mycpp

Coverage Report

Created: 2025-06-02 05:56

/home/uke/oil/mycpp/gc_builtins.cc
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Source (jump to first uncovered line)
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#include <errno.h>  // errno
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#include <float.h>  // DBL_MIN, DBL_MAX
3
#include <math.h>   // INFINITY
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#include <stdio.h>  // required for readline/readline.h (man readline)
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#include "_build/detected-cpp-config.h"
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#include "mycpp/gc_list.h"
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#include "mycpp/gc_str.h"
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#ifdef HAVE_READLINE
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  #include "cpp/frontend_pyreadline.h"
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#endif
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13
// Translation of Python's print().
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36
void print(BigStr* s) {
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36
  fputs(s->data_, stdout);  // print until first NUL
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  fputc('\n', stdout);
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36
}
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4
BigStr* str(int i) {
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4
  BigStr* s = OverAllocatedStr(kIntBufSize);
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4
  int length = snprintf(s->data(), kIntBufSize, "%d", i);
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4
  s->MaybeShrink(length);
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  return s;
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4
}
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2
BigStr* str(double d) {
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2
  char buf[64];  // overestimate, but we use snprintf() to be safe
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2
  int n = sizeof(buf) - 2;  // in case we add '.0'
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  // The round tripping test in mycpp/float_test.cc tells us:
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  // %.9g - FLOAT round trip
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  // %.17g - DOUBLE round trip
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  // But this causes problems in practice, e.g. for 3.14, or 1/3
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  // int length = snprintf(buf, n, "%.17g", d);
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  // So use 1 less digit, which happens to match Python 3 and node.js (but not
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  // Python 2)
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2
  int length = snprintf(buf, n, "%.16g", d);
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  // TODO: This may depend on LC_NUMERIC locale!
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  // We may return the strings:
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  //    inf  -inf   nan
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  // But this shouldn't come up much, because Python code changes it to:
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  //    INFINITY   -INFINITY   NAN
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2
  if (strchr(buf, 'i') || strchr(buf, 'n')) {
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0
    return StrFromC(buf);  // don't add .0
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0
  }
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  // Problem:
52
  // %f prints 3.0000000 and 3.500000
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  // %g prints 3 and 3.5
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  //
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  // We want 3.0 and 3.5, so add '.0' in some cases
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2
  if (!strchr(buf, '.')) {  // 12345 -> 12345.0
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1
    buf[length] = '.';
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1
    buf[length + 1] = '0';
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1
    buf[length + 2] = '\0';
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1
  }
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2
  return StrFromC(buf);
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2
}
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// %a is a hexfloat form, probably don't need that
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// int length = snprintf(buf, n, "%a", d);
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// Do we need this API?  Or is mylib.InternedStr(BigStr* s, int start, int end)
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// better for getting values out of Token.line without allocating?
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//
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// e.g. mylib.InternedStr(tok.line, tok.start, tok.start+1)
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//
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// Also for SmallStr, we don't care about interning.  Only for HeapStr.
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1
BigStr* intern(BigStr* s) {
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  // TODO: put in table gHeap.interned_
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1
  return s;
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1
}
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// Print quoted string.  Called by StrFormat('%r').
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// TODO: consider using J8 notation instead, since error messages show that
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// string.
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24
BigStr* repr(BigStr* s) {
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  // Worst case: \0 becomes 4 bytes as '\\x00', and then two quote bytes.
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  int n = len(s);
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  int upper_bound = n * 4 + 2;
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  BigStr* result = OverAllocatedStr(upper_bound);
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  // Single quote by default.
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  char quote = '\'';
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  if (memchr(s->data_, '\'', n) && !memchr(s->data_, '"', n)) {
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    quote = '"';
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  }
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  char* p = result->data_;
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  // From PyString_Repr()
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  *p++ = quote;
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  for (int i = 0; i < n; ++i) {
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    unsigned char c = static_cast<unsigned char>(s->data_[i]);
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    if (c == quote || c == '\\') {
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0
      *p++ = '\\';
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0
      *p++ = c;
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    } else if (c == '\t') {
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      *p++ = '\\';
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      *p++ = 't';
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    } else if (c == '\n') {
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7
      *p++ = '\\';
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      *p++ = 'n';
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    } else if (c == '\r') {
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      *p++ = '\\';
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      *p++ = 'r';
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    } else if (0x20 <= c && c < 0x80) {
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      *p++ = c;
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    } else {
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      // Unprintable becomes \xff.
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      // TODO: Consider \yff.  This is similar to J8 strings, but we don't
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      // decode UTF-8.
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      sprintf(p, "\\x%02x", c & 0xff);
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      p += 4;
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    }
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  }
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  *p++ = quote;
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  *p = '\0';
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  int length = p - result->data_;
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  result->MaybeShrink(length);
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  return result;
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}
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// Helper functions that don't use exceptions.
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bool StringToInt(const char* s, int length, int base, int* result) {
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  if (length == 0) {
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    return false;  // empty string isn't a valid integer
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0
  }
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  // Note: sizeof(int) is often 4 bytes on both 32-bit and 64-bit
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  //       sizeof(long) is often 4 bytes on both 32-bit but 8 bytes on 64-bit
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  // static_assert(sizeof(long) == 8);
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  char* pos;  // mutated by strtol
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  errno = 0;
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  long v = strtol(s, &pos, base);
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  if (errno == ERANGE) {
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0
    switch (v) {
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0
    case LONG_MIN:
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      return false;  // underflow of long, which may be 64 bits
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0
    case LONG_MAX:
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0
      return false;  // overflow of long
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0
    }
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0
  }
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  // It should ALSO fit in an int, not just a long
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  if (v > INT_MAX) {
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1
    return false;
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1
  }
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  if (v < INT_MIN) {
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1
    return false;
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1
  }
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  const char* end = s + length;
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  if (pos == end) {
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    *result = v;
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    return true;  // strtol() consumed ALL characters.
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  }
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1
  while (pos < end) {
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1
    if (!IsAsciiWhitespace(*pos)) {
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1
      return false;  // Trailing non-space
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1
    }
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0
    pos++;
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0
  }
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0
  *result = v;
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0
  return true;  // Trailing space is OK
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1
}
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bool StringToInt64(const char* s, int length, int base, int64_t* result) {
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  if (length == 0) {
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1
    return false;  // empty string isn't a valid integer
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1
  }
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  // These should be the same type
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  static_assert(sizeof(long long) == sizeof(int64_t), "");
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  char* pos;  // mutated by strtol
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  errno = 0;
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  long long v = strtoll(s, &pos, base);
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  if (errno == ERANGE) {
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    switch (v) {
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1
    case LLONG_MIN:
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      return false;  // underflow
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1
    case LLONG_MAX:
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1
      return false;  // overflow
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    }
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  }
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  const char* end = s + length;
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  if (pos == end) {
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    *result = v;
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    return true;  // strtol() consumed ALL characters.
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  }
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  while (pos < end) {
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    if (!IsAsciiWhitespace(*pos)) {
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      return false;  // Trailing non-space
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    }
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    pos++;
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  }
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  *result = v;
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  return true;  // Trailing space is OK
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}
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int to_int(BigStr* s, int base) {
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  int i;
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  if (StringToInt(s->data_, len(s), base, &i)) {
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    return i;  // truncated to int
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  } else {
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    throw Alloc<ValueError>();
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  }
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}
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BigStr* chr(int i) {
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  // NOTE: i should be less than 256, in which we could return an object from
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  // GLOBAL_STR() pool, like StrIter
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  auto result = NewStr(1);
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  result->data_[0] = i;
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  return result;
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}
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int ord(BigStr* s) {
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  assert(len(s) == 1);
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  // signed to unsigned conversion, so we don't get values like -127
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0
  uint8_t c = static_cast<uint8_t>(s->data_[0]);
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  return c;
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}
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2
bool to_bool(BigStr* s) {
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  return len(s) != 0;
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}
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double to_float(int i) {
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  return static_cast<double>(i);
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}
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double to_float(BigStr* s) {
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  char* begin = s->data_;
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  char* end = begin + len(s);
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  errno = 0;
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  double result = strtod(begin, &end);
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  if (errno == ERANGE) {  // error: overflow or underflow
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    if (result >= HUGE_VAL) {
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1
      return INFINITY;
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3
    } else if (result <= -HUGE_VAL) {
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1
      return -INFINITY;
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2
    } else if (-DBL_MIN <= result && result <= DBL_MIN) {
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      return 0.0;
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2
    } else {
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      FAIL("Invalid value after ERANGE");
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0
    }
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  }
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  if (end == begin) {  // error: not a floating point number
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2
    throw Alloc<ValueError>();
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  }
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  return result;
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}
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// e.g. ('a' in 'abc')
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bool str_contains(BigStr* haystack, BigStr* needle) {
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  // Common case
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  if (len(needle) == 1) {
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    return memchr(haystack->data_, needle->data_[0], len(haystack));
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  }
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6
  if (len(needle) > len(haystack)) {
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1
    return false;
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1
  }
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  // General case. TODO: We could use a smarter substring algorithm.
