1 | //
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2 | // Cforall Version 1.0.0 Copyright (C) 2016 University of Waterloo
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3 | //
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4 | // The contents of this file are covered under the licence agreement in the
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5 | // file "LICENCE" distributed with Cforall.
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6 | //
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7 | // stdlib --
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8 | //
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9 | // Author : Peter A. Buhr
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10 | // Created On : Thu Jan 28 17:12:35 2016
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11 | // Last Modified By : Peter A. Buhr
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12 | // Last Modified On : Thu Jun 1 22:46:43 2017
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13 | // Update Count : 216
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14 | //
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15 |
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16 | #ifndef STDLIB_H
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17 | #define STDLIB_H
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18 |
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19 | //---------------------------------------
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20 |
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21 | extern "C" {
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22 | #ifndef EXIT_FAILURE
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23 | #define EXIT_FAILURE 1 // failing exit status
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24 | #define EXIT_SUCCESS 0 // successful exit status
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25 | #endif // ! EXIT_FAILURE
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26 | } // extern "C"
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27 |
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28 | //---------------------------------------
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29 |
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30 | // allocation, non-array types
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31 | static inline forall( dtype T | sized(T) ) T * malloc( void ) {
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32 | //printf( "X1\n" );
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33 | return (T *)(void *)malloc( (size_t)sizeof(T) ); // C malloc
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34 | } // malloc
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35 |
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36 | extern "C" { void * calloc( size_t dim, size_t size ); } // default C routine
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37 | static inline forall( dtype T | sized(T) ) T * calloc( size_t dim ) {
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38 | //printf( "X2\n" );
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39 | return (T *)(void *)calloc( dim, sizeof(T) ); // C cmalloc
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40 | }
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41 |
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42 | extern "C" { void * realloc( void * ptr, size_t size ); } // default C routine for void *
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43 | static inline forall( dtype T | sized(T) ) T * realloc( T * ptr, size_t size ) {
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44 | //printf( "X3\n" );
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45 | return (T *)(void *)realloc( (void *)ptr, size );
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46 | }
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47 |
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48 | extern "C" { void * memalign( size_t align, size_t size ); } // use default C routine for void *
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49 | static inline forall( dtype T | sized(T) ) T * memalign( size_t align ) {
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50 | //printf( "X4\n" );
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51 | return (T *)memalign( align, sizeof(T) );
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52 | } // memalign
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53 |
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54 | static inline forall( dtype T | sized(T) ) T * aligned_alloc( size_t align ) {
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55 | //printf( "X5\n" );
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56 | return (T *)memalign( align, sizeof(T) );
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57 | } // aligned_alloc
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58 |
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59 | extern "C" { int posix_memalign( void ** ptr, size_t align, size_t size ); } // use default C routine for void *
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60 | static inline forall( dtype T | sized(T) ) int posix_memalign( T ** ptr, size_t align ) {
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61 | //printf( "X6\n" );
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62 | return posix_memalign( (void **)ptr, align, sizeof(T) );
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63 | } // posix_memalign
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64 |
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65 |
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66 | extern "C" { void * memset( void * dest, int c, size_t size ); } // use default C routine for void *
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67 |
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68 | static inline forall( dtype T | sized(T) ) T * alloc( void ) {
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69 | //printf( "X7\n" );
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70 | return (T *)(void *)malloc( (size_t)sizeof(T) ); // C malloc
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71 | } // alloc
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72 | static inline forall( dtype T | sized(T) ) T * alloc( char fill ) {
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73 | //printf( "X8\n" );
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74 | T * ptr = (T *)(void *)malloc( (size_t)sizeof(T) ); // C malloc
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75 | return memset( ptr, (int)fill, sizeof(T) ); // initial with fill value
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76 | } // alloc
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77 |
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78 | static inline forall( dtype T | sized(T) ) T * alloc( size_t dim ) {
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79 | //printf( "X9\n" );
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80 | return (T *)(void *)malloc( dim * (size_t)sizeof(T) ); // C malloc
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81 | } // alloc
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82 | static inline forall( dtype T | sized(T) ) T * alloc( size_t dim, char fill ) {
