• Home
  • Line#
  • Scopes#
  • Navigate#
  • Raw
  • Download
1 // Copyright 2020 The Chromium Authors
2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file.
4 
5 #ifndef BASE_STRINGS_STRING_UTIL_IMPL_HELPERS_H_
6 #define BASE_STRINGS_STRING_UTIL_IMPL_HELPERS_H_
7 
8 #include <algorithm>
9 
10 #include "base/check.h"
11 #include "base/check_op.h"
12 #include "base/logging.h"
13 #include "base/notreached.h"
14 #include "base/ranges/algorithm.h"
15 #include "base/strings/string_piece.h"
16 #include "base/third_party/icu/icu_utf.h"
17 #include "third_party/abseil-cpp/absl/types/optional.h"
18 
19 namespace base::internal {
20 
21 // Used by ReplaceStringPlaceholders to track the position in the string of
22 // replaced parameters.
23 struct ReplacementOffset {
ReplacementOffsetReplacementOffset24   ReplacementOffset(uintptr_t parameter, size_t offset)
25       : parameter(parameter), offset(offset) {}
26 
27   // Index of the parameter.
28   size_t parameter;
29 
30   // Starting position in the string.
31   size_t offset;
32 };
33 
CompareParameter(const ReplacementOffset & elem1,const ReplacementOffset & elem2)34 static bool CompareParameter(const ReplacementOffset& elem1,
35                              const ReplacementOffset& elem2) {
36   return elem1.parameter < elem2.parameter;
37 }
38 
39 // Assuming that a pointer is the size of a "machine word", then
40 // uintptr_t is an integer type that is also a machine word.
41 using MachineWord = uintptr_t;
42 
IsMachineWordAligned(const void * pointer)43 inline bool IsMachineWordAligned(const void* pointer) {
44   return !(reinterpret_cast<MachineWord>(pointer) & (sizeof(MachineWord) - 1));
45 }
46 
47 template <typename T, typename CharT = typename T::value_type>
ToLowerASCIIImpl(T str)48 std::basic_string<CharT> ToLowerASCIIImpl(T str) {
49   std::basic_string<CharT> ret;
50   ret.reserve(str.size());
51   for (size_t i = 0; i < str.size(); i++)
52     ret.push_back(ToLowerASCII(str[i]));
53   return ret;
54 }
55 
56 template <typename T, typename CharT = typename T::value_type>
ToUpperASCIIImpl(T str)57 std::basic_string<CharT> ToUpperASCIIImpl(T str) {
58   std::basic_string<CharT> ret;
59   ret.reserve(str.size());
60   for (size_t i = 0; i < str.size(); i++)
61     ret.push_back(ToUpperASCII(str[i]));
62   return ret;
63 }
64 
65 template <typename T, typename CharT = typename T::value_type>
TrimStringT(T input,T trim_chars,TrimPositions positions,std::basic_string<CharT> * output)66 TrimPositions TrimStringT(T input,
67                           T trim_chars,
68                           TrimPositions positions,
69                           std::basic_string<CharT>* output) {
70   // Find the edges of leading/trailing whitespace as desired. Need to use
71   // a StringPiece version of input to be able to call find* on it with the
72   // StringPiece version of trim_chars (normally the trim_chars will be a
73   // constant so avoid making a copy).
74   const size_t last_char = input.length() - 1;
75   const size_t first_good_char =
76       (positions & TRIM_LEADING) ? input.find_first_not_of(trim_chars) : 0;
77   const size_t last_good_char = (positions & TRIM_TRAILING)
78                                     ? input.find_last_not_of(trim_chars)
79                                     : last_char;
80 
81   // When the string was all trimmed, report that we stripped off characters
82   // from whichever position the caller was interested in. For empty input, we
83   // stripped no characters, but we still need to clear |output|.
84   if (input.empty() || first_good_char == std::basic_string<CharT>::npos ||
85       last_good_char == std::basic_string<CharT>::npos) {
86     bool input_was_empty = input.empty();  // in case output == &input
87     output->clear();
88     return input_was_empty ? TRIM_NONE : positions;
89   }
90 
91   // Trim.
92   output->assign(input.data() + first_good_char,
93                  last_good_char - first_good_char + 1);
94 
95   // Return where we trimmed from.
