/
opt
/
alt
/
php74
/
usr
/
include
/
php
/
Zend
/
/opt/alt/php74/usr/include/php/Zend
mkdir
upload
Name
Size
Mode
Actions
zend.h
13913
0644
edit
dl
rm
zend_alloc.h
19213
0644
edit
dl
rm
zend_alloc_sizes.h
2629
0644
edit
dl
rm
zend_API.h
71109
0644
edit
dl
rm
zend_arena.h
6071
0644
edit
dl
rm
zend_ast.h
11697
0644
edit
dl
rm
zend_bitset.h
6877
0644
edit
dl
rm
zend_build.h
1626
0644
edit
dl
rm
zend_builtin_functions.h
1505
0644
edit
dl
rm
zend_closures.h
2209
0644
edit
dl
rm
zend_compile.h
43638
0644
edit
dl
rm
zend_config.h
32
0644
edit
dl
rm
zend_config.w32.h
2612
0644
edit
dl
rm
zend_constants.h
6302
0644
edit
dl
rm
zend_cpuinfo.h
7225
0644
edit
dl
rm
zend_dtrace.h
1937
0644
edit
dl
rm
zend_errors.h
2050
0644
edit
dl
rm
zend_exceptions.h
3853
0644
edit
dl
rm
zend_execute.h
16926
0644
edit
dl
rm
zend_extensions.h
6070
0644
edit
dl
rm
zend_float.h
15438
0644
edit
dl
rm
zend_gc.h
2867
0644
edit
dl
rm
zend_generators.h
7349
0644
edit
dl
rm
zend_globals.h
7767
0644
edit
dl
rm
zend_globals_macros.h
2810
0644
edit
dl
rm
zend_hash.h
36430
0644
edit
dl
rm
zend_highlight.h
2268
0644
edit
dl
rm
zend_inheritance.h
2027
0644
edit
dl
rm
zend_ini.h
9823
0644
edit
dl
rm
zend_ini_parser.h
2520
0644
edit
dl
rm
zend_ini_scanner.h
1873
0644
edit
dl
rm
zend_ini_scanner_defs.h
225
0644
edit
dl
rm
zend_interfaces.h
4266
0644
edit
dl
rm
zend_istdiostream.h
1537
0644
edit
dl
rm
zend_iterators.h
3404
0644
edit
dl
rm
zend_language_parser.h
5411
0644
edit
dl
rm
zend_language_scanner.h
2732
0644
edit
dl
rm
zend_language_scanner_defs.h
310
0644
edit
dl
rm
zend_list.h
3470
0644
edit
dl
rm
zend_llist.h
3790
0644
edit
dl
rm
zend_long.h
4298
0644
edit
dl
rm
zend_map_ptr.h
3165
0644
edit
dl
rm
zend_modules.h
4790
0644
edit
dl
rm
zend_multibyte.h
4862
0644
edit
dl
rm
zend_multiply.h
9837
0644
edit
dl
rm
zend_objects.h
1807
0644
edit
dl
rm
zend_objects_API.h
4683
0644
edit
dl
rm
zend_object_handlers.h
13505
0644
edit
dl
rm
zend_operators.h
34148
0644
edit
dl
rm
zend_portability.h
20146
0644
edit
dl
rm
zend_ptr_stack.h
4306
0644
edit
dl
rm
zend_range_check.h
3000
0644
edit
dl
rm
zend_signal.h
4082
0644
edit
dl
rm
zend_smart_str.h
5530
0644
edit
dl
rm
zend_smart_string.h
4389
0644
edit
dl
rm
zend_smart_string_public.h
1392
0644
edit
dl
rm
zend_smart_str_public.h
1279
0644
edit
dl
rm
zend_sort.h
1636
0644
edit
dl
rm
zend_stack.h
2360
0644
edit
dl
rm
zend_stream.h
3542
0644
edit
dl
rm
zend_string.h
17472
0644
edit
dl
rm
zend_strtod.h
1854
0644
edit
dl
rm
zend_strtod_int.h
3499
0644
edit
dl
rm
zend_ts_hash.h
5731
0644
edit
dl
rm
zend_types.h
40531
0644
edit
dl
rm
zend_type_info.h
3091
0644
edit
dl
rm
zend_variables.h
3273
0644
edit
dl
rm
zend_virtual_cwd.h
12734
0644
edit
dl
rm
zend_vm.h
1952
0644
edit
dl
rm
zend_vm_def.h
271292
0644
edit
dl
rm
zend_vm_execute.h
2016300
0644
edit
dl
rm
zend_vm_handlers.h
87968
0644
edit
dl
rm
zend_vm_opcodes.h
12080
0644
edit
dl
rm
zend_vm_trace_handlers.h
3212
0644
edit
dl
rm
zend_vm_trace_map.h
2654
0644
edit
dl
rm
zend_weakrefs.h
1445
0644
edit
dl
rm
Edit:
/opt/alt/php74/usr/include/php/Zend/zend_float.h
(15438B)
