }
    569 
    570     if (ut == NULL) {
    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);
    575         }
    576         ut = (UText *)uprv_malloc(spaceRequired);
    577         if (ut == NULL) {
    578             *status = U_MEMORY_ALLOCATION_ERROR;
    579             return NULL;
    580         } else {
    581             *ut = emptyText;
    582             ut->flags |= UTEXT_HEAP_ALLOCATED;
    583             if (spaceRequired>0) {
    584                 ut->extraSize = extraSpace;
    585                 ut->pExtra    = &((ExtendedUText *)ut)->extension;
    586             }
    587         }
    588     } else {
    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;
    593             return ut;
    594         }
    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);
    599         }
    600         ut->flags &= ~UTEXT_OPEN;
    601 
    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);
    609                 ut->extraSize = 0;
    610             }
    611             ut->pExtra = uprv_malloc(extraSpace);
    612             if (ut->pExtra == NULL) {
    613                 *status = U_MEMORY_ALLOCATION_ERROR;
    614             } else {
    615                 ut->extraSize = extraSpace;
    616                 ut->flags |= UTEXT_EXTRA_HEAP_ALLOCATED;
    617             }
    618         }
    619     }
    620     if (U_SUCCESS(*status)) {
    621         ut->flags |= UTEXT_OPEN;
    622 
    623         // Initialize all remaining fields of the UText.
    624         //
    625         ut->context             = NULL;
    626         ut->chunkContents       = NULL;
    627         ut->p                   = NULL;
    628         ut->q                   = NULL;
    629         ut->r                   = NULL;
    630         ut->a                   = 0;
    631         ut->b                   = 0;
    632         ut->c                   = 0;
    633         ut->chunkOffset         = 0;
    634         ut->chunkLength         = 0;
    635         ut->chunkNativeStart    = 0;
    636         ut->chunkNativeLimit    = 0;
    637         ut->nativeIndexingLimit = 0;
    638         ut->providerProperties  = 0;
    639         ut->privA               = 0;
    640         ut->privB               = 0;
    641         ut->privC               = 0;
    642         ut->privP               = NULL;
    643         if (ut->pExtra!=NULL && ut->extraSize>0)
    644             uprv_memset(ut->pExtra, 0, ut->extraSize);
    645 
    646     }
    647     return ut;
    648 }
    649 
    650 
    651 U_CAPI UText * U_EXPORT2
    652 utext_close(UText *ut) {
    653     if (ut==NULL ||
    654         ut->magic != UTEXT_MAGIC ||
    655         (ut->flags & UTEXT_OPEN) == 0)
    656     {
    657         // The supplied ut is not an open UText.
    658         // Do nothing.
    659         return ut;
    660     }
    661 
    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);
    666     }
    667     ut->flags &= ~UTEXT_OPEN;
    668 
    669     // If we (the framework) allocated the UText or subsidiary storage,
    670     //   delete it.
    671     if (ut->flags & UTEXT_EXTRA_HEAP_ALLOCATED) {
    672         uprv_free(ut->pExtra);
    673         ut->pExtra = NULL;
    674         ut->flags &= ~UTEXT_EXTRA_HEAP_ALLOCATED;
    675         ut->extraSize = 0;
    676     }
    677 
    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.
    681     ut->pFuncs        = NULL;
    682 
    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.
    687         ut->magic = 0;
    688         uprv_free(ut);
    689         ut = NULL;
    690     }
    691     return ut;
    692 }
    693 
    694 
    695 
    696 
    697 //
    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.
    703 //
    704 static void
    705 invalidateChunk(UText *ut) {
    706     ut->chunkLength = 0;
    707     ut->chunkNativeLimit = 0;
    708     ut->chunkNativeStart = 0;
    709     ut->chunkOffset = 0;
    710     ut->nativeIndexingLimit = 0;
    711 }
    712 
    713 //
    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.
    718 static int32_t
    719 pinIndex(int64_t &index, int64_t limit) {
    720     if (index<0) {
    721         index = 0;
    722     } else if (index > limit) {
    723         index = limit;
    724     }
    725     return (int32_t)index;
    726 }
    727 
    728 
    729 U_CDECL_BEGIN
    730 
    731 //
    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)
    736 //
    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;
    742 
    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);
    751     }
    752 }
    753 
    754 
    755 //
    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.
    758 //
    759 static UText * U_CALLCONV
    760 shallowTextClone(UText * dest, const UText * src, UErrorCode * status) {
    761     if (U_FAILURE(*status)) {
    762         return NULL;
    763     }
    764     int32_t  srcExtraSize = src->extraSize;
    765 
    766     //
    767     // Use the generic text_setup to allocate storage if required.
    768     //
    769     dest = utext_setup(dest, srcExtraSize, status);
    770     if (U_FAILURE(*status)) {
    771         return dest;
    772     }
    773 
    774     //
    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.
    779     //
    780     void *destExtra = dest->pExtra;
    781     int32_t flags   = dest->flags;
    782 
    783 
    784     //
    785     //  Copy the whole UText struct by value.
    786     //  Any "Extra" storage is copied also.
    787     //
    788     int sizeToCopy = src->sizeOfStruct;
    789     if (sizeToCopy > dest->sizeOfStruct) {
    790         sizeToCopy = dest->sizeOfStruct;
    791     }
    792     uprv_memcpy(dest, src, sizeToCopy);
    793     dest->pExtra = destExtra;
    794     dest->flags  = flags;
    795     if (srcExtraSize > 0) {
    796         uprv_memcpy(dest->pExtra, src->pExtra, srcExtraSize);
    797     }
    798 
    799     //
    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.
    802     //
    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);
    808 
    809     return dest;
    810 }
    811 
    812 
    813 U_CDECL_END
    814 
    815 
    816 
    817 //------------------------------------------------------------------------------
    818 //
    819 //     UText implementation for UTF-8 char * strings (read-only)
    820 //     Limitation:  string length must be <= 0x7fffffff in length.
    821 //                  (length must for in an int32_t variable)
    822 //
    823 //         Use of UText data members:
    824 //              context    pointer to UTF-8 string
    825 //              utext.b    is the input string length (bytes).
    826 //              utext.c    Length scanned so far in string
    827 //                           (for optimizing finding length of zero terminated strings.)
    828 //              utext.p    pointer to the current buffer
    829 //              utext.q    pointer to the other buffer.
    830 //
    831 //------------------------------------------------------------------------------
    832 
    833 // Chunk size.
    834 //     Must be less than 85, because of byte mapping from UChar indexes to native indexes.
    835 //     Worst case is three native bytes to one UChar.  (Supplemenaries are 4 native bytes
    836 //     to two UChars.)
    837 //
    838 enum { UTF8_TEXT_CHUNK_SIZE=32 };
    839 
    840 //
    841 // UTF8Buf  Two of these structs will be set up in the UText's extra allocated space.
    842 //          Each contains the UChar chunk buffer, the to and from native maps, and
    843 //          header info.
    844 //
    845 //     because backwards iteration fills the buffers starting at the end and
    846 //     working towards the front, the filled part of the buffers may not begin
    847 //     at the start of the available storage for the buffers.
    848 //
    849 //     Buffer size is one bigger than the specified UTF8_TEXT_CHUNK_SIZE to allow for
    850 //     the last character added being a supplementary, and thus requiring a surrogate
    851 //     pair.  Doing this is simpler than checking for the edge case.
    852 //
    853 
    854 struct UTF8Buf {
    855     int32_t   bufNativeStart;                        // Native index of first char in UChar buf
    856     int32_t   bufNativeLimit;                        // Native index following last char in buf.
    857     int32_t   bufStartIdx;                           // First filled position in buf.
    858     int32_t   bufLimitIdx;                           // Limit of filled range in buf.
    859     int32_t   bufNILimit;                            // Limit of native indexing part of buf
    860     int32_t   toUCharsMapStart;                      // Native index corresponding to
    861                                                      //   mapToUChars[0].
    862                                                      //   Set to bufNativeStart when filling forwards.
    863                                                      //   Set to computed value when filling backwards.
    864 
    865     UChar     buf[UTF8_TEXT_CHUNK_SIZE+4];           // The UChar buffer.  Requires one extra position beyond the
    866                                                      //   the chunk size, to allow for surrogate at the end.
    867                                                      //   Length must be identical to mapToNative array, below,
    868                                                      //   because of the way indexing works when the array is
    869                                                      //   filled backwards during a reverse iteration.  Thus,
    870                                                      //   the additional extra size.
    871     uint8_t   mapToNative[UTF8_TEXT_CHUNK_SIZE+4];   // map UChar index in buf to
    872                                                      //  native offset from bufNativeStart.
    873                                                      //  Requires two extra slots,
    874                                                      //    one for a supplementary starting in the last normal position,
    875                                                      //    and one for an entry for the buffer limit position.
    876     uint8_t   mapToUChars[UTF8_TEXT_CHUNK_SIZE*3+6]; // Map native offset from bufNativeStart to
    877                                                      //   correspoding offset in filled part of buf.
    878     int32_t   align;
    879 };
    880 
    881 U_CDECL_BEGIN
    882 
    883 //
    884 //   utf8TextLength
    885 //
    886 //        Get the length of the string.  If we don't already know it,
    887 //              we'll need to scan for the trailing  nul.
    888 //
    889 static int64_t U_CALLCONV
    890 utf8TextLength(UText *ut) {
    891     if (ut->b < 0) {
    892         // Zero terminated string, and we haven't scanned to the end yet.
    893         // Scan it now.
    894         const char *r = (const char *)ut->context + ut->c;
    895         while (*r != 0) {
    896             r++;
    897         }
    898         if ((r - (const char *)ut->context) < 0x7fffffff) {
    899             ut->b = (int32_t)(r - (const char *)ut->context);
    900         } else {
    901             // Actual string was bigger (more than 2 gig) than we
    902             //   can handle.  Clip it to 2 GB.
    903             ut->b = 0x7fffffff;
    904         }
    905         ut->providerProperties &= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
    906     }
    907     return ut->b;
    908 }
    909 
    910 
    911 
    912 
    913 
    914 
    915 static UBool U_CALLCONV
    916 utf8TextAccess(UText *ut, int64_t index, UBool forward) {
    917     //
    918     //  Apologies to those who are allergic to goto statements.
    919     //    Consider each goto to a labelled block to be the equivalent of
    920     //         call the named block as if it were a function();
    921     //         return;
    922     //
    923     const uint8_t *s8=(const uint8_t *)ut->context;
    924     UTF8Buf *u8b = NULL;
    925     int32_t  length = ut->b;         // Length of original utf-8
    926     int32_t  ix= (int32_t)index;     // Requested index, trimmed to 32 bits.
    927     int32_t  mapIndex = 0;
    928     if (index<0) {
    929         ix=0;
    930     } else if (index > 0x7fffffff) {
    931         // Strings with 64 bit lengths not supported by this UTF-8 provider.
    932         ix = 0x7fffffff;
    933     }
    934 
    935     // Pin requested index to the string length.
    936     if (ix>length) {
    937         if (length>=0) {
    938             ix=length;
    939         } else if (ix>=ut->c) {
    940             // Zero terminated string, and requested index is beyond
    941             //   the region that has already been scanned.
    942             //   Scan up to either the end of the string or to the
    943             //   requested position, whichever comes first.
    944             while (ut->c<ix && s8[ut->c]!=0) {
    945                 ut->c++;
    946             }
    947             //  TODO:  support for null terminated string length > 32 bits.
    948             if (s8[ut->c] == 0) {
    949                 // We just found the actual length of the string.
