1 /*
2  * Copyright 2006 The Android Open Source Project
3  *
4  * Use of this source code is governed by a BSD-style license that can be
5  * found in the LICENSE file.
6  */
7 
8 
9 #include "SkAtomics.h"
10 #include "SkString.h"
11 #include "SkUtils.h"
12 #include <stdarg.h>
13 #include <stdio.h>
14 
15 // number of bytes (on the stack) to receive the printf result
16 static const size_t kBufferSize = 1024;
17 
18 #ifdef SK_BUILD_FOR_WIN
19     #define VSNPRINTF(buffer, size, format, args) \
20         _vsnprintf_s(buffer, size, _TRUNCATE, format, args)
21     #define SNPRINTF    _snprintf
22 #else
23     #define VSNPRINTF   vsnprintf
24     #define SNPRINTF    snprintf
25 #endif
26 
27 #define ARGS_TO_BUFFER(format, buffer, size, written)      \
28     do {                                                   \
29         va_list args;                                      \
30         va_start(args, format);                            \
31         written = VSNPRINTF(buffer, size, format, args);   \
32         SkASSERT(written >= 0 && written < SkToInt(size)); \
33         va_end(args);                                      \
34     } while (0)
35 
36 #ifdef SK_BUILD_FOR_WIN
37 #define V_SKSTRING_PRINTF(output, format)                               \
38     do {                                                                \
39         va_list args;                                                   \
40         va_start(args, format);                                         \
41         char buffer[kBufferSize];                                       \
42         int length = _vsnprintf_s(buffer, sizeof(buffer),               \
43                                   _TRUNCATE, format, args);             \
44         va_end(args);                                                   \
45         if (length >= 0 && length < (int)sizeof(buffer)) {              \
46             output.set(buffer, length);                                 \
47             break;                                                      \
48         }                                                               \
49         va_start(args, format);                                         \
50         length = _vscprintf(format, args);                              \
51         va_end(args);                                                   \
52         SkAutoTMalloc<char> autoTMalloc((size_t)length + 1);            \
53         va_start(args, format);                                         \
54         SkDEBUGCODE(int check = ) _vsnprintf_s(autoTMalloc.get(),       \
55                                                length + 1, _TRUNCATE,   \
56                                                format, args);           \
57         va_end(args);                                                   \
58         SkASSERT(check == length);                                      \
59         output.set(autoTMalloc.get(), length);                          \
60         SkASSERT(output[length] == '\0');                               \
61     } while (false)
62 #else
63 #define V_SKSTRING_PRINTF(output, format)                               \
64     do {                                                                \
65         va_list args;                                                   \
66         va_start(args, format);                                         \
67         char buffer[kBufferSize];                                       \
68         int length = vsnprintf(buffer, sizeof(buffer), format, args);   \
69         va_end(args);                                                   \
70         if (length < 0) {                                               \
71             break;                                                      \
72         }                                                               \
73         if (length < (int)sizeof(buffer)) {                             \
74             output.set(buffer, length);                                 \
75             break;                                                      \
76         }                                                               \
