All these files live somewhere else now.
This commit is contained in:
@@ -1,670 +0,0 @@
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/* -----------------------------------------------------------------------
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ffi.c - Copyright (c) 1998 Cygnus Solutions
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Copyright (c) 2000 Hewlett Packard Company
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IA64 Foreign Function Interface
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Permission is hereby granted, free of charge, to any person obtaining
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a copy of this software and associated documentation files (the
|
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``Software''), to deal in the Software without restriction, including
|
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without limitation the rights to use, copy, modify, merge, publish,
|
||||
distribute, sublicense, and/or sell copies of the Software, and to
|
||||
permit persons to whom the Software is furnished to do so, subject to
|
||||
the following conditions:
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||||
|
||||
The above copyright notice and this permission notice shall be included
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in all copies or substantial portions of the Software.
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||||
|
||||
THE SOFTWARE IS PROVIDED ``AS IS'', WITHOUT WARRANTY OF ANY KIND, EXPRESS
|
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OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
|
||||
MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
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IN NO EVENT SHALL CYGNUS SOLUTIONS BE LIABLE FOR ANY CLAIM, DAMAGES OR
|
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OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
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ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
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OTHER DEALINGS IN THE SOFTWARE.
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----------------------------------------------------------------------- */
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#include <ffi.h>
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#include <ffi_common.h>
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#include <stdlib.h>
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#include "ia64_flags.h"
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/* Memory image of fp register contents. Should eventually be an fp */
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/* type long enough to hold an entire register. For now we use double. */
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typedef double float80;
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/* The stack layout at call to ffi_prep_regs. Other_args will remain */
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/* on the stack for the actual call. Everything else we be transferred */
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/* to registers and popped by the assembly code. */
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struct ia64_args {
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long scratch[2]; /* Two scratch words at top of stack. */
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/* Allows sp to passed as arg pointer. */
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void * r8_contents; /* Value to be passed in r8 */
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long spare; /* Not used. */
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float80 fp_regs[8]; /* Contents of 8 floating point argument */
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/* registers. */
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long out_regs[8]; /* Contents of the 8 out registers used */
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/* for integer parameters. */
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long other_args[0]; /* Arguments passed on stack, variable size */
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/* Treated as continuation of out_regs. */
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};
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static size_t float_type_size(unsigned short tp)
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{
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switch(tp) {
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case FFI_TYPE_FLOAT:
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return sizeof(float);
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case FFI_TYPE_DOUBLE:
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return sizeof(double);
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#if FFI_TYPE_LONGDOUBLE != FFI_TYPE_DOUBLE
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case FFI_TYPE_LONGDOUBLE:
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return sizeof(long double);
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#endif
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default:
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FFI_ASSERT(0);
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}
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}
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/*
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* Is type a struct containing at most n floats, doubles, or extended
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* doubles, all of the same fp type?
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* If so, set *element_type to the fp type.
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*/
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static bool is_homogeneous_fp_aggregate(ffi_type * type, int n,
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unsigned short * element_type)
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{
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ffi_type **ptr;
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unsigned short element, struct_element;
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int type_set = 0;
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FFI_ASSERT(type != NULL);
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FFI_ASSERT(type->elements != NULL);
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ptr = &(type->elements[0]);
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while ((*ptr) != NULL)
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{
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switch((*ptr) -> type) {
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case FFI_TYPE_FLOAT:
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if (type_set && element != FFI_TYPE_FLOAT) return 0;
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if (--n < 0) return FALSE;
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type_set = 1;
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element = FFI_TYPE_FLOAT;
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break;
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case FFI_TYPE_DOUBLE:
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if (type_set && element != FFI_TYPE_DOUBLE) return 0;
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if (--n < 0) return FALSE;
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type_set = 1;
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element = FFI_TYPE_DOUBLE;
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break;
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case FFI_TYPE_STRUCT:
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if (!is_homogeneous_fp_aggregate(type, n, &struct_element))
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return FALSE;
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if (type_set && struct_element != element) return FALSE;
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n -= (type -> size)/float_type_size(element);
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element = struct_element;
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if (n < 0) return FALSE;
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break;
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/* case FFI_TYPE_LONGDOUBLE:
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Not yet implemented. */
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default:
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return FALSE;
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}
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ptr++;
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}
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*element_type = element;
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return TRUE;
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}
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/* ffi_prep_args is called by the assembly routine once stack space
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has been allocated for the function's arguments. Returns nonzero
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if fp registers are used for arguments. */
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static bool
