1 // 2016 and later: Unicode, Inc. and others. 2 // License & terms of use: http://www.unicode.org/copyright.html 3 /* 4 ****************************************************************************** 5 * Copyright (C) 1999-2016, International Business Machines Corporation and 6 * others. All Rights Reserved. 7 ****************************************************************************** 8 * 9 * File unistr.cpp 10 * 11 * Modification History: 12 * 13 * Date Name Description 14 * 09/25/98 stephen Creation. 15 * 04/20/99 stephen Overhauled per 4/16 code review. 16 * 07/09/99 stephen Renamed {hi,lo},{byte,word} to icu_X for HP/UX 17 * 11/18/99 aliu Added handleReplaceBetween() to make inherit from 18 * Replaceable. 19 * 06/25/01 grhoten Removed the dependency on iostream 20 ****************************************************************************** 21 */ 22 23 #include "unicode/utypes.h" 24 #include "unicode/appendable.h" 25 #include "unicode/putil.h" 26 #include "cstring.h" 27 #include "cmemory.h" 28 #include "unicode/ustring.h" 29 #include "unicode/unistr.h" 30 #include "unicode/utf.h" 31 #include "unicode/utf16.h" 32 #include "uelement.h" 33 #include "ustr_imp.h" 34 #include "umutex.h" 35 #include "uassert.h" 36 37 #if 0 38 39 #include <iostream> 40 using namespace std; 41 42 //DEBUGGING 43 void 44 print(const UnicodeString& s, 45 const char *name) 46 { 47 UChar c; 48 cout << name << ":|"; 49 for(int i = 0; i < s.length(); ++i) { 50 c = s[i]; 51 if(c>= 0x007E || c < 0x0020) 52 cout << "[0x" << hex << s[i] << "]"; 53 else 54 cout << (char) s[i]; 55 } 56 cout << '|' << endl; 57 } 58 59 void 60 print(const UChar *s, 61 int32_t len, 62 const char *name) 63 { 64 UChar c; 65 cout << name << ":|"; 66 for(int i = 0; i < len; ++i) { 67 c = s[i]; 68 if(c>= 0x007E || c < 0x0020) 69 cout << "[0x" << hex << s[i] << "]"; 70 else 71 cout << (char) s[i]; 72 } 73 cout << '|' << endl; 74 } 75 // END DEBUGGING 76 #endif 77 78 // Local function definitions for now 79 80 // need to copy areas that may overlap 81 static 82 inline void 83 us_arrayCopy(const UChar *src, int32_t srcStart, 84 UChar *dst, int32_t dstStart, int32_t count) 85 { 86 if(count>0) { 87 uprv_memmove(dst+dstStart, src+srcStart, (size_t)count*sizeof(*src)); 88 } 89 } 90 91 // u_unescapeAt() callback to get a UChar from a UnicodeString 92 U_CDECL_BEGIN 93 static UChar U_CALLCONV 94 UnicodeString_charAt(int32_t offset, void *context) { 95 return ((icu::UnicodeString*) context)->charAt(offset); 96 } 97 U_CDECL_END 98 99 U_NAMESPACE_BEGIN 100 101 /* The Replaceable virtual destructor can't be defined in the header 102 due to how AIX works with multiple definitions of virtual functions. 103 */ 104 Replaceable::~Replaceable() {} 105 106 UOBJECT_DEFINE_RTTI_IMPLEMENTATION(UnicodeString) 107 108 UnicodeString U_EXPORT2 109 operator+ (const UnicodeString &s1, const UnicodeString &s2) { 110 return 111 UnicodeString(s1.length()+s2.length()+1, (UChar32)0, 0). 112 append(s1). 113 append(s2); 114 } 115 116 //======================================== 117 // Reference Counting functions, put at top of file so that optimizing compilers 118 // have a chance to automatically inline. 119 //======================================== 120 121 void 122 UnicodeString::addRef() { 123 umtx_atomic_inc((u_atomic_int32_t *)fUnion.fFields.fArray - 1); 124 } 125 126 int32_t 127 UnicodeString::removeRef() { 128 return umtx_atomic_dec((u_atomic_int32_t *)fUnion.fFields.fArray - 1); 129 } 130 131 int32_t 132 UnicodeString::refCount() const { 133 return umtx_loadAcquire(*((u_atomic_int32_t *)fUnion.fFields.fArray - 1)); 134 } 135 136 void 137 UnicodeString::releaseArray() { 138 if((fUnion.fFields.fLengthAndFlags & kRefCounted) && removeRef() == 0) { 139 uprv_free((int32_t *)fUnion.fFields.fArray - 1); 140 } 141 } 142 143 144 145 //======================================== 146 // Constructors 147 //======================================== 148 149 // The default constructor is inline in unistr.h. 150 151 UnicodeString::UnicodeString(int32_t capacity, UChar32 c, int32_t count) { 152 fUnion.fFields.fLengthAndFlags = 0; 153 if(count <= 0 || (uint32_t)c > 0x10ffff) { 154 // just allocate and do not do anything else 155 allocate(capacity); 156 } else if(c <= 0xffff) { 157 int32_t length = count; 158 if(capacity < length) { 159 capacity = length; 160 } 161 if(allocate(capacity)) { 162 UChar *array = getArrayStart(); 163 UChar unit = (UChar)c; 164 for(int32_t i = 0; i < length; ++i) { 165 array[i] = unit; 166 } 167 setLength(length); 168 } 169 } else { // supplementary code point, write surrogate pairs 170 if(count > (INT32_MAX / 2)) { 171 // We would get more than 2G UChars. 172 allocate(capacity); 173 return; 174 } 175 int32_t length = count * 2; 176 if(capacity < length) { 177 capacity = length; 178 } 179 if(allocate(capacity)) { 180 UChar *array = getArrayStart(); 181 UChar lead = U16_LEAD(c); 182 UChar trail = U16_TRAIL(c); 183 for(int32_t i = 0; i < length; i += 2) { 184 array[i] = lead; 185 array[i + 1] = trail; 186 } 187 setLength(length); 188 } 189 } 190 } 191 192 UnicodeString::UnicodeString(UChar ch) { 193 fUnion.fFields.fLengthAndFlags = kLength1 | kShortString; 194 fUnion.fStackFields.fBuffer[0] = ch; 195 } 196 197 UnicodeString::UnicodeString(UChar32 ch) { 198 fUnion.fFields.fLengthAndFlags = kShortString; 199 int32_t i = 0; 200 UBool isError = FALSE; 201 U16_APPEND(fUnion.fStackFields.fBuffer, i, US_STACKBUF_SIZE, ch, isError); 202 // We test isError so that the compiler does not complain that we don't. 203 // If isError then i==0 which is what we want anyway. 204 if(!isError) { 205 setShortLength(i); 206 } 207 } 208 209 UnicodeString::UnicodeString(const UChar *text) { 210 fUnion.fFields.fLengthAndFlags = kShortString; 211 doAppend(text, 0, -1); 212 } 213 214 UnicodeString::UnicodeString(const UChar *text, 215 int32_t textLength) { 216 fUnion.fFields.fLengthAndFlags = kShortString; 217 doAppend(text, 0, textLength); 218 } 219 220 UnicodeString::UnicodeString(UBool isTerminated, 221 ConstChar16Ptr textPtr, 222 int32_t textLength) { 223 fUnion.fFields.fLengthAndFlags = kReadonlyAlias; 224 const UChar *text = textPtr; 225 if(text == NULL) { 226 // treat as an empty string, do not alias 227 setToEmpty(); 228 } else if(textLength < -1 || 229 (textLength == -1 && !isTerminated) || 230 (textLength >= 0 && isTerminated && text[textLength] != 0) 231 ) { 232 setToBogus(); 233 } else { 234 if(textLength == -1) { 235 // text is terminated, or else it would have failed the above test 236 textLength = u_strlen(text); 237 } 238 setArray(const_cast<UChar *>(text), textLength, 239 isTerminated ? textLength + 1 : textLength); 240 } 241 } 242 243 UnicodeString::UnicodeString(UChar *buff, 244 int32_t buffLength, 245 int32_t buffCapacity) { 246 fUnion.fFields.fLengthAndFlags = kWritableAlias; 247 if(buff == NULL) { 248 // treat as an empty string, do not alias 249 setToEmpty(); 250 } else if(buffLength < -1 || buffCapacity < 0 || buffLength > buffCapacity) { 251 setToBogus(); 252 } else { 253 if(buffLength == -1) { 254 // fLength = u_strlen(buff); but do not look beyond buffCapacity 255 const UChar *p = buff, *limit = buff + buffCapacity; 256 while(p != limit && *p != 0) { 257 ++p; 258 } 259 buffLength = (int32_t)(p - buff); 260 } 261 setArray(buff, buffLength, buffCapacity); 262 } 263 } 264 265 UnicodeString::UnicodeString(const char *src, int32_t length, EInvariant) { 266 fUnion.fFields.fLengthAndFlags = kShortString; 267 if(src==NULL) { 268 // treat as an empty string 269 } else { 270 if(length<0) { 271 length=(int32_t)uprv_strlen(src); 272 } 273 if(cloneArrayIfNeeded(length, length, FALSE)) { 274 u_charsToUChars(src, getArrayStart(), length); 275 setLength(length); 276 } else { 277 setToBogus(); 278 } 279 } 280 } 281 282 #if U_CHARSET_IS_UTF8 283 284 UnicodeString::UnicodeString(const char *codepageData) { 285 fUnion.fFields.fLengthAndFlags = kShortString; 286 if(codepageData != 0) { 287 setToUTF8(codepageData); 288 } 289 } 290 291 UnicodeString::UnicodeString(const char *codepageData, int32_t dataLength) { 292 fUnion.fFields.fLengthAndFlags = kShortString; 293 // if there's nothing to convert, do nothing 294 if(codepageData == 0 || dataLength == 0 || dataLength < -1) { 295 return; 296 } 297 if(dataLength == -1) { 298 dataLength = (int32_t)uprv_strlen(codepageData); 299 } 300 setToUTF8(StringPiece(codepageData, dataLength)); 301 } 302 303 // else see unistr_cnv.cpp 304 #endif 305 306 UnicodeString::UnicodeString(const UnicodeString& that) { 307 fUnion.fFields.fLengthAndFlags = kShortString; 308 copyFrom(that); 309 } 310 311 UnicodeString::UnicodeString(UnicodeString &&src) U_NOEXCEPT { 312 fUnion.fFields.fLengthAndFlags = kShortString; 313 moveFrom(src); 314 } 315 316 UnicodeString::UnicodeString(const UnicodeString& that, 317 int32_t srcStart) { 318 fUnion.fFields.fLengthAndFlags = kShortString; 319 setTo(that, srcStart); 320 } 321 322 UnicodeString::UnicodeString(const UnicodeString& that, 323 int32_t srcStart, 324 int32_t srcLength) { 325 fUnion.fFields.fLengthAndFlags = kShortString; 326 setTo(that, srcStart, srcLength); 327 } 328 329 // Replaceable base class clone() default implementation, does not clone 330 Replaceable * 331 Replaceable::clone() const { 332 return NULL; 333 } 334 335 // UnicodeString overrides clone() with a real implementation 336 Replaceable * 337 UnicodeString::clone() const { 338 return new UnicodeString(*this); 339 } 340 341 //======================================== 342 // array allocation 343 //======================================== 344 345 namespace { 346 347 const int32_t kGrowSize = 128; 348 349 // The number of bytes for one int32_t reference counter and capacity UChars 350 // must fit into a 32-bit size_t (at least when on a 32-bit platform). 351 // We also add one for the NUL terminator, to avoid reallocation in getTerminatedBuffer(), 352 // and round up to a multiple of 16 bytes. 353 // This means that capacity must be at most (0xfffffff0 - 4) / 2 - 1 = 0x7ffffff5. 354 // (With more complicated checks we could go up to 0x7ffffffd without rounding up, 355 // but that does not seem worth it.) 356 const int32_t kMaxCapacity = 0x7ffffff5; 357 358 int32_t getGrowCapacity(int32_t newLength) { 359 int32_t growSize = (newLength >> 2) + kGrowSize; 360 if(growSize <= (kMaxCapacity - newLength)) { 361 return newLength + growSize; 362 } else { 363 return kMaxCapacity; 364 } 365 } 366 367 } // namespace 368 369 UBool 370 UnicodeString::allocate(int32_t capacity) { 371 if(capacity <= US_STACKBUF_SIZE) { 372 fUnion.fFields.fLengthAndFlags = kShortString; 373 return TRUE; 374 } 375 if(capacity <= kMaxCapacity) { 376 ++capacity; // for the NUL 377 // Switch to size_t which is unsigned so that we can allocate up to 4GB. 378 // Reference counter + UChars. 379 size_t numBytes = sizeof(int32_t) + (size_t)capacity * U_SIZEOF_UCHAR; 380 // Round up to a multiple of 16. 381 numBytes = (numBytes + 15) & ~15; 382 int32_t *array = (int32_t *) uprv_malloc(numBytes); 383 if(array != NULL) { 384 // set initial refCount and point behind the refCount 385 *array++ = 1; 386 numBytes -= sizeof(int32_t); 387 388 // have fArray point to the first UChar 389 fUnion.fFields.fArray = (UChar *)array; 390 fUnion.fFields.fCapacity = (int32_t)(numBytes / U_SIZEOF_UCHAR); 391 fUnion.fFields.fLengthAndFlags = kLongString; 392 return TRUE; 393 } 394 } 395 fUnion.fFields.fLengthAndFlags = kIsBogus; 396 fUnion.fFields.fArray = 0; 397 fUnion.fFields.fCapacity = 0; 398 return FALSE; 399 } 400 401 //======================================== 402 // Destructor 403 //======================================== 404 405 #ifdef UNISTR_COUNT_FINAL_STRING_LENGTHS 406 static u_atomic_int32_t finalLengthCounts[0x400]; // UnicodeString::kMaxShortLength+1 407 static u_atomic_int32_t beyondCount(0); 408 409 U_CAPI void unistr_printLengths() { 410 int32_t i; 411 for(i = 0; i <= 59; ++i) { 412 printf("%2d, %9d\n", i, (int32_t)finalLengthCounts[i]); 413 } 414 int32_t beyond = beyondCount; 415 for(; i < UPRV_LENGTHOF(finalLengthCounts); ++i) { 416 beyond += finalLengthCounts[i]; 417 } 418 printf(">59, %9d\n", beyond); 419 } 420 #endif 421 422 UnicodeString::~UnicodeString() 423 { 424 #ifdef UNISTR_COUNT_FINAL_STRING_LENGTHS 425 // Count lengths of strings at the end of their lifetime. 426 // Useful for discussion of a desirable stack buffer size. 427 // Count the contents length, not the optional NUL terminator nor further capacity. 428 // Ignore open-buffer strings and strings which alias external storage. 429 if((fUnion.fFields.fLengthAndFlags&(kOpenGetBuffer|kReadonlyAlias|kWritableAlias)) == 0) { 430 if(hasShortLength()) { 431 umtx_atomic_inc(finalLengthCounts + getShortLength()); 432 } else { 433 umtx_atomic_inc(&beyondCount); 434 } 435 } 436 #endif 437 438 releaseArray(); 439 } 440 441 //======================================== 442 // Factory methods 443 //======================================== 444 445 UnicodeString UnicodeString::fromUTF8(StringPiece utf8) { 446 UnicodeString result; 447 result.setToUTF8(utf8); 448 return result; 449 } 450 451 UnicodeString UnicodeString::fromUTF32(const UChar32 *utf32, int32_t length) { 452 UnicodeString result; 453 int32_t capacity; 454 // Most UTF-32 strings will be BMP-only and result in a same-length 455 // UTF-16 string. We overestimate the capacity just slightly, 456 // just in case there are a few supplementary characters. 457 if(length <= US_STACKBUF_SIZE) { 458 capacity = US_STACKBUF_SIZE; 459 } else { 460 capacity = length + (length >> 4) + 4; 461 } 462 do { 463 UChar *utf16 = result.getBuffer(capacity); 464 int32_t length16; 465 UErrorCode errorCode = U_ZERO_ERROR; 466 u_strFromUTF32WithSub(utf16, result.getCapacity(), &length16, 467 utf32, length, 468 0xfffd, // Substitution character. 469 NULL, // Don't care about number of substitutions. 470 &errorCode); 471 result.releaseBuffer(length16); 472 if(errorCode == U_BUFFER_OVERFLOW_ERROR) { 473 capacity = length16 + 1; // +1 for the terminating NUL. 474 continue; 475 } else if(U_FAILURE(errorCode)) { 476 result.setToBogus(); 477 } 478 break; 479 } while(TRUE); 480 return result; 481 } 482 483 //======================================== 484 // Assignment 485 //======================================== 486 487 UnicodeString & 488 UnicodeString::operator=(const UnicodeString &src) { 489 return copyFrom(src); 490 } 491 492 UnicodeString & 493 UnicodeString::fastCopyFrom(const UnicodeString &src) { 494 return copyFrom(src, TRUE); 495 } 496 497 UnicodeString & 498 UnicodeString::copyFrom(const UnicodeString &src, UBool fastCopy) { 499 // if assigning to ourselves, do nothing 500 if(this == &src) { 501 return *this; 502 } 503 504 // is the right side bogus? 