77         SkAutoTMalloc<char> autoTMalloc((size_t)length + 1);            \
78         va_start(args, format);                                         \
79         SkDEBUGCODE(int check = ) vsnprintf(autoTMalloc.get(),          \
80                                             length + 1, format, args);  \
81         va_end(args);                                                   \
82         SkASSERT(check == length);                                      \
83         output.set(autoTMalloc.get(), length);                          \
84         SkASSERT(output[length] == '\0');                               \
85     } while (false)
86 #endif
87 
88 ///////////////////////////////////////////////////////////////////////////////
89 
SkStrEndsWith(const char string[],const char suffixStr[])90 bool SkStrEndsWith(const char string[], const char suffixStr[]) {
91     SkASSERT(string);
92     SkASSERT(suffixStr);
93     size_t  strLen = strlen(string);
94     size_t  suffixLen = strlen(suffixStr);
95     return  strLen >= suffixLen &&
96             !strncmp(string + strLen - suffixLen, suffixStr, suffixLen);
97 }
98 
SkStrEndsWith(const char string[],const char suffixChar)99 bool SkStrEndsWith(const char string[], const char suffixChar) {
100     SkASSERT(string);
101     size_t  strLen = strlen(string);
102     if (0 == strLen) {
103         return false;
104     } else {
105         return (suffixChar == string[strLen-1]);
106     }
107 }
108 
SkStrStartsWithOneOf(const char string[],const char prefixes[])109 int SkStrStartsWithOneOf(const char string[], const char prefixes[]) {
110     int index = 0;
111     do {
112         const char* limit = strchr(prefixes, '\0');
113         if (!strncmp(string, prefixes, limit - prefixes)) {
114             return index;
115         }
116         prefixes = limit + 1;
117         index++;
118     } while (prefixes[0]);
119     return -1;
120 }
121 
SkStrAppendU32(char string[],uint32_t dec)122 char* SkStrAppendU32(char string[], uint32_t dec) {
123     SkDEBUGCODE(char* start = string;)
124 
125     char    buffer[SkStrAppendU32_MaxSize];
126     char*   p = buffer + sizeof(buffer);
127 
128     do {
129         *--p = SkToU8('0' + dec % 10);
130         dec /= 10;
131     } while (dec != 0);
132 
133     SkASSERT(p >= buffer);
134     char* stop = buffer + sizeof(buffer);
135     while (p < stop) {
136         *string++ = *p++;
137     }
138     SkASSERT(string - start <= SkStrAppendU32_MaxSize);
139     return string;
140 }
141 
SkStrAppendS32(char string[],int32_t dec)142 char* SkStrAppendS32(char string[], int32_t dec) {
143     uint32_t udec = dec;
144     if (dec < 0) {
145         *string++ = '-';
146         udec = ~udec + 1;  // udec = -udec, but silences some warnings that are trying to be helpful
147     }
148     return SkStrAppendU32(string, udec);
149 }
150 
SkStrAppendU64(char string[],uint64_t dec,int minDigits)151 char* SkStrAppendU64(char string[], uint64_t dec, int minDigits) {
152     SkDEBUGCODE(char* start = string;)
153 
154     char    buffer[SkStrAppendU64_MaxSize];
155     char*   p = buffer + sizeof(buffer);
156 
157     do {
158         *--p = SkToU8('0' + (int32_t) (dec % 10));
159         dec /= 10;
160         minDigits--;
161     } while (dec != 0);
162 
163     while (minDigits > 0) {
164         *--p = '0';
165         minDigits--;
166     }
167 
168     SkASSERT(p >= buffer);
169     size_t cp_len = buffer + sizeof(buffer) - p;
170     memcpy(string, p, cp_len);
171     string += cp_len;
172 
173     SkASSERT(string - start <= SkStrAppendU64_MaxSize);
174     return string;
175 }
176 
SkStrAppendS64(char string[],int64_t dec,int minDigits)177 char* SkStrAppendS64(char string[], int64_t dec, int minDigits) {
178     uint64_t udec = dec;
179     if (dec < 0) {
180         *string++ = '-';
181         udec = ~udec + 1;  // udec = -udec, but silences some warnings that are trying to be helpful
182     }
183     return SkStrAppendU64(string, udec, minDigits);
184 }
185 
SkStrAppendFloat(char string[],float value)186 char* SkStrAppendFloat(char string[], float value) {
187     // since floats have at most 8 significant digits, we limit our %g to that.