96   return static_cast<TrimPositions>(
97       (first_good_char == 0 ? TRIM_NONE : TRIM_LEADING) |
98       (last_good_char == last_char ? TRIM_NONE : TRIM_TRAILING));
99 }
100 
101 template <typename T, typename CharT = typename T::value_type>
TrimStringPieceT(T input,T trim_chars,TrimPositions positions)102 T TrimStringPieceT(T input, T trim_chars, TrimPositions positions) {
103   size_t begin =
104       (positions & TRIM_LEADING) ? input.find_first_not_of(trim_chars) : 0;
105   size_t end = (positions & TRIM_TRAILING)
106                    ? input.find_last_not_of(trim_chars) + 1
107                    : input.size();
108   return input.substr(std::min(begin, input.size()), end - begin);
109 }
110 
111 template <typename T, typename CharT = typename T::value_type>
CollapseWhitespaceT(T text,bool trim_sequences_with_line_breaks)112 std::basic_string<CharT> CollapseWhitespaceT(
113     T text,
114     bool trim_sequences_with_line_breaks) {
115   std::basic_string<CharT> result;
116   result.resize(text.size());
117 
118   // Set flags to pretend we're already in a trimmed whitespace sequence, so we
119   // will trim any leading whitespace.
120   bool in_whitespace = true;
121   bool already_trimmed = true;
122 
123   size_t chars_written = 0;
124   for (auto c : text) {
125     if (IsWhitespace(c)) {
126       if (!in_whitespace) {
127         // Reduce all whitespace sequences to a single space.
128         in_whitespace = true;
129         result[chars_written++] = L' ';
130       }
131       if (trim_sequences_with_line_breaks && !already_trimmed &&
132           ((c == '\n') || (c == '\r'))) {
133         // Whitespace sequences containing CR or LF are eliminated entirely.
134         already_trimmed = true;
135         --chars_written;
136       }
137     } else {
138       // Non-whitespace characters are copied straight across.
139       in_whitespace = false;
140       already_trimmed = false;
141       result[chars_written++] = c;
142     }
143   }
144 
145   if (in_whitespace && !already_trimmed) {
146     // Any trailing whitespace is eliminated.
147     --chars_written;
148   }
149 
150   result.resize(chars_written);
151   return result;
152 }
153 
154 template <class Char>
DoIsStringASCII(const Char * characters,size_t length)155 bool DoIsStringASCII(const Char* characters, size_t length) {
156   // Bitmasks to detect non ASCII characters for character sizes of 8, 16 and 32
157   // bits.
158   constexpr MachineWord NonASCIIMasks[] = {
159       0, MachineWord(0x8080808080808080ULL), MachineWord(0xFF80FF80FF80FF80ULL),
160       0, MachineWord(0xFFFFFF80FFFFFF80ULL),
161   };
162 
163   if (!length)
164     return true;
165   constexpr MachineWord non_ascii_bit_mask = NonASCIIMasks[sizeof(Char)];
166   static_assert(non_ascii_bit_mask, "Error: Invalid Mask");
167   MachineWord all_char_bits = 0;
168   const Char* end = characters + length;
169 
170   // Prologue: align the input.
171   while (!IsMachineWordAligned(characters) && characters < end)
172     all_char_bits |= static_cast<MachineWord>(*characters++);
173   if (all_char_bits & non_ascii_bit_mask)
174     return false;
175 
176   // Compare the values of CPU word size.
177   constexpr size_t chars_per_word = sizeof(MachineWord) / sizeof(Char);
178   constexpr int batch_count = 16;
179   while (characters <= end - batch_count * chars_per_word) {
180     all_char_bits = 0;
181     for (int i = 0; i < batch_count; ++i) {
182       all_char_bits |= *(reinterpret_cast<const MachineWord*>(characters));
183       characters += chars_per_word;
184     }
185     if (all_char_bits & non_ascii_bit_mask)
186       return false;
187   }
188 
189   // Process the remaining words.
190   all_char_bits = 0;
191   while (characters <= end - chars_per_word) {
192     all_char_bits |= *(reinterpret_cast<const MachineWord*>(characters));
193     characters += chars_per_word;
194   }
195 
196   // Process the remaining bytes.