505 if(src.isBogus()) { 506 setToBogus(); 507 return *this; 508 } 509 510 // delete the current contents 511 releaseArray(); 512 513 if(src.isEmpty()) { 514 // empty string - use the stack buffer 515 setToEmpty(); 516 return *this; 517 } 518 519 // fLength>0 and not an "open" src.getBuffer(minCapacity) 520 fUnion.fFields.fLengthAndFlags = src.fUnion.fFields.fLengthAndFlags; 521 switch(src.fUnion.fFields.fLengthAndFlags & kAllStorageFlags) { 522 case kShortString: 523 // short string using the stack buffer, do the same 524 uprv_memcpy(fUnion.fStackFields.fBuffer, src.fUnion.fStackFields.fBuffer, 525 getShortLength() * U_SIZEOF_UCHAR); 526 break; 527 case kLongString: 528 // src uses a refCounted string buffer, use that buffer with refCount 529 // src is const, use a cast - we don't actually change it 530 ((UnicodeString &)src).addRef(); 531 // copy all fields, share the reference-counted buffer 532 fUnion.fFields.fArray = src.fUnion.fFields.fArray; 533 fUnion.fFields.fCapacity = src.fUnion.fFields.fCapacity; 534 if(!hasShortLength()) { 535 fUnion.fFields.fLength = src.fUnion.fFields.fLength; 536 } 537 break; 538 case kReadonlyAlias: 539 if(fastCopy) { 540 // src is a readonly alias, do the same 541 // -> maintain the readonly alias as such 542 fUnion.fFields.fArray = src.fUnion.fFields.fArray; 543 fUnion.fFields.fCapacity = src.fUnion.fFields.fCapacity; 544 if(!hasShortLength()) { 545 fUnion.fFields.fLength = src.fUnion.fFields.fLength; 546 } 547 break; 548 } 549 // else if(!fastCopy) fall through to case kWritableAlias 550 // -> allocate a new buffer and copy the contents 551 U_FALLTHROUGH; 552 case kWritableAlias: { 553 // src is a writable alias; we make a copy of that instead 554 int32_t srcLength = src.length(); 555 if(allocate(srcLength)) { 556 u_memcpy(getArrayStart(), src.getArrayStart(), srcLength); 557 setLength(srcLength); 558 break; 559 } 560 // if there is not enough memory, then fall through to setting to bogus 561 U_FALLTHROUGH; 562 } 563 default: 564 // if src is bogus, set ourselves to bogus 565 // do not call setToBogus() here because fArray and flags are not consistent here 566 fUnion.fFields.fLengthAndFlags = kIsBogus; 567 fUnion.fFields.fArray = 0; 568 fUnion.fFields.fCapacity = 0; 569 break; 570 } 571 572 return *this; 573 } 574 575 UnicodeString &UnicodeString::moveFrom(UnicodeString &src) U_NOEXCEPT { 576 // No explicit check for self move assignment, consistent with standard library. 577 // Self move assignment causes no crash nor leak but might make the object bogus. 578 releaseArray(); 579 copyFieldsFrom(src, TRUE); 580 return *this; 581 } 582 583 // Same as moveFrom() except without memory management. 584 void UnicodeString::copyFieldsFrom(UnicodeString &src, UBool setSrcToBogus) U_NOEXCEPT { 585 int16_t lengthAndFlags = fUnion.fFields.fLengthAndFlags = src.fUnion.fFields.fLengthAndFlags; 586 if(lengthAndFlags & kUsingStackBuffer) { 587 // Short string using the stack buffer, copy the contents. 588 // Check for self assignment to prevent "overlap in memcpy" warnings, 589 // although it should be harmless to copy a buffer to itself exactly. 590 if(this != &src) { 591 uprv_memcpy(fUnion.fStackFields.fBuffer, src.fUnion.fStackFields.fBuffer, 592 getShortLength() * U_SIZEOF_UCHAR); 593 } 594 } else { 595 // In all other cases, copy all fields. 596 fUnion.fFields.fArray = src.fUnion.fFields.fArray; 597 fUnion.fFields.fCapacity = src.fUnion.fFields.fCapacity; 598 if(!hasShortLength()) { 599 fUnion.fFields.fLength = src.fUnion.fFields.fLength; 600 } 601 if(setSrcToBogus) { 602 // Set src to bogus without releasing any memory. 603 src.fUnion.fFields.fLengthAndFlags = kIsBogus; 604 src.fUnion.fFields.fArray = NULL; 605 src.fUnion.fFields.fCapacity = 0; 606 } 607 } 608 } 609 610 void UnicodeString::swap(UnicodeString &other) U_NOEXCEPT { 611 UnicodeString temp; // Empty short string: Known not to need releaseArray(). 612 // Copy fields without resetting source values in between. 613 temp.copyFieldsFrom(*this, FALSE); 614 this->copyFieldsFrom(other, FALSE); 615 other.copyFieldsFrom(temp, FALSE); 616 // Set temp to an empty string so that other's memory is not released twice. 617 temp.fUnion.fFields.fLengthAndFlags = kShortString; 618 } 619 620 //======================================== 621 // Miscellaneous operations 622 //======================================== 623 624 UnicodeString UnicodeString::unescape() const { 625 UnicodeString result(length(), (UChar32)0, (int32_t)0); // construct with capacity 626 if (result.isBogus()) { 627 return result; 628 } 629 const UChar *array = getBuffer(); 630 int32_t len = length(); 631 int32_t prev = 0; 632 for (int32_t i=0;;) { 633 if (i == len) { 634 result.append(array, prev, len - prev); 635 break; 636 } 637 if (array[i++] == 0x5C /*'\\'*/) { 638 result.append(array, prev, (i - 1) - prev); 639 UChar32 c = unescapeAt(i); // advances i 640 if (c < 0) { 641 result.remove(); // return empty string 642 break; // invalid escape sequence 643 } 644 result.append(c); 645 prev = i; 646 } 647 } 648 return result; 649 } 650 651 UChar32 UnicodeString::unescapeAt(int32_t &offset) const { 652 return u_unescapeAt(UnicodeString_charAt, &offset, length(), (void*)this); 653 } 654 655 //======================================== 656 // Read-only implementation 657 //======================================== 658 UBool 659 UnicodeString::doEquals(const UnicodeString &text, int32_t len) const { 660 // Requires: this & text not bogus and have same lengths. 661 // Byte-wise comparison works for equality regardless of endianness. 662 return uprv_memcmp(getArrayStart(), text.getArrayStart(), len * U_SIZEOF_UCHAR) == 0; 663 } 664 665 int8_t 666 UnicodeString::doCompare( int32_t start, 667 int32_t length, 668 const UChar *srcChars, 669 int32_t srcStart, 670 int32_t srcLength) const 671 { 672 // compare illegal string values 673 if(isBogus()) { 674 return -1; 675 } 676 677 // pin indices to legal values 678 pinIndices(start, length); 679 680 if(srcChars == NULL) { 681 // treat const UChar *srcChars==NULL as an empty string 682 return length == 0 ? 0 : 1; 683 } 684 685 // get the correct pointer 686 const UChar *chars = getArrayStart(); 687 688 chars += start; 689 srcChars += srcStart; 690 691 int32_t minLength; 692 int8_t lengthResult; 693 694 // get the srcLength if necessary 695 if(srcLength < 0) { 696 srcLength = u_strlen(srcChars + srcStart); 697 } 698 699 // are we comparing different lengths? 