/* +----------------------------------------------------------------------+ | Zend Engine | +----------------------------------------------------------------------+ | Copyright (c) Zend Technologies Ltd. (http://www.zend.com) | +----------------------------------------------------------------------+ | This source file is subject to version 2.00 of the Zend license, | | that is bundled with this package in the file LICENSE, and is | | available through the world-wide-web at the following url: | | http://www.zend.com/license/2_00.txt. | | If you did not receive a copy of the Zend license and are unable to | | obtain it through the world-wide-web, please send a note to | | license@zend.com so we can mail you a copy immediately. | +----------------------------------------------------------------------+ | Authors: Christian Seiler <chris_se@gmx.net> | +----------------------------------------------------------------------+ */ #ifndef ZEND_FLOAT_H #define ZEND_FLOAT_H BEGIN_EXTERN_C() /* Define functions for FP initialization and de-initialization. */ extern ZEND_API void zend_init_fpu(void); extern ZEND_API void zend_shutdown_fpu(void); extern ZEND_API void zend_ensure_fpu_mode(void); END_EXTERN_C() /* Copy of the contents of xpfpa.h (which is under public domain) See http://wiki.php.net/rfc/rounding for details. Cross Platform Floating Point Arithmetics This header file defines several platform-dependent macros that ensure equal and deterministic floating point behaviour across several platforms, compilers and architectures. The current macros are currently only used on x86 and x86_64 architectures, on every other architecture, these macros expand to NOPs. This assumes that other architectures do not have an internal precision and the operhand types define the computational precision of floating point operations. This assumption may be false, in that case, the author is interested in further details on the other platform. For further details, please visit: http://www.christian-seiler.de/projekte/fpmath/ Version: 20090317 */ /* Implementation notes: x86_64: - Since all x86_64 compilers use SSE by default, we do not define these macros there. We ignore the compiler option -mfpmath=i387, because there is no reason to use it on x86_64. General: - It would be nice if one could detect whether SSE if used for math via some funky compiler defines and if so, make the macros go to NOPs. Any ideas on how to do that? MS Visual C: - Since MSVC users typically don't use autoconf or CMake, we will detect MSVC via compile time define. */ /* MSVC detection (MSVC people usually don't use autoconf) */ #if defined(_MSC_VER) && !defined(_WIN64) # define HAVE__CONTROLFP_S #endif /* _MSC_VER */ #if defined(HAVE__CONTROLFP_S) && !defined(__x86_64__) /* float.h defines _controlfp_s */ # include <float.h> # define XPFPA_HAVE_CW 1 # define XPFPA_CW_DATATYPE \ unsigned int # define XPFPA_STORE_CW(vptr) do { \ _controlfp_s((unsigned int *)(vptr), 0, 0); \ } while (0) # define XPFPA_RESTORE_CW(vptr) do { \ unsigned int _xpfpa_fpu_cw; \ _controlfp_s(&_xpfpa_fpu_cw, *((unsigned int *)(vptr)), _MCW_PC); \ } while (0) # define XPFPA_DECLARE \ unsigned int _xpfpa_fpu_oldcw, _xpfpa_fpu_cw; # define XPFPA_SWITCH_DOUBLE() do { \ _controlfp_s(&_xpfpa_fpu_cw, 0, 0); \ _xpfpa_fpu_oldcw = _xpfpa_fpu_cw; \ _controlfp_s(&_xpfpa_fpu_cw, _PC_53, _MCW_PC); \ } while (0) # define XPFPA_SWITCH_SINGLE() do { \ _controlfp_s(&_xpfpa_fpu_cw, 0, 0); \ _xpfpa_fpu_oldcw = _xpfpa_fpu_cw; \ _controlfp_s(&_xpfpa_fpu_cw, _PC_24, _MCW_PC); \ } while (0) /* NOTE: This only sets internal precision. MSVC does NOT support double- extended precision! */ # define XPFPA_SWITCH_DOUBLE_EXTENDED() do { \ _controlfp_s(&_xpfpa_fpu_cw, 0, 0); \ _xpfpa_fpu_oldcw = _xpfpa_fpu_cw; \ _controlfp_s(&_xpfpa_fpu_cw, _PC_64, _MCW_PC); \ } while (0) # define XPFPA_RESTORE() \ _controlfp_s(&_xpfpa_fpu_cw, _xpfpa_fpu_oldcw, _MCW_PC) /* We do NOT use the volatile return trick since _controlfp_s is a function call and thus FP registers are saved in memory anyway. However, we do use a variable to ensure that the expression passed into val will be evaluated *before* switching back contexts. */ # define XPFPA_RETURN_DOUBLE(val) \ do { \ double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_SINGLE(val) \ do { \ float _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) /* This won't work, but we add a macro for it anyway. */ # define XPFPA_RETURN_DOUBLE_EXTENDED(val) \ do { \ long double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) #elif defined(HAVE__CONTROLFP) && !defined(__x86_64__) /* float.h defines _controlfp */ # include <float.h> # define XPFPA_DECLARE \ unsigned int _xpfpa_fpu_oldcw; # define XPFPA_HAVE_CW 1 # define XPFPA_CW_DATATYPE \ unsigned int # define XPFPA_STORE_CW(vptr) do { \ *((unsigned int *)(vptr)) = _controlfp(0, 0); \ } while (0) # define XPFPA_RESTORE_CW(vptr) do { \ _controlfp(*((unsigned int *)(vptr)), _MCW_PC); \ } while (0) # define XPFPA_SWITCH_DOUBLE() do { \ _xpfpa_fpu_oldcw = _controlfp(0, 0); \ _controlfp(_PC_53, _MCW_PC); \ } while (0) # define XPFPA_SWITCH_SINGLE() do { \ _xpfpa_fpu_oldcw = _controlfp(0, 0); \ _controlfp(_PC_24, _MCW_PC); \ } while (0) /* NOTE: This will only work as expected on MinGW. */ # define XPFPA_SWITCH_DOUBLE_EXTENDED() do { \ _xpfpa_fpu_oldcw = _controlfp(0, 0); \ _controlfp(_PC_64, _MCW_PC); \ } while (0) # define XPFPA_RESTORE() \ _controlfp(_xpfpa_fpu_oldcw, _MCW_PC) /* We do NOT use the volatile return trick since _controlfp is a function call and thus FP registers are saved in memory anyway. However, we do use a variable to ensure that the expression passed into val will be evaluated *before* switching back contexts. */ # define XPFPA_RETURN_DOUBLE(val) \ do { \ double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_SINGLE(val) \ do { \ float _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) /* This will only work on MinGW */ # define XPFPA_RETURN_DOUBLE_EXTENDED(val) \ do { \ long double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) #elif defined(HAVE__FPU_SETCW) && !defined(__x86_64__) /* glibc systems */ /* fpu_control.h