197   while (characters < end)
198     all_char_bits |= static_cast<MachineWord>(*characters++);
199 
200   return !(all_char_bits & non_ascii_bit_mask);
201 }
202 
203 template <bool (*Validator)(base_icu::UChar32)>
DoIsStringUTF8(StringPiece str)204 inline bool DoIsStringUTF8(StringPiece str) {
205   const uint8_t* src = reinterpret_cast<const uint8_t*>(str.data());
206   size_t src_len = str.length();
207   size_t char_index = 0;
208 
209   while (char_index < src_len) {
210     base_icu::UChar32 code_point;
211     CBU8_NEXT(src, char_index, src_len, code_point);
212     if (!Validator(code_point))
213       return false;
214   }
215   return true;
216 }
217 
218 template <typename T, typename CharT = typename T::value_type>
StartsWithT(T str,T search_for,CompareCase case_sensitivity)219 bool StartsWithT(T str, T search_for, CompareCase case_sensitivity) {
220   if (search_for.size() > str.size())
221     return false;
222 
223   BasicStringPiece<CharT> source = str.substr(0, search_for.size());
224 
225   switch (case_sensitivity) {
226     case CompareCase::SENSITIVE:
227       return source == search_for;
228 
229     case CompareCase::INSENSITIVE_ASCII:
230       return std::equal(search_for.begin(), search_for.end(), source.begin(),
231                         CaseInsensitiveCompareASCII<CharT>());
232   }
233 }
234 
235 template <typename T, typename CharT = typename T::value_type>
EndsWithT(T str,T search_for,CompareCase case_sensitivity)236 bool EndsWithT(T str, T search_for, CompareCase case_sensitivity) {
237   if (search_for.size() > str.size())
238     return false;
239 
240   BasicStringPiece<CharT> source =
241       str.substr(str.size() - search_for.size(), search_for.size());
242 
243   switch (case_sensitivity) {
244     case CompareCase::SENSITIVE:
245       return source == search_for;
246 
247     case CompareCase::INSENSITIVE_ASCII:
248       return std::equal(source.begin(), source.end(), search_for.begin(),
249                         CaseInsensitiveCompareASCII<CharT>());
250   }
251 }
252 
253 // A Matcher for DoReplaceMatchesAfterOffset() that matches substrings.
254 template <class CharT>
255 struct SubstringMatcher {
256   BasicStringPiece<CharT> find_this;
257 
FindSubstringMatcher258   size_t Find(const std::basic_string<CharT>& input, size_t pos) {
259     return input.find(find_this.data(), pos, find_this.length());
260   }
MatchSizeSubstringMatcher261   size_t MatchSize() { return find_this.length(); }
262 };
263 
264 // Type deduction helper for SubstringMatcher.
265 template <typename T, typename CharT = typename T::value_type>
MakeSubstringMatcher(T find_this)266 auto MakeSubstringMatcher(T find_this) {
267   return SubstringMatcher<CharT>{find_this};
268 }
269 
270 // A Matcher for DoReplaceMatchesAfterOffset() that matches single characters.
271 template <class CharT>
272 struct CharacterMatcher {
273   BasicStringPiece<CharT> find_any_of_these;
274 
FindCharacterMatcher275   size_t Find(const std::basic_string<CharT>& input, size_t pos) {
276     return input.find_first_of(find_any_of_these.data(), pos,
277                                find_any_of_these.length());
278   }
MatchSizeCharacterMatcher279   constexpr size_t MatchSize() { return 1; }
280 };
281 
282 // Type deduction helper for CharacterMatcher.
283 template <typename T, typename CharT = typename T::value_type>
MakeCharacterMatcher(T find_any_of_these)284 auto MakeCharacterMatcher(T find_any_of_these) {
285   return CharacterMatcher<CharT>{find_any_of_these};
286 }
287 
288 enum class ReplaceType { REPLACE_ALL, REPLACE_FIRST };
289 
290 // Runs in O(n) time in the length of |str|, and transforms the string without
291 // reallocating when possible. Returns |true| if any matches were found.
292 //
293 // This is parameterized on a |Matcher| traits type, so that it can be the
294 // implementation for both ReplaceChars() and ReplaceSubstringsAfterOffset().