700 if(length != srcLength) { 701 if(length < srcLength) { 702 minLength = length; 703 lengthResult = -1; 704 } else { 705 minLength = srcLength; 706 lengthResult = 1; 707 } 708 } else { 709 minLength = length; 710 lengthResult = 0; 711 } 712 713 /* 714 * note that uprv_memcmp() returns an int but we return an int8_t; 715 * we need to take care not to truncate the result - 716 * one way to do this is to right-shift the value to 717 * move the sign bit into the lower 8 bits and making sure that this 718 * does not become 0 itself 719 */ 720 721 if(minLength > 0 && chars != srcChars) { 722 int32_t result; 723 724 # if U_IS_BIG_ENDIAN 725 // big-endian: byte comparison works 726 result = uprv_memcmp(chars, srcChars, minLength * sizeof(UChar)); 727 if(result != 0) { 728 return (int8_t)(result >> 15 | 1); 729 } 730 # else 731 // little-endian: compare UChar units 732 do { 733 result = ((int32_t)*(chars++) - (int32_t)*(srcChars++)); 734 if(result != 0) { 735 return (int8_t)(result >> 15 | 1); 736 } 737 } while(--minLength > 0); 738 # endif 739 } 740 return lengthResult; 741 } 742 743 /* String compare in code point order - doCompare() compares in code unit order. */ 744 int8_t 745 UnicodeString::doCompareCodePointOrder(int32_t start, 746 int32_t length, 747 const UChar *srcChars, 748 int32_t srcStart, 749 int32_t srcLength) const 750 { 751 // compare illegal string values 752 // treat const UChar *srcChars==NULL as an empty string 753 if(isBogus()) { 754 return -1; 755 } 756 757 // pin indices to legal values 758 pinIndices(start, length); 759 760 if(srcChars == NULL) { 761 srcStart = srcLength = 0; 762 } 763 764 int32_t diff = uprv_strCompare(getArrayStart() + start, length, (srcChars!=NULL)?(srcChars + srcStart):NULL, srcLength, FALSE, TRUE); 765 /* translate the 32-bit result into an 8-bit one */ 766 if(diff!=0) { 767 return (int8_t)(diff >> 15 | 1); 768 } else { 769 return 0; 770 } 771 } 772 773 int32_t 774 UnicodeString::getLength() const { 775 return length(); 776 } 777 778 UChar 779 UnicodeString::getCharAt(int32_t offset) const { 780 return charAt(offset); 781 } 782 783 UChar32 784 UnicodeString::getChar32At(int32_t offset) const { 785 return char32At(offset); 786 } 787 788 UChar32 789 UnicodeString::char32At(int32_t offset) const 790 { 791 int32_t len = length(); 792 if((uint32_t)offset < (uint32_t)len) { 793 const UChar *array = getArrayStart(); 794 UChar32 c; 795 U16_GET(array, 0, offset, len, c); 796 return c; 797 } else { 798 return kInvalidUChar; 799 } 800 } 801 802 int32_t 803 UnicodeString::getChar32Start(int32_t offset) const { 804 if((uint32_t)offset < (uint32_t)length()) { 805 const UChar *array = getArrayStart(); 806 U16_SET_CP_START(array, 0, offset); 807 return offset; 808 } else { 809 return 0; 810 } 811 } 812 813 int32_t 814 UnicodeString::getChar32Limit(int32_t offset) const { 815 int32_t len = length(); 816 if((uint32_t)offset < (uint32_t)len) { 817 const UChar *array = getArrayStart(); 818 U16_SET_CP_LIMIT(array, 0, offset, len); 819 return offset; 820 } else { 821 return len; 822 } 823 } 824 825 int32_t 826 UnicodeString::countChar32(int32_t start, int32_t length) const { 827 pinIndices(start, length); 828 // if(isBogus()) then fArray==0 and start==0 - u_countChar32() checks for NULL 829 return u_countChar32(getArrayStart()+start, length); 830 } 831 832 UBool 833 UnicodeString::hasMoreChar32Than(int32_t start, int32_t length, int32_t number) const { 834 pinIndices(start, length); 835 // if(isBogus()) then fArray==0 and start==0 - u_strHasMoreChar32Than() checks for NULL 836 return u_strHasMoreChar32Than(getArrayStart()+start, length, number); 837 } 838 839 int32_t 840 UnicodeString::moveIndex32(int32_t index, int32_t delta) const { 841 // pin index 842 int32_t len = length(); 843 if(index<0) { 844 index=0; 845 } else if(index>len) { 846 index=len; 847 } 848 849 const UChar *array = getArrayStart(); 850 if(delta>0) { 851 U16_FWD_N(array, index, len, delta); 852 } else { 853 U16_BACK_N(array, 0, index, -delta); 854 } 855 856 return index; 857 } 858 859 void 860 UnicodeString::doExtract(int32_t start, 861 int32_t length, 862 UChar *dst, 863 int32_t dstStart) const 864 { 865 // pin indices to legal values 866 pinIndices(start, length); 867 868 // do not copy anything if we alias dst itself 869 const UChar *array = getArrayStart(); 870 if(array + start != dst + dstStart) { 871 us_arrayCopy(array, start, dst, dstStart, length); 872 } 873 } 874 875 int32_t 876 UnicodeString::extract(Char16Ptr dest, int32_t destCapacity, 877 UErrorCode &errorCode) const { 878 int32_t len = length(); 879 if(U_SUCCESS(errorCode)) { 880 if(isBogus() || destCapacity<0 || (destCapacity>0 && dest==0)) { 881 errorCode=U_ILLEGAL_ARGUMENT_ERROR; 882 } else { 883 const UChar *array = getArrayStart(); 884 if(len>0 && len<=destCapacity && array!=dest) { 885 u_memcpy(dest, array, len); 886 } 887 return u_terminateUChars(dest, destCapacity, len, &errorCode); 888 } 889 } 890 891 return len; 892 } 893 894 int32_t 895 UnicodeString::extract(int32_t start, 896 int32_t length, 897 char *target, 898 int32_t targetCapacity, 899 enum EInvariant) const 900 { 901 // if the arguments are illegal, then do nothing 902 if(targetCapacity < 0 || (targetCapacity > 0 && target == NULL)) { 903 return 0; 904 } 905 906 // pin the indices to legal values 907 pinIndices(start, length); 908 909 if(length <= targetCapacity) { 910 u_UCharsToChars(getArrayStart() + start, target, length); 911 } 912 UErrorCode status = U_ZERO_ERROR; 913 return u_terminateChars(target, targetCapacity, length, &status); 914 } 915 916 UnicodeString 917 UnicodeString::tempSubString(int32_t start, int32_t len) const { 918 pinIndices(start, len); 919 const UChar *array = getBuffer(); // not getArrayStart() to check kIsBogus & kOpenGetBuffer 920 if(array==NULL) { 921 array=fUnion.fStackFields.fBuffer; // anything not NULL because that would make an empty string 922 len=-2; // bogus result string 923 } 924 return UnicodeString(FALSE, array + start, len); 925 } 926 927 int32_t 928 UnicodeString::toUTF8(int32_t start, int32_t len, 929 char *target, int32_t capacity) const { 930 pinIndices(start, len); 931 int32_t length8; 932 UErrorCode errorCode = U_ZERO_ERROR; 933 u_strToUTF8WithSub(target, capacity, &length8, 934 getBuffer() + start, len, 935 0xFFFD, // Standard substitution character. 936 NULL, // Don't care about number of substitutions. 937 &errorCode); 938 return length8; 939 } 940 941 #if U_CHARSET_IS_UTF8 942 943 int32_t 944 UnicodeString::extract(int32_t start, int32_t len, 945 char *target, uint32_t dstSize) const { 946 // if the arguments are illegal, then do nothing 947 if(/*dstSize < 0 || */(dstSize > 0 && target == 0)) { 948 return 0; 949 } 950 return toUTF8(start, len, target, dstSize <= 0x7fffffff ? (int32_t)dstSize : 0x7fffffff); 951 } 952 953 // else see unistr_cnv.cpp 954 #endif 955 956 void 957 UnicodeString::extractBetween(int32_t start, 958 int32_t limit, 959 UnicodeString& target) const { 960 pinIndex(start); 961 pinIndex(limit); 962 doExtract(start, limit - start, target); 963 } 964 965 // When converting from UTF-16 to UTF-8, the result will have at most 3 times 966 // as many bytes as the source has UChars. 967 // The "worst cases" are writing systems like Indic, Thai and CJK with 968 // 3:1 bytes:UChars. 969 void 970 UnicodeString::toUTF8(ByteSink &sink) const { 971 int32_t length16 = length(); 972 if(length16 != 0) { 973 char stackBuffer[1024]; 974 int32_t capacity = (int32_t)sizeof(stackBuffer); 975 UBool utf8IsOwned = FALSE; 976 char *utf8 = sink.GetAppendBuffer(length16 < capacity ? length16 : capacity, 977 3*length16, 978 stackBuffer, capacity, 979 &capacity); 980 int32_t length8 = 0; 981 UErrorCode errorCode = U_ZERO_ERROR; 982 u_strToUTF8WithSub(utf8, capacity, &length8, 983 getBuffer(), length16, 984 0xFFFD, // Standard substitution character. 