| 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 : Wed May 13 17:23:51 2020
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| 13 | // Update Count : 435
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| 14 | //
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| 15 |
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| 16 | #pragma once
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| 17 |
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| 18 | #include "bits/defs.hfa"
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| 19 | #include "bits/align.hfa"
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| 20 |
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| 21 | #include <stdlib.h> // *alloc, strto*, ato*
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| 22 |
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| 23 | // Reduce includes by explicitly defining these routines.
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| 24 | extern "C" {
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| 25 | void * aalloc( size_t dim, size_t elemSize ); // CFA heap
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| 26 | void * resize( void * oaddr, size_t size ); // CFA heap
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| 27 | void * memalign( size_t align, size_t size ); // malloc.h
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| 28 | void * amemalign( size_t align, size_t dim, size_t elemSize ); // CFA heap
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| 29 | void * cmemalign( size_t align, size_t noOfElems, size_t elemSize ); // CFA heap
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| 30 | size_t malloc_size( void * addr ); // CFA heap
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| 31 | size_t malloc_usable_size( void * ptr ); // malloc.h
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| 32 | void * memset( void * dest, int fill, size_t size ); // string.h
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| 33 | void * memcpy( void * dest, const void * src, size_t size ); // string.h
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| 34 | } // extern "C"
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| 35 |
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| 36 | void * resize( void * oaddr, size_t nalign, size_t size ); // CFA heap
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| 37 | void * realloc( void * oaddr, size_t nalign, size_t size ); // CFA heap
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| 38 |
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| 39 | //---------------------------------------
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| 40 |
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| 41 | #ifndef EXIT_FAILURE
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| 42 | #define EXIT_FAILURE 1 // failing exit status
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| 43 | #define EXIT_SUCCESS 0 // successful exit status
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| 44 | #endif // ! EXIT_FAILURE
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| 45 |
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| 46 | //---------------------------------------
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| 47 |
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| 48 | static inline forall( dtype T | sized(T) ) {
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| 49 | // Cforall safe equivalents, i.e., implicit size specification
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| 50 |
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| 51 | T * malloc( void ) {
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| 52 | if ( _Alignof(T) <= libAlign() ) return (T *)(void *)malloc( (size_t)sizeof(T) ); // C malloc
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| 53 | else return (T *)memalign( _Alignof(T), sizeof(T) );
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| 54 | } // malloc
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| 55 |
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| 56 | T * aalloc( size_t dim ) {
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| 57 | if ( _Alignof(T) <= libAlign() ) return (T *)(void *)aalloc( dim, (size_t)sizeof(T) ); // CFA aalloc
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| 58 | else return (T *)amemalign( _Alignof(T), dim, sizeof(T) );
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| 59 | } // aalloc
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| 60 |
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| 61 | T * calloc( size_t dim ) {
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| 62 | if ( _Alignof(T) <= libAlign() )return (T *)(void *)calloc( dim, sizeof(T) ); // C calloc
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| 63 | else return (T *)cmemalign( _Alignof(T), dim, sizeof(T) );
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| 64 | } // calloc
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| 65 |
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| 66 | T * resize( T * ptr, size_t size ) { // CFA realloc, eliminate return-type cast
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| 67 | return (T *)(void *)resize( (void *)ptr, size ); // C realloc
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| 68 | } // resize
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| 69 |
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| 70 | T * realloc( T * ptr, size_t size ) { // CFA realloc, eliminate return-type cast
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| 71 | return (T *)(void *)realloc( (void *)ptr, size ); // C realloc
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| 72 | } // realloc
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| 73 |
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| 74 | T * memalign( size_t align ) {
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| 75 | return (T *)memalign( align, sizeof(T) ); // C memalign
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| 76 | } // memalign
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| 77 |
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| 78 | T * amemalign( size_t align, size_t dim ) {
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| 79 | return (T *)amemalign( align, dim, sizeof(T) ); // CFA amemalign
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| 80 | } // amemalign
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| 81 |