    950                 //  Trim the requested index back to that.
    951                 ix     = ut->c;
    952                 ut->b  = ut->c;
    953                 length = ut->c;
    954                 ut->providerProperties &= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
    955             }
    956         }
    957     }
    958 
    959     //
    960     // Dispatch to the appropriate action for a forward iteration request.
    961     //
    962     if (forward) {
    963         if (ix==ut->chunkNativeLimit) {
    964             // Check for normal sequential iteration cases first.
    965             if (ix==length) {
    966                 // Just reached end of string
    967                 // Don't swap buffers, but do set the
    968                 //   current buffer position.
    969                 ut->chunkOffset = ut->chunkLength;
    970                 return FALSE;
    971             } else {
    972                 // End of current buffer.
    973                 //   check whether other buffer already has what we need.
    974                 UTF8Buf *altB = (UTF8Buf *)ut->q;
    975                 if (ix>=altB->bufNativeStart && ix<altB->bufNativeLimit) {
    976                     goto swapBuffers;
    977                 }
    978             }
    979         }
    980 
    981         // A random access.  Desired index could be in either or niether buf.
    982         // For optimizing the order of testing, first check for the index
    983         //    being in the other buffer.  This will be the case for uses that
    984         //    move back and forth over a fairly limited range
    985         {
    986             u8b = (UTF8Buf *)ut->q;   // the alternate buffer
    987             if (ix>=u8b->bufNativeStart && ix<u8b->bufNativeLimit) {
    988                 // Requested index is in the other buffer.
    989                 goto swapBuffers;
    990             }
    991             if (ix == length) {
    992                 // Requested index is end-of-string.
    993                 //   (this is the case of randomly seeking to the end.
    994                 //    The case of iterating off the end is handled earlier.)
    995                 if (ix == ut->chunkNativeLimit) {
    996                     // Current buffer extends up to the end of the string.
    997                     //   Leave it as the current buffer.
    998                     ut->chunkOffset = ut->chunkLength;
    999                     return FALSE;
   1000                 }
   1001                 if (ix == u8b->bufNativeLimit) {
   1002                     // Alternate buffer extends to the end of string.
   1003                     //   Swap it in as the current buffer.
   1004                     goto swapBuffersAndFail;
   1005                 }
   1006 
   1007                 // Neither existing buffer extends to the end of the string.
   1008                 goto makeStubBuffer;
   1009             }
   1010 
   1011             if (ix<ut->chunkNativeStart || ix>=ut->chunkNativeLimit) {
   1012                 // Requested index is in neither buffer.
   1013                 goto fillForward;
   1014             }
   1015 
   1016             // Requested index is in this buffer.
   1017             u8b = (UTF8Buf *)ut->p;   // the current buffer
   1018             mapIndex = ix - u8b->toUCharsMapStart;
   1019             ut->chunkOffset = u8b->mapToUChars[mapIndex] - u8b->bufStartIdx;
   1020             return TRUE;
   1021 
   1022         }
   1023     }
   1024 
   1025 
   1026     //
   1027     // Dispatch to the appropriate action for a
   1028     //   Backwards Diretion iteration request.
   1029     //
   1030     if (ix==ut->chunkNativeStart) {
   1031         // Check for normal sequential iteration cases first.
   1032         if (ix==0) {
   1033             // Just reached the start of string
   1034             // Don't swap buffers, but do set the
   1035             //   current buffer position.
   1036             ut->chunkOffset = 0;
   1037             return FALSE;
   1038         } else {
   1039             // Start of current buffer.
   1040             //   check whether other buffer already has what we need.
   1041             UTF8Buf *altB = (UTF8Buf *)ut->q;
   1042             if (ix>altB->bufNativeStart && ix<=altB->bufNativeLimit) {
   1043                 goto swapBuffers;
   1044             }
   1045         }
   1046     }
   1047 
   1048     // A random access.  Desired index could be in either or niether buf.
   1049     // For optimizing the order of testing,
   1050     //    Most likely case:  in the other buffer.
   1051     //    Second most likely: in neither buffer.
   1052     //    Unlikely, but must work:  in the current buffer.
   1053     u8b = (UTF8Buf *)ut->q;   // the alternate buffer
   1054     if (ix>u8b->bufNativeStart && ix<=u8b->bufNativeLimit) {
   1055         // Requested index is in the other buffer.
   1056         goto swapBuffers;
   1057     }
   1058     // Requested index is start-of-string.
   1059     //   (this is the case of randomly seeking to the start.
   1060     //    The case of iterating off the start is handled earlier.)
   1061     if (ix==0) {
   1062         if (u8b->bufNativeStart==0) {
   1063             // Alternate buffer contains the data for the start string.
   1064             // Make it be the current buffer.
   1065             goto swapBuffersAndFail;
   1066         } else {
   1067             // Request for data before the start of string,
   1068             //   neither buffer is usable.
   1069             //   set up a zero-length buffer.
   1070             goto makeStubBuffer;
   1071         }
   1072     }
   1073 
   1074     if (ix<=ut->chunkNativeStart || ix>ut->chunkNativeLimit) {
   1075         // Requested index is in neither buffer.
   1076         goto fillReverse;
   1077     }
   1078 
   1079     // Requested index is in this buffer.
   1080     //   Set the utf16 buffer index.
   1081     u8b = (UTF8Buf *)ut->p;
   1082     mapIndex = ix - u8b->toUCharsMapStart;
   1083     ut->chunkOffset = u8b->mapToUChars[mapIndex] - u8b->bufStartIdx;
   1084     if (ut->chunkOffset==0) {
   1085         // This occurs when the first character in the text is
   1086         //   a multi-byte UTF-8 char, and the requested index is to
   1087         //   one of the trailing bytes.  Because there is no preceding ,
   1088         //   character, this access fails.  We can't pick up on the
   1089         //   situation sooner because the requested index is not zero.
   1090         return FALSE;
   1091     } else {
   1092         return TRUE;
   1093     }
   1094 
   1095 
   1096 
   1097 swapBuffers:
   1098     //  The alternate buffer (ut->q) has the string data that was requested.
   1099     //  Swap the primary and alternate buffers, and set the
   1100     //   chunk index into the new primary buffer.
   1101     {
   1102         u8b   = (UTF8Buf *)ut->q;
   1103         ut->q = ut->p;
   1104         ut->p = u8b;
   1105         ut->chunkContents       = &u8b->buf[u8b->bufStartIdx];
   1106         ut->chunkLength         = u8b->bufLimitIdx - u8b->bufStartIdx;
   1107         ut->chunkNativeStart    = u8b->bufNativeStart;
   1108         ut->chunkNativeLimit    = u8b->bufNativeLimit;
   1109         ut->nativeIndexingLimit = u8b->bufNILimit;
   1110 
   1111         // Index into the (now current) chunk
   1112         // Use the map to set the chunk index.  It's more trouble than it's worth
   1113         //    to check whether native indexing can be used.
   1114         U_ASSERT(ix>=u8b->bufNativeStart);
   1115         U_ASSERT(ix<=u8b->bufNativeLimit);
   1116         mapIndex = ix - u8b->toUCharsMapStart;
   1117         U_ASSERT(mapIndex>=0);
   1118         U_ASSERT(mapIndex<(int32_t)sizeof(u8b->mapToUChars));
   1119         ut->chunkOffset = u8b->mapToUChars[mapIndex] - u8b->bufStartIdx;
   1120 
   1121         return TRUE;
   1122     }
   1123 
   1124 
   1125  swapBuffersAndFail:
   1126     // We got a request for either the start or end of the string,
   1127     //  with iteration continuing in the out-of-bounds direction.
   1128     // The alternate buffer already contains the data up to the
   1129     //  start/end.
   1130     // Swap the buffers, then return failure, indicating that we couldn't
   1131     //  make things correct for continuing the iteration in the requested
   1132     //  direction.  The position & buffer are correct should the
   1133     //  user decide to iterate in the opposite direction.
   1134     u8b   = (UTF8Buf *)ut->q;
   1135     ut->q = ut->p;
   1136     ut->p = u8b;
   1137     ut->chunkContents       = &u8b->buf[u8b->bufStartIdx];
   1138     ut->chunkLength         = u8b->bufLimitIdx - u8b->bufStartIdx;
   1139     ut->chunkNativeStart    = u8b->bufNativeStart;
   1140     ut->chunkNativeLimit    = u8b->bufNativeLimit;
   1141     ut->nativeIndexingLimit = u8b->bufNILimit;
   1142 
   1143     // Index into the (now current) chunk
   1144     //  For this function  (swapBuffersAndFail), the requested index
   1145     //    will always be at either the start or end of the chunk.
   1146     if (ix==u8b->bufNativeLimit) {
   1147         ut->chunkOffset = ut->chunkLength;
   1148     } else  {
   1149         ut->chunkOffset = 0;
   1150         U_ASSERT(ix == u8b->bufNativeStart);
   1151     }
   1152     return FALSE;
   1153 
   1154 makeStubBuffer:
   1155     //   The user has done a seek/access past the start or end
   1156     //   of the string.  Rather than loading data that is likely
   1157     //   to never be used, just set up a zero-length buffer at
   1158     //   the position.
   1159     u8b = (UTF8Buf *)ut->q;
   1160     u8b->bufNativeStart   = ix;
   1161     u8b->bufNativeLimit   = ix;
   1162     u8b->bufStartIdx      = 0;
   1163     u8b->bufLimitIdx      = 0;
   1164     u8b->bufNILimit       = 0;
   1165     u8b->toUCharsMapStart = ix;
   1166     u8b->mapToNative[0]   = 0;
   1167     u8b->mapToUChars[0]   = 0;
   1168     goto swapBuffersAndFail;
   1169 
   1170 
   1171 
   1172 fillForward:
   1173     {
   1174         // Move the incoming index to a code point boundary.
   1175         U8_SET_CP_START(s8, 0, ix);
   1176 
   1177         // Swap the UText buffers.
   1178         //  We want to fill what was previously the alternate buffer,
   1179         //  and make what was the current buffer be the new alternate.
   1180         UTF8Buf *u8b = (UTF8Buf *)ut->q;
   1181         ut->q = ut->p;
   1182         ut->p = u8b;
   1183 
   1184         int32_t strLen = ut->b;
   1185         UBool   nulTerminated = FALSE;
   1186         if (strLen < 0) {
   1187             strLen = 0x7fffffff;
   1188             nulTerminated = TRUE;
   1189         }
   1190 
   1191         UChar   *buf = u8b->buf;
   1192         uint8_t *mapToNative  = u8b->mapToNative;
   1193         uint8_t *mapToUChars  = u8b->mapToUChars;
   1194         int32_t  destIx       = 0;
   1195         int32_t  srcIx        = ix;
   1196         UBool    seenNonAscii = FALSE;
   1197         UChar32  c = 0;
   1198 
   1199         // Fill the chunk buffer and mapping arrays.
   1200         while (destIx<UTF8_TEXT_CHUNK_SIZE) {
   1201             c = s8[srcIx];
   1202             if (c>0 && c<0x80) {
   1203                 // Special case ASCII range for speed.
   1204                 //   zero is excluded to simplify bounds checking.
   1205                 buf[destIx] = (UChar)c;
   1206                 mapToNative[destIx]    = (uint8_t)(srcIx - ix);
   1207                 mapToUChars[srcIx-ix]  = (uint8_t)destIx;
   1208                 srcIx++;
   1209                 destIx++;
   1210             } else {
   1211                 // General case, handle everything.