985 NULL, // Don't care about number of substitutions. 986 &errorCode); 987 if(errorCode == U_BUFFER_OVERFLOW_ERROR) { 988 utf8 = (char *)uprv_malloc(length8); 989 if(utf8 != NULL) { 990 utf8IsOwned = TRUE; 991 errorCode = U_ZERO_ERROR; 992 u_strToUTF8WithSub(utf8, length8, &length8, 993 getBuffer(), length16, 994 0xFFFD, // Standard substitution character. 995 NULL, // Don't care about number of substitutions. 996 &errorCode); 997 } else { 998 errorCode = U_MEMORY_ALLOCATION_ERROR; 999 } 1000 } 1001 if(U_SUCCESS(errorCode)) { 1002 sink.Append(utf8, length8); 1003 sink.Flush(); 1004 } 1005 if(utf8IsOwned) { 1006 uprv_free(utf8); 1007 } 1008 } 1009 } 1010 1011 int32_t 1012 UnicodeString::toUTF32(UChar32 *utf32, int32_t capacity, UErrorCode &errorCode) const { 1013 int32_t length32=0; 1014 if(U_SUCCESS(errorCode)) { 1015 // getBuffer() and u_strToUTF32WithSub() check for illegal arguments. 1016 u_strToUTF32WithSub(utf32, capacity, &length32, 1017 getBuffer(), length(), 1018 0xfffd, // Substitution character. 1019 NULL, // Don't care about number of substitutions. 1020 &errorCode); 1021 } 1022 return length32; 1023 } 1024 1025 int32_t 1026 UnicodeString::indexOf(const UChar *srcChars, 1027 int32_t srcStart, 1028 int32_t srcLength, 1029 int32_t start, 1030 int32_t length) const 1031 { 1032 if(isBogus() || srcChars == 0 || srcStart < 0 || srcLength == 0) { 1033 return -1; 1034 } 1035 1036 // UnicodeString does not find empty substrings 1037 if(srcLength < 0 && srcChars[srcStart] == 0) { 1038 return -1; 1039 } 1040 1041 // get the indices within bounds 1042 pinIndices(start, length); 1043 1044 // find the first occurrence of the substring 1045 const UChar *array = getArrayStart(); 1046 const UChar *match = u_strFindFirst(array + start, length, srcChars + srcStart, srcLength); 1047 if(match == NULL) { 1048 return -1; 1049 } else { 1050 return (int32_t)(match - array); 1051 } 1052 } 1053 1054 int32_t 1055 UnicodeString::doIndexOf(UChar c, 1056 int32_t start, 1057 int32_t length) const 1058 { 1059 // pin indices 1060 pinIndices(start, length); 1061 1062 // find the first occurrence of c 1063 const UChar *array = getArrayStart(); 1064 const UChar *match = u_memchr(array + start, c, length); 1065 if(match == NULL) { 1066 return -1; 1067 } else { 1068 return (int32_t)(match - array); 1069 } 1070 } 1071 1072 int32_t 1073 UnicodeString::doIndexOf(UChar32 c, 1074 int32_t start, 1075 int32_t length) const { 1076 // pin indices 1077 pinIndices(start, length); 1078 1079 // find the first occurrence of c 1080 const UChar *array = getArrayStart(); 1081 const UChar *match = u_memchr32(array + start, c, length); 1082 if(match == NULL) { 1083 return -1; 1084 } else { 1085 return (int32_t)(match - array); 1086 } 1087 } 1088 1089 int32_t 1090 UnicodeString::lastIndexOf(const UChar *srcChars, 1091 int32_t srcStart, 1092 int32_t srcLength, 1093 int32_t start, 1094 int32_t length) const 1095 { 1096 if(isBogus() || srcChars == 0 || srcStart < 0 || srcLength == 0) { 1097 return -1; 1098 } 1099 1100 // UnicodeString does not find empty substrings 1101 if(srcLength < 0 && srcChars[srcStart] == 0) { 1102 return -1; 1103 } 1104 1105 // get the indices within bounds 1106 pinIndices(start, length); 1107 1108 // find the last occurrence of the substring 1109 const UChar *array = getArrayStart(); 1110 const UChar *match = u_strFindLast(array + start, length, srcChars + srcStart, srcLength); 1111 if(match == NULL) { 1112 return -1; 1113 } else { 1114 return (int32_t)(match - array); 1115 } 1116 } 1117 1118 int32_t 1119 UnicodeString::doLastIndexOf(UChar c, 1120 int32_t start, 1121 int32_t length) const 1122 { 1123 if(isBogus()) { 1124 return -1; 1125 } 1126 1127 // pin indices 1128 pinIndices(start, length); 1129 1130 // find the last occurrence of c 1131 const UChar *array = getArrayStart(); 1132 const UChar *match = u_memrchr(array + start, c, length); 1133 if(match == NULL) { 1134 return -1; 1135 } else { 1136 return (int32_t)(match - array); 1137 } 1138 } 1139 1140 int32_t 1141 UnicodeString::doLastIndexOf(UChar32 c, 1142 int32_t start, 1143 int32_t length) const { 1144 // pin indices 1145 pinIndices(start, length); 1146 1147 // find the last occurrence of c 1148 const UChar *array = getArrayStart(); 1149 const UChar *match = u_memrchr32(array + start, c, length); 1150 if(match == NULL) { 1151 return -1; 1152 } else { 1153 return (int32_t)(match - array); 1154 } 1155 } 1156 1157 //======================================== 1158 // Write implementation 1159 //======================================== 1160 1161 UnicodeString& 1162 UnicodeString::findAndReplace(int32_t start, 1163 int32_t length, 1164 const UnicodeString& oldText, 1165 int32_t oldStart, 1166 int32_t oldLength, 1167 const UnicodeString& newText, 1168 int32_t newStart, 1169 int32_t newLength) 1170 { 1171 if(isBogus() || oldText.isBogus() || newText.isBogus()) { 1172 return *this; 1173 } 1174 1175 pinIndices(start, length); 1176 oldText.pinIndices(oldStart, oldLength); 1177 newText.pinIndices(newStart, newLength); 1178 1179 if(oldLength == 0) { 1180 return *this; 1181 } 1182 1183 while(length > 0 && length >= oldLength) { 1184 int32_t pos = indexOf(oldText, oldStart, oldLength, start, length); 1185 if(pos < 0) { 1186 // no more oldText's here: done 1187 break; 1188 } else { 1189 // we found oldText, replace it by newText and go beyond it 1190 replace(pos, oldLength, newText, newStart, newLength); 1191 length -= pos + oldLength - start; 1192 start = pos + newLength; 1193 } 1194 } 1195 1196 return *this; 1197 } 1198 1199 1200 void 1201 UnicodeString::setToBogus() 1202 { 1203 releaseArray(); 1204 1205 fUnion.fFields.fLengthAndFlags = kIsBogus; 1206 fUnion.fFields.fArray = 0; 1207 fUnion.fFields.fCapacity = 0; 1208 } 1209 1210 // turn a bogus string into an empty one 1211 void 1212 UnicodeString::unBogus() { 1213 if(fUnion.fFields.fLengthAndFlags & kIsBogus) { 1214 setToEmpty(); 1215 } 1216 } 1217 1218 const char16_t * 1219 UnicodeString::getTerminatedBuffer() { 1220 if(!isWritable()) { 1221 return nullptr; 1222 } 1223 UChar *array = getArrayStart(); 1224 int32_t len = length(); 1225 if(len < getCapacity()) { 1226 if(fUnion.fFields.fLengthAndFlags & kBufferIsReadonly) { 1227 // If len<capacity on a read-only alias, then array[len] is 1228 // either the original NUL (if constructed with (TRUE, s, length)) 1229 // or one of the original string contents characters (if later truncated), 1230 // therefore we can assume that array[len] is initialized memory. 1231 if(array[len] == 0) { 1232 return array; 1233 } 1234 } else if(((fUnion.fFields.fLengthAndFlags & kRefCounted) == 0 || refCount() == 1)) { 1235 // kRefCounted: Do not write the NUL if the buffer is shared. 1236 // That is mostly safe, except when the length of one copy was modified 1237 // without copy-on-write, e.g., via truncate(newLength) or remove(void). 1238 // Then the NUL would be written into the middle of another copy's string. 1239 1240 // Otherwise, the buffer is fully writable and it is anyway safe to write the NUL. 1241 // Do not test if there is a NUL already because it might be uninitialized memory. 1242 // (That would be safe, but tools like valgrind & Purify would complain.) 