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| 82 | T * cmemalign( size_t align, size_t dim ) {
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| 83 | return (T *)cmemalign( align, dim, sizeof(T) ); // CFA cmemalign
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| 84 | } // cmemalign
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| 85 |
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| 86 | T * aligned_alloc( size_t align ) {
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| 87 | return (T *)aligned_alloc( align, sizeof(T) ); // C aligned_alloc
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| 88 | } // aligned_alloc
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| 89 |
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| 90 | int posix_memalign( T ** ptr, size_t align ) {
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| 91 | return posix_memalign( (void **)ptr, align, sizeof(T) ); // C posix_memalign
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| 92 | } // posix_memalign
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| 93 | } // distribution
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| 94 |
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| 95 | static inline forall( dtype T | sized(T) ) {
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| 96 | // Cforall safe general allocation, fill, resize, array
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| 97 |
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| 98 | T * alloc( void ) {
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| 99 | return malloc();
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| 100 | } // alloc
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| 101 |
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| 102 | T * alloc( size_t dim ) {
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| 103 | return aalloc( dim );
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| 104 | } // alloc
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| 105 |
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| 106 | forall( dtype S | sized(S) )
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| 107 | T * alloc( S ptr[], size_t dim = 1 ) { // singleton/array resize
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| 108 | size_t len = malloc_usable_size( ptr ); // current bucket size
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| 109 | if ( sizeof(T) * dim > len ) { // not enough space ?
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| 110 | T * temp = alloc( dim ); // new storage
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| 111 | free( ptr ); // free old storage
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| 112 | return temp;
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| 113 | } else {
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| 114 | return (T *)ptr;
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| 115 | } // if
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| 116 | } // alloc
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| 117 |
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| 118 | T * alloc( T ptr[], size_t dim, bool copy = true ) {
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| 119 | if ( copy ) { // realloc
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| 120 | return (T *)(void *)realloc( (void *)ptr, dim * sizeof(T) ); // C realloc
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| 121 | } else {
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| 122 | return resize( ptr, dim * sizeof(T) ); // resize
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| 123 | } // if
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| 124 | } // alloc
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| 125 |
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| 126 | T * alloc_set( char fill ) {
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| 127 | return (T *)memset( (T *)alloc(), (int)fill, sizeof(T) ); // initialize with fill value
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| 128 | } // alloc
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| 129 |
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| 130 | T * alloc_set( T fill ) {
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| 131 | return (T *)memcpy( (T *)alloc(), &fill, sizeof(T) ); // initialize with fill value
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| 132 | } // alloc
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| 133 |
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| 134 | T * alloc_set( size_t dim, char fill ) {
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| 135 | return (T *)memset( (T *)alloc( dim ), (int)fill, dim * sizeof(T) ); // initialize with fill value
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| 136 | } // alloc
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| 137 |
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| 138 | T * alloc_set( size_t dim, T fill ) {
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| 139 | T * r = (T *)alloc( dim );
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| 140 | for ( i; dim ) { memcpy( &r[i], &fill, sizeof(T) ); } // initialize with fill value
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| 141 | return r;
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| 142 | } // alloc
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| 143 |
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| 144 | T * alloc_set( size_t dim, const T fill[] ) {
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| 145 | return (T *)memcpy( (T *)alloc( dim ), fill, dim * sizeof(T) ); // initialize with fill value
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| 146 | } // alloc
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| 147 | } // distribution
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| 148 |
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| 149 | forall( dtype T | sized(T) ) {
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| 150 | T * alloc_set( T ptr[], size_t dim, char fill ); // realloc array with fill
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| 151 | T * alloc_set( T ptr[], size_t dim, T fill ); // realloc array with fill
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| 152 | } // distribution
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| 153 |
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| 154 | static inline forall( dtype T | sized(T) ) {