defines _FPU_[GS]ETCW */ # include <fpu_control.h> # define XPFPA_DECLARE \ fpu_control_t _xpfpa_fpu_oldcw, _xpfpa_fpu_cw; # define XPFPA_HAVE_CW 1 # define XPFPA_CW_DATATYPE \ fpu_control_t # define XPFPA_STORE_CW(vptr) do { \ _FPU_GETCW((*((fpu_control_t *)(vptr)))); \ } while (0) # define XPFPA_RESTORE_CW(vptr) do { \ _FPU_SETCW((*((fpu_control_t *)(vptr)))); \ } while (0) # define XPFPA_SWITCH_DOUBLE() do { \ _FPU_GETCW(_xpfpa_fpu_oldcw); \ _xpfpa_fpu_cw = (_xpfpa_fpu_oldcw & ~_FPU_EXTENDED & ~_FPU_SINGLE) | _FPU_DOUBLE; \ _FPU_SETCW(_xpfpa_fpu_cw); \ } while (0) # define XPFPA_SWITCH_SINGLE() do { \ _FPU_GETCW(_xpfpa_fpu_oldcw); \ _xpfpa_fpu_cw = (_xpfpa_fpu_oldcw & ~_FPU_EXTENDED & ~_FPU_DOUBLE) | _FPU_SINGLE; \ _FPU_SETCW(_xpfpa_fpu_cw); \ } while (0) # define XPFPA_SWITCH_DOUBLE_EXTENDED() do { \ _FPU_GETCW(_xpfpa_fpu_oldcw); \ _xpfpa_fpu_cw = (_xpfpa_fpu_oldcw & ~_FPU_SINGLE & ~_FPU_DOUBLE) | _FPU_EXTENDED; \ _FPU_SETCW(_xpfpa_fpu_cw); \ } while (0) # define XPFPA_RESTORE() \ _FPU_SETCW(_xpfpa_fpu_oldcw) /* We use a temporary volatile variable (in a new block) in order to ensure that the optimizer does not mis-optimize the instructions. Also, a volatile variable ensures truncation to correct precision. */ # define XPFPA_RETURN_DOUBLE(val) \ do { \ volatile double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_SINGLE(val) \ do { \ volatile float _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_DOUBLE_EXTENDED(val) \ do { \ volatile long double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) #elif defined(HAVE_FPSETPREC) && !defined(__x86_64__) /* FreeBSD */ /* fpu_control.h defines _FPU_[GS]ETCW */ # include <machine/ieeefp.h> # define XPFPA_DECLARE \ fp_prec_t _xpfpa_fpu_oldprec; # define XPFPA_HAVE_CW 1 # define XPFPA_CW_DATATYPE \ fp_prec_t # define XPFPA_STORE_CW(vptr) do { \ *((fp_prec_t *)(vptr)) = fpgetprec(); \ } while (0) # define XPFPA_RESTORE_CW(vptr) do { \ fpsetprec(*((fp_prec_t *)(vptr))); \ } while (0) # define XPFPA_SWITCH_DOUBLE() do { \ _xpfpa_fpu_oldprec = fpgetprec(); \ fpsetprec(FP_PD); \ } while (0) # define XPFPA_SWITCH_SINGLE() do { \ _xpfpa_fpu_oldprec = fpgetprec(); \ fpsetprec(FP_PS); \ } while (0) # define XPFPA_SWITCH_DOUBLE_EXTENDED() do { \ _xpfpa_fpu_oldprec = fpgetprec(); \ fpsetprec(FP_PE); \ } while (0) # define XPFPA_RESTORE() \ fpsetprec(_xpfpa_fpu_oldprec) /* We use a temporary volatile variable (in a new block) in order to ensure that the optimizer does not mis-optimize the instructions. Also, a volatile variable ensures truncation to correct precision. */ # define XPFPA_RETURN_DOUBLE(val) \ do { \ volatile double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_SINGLE(val) \ do { \ volatile float _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_DOUBLE_EXTENDED(val) \ do { \ volatile long double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) #elif defined(HAVE_FPU_INLINE_ASM_X86) && !defined(__x86_64__) /* Custom x86 inline assembler implementation. This implementation does not use predefined wrappers of the OS / compiler but rather uses