295 template <typename Matcher, typename T, typename CharT = typename T::value_type>
DoReplaceMatchesAfterOffset(std::basic_string<CharT> * str,size_t initial_offset,Matcher matcher,T replace_with,ReplaceType replace_type)296 bool DoReplaceMatchesAfterOffset(std::basic_string<CharT>* str,
297                                  size_t initial_offset,
298                                  Matcher matcher,
299                                  T replace_with,
300                                  ReplaceType replace_type) {
301   using CharTraits = std::char_traits<CharT>;
302 
303   const size_t find_length = matcher.MatchSize();
304   if (!find_length)
305     return false;
306 
307   // If the find string doesn't appear, there's nothing to do.
308   size_t first_match = matcher.Find(*str, initial_offset);
309   if (first_match == std::basic_string<CharT>::npos)
310     return false;
311 
312   // If we're only replacing one instance, there's no need to do anything
313   // complicated.
314   const size_t replace_length = replace_with.length();
315   if (replace_type == ReplaceType::REPLACE_FIRST) {
316     str->replace(first_match, find_length, replace_with.data(), replace_length);
317     return true;
318   }
319 
320   // If the find and replace strings are the same length, we can simply use
321   // replace() on each instance, and finish the entire operation in O(n) time.
322   if (find_length == replace_length) {
323     auto* buffer = &((*str)[0]);
324     for (size_t offset = first_match; offset != std::basic_string<CharT>::npos;
325          offset = matcher.Find(*str, offset + replace_length)) {
326       CharTraits::copy(buffer + offset, replace_with.data(), replace_length);
327     }
328     return true;
329   }
330 
331   // Since the find and replace strings aren't the same length, a loop like the
332   // one above would be O(n^2) in the worst case, as replace() will shift the
333   // entire remaining string each time. We need to be more clever to keep things
334   // O(n).
335   //
336   // When the string is being shortened, it's possible to just shift the matches
337   // down in one pass while finding, and truncate the length at the end of the
338   // search.
339   //
340   // If the string is being lengthened, more work is required. The strategy used
341   // here is to make two find() passes through the string. The first pass counts
342   // the number of matches to determine the new size. The second pass will
343   // either construct the new string into a new buffer (if the existing buffer
344   // lacked capacity), or else -- if there is room -- create a region of scratch
345   // space after |first_match| by shifting the tail of the string to a higher
346   // index, and doing in-place moves from the tail to lower indices thereafter.
347   size_t str_length = str->length();
348   size_t expansion = 0;
349   if (replace_length > find_length) {
350     // This operation lengthens the string; determine the new length by counting
351     // matches.
352     const size_t expansion_per_match = (replace_length - find_length);
353     size_t num_matches = 0;
354     for (size_t match = first_match; match != std::basic_string<CharT>::npos;
355          match = matcher.Find(*str, match + find_length)) {
356       expansion += expansion_per_match;
357       ++num_matches;
358     }
359     const size_t final_length = str_length + expansion;
360 
361     if (str->capacity() < final_length) {
362       // If we'd have to allocate a new buffer to grow the string, build the
363       // result directly into the new allocation via append().
364       std::basic_string<CharT> src(str->get_allocator());
365       str->swap(src);
366       str->reserve(final_length);
367 
368       size_t pos = 0;
369       for (size_t match = first_match;; match = matcher.Find(src, pos)) {
370         str->append(src, pos, match - pos);
371         str->append(replace_with.data(), replace_length);
372         pos = match + find_length;
373 
374         // A mid-loop test/break enables skipping the final Find() call; the
375         // number of matches is known, so don't search past the last one.
376         if (!--num_matches)
377           break;
378       }
379 
380       // Handle substring after the final match.
381       str->append(src, pos, str_length - pos);
382       return true;
383     }
384 
385     // Prepare for the copy/move loop below -- expand the string to its final
386     // size by shifting the data after the first match to the end of the resized
387     // string.
388     size_t shift_src = first_match + find_length;
389     size_t shift_dst = shift_src + expansion;
390 
391     // Big |expansion| factors (relative to |str_length|) require padding up to
392     // |shift_dst|.
393     if (shift_dst > str_length)
394       str->resize(shift_dst);
395 
396     str->replace(shift_dst, str_length - shift_src, *str, shift_src,
397                  str_length - shift_src);
398     str_length = final_length;
399   }
400 
401   // We can alternate replacement and move operations. This won't overwrite the
402   // unsearched region of the string so long as |write_offset| <= |read_offset|;
403   // that condition is always satisfied because:
404   //
405   //   (a) If the string is being shortened, |expansion| is zero and
406   //       |write_offset| grows slower than |read_offset|.