   1212                 if (seenNonAscii == FALSE) {
   1213                     seenNonAscii = TRUE;
   1214                     u8b->bufNILimit = destIx;
   1215                 }
   1216 
   1217                 int32_t  cIx      = srcIx;
   1218                 int32_t  dIx      = destIx;
   1219                 int32_t  dIxSaved = destIx;
   1220                 U8_NEXT_OR_FFFD(s8, srcIx, strLen, c);
   1221                 if (c==0 && nulTerminated) {
   1222                     srcIx--;
   1223                     break;
   1224                 }
   1225 
   1226                 U16_APPEND_UNSAFE(buf, destIx, c);
   1227                 do {
   1228                     mapToNative[dIx++] = (uint8_t)(cIx - ix);
   1229                 } while (dIx < destIx);
   1230 
   1231                 do {
   1232                     mapToUChars[cIx++ - ix] = (uint8_t)dIxSaved;
   1233                 } while (cIx < srcIx);
   1234             }
   1235             if (srcIx>=strLen) {
   1236                 break;
   1237             }
   1238 
   1239         }
   1240 
   1241         //  store Native <--> Chunk Map entries for the end of the buffer.
   1242         //    There is no actual character here, but the index position is valid.
   1243         mapToNative[destIx]     = (uint8_t)(srcIx - ix);
   1244         mapToUChars[srcIx - ix] = (uint8_t)destIx;
   1245 
   1246         //  fill in Buffer descriptor
   1247         u8b->bufNativeStart     = ix;
   1248         u8b->bufNativeLimit     = srcIx;
   1249         u8b->bufStartIdx        = 0;
   1250         u8b->bufLimitIdx        = destIx;
   1251         if (seenNonAscii == FALSE) {
   1252             u8b->bufNILimit     = destIx;
   1253         }
   1254         u8b->toUCharsMapStart   = u8b->bufNativeStart;
   1255 
   1256         // Set UText chunk to refer to this buffer.
   1257         ut->chunkContents       = buf;
   1258         ut->chunkOffset         = 0;
   1259         ut->chunkLength         = u8b->bufLimitIdx;
   1260         ut->chunkNativeStart    = u8b->bufNativeStart;
   1261         ut->chunkNativeLimit    = u8b->bufNativeLimit;
   1262         ut->nativeIndexingLimit = u8b->bufNILimit;
   1263 
   1264         // For zero terminated strings, keep track of the maximum point
   1265         //   scanned so far.
   1266         if (nulTerminated && srcIx>ut->c) {
   1267             ut->c = srcIx;
   1268             if (c==0) {
   1269                 // We scanned to the end.
   1270                 //   Remember the actual length.
   1271                 ut->b = srcIx;
   1272                 ut->providerProperties &= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
   1273             }
   1274         }
   1275         return TRUE;
   1276     }
   1277 
   1278 
   1279 fillReverse:
   1280     {
   1281         // Move the incoming index to a code point boundary.
   1282         // Can only do this if the incoming index is somewhere in the interior of the string.
   1283         //   If index is at the end, there is no character there to look at.
   1284         if (ix != ut->b) {
   1285             U8_SET_CP_START(s8, 0, ix);
   1286         }
   1287 
   1288         // Swap the UText buffers.
   1289         //  We want to fill what was previously the alternate buffer,
   1290         //  and make what was the current buffer be the new alternate.
   1291         UTF8Buf *u8b = (UTF8Buf *)ut->q;
   1292         ut->q = ut->p;
   1293         ut->p = u8b;
   1294 
   1295         UChar   *buf = u8b->buf;
   1296         uint8_t *mapToNative = u8b->mapToNative;
   1297         uint8_t *mapToUChars = u8b->mapToUChars;
   1298         int32_t  toUCharsMapStart = ix - (UTF8_TEXT_CHUNK_SIZE*3 + 1);
   1299         int32_t  destIx = UTF8_TEXT_CHUNK_SIZE+2;   // Start in the overflow region
   1300                                                     //   at end of buffer to leave room
   1301                                                     //   for a surrogate pair at the
   1302                                                     //   buffer start.
   1303         int32_t  srcIx  = ix;
   1304         int32_t  bufNILimit = destIx;
   1305         UChar32   c;
   1306 
   1307         // Map to/from Native Indexes, fill in for the position at the end of
   1308         //   the buffer.
   1309         //
   1310         mapToNative[destIx] = (uint8_t)(srcIx - toUCharsMapStart);
   1311         mapToUChars[srcIx - toUCharsMapStart] = (uint8_t)destIx;
   1312 
   1313         // Fill the chunk buffer
   1314         // Work backwards, filling from the end of the buffer towards the front.
   1315         //
   1316         while (destIx>2 && (srcIx - toUCharsMapStart > 5) && (srcIx > 0)) {
   1317             srcIx--;
   1318             destIx--;
   1319 
   1320             // Get last byte of the UTF-8 character
   1321             c = s8[srcIx];
   1322             if (c<0x80) {
   1323                 // Special case ASCII range for speed.
   1324                 buf[destIx] = (UChar)c;
   1325                 mapToUChars[srcIx - toUCharsMapStart] = (uint8_t)destIx;
   1326                 mapToNative[destIx] = (uint8_t)(srcIx - toUCharsMapStart);
   1327             } else {
   1328                 // General case, handle everything non-ASCII.
   1329 
   1330                 int32_t  sIx      = srcIx;  // ix of last byte of multi-byte u8 char
   1331 
   1332                 // Get the full character from the UTF8 string.
   1333                 //   use code derived from tbe macros in utf8.h
   1334                 //   Leaves srcIx pointing at the first byte of the UTF-8 char.
   1335                 //
   1336                 c=utf8_prevCharSafeBody(s8, 0, &srcIx, c, -3);
   1337                 // leaves srcIx at first byte of the multi-byte char.
   1338 
   1339                 // Store the character in UTF-16 buffer.
   1340                 if (c<0x10000) {
   1341                     buf[destIx] = (UChar)c;
   1342                     mapToNative[destIx] = (uint8_t)(srcIx - toUCharsMapStart);
   1343                 } else {
   1344                     buf[destIx]         = U16_TRAIL(c);
   1345                     mapToNative[destIx] = (uint8_t)(srcIx - toUCharsMapStart);
   1346                     buf[--destIx]       = U16_LEAD(c);
   1347                     mapToNative[destIx] = (uint8_t)(srcIx - toUCharsMapStart);
   1348                 }
   1349 
   1350                 // Fill in the map from native indexes to UChars buf index.
   1351                 do {
   1352                     mapToUChars[sIx-- - toUCharsMapStart] = (uint8_t)destIx;
   1353                 } while (sIx >= srcIx);
   1354 
   1355                 // Set native indexing limit to be the current position.
   1356                 //   We are processing a non-ascii, non-native-indexing char now;
   1357                 //     the limit will be here if the rest of the chars to be
   1358                 //     added to this buffer are ascii.
   1359                 bufNILimit = destIx;
   1360             }
   1361         }
   1362         u8b->bufNativeStart     = srcIx;
   1363         u8b->bufNativeLimit     = ix;
   1364         u8b->bufStartIdx        = destIx;
   1365         u8b->bufLimitIdx        = UTF8_TEXT_CHUNK_SIZE+2;
   1366         u8b->bufNILimit         = bufNILimit - u8b->bufStartIdx;
   1367         u8b->toUCharsMapStart   = toUCharsMapStart;
   1368 
   1369         ut->chunkContents       = &buf[u8b->bufStartIdx];
   1370         ut->chunkLength         = u8b->bufLimitIdx - u8b->bufStartIdx;
   1371         ut->chunkOffset         = ut->chunkLength;
   1372         ut->chunkNativeStart    = u8b->bufNativeStart;
   1373         ut->chunkNativeLimit    = u8b->bufNativeLimit;
   1374         ut->nativeIndexingLimit = u8b->bufNILimit;
   1375         return TRUE;
   1376     }
   1377 
   1378 }
   1379 
   1380 
   1381 
   1382 //
   1383 //  This is a slightly modified copy of u_strFromUTF8,
   1384 //     Inserts a Replacement Char rather than failing on invalid UTF-8
   1385 //     Removes unnecessary features.
   1386 //
   1387 static UChar*
   1388 utext_strFromUTF8(UChar *dest,
   1389               int32_t destCapacity,
   1390               int32_t *pDestLength,
   1391               const char* src,
   1392               int32_t srcLength,        // required.  NUL terminated not supported.
   1393               UErrorCode *pErrorCode
   1394               )
   1395 {
   1396 
   1397     UChar *pDest = dest;
   1398     UChar *pDestLimit = (dest!=NULL)?(dest+destCapacity):NULL;
   1399     UChar32 ch=0;
   1400     int32_t index = 0;
   1401     int32_t reqLength = 0;
   1402     uint8_t* pSrc = (uint8_t*) src;
   1403 
   1404 
   1405     while((index < srcLength)&&(pDest<pDestLimit)){
   1406         ch = pSrc[index++];
   1407         if(ch <=0x7f){
   1408             *pDest++=(UChar)ch;
   1409         }else{
   1410             ch=utf8_nextCharSafeBody(pSrc, &index, srcLength, ch, -3);
   1411             if(U_IS_BMP(ch)){
   1412                 *(pDest++)=(UChar)ch;
   1413             }else{
   1414                 *(pDest++)=U16_LEAD(ch);
   1415                 if(pDest<pDestLimit){
   1416                     *(pDest++)=U16_TRAIL(ch);
   1417                 }else{
   1418                     reqLength++;
   1419                     break;
   1420                 }
   1421             }
   1422         }
   1423     }
   1424     /* donot fill the dest buffer just count the UChars needed */
   1425     while(index < srcLength){
   1426         ch = pSrc[index++];
   1427         if(ch <= 0x7f){
   1428             reqLength++;
   1429         }else{
   1430             ch=utf8_nextCharSafeBody(pSrc, &index, srcLength, ch, -3);
   1431             reqLength+=U16_LENGTH(ch);
   1432         }
   1433     }
   1434 
   1435     reqLength+=(int32_t)(pDest - dest);
   1436 
   1437     if(pDestLength){
   1438         *pDestLength = reqLength;
   1439     }
   1440 
   1441     /* Terminate the buffer */
   1442     u_terminateUChars(dest,destCapacity,reqLength,pErrorCode);
   1443 
   1444     return dest;
   1445 }
   1446 
   1447 
   1448 
   1449 static int32_t U_CALLCONV
   1450 utf8TextExtract(UText *ut,
   1451                 int64_t start, int64_t limit,
   1452                 UChar *dest, int32_t destCapacity,
   1453                 UErrorCode *pErrorCode) {
   1454     if(U_FAILURE(*pErrorCode)) {
   1455         return 0;
   1456     }
   1457     if(destCapacity<0 || (dest==NULL && destCapacity>0)) {
   1458         *pErrorCode=U_ILLEGAL_ARGUMENT_ERROR;
   1459         return 0;
   1460     }
   1461     int32_t  length  = ut->b;
   1462     int32_t  start32 = pinIndex(start, length);
   1463     int32_t  limit32 = pinIndex(limit, length);
   1464 
   1465     if(start32>limit32) {
   1466         *pErrorCode=U_INDEX_OUTOFBOUNDS_ERROR;
   1467         return 0;
   1468     }
   1469 
   1470 
   1471     // adjust the incoming indexes to land on code point boundaries if needed.
   1472     //    adjust by no more than three, because that is the largest number of trail bytes
   1473     //    in a well formed UTF8 character.