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5
  const char* end = haystack->data_ + len(haystack);
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  const char* last_possible = end - len(needle);
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  const char* p = haystack->data_;
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11
  while (p <= last_possible) {
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    if (memcmp(p, needle->data_, len(needle)) == 0) {
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      return true;
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    }
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    p++;
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  }
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1
  return false;
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5
}
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26
BigStr* str_repeat(BigStr* s, int times) {
303
  // Python allows -1 too, and Oil used that
304
26
  if (times <= 0) {
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3
    return kEmptyString;
306
3
  }
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23
  int len_ = len(s);
308
23
  int new_len = len_ * times;
309
23
  BigStr* result = NewStr(new_len);
310
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23
  char* dest = result->data_;
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417
  for (int i = 0; i < times; i++) {
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394
    memcpy(dest, s->data_, len_);
314
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    dest += len_;
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  }
316
23
  return result;
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26
}
318
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// for os_path.join()
320
// NOTE(Jesse): Perfect candidate for BoundedBuffer
321
11
BigStr* str_concat3(BigStr* a, BigStr* b, BigStr* c) {
322
11
  int a_len = len(a);
323
11
  int b_len = len(b);
324
11
  int c_len = len(c);
325
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11
  int new_len = a_len + b_len + c_len;
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11
  BigStr* result = NewStr(new_len);
328
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  char* pos = result->data_;
329
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11
  memcpy(pos, a->data_, a_len);
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11
  pos += a_len;
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11
  memcpy(pos, b->data_, b_len);
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11
  pos += b_len;
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11
  memcpy(pos, c->data_, c_len);
337
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11
  assert(pos + c_len == result->data_ + new_len);
339
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0
  return result;
341
11
}
342
343
11
BigStr* str_concat(BigStr* a, BigStr* b) {
344
11
  int a_len = len(a);
345
11
  int b_len = len(b);
346
11
  int new_len = a_len + b_len;
347
11
  BigStr* result = NewStr(new_len);
348
11
  char* buf = result->data_;
349
350
11
  memcpy(buf, a->data_, a_len);
351
11
  memcpy(buf + a_len, b->data_, b_len);
352
353
11
  return result;
354
11
}
355
356
//
357
// Comparators
358
//
359
360
229
bool str_equals(BigStr* left, BigStr* right) {
361
  // Fast path for identical strings.  String deduplication during GC could
362
  // make this more likely.  String interning could guarantee it, allowing us
363
  // to remove memcmp().
364
229
  if (left == right) {
365
85
    return true;
366
85
  }
367
368
  // TODO: It would be nice to remove this condition, but I think we need MyPy
369
  // strict None checking for it
370
144
  if (left == nullptr || right == nullptr) {
371
0
    return false;
372
0
  }
373
374
144
  if (left->len_ != right->len_) {
375
7
    return false;
376
7
  }
377
378
137
  return memcmp(left->data_, right->data_, left->len_) == 0;
379
144
}
380
381
3
bool maybe_str_equals(BigStr* left, BigStr* right) {
382
3
  if (left && right) {
383
1
    return str_equals(left, right);
384
1
  }
385
386
2
  if (!left && !right) {
387
1
    return true;  // None == None
388
1
  }
389
390
1
  return false;  // one is None and one is a BigStr*
391
2
}
392
393
70
bool items_equal(BigStr* left, BigStr* right) {
394
70
  return str_equals(left, right);
395
70
}
396
397
22
bool keys_equal(BigStr* left, BigStr* right) {
398
22
  return items_equal(left, right);
399
22
}
400
401
2
bool items_equal(Tuple2<int, int>* t1, Tuple2<int, int>* t2) {
402
2
  return (t1->at0() == t2->at0()) && (t1->at1() == t2->at1());
403
2
}
404
405
2
bool keys_equal(Tuple2<int, int>* t1, Tuple2<int, int>* t2) {
406
2
  return items_equal(t1, t2);
407
2
}
408
409
4
bool items_equal(Tuple2<BigStr*, int>* t1, Tuple2<BigStr*, int>* t2) {
410
4
  return items_equal(t1->at0(), t2->at0()) && (t1->at1() == t2->at1());
411
4
}
412
413
2
bool keys_equal(Tuple2<BigStr*, int>* t1, Tuple2<BigStr*, int>* t2) {
414
2
  return items_equal(t1, t2);
415
2
}
416
417
0
bool str_equals_c(BigStr* s, const char* c_string, int c_len) {
418
  // Needs SmallStr change
419
0
  if (len(s) == c_len) {
420
0
    return memcmp(s->data_, c_string, c_len) == 0;
421
0
  } else {
422
0
    return false;
423
0
  }
424
0
}
425
426
74
bool str_equals0(const char* c_string, BigStr* s) {
427
74
  int n = strlen(c_string);
428
74
  if (len(s) == n) {
429
74
    return memcmp(s->data_, c_string, n) == 0;
430
74
  } else {
431
0
    return false;
432
0
  }
433
74
}
434
435
2
int hash(BigStr* s) {
436
2
  return s->hash(fnv1);
437
2
}
438
439
4
int max(int a, int b) {
440
4
  return std::max(a, b);
441
4
}
442
443
0
int min(int a, int b) {
444
0
  return std::min(a, b);
445
0
}
446
447
1
int max(List<int>* elems) {
448
1
  int n = len(elems);
449
1
  if (n < 1) {
450
0
    throw Alloc<ValueError>();
451
0
  }
452
453
1
  int ret = elems->at(0);
454
5
  for (int i = 0; i < n; ++i) {
455
4
    int cand = elems->at(i);
456
4
    if (cand > ret) {
457
1
      ret = cand;
458
1
    }
459
4
  }
460
461
1
  return ret;
462
1
}