x86/x87 inline assembler directly. Basic instructions: fnstcw - Store the FPU control word in a variable fldcw - Load the FPU control word from a variable Bits (only bits 8 and 9 are relevant, bits 0 to 7 are for other things): 0x0yy: Single precision 0x1yy: Reserved 0x2yy: Double precision 0x3yy: Double-extended precision We use an unsigned int for the datatype. glibc sources add __mode__ (__HI__) attribute to it (HI stands for half-integer according to docs). It is unclear what the does exactly and how portable it is. The assembly syntax works with GNU CC, Intel CC and Sun CC. */ # define XPFPA_DECLARE \ unsigned int _xpfpa_fpu_oldcw, _xpfpa_fpu_cw; # define XPFPA_HAVE_CW 1 # define XPFPA_CW_DATATYPE \ unsigned int # define XPFPA_STORE_CW(vptr) do { \ __asm__ __volatile__ ("fnstcw %0" : "=m" (*((unsigned int *)(vptr)))); \ } while (0) # define XPFPA_RESTORE_CW(vptr) do { \ __asm__ __volatile__ ("fldcw %0" : : "m" (*((unsigned int *)(vptr)))); \ } while (0) # define XPFPA_SWITCH_DOUBLE() do { \ __asm__ __volatile__ ("fnstcw %0" : "=m" (*&_xpfpa_fpu_oldcw)); \ _xpfpa_fpu_cw = (_xpfpa_fpu_oldcw & ~0x100) | 0x200; \ __asm__ __volatile__ ("fldcw %0" : : "m" (*&_xpfpa_fpu_cw)); \ } while (0) # define XPFPA_SWITCH_SINGLE() do { \ __asm__ __volatile__ ("fnstcw %0" : "=m" (*&_xpfpa_fpu_oldcw)); \ _xpfpa_fpu_cw = (_xpfpa_fpu_oldcw & ~0x300); \ __asm__ __volatile__ ("fldcw %0" : : "m" (*&_xpfpa_fpu_cw)); \ } while (0) # define XPFPA_SWITCH_DOUBLE_EXTENDED() do { \ __asm__ __volatile__ ("fnstcw %0" : "=m" (*&_xpfpa_fpu_oldcw)); \ _xpfpa_fpu_cw = _xpfpa_fpu_oldcw | 0x300; \ __asm__ __volatile__ ("fldcw %0" : : "m" (*&_xpfpa_fpu_cw)); \ } while (0) # define XPFPA_RESTORE() \ __asm__ __volatile__ ("fldcw %0" : : "m" (*&_xpfpa_fpu_oldcw)) /* We use a temporary volatile variable (in a new block) in order to ensure that the optimizer does not mis-optimize the instructions. Also, a volatile variable ensures truncation to correct precision. */ # define XPFPA_RETURN_DOUBLE(val) \ do { \ volatile double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_SINGLE(val) \ do { \ volatile float _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) # define XPFPA_RETURN_DOUBLE_EXTENDED(val) \ do { \ volatile long double _xpfpa_result = (val); \ XPFPA_RESTORE(); \ return _xpfpa_result; \ } while (0) #else /* FPU CONTROL */ /* This is either not an x87 FPU or the inline assembly syntax was not recognized. In any case, default to NOPs for the macros and hope the generated code will behave as planned. */ # define XPFPA_DECLARE /* NOP */ # define XPFPA_HAVE_CW 0 # define XPFPA_CW_DATATYPE unsigned int # define XPFPA_STORE_CW(variable) /* NOP */ # define XPFPA_RESTORE_CW(variable) /* NOP */ # define XPFPA_SWITCH_DOUBLE() /* NOP */ # define XPFPA_SWITCH_SINGLE() /* NOP */ # define XPFPA_SWITCH_DOUBLE_EXTENDED() /* NOP */ # define XPFPA_RESTORE() /* NOP */ # define XPFPA_RETURN_DOUBLE(val) return (val) # define XPFPA_RETURN_SINGLE(val) return (val) # define XPFPA_RETURN_DOUBLE_EXTENDED(val) return (val) #endif /* FPU CONTROL */ #endif
Save
cmd:
run