   1474     const uint8_t *buf = (const uint8_t *)ut->context;
   1475     int i;
   1476     if (start32 < ut->chunkNativeLimit) {
   1477         for (i=0; i<3; i++) {
   1478             if (U8_IS_SINGLE(buf[start32]) || U8_IS_LEAD(buf[start32]) || start32==0) {
   1479                 break;
   1480             }
   1481             start32--;
   1482         }
   1483     }
   1484 
   1485     if (limit32 < ut->chunkNativeLimit) {
   1486         for (i=0; i<3; i++) {
   1487             if (U8_IS_SINGLE(buf[limit32]) || U8_IS_LEAD(buf[limit32]) || limit32==0) {
   1488                 break;
   1489             }
   1490             limit32--;
   1491         }
   1492     }
   1493 
   1494     // Do the actual extract.
   1495     int32_t destLength=0;
   1496     utext_strFromUTF8(dest, destCapacity, &destLength,
   1497                     (const char *)ut->context+start32, limit32-start32,
   1498                     pErrorCode);
   1499     utf8TextAccess(ut, limit32, TRUE);
   1500     return destLength;
   1501 }
   1502 
   1503 //
   1504 // utf8TextMapOffsetToNative
   1505 //
   1506 // Map a chunk (UTF-16) offset to a native index.
   1507 static int64_t U_CALLCONV
   1508 utf8TextMapOffsetToNative(const UText *ut) {
   1509     //
   1510     UTF8Buf *u8b = (UTF8Buf *)ut->p;
   1511     U_ASSERT(ut->chunkOffset>ut->nativeIndexingLimit && ut->chunkOffset<=ut->chunkLength);
   1512     int32_t nativeOffset = u8b->mapToNative[ut->chunkOffset + u8b->bufStartIdx] + u8b->toUCharsMapStart;
   1513     U_ASSERT(nativeOffset >= ut->chunkNativeStart && nativeOffset <= ut->chunkNativeLimit);
   1514     return nativeOffset;
   1515 }
   1516 
   1517 //
   1518 // Map a native index to the corrsponding chunk offset
   1519 //
   1520 static int32_t U_CALLCONV
   1521 utf8TextMapIndexToUTF16(const UText *ut, int64_t index64) {
   1522     U_ASSERT(index64 <= 0x7fffffff);
   1523     int32_t index = (int32_t)index64;
   1524     UTF8Buf *u8b = (UTF8Buf *)ut->p;
   1525     U_ASSERT(index>=ut->chunkNativeStart+ut->nativeIndexingLimit);
   1526     U_ASSERT(index<=ut->chunkNativeLimit);
   1527     int32_t mapIndex = index - u8b->toUCharsMapStart;
   1528     int32_t offset = u8b->mapToUChars[mapIndex] - u8b->bufStartIdx;
   1529     U_ASSERT(offset>=0 && offset<=ut->chunkLength);
   1530     return offset;
   1531 }
   1532 
   1533 static UText * U_CALLCONV
   1534 utf8TextClone(UText *dest, const UText *src, UBool deep, UErrorCode *status)
   1535 {
   1536     // First do a generic shallow clone.  Does everything needed for the UText struct itself.
   1537     dest = shallowTextClone(dest, src, status);
   1538 
   1539     // For deep clones, make a copy of the string.
   1540     //  The copied storage is owned by the newly created clone.
   1541     //
   1542     // TODO:  There is an isssue with using utext_nativeLength().
   1543     //        That function is non-const in cases where the input was NUL terminated
   1544     //          and the length has not yet been determined.
   1545     //        This function (clone()) is const.
   1546     //        There potentially a thread safety issue lurking here.
   1547     //
   1548     if (deep && U_SUCCESS(*status)) {
   1549         int32_t  len = (int32_t)utext_nativeLength((UText *)src);
   1550         char *copyStr = (char *)uprv_malloc(len+1);
   1551         if (copyStr == NULL) {
   1552             *status = U_MEMORY_ALLOCATION_ERROR;
   1553         } else {
   1554             uprv_memcpy(copyStr, src->context, len+1);
   1555             dest->context = copyStr;
   1556             dest->providerProperties |= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT);
   1557         }
   1558     }
   1559     return dest;
   1560 }
   1561 
   1562 
   1563 static void U_CALLCONV
   1564 utf8TextClose(UText *ut) {
   1565     // Most of the work of close is done by the generic UText framework close.
   1566     // All that needs to be done here is to delete the UTF8 string if the UText
   1567     //  owns it.  This occurs if the UText was created by cloning.
   1568     if (ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT)) {
   1569         char *s = (char *)ut->context;
   1570         uprv_free(s);
   1571         ut->context = NULL;
   1572     }
   1573 }
   1574 
   1575 U_CDECL_END
   1576 
   1577 
   1578 static const struct UTextFuncs utf8Funcs =
   1579 {
   1580     sizeof(UTextFuncs),
   1581     0, 0, 0,             // Reserved alignment padding
   1582     utf8TextClone,
   1583     utf8TextLength,
   1584     utf8TextAccess,
   1585     utf8TextExtract,
   1586     NULL,                /* replace*/
   1587     NULL,                /* copy   */
   1588     utf8TextMapOffsetToNative,
   1589     utf8TextMapIndexToUTF16,
   1590     utf8TextClose,
   1591     NULL,                // spare 1
   1592     NULL,                // spare 2
   1593     NULL                 // spare 3
   1594 };
   1595 
   1596 
   1597 static const char gEmptyString[] = {0};
   1598 
   1599 U_CAPI UText * U_EXPORT2
   1600 utext_openUTF8(UText *ut, const char *s, int64_t length, UErrorCode *status) {
   1601     if(U_FAILURE(*status)) {
   1602         return NULL;
   1603     }
   1604     if(s==NULL && length==0) {
   1605         s = gEmptyString;
   1606     }
   1607 
   1608     if(s==NULL || length<-1 || length>INT32_MAX) {
   1609         *status=U_ILLEGAL_ARGUMENT_ERROR;
   1610         return NULL;
   1611     }
   1612 
   1613     ut = utext_setup(ut, sizeof(UTF8Buf) * 2, status);
   1614     if (U_FAILURE(*status)) {
   1615         return ut;
   1616     }
   1617 
   1618     ut->pFuncs  = &utf8Funcs;
   1619     ut->context = s;
   1620     ut->b       = (int32_t)length;
   1621     ut->c       = (int32_t)length;
   1622     if (ut->c < 0) {
   1623         ut->c = 0;
   1624         ut->providerProperties |= I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
   1625     }
   1626     ut->p = ut->pExtra;
   1627     ut->q = (char *)ut->pExtra + sizeof(UTF8Buf);
   1628     return ut;
   1629 
   1630 }
   1631 
   1632 
   1633 
   1634 
   1635 
   1636 
   1637 
   1638 
   1639 //------------------------------------------------------------------------------
   1640 //
   1641 //     UText implementation wrapper for Replaceable (read/write)
   1642 //
   1643 //         Use of UText data members:
   1644 //            context    pointer to Replaceable.
   1645 //            p          pointer to Replaceable if it is owned by the UText.
   1646 //
   1647 //------------------------------------------------------------------------------
   1648 
   1649 
   1650 
   1651 // minimum chunk size for this implementation: 3
   1652 // to allow for possible trimming for code point boundaries
   1653 enum { REP_TEXT_CHUNK_SIZE=10 };
   1654 
   1655 struct ReplExtra {
   1656     /*
   1657      * Chunk UChars.
   1658      * +1 to simplify filling with surrogate pair at the end.
   1659      */
   1660     UChar s[REP_TEXT_CHUNK_SIZE+1];
   1661 };
   1662 
   1663 
   1664 U_CDECL_BEGIN
   1665 
   1666 static UText * U_CALLCONV
   1667 repTextClone(UText *dest, const UText *src, UBool deep, UErrorCode *status) {
   1668     // First do a generic shallow clone.  Does everything needed for the UText struct itself.
   1669     dest = shallowTextClone(dest, src, status);
   1670 
   1671     // For deep clones, make a copy of the Replaceable.
   1672     //  The copied Replaceable storage is owned by the newly created UText clone.
   1673     //  A non-NULL pointer in UText.p is the signal to the close() function to delete
   1674     //    it.
   1675     //
   1676     if (deep && U_SUCCESS(*status)) {
   1677         const Replaceable *replSrc = (const Replaceable *)src->context;
   1678         dest->context = replSrc->clone();
   1679         dest->providerProperties |= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT);
   1680 
   1681         // with deep clone, the copy is writable, even when the source is not.
   1682         dest->providerProperties |= I32_FLAG(UTEXT_PROVIDER_WRITABLE);
   1683     }
   1684     return dest;
   1685 }
   1686 
   1687 
   1688 static void U_CALLCONV
   1689 repTextClose(UText *ut) {
   1690     // Most of the work of close is done by the generic UText framework close.
   1691     // All that needs to be done here is delete the Replaceable if the UText
   1692     //  owns it.  This occurs if the UText was created by cloning.
   1693     if (ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT)) {
   1694         Replaceable *rep = (Replaceable *)ut->context;
   1695         delete rep;
   1696         ut->context = NULL;
   1697     }
   1698 }
   1699 
   1700 
   1701 static int64_t U_CALLCONV
   1702 repTextLength(UText *ut) {
   1703     const Replaceable *replSrc = (const Replaceable *)ut->context;
   1704     int32_t  len = replSrc->length();
   1705     return len;
   1706 }
   1707 
   1708 
   1709 static UBool U_CALLCONV
   1710 repTextAccess(UText *ut, int64_t index, UBool forward) {
   1711     const Replaceable *rep=(const Replaceable *)ut->context;
   1712     int32_t length=rep->length();   // Full length of the input text (bigger than a chunk)
   1713 
   1714     // clip the requested index to the limits of the text.
   1715     int32_t index32 = pinIndex(index, length);
   1716     U_ASSERT(index<=INT32_MAX);
   1717 
   1718 
   1719     /*
   1720      * Compute start/limit boundaries around index, for a segment of text
   1721      * to be extracted.
   1722      * To allow for the possibility that our user gave an index to the trailing
   1723      * half of a surrogate pair, we must request one extra preceding UChar when
   1724      * going in the forward direction.  This will ensure that the buffer has the
   1725      * entire code point at the specified index.
   1726      */
   1727     if(forward) {
   1728 
   1729         if (index32>=ut->chunkNativeStart && index32<ut->chunkNativeLimit) {
   1730             // Buffer already contains the requested position.
   1731             ut->chunkOffset = (int32_t)(index - ut->chunkNativeStart);
   1732             return TRUE;
   1733         }
   1734         if (index32>=length && ut->chunkNativeLimit==length) {
   1735             // Request for end of string, and buffer already extends up to it.
   1736             // Can't get the data, but don't change the buffer.
   1737             ut->chunkOffset = length - (int32_t)ut->chunkNativeStart;
   1738             return FALSE;
   1739         }
   1740 
   1741         ut->chunkNativeLimit = index + REP_TEXT_CHUNK_SIZE - 1;
   1742         // Going forward, so we want to have the buffer with stuff at and beyond
   1743         //   the requested index.  The -1 gets us one code point before the
   1744         //   requested index also, to handle the case of the index being on
   1745         //   a trail surrogate of a surrogate pair.
   1746         if(ut->chunkNativeLimit > length) {
   1747             ut->chunkNativeLimit = length;
   1748         }
   1749         // unless buffer ran off end, start is index-1.
