// // Cforall Version 1.0.0 Copyright (C) 2016 University of Waterloo // // The contents of this file are covered under the licence agreement in the // file "LICENCE" distributed with Cforall. // // stdlib.c -- // // Author : Peter A. Buhr // Created On : Thu Jan 28 17:10:29 2016 // Last Modified By : Peter A. Buhr // Last Modified On : Thu Nov 12 07:46:09 2020 // Update Count : 503 // #include "stdlib.hfa" //--------------------------------------- #define _XOPEN_SOURCE 600 // posix_memalign, *rand48 #include // memcpy, memset //#include // fabsf, fabs, fabsl #include // _Complex_I #include //--------------------------------------- // Cforall allocation/deallocation and constructor/destructor, array types forall( T & | sized(T), TT... | { void ?{}( T &, TT ); } ) T * anew( size_t dim, TT p ) { T * arr = alloc( dim ); for ( unsigned int i = 0; i < dim; i += 1 ) { (arr[i]){ p }; // run constructor } // for return arr; } // anew forall( T & | sized(T) | { void ^?{}( T & ); } ) void adelete( T arr[] ) { if ( arr ) { // ignore null size_t dim = malloc_size( arr ) / sizeof( T ); for ( int i = dim - 1; i >= 0; i -= 1 ) { // reverse allocation order, must be unsigned ^(arr[i]){}; // run destructor } // for free( arr ); } // if } // adelete forall( T & | sized(T) | { void ^?{}( T & ); }, TT... | { void adelete( TT ); } ) void adelete( T arr[], TT rest ) { if ( arr ) { // ignore null size_t dim = malloc_size( arr ) / sizeof( T ); for ( int i = dim - 1; i >= 0; i -= 1 ) { // reverse allocation order, must be unsigned ^(arr[i]){}; // run destructor } // for free( arr ); } // if adelete( rest ); } // adelete //--------------------------------------- float _Complex strto( const char sptr[], char ** eptr ) { float re, im; char * eeptr; re = strtof( sptr, &eeptr ); if ( sptr == eeptr ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0f + 0.0f * _Complex_I; } im = strtof( eeptr, &eeptr ); if ( sptr == eeptr ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0f + 0.0f * _Complex_I; } if ( *eeptr != 'i' ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0f + 0.0f * _Complex_I; } return re + im * _Complex_I; } // strto double _Complex strto( const char sptr[], char ** eptr ) { double re, im; char * eeptr; re = strtod( sptr, &eeptr ); if ( sptr == eeptr ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0 + 0.0 * _Complex_I; } im = strtod( eeptr, &eeptr ); if ( sptr == eeptr ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0 + 0.0 * _Complex_I; } if ( *eeptr != 'i' ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0 + 0.0 * _Complex_I; } return re + im * _Complex_I; } // strto long double _Complex strto( const char sptr[], char ** eptr ) { long double re, im; char * eeptr; re = strtold( sptr, &eeptr ); if ( sptr == eeptr ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0L + 0.0L * _Complex_I; } im = strtold( eeptr, &eeptr ); if ( sptr == eeptr ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0L + 0.0L * _Complex_I; } if ( *eeptr != 'i' ) { if ( eptr != 0 ) *eptr = eeptr; return 0.0L + 0.0L * _Complex_I; } return re + im * _Complex_I; } // strto //--------------------------------------- forall( E | { int ?