1243 array[len] = 0; 1244 return array; 1245 } 1246 } 1247 if(len<INT32_MAX && cloneArrayIfNeeded(len+1)) { 1248 array = getArrayStart(); 1249 array[len] = 0; 1250 return array; 1251 } else { 1252 return nullptr; 1253 } 1254 } 1255 1256 // setTo() analogous to the readonly-aliasing constructor with the same signature 1257 UnicodeString & 1258 UnicodeString::setTo(UBool isTerminated, 1259 ConstChar16Ptr textPtr, 1260 int32_t textLength) 1261 { 1262 if(fUnion.fFields.fLengthAndFlags & kOpenGetBuffer) { 1263 // do not modify a string that has an "open" getBuffer(minCapacity) 1264 return *this; 1265 } 1266 1267 const UChar *text = textPtr; 1268 if(text == NULL) { 1269 // treat as an empty string, do not alias 1270 releaseArray(); 1271 setToEmpty(); 1272 return *this; 1273 } 1274 1275 if( textLength < -1 || 1276 (textLength == -1 && !isTerminated) || 1277 (textLength >= 0 && isTerminated && text[textLength] != 0) 1278 ) { 1279 setToBogus(); 1280 return *this; 1281 } 1282 1283 releaseArray(); 1284 1285 if(textLength == -1) { 1286 // text is terminated, or else it would have failed the above test 1287 textLength = u_strlen(text); 1288 } 1289 fUnion.fFields.fLengthAndFlags = kReadonlyAlias; 1290 setArray((UChar *)text, textLength, isTerminated ? textLength + 1 : textLength); 1291 return *this; 1292 } 1293 1294 // setTo() analogous to the writable-aliasing constructor with the same signature 1295 UnicodeString & 1296 UnicodeString::setTo(UChar *buffer, 1297 int32_t buffLength, 1298 int32_t buffCapacity) { 1299 if(fUnion.fFields.fLengthAndFlags & kOpenGetBuffer) { 1300 // do not modify a string that has an "open" getBuffer(minCapacity) 1301 return *this; 1302 } 1303 1304 if(buffer == NULL) { 1305 // treat as an empty string, do not alias 1306 releaseArray(); 1307 setToEmpty(); 1308 return *this; 1309 } 1310 1311 if(buffLength < -1 || buffCapacity < 0 || buffLength > buffCapacity) { 1312 setToBogus(); 1313 return *this; 1314 } else if(buffLength == -1) { 1315 // buffLength = u_strlen(buff); but do not look beyond buffCapacity 1316 const UChar *p = buffer, *limit = buffer + buffCapacity; 1317 while(p != limit && *p != 0) { 1318 ++p; 1319 } 1320 buffLength = (int32_t)(p - buffer); 1321 } 1322 1323 releaseArray(); 1324 1325 fUnion.fFields.fLengthAndFlags = kWritableAlias; 1326 setArray(buffer, buffLength, buffCapacity); 1327 return *this; 1328 } 1329 1330 UnicodeString &UnicodeString::setToUTF8(StringPiece utf8) { 1331 unBogus(); 1332 int32_t length = utf8.length(); 1333 int32_t capacity; 1334 // The UTF-16 string will be at most as long as the UTF-8 string. 1335 if(length <= US_STACKBUF_SIZE) { 1336 capacity = US_STACKBUF_SIZE; 1337 } else { 1338 capacity = length + 1; // +1 for the terminating NUL. 1339 } 1340 UChar *utf16 = getBuffer(capacity); 1341 int32_t length16; 1342 UErrorCode errorCode = U_ZERO_ERROR; 1343 u_strFromUTF8WithSub(utf16, getCapacity(), &length16, 1344 utf8.data(), length, 1345 0xfffd, // Substitution character. 1346 NULL, // Don't care about number of substitutions. 1347 &errorCode); 1348 releaseBuffer(length16); 1349 if(U_FAILURE(errorCode)) { 1350 setToBogus(); 1351 } 1352 return *this; 1353 } 1354 1355 UnicodeString& 1356 UnicodeString::setCharAt(int32_t offset, 1357 UChar c) 1358 { 1359 int32_t len = length(); 1360 if(cloneArrayIfNeeded() && len > 0) { 1361 if(offset < 0) { 1362 offset = 0; 1363 } else if(offset >= len) { 1364 offset = len - 1; 1365 } 1366 1367 getArrayStart()[offset] = c; 1368 } 1369 return *this; 1370 } 1371 1372 UnicodeString& 1373 UnicodeString::replace(int32_t start, 1374 int32_t _length, 1375 UChar32 srcChar) { 1376 UChar buffer[U16_MAX_LENGTH]; 1377 int32_t count = 0; 1378 UBool isError = FALSE; 1379 U16_APPEND(buffer, count, U16_MAX_LENGTH, srcChar, isError); 1380 // We test isError so that the compiler does not complain that we don't. 1381 // If isError (srcChar is not a valid code point) then count==0 which means 1382 // we remove the source segment rather than replacing it with srcChar. 1383 return doReplace(start, _length, buffer, 0, isError ? 0 : count); 1384 } 1385 1386 UnicodeString& 1387 UnicodeString::append(UChar32 srcChar) { 1388 UChar buffer[U16_MAX_LENGTH]; 1389 int32_t _length = 0; 1390 UBool isError = FALSE; 1391 U16_APPEND(buffer, _length, U16_MAX_LENGTH, srcChar, isError); 1392 // We test isError so that the compiler does not complain that we don't. 1393 // If isError then _length==0 which turns the doAppend() into a no-op anyway. 1394 return isError ? *this : doAppend(buffer, 0, _length); 1395 } 1396 1397 UnicodeString& 1398 UnicodeString::doReplace( int32_t start, 1399 int32_t length, 1400 const UnicodeString& src, 1401 int32_t srcStart, 1402 int32_t srcLength) 1403 { 1404 // pin the indices to legal values 1405 src.pinIndices(srcStart, srcLength); 1406 1407 // get the characters from src 1408 // and replace the range in ourselves with them 1409 return doReplace(start, length, src.getArrayStart(), srcStart, srcLength); 1410 } 1411 1412 UnicodeString& 1413 UnicodeString::doReplace(int32_t start, 1414 int32_t length, 1415 const UChar *srcChars, 1416 int32_t srcStart, 1417 int32_t srcLength) 1418 { 1419 if(!isWritable()) { 1420 return *this; 1421 } 1422 1423 int32_t oldLength = this->length(); 1424 1425 // optimize (read-only alias).remove(0, start) and .remove(start, end) 1426 if((fUnion.fFields.fLengthAndFlags&kBufferIsReadonly) && srcLength == 0) { 1427 if(start == 0) { 1428 // remove prefix by adjusting the array pointer 1429 pinIndex(length); 1430 fUnion.fFields.fArray += length; 1431 fUnion.fFields.fCapacity -= length; 1432 setLength(oldLength - length); 1433 return *this; 1434 } else { 1435 pinIndex(start); 1436 if(length >= (oldLength - start)) { 1437 // remove suffix by reducing the length (like truncate()) 1438 setLength(start); 1439 fUnion.fFields.fCapacity = start; // not NUL-terminated any more 1440 return *this; 1441 } 1442 } 1443 } 1444 1445 if(start == oldLength) { 1446 return doAppend(srcChars, srcStart, srcLength); 1447 } 1448 1449 if(srcChars == 0) { 1450 srcStart = srcLength = 0; 1451 } else if(srcLength < 0) { 1452 // get the srcLength if necessary 1453 srcLength = u_strlen(srcChars + srcStart); 1454 } 1455 1456 // pin the indices to legal values 1457 pinIndices(start, length); 1458 1459 // Calculate the size of the string after the replace. 1460 // Avoid int32_t overflow. 