   1750         ut->chunkNativeStart = ut->chunkNativeLimit - REP_TEXT_CHUNK_SIZE;
   1751         if(ut->chunkNativeStart < 0) {
   1752             ut->chunkNativeStart = 0;
   1753         }
   1754     } else {
   1755         // Reverse iteration.  Fill buffer with data preceding the requested index.
   1756         if (index32>ut->chunkNativeStart && index32<=ut->chunkNativeLimit) {
   1757             // Requested position already in buffer.
   1758             ut->chunkOffset = index32 - (int32_t)ut->chunkNativeStart;
   1759             return TRUE;
   1760         }
   1761         if (index32==0 && ut->chunkNativeStart==0) {
   1762             // Request for start, buffer already begins at start.
   1763             //  No data, but keep the buffer as is.
   1764             ut->chunkOffset = 0;
   1765             return FALSE;
   1766         }
   1767 
   1768         // Figure out the bounds of the chunk to extract for reverse iteration.
   1769         // Need to worry about chunk not splitting surrogate pairs, and while still
   1770         // containing the data we need.
   1771         // Fix by requesting a chunk that includes an extra UChar at the end.
   1772         // If this turns out to be a lead surrogate, we can lop it off and still have
   1773         //   the data we wanted.
   1774         ut->chunkNativeStart = index32 + 1 - REP_TEXT_CHUNK_SIZE;
   1775         if (ut->chunkNativeStart < 0) {
   1776             ut->chunkNativeStart = 0;
   1777         }
   1778 
   1779         ut->chunkNativeLimit = index32 + 1;
   1780         if (ut->chunkNativeLimit > length) {
   1781             ut->chunkNativeLimit = length;
   1782         }
   1783     }
   1784 
   1785     // Extract the new chunk of text from the Replaceable source.
   1786     ReplExtra *ex = (ReplExtra *)ut->pExtra;
   1787     // UnicodeString with its buffer a writable alias to the chunk buffer
   1788     UnicodeString buffer(ex->s, 0 /*buffer length*/, REP_TEXT_CHUNK_SIZE /*buffer capacity*/);
   1789     rep->extractBetween((int32_t)ut->chunkNativeStart, (int32_t)ut->chunkNativeLimit, buffer);
   1790 
   1791     ut->chunkContents  = ex->s;
   1792     ut->chunkLength    = (int32_t)(ut->chunkNativeLimit - ut->chunkNativeStart);
   1793     ut->chunkOffset    = (int32_t)(index32 - ut->chunkNativeStart);
   1794 
   1795     // Surrogate pairs from the input text must not span chunk boundaries.
   1796     // If end of chunk could be the start of a surrogate, trim it off.
   1797     if (ut->chunkNativeLimit < length &&
   1798         U16_IS_LEAD(ex->s[ut->chunkLength-1])) {
   1799             ut->chunkLength--;
   1800             ut->chunkNativeLimit--;
   1801             if (ut->chunkOffset > ut->chunkLength) {
   1802                 ut->chunkOffset = ut->chunkLength;
   1803             }
   1804         }
   1805 
   1806     // if the first UChar in the chunk could be the trailing half of a surrogate pair,
   1807     // trim it off.
   1808     if(ut->chunkNativeStart>0 && U16_IS_TRAIL(ex->s[0])) {
   1809         ++(ut->chunkContents);
   1810         ++(ut->chunkNativeStart);
   1811         --(ut->chunkLength);
   1812         --(ut->chunkOffset);
   1813     }
   1814 
   1815     // adjust the index/chunkOffset to a code point boundary
   1816     U16_SET_CP_START(ut->chunkContents, 0, ut->chunkOffset);
   1817 
   1818     // Use fast indexing for get/setNativeIndex()
   1819     ut->nativeIndexingLimit = ut->chunkLength;
   1820 
   1821     return TRUE;
   1822 }
   1823 
   1824 
   1825 
   1826 static int32_t U_CALLCONV
   1827 repTextExtract(UText *ut,
   1828                int64_t start, int64_t limit,
   1829                UChar *dest, int32_t destCapacity,
   1830                UErrorCode *status) {
   1831     const Replaceable *rep=(const Replaceable *)ut->context;
   1832     int32_t  length=rep->length();
   1833 
   1834     if(U_FAILURE(*status)) {
   1835         return 0;
   1836     }
   1837     if(destCapacity<0 || (dest==NULL && destCapacity>0)) {
   1838         *status=U_ILLEGAL_ARGUMENT_ERROR;
   1839     }
   1840     if(start>limit) {
   1841         *status=U_INDEX_OUTOFBOUNDS_ERROR;
   1842         return 0;
   1843     }
   1844 
   1845     int32_t  start32 = pinIndex(start, length);
   1846     int32_t  limit32 = pinIndex(limit, length);
   1847 
   1848     // adjust start, limit if they point to trail half of surrogates
   1849     if (start32<length && U16_IS_TRAIL(rep->charAt(start32)) &&
   1850         U_IS_SUPPLEMENTARY(rep->char32At(start32))){
   1851             start32--;
   1852     }
   1853     if (limit32<length && U16_IS_TRAIL(rep->charAt(limit32)) &&
   1854         U_IS_SUPPLEMENTARY(rep->char32At(limit32))){
   1855             limit32--;
   1856     }
   1857 
   1858     length=limit32-start32;
   1859     if(length>destCapacity) {
   1860         limit32 = start32 + destCapacity;
   1861     }
   1862     UnicodeString buffer(dest, 0, destCapacity); // writable alias
   1863     rep->extractBetween(start32, limit32, buffer);
   1864     repTextAccess(ut, limit32, TRUE);
   1865 
   1866     return u_terminateUChars(dest, destCapacity, length, status);
   1867 }
   1868 
   1869 static int32_t U_CALLCONV
   1870 repTextReplace(UText *ut,
   1871                int64_t start, int64_t limit,
   1872                const UChar *src, int32_t length,
   1873                UErrorCode *status) {
   1874     Replaceable *rep=(Replaceable *)ut->context;
   1875     int32_t oldLength;
   1876 
   1877     if(U_FAILURE(*status)) {
   1878         return 0;
   1879     }
   1880     if(src==NULL && length!=0) {
   1881         *status=U_ILLEGAL_ARGUMENT_ERROR;
   1882         return 0;
   1883     }
   1884     oldLength=rep->length(); // will subtract from new length
   1885     if(start>limit ) {
   1886         *status=U_INDEX_OUTOFBOUNDS_ERROR;
   1887         return 0;
   1888     }
   1889 
   1890     int32_t start32 = pinIndex(start, oldLength);
   1891     int32_t limit32 = pinIndex(limit, oldLength);
   1892 
   1893     // Snap start & limit to code point boundaries.
   1894     if (start32<oldLength && U16_IS_TRAIL(rep->charAt(start32)) &&
   1895         start32>0 && U16_IS_LEAD(rep->charAt(start32-1)))
   1896     {
   1897             start32--;
   1898     }
   1899     if (limit32<oldLength && U16_IS_LEAD(rep->charAt(limit32-1)) &&
   1900         U16_IS_TRAIL(rep->charAt(limit32)))
   1901     {
   1902             limit32++;
   1903     }
   1904 
   1905     // Do the actual replace operation using methods of the Replaceable class
   1906     UnicodeString replStr((UBool)(length<0), src, length); // read-only alias
   1907     rep->handleReplaceBetween(start32, limit32, replStr);
   1908     int32_t newLength = rep->length();
   1909     int32_t lengthDelta = newLength - oldLength;
   1910 
   1911     // Is the UText chunk buffer OK?
   1912     if (ut->chunkNativeLimit > start32) {
   1913         // this replace operation may have impacted the current chunk.
   1914         // invalidate it, which will force a reload on the next access.
   1915         invalidateChunk(ut);
   1916     }
   1917 
   1918     // set the iteration position to the end of the newly inserted replacement text.
   1919     int32_t newIndexPos = limit32 + lengthDelta;
   1920     repTextAccess(ut, newIndexPos, TRUE);
   1921 
   1922     return lengthDelta;
   1923 }
   1924 
   1925 
   1926 static void U_CALLCONV
   1927 repTextCopy(UText *ut,
   1928                 int64_t start, int64_t limit,
   1929                 int64_t destIndex,
   1930                 UBool move,
   1931                 UErrorCode *status)
   1932 {
   1933     Replaceable *rep=(Replaceable *)ut->context;
   1934     int32_t length=rep->length();
   1935 
   1936     if(U_FAILURE(*status)) {
   1937         return;
   1938     }
   1939     if (start>limit || (start<destIndex && destIndex<limit))
   1940     {
   1941         *status=U_INDEX_OUTOFBOUNDS_ERROR;
   1942         return;
   1943     }
   1944 
   1945     int32_t start32     = pinIndex(start, length);
   1946     int32_t limit32     = pinIndex(limit, length);
   1947     int32_t destIndex32 = pinIndex(destIndex, length);
   1948 
   1949     // TODO:  snap input parameters to code point boundaries.
   1950 
   1951     if(move) {
   1952         // move: copy to destIndex, then replace original with nothing
   1953         int32_t segLength=limit32-start32;
   1954         rep->copy(start32, limit32, destIndex32);
   1955         if(destIndex32<start32) {
   1956             start32+=segLength;
   1957             limit32+=segLength;
   1958         }
   1959         rep->handleReplaceBetween(start32, limit32, UnicodeString());
   1960     } else {
   1961         // copy
   1962         rep->copy(start32, limit32, destIndex32);
   1963     }
   1964 
   1965     // If the change to the text touched the region in the chunk buffer,
   1966     //  invalidate the buffer.
   1967     int32_t firstAffectedIndex = destIndex32;
   1968     if (move && start32<firstAffectedIndex) {
   1969         firstAffectedIndex = start32;
   1970     }
   1971     if (firstAffectedIndex < ut->chunkNativeLimit) {
   1972         // changes may have affected range covered by the chunk
   1973         invalidateChunk(ut);
   1974     }
   1975 
   1976     // Put iteration position at the newly inserted (moved) block,
   1977     int32_t  nativeIterIndex = destIndex32 + limit32 - start32;
   1978     if (move && destIndex32>start32) {
   1979         // moved a block of text towards the end of the string.
   1980         nativeIterIndex = destIndex32;
   1981     }
   1982 
   1983     // Set position, reload chunk if needed.
   1984     repTextAccess(ut, nativeIterIndex, TRUE);
   1985 }
   1986 
   1987 static const struct UTextFuncs repFuncs =
   1988 {
   1989     sizeof(UTextFuncs),
   1990     0, 0, 0,           // Reserved alignment padding
   1991     repTextClone,
   1992     repTextLength,
   1993     repTextAccess,
   1994     repTextExtract,
   1995     repTextReplace,
   1996     repTextCopy,
   1997     NULL,              // MapOffsetToNative,
   1998     NULL,              // MapIndexToUTF16,
   1999     repTextClose,
   2000     NULL,              // spare 1
   2001     NULL,              // spare 2
   2002     NULL               // spare 3
   2003 };
   2004 
   2005 
   2006 U_CAPI UText * U_EXPORT2
   2007 utext_openReplaceable(UText *ut, Replaceable *rep, UErrorCode *status)
   2008 {
   2009     if(U_FAILURE(*status)) {
   2010         return NULL;
   2011     }
   2012     if(rep==NULL) {
   2013         *status=U_ILLEGAL_ARGUMENT_ERROR;
   2014         return NULL;
   2015     }
   2016     ut = utext_setup(ut, sizeof(ReplExtra), status);
   2017 
   2018     ut->providerProperties = I32_FLAG(UTEXT_PROVIDER_WRITABLE);
   2019     if(rep->hasMetaData()) {
   2020         ut->providerProperties |=I32_FLAG(UTEXT_PROVIDER_HAS_META_DATA);
   2021     }
   2022 
   2023     ut->pFuncs  = &repFuncs;
   2024     ut->context =  rep;
   2025     return ut;
   2026 }
   2027 
   2028 U_CDECL_END
   2029 
   2030 
   2031 
   2032 
   2033 
   2034 
   2035 
   2036 
   2037 //------------------------------------------------------------------------------
   2038 //
   2039 //     UText implementation for UnicodeString (read/write)  and
   2040 //                    for const UnicodeString (read only)
   2041 //             (same implementation, only the flags are different)
   2042 //
   2043 //         Use of UText data members:
   2044 //            context    pointer to UnicodeString
   2045 //            p          pointer to UnicodeString IF this UText owns the string
   2046 //                       and it must be deleted on close().  NULL otherwise.