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| 155 | T * alloc_align( size_t align ) {
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| 156 | return (T *)memalign( align, sizeof(T) );
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| 157 | } // alloc_align
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| 158 |
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| 159 | T * alloc_align( size_t align, size_t dim ) {
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| 160 | return (T *)memalign( align, dim * sizeof(T) );
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| 161 | } // alloc_align
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| 162 |
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| 163 | T * alloc_align( T * ptr, size_t align ) { // aligned realloc array
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| 164 | return (T *)(void *)realloc( (void *)ptr, align, sizeof(T) ); // CFA realloc
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| 165 | } // alloc_align
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| 166 |
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| 167 | forall( dtype S | sized(S) )
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| 168 | T * alloc_align( S ptr[], size_t align ) { // aligned reuse array
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| 169 | return (T *)(void *)resize( (void *)ptr, align, sizeof(T) ); // CFA realloc
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| 170 | } // alloc_align
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| 171 |
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| 172 | T * alloc_align( T ptr[], size_t align, size_t dim ) { // aligned realloc array
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| 173 | return (T *)(void *)realloc( (void *)ptr, align, dim * sizeof(T) ); // CFA realloc
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| 174 | } // alloc_align
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| 175 |
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| 176 | T * alloc_align_set( size_t align, char fill ) {
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| 177 | return (T *)memset( (T *)alloc_align( align ), (int)fill, sizeof(T) ); // initialize with fill value
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| 178 | } // alloc_align
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| 179 |
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| 180 | T * alloc_align_set( size_t align, T fill ) {
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| 181 | return (T *)memcpy( (T *)alloc_align( align ), &fill, sizeof(T) ); // initialize with fill value
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| 182 | } // alloc_align
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| 183 |
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| 184 | T * alloc_align_set( size_t align, size_t dim, char fill ) {
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| 185 | return (T *)memset( (T *)alloc_align( align, dim ), (int)fill, dim * sizeof(T) ); // initialize with fill value
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| 186 | } // alloc_align
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| 187 |
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| 188 | T * alloc_align_set( size_t align, size_t dim, T fill ) {
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| 189 | T * r = (T *)alloc_align( align, dim );
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| 190 | for ( i; dim ) { memcpy( &r[i], &fill, sizeof(T) ); } // initialize with fill value
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| 191 | return r;
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| 192 | } // alloc_align
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| 193 |
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| 194 | T * alloc_align_set( size_t align, size_t dim, const T fill[] ) {
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| 195 | return (T *)memcpy( (T *)alloc_align( align, dim ), fill, dim * sizeof(T) );
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| 196 | } // alloc_align
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| 197 | } // distribution
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| 198 |
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| 199 | forall( dtype T | sized(T) ) {
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| 200 | T * alloc_align_set( T ptr[], size_t align, char fill ); // aligned realloc with fill
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| 201 | T * alloc_align_set( T ptr[], size_t align, T fill ); // aligned realloc with fill
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| 202 | T * alloc_align_set( T ptr[], size_t align, size_t dim, char fill ); // aligned realloc array with fill
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| 203 | T * alloc_align_set( T ptr[], size_t align, size_t dim, T fill ); // aligned realloc array with fill
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| 204 | } // distribution
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| 205 |
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| 206 | static inline forall( dtype T | sized(T) ) {
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| 207 | // Cforall safe initialization/copy, i.e., implicit size specification, non-array types
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| 208 | T * memset( T * dest, char fill ) {
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| 209 | return (T *)memset( dest, fill, sizeof(T) );
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| 210 | } // memset
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| 211 |
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| 212 | T * memcpy( T * dest, const T * src ) {
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| 213 | return (T *)memcpy( dest, src, sizeof(T) );
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| 214 | } // memcpy
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| 215 | } // distribution
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| 216 |
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| 217 | static inline forall( dtype T | sized(T) ) {
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| 218 | // Cforall safe initialization/copy, i.e., implicit size specification, array types
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| 219 | T * amemset( T dest[], char fill, size_t dim ) {