1461 int32_t newLength = oldLength - length; 1462 if(srcLength > (INT32_MAX - newLength)) { 1463 setToBogus(); 1464 return *this; 1465 } 1466 newLength += srcLength; 1467 1468 // cloneArrayIfNeeded(doCopyArray=FALSE) may change fArray but will not copy the current contents; 1469 // therefore we need to keep the current fArray 1470 UChar oldStackBuffer[US_STACKBUF_SIZE]; 1471 UChar *oldArray; 1472 if((fUnion.fFields.fLengthAndFlags&kUsingStackBuffer) && (newLength > US_STACKBUF_SIZE)) { 1473 // copy the stack buffer contents because it will be overwritten with 1474 // fUnion.fFields values 1475 u_memcpy(oldStackBuffer, fUnion.fStackFields.fBuffer, oldLength); 1476 oldArray = oldStackBuffer; 1477 } else { 1478 oldArray = getArrayStart(); 1479 } 1480 1481 // clone our array and allocate a bigger array if needed 1482 int32_t *bufferToDelete = 0; 1483 if(!cloneArrayIfNeeded(newLength, getGrowCapacity(newLength), 1484 FALSE, &bufferToDelete) 1485 ) { 1486 return *this; 1487 } 1488 1489 // now do the replace 1490 1491 UChar *newArray = getArrayStart(); 1492 if(newArray != oldArray) { 1493 // if fArray changed, then we need to copy everything except what will change 1494 us_arrayCopy(oldArray, 0, newArray, 0, start); 1495 us_arrayCopy(oldArray, start + length, 1496 newArray, start + srcLength, 1497 oldLength - (start + length)); 1498 } else if(length != srcLength) { 1499 // fArray did not change; copy only the portion that isn't changing, leaving a hole 1500 us_arrayCopy(oldArray, start + length, 1501 newArray, start + srcLength, 1502 oldLength - (start + length)); 1503 } 1504 1505 // now fill in the hole with the new string 1506 us_arrayCopy(srcChars, srcStart, newArray, start, srcLength); 1507 1508 setLength(newLength); 1509 1510 // delayed delete in case srcChars == fArray when we started, and 1511 // to keep oldArray alive for the above operations 1512 if (bufferToDelete) { 1513 uprv_free(bufferToDelete); 1514 } 1515 1516 return *this; 1517 } 1518 1519 // Versions of doReplace() only for append() variants. 1520 // doReplace() and doAppend() optimize for different cases. 1521 1522 UnicodeString& 1523 UnicodeString::doAppend(const UnicodeString& src, int32_t srcStart, int32_t srcLength) { 1524 if(srcLength == 0) { 1525 return *this; 1526 } 1527 1528 // pin the indices to legal values 1529 src.pinIndices(srcStart, srcLength); 1530 return doAppend(src.getArrayStart(), srcStart, srcLength); 1531 } 1532 1533 UnicodeString& 1534 UnicodeString::doAppend(const UChar *srcChars, int32_t srcStart, int32_t srcLength) { 1535 if(!isWritable() || srcLength == 0 || srcChars == NULL) { 1536 return *this; 1537 } 1538 1539 if(srcLength < 0) { 1540 // get the srcLength if necessary 1541 if((srcLength = u_strlen(srcChars + srcStart)) == 0) { 1542 return *this; 1543 } 1544 } 1545 1546 int32_t oldLength = length(); 1547 int32_t newLength = oldLength + srcLength; 1548 // optimize append() onto a large-enough, owned string 1549 if((newLength <= getCapacity() && isBufferWritable()) || 1550 cloneArrayIfNeeded(newLength, getGrowCapacity(newLength))) { 1551 UChar *newArray = getArrayStart(); 1552 // Do not copy characters when 1553 // UChar *buffer=str.getAppendBuffer(...); 1554 // is followed by 1555 // str.append(buffer, length); 1556 // or 1557 // str.appendString(buffer, length) 1558 // or similar. 1559 if(srcChars + srcStart != newArray + oldLength) { 1560 us_arrayCopy(srcChars, srcStart, newArray, oldLength, srcLength); 1561 } 1562 setLength(newLength); 1563 } 1564 return *this; 1565 } 1566 1567 /** 1568 * Replaceable API 1569 */ 1570 void 1571 UnicodeString::handleReplaceBetween(int32_t start, 1572 int32_t limit, 1573 const UnicodeString& text) { 1574 replaceBetween(start, limit, text); 1575 } 1576 1577 /** 1578 * Replaceable API 1579 */ 1580 void 1581 UnicodeString::copy(int32_t start, int32_t limit, int32_t dest) { 1582 if (limit <= start) { 1583 return; // Nothing to do; avoid bogus malloc call 1584 } 1585 UChar* text = (UChar*) uprv_malloc( sizeof(UChar) * (limit - start) ); 1586 // Check to make sure text is not null. 1587 if (text != NULL) { 1588 extractBetween(start, limit, text, 0); 1589 insert(dest, text, 0, limit - start); 1590 uprv_free(text); 1591 } 1592 } 1593 1594 /** 1595 * Replaceable API 1596 * 1597 * NOTE: This is for the Replaceable class. There is no rep.cpp, 1598 * so we implement this function here. 1599 */ 1600 UBool Replaceable::hasMetaData() const { 1601 return TRUE; 1602 } 1603 1604 /** 1605 * Replaceable API 1606 */ 1607 UBool UnicodeString::hasMetaData() const { 1608 return FALSE; 1609 } 1610 1611 UnicodeString& 1612 UnicodeString::doReverse(int32_t start, int32_t length) { 1613 if(length <= 1 || !cloneArrayIfNeeded()) { 1614 return *this; 1615 } 1616 1617 // pin the indices to legal values 1618 pinIndices(start, length); 1619 if(length <= 1) { // pinIndices() might have shrunk the length 1620 return *this; 1621 } 1622 1623 UChar *left = getArrayStart() + start; 1624 UChar *right = left + length - 1; // -1 for inclusive boundary (length>=2) 1625 UChar swap; 1626 UBool hasSupplementary = FALSE; 1627 1628 // Before the loop we know left<right because length>=2. 1629 do { 1630 hasSupplementary |= (UBool)U16_IS_LEAD(swap = *left); 1631 hasSupplementary |= (UBool)U16_IS_LEAD(*left++ = *right); 1632 *right-- = swap; 1633 } while(left < right); 1634 // Make sure to test the middle code unit of an odd-length string. 1635 // Redundant if the length is even. 1636 hasSupplementary |= (UBool)U16_IS_LEAD(*left); 1637 1638 /* if there are supplementary code points in the reversed range, then re-swap their surrogates */ 1639 if(hasSupplementary) { 1640 UChar swap2; 1641 1642 left = getArrayStart() + start; 1643 right = left + length - 1; // -1 so that we can look at *(left+1) if left<right 1644 while(left < right) { 1645 if(U16_IS_TRAIL(swap = *left) && U16_IS_LEAD(swap2 = *(left + 1))) { 1646 *left++ = swap2; 1647 *left++ = swap; 1648 } else { 1649 ++left; 1650 } 1651 } 1652 } 1653 1654 return *this; 1655 } 1656 1657 UBool 1658 UnicodeString::padLeading(int32_t targetLength, 1659 UChar padChar) 1660 { 1661 int32_t oldLength = length(); 1662 if(oldLength >= targetLength || !cloneArrayIfNeeded(targetLength)) { 1663 return FALSE; 1664 } else { 1665 // move contents up by padding width 1666 UChar *array = getArrayStart(); 1667 int32_t start = targetLength - oldLength; 1668 us_arrayCopy(array, 0, array, start, oldLength); 1669 1670 // fill in padding character 1671 while(--start >= 0) { 1672 array[start] = padChar; 1673 } 1674 setLength(targetLength); 1675 return TRUE; 1676 } 1677 } 1678 1679 UBool 1680 UnicodeString::padTrailing(int32_t targetLength, 1681 UChar padChar) 1682 { 1683 int32_t oldLength = length(); 1684 if(oldLength >= targetLength || !cloneArrayIfNeeded(targetLength)) { 1685 return FALSE; 1686 } else { 1687 // fill in padding character 1688 UChar *array = getArrayStart(); 1689 int32_t length = targetLength; 1690 while(--length >= oldLength) { 1691 array[length] = padChar; 1692 } 1693 setLength(targetLength); 1694 return TRUE; 1695 } 1696 } 1697 1698 //======================================== 1699 // Hashing 1700 //======================================== 1701 int32_t 1702 UnicodeString::doHashCode() const 1703 { 1704 /* Delegate hash computation to uhash. This makes UnicodeString 1705 * hashing consistent with UChar* hashing. */ 1706 int32_t hashCode = ustr_hashUCharsN(getArrayStart(), length()); 1707 if (hashCode == kInvalidHashCode) { 1708 hashCode = kEmptyHashCode; 1709 } 1710 return hashCode; 1711 } 1712 1713 //======================================== 1714 // External Buffer 1715 //======================================== 1716 1717 char16_t * 1718 UnicodeString::getBuffer(int32_t minCapacity) { 1719 if(minCapacity>=-1 && cloneArrayIfNeeded(minCapacity)) { 1720 fUnion.fFields.fLengthAndFlags|=kOpenGetBuffer; 1721 setZeroLength(); 1722 return getArrayStart(); 1723 } else { 1724 return nullptr; 1725 } 1726 } 1727 1728 void 1729 UnicodeString::releaseBuffer(int32_t newLength) { 1730 if(fUnion.fFields.fLengthAndFlags&kOpenGetBuffer && newLength>=-1) { 1731 // set the new fLength 1732 int32_t capacity=getCapacity(); 1733 if(newLength==-1) { 1734 // the new length is the string length, capped by fCapacity 1735 const UChar *array=getArrayStart(), *p=array, *limit=array+capacity; 1736 while(p<limit && *p!