   2047 //
   2048 //------------------------------------------------------------------------------
   2049 
   2050 U_CDECL_BEGIN
   2051 
   2052 
   2053 static UText * U_CALLCONV
   2054 unistrTextClone(UText *dest, const UText *src, UBool deep, UErrorCode *status) {
   2055     // First do a generic shallow clone.  Does everything needed for the UText struct itself.
   2056     dest = shallowTextClone(dest, src, status);
   2057 
   2058     // For deep clones, make a copy of the UnicodeSring.
   2059     //  The copied UnicodeString storage is owned by the newly created UText clone.
   2060     //  A non-NULL pointer in UText.p is the signal to the close() function to delete
   2061     //    the UText.
   2062     //
   2063     if (deep && U_SUCCESS(*status)) {
   2064         const UnicodeString *srcString = (const UnicodeString *)src->context;
   2065         dest->context = new UnicodeString(*srcString);
   2066         dest->providerProperties |= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT);
   2067 
   2068         // with deep clone, the copy is writable, even when the source is not.
   2069         dest->providerProperties |= I32_FLAG(UTEXT_PROVIDER_WRITABLE);
   2070     }
   2071     return dest;
   2072 }
   2073 
   2074 static void U_CALLCONV
   2075 unistrTextClose(UText *ut) {
   2076     // Most of the work of close is done by the generic UText framework close.
   2077     // All that needs to be done here is delete the UnicodeString if the UText
   2078     //  owns it.  This occurs if the UText was created by cloning.
   2079     if (ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT)) {
   2080         UnicodeString *str = (UnicodeString *)ut->context;
   2081         delete str;
   2082         ut->context = NULL;
   2083     }
   2084 }
   2085 
   2086 
   2087 static int64_t U_CALLCONV
   2088 unistrTextLength(UText *t) {
   2089     return ((const UnicodeString *)t->context)->length();
   2090 }
   2091 
   2092 
   2093 static UBool U_CALLCONV
   2094 unistrTextAccess(UText *ut, int64_t index, UBool  forward) {
   2095     int32_t length  = ut->chunkLength;
   2096     ut->chunkOffset = pinIndex(index, length);
   2097 
   2098     // Check whether request is at the start or end
   2099     UBool retVal = (forward && index<length) || (!forward && index>0);
   2100     return retVal;
   2101 }
   2102 
   2103 
   2104 
   2105 static int32_t U_CALLCONV
   2106 unistrTextExtract(UText *t,
   2107                   int64_t start, int64_t limit,
   2108                   UChar *dest, int32_t destCapacity,
   2109                   UErrorCode *pErrorCode) {
   2110     const UnicodeString *us=(const UnicodeString *)t->context;
   2111     int32_t length=us->length();
   2112 
   2113     if(U_FAILURE(*pErrorCode)) {
   2114         return 0;
   2115     }
   2116     if(destCapacity<0 || (dest==NULL && destCapacity>0)) {
   2117         *pErrorCode=U_ILLEGAL_ARGUMENT_ERROR;
   2118     }
   2119     if(start<0 || start>limit) {
   2120         *pErrorCode=U_INDEX_OUTOFBOUNDS_ERROR;
   2121         return 0;
   2122     }
   2123 
   2124     int32_t start32 = start<length ? us->getChar32Start((int32_t)start) : length;
   2125     int32_t limit32 = limit<length ? us->getChar32Start((int32_t)limit) : length;
   2126 
   2127     length=limit32-start32;
   2128     if (destCapacity>0 && dest!=NULL) {
   2129         int32_t trimmedLength = length;
   2130         if(trimmedLength>destCapacity) {
   2131             trimmedLength=destCapacity;
   2132         }
   2133         us->extract(start32, trimmedLength, dest);
   2134         t->chunkOffset = start32+trimmedLength;
   2135     } else {
   2136         t->chunkOffset = start32;
   2137     }
   2138     u_terminateUChars(dest, destCapacity, length, pErrorCode);
   2139     return length;
   2140 }
   2141 
   2142 static int32_t U_CALLCONV
   2143 unistrTextReplace(UText *ut,
   2144                   int64_t start, int64_t limit,
   2145                   const UChar *src, int32_t length,
   2146                   UErrorCode *pErrorCode) {
   2147     UnicodeString *us=(UnicodeString *)ut->context;
   2148     int32_t oldLength;
   2149 
   2150     if(U_FAILURE(*pErrorCode)) {
   2151         return 0;
   2152     }
   2153     if(src==NULL && length!=0) {
   2154         *pErrorCode=U_ILLEGAL_ARGUMENT_ERROR;
   2155     }
   2156     if(start>limit) {
   2157         *pErrorCode=U_INDEX_OUTOFBOUNDS_ERROR;
   2158         return 0;
   2159     }
   2160     oldLength=us->length();
   2161     int32_t start32 = pinIndex(start, oldLength);
   2162     int32_t limit32 = pinIndex(limit, oldLength);
   2163     if (start32 < oldLength) {
   2164         start32 = us->getChar32Start(start32);
   2165     }
   2166     if (limit32 < oldLength) {
   2167         limit32 = us->getChar32Start(limit32);
   2168     }
   2169 
   2170     // replace
   2171     us->replace(start32, limit32-start32, src, length);
   2172     int32_t newLength = us->length();
   2173 
   2174     // Update the chunk description.
   2175     ut->chunkContents    = us->getBuffer();
   2176     ut->chunkLength      = newLength;
   2177     ut->chunkNativeLimit = newLength;
   2178     ut->nativeIndexingLimit = newLength;
   2179 
   2180     // Set iteration position to the point just following the newly inserted text.
   2181     int32_t lengthDelta = newLength - oldLength;
   2182     ut->chunkOffset = limit32 + lengthDelta;
   2183 
   2184     return lengthDelta;
   2185 }
   2186 
   2187 static void U_CALLCONV
   2188 unistrTextCopy(UText *ut,
   2189                int64_t start, int64_t limit,
   2190                int64_t destIndex,
   2191                UBool move,
   2192                UErrorCode *pErrorCode) {
   2193     UnicodeString *us=(UnicodeString *)ut->context;
   2194     int32_t length=us->length();
   2195 
   2196     if(U_FAILURE(*pErrorCode)) {
   2197         return;
   2198     }
   2199     int32_t start32 = pinIndex(start, length);
   2200     int32_t limit32 = pinIndex(limit, length);
   2201     int32_t destIndex32 = pinIndex(destIndex, length);
   2202 
   2203     if( start32>limit32 || (start32<destIndex32 && destIndex32<limit32)) {
   2204         *pErrorCode=U_INDEX_OUTOFBOUNDS_ERROR;
   2205         return;
   2206     }
   2207 
   2208     if(move) {
   2209         // move: copy to destIndex, then replace original with nothing
   2210         int32_t segLength=limit32-start32;
   2211         us->copy(start32, limit32, destIndex32);
   2212         if(destIndex32<start32) {
   2213             start32+=segLength;
   2214         }
   2215         us->replace(start32, segLength, NULL, 0);
   2216     } else {
   2217         // copy
   2218         us->copy(start32, limit32, destIndex32);
   2219     }
   2220 
   2221     // update chunk description, set iteration position.
   2222     ut->chunkContents = us->getBuffer();
   2223     if (move==FALSE) {
   2224         // copy operation, string length grows
   2225         ut->chunkLength += limit32-start32;
   2226         ut->chunkNativeLimit = ut->chunkLength;
   2227         ut->nativeIndexingLimit = ut->chunkLength;
   2228     }
   2229 
   2230     // Iteration position to end of the newly inserted text.
   2231     ut->chunkOffset = destIndex32+limit32-start32;
   2232     if (move && destIndex32>start32) {
   2233         ut->chunkOffset = destIndex32;
   2234     }
   2235 
   2236 }
   2237 
   2238 static const struct UTextFuncs unistrFuncs =
   2239 {
   2240     sizeof(UTextFuncs),
   2241     0, 0, 0,             // Reserved alignment padding
   2242     unistrTextClone,
   2243     unistrTextLength,
   2244     unistrTextAccess,
   2245     unistrTextExtract,
   2246     unistrTextReplace,
   2247     unistrTextCopy,
   2248     NULL,                // MapOffsetToNative,
   2249     NULL,                // MapIndexToUTF16,
   2250     unistrTextClose,
   2251     NULL,                // spare 1
   2252     NULL,                // spare 2
   2253     NULL                 // spare 3
   2254 };
   2255 
   2256 
   2257 
   2258 U_CDECL_END
   2259 
   2260 
   2261 U_CAPI UText * U_EXPORT2
   2262 utext_openUnicodeString(UText *ut, UnicodeString *s, UErrorCode *status) {
   2263     ut = utext_openConstUnicodeString(ut, s, status);
   2264     if (U_SUCCESS(*status)) {
   2265         ut->providerProperties |= I32_FLAG(UTEXT_PROVIDER_WRITABLE);
   2266     }
   2267     return ut;
   2268 }
   2269 
   2270 
   2271 
   2272 U_CAPI UText * U_EXPORT2
   2273 utext_openConstUnicodeString(UText *ut, const UnicodeString *s, UErrorCode *status) {
   2274     if (U_SUCCESS(*status) && s->isBogus()) {
   2275         // The UnicodeString is bogus, but we still need to detach the UText
   2276         //   from whatever it was hooked to before, if anything.
   2277         utext_openUChars(ut, NULL, 0, status);
   2278         *status = U_ILLEGAL_ARGUMENT_ERROR;
   2279         return ut;
   2280     }
   2281     ut = utext_setup(ut, 0, status);
   2282     //    note:  use the standard (writable) function table for UnicodeString.
   2283     //           The flag settings disable writing, so having the functions in
   2284     //           the table is harmless.
   2285     if (U_SUCCESS(*status)) {
   2286         ut->pFuncs              = &unistrFuncs;
   2287         ut->context             = s;
   2288         ut->providerProperties  = I32_FLAG(UTEXT_PROVIDER_STABLE_CHUNKS);
   2289         ut->chunkContents       = s->getBuffer();
   2290         ut->chunkLength         = s->length();
   2291         ut->chunkNativeStart    = 0;
   2292         ut->chunkNativeLimit    = ut->chunkLength;
   2293         ut->nativeIndexingLimit = ut->chunkLength;
   2294     }
   2295     return ut;
   2296 }
   2297 
   2298 //------------------------------------------------------------------------------
   2299 //
   2300 //     UText implementation for const UChar * strings
   2301 //
   2302 //         Use of UText data members:
   2303 //            context    pointer to UnicodeString
   2304 //            a          length.  -1 if not yet known.
   2305 //
   2306 //         TODO:  support 64 bit lengths.