188     static const char gFormat[] = "%.8g";
189     // make it 1 larger for the terminating 0
190     char buffer[SkStrAppendScalar_MaxSize + 1];
191     int len = SNPRINTF(buffer, sizeof(buffer), gFormat, value);
192     memcpy(string, buffer, len);
193     SkASSERT(len <= SkStrAppendScalar_MaxSize);
194     return string + len;
195 }
196 
197 ///////////////////////////////////////////////////////////////////////////////
198 
199 const SkString::Rec SkString::gEmptyRec(0, 0);
200 
201 #define SizeOfRec()     (gEmptyRec.data() - (const char*)&gEmptyRec)
202 
trim_size_t_to_u32(size_t value)203 static uint32_t trim_size_t_to_u32(size_t value) {
204     if (sizeof(size_t) > sizeof(uint32_t)) {
205         if (value > SK_MaxU32) {
206             value = SK_MaxU32;
207         }
208     }
209     return (uint32_t)value;
210 }
211 
check_add32(size_t base,size_t extra)212 static size_t check_add32(size_t base, size_t extra) {
213     SkASSERT(base <= SK_MaxU32);
214     if (sizeof(size_t) > sizeof(uint32_t)) {
215         if (base + extra > SK_MaxU32) {
216             extra = SK_MaxU32 - base;
217         }
218     }
219     return extra;
220 }
221 
Make(const char text[],size_t len)222 sk_sp<SkString::Rec> SkString::Rec::Make(const char text[], size_t len) {
223     if (0 == len) {
224         return sk_sp<SkString::Rec>(const_cast<Rec*>(&gEmptyRec));
225     }
226 
227     len = trim_size_t_to_u32(len);
228     // add 1 for terminating 0, then align4 so we can have some slop when growing the string
229     const size_t actualLength = SizeOfRec() + SkAlign4(len + 1);
230     SkASSERT_RELEASE(len < actualLength);  // Check for overflow.
231 
232     void* storage = ::operator new (actualLength);
233     sk_sp<Rec> rec(new (storage) Rec(SkToU32(len), 1));
234     if (text) {
235         memcpy(rec->data(), text, len);
236     }
237     rec->data()[len] = 0;
238     return rec;
239 }
240 
ref() const241 void SkString::Rec::ref() const {
242     if (this == &SkString::gEmptyRec) {
243         return;
244     }
245     SkAssertResult(this->fRefCnt.fetch_add(+1, std::memory_order_relaxed));
246 }
247 
unref() const248 void SkString::Rec::unref() const {
249     if (this == &SkString::gEmptyRec) {
250         return;
251     }
252     int32_t oldRefCnt = this->fRefCnt.fetch_add(-1, std::memory_order_acq_rel);
253     SkASSERT(oldRefCnt);
254     if (1 == oldRefCnt) {
255         delete this;
256     }
257 }
258 
unique() const259 bool SkString::Rec::unique() const {
260     return fRefCnt.load(std::memory_order_acquire) == 1;
261 }
262 
263 #ifdef SK_DEBUG
validate() const264 void SkString::validate() const {
265     // make sure know one has written over our global
266     SkASSERT(0 == gEmptyRec.fLength);
267     SkASSERT(0 == gEmptyRec.fRefCnt.load(std::memory_order_relaxed));
268     SkASSERT(0 == gEmptyRec.data()[0]);
269 
270     if (fRec.get() != &gEmptyRec) {
271         SkASSERT(fRec->fLength > 0);
272         SkASSERT(fRec->fRefCnt.load(std::memory_order_relaxed) > 0);
273         SkASSERT(0 == fRec->data()[fRec->fLength]);
274     }
275 }
276 #endif
277 
278 ///////////////////////////////////////////////////////////////////////////////
279 
SkString()280 SkString::SkString() : fRec(const_cast<Rec*>(&gEmptyRec)) {
281 }
282 
SkString(size_t len)283 SkString::SkString(size_t len) {
284     fRec = Rec::Make(nullptr, len);
285 }
286 
SkString(const char text[])287 SkString::SkString(const char text[]) {
288     size_t  len = text ? strlen(text) : 0;
289 
290     fRec = Rec::Make(text, len);
291 }
292 
SkString(const char text[],size_t len)293 SkString::SkString(const char text[], size_t len) {
294     fRec = Rec::Make(text, len);
295 }
296 
SkString(const SkString & src)297 SkString::SkString(const SkString& src) {
298     src.validate();
299 
300     fRec = src.fRec;
301 }
302 
SkString(SkString && src)303 SkString::SkString(SkString&& src) {
304     src.validate();
305 
306     fRec = std::move(src.fRec);
307     src.fRec.reset(const_cast<Rec*>(&gEmptyRec));
308 }
309 
~SkString()310 SkString::~SkString() {
311     this->validate();
312 }
313 
equals(const SkString & src) const314 bool SkString::equals(const SkString& src) const {
315     return fRec == src.fRec || this->equals(src.c_str(), src.size());
316 }
317 
equals(const char text[]) const318 bool SkString::equals(const char text[]) const {
319     return this->equals(text, text ? strlen(text) : 0);