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| 220 | return (T *)(void *)memset( dest, fill, dim * sizeof(T) ); // C memset
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| 221 | } // amemset
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| 222 |
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| 223 | T * amemcpy( T dest[], const T src[], size_t dim ) {
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| 224 | return (T *)(void *)memcpy( dest, src, dim * sizeof(T) ); // C memcpy
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| 225 | } // amemcpy
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| 226 | } // distribution
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| 227 |
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| 228 | // Cforall allocation/deallocation and constructor/destructor, non-array types
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| 229 | forall( dtype T | sized(T), ttype Params | { void ?{}( T &, Params ); } ) T * new( Params p );
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| 230 | forall( dtype T | sized(T) | { void ^?{}( T & ); } ) void delete( T * ptr );
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| 231 | forall( dtype T, ttype Params | sized(T) | { void ^?{}( T & ); void delete( Params ); } ) void delete( T * ptr, Params rest );
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| 232 |
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| 233 | // Cforall allocation/deallocation and constructor/destructor, array types
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| 234 | forall( dtype T | sized(T), ttype Params | { void ?{}( T &, Params ); } ) T * anew( size_t dim, Params p );
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| 235 | forall( dtype T | sized(T) | { void ^?{}( T & ); } ) void adelete( size_t dim, T arr[] );
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| 236 | 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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| 237 |
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| 238 | //---------------------------------------
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| 239 |
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| 240 | static inline {
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| 241 | int strto( const char sptr[], char ** eptr, int base ) { return (int)strtol( sptr, eptr, base ); }
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| 242 | unsigned int strto( const char sptr[], char ** eptr, int base ) { return (unsigned int)strtoul( sptr, eptr, base ); }
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| 243 | long int strto( const char sptr[], char ** eptr, int base ) { return strtol( sptr, eptr, base ); }
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| 244 | unsigned long int strto( const char sptr[], char ** eptr, int base ) { return strtoul( sptr, eptr, base ); }
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| 245 | long long int strto( const char sptr[], char ** eptr, int base ) { return strtoll( sptr, eptr, base ); }
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| 246 | unsigned long long int strto( const char sptr[], char ** eptr, int base ) { return strtoull( sptr, eptr, base ); }
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| 247 |
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| 248 | float strto( const char sptr[], char ** eptr ) { return strtof( sptr, eptr ); }
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| 249 | double strto( const char sptr[], char ** eptr ) { return strtod( sptr, eptr ); }
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| 250 | long double strto( const char sptr[], char ** eptr ) { return strtold( sptr, eptr ); }
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| 251 | } // distribution
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| 252 |
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| 253 | float _Complex strto( const char sptr[], char ** eptr );
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| 254 | double _Complex strto( const char sptr[], char ** eptr );
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| 255 | long double _Complex strto( const char sptr[], char ** eptr );
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| 256 |
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| 257 | static inline {
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| 258 | int ato( const char sptr[] ) { return (int)strtol( sptr, 0p, 10 ); }
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| 259 | unsigned int ato( const char sptr[] ) { return (unsigned int)strtoul( sptr, 0p, 10 ); }
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| 260 | long int ato( const char sptr[] ) { return strtol( sptr, 0p, 10 ); }
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| 261 | unsigned long int ato( const char sptr[] ) { return strtoul( sptr, 0p, 10 ); }
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| 262 | long long int ato( const char sptr[] ) { return strtoll( sptr, 0p, 10 ); }
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| 263 | unsigned long long int ato( const char sptr[] ) { return strtoull( sptr, 0p, 10 ); }
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| 264 |
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| 265 | float ato( const char sptr[] ) { return strtof( sptr, 0p ); }
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| 266 | double ato( const char sptr[] ) { return strtod( sptr, 0p ); }
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| 267 | long double ato( const char sptr[] ) { return strtold( sptr, 0p ); }
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| 268 |
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| 269 | float _Complex ato( const char sptr[] ) { return strto( sptr, 0p ); }
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| 270 | double _Complex ato( const char sptr[] ) { return strto( sptr, 0p ); }
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| 271 | long double _Complex ato( const char sptr[] ) { return strto( sptr, 0p ); }
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| 272 | } // distribution
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| 273 |
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| 274 | //---------------------------------------
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| 275 |
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| 276 | forall( otype E | { int ?<?( E, E ); } ) {
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| 277 | E * bsearch( E key, const E * vals, size_t dim );