   2307 //
   2308 //------------------------------------------------------------------------------
   2309 
   2310 U_CDECL_BEGIN
   2311 
   2312 
   2313 static UText * U_CALLCONV
   2314 ucstrTextClone(UText *dest, const UText * src, UBool deep, UErrorCode * status) {
   2315     // First do a generic shallow clone.
   2316     dest = shallowTextClone(dest, src, status);
   2317 
   2318     // For deep clones, make a copy of the string.
   2319     //  The copied storage is owned by the newly created clone.
   2320     //  A non-NULL pointer in UText.p is the signal to the close() function to delete
   2321     //    it.
   2322     //
   2323     if (deep && U_SUCCESS(*status)) {
   2324         U_ASSERT(utext_nativeLength(dest) < INT32_MAX);
   2325         int32_t  len = (int32_t)utext_nativeLength(dest);
   2326 
   2327         // The cloned string IS going to be NUL terminated, whether or not the original was.
   2328         const UChar *srcStr = (const UChar *)src->context;
   2329         UChar *copyStr = (UChar *)uprv_malloc((len+1) * sizeof(UChar));
   2330         if (copyStr == NULL) {
   2331             *status = U_MEMORY_ALLOCATION_ERROR;
   2332         } else {
   2333             int64_t i;
   2334             for (i=0; i<len; i++) {
   2335                 copyStr[i] = srcStr[i];
   2336             }
   2337             copyStr[len] = 0;
   2338             dest->context = copyStr;
   2339             dest->providerProperties |= I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT);
   2340         }
   2341     }
   2342     return dest;
   2343 }
   2344 
   2345 
   2346 static void U_CALLCONV
   2347 ucstrTextClose(UText *ut) {
   2348     // Most of the work of close is done by the generic UText framework close.
   2349     // All that needs to be done here is delete the string if the UText
   2350     //  owns it.  This occurs if the UText was created by cloning.
   2351     if (ut->providerProperties & I32_FLAG(UTEXT_PROVIDER_OWNS_TEXT)) {
   2352         UChar *s = (UChar *)ut->context;
   2353         uprv_free(s);
   2354         ut->context = NULL;
   2355     }
   2356 }
   2357 
   2358 
   2359 
   2360 static int64_t U_CALLCONV
   2361 ucstrTextLength(UText *ut) {
   2362     if (ut->a < 0) {
   2363         // null terminated, we don't yet know the length.  Scan for it.
   2364         //    Access is not convenient for doing this
   2365         //    because the current interation postion can't be changed.
   2366         const UChar  *str = (const UChar *)ut->context;
   2367         for (;;) {
   2368             if (str[ut->chunkNativeLimit] == 0) {
   2369                 break;
   2370             }
   2371             ut->chunkNativeLimit++;
   2372         }
   2373         ut->a = ut->chunkNativeLimit;
   2374         ut->chunkLength = (int32_t)ut->chunkNativeLimit;
   2375         ut->nativeIndexingLimit = ut->chunkLength;
   2376         ut->providerProperties &= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
   2377     }
   2378     return ut->a;
   2379 }
   2380 
   2381 
   2382 static UBool U_CALLCONV
   2383 ucstrTextAccess(UText *ut, int64_t index, UBool  forward) {
   2384     const UChar *str   = (const UChar *)ut->context;
   2385 
   2386     // pin the requested index to the bounds of the string,
   2387     //  and set current iteration position.
   2388     if (index<0) {
   2389         index = 0;
   2390     } else if (index < ut->chunkNativeLimit) {
   2391         // The request data is within the chunk as it is known so far.
   2392         // Put index on a code point boundary.
   2393         U16_SET_CP_START(str, 0, index);
   2394     } else if (ut->a >= 0) {
   2395         // We know the length of this string, and the user is requesting something
   2396         // at or beyond the length.  Pin the requested index to the length.
   2397         index = ut->a;
   2398     } else {
   2399         // Null terminated string, length not yet known, and the requested index
   2400         //  is beyond where we have scanned so far.
   2401         //  Scan to 32 UChars beyond the requested index.  The strategy here is
   2402         //  to avoid fully scanning a long string when the caller only wants to
   2403         //  see a few characters at its beginning.
   2404         int32_t scanLimit = (int32_t)index + 32;
   2405         if ((index + 32)>INT32_MAX || (index + 32)<0 ) {   // note: int64 expression
   2406             scanLimit = INT32_MAX;
   2407         }
   2408 
   2409         int32_t chunkLimit = (int32_t)ut->chunkNativeLimit;
   2410         for (; chunkLimit<scanLimit; chunkLimit++) {
   2411             if (str[chunkLimit] == 0) {
   2412                 // We found the end of the string.  Remember it, pin the requested index to it,
   2413                 //  and bail out of here.
   2414                 ut->a = chunkLimit;
   2415                 ut->chunkLength = chunkLimit;
   2416                 ut->nativeIndexingLimit = chunkLimit;
   2417                 if (index >= chunkLimit) {
   2418                     index = chunkLimit;
   2419                 } else {
   2420                     U16_SET_CP_START(str, 0, index);
   2421                 }
   2422 
   2423                 ut->chunkNativeLimit = chunkLimit;
   2424                 ut->providerProperties &= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
   2425                 goto breakout;
   2426             }
   2427         }
   2428         // We scanned through the next batch of UChars without finding the end.
   2429         U16_SET_CP_START(str, 0, index);
   2430         if (chunkLimit == INT32_MAX) {
   2431             // Scanned to the limit of a 32 bit length.
   2432             // Forceably trim the overlength string back so length fits in int32
   2433             //  TODO:  add support for 64 bit strings.
   2434             ut->a = chunkLimit;
   2435             ut->chunkLength = chunkLimit;
   2436             ut->nativeIndexingLimit = chunkLimit;
   2437             if (index > chunkLimit) {
   2438                 index = chunkLimit;
   2439             }
   2440             ut->chunkNativeLimit = chunkLimit;
   2441             ut->providerProperties &= ~I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
   2442         } else {
   2443             // The endpoint of a chunk must not be left in the middle of a surrogate pair.
   2444             // If the current end is on a lead surrogate, back the end up by one.
   2445             // It doesn't matter if the end char happens to be an unpaired surrogate,
   2446             //    and it's simpler not to worry about it.
   2447             if (U16_IS_LEAD(str[chunkLimit-1])) {
   2448                 --chunkLimit;
   2449             }
   2450             // Null-terminated chunk with end still unknown.
   2451             // Update the chunk length to reflect what has been scanned thus far.
   2452             // That the full length is still unknown is (still) flagged by
   2453             //    ut->a being < 0.
   2454             ut->chunkNativeLimit = chunkLimit;
   2455             ut->nativeIndexingLimit = chunkLimit;
   2456             ut->chunkLength = chunkLimit;
   2457         }
   2458 
   2459     }
   2460 breakout:
   2461     U_ASSERT(index<=INT32_MAX);
   2462     ut->chunkOffset = (int32_t)index;
   2463 
   2464     // Check whether request is at the start or end
   2465     UBool retVal = (forward && index<ut->chunkNativeLimit) || (!forward && index>0);
   2466     return retVal;
   2467 }
   2468 
   2469 
   2470 
   2471 static int32_t U_CALLCONV
   2472 ucstrTextExtract(UText *ut,
   2473                   int64_t start, int64_t limit,
   2474                   UChar *dest, int32_t destCapacity,
   2475                   UErrorCode *pErrorCode)
   2476 {
   2477     if(U_FAILURE(*pErrorCode)) {
   2478         return 0;
   2479     }
   2480     if(destCapacity<0 || (dest==NULL && destCapacity>0) || start>limit) {
   2481         *pErrorCode=U_ILLEGAL_ARGUMENT_ERROR;
   2482         return 0;
   2483     }
   2484 
   2485     //const UChar *s=(const UChar *)ut->context;
   2486     int32_t si, di;
   2487 
   2488     int32_t start32;
   2489     int32_t limit32;
   2490 
   2491     // Access the start.  Does two things we need:
   2492     //   Pins 'start' to the length of the string, if it came in out-of-bounds.
   2493     //   Snaps 'start' to the beginning of a code point.
   2494     ucstrTextAccess(ut, start, TRUE);
   2495     const UChar *s=ut->chunkContents;
   2496     start32 = ut->chunkOffset;
   2497 
   2498     int32_t strLength=(int32_t)ut->a;
   2499     if (strLength >= 0) {
   2500         limit32 = pinIndex(limit, strLength);
   2501     } else {
   2502         limit32 = pinIndex(limit, INT32_MAX);
   2503     }
   2504     di = 0;
   2505     for (si=start32; si<limit32; si++) {
   2506         if (strLength<0 && s[si]==0) {
   2507             // Just hit the end of a null-terminated string.
   2508             ut->a = si;               // set string length for this UText
   2509             ut->chunkNativeLimit    = si;
   2510             ut->chunkLength         = si;
   2511             ut->nativeIndexingLimit = si;
   2512             strLength               = si;
   2513             break;
   2514         }
   2515         U_ASSERT(di>=0); /* to ensure di never exceeds INT32_MAX, which must not happen logically */
   2516         if (di<destCapacity) {
   2517             // only store if there is space.
   2518             dest[di] = s[si];
   2519         } else {
   2520             if (strLength>=0) {
   2521                 // We have filled the destination buffer, and the string length is known.
   2522                 //  Cut the loop short.  There is no need to scan string termination.
   2523                 di = limit32 - start32;
   2524                 si = limit32;
   2525                 break;
   2526             }
   2527         }
   2528         di++;
   2529     }
   2530 
   2531     // If the limit index points to a lead surrogate of a pair,
   2532     //   add the corresponding trail surrogate to the destination.
   2533     if (si>0 && U16_IS_LEAD(s[si-1]) &&
   2534         ((si<strLength || strLength<0)  && U16_IS_TRAIL(s[si])))
   2535     {
   2536         if (di<destCapacity) {
   2537             // store only if there is space in the output buffer.
   2538             dest[di++] = s[si++];
   2539         }
   2540     }
   2541 
   2542     // Put iteration position at the point just following the extracted text
   2543     ut->chunkOffset = uprv_min(strLength, start32 + destCapacity);
   2544 
   2545     // Add a terminating NUL if space in the buffer permits,
   2546     // and set the error status as required.