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ffi_prep_args(struct ia64_args *stack, extended_cif *ecif, int bytes)
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{
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register long i, avn;
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register void **p_argv;
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register long *argp = stack -> out_regs;
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register float80 *fp_argp = stack -> fp_regs;
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register ffi_type **p_arg;
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/* For big return structs, r8 needs to contain the target address. */
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/* Since r8 is otherwise dead, we set it unconditionally. */
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stack -> r8_contents = ecif -> rvalue;
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i = 0;
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avn = ecif->cif->nargs;
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p_arg = ecif->cif->arg_types;
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p_argv = ecif->avalue;
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while (i < avn)
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{
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size_t z; /* z is in units of arg slots or words, not bytes. */
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switch ((*p_arg)->type)
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{
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case FFI_TYPE_SINT8:
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z = 1;
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*(SINT64 *) argp = *(SINT8 *)(* p_argv);
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break;
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case FFI_TYPE_UINT8:
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z = 1;
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*(UINT64 *) argp = *(UINT8 *)(* p_argv);
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break;
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case FFI_TYPE_SINT16:
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z = 1;
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*(SINT64 *) argp = *(SINT16 *)(* p_argv);
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break;
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case FFI_TYPE_UINT16:
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z = 1;
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*(UINT64 *) argp = *(UINT16 *)(* p_argv);
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break;
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case FFI_TYPE_SINT32:
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z = 1;
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*(SINT64 *) argp = *(SINT32 *)(* p_argv);
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break;
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case FFI_TYPE_UINT32:
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z = 1;
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*(UINT64 *) argp = *(UINT32 *)(* p_argv);
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break;
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case FFI_TYPE_SINT64:
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case FFI_TYPE_UINT64:
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case FFI_TYPE_POINTER:
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z = 1;
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*(UINT64 *) argp = *(UINT64 *)(* p_argv);
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break;
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case FFI_TYPE_FLOAT:
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z = 1;
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if (fp_argp - stack->fp_regs < 8)
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{
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/* Note the conversion -- all the fp regs are loaded as
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doubles. */
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*fp_argp++ = *(float *)(* p_argv);
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}
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/* Also put it into the integer registers or memory: */
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*(UINT64 *) argp = *(UINT32 *)(* p_argv);
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break;
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case FFI_TYPE_DOUBLE:
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z = 1;
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if (fp_argp - stack->fp_regs < 8)
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*fp_argp++ = *(double *)(* p_argv);
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/* Also put it into the integer registers or memory: */
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*(double *) argp = *(double *)(* p_argv);
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break;
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case FFI_TYPE_STRUCT:
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{
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size_t sz = (*p_arg)->size;
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unsigned short element_type;
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z = ((*p_arg)->size + SIZEOF_ARG - 1)/SIZEOF_ARG;
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if (is_homogeneous_fp_aggregate(*p_arg, 8, &element_type)) {
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int i;
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int nelements = sz/float_type_size(element_type);
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for (i = 0; i < nelements; ++i) {
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switch (element_type) {
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case FFI_TYPE_FLOAT:
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if (fp_argp - stack->fp_regs < 8)
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*fp_argp++ = ((float *)(* p_argv))[i];
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break;
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case FFI_TYPE_DOUBLE:
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if (fp_argp - stack->fp_regs < 8)
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*fp_argp++ = ((double *)(* p_argv))[i];
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break;
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default:
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/* Extended precision not yet implemented. */
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abort();
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}
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}
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}
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/* And pass it in integer registers as a struct, with */
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/* its actual field sizes packed into registers. */
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memcpy(argp, *p_argv, (*p_arg)->size);
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}
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break;
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default:
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FFI_ASSERT(0);
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}
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argp += z;
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i++, p_arg++, p_argv++;
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}
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return (fp_argp != stack -> fp_regs);
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}
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/* Perform machine dependent cif processing */
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ffi_status
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ffi_prep_cif_machdep(ffi_cif *cif)
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{
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long i, avn;
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bool is_simple = TRUE;
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long simple_flag = FFI_SIMPLE_V;
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/* Adjust cif->bytes to include space for the 2 scratch words,
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r8 register contents, spare word,
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the 8 fp register contents, and all 8 integer register contents.
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This will be removed before the call, though 2 scratch words must
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remain. */
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cif->bytes += 4*sizeof(long) + 8 *sizeof(float80);
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if (cif->bytes < sizeof(struct ia64_args))
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cif->bytes = sizeof(struct ia64_args);
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/* The stack must be double word aligned, so round bytes up
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appropriately. */
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cif->bytes = ALIGN(cