| 1 | /* atof_generic.c - turn a string of digits into a Flonum
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| 2 | Copyright 1987, 1990, 1991, 1992, 1993, 1994, 1995, 1998, 1999, 2000
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| 3 | Free Software Foundation, Inc.
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| 4 |
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| 5 | This file is part of GAS, the GNU Assembler.
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| 6 |
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| 7 | GAS is free software; you can redistribute it and/or modify
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| 8 | it under the terms of the GNU General Public License as published by
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| 9 | the Free Software Foundation; either version 2, or (at your option)
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| 10 | any later version.
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| 11 |
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| 12 | GAS is distributed in the hope that it will be useful,
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| 13 | but WITHOUT ANY WARRANTY; without even the implied warranty of
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| 14 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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| 15 | GNU General Public License for more details.
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| 16 |
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| 17 | You should have received a copy of the GNU General Public License
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| 18 | along with GAS; see the file COPYING. If not, write to the Free
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| 19 | Software Foundation, 59 Temple Place - Suite 330, Boston, MA
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| 20 | 02111-1307, USA. */
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| 21 |
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| 22 | #include <ctype.h>
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| 23 | #include <string.h>
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| 24 |
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| 25 | #include "as.h"
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| 26 |
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| 27 | #ifndef FALSE
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| 28 | #define FALSE (0)
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| 29 | #endif
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| 30 | #ifndef TRUE
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| 31 | #define TRUE (1)
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| 32 | #endif
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| 33 |
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| 34 | #ifdef TRACE
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| 35 | static void flonum_print PARAMS ((const FLONUM_TYPE *));
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| 36 | #endif
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| 37 |
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| 38 | #define ASSUME_DECIMAL_MARK_IS_DOT
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| 39 |
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| 40 | /***********************************************************************\
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| 41 | * *
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| 42 | * Given a string of decimal digits , with optional decimal *
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| 43 | * mark and optional decimal exponent (place value) of the *
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| 44 | * lowest_order decimal digit: produce a floating point *
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| 45 | * number. The number is 'generic' floating point: our *
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| 46 | * caller will encode it for a specific machine architecture. *
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| 47 | * *
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| 48 | * Assumptions *
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| 49 | * uses base (radix) 2 *
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| 50 | * this machine uses 2's complement binary integers *
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| 51 | * target flonums use " " " " *
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| 52 | * target flonums exponents fit in a long *
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| 53 | * *
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| 54 | \***********************************************************************/
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| 55 |
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| 56 | /*
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| 57 |
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| 58 | Syntax:
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| 59 |
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| 60 | <flonum> ::= <optional-sign> <decimal-number> <optional-exponent>
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| 61 | <optional-sign> ::= '+' | '-' | {empty}
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| 62 | <decimal-number> ::= <integer>
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| 63 | | <integer> <radix-character>
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| 64 | | <integer> <radix-character> <integer>
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| 65 | | <radix-character> <integer>
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| 66 |
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| 67 | <optional-exponent> ::= {empty}
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| 68 | | <exponent-character> <optional-sign> <integer>
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| 69 |
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| 70 | <integer> ::= <digit> | <digit> <integer>
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| 71 | <digit> ::= '0' | '1' | '2' | '3' | '4' | '5' | '6' | '7' | '8' | '9'
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| 72 | <exponent-character> ::= {one character from "string_of_decimal_exponent_marks"}
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| 73 | <radix-character> ::= {one character from "string_of_decimal_marks"}
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| 74 |
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| 75 | */
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| 76 |
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| 77 | int
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| 78 | atof_generic (address_of_string_pointer,
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| 79 | string_of_decimal_marks,
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| 80 | string_of_decimal_exponent_marks,
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| 81 | address_of_generic_floating_point_number)
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| 82 | /* return pointer to just AFTER number we read. */
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| 83 | char **address_of_string_pointer;
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| 84 | /* At most one per number. */
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| 85 | const char *string_of_decimal_marks;
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| 86 | const char *string_of_decimal_exponent_marks;
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| 87 | FLONUM_TYPE *address_of_generic_floating_point_number;
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| 88 | {
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| 89 | int return_value; /* 0 means OK. */
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| 90 | char *first_digit;
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| 91 | unsigned int number_of_digits_before_decimal;
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| 92 | unsigned int number_of_digits_after_decimal;
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| 93 | long decimal_exponent;
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| 94 | unsigned int number_of_digits_available;
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| 95 | char digits_sign_char;
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| 96 |
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| 97 | /*
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| 98 | * Scan the input string, abstracting (1)digits (2)decimal mark (3) exponent.
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| 99 | * It would be simpler to modify the string, but we don't; just to be nice
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| 100 | * to caller.
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| 101 | * We need to know how many digits we have, so we can allocate space for
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| 102 | * the digits' value.
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| 103 | */
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| 104 |
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| 105 | char *p;
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| 106 | char c;
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| 107 | int seen_significant_digit;
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| 108 |
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| 109 | #ifdef ASSUME_DECIMAL_MARK_IS_DOT
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| 110 | assert (string_of_decimal_marks[0] == '.'
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| 111 | && string_of_decimal_marks[1] == 0);
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| 112 | #define IS_DECIMAL_MARK(c) ((c) == '.')
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| 113 | #else
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| 114 | #define IS_DECIMAL_MARK(c) (0 != strchr (string_of_decimal_marks, (c)))
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| 115 | #endif
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| 116 |
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| 117 | first_digit = *address_of_string_pointer;
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| 118 | c = *first_digit;
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| 119 |
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| 120 | if (c == '-' || c == '+')
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| 121 | {
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| 122 | digits_sign_char = c;
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| 123 | first_digit++;
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| 124 | }
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| 125 | else
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| 126 | digits_sign_char = '+';
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| 127 |
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| 128 | switch (first_digit[0])
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| 129 | {
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| 130 | case 'n':
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| 131 | case 'N':
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| 132 | if (!strncasecmp ("nan", first_digit, 3))
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| 133 | {
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| 134 | address_of_generic_floating_point_number->sign = 0;
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| 135 | address_of_generic_floating_point_number->exponent = 0;
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| 136 | address_of_generic_floating_point_number->leader =
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| 137 | address_of_generic_floating_point_number->low;
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| 138 | *address_of_string_pointer = first_digit + 3;
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| 139 | return 0;
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| 140 | }
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| 141 | break;
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| 142 |
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| 143 | case 'i':
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| 144 | case 'I':
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| 145 | if (!strncasecmp ("inf", first_digit, 3))
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| 146 | {
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| 147 | address_of_generic_floating_point_number->sign =
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| 148 | digits_sign_char == '+' ? 'P' : 'N';
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| 149 | address_of_generic_floating_point_number->exponent = 0;
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| 150 | address_of_generic_floating_point_number->leader =
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| 151 | address_of_generic_floating_point_number->low;
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| 152 |
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| 153 | first_digit += 3;
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| 154 | if (!strncasecmp ("inity", first_digit, 5))
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| 155 | first_digit += 5;
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| 156 |
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| 157 | *address_of_string_pointer = first_digit;
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| 158 |
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| 159 | return 0;
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| 160 | }
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| 161 | break;
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| 162 | }
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| 163 |
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| 164 | number_of_digits_before_decimal = 0;
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| 165 | number_of_digits_after_decimal = 0;
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| 166 | decimal_exponent = 0;
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| 167 | seen_significant_digit = 0;
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| 168 | for (p = first_digit;
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| 169 | (((c = *p) != '\0')
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| 170 | && (!c || !IS_DECIMAL_MARK (c))
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| 171 | && (!c || !strchr (string_of_decimal_exponent_marks, c)));
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| 172 | p++)
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| 173 | {
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| 174 | if (isdigit ((unsigned char) c))
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| 175 | {
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| 176 | if (seen_significant_digit || c > '0')
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| 177 | {
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| 178 | ++number_of_digits_before_decimal;
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| 179 | seen_significant_digit = 1;
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| 180 | }
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| 181 | else
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| 182 | {
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| 183 | first_digit++;
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| 184 | }
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| 185 | }
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| 186 | else
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| 187 | {
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| 188 | break; /* p -> char after pre-decimal digits. */
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| 189 | }
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| 190 | } /* For each digit before decimal mark. */
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| 191 |
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| 192 | #ifndef OLD_FLOAT_READS
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| 193 | /* Ignore trailing 0's after the decimal point. The original code here
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| 194 | * (ifdef'd out) does not do this, and numbers like
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| 195 | * 4.29496729600000000000e+09 (2**31)
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| 196 | * come out inexact for some reason related to length of the digit
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| 197 | * string.
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| 198 | */
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| 199 | if (c && IS_DECIMAL_MARK (c))
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| 200 | {
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| 201 | unsigned int zeros = 0; /* Length of current string of zeros */
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| 202 |
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| 203 | for (p++; (c = *p) && isdigit ((unsigned char) c); p++)
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| 204 | {
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| 205 | if (c == '0')
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| 206 | {
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| 207 | zeros++;
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| 208 | }
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| 209 | else
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| 210 | {
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| 211 | number_of_digits_after_decimal += 1 + zeros;
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| 212 | zeros = 0;
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| 213 | }
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| 214 | }
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| 215 | }
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| 216 | #else
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| 217 | if (c && IS_DECIMAL_MARK (c))
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| 218 | {
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| 219 | for (p++;
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| 220 | (((c = *p) != '\0')
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| 221 | && (!c || !strchr (string_of_decimal_exponent_marks, c)));
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| 222 | p++)
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| 223 | {
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| 224 | if (isdigit ((unsigned char) c))
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| 225 | {
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| 226 | /* This may be retracted below. */
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| 227 | number_of_digits_after_decimal++;
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| 228 |
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| 229 | if ( /* seen_significant_digit || */ c > '0')
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| 230 | {
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| 231 | seen_significant_digit = TRUE;
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| 232 | }
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| 233 | }
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| 234 | else
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| 235 | {
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| 236 | if (!seen_significant_digit)
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| 237 | {
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| 238 | number_of_digits_after_decimal = 0;
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| 239 | }
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| 240 | break;
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| 241 | }
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| 242 | } /* For each digit after decimal mark. */
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| 243 | }
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| 244 |
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| 245 | while (number_of_digits_after_decimal
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| 246 | && first_digit[number_of_digits_before_decimal
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| 247 | + number_of_digits_after_decimal] == '0')
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| 248 | --number_of_digits_after_decimal;
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| 249 | #endif
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| 250 |
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| 251 | if (flag_m68k_mri)
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| 252 | {
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| 253 | while (c == '_')
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| 254 | c = *++p;
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| 255 | }
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| 256 | if (c && strchr (string_of_decimal_exponent_marks, c))
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| 257 | {
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| 258 | char digits_exponent_sign_char;
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| 259 |
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| 260 | c = *++p;
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| 261 | if (flag_m68k_mri)
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| 262 | {
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| 263 | while (c == '_')
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| 264 | c = *++p;
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| 265 | }
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| 266 | if (c && strchr ("+-", c))
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| 267 | {
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| 268 | digits_exponent_sign_char = c;
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| 269 | c = *++p;
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| 270 | }
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| 271 | else
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| 272 | {
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| 273 | digits_exponent_sign_char = '+';
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| 274 | }
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| 275 |
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| 276 | for (; (c); c = *++p)
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| 277 | {
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| 278 | if (isdigit ((unsigned char) c))
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| 279 | {
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| 280 | decimal_exponent = decimal_exponent * 10 + c - '0';
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| 281 | /*
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| 282 | * BUG! If we overflow here, we lose!
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| 283 | */
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| 284 | }
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| 285 | else
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| 286 | {
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| 287 | break;
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| 288 | }
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| 289 | }
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| 290 |
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| 291 | if (digits_exponent_sign_char == '-')
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| 292 | {
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| 293 | decimal_exponent = -decimal_exponent;
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| 294 | }
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| 295 | }
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| 296 |
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| 297 | *address_of_string_pointer = p;
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| 298 |
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| 299 | number_of_digits_available =
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| 300 | number_of_digits_before_decimal + number_of_digits_after_decimal;
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| 301 | return_value = 0;
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| 302 | if (number_of_digits_available == 0)
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| 303 | {
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| 304 | address_of_generic_floating_point_number->exponent = 0; /* Not strictly necessary */
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| 305 | address_of_generic_floating_point_number->leader
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| 306 | = -1 + address_of_generic_floating_point_number->low;
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| 307 | address_of_generic_floating_point_number->sign = digits_sign_char;
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| 308 | /* We have just concocted (+/-)0.0E0 */
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| 309 |
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| 310 | }
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| 311 | else
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| 312 | {
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| 313 | int count; /* Number of useful digits left to scan. */
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| 314 |
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| 315 | LITTLENUM_TYPE *digits_binary_low;
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| 316 | unsigned int precision;
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| 317 | unsigned int maximum_useful_digits;
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| 318 | unsigned int number_of_digits_to_use;
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| 319 | unsigned int more_than_enough_bits_for_digits;
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| 320 | unsigned int more_than_enough_littlenums_for_digits;
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| 321 | unsigned int size_of_digits_in_littlenums;
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| 322 | unsigned int size_of_digits_in_chars;
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| 323 | FLONUM_TYPE power_of_10_flonum;
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| 324 | FLONUM_TYPE digits_flonum;
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| 325 |
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| 326 | precision = (address_of_generic_floating_point_number->high
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| 327 | - address_of_generic_floating_point_number->low
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| 328 | + 1); /* Number of destination littlenums. */
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| 329 |
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| 330 | /* Includes guard bits (two littlenums worth) */
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| 331 | #if 0 /* The integer version below is very close, and it doesn't
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| 332 | require floating point support (which is currently buggy on
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| 333 | the Alpha). */
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| 334 | maximum_useful_digits = (((double) (precision - 2))
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| 335 | * ((double) (LITTLENUM_NUMBER_OF_BITS))
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| 336 | / (LOG_TO_BASE_2_OF_10))
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| 337 | + 2; /* 2 :: guard digits. */
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| 338 | #else
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| 339 | maximum_useful_digits = (((precision - 2))
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| 340 | * ( (LITTLENUM_NUMBER_OF_BITS))
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| 341 | * 1000000 / 3321928)
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| 342 | + 2; /* 2 :: guard digits. */
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| 343 | #endif
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| 344 |
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| 345 | if (number_of_digits_available > maximum_useful_digits)
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| 346 | {
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| 347 | number_of_digits_to_use = maximum_useful_digits;
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| 348 | }
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| 349 | else
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| 350 | {
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| 351 | number_of_digits_to_use = number_of_digits_available;
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| 352 | }
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| 353 |
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| 354 | /* Cast these to SIGNED LONG first, otherwise, on systems with
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| 355 | LONG wider than INT (such as Alpha OSF/1), unsignedness may
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| 356 | cause unexpected results. */
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| 357 | decimal_exponent += ((long) number_of_digits_before_decimal
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| 358 | - (long) number_of_digits_to_use);
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| 359 |
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| 360 | #if 0
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| 361 | more_than_enough_bits_for_digits
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| 362 | = ((((double) number_of_digits_to_use) * LOG_TO_BASE_2_OF_10) + 1);
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| 363 | #else
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| 364 | more_than_enough_bits_for_digits
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| 365 | = (number_of_digits_to_use * 3321928 / 1000000 + 1);
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| 366 | #endif
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| 367 |
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| 368 | more_than_enough_littlenums_for_digits
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| 369 | = (more_than_enough_bits_for_digits
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| 370 | / LITTLENUM_NUMBER_OF_BITS)
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| 371 | + 2;
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| 372 |
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| 373 | /* Compute (digits) part. In "12.34E56" this is the "1234" part.
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| 374 | Arithmetic is exact here. If no digits are supplied then this
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| 375 | part is a 0 valued binary integer. Allocate room to build up
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| 376 | the binary number as littlenums. We want this memory to
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| 377 | disappear when we leave this function. Assume no alignment
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| 378 | problems => (room for n objects) == n * (room for 1
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| 379 | object). */
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| 380 |
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| 381 | size_of_digits_in_littlenums = more_than_enough_littlenums_for_digits;
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| 382 | size_of_digits_in_chars = size_of_digits_in_littlenums
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| 383 | * sizeof (LITTLENUM_TYPE);
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| 384 |
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| 385 | digits_binary_low = (LITTLENUM_TYPE *)
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| 386 | alloca (size_of_digits_in_chars);
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| 387 |
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| 388 | memset ((char *) digits_binary_low, '\0', size_of_digits_in_chars);
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| 389 |
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| 390 | /* Digits_binary_low[] is allocated and zeroed. */
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| 391 |
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| 392 | /*
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| 393 | * Parse the decimal digits as if * digits_low was in the units position.
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| 394 | * Emit a binary number into digits_binary_low[].
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| 395 | *
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| 396 | * Use a large-precision version of:
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| 397 | * (((1st-digit) * 10 + 2nd-digit) * 10 + 3rd-digit ...) * 10 + last-digit
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| 398 | */
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| 399 |
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| 400 | for (p = first_digit, count = number_of_digits_to_use; count; p++, --count)
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| 401 | {
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| 402 | c = *p;
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| 403 | if (isdigit ((unsigned char) c))
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| 404 | {
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| 405 | /*
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| 406 | * Multiply by 10. Assume can never overflow.
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| 407 | * Add this digit to digits_binary_low[].
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| 408 | */
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| 409 |
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| 410 | long carry;
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| 411 | LITTLENUM_TYPE *littlenum_pointer;
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| 412 | LITTLENUM_TYPE *littlenum_limit;
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| 413 |
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| 414 | littlenum_limit = digits_binary_low
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| 415 | + more_than_enough_littlenums_for_digits
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| 416 | - 1;
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| 417 |
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| 418 | carry = c - '0'; /* char -> binary */
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| 419 |
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| 420 | for (littlenum_pointer = digits_binary_low;
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| 421 | littlenum_pointer <= littlenum_limit;
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| 422 | littlenum_pointer++)
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| 423 | {
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| 424 | long work;
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| 425 |
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| 426 | work = carry + 10 * (long) (*littlenum_pointer);
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| 427 | *littlenum_pointer = work & LITTLENUM_MASK;
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| 428 | carry = work >> LITTLENUM_NUMBER_OF_BITS;
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| 429 | }
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| 430 |
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| 431 | if (carry != 0)
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| 432 | {
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| 433 | /*
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| 434 | * We have a GROSS internal error.
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| 435 | * This should never happen.
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| 436 | */
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| 437 | as_fatal (_("failed sanity check."));
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| 438 | }
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| 439 | }
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| 440 | else
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| 441 | {
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| 442 | ++count; /* '.' doesn't alter digits used count. */
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| 443 | }
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| 444 | }
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| 445 |
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| 446 | /*
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| 447 | * Digits_binary_low[] properly encodes the value of the digits.
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| 448 | * Forget about any high-order littlenums that are 0.
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| 449 | */
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| 450 | while (digits_binary_low[size_of_digits_in_littlenums - 1] == 0
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| 451 | && size_of_digits_in_littlenums >= 2)
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| 452 | size_of_digits_in_littlenums--;
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| 453 |
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| 454 | digits_flonum.low = digits_binary_low;
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| 455 | digits_flonum.high = digits_binary_low + size_of_digits_in_littlenums - 1;
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| 456 | digits_flonum.leader = digits_flonum.high;
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| 457 | digits_flonum.exponent = 0;
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| 458 | /*
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| 459 | * The value of digits_flonum . sign should not be important.
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| 460 | * We have already decided the output's sign.
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| 461 | * We trust that the sign won't influence the other parts of the number!
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| 462 | * So we give it a value for these reasons:
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| 463 | * (1) courtesy to humans reading/debugging
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| 464 | * these numbers so they don't get excited about strange values
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| 465 | * (2) in future there may be more meaning attached to sign,
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| 466 | * and what was
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| 467 | * harmless noise may become disruptive, ill-conditioned (or worse)
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| 468 | * input.
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| 469 | */
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| 470 | digits_flonum.sign = '+';
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| 471 |
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| 472 | {
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| 473 | /*
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| 474 | * Compute the mantssa (& exponent) of the power of 10.
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| 475 | * If sucessful, then multiply the power of 10 by the digits
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| 476 | * giving return_binary_mantissa and return_binary_exponent.
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| 477 | */
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| 478 |
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| 479 | LITTLENUM_TYPE *power_binary_low;
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| 480 | int decimal_exponent_is_negative;
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| 481 | /* This refers to the "-56" in "12.34E-56". */
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| 482 | /* FALSE: decimal_exponent is positive (or 0) */
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| 483 | /* TRUE: decimal_exponent is negative */
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| 484 | FLONUM_TYPE temporary_flonum;
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| 485 | LITTLENUM_TYPE *temporary_binary_low;
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| 486 | unsigned int size_of_power_in_littlenums;
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| 487 | unsigned int size_of_power_in_chars;
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| 488 |
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| 489 | size_of_power_in_littlenums = precision;
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| 490 | /* Precision has a built-in fudge factor so we get a few guard bits. */
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| 491 |
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| 492 | decimal_exponent_is_negative = decimal_exponent < 0;
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| 493 | if (decimal_exponent_is_negative)
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| 494 | {
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| 495 | decimal_exponent = -decimal_exponent;
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| 496 | }
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| 497 |
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| 498 | /* From now on: the decimal exponent is > 0. Its sign is separate. */
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| 499 |
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| 500 | size_of_power_in_chars = size_of_power_in_littlenums
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| 501 | * sizeof (LITTLENUM_TYPE) + 2;
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| 502 |
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| 503 | power_binary_low = (LITTLENUM_TYPE *) alloca (size_of_power_in_chars);
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| 504 | temporary_binary_low = (LITTLENUM_TYPE *) alloca (size_of_power_in_chars);
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| 505 | memset ((char *) power_binary_low, '\0', size_of_power_in_chars);
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| 506 | *power_binary_low = 1;
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| 507 | power_of_10_flonum.exponent = 0;
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| 508 | power_of_10_flonum.low = power_binary_low;
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| 509 | power_of_10_flonum.leader = power_binary_low;
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| 510 | power_of_10_flonum.high = power_binary_low + size_of_power_in_littlenums - 1;
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|---|
| 511 | power_of_10_flonum.sign = '+';
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| 512 | temporary_flonum.low = temporary_binary_low;
|
|---|
| 513 | temporary_flonum.high = temporary_binary_low + size_of_power_in_littlenums - 1;
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|---|
| 514 | /*
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| 515 | * (power) == 1.
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| 516 | * Space for temporary_flonum allocated.
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|---|
| 517 | */
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| 518 |
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|---|
| 519 | /*
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|---|
| 520 | * ...
|
|---|
| 521 | *
|
|---|
| 522 | * WHILE more bits
|
|---|
| 523 | * DO find next bit (with place value)
|
|---|
| 524 | * multiply into power mantissa
|
|---|
| 525 | * OD
|
|---|
| 526 | */
|
|---|
| 527 | {
|
|---|
| 528 | int place_number_limit;
|
|---|
| 529 | /* Any 10^(2^n) whose "n" exceeds this */
|
|---|
| 530 | /* value will fall off the end of */
|
|---|
| 531 | /* flonum_XXXX_powers_of_ten[]. */
|
|---|
| 532 | int place_number;
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|---|
| 533 | const FLONUM_TYPE *multiplicand; /* -> 10^(2^n) */
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|---|
| 534 |
|
|---|
| 535 | place_number_limit = table_size_of_flonum_powers_of_ten;
|
|---|
| 536 |
|
|---|
| 537 | multiplicand = (decimal_exponent_is_negative
|
|---|
| 538 | ? flonum_negative_powers_of_ten
|
|---|
| 539 | : flonum_positive_powers_of_ten);
|
|---|
| 540 |
|
|---|
| 541 | for (place_number = 1;/* Place value of this bit of exponent. */
|
|---|
| 542 | decimal_exponent;/* Quit when no more 1 bits in exponent. */
|
|---|
| 543 | decimal_exponent >>= 1, place_number++)
|
|---|
| 544 | {
|
|---|
| 545 | if (decimal_exponent & 1)
|
|---|
| 546 | {
|
|---|
| 547 | if (place_number > place_number_limit)
|
|---|
| 548 | {
|
|---|
| 549 | /* The decimal exponent has a magnitude so great
|
|---|
| 550 | that our tables can't help us fragment it.
|
|---|
| 551 | Although this routine is in error because it
|
|---|
| 552 | can't imagine a number that big, signal an
|
|---|
| 553 | error as if it is the user's fault for
|
|---|
| 554 | presenting such a big number. */
|
|---|
| 555 | return_value = ERROR_EXPONENT_OVERFLOW;
|
|---|
| 556 | /* quit out of loop gracefully */
|
|---|
| 557 | decimal_exponent = 0;
|
|---|
| 558 | }
|
|---|
| 559 | else
|
|---|
| 560 | {
|
|---|
| 561 | #ifdef TRACE
|
|---|
| 562 | printf ("before multiply, place_number = %d., power_of_10_flonum:\n",
|
|---|
| 563 | place_number);
|
|---|
| 564 |
|
|---|
| 565 | flonum_print (&power_of_10_flonum);
|
|---|
| 566 | (void) putchar ('\n');
|
|---|
| 567 | #endif
|
|---|
| 568 | #ifdef TRACE
|
|---|
| 569 | printf ("multiplier:\n");
|
|---|
| 570 | flonum_print (multiplicand + place_number);
|
|---|
| 571 | (void) putchar ('\n');
|
|---|
| 572 | #endif
|
|---|
| 573 | flonum_multip (multiplicand + place_number,
|
|---|
| 574 | &power_of_10_flonum, &temporary_flonum);
|
|---|
| 575 | #ifdef TRACE
|
|---|
| 576 | printf ("after multiply:\n");
|
|---|
| 577 | flonum_print (&temporary_flonum);
|
|---|
| 578 | (void) putchar ('\n');
|
|---|
| 579 | #endif
|
|---|
| 580 | flonum_copy (&temporary_flonum, &power_of_10_flonum);
|
|---|
| 581 | #ifdef TRACE
|
|---|
| 582 | printf ("after copy:\n");
|
|---|
| 583 | flonum_print (&power_of_10_flonum);
|
|---|
| 584 | (void) putchar ('\n');
|
|---|
| 585 | #endif
|
|---|
| 586 | } /* If this bit of decimal_exponent was computable.*/
|
|---|
| 587 | } /* If this bit of decimal_exponent was set. */
|
|---|
| 588 | } /* For each bit of binary representation of exponent */
|
|---|
| 589 | #ifdef TRACE
|
|---|
| 590 | printf ("after computing power_of_10_flonum:\n");
|
|---|
| 591 | flonum_print (&power_of_10_flonum);
|
|---|
| 592 | (void) putchar ('\n');
|
|---|
| 593 | #endif
|
|---|
| 594 | }
|
|---|
| 595 |
|
|---|
| 596 | }
|
|---|
| 597 |
|
|---|
| 598 | /*
|
|---|
| 599 | * power_of_10_flonum is power of ten in binary (mantissa) , (exponent).
|
|---|
| 600 | * It may be the number 1, in which case we don't NEED to multiply.
|
|---|
| 601 | *
|
|---|
| 602 | * Multiply (decimal digits) by power_of_10_flonum.
|
|---|
| 603 | */
|
|---|
| 604 |
|
|---|
| 605 | flonum_multip (&power_of_10_flonum, &digits_flonum, address_of_generic_floating_point_number);
|
|---|
| 606 | /* Assert sign of the number we made is '+'. */
|
|---|
| 607 | address_of_generic_floating_point_number->sign = digits_sign_char;
|
|---|
| 608 |
|
|---|
| 609 | }
|
|---|
| 610 | return return_value;
|
|---|
| 611 | }
|
|---|
| 612 |
|
|---|
| 613 | #ifdef TRACE
|
|---|
| 614 | static void
|
|---|
| 615 | flonum_print (f)
|
|---|
| 616 | const FLONUM_TYPE *f;
|
|---|
| 617 | {
|
|---|
| 618 | LITTLENUM_TYPE *lp;
|
|---|
| 619 | char littlenum_format[10];
|
|---|
| 620 | sprintf (littlenum_format, " %%0%dx", sizeof (LITTLENUM_TYPE) * 2);
|
|---|
| 621 | #define print_littlenum(LP) (printf (littlenum_format, LP))
|
|---|
| 622 | printf ("flonum @%p %c e%ld", f, f->sign, f->exponent);
|
|---|
| 623 | if (f->low < f->high)
|
|---|
| 624 | for (lp = f->high; lp >= f->low; lp--)
|
|---|
| 625 | print_littlenum (*lp);
|
|---|
| 626 | else
|
|---|
| 627 | for (lp = f->low; lp <= f->high; lp++)
|
|---|
| 628 | print_littlenum (*lp);
|
|---|
| 629 | printf ("\n");
|
|---|
| 630 | fflush (stdout);
|
|---|
| 631 | }
|
|---|
| 632 | #endif
|
|---|
| 633 |
|
|---|
| 634 | /* end of atof_generic.c */
|
|---|