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| 278 | size_t bsearch( E key, const E * vals, size_t dim );
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| 279 | E * bsearchl( E key, const E * vals, size_t dim );
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| 280 | size_t bsearchl( E key, const E * vals, size_t dim );
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| 281 | E * bsearchu( E key, const E * vals, size_t dim );
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| 282 | size_t bsearchu( E key, const E * vals, size_t dim );
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| 283 | } // distribution
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| 284 |
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| 285 | forall( otype K, otype E | { int ?<?( K, K ); K getKey( const E & ); } ) {
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| 286 | E * bsearch( K key, const E * vals, size_t dim );
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| 287 | size_t bsearch( K key, const E * vals, size_t dim );
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| 288 | E * bsearchl( K key, const E * vals, size_t dim );
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| 289 | size_t bsearchl( K key, const E * vals, size_t dim );
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| 290 | E * bsearchu( K key, const E * vals, size_t dim );
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| 291 | size_t bsearchu( K key, const E * vals, size_t dim );
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| 292 | } // distribution
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| 293 |
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| 294 | forall( otype E | { int ?<?( E, E ); } ) {
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| 295 | void qsort( E * vals, size_t dim );
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| 296 | } // distribution
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| 297 |
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| 298 | //---------------------------------------
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| 299 |
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| 300 | extern "C" { // override C version
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| 301 | void srandom( unsigned int seed );
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| 302 | long int random( void );
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| 303 | } // extern "C"
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| 304 |
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| 305 | static inline {
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| 306 | long int random( long int l, long int u ) { if ( u < l ) [u, l] = [l, u]; return lrand48() % (u - l) + l; } // [l,u)
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| 307 | long int random( long int u ) { if ( u < 0 ) return random( u, 0 ); else return random( 0, u ); } // [0,u)
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| 308 | unsigned long int random( void ) { return lrand48(); }
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| 309 | unsigned long int random( unsigned long int l, unsigned long int u ) { if ( u < l ) [u, l] = [l, u]; return lrand48() % (u - l) + l; } // [l,u)
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| 310 | unsigned long int random( unsigned long int u ) { return lrand48() % u; } // [0,u)
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| 311 |
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| 312 | char random( void ) { return (unsigned long int)random(); }
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| 313 | char random( char u ) { return random( (unsigned long int)u ); } // [0,u)
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| 314 | char random( char l, char u ) { return random( (unsigned long int)l, (unsigned long int)u ); } // [l,u)
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| 315 | int random( void ) { return (long int)random(); }
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| 316 | int random( int u ) { return random( (long int)u ); } // [0,u]
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| 317 | int random( int l, int u ) { return random( (long int)l, (long int)u ); } // [l,u)
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| 318 | unsigned int random( void ) { return (unsigned long int)random(); }
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| 319 | unsigned int random( unsigned int u ) { return random( (unsigned long int)u ); } // [0,u]
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| 320 | unsigned int random( unsigned int l, unsigned int u ) { return random( (unsigned long int)l, (unsigned long int)u ); } // [l,u)
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| 321 | } // distribution
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| 322 |
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| 323 | float random( void ); // [0.0, 1.0)
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| 324 | double random( void ); // [0.0, 1.0)
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| 325 | float _Complex random( void ); // [0.0, 1.0)+[0.0, 1.0)i
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| 326 | double _Complex random( void ); // [0.0, 1.0)+[0.0, 1.0)i
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| 327 | long double _Complex random( void ); // [0.0, 1.0)+[0.0, 1.0)i
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| 328 |
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| 329 | //---------------------------------------
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| 330 |
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| 331 | #include "common.hfa"
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| 332 |
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| 333 | //---------------------------------------
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| 334 |
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| 335 | extern bool threading_enabled(void) OPTIONAL_THREAD;
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| 336 |
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| 337 | // Local Variables: //
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| 338 | // mode: c //
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| 339 | // tab-width: 4 //
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| 340 | // End: //
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