320 }
321 
equals(const char text[],size_t len) const322 bool SkString::equals(const char text[], size_t len) const {
323     SkASSERT(len == 0 || text != nullptr);
324 
325     return fRec->fLength == len && !memcmp(fRec->data(), text, len);
326 }
327 
operator =(const SkString & src)328 SkString& SkString::operator=(const SkString& src) {
329     this->validate();
330 
331     if (fRec != src.fRec) {
332         SkString    tmp(src);
333         this->swap(tmp);
334     }
335     return *this;
336 }
337 
operator =(SkString && src)338 SkString& SkString::operator=(SkString&& src) {
339     this->validate();
340 
341     if (fRec != src.fRec) {
342         this->swap(src);
343     }
344     return *this;
345 }
346 
operator =(const char text[])347 SkString& SkString::operator=(const char text[]) {
348     this->validate();
349 
350     SkString tmp(text);
351     this->swap(tmp);
352 
353     return *this;
354 }
355 
reset()356 void SkString::reset() {
357     this->validate();
358     fRec.reset(const_cast<Rec*>(&gEmptyRec));
359 }
360 
writable_str()361 char* SkString::writable_str() {
362     this->validate();
363 
364     if (fRec->fLength) {
365         if (!fRec->unique()) {
366             fRec = Rec::Make(fRec->data(), fRec->fLength);
367         }
368     }
369     return fRec->data();
370 }
371 
set(const char text[])372 void SkString::set(const char text[]) {
373     this->set(text, text ? strlen(text) : 0);
374 }
375 
set(const char text[],size_t len)376 void SkString::set(const char text[], size_t len) {
377     len = trim_size_t_to_u32(len);
378     bool unique = fRec->unique();
379     if (0 == len) {
380         this->reset();
381     } else if (unique && len <= fRec->fLength) {
382         // should we resize if len <<<< fLength, to save RAM? (e.g. len < (fLength>>1))?
383         // just use less of the buffer without allocating a smaller one
384         char* p = this->writable_str();
385         if (text) {
386             memcpy(p, text, len);
387         }
388         p[len] = 0;
389         fRec->fLength = SkToU32(len);
390     } else if (unique && (fRec->fLength >> 2) == (len >> 2)) {
391         // we have spare room in the current allocation, so don't alloc a larger one
392         char* p = this->writable_str();
393         if (text) {
394             memcpy(p, text, len);
395         }
396         p[len] = 0;
397         fRec->fLength = SkToU32(len);
398     } else {
399         SkString tmp(text, len);
400         this->swap(tmp);
401     }
402 }
403 
setUTF16(const uint16_t src[])404 void SkString::setUTF16(const uint16_t src[]) {
405     int count = 0;
406 
407     while (src[count]) {
408         count += 1;
409     }
410     this->setUTF16(src, count);
411 }
412 
setUTF16(const uint16_t src[],size_t count)413 void SkString::setUTF16(const uint16_t src[], size_t count) {
414     count = trim_size_t_to_u32(count);
415 
416     if (0 == count) {
417         this->reset();
418     } else if (count <= fRec->fLength) {
419         // should we resize if len <<<< fLength, to save RAM? (e.g. len < (fLength>>1))
420         if (count < fRec->fLength) {
421             this->resize(count);
422         }
423         char* p = this->writable_str();
424         for (size_t i = 0; i < count; i++) {
425             p[i] = SkToU8(src[i]);
426         }
427         p[count] = 0;
428     } else {
429         SkString tmp(count); // puts a null terminator at the end of the string
430         char*    p = tmp.writable_str();
431 
432         for (size_t i = 0; i < count; i++) {
433             p[i] = SkToU8(src[i]);
434         }
435         this->swap(tmp);
436     }
437 }
438 
insert(size_t offset,const char text[])439 void SkString::insert(size_t offset, const char text[]) {
440     this->insert(offset, text, text ? strlen(text) : 0);
441 }
442 
insert(size_t offset,const char text[],size_t len)443 void SkString::insert(size_t offset, const char text[], size_t len) {
444     if (len) {
445         size_t length = fRec->fLength;
446         if (offset > length) {
447             offset = length;
448         }
449 
450         // Check if length + len exceeds 32bits, we trim len
451         len = check_add32(length, len);
452         if (0 == len) {
453             return;
454         }
455 
456         /*  If we're the only owner, and we have room in our allocation for the insert,
457             do it in place, rather than allocating a new buffer.