   2547     u_terminateUChars(dest, destCapacity, di, pErrorCode);
   2548     return di;
   2549 }
   2550 
   2551 static const struct UTextFuncs ucstrFuncs =
   2552 {
   2553     sizeof(UTextFuncs),
   2554     0, 0, 0,           // Reserved alignment padding
   2555     ucstrTextClone,
   2556     ucstrTextLength,
   2557     ucstrTextAccess,
   2558     ucstrTextExtract,
   2559     NULL,              // Replace
   2560     NULL,              // Copy
   2561     NULL,              // MapOffsetToNative,
   2562     NULL,              // MapIndexToUTF16,
   2563     ucstrTextClose,
   2564     NULL,              // spare 1
   2565     NULL,              // spare 2
   2566     NULL,              // spare 3
   2567 };
   2568 
   2569 U_CDECL_END
   2570 
   2571 static const UChar gEmptyUString[] = {0};
   2572 
   2573 U_CAPI UText * U_EXPORT2
   2574 utext_openUChars(UText *ut, const UChar *s, int64_t length, UErrorCode *status) {
   2575     if (U_FAILURE(*status)) {
   2576         return NULL;
   2577     }
   2578     if(s==NULL && length==0) {
   2579         s = gEmptyUString;
   2580     }
   2581     if (s==NULL || length < -1 || length>INT32_MAX) {
   2582         *status = U_ILLEGAL_ARGUMENT_ERROR;
   2583         return NULL;
   2584     }
   2585     ut = utext_setup(ut, 0, status);
   2586     if (U_SUCCESS(*status)) {
   2587         ut->pFuncs               = &ucstrFuncs;
   2588         ut->context              = s;
   2589         ut->providerProperties   = I32_FLAG(UTEXT_PROVIDER_STABLE_CHUNKS);
   2590         if (length==-1) {
   2591             ut->providerProperties |= I32_FLAG(UTEXT_PROVIDER_LENGTH_IS_EXPENSIVE);
   2592         }
   2593         ut->a                    = length;
   2594         ut->chunkContents        = s;
   2595         ut->chunkNativeStart     = 0;
   2596         ut->chunkNativeLimit     = length>=0? length : 0;
   2597         ut->chunkLength          = (int32_t)ut->chunkNativeLimit;
   2598         ut->chunkOffset          = 0;
   2599         ut->nativeIndexingLimit  = ut->chunkLength;
   2600     }
   2601     return ut;
   2602 }
   2603 
   2604 
   2605 //------------------------------------------------------------------------------
   2606 //
   2607 //     UText implementation for text from ICU CharacterIterators
   2608 //
   2609 //         Use of UText data members:
   2610 //            context    pointer to the CharacterIterator
   2611 //            a          length of the full text.
   2612 //            p          pointer to  buffer 1
   2613 //            b          start index of local buffer 1 contents
   2614 //            q          pointer to buffer 2
   2615 //            c          start index of local buffer 2 contents
   2616 //            r          pointer to the character iterator if the UText owns it.
   2617 //                       Null otherwise.
   2618 //
   2619 //------------------------------------------------------------------------------
   2620 #define CIBufSize 16
   2621 
   2622 U_CDECL_BEGIN
   2623 static void U_CALLCONV
   2624 charIterTextClose(UText *ut) {
   2625     // Most of the work of close is done by the generic UText framework close.
   2626     // All that needs to be done here is delete the CharacterIterator if the UText
   2627     //  owns it.  This occurs if the UText was created by cloning.
   2628     CharacterIterator *ci = (CharacterIterator *)ut->r;
   2629     delete ci;
   2630     ut->r = NULL;
   2631 }
   2632 
   2633 static int64_t U_CALLCONV
   2634 charIterTextLength(UText *ut) {
   2635     return (int32_t)ut->a;
   2636 }
   2637 
   2638 static UBool U_CALLCONV
   2639 charIterTextAccess(UText *ut, int64_t index, UBool  forward) {
   2640     CharacterIterator *ci   = (CharacterIterator *)ut->context;
   2641 
   2642     int32_t clippedIndex = (int32_t)index;
   2643     if (clippedIndex<0) {
   2644         clippedIndex=0;
   2645     } else if (clippedIndex>=ut->a) {
   2646         clippedIndex=(int32_t)ut->a;
   2647     }
   2648     int32_t neededIndex = clippedIndex;
   2649     if (!forward && neededIndex>0) {
   2650         // reverse iteration, want the position just before what was asked for.
   2651         neededIndex--;
   2652     } else if (forward && neededIndex==ut->a && neededIndex>0) {
   2653         // Forward iteration, don't ask for something past the end of the text.
   2654         neededIndex--;
   2655     }
   2656 
   2657     // Find the native index of the start of the buffer containing what we want.
   2658     neededIndex -= neededIndex % CIBufSize;
   2659 
   2660     UChar *buf = NULL;
   2661     UBool  needChunkSetup = TRUE;
   2662     int    i;
   2663     if (ut->chunkNativeStart == neededIndex) {
   2664         // The buffer we want is already the current chunk.
   2665         needChunkSetup = FALSE;
   2666     } else if (ut->b == neededIndex) {
   2667         // The first buffer (buffer p) has what we need.
   2668         buf = (UChar *)ut->p;
   2669     } else if (ut->c == neededIndex) {
   2670         // The second buffer (buffer q) has what we need.
   2671         buf = (UChar *)ut->q;
   2672     } else {
   2673         // Neither buffer already has what we need.
   2674         // Load new data from the character iterator.
   2675         // Use the buf that is not the current buffer.
   2676         buf = (UChar *)ut->p;
   2677         if (ut->p == ut->chunkContents) {
   2678             buf = (UChar *)ut->q;
   2679         }
   2680         ci->setIndex(neededIndex);
   2681         for (i=0; i<CIBufSize; i++) {
   2682             buf[i] = ci->nextPostInc();
   2683             if (i+neededIndex > ut->a) {
   2684                 break;
   2685             }
   2686         }
   2687     }
   2688 
   2689     // We have a buffer with the data we need.
   2690     // Set it up as the current chunk, if it wasn't already.
   2691     if (needChunkSetup) {
   2692         ut->chunkContents = buf;
   2693         ut->chunkLength   = CIBufSize;
   2694         ut->chunkNativeStart = neededIndex;
   2695         ut->chunkNativeLimit = neededIndex + CIBufSize;
   2696         if (ut->chunkNativeLimit > ut->a) {
   2697             ut->chunkNativeLimit = ut->a;
   2698             ut->chunkLength  = (int32_t)(ut->chunkNativeLimit)-(int32_t)(ut->chunkNativeStart);
   2699         }
   2700         ut->nativeIndexingLimit = ut->chunkLength;
   2701         U_ASSERT(ut->chunkOffset>=0 && ut->chunkOffset<=CIBufSize);
   2702     }
   2703     ut->chunkOffset = clippedIndex - (int32_t)ut->chunkNativeStart;
   2704     UBool success = (forward? ut->chunkOffset<ut->chunkLength : ut->chunkOffset>0);
   2705     return success;
   2706 }
   2707 
   2708 static UText * U_CALLCONV
   2709 charIterTextClone(UText *dest, const UText *src, UBool deep, UErrorCode * status) {
   2710     if (U_FAILURE(*status)) {
   2711         return NULL;
   2712     }
   2713 
   2714     if (deep) {
   2715         // There is no CharacterIterator API for cloning the underlying text storage.
   2716         *status = U_UNSUPPORTED_ERROR;
   2717         return NULL;
   2718     } else {
   2719         CharacterIterator *srcCI =(CharacterIterator *)src->context;
   2720         srcCI = srcCI->clone();
   2721         dest = utext_openCharacterIterator(dest, srcCI, status);
   2722         // cast off const on getNativeIndex.
   2723         //   For CharacterIterator based UTexts, this is safe, the operation is const.
   2724         int64_t  ix = utext_getNativeIndex((UText *)src);
   2725         utext_setNativeIndex(dest, ix);
   2726         dest->r = srcCI;    // flags that this UText owns the CharacterIterator
   2727     }
   2728     return dest;
   2729 }
   2730 
   2731 static int32_t U_CALLCONV
   2732 charIterTextExtract(UText *ut,
   2733                   int64_t start, int64_t limit,
   2734                   UChar *dest, int32_t destCapacity,
   2735                   UErrorCode *status)
   2736 {
   2737     if(U_FAILURE(*status)) {
   2738         return 0;
   2739     }
   2740     if(destCapacity<0 || (dest==NULL && destCapacity>0) || start>limit) {
   2741         *status=U_ILLEGAL_ARGUMENT_ERROR;
   2742         return 0;
   2743     }
   2744     int32_t  length  = (int32_t)ut->a;
   2745     int32_t  start32 = pinIndex(start, length);
   2746     int32_t  limit32 = pinIndex(limit, length);
   2747     int32_t  desti   = 0;
   2748     int32_t  srci;
   2749     int32_t  copyLimit;
   2750 
   2751     CharacterIterator *ci = (CharacterIterator *)ut->context;
   2752     ci->setIndex32(start32);   // Moves ix to lead of surrogate pair, if needed.
   2753     srci = ci->getIndex();
   2754     copyLimit = srci;
   2755     while (srci<limit32) {
   2756         UChar32 c = ci->next32PostInc();
   2757         int32_t  len = U16_LENGTH(c);
   2758         U_ASSERT(desti+len>0); /* to ensure desti+len never exceeds MAX_INT32, which must not happen logically */
   2759         if (desti+len <= destCapacity) {
   2760             U16_APPEND_UNSAFE(dest, desti, c);
   2761             copyLimit = srci+len;
   2762         } else {
   2763             desti += len;
   2764             *status = U_BUFFER_OVERFLOW_ERROR;
   2765         }
   2766         srci += len;
   2767     }
   2768 
   2769     charIterTextAccess(ut, copyLimit, TRUE);
   2770 
   2771     u_terminateUChars(dest, destCapacity, desti, status);
   2772     return desti;
   2773 }
   2774 
   2775 static const struct UTextFuncs charIterFuncs =
   2776 {
   2777     sizeof(UTextFuncs),
   2778     0, 0, 0,             // Reserved alignment padding
   2779     charIterTextClone,
   2780     charIterTextLength,
   2781     charIterTextAccess,
   2782     charIterTextExtract,
   2783     NULL,                // Replace
   2784     NULL,                // Copy
   2785     NULL,                // MapOffsetToNative,
   2786     NULL,                // MapIndexToUTF16,
   2787     charIterTextClose,
   2788     NULL,                // spare 1
   2789     NULL,                // spare 2
   2790     NULL                 // spare 3
   2791 };
   2792 U_CDECL_END
   2793 
   2794 
   2795 U_CAPI UText * U_EXPORT2
   2796 utext_openCharacterIterator(UText *ut, CharacterIterator *ci, UErrorCode *status) {
   2797     if (U_FAILURE(*status)) {
   2798         return NULL;
   2799     }
   2800 
   2801     if (ci->startIndex() > 0) {
   2802         // No support for CharacterIterators that do not start indexing from zero.
   2803         *status = U_UNSUPPORTED_ERROR;
   2804         return NULL;
   2805     }
   2806 
   2807     // Extra space in UText for 2 buffers of CIBufSize UChars each.
   2808     int32_t  extraSpace = 2 * CIBufSize * sizeof(UChar);
   2809     ut = utext_setup(ut, extraSpace, status);
   2810     if (U_SUCCESS(*status)) {
   2811         ut->pFuncs                = &charIterFuncs;
   2812         ut->context              = ci;
   2813         ut->providerProperties   = 0;
   2814         ut->a                    = ci->endIndex();        // Length of text
   2815         ut->p                    = ut->pExtra;            // First buffer
   2816         ut->b                    = -1;                    // Native index of first buffer contents
   2817         ut->q                    = (UChar*)ut->pExtra+CIBufSize;  // Second buffer
   2818         ut->c                    = -1;                    // Native index of second buffer contents
   2819 
   2820         // Initialize current chunk contents to be empty.
   2821         //   First access will fault something in.
   2822         //   Note:  The initial nativeStart and chunkOffset must sum to zero
   2823         //          so that getNativeIndex() will correctly compute to zero
   2824         //          if no call to Access() has ever been made.  They can't be both
   2825         //          zero without Access() thinking that the chunk is valid.
   2826         ut->chunkContents        = (UChar *)ut->p;
   2827         ut->chunkNativeStart     = -1;
   2828         ut->chunkOffset          = 1;
   2829         ut->chunkNativeLimit     = 0;
   2830         ut->chunkLength          = 0;
   2831         ut->nativeIndexingLimit  = ut->chunkOffset;  // enables native indexing
   2832     }
   2833     return ut;
   2834 }
   2835 
   2836 
   2837 
   2838