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83 | //printf( "X10\n" );
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84 | T * ptr = (T *)(void *)malloc( dim * (size_t)sizeof(T) ); // C malloc
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85 | return memset( ptr, (int)fill, dim * sizeof(T) );
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86 | } // alloc
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87 |
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88 | static inline forall( dtype T | sized(T) ) T * alloc( T ptr[], size_t dim ) {
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89 | //printf( "X11\n" );
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90 | return (void *)realloc( (void *)ptr, dim * (size_t)sizeof(T) ); // C realloc
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91 | } // alloc
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92 | forall( dtype T | sized(T) ) T * alloc( T ptr[], size_t dim, char fill );
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93 |
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94 | static inline forall( dtype T | sized(T) ) T * align_alloc( size_t align ) {
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95 | //printf( "X13\n" );
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96 | return (T *)memalign( align, sizeof(T) );
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97 | } // align_alloc
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98 | static inline forall( dtype T | sized(T) ) T * align_alloc( size_t align, char fill ) {
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99 | //printf( "X14\n" );
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100 | T * ptr = (T *)memalign( align, sizeof(T) );
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101 | return memset( ptr, (int)fill, sizeof(T) );
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102 | } // align_alloc
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103 |
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104 | static inline forall( dtype T | sized(T) ) T * align_alloc( size_t align, size_t dim ) {
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105 | //printf( "X15\n" );
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106 | return (T *)memalign( align, dim * sizeof(T) );
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107 | } // align_alloc
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108 | static inline forall( dtype T | sized(T) ) T * align_alloc( size_t align, size_t dim, char fill ) {
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109 | //printf( "X16\n" );
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110 | T * ptr = (T *)memalign( align, dim * sizeof(T) );
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111 | return memset( ptr, (int)fill, dim * sizeof(T) );
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112 | } // align_alloc
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113 |
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114 |
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115 | // data, non-array types
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116 | static inline forall( dtype T | sized(T) ) T * memset( T * dest, char c ) {
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117 | //printf( "X17\n" );
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118 | return memset( dest, c, sizeof(T) );
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119 | } // memset
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120 | extern "C" { void * memcpy( void * dest, const void * src, size_t size ); } // use default C routine for void *
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121 | static inline forall( dtype T | sized(T) ) T * memcpy( T * dest, const T * src ) {
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122 | //printf( "X18\n" );
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123 | return memcpy( dest, src, sizeof(T) );
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124 | } // memcpy
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125 |
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126 | // data, array types
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127 | static inline forall( dtype T | sized(T) ) T * memset( T dest[], size_t dim, char c ) {
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128 | //printf( "X19\n" );
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129 | return memset( dest, c, dim * sizeof(T) );
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130 | } // memset
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131 | static inline forall( dtype T | sized(T) ) T * memcpy( T dest[], const T src[], size_t dim ) {
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132 | //printf( "X20\n" );
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133 | return (void *)memcpy( dest, src, dim * sizeof(T) ); // C memcpy
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134 | } // memcpy
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135 |
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136 | // allocation/deallocation and constructor/destructor, non-array types
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137 | forall( dtype T | sized(T), ttype Params | { void ?{}( T *, Params ); } ) T * new( Params p );
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138 | forall( dtype T | { void ^?{}( T * ); } ) void delete( T * ptr );
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139 | forall( dtype T, ttype Params | { void ^?{}( T * ); void delete( Params ); } ) void delete( T * ptr, Params rest );
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140 |
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141 | // allocation/deallocation and constructor/destructor, array types
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142 | forall( dtype T | sized(T), ttype Params | { void ?{}( T *, Params ); } ) T * anew( size_t dim, Params p );
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143 | forall( dtype T | sized(T) | { void ^?{}( T * ); } ) void adelete( size_t dim, T arr[] );
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144 | forall( dtype T | sized(T) | { void ^?{}( T * ); }, ttype Params | { void adelete( Params ); } ) void adelete( size_t dim, T arr[], Params rest );
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145 |
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146 | //---------------------------------------
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147 |
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148 | int ato( const char * ptr );
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149 | unsigned int ato( const char * ptr );
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150 | long int ato( const char * ptr );
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151 | unsigned long int ato( const char * ptr );
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152 | long long int ato( const char * ptr );
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153 | unsigned long long int ato( const char * ptr );
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154 | float ato( const char * ptr );
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155 | double ato( const char * ptr );
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156 | long double ato( const char * ptr );