458 
459             To know we have room, compare the allocated sizes
460             beforeAlloc = SkAlign4(length + 1)
461             afterAlloc  = SkAligh4(length + 1 + len)
462             but SkAlign4(x) is (x + 3) >> 2 << 2
463             which is equivalent for testing to (length + 1 + 3) >> 2 == (length + 1 + 3 + len) >> 2
464             and we can then eliminate the +1+3 since that doesn't affec the answer
465         */
466         if (fRec->unique() && (length >> 2) == ((length + len) >> 2)) {
467             char* dst = this->writable_str();
468 
469             if (offset < length) {
470                 memmove(dst + offset + len, dst + offset, length - offset);
471             }
472             memcpy(dst + offset, text, len);
473 
474             dst[length + len] = 0;
475             fRec->fLength = SkToU32(length + len);
476         } else {
477             /*  Seems we should use realloc here, since that is safe if it fails
478                 (we have the original data), and might be faster than alloc/copy/free.
479             */
480             SkString    tmp(fRec->fLength + len);
481             char*       dst = tmp.writable_str();
482 
483             if (offset > 0) {
484                 memcpy(dst, fRec->data(), offset);
485             }
486             memcpy(dst + offset, text, len);
487             if (offset < fRec->fLength) {
488                 memcpy(dst + offset + len, fRec->data() + offset,
489                        fRec->fLength - offset);
490             }
491 
492             this->swap(tmp);
493         }
494     }
495 }
496 
insertUnichar(size_t offset,SkUnichar uni)497 void SkString::insertUnichar(size_t offset, SkUnichar uni) {
498     char    buffer[kMaxBytesInUTF8Sequence];
499     size_t  len = SkUTF8_FromUnichar(uni, buffer);
500 
501     if (len) {
502         this->insert(offset, buffer, len);
503     }
504 }
505 
insertS32(size_t offset,int32_t dec)506 void SkString::insertS32(size_t offset, int32_t dec) {
507     char    buffer[SkStrAppendS32_MaxSize];
508     char*   stop = SkStrAppendS32(buffer, dec);
509     this->insert(offset, buffer, stop - buffer);
510 }
511 
insertS64(size_t offset,int64_t dec,int minDigits)512 void SkString::insertS64(size_t offset, int64_t dec, int minDigits) {
513     char    buffer[SkStrAppendS64_MaxSize];
514     char*   stop = SkStrAppendS64(buffer, dec, minDigits);
515     this->insert(offset, buffer, stop - buffer);
516 }
517 
insertU32(size_t offset,uint32_t dec)518 void SkString::insertU32(size_t offset, uint32_t dec) {
519     char    buffer[SkStrAppendU32_MaxSize];
520     char*   stop = SkStrAppendU32(buffer, dec);
521     this->insert(offset, buffer, stop - buffer);
522 }
523 
insertU64(size_t offset,uint64_t dec,int minDigits)524 void SkString::insertU64(size_t offset, uint64_t dec, int minDigits) {
525     char    buffer[SkStrAppendU64_MaxSize];
526     char*   stop = SkStrAppendU64(buffer, dec, minDigits);
527     this->insert(offset, buffer, stop - buffer);
528 }
529 
insertHex(size_t offset,uint32_t hex,int minDigits)530 void SkString::insertHex(size_t offset, uint32_t hex, int minDigits) {
531     minDigits = SkTPin(minDigits, 0, 8);
532 
533     char    buffer[8];
534     char*   p = buffer + sizeof(buffer);
535 
536     do {
537         *--p = SkHexadecimalDigits::gUpper[hex & 0xF];
538         hex >>= 4;
539         minDigits -= 1;
540     } while (hex != 0);
541 
542     while (--minDigits >= 0) {
543         *--p = '0';
544     }
545 
546     SkASSERT(p >= buffer);
547     this->insert(offset, p, buffer + sizeof(buffer) - p);
548 }
549 
insertScalar(size_t offset,SkScalar value)550 void SkString::insertScalar(size_t offset, SkScalar value) {
551     char    buffer[SkStrAppendScalar_MaxSize];
552     char*   stop = SkStrAppendScalar(buffer, value);
553     this->insert(offset, buffer, stop - buffer);
554 }
555 