407   //
408   //   (b) If the string is being lengthened, |write_offset| grows faster than
409   //       |read_offset|, but |expansion| is big enough so that |write_offset|
410   //       will only catch up to |read_offset| at the point of the last match.
411   auto* buffer = &((*str)[0]);
412   size_t write_offset = first_match;
413   size_t read_offset = first_match + expansion;
414   do {
415     if (replace_length) {
416       CharTraits::copy(buffer + write_offset, replace_with.data(),
417                        replace_length);
418       write_offset += replace_length;
419     }
420     read_offset += find_length;
421 
422     // min() clamps std::basic_string<CharT>::npos (the largest unsigned value)
423     // to str_length.
424     size_t match = std::min(matcher.Find(*str, read_offset), str_length);
425 
426     size_t length = match - read_offset;
427     if (length) {
428       CharTraits::move(buffer + write_offset, buffer + read_offset, length);
429       write_offset += length;
430       read_offset += length;
431     }
432   } while (read_offset < str_length);
433 
434   // If we're shortening the string, truncate it now.
435   str->resize(write_offset);
436   return true;
437 }
438 
439 template <typename T, typename CharT = typename T::value_type>
ReplaceCharsT(T input,T find_any_of_these,T replace_with,std::basic_string<CharT> * output)440 bool ReplaceCharsT(T input,
441                    T find_any_of_these,
442                    T replace_with,
443                    std::basic_string<CharT>* output) {
444   // Commonly, this is called with output and input being the same string; in
445   // that case, skip the copy.
446   if (input.data() != output->data() || input.size() != output->size())
447     output->assign(input.data(), input.size());
448 
449   return DoReplaceMatchesAfterOffset(output, 0,
450                                      MakeCharacterMatcher(find_any_of_these),
451                                      replace_with, ReplaceType::REPLACE_ALL);
452 }
453 
454 template <class string_type>
WriteIntoT(string_type * str,size_t length_with_null)455 inline typename string_type::value_type* WriteIntoT(string_type* str,
456                                                     size_t length_with_null) {
457   DCHECK_GE(length_with_null, 1u);
458   str->reserve(length_with_null);
459   str->resize(length_with_null - 1);
460   return &((*str)[0]);
461 }
462 
463 // Generic version for all JoinString overloads. |list_type| must be a sequence
464 // (base::span or std::initializer_list) of strings/StringPieces (std::string,
465 // std::u16string, StringPiece or StringPiece16). |CharT| is either char or
466 // char16_t.
467 template <typename list_type,
468           typename T,
469           typename CharT = typename T::value_type>
JoinStringT(list_type parts,T sep)470 static std::basic_string<CharT> JoinStringT(list_type parts, T sep) {
471   if (std::empty(parts))
472     return std::basic_string<CharT>();
473 
474   // Pre-allocate the eventual size of the string. Start with the size of all of
475   // the separators (note that this *assumes* parts.size() > 0).
476   size_t total_size = (parts.size() - 1) * sep.size();
477   for (const auto& part : parts)
478     total_size += part.size();
479   std::basic_string<CharT> result;
480   result.reserve(total_size);
481 
482   auto iter = parts.begin();
483   DCHECK(iter != parts.end());
484   result.append(iter->data(), iter->size());
485   ++iter;
486 
487   for (; iter != parts.end(); ++iter) {
488     result.append(sep.data(), sep.size());
489     result.append(iter->data(), iter->size());
490   }
491 
492   // Sanity-check that we pre-allocated correctly.
493   DCHECK_EQ(total_size, result.size());
494 
495   return result;
496 }
497 
498 // Replaces placeholders in `format_string` with values from `subst`.
499 // * `placeholder_prefix`: Allows using a specific character as the placeholder
500 // prefix. `base::ReplaceStringPlaceholders` uses '$'.
501 // * `should_escape_multiple_placeholder_prefixes`:
502 //   * If this parameter is `true`, which is the case with
503 //   `base::ReplaceStringPlaceholders`, `placeholder_prefix` characters are
504 //   replaced by that number less one. Eg $$->$, $$$->$$, etc.
505 //   * If this parameter is `false`, each literal `placeholder_prefix` character
506 //   in `format_string` is escaped with another `placeholder_prefix`. For
507 //   instance, with `%` as the `placeholder_prefix`: %%->%, %%%%->%%, etc.