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157 | float _Complex ato( const char * ptr );
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158 | double _Complex ato( const char * ptr );
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159 | long double _Complex ato( const char * ptr );
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160 |
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161 | int strto( const char * sptr, char ** eptr, int base );
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162 | unsigned int strto( const char * sptr, char ** eptr, int base );
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163 | long int strto( const char * sptr, char ** eptr, int base );
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164 | unsigned long int strto( const char * sptr, char ** eptr, int base );
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165 | long long int strto( const char * sptr, char ** eptr, int base );
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166 | unsigned long long int strto( const char * sptr, char ** eptr, int base );
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167 | float strto( const char * sptr, char ** eptr );
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168 | double strto( const char * sptr, char ** eptr );
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169 | long double strto( const char * sptr, char ** eptr );
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170 | float _Complex strto( const char * sptr, char ** eptr );
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171 | double _Complex strto( const char * sptr, char ** eptr );
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172 | long double _Complex strto( const char * sptr, char ** eptr );
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173 |
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174 | //---------------------------------------
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175 |
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176 | forall( otype T | { int ?<?( T, T ); } )
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177 | T * bsearch( T key, const T * arr, size_t dim );
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178 |
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179 | forall( otype T | { int ?<?( T, T ); } )
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180 | unsigned int bsearch( T key, const T * arr, size_t dim );
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181 |
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182 |
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183 | forall( otype T | { int ?<?( T, T ); } )
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184 | void qsort( const T * arr, size_t dim );
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185 |
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186 | //---------------------------------------
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187 |
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188 | forall( otype T | { T ?/?( T, T ); T ?%?( T, T ); } )
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189 | [ T, T ] div( T t1, T t2 );
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190 |
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191 | //---------------------------------------
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192 |
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193 | unsigned char abs( signed char );
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194 | extern "C" { int abs( int ); } // use default C routine for int
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195 | unsigned long int abs( long int );
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196 | unsigned long long int abs( long long int );
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197 | float abs( float );
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198 | double abs( double );
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199 | long double abs( long double );
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200 | float abs( float _Complex );
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201 | double abs( double _Complex );
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202 | long double abs( long double _Complex );
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203 | forall( otype T | { void ?{}( T *, zero_t ); int ?<?( T, T ); T -?( T ); } )
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204 | T abs( T );
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205 |
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206 | //---------------------------------------
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207 |
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208 | void rand48seed( long int s );
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209 | char rand48( void );
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210 | int rand48( void );
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211 | unsigned int rand48( void );
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212 | long int rand48( void );
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213 | unsigned long int rand48( void );
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214 | float rand48( void );
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215 | double rand48( void );
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216 | float _Complex rand48( void );
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217 | double _Complex rand48( void );
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218 | long double _Complex rand48( void );
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219 |
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220 | //---------------------------------------
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221 |
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222 | forall( otype T | { int ?<?( T, T ); } )
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223 | T min( T t1, T t2 );
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224 |
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225 | forall( otype T | { int ?>?( T, T ); } )
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226 | T max( T t1, T t2 );
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227 |
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228 | forall( otype T | { T min( T, T ); T max( T, T ); } )
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229 | T clamp( T value, T min_val, T max_val );
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230 |
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231 | forall( otype T )
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232 | void swap( T * t1, T * t2 );
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233 |
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234 | #endif // STDLIB_H
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235 |
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236 | // Local Variables: //
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237 | // mode: c //
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238 | // tab-width: 4 //
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239 | // End: //
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