printf(const char format[],...)556 void SkString::printf(const char format[], ...) {
557     V_SKSTRING_PRINTF((*this), format);
558 }
559 
appendf(const char format[],...)560 void SkString::appendf(const char format[], ...) {
561     char    buffer[kBufferSize];
562     int length;
563     ARGS_TO_BUFFER(format, buffer, kBufferSize, length);
564 
565     this->append(buffer, length);
566 }
567 
appendVAList(const char format[],va_list args)568 void SkString::appendVAList(const char format[], va_list args) {
569     char    buffer[kBufferSize];
570     int length = VSNPRINTF(buffer, kBufferSize, format, args);
571     SkASSERT(length >= 0 && length < SkToInt(kBufferSize));
572 
573     this->append(buffer, length);
574 }
575 
prependf(const char format[],...)576 void SkString::prependf(const char format[], ...) {
577     char    buffer[kBufferSize];
578     int length;
579     ARGS_TO_BUFFER(format, buffer, kBufferSize, length);
580 
581     this->prepend(buffer, length);
582 }
583 
prependVAList(const char format[],va_list args)584 void SkString::prependVAList(const char format[], va_list args) {
585     char    buffer[kBufferSize];
586     int length = VSNPRINTF(buffer, kBufferSize, format, args);
587     SkASSERT(length >= 0 && length < SkToInt(kBufferSize));
588 
589     this->prepend(buffer, length);
590 }
591 
592 
593 ///////////////////////////////////////////////////////////////////////////////
594 
remove(size_t offset,size_t length)595 void SkString::remove(size_t offset, size_t length) {
596     size_t size = this->size();
597 
598     if (offset < size) {
599         if (length > size - offset) {
600             length = size - offset;
601         }
602         SkASSERT(length <= size);
603         SkASSERT(offset <= size - length);
604         if (length > 0) {
605             SkString    tmp(size - length);
606             char*       dst = tmp.writable_str();
607             const char* src = this->c_str();
608 
609             if (offset) {
610                 memcpy(dst, src, offset);
611             }
612             size_t tail = size - (offset + length);
613             if (tail) {
614                 memcpy(dst + offset, src + (offset + length), tail);
615             }
616             SkASSERT(dst[tmp.size()] == 0);
617             this->swap(tmp);
618         }
619     }
620 }
621 
swap(SkString & other)622 void SkString::swap(SkString& other) {
623     this->validate();
624     other.validate();
625 
626     SkTSwap(fRec, other.fRec);
627 }
628 
629 ///////////////////////////////////////////////////////////////////////////////
630 
SkStringPrintf(const char * format,...)631 SkString SkStringPrintf(const char* format, ...) {
632     SkString formattedOutput;
633     V_SKSTRING_PRINTF(formattedOutput, format);
634     return formattedOutput;
635 }
636 
SkStrSplit(const char * str,const char * delimiters,SkStrSplitMode splitMode,SkTArray<SkString> * out)637 void SkStrSplit(const char* str, const char* delimiters, SkStrSplitMode splitMode,
638                 SkTArray<SkString>* out) {
639     if (splitMode == kCoalesce_SkStrSplitMode) {
640         // Skip any delimiters.
641         str += strspn(str, delimiters);
642     }
643     if (!*str) {
644         return;
645     }
646 
647     while (true) {
648         // Find a token.
649         const size_t len = strcspn(str, delimiters);
650         if (splitMode == kStrict_SkStrSplitMode || len > 0) {
651             out->push_back().set(str, len);
652             str += len;
653         }
654 
655         if (!*str) {
656             return;
657         }
658         if (splitMode == kCoalesce_SkStrSplitMode) {
659             // Skip any delimiters.
660             str += strspn(str, delimiters);
661         } else {
662             // Skip one delimiter.
663             str += 1;
664         }
665     }
666 }
667 
668 #undef VSNPRINTF
669 #undef SNPRINTF
670