508 // * `is_strict_mode`:
509 //   * If this parameter is `true`, error handling is stricter. The function
510 //   returns `absl::nullopt` if:
511 //     * a placeholder %N is encountered where N > substitutions.size().
512 //     * a literal `%` is not escaped with a `%`.
513 template <typename T, typename CharT = typename T::value_type>
DoReplaceStringPlaceholders(T format_string,const std::vector<std::basic_string<CharT>> & subst,const CharT placeholder_prefix,const bool should_escape_multiple_placeholder_prefixes,const bool is_strict_mode,std::vector<size_t> * offsets)514 absl::optional<std::basic_string<CharT>> DoReplaceStringPlaceholders(
515     T format_string,
516     const std::vector<std::basic_string<CharT>>& subst,
517     const CharT placeholder_prefix,
518     const bool should_escape_multiple_placeholder_prefixes,
519     const bool is_strict_mode,
520     std::vector<size_t>* offsets) {
521   size_t substitutions = subst.size();
522   DCHECK_LT(substitutions, 11U);
523 
524   size_t sub_length = 0;
525   for (const auto& cur : subst) {
526     sub_length += cur.length();
527   }
528 
529   std::basic_string<CharT> formatted;
530   formatted.reserve(format_string.length() + sub_length);
531 
532   std::vector<ReplacementOffset> r_offsets;
533   for (auto i = format_string.begin(); i != format_string.end(); ++i) {
534     if (placeholder_prefix == *i) {
535       if (i + 1 != format_string.end()) {
536         ++i;
537         if (placeholder_prefix == *i) {
538           do {
539             formatted.push_back(placeholder_prefix);
540             ++i;
541           } while (should_escape_multiple_placeholder_prefixes &&
542                    i != format_string.end() && placeholder_prefix == *i);
543           --i;
544         } else {
545           if (*i < '1' || *i > '9') {
546             if (is_strict_mode) {
547               DLOG(ERROR) << "Invalid placeholder after placeholder prefix: "
548                           << std::basic_string<CharT>(1, placeholder_prefix)
549                           << std::basic_string<CharT>(1, *i);
550               return absl::nullopt;
551             }
552 
553             continue;
554           }
555           const size_t index = static_cast<size_t>(*i - '1');
556           if (offsets) {
557             ReplacementOffset r_offset(index, formatted.size());
558             r_offsets.insert(
559                 ranges::upper_bound(r_offsets, r_offset, &CompareParameter),
560                 r_offset);
561           }
562           if (index < substitutions) {
563             formatted.append(subst.at(index));
564           } else if (is_strict_mode) {
565             DLOG(ERROR) << "index out of range: " << index << ": "
566                         << substitutions;
567             return absl::nullopt;
568           }
569         }
570       } else if (is_strict_mode) {
571         DLOG(ERROR) << "unexpected placeholder prefix at end of string";
572         return absl::nullopt;
573       }
574     } else {
575       formatted.push_back(*i);
576     }
577   }
578   if (offsets) {
579     for (const auto& cur : r_offsets) {
580       offsets->push_back(cur.offset);
581     }
582   }
583   return formatted;
584 }
585 
586 // The following code is compatible with the OpenBSD lcpy interface.  See:
587 //   http://www.gratisoft.us/todd/papers/strlcpy.html
588 //   ftp://ftp.openbsd.org/pub/OpenBSD/src/lib/libc/string/{wcs,str}lcpy.c
589 
590 template <typename CHAR>
lcpyT(CHAR * dst,const CHAR * src,size_t dst_size)591 size_t lcpyT(CHAR* dst, const CHAR* src, size_t dst_size) {
592   for (size_t i = 0; i < dst_size; ++i) {
593     if ((dst[i] = src[i]) == 0)  // We hit and copied the terminating NULL.
594       return i;
595   }
596 
597   // We were left off at dst_size.  We over copied 1 byte.  Null terminate.
598   if (dst_size != 0)
599     dst[dst_size - 1] = 0;
600 
601   // Count the rest of the |src|, and return it's length in characters.
602   while (src[dst_size])
603     ++dst_size;
604   return dst_size;
605 }
606 
607 }  // namespace base::internal
608 
609 #endif  // BASE_STRINGS_STRING_UTIL_IMPL_HELPERS_H_
610