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			211 lines
		
	
	
		
			5.3 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			211 lines
		
	
	
		
			5.3 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /*
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|   An alternative implementation of "strtod()" that is both
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|   simplier, and thread-safe.
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| 
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|   Original code from mit-threads as bundled with MySQL 3.23
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| 
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|   SQL:2003 specifies a number as
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| 
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| <signed numeric literal> ::= [ <sign> ] <unsigned numeric literal>
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| 
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| <unsigned numeric literal> ::=
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|                     <exact numeric literal>
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|                   | <approximate numeric literal>
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| 
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| <exact numeric literal> ::=
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|                     <unsigned integer> [ <period> [ <unsigned integer> ] ]
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|                   | <period> <unsigned integer>
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| 
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| <approximate numeric literal> ::= <mantissa> E <exponent>
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| 
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| <mantissa> ::= <exact numeric literal>
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| 
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| <exponent> ::= <signed integer>
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| 
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|   So do we.
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| 
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|  */
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| 
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| #include "my_base.h"			/* Includes errno.h + EOVERFLOW */
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| #include "m_ctype.h"
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| 
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| #define MAX_DBL_EXP	308
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| #define MAX_RESULT_FOR_MAX_EXP 1.7976931348623157
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| static double scaler10[] = {
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|   1.0, 1e10, 1e20, 1e30, 1e40, 1e50, 1e60, 1e70, 1e80, 1e90
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| };
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| static double scaler1[] = {
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|   1.0, 10.0, 1e2, 1e3, 1e4, 1e5, 1e6, 1e7, 1e8, 1e9
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| };
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| 
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| 
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| /*
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|   Convert string to double (string doesn't have to be null terminated)
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| 
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|   SYNOPSIS
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|     my_strtod()
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|     str		String to convert
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|     end_ptr	Pointer to pointer that points to end of string
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| 		Will be updated to point to end of double.
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|     error	Will contain error number in case of error (else 0)
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| 
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|   RETURN
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|     value of str as double
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| */
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| 
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| double my_strtod(const char *str, char **end_ptr, int *error)
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| {
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|   double result= 0.0;
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|   uint negative= 0, ndigits, dec_digits= 0, neg_exp= 0;
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|   int exp= 0, digits_after_dec_point= 0, tmp_exp;
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|   const char *old_str, *end= *end_ptr, *start_of_number;
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|   char next_char;
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|   my_bool overflow=0;
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|   double scaler= 1.0;
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| 
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|   *error= 0;
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|   if (str >= end)
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|     goto done;
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| 
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|   while (my_isspace(&my_charset_latin1, *str))
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|   {
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|     if (++str == end)
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|       goto done;
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|   }
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| 
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|   start_of_number= str;
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|   if ((negative= (*str == '-')) || *str=='+')
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|   {
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|     if (++str == end)
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|       goto done;                                /* Could be changed to error */
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|   }
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| 
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|   /* Skip pre-zero for easier calculation of overflows */
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|   while (*str == '0')
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|   {
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|     if (++str == end)
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|       goto done;
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|     start_of_number= 0;                         /* Found digit */
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|   }
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| 
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|   old_str= str;
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|   while ((next_char= *str) >= '0' && next_char <= '9')
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|   {
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|     result= result*10.0 + (next_char - '0');
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|     scaler= scaler*10.0;
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|     if (++str == end)
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|     {
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|       next_char= 0;                             /* Found end of string */
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|       break;
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|     }
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|     start_of_number= 0;                         /* Found digit */
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|   }
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|   ndigits= (uint) (str-old_str);
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| 
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|   if (next_char == '.' && str < end-1)
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|   {
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|     /*
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|       Continue to add numbers after decimal point to the result, as if there
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|       was no decimal point. We will later (in the exponent handling) shift
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|       the number down with the required number of fractions.  We do it this
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|       way to be able to get maximum precision for numbers like 123.45E+02,
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|       which are normal for some ODBC applications.
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|     */
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|     old_str= ++str;
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|     while (my_isdigit(&my_charset_latin1, (next_char= *str)))
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|     {
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|       result= result*10.0 + (next_char - '0');
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|       digits_after_dec_point++;
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|       scaler= scaler*10.0;
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|       if (++str == end)
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|       {
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|         next_char= 0;
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|         break;
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|       }
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|     }
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|     /* If we found just '+.' or '.' then point at first character */
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|     if (!(dec_digits= (uint) (str-old_str)) && start_of_number)
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|       str= start_of_number;                     /* Point at '+' or '.' */
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|   }
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|   if ((next_char == 'e' || next_char == 'E') &&
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|       dec_digits + ndigits != 0 && str < end-1)
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|   {
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|     const char *old_str= str++;
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| 
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|     if ((neg_exp= (*str == '-')) || *str == '+')
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|       str++;
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| 
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|     if (str == end || !my_isdigit(&my_charset_latin1, *str))
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|       str= old_str;
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|     else
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|     {
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|       do
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|       {
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|         if (exp < 9999)                         /* prot. against exp overfl. */
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|           exp= exp*10 + (*str - '0');
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|         str++;
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|       } while (str < end && my_isdigit(&my_charset_latin1, *str));
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|     }
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|   }
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|   tmp_exp= neg_exp ? exp + digits_after_dec_point : exp - digits_after_dec_point;
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|   if (tmp_exp)
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|   {
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|     int order;
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|     /*
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|       Check for underflow/overflow.
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|       order is such an integer number that f = C * 10 ^ order,
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|       where f is the resulting floating point number and 1 <= C < 10.
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|       Here we compute the modulus
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|     */
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|     order= exp + (neg_exp ? -1 : 1) * (ndigits - 1);
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|     if (order < 0)
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|       order= -order;
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|     if (order >= MAX_DBL_EXP && !neg_exp && result)
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|     {
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|       double c;
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|       /* Compute modulus of C (see comment above) */
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|       c= result / scaler * 10.0;
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|       if (order > MAX_DBL_EXP || c > MAX_RESULT_FOR_MAX_EXP)
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|       {
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|         overflow= 1;
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|         goto done;
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|       }
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|     }
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| 
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|     exp= tmp_exp;
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|     if (exp < 0)
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|     {
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|       exp= -exp;
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|       neg_exp= 1;                               /* neg_exp was 0 before */
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|     }
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|     while (exp >= 100)
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|     {
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|       result= neg_exp ? result/1.0e100 : result*1.0e100;
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|       exp-= 100;
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|     }
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|     scaler= scaler10[exp/10]*scaler1[exp%10];
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|     if (neg_exp)
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|       result/= scaler;
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|     else
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|       result*= scaler;
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|   }
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| 
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| done:
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|   *end_ptr= (char*) str;                        /* end of number */
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| 
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|   if (overflow || isinf(result))
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|   {
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|     result= DBL_MAX;
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|     *error= EOVERFLOW;
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|   }
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| 
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|   return negative ? -result : result;
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| }
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| 
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| double my_atof(const char *nptr)
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| {
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|   int error;
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|   const char *end= nptr+65535;                  /* Should be enough */
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|   return (my_strtod(nptr, (char**) &end, &error));
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| }
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