=0) { 1737 ++p; 1738 } 1739 newLength=(int32_t)(p-array); 1740 } else if(newLength>capacity) { 1741 newLength=capacity; 1742 } 1743 setLength(newLength); 1744 fUnion.fFields.fLengthAndFlags&=~kOpenGetBuffer; 1745 } 1746 } 1747 1748 //======================================== 1749 // Miscellaneous 1750 //======================================== 1751 UBool 1752 UnicodeString::cloneArrayIfNeeded(int32_t newCapacity, 1753 int32_t growCapacity, 1754 UBool doCopyArray, 1755 int32_t **pBufferToDelete, 1756 UBool forceClone) { 1757 // default parameters need to be static, therefore 1758 // the defaults are -1 to have convenience defaults 1759 if(newCapacity == -1) { 1760 newCapacity = getCapacity(); 1761 } 1762 1763 // while a getBuffer(minCapacity) is "open", 1764 // prevent any modifications of the string by returning FALSE here 1765 // if the string is bogus, then only an assignment or similar can revive it 1766 if(!isWritable()) { 1767 return FALSE; 1768 } 1769 1770 /* 1771 * We need to make a copy of the array if 1772 * the buffer is read-only, or 1773 * the buffer is refCounted (shared), and refCount>1, or 1774 * the buffer is too small. 1775 * Return FALSE if memory could not be allocated. 1776 */ 1777 if(forceClone || 1778 fUnion.fFields.fLengthAndFlags & kBufferIsReadonly || 1779 (fUnion.fFields.fLengthAndFlags & kRefCounted && refCount() > 1) || 1780 newCapacity > getCapacity() 1781 ) { 1782 // check growCapacity for default value and use of the stack buffer 1783 if(growCapacity < 0) { 1784 growCapacity = newCapacity; 1785 } else if(newCapacity <= US_STACKBUF_SIZE && growCapacity > US_STACKBUF_SIZE) { 1786 growCapacity = US_STACKBUF_SIZE; 1787 } 1788 1789 // save old values 1790 UChar oldStackBuffer[US_STACKBUF_SIZE]; 1791 UChar *oldArray; 1792 int32_t oldLength = length(); 1793 int16_t flags = fUnion.fFields.fLengthAndFlags; 1794 1795 if(flags&kUsingStackBuffer) { 1796 U_ASSERT(!(flags&kRefCounted)); /* kRefCounted and kUsingStackBuffer are mutally exclusive */ 1797 if(doCopyArray && growCapacity > US_STACKBUF_SIZE) { 1798 // copy the stack buffer contents because it will be overwritten with 1799 // fUnion.fFields values 1800 us_arrayCopy(fUnion.fStackFields.fBuffer, 0, oldStackBuffer, 0, oldLength); 1801 oldArray = oldStackBuffer; 1802 } else { 1803 oldArray = NULL; // no need to copy from the stack buffer to itself 1804 } 1805 } else { 1806 oldArray = fUnion.fFields.fArray; 1807 U_ASSERT(oldArray!=NULL); /* when stack buffer is not used, oldArray must have a non-NULL reference */ 1808 } 1809 1810 // allocate a new array 1811 if(allocate(growCapacity) || 1812 (newCapacity < growCapacity && allocate(newCapacity)) 1813 ) { 1814 if(doCopyArray) { 1815 // copy the contents 1816 // do not copy more than what fits - it may be smaller than before 1817 int32_t minLength = oldLength; 1818 newCapacity = getCapacity(); 1819 if(newCapacity < minLength) { 1820 minLength = newCapacity; 1821 } 1822 if(oldArray != NULL) { 1823 us_arrayCopy(oldArray, 0, getArrayStart(), 0, minLength); 1824 } 1825 setLength(minLength); 1826 } else { 1827 setZeroLength(); 1828 } 1829 1830 // release the old array 1831 if(flags & kRefCounted) { 1832 // the array is refCounted; decrement and release if 0 1833 u_atomic_int32_t *pRefCount = ((u_atomic_int32_t *)oldArray - 1); 1834 if(umtx_atomic_dec(pRefCount) == 0) { 1835 if(pBufferToDelete == 0) { 1836 // Note: cast to (void *) is needed with MSVC, where u_atomic_int32_t 1837 // is defined as volatile. (Volatile has useful non-standard behavior 1838 // with this compiler.) 1839 uprv_free((void *)pRefCount); 1840 } else { 1841 // the caller requested to delete it himself 1842 *pBufferToDelete = (int32_t *)pRefCount; 1843 } 1844 } 1845 } 1846 } else { 1847 // not enough memory for growCapacity and not even for the smaller newCapacity 1848 // reset the old values for setToBogus() to release the array 1849 if(!(flags&kUsingStackBuffer)) { 1850 fUnion.fFields.fArray = oldArray; 1851 } 1852 fUnion.fFields.fLengthAndFlags = flags; 1853 setToBogus(); 1854 return FALSE; 1855 } 1856 } 1857 return TRUE; 1858 } 1859 1860 // UnicodeStringAppendable ------------------------------------------------- *** 1861 1862 UnicodeStringAppendable::~UnicodeStringAppendable() {} 1863 1864 UBool 1865 UnicodeStringAppendable::appendCodeUnit(UChar c) { 1866 return str.doAppend(&c, 0, 1).isWritable(); 1867 } 1868 1869 UBool 1870 UnicodeStringAppendable::appendCodePoint(UChar32 c) { 1871 UChar buffer[U16_MAX_LENGTH]; 1872 int32_t cLength = 0; 1873 UBool isError = FALSE; 1874 U16_APPEND(buffer, cLength, U16_MAX_LENGTH, c, isError); 1875 return !isError && str.doAppend(buffer, 0, cLength).isWritable(); 1876 } 1877 1878 UBool 1879 UnicodeStringAppendable::appendString(const UChar *s, int32_t length) { 1880 return str.doAppend(s, 0, length).isWritable(); 1881 } 1882 1883 UBool 1884 UnicodeStringAppendable::reserveAppendCapacity(int32_t appendCapacity) { 1885 return str.cloneArrayIfNeeded(str.length() + appendCapacity); 1886 } 1887 1888 UChar * 1889 UnicodeStringAppendable::getAppendBuffer(int32_t minCapacity, 1890 int32_t desiredCapacityHint, 1891 UChar *scratch, int32_t scratchCapacity, 1892 int32_t *resultCapacity) { 1893 if(minCapacity < 1 || scratchCapacity < minCapacity) { 1894 *resultCapacity = 0; 1895 return NULL; 1896 } 1897 int32_t oldLength = str.length(); 1898 if(minCapacity <= (kMaxCapacity - oldLength) && 1899 desiredCapacityHint <= (kMaxCapacity - oldLength) && 1900 str.cloneArrayIfNeeded(oldLength + minCapacity, oldLength + desiredCapacityHint)) { 1901 *resultCapacity = str.getCapacity() - oldLength; 1902 return str.getArrayStart() + oldLength; 1903 } 1904 *resultCapacity = scratchCapacity; 1905 return scratch; 1906 } 1907 1908 U_NAMESPACE_END 1909 1910 U_NAMESPACE_USE 1911 1912 U_CAPI int32_t U_EXPORT2 1913 uhash_hashUnicodeString(const UElement key) { 1914 const UnicodeString *str = (const UnicodeString*) key.pointer; 1915 return (str == NULL) ? 0 : str->hashCode(); 1916 } 1917 1918 // Moved here from uhash_us.cpp so that using a UVector of UnicodeString* 1919 // does not depend on hashtable code. 1920 U_CAPI UBool U_EXPORT2 1921 uhash_compareUnicodeString(const UElement key1, const UElement key2) { 1922 const UnicodeString *str1 = (const UnicodeString*) key1.pointer; 1923 const UnicodeString *str2 = (const UnicodeString*) key2.pointer; 1924 if (str1 == str2) { 1925 return TRUE; 1926 } 1927 if (str1 == NULL || str2 == NULL) { 1928 return FALSE; 1929 } 1930 return *str1 == *str2; 1931 } 1932 1933 #ifdef U_STATIC_IMPLEMENTATION 1934 /* 1935 This should never be called. It is defined here to make sure that the 1936 virtual vector deleting destructor is defined within unistr.cpp. 1937 The vector deleting destructor is already a part of UObject, 1938 but defining it here makes sure that it is included with this object file. 1939 This makes sure that static library dependencies are kept to a minimum. 1940 */ 1941 static void uprv_UnicodeStringDummy(void) { 1942 delete [] (new UnicodeString[2]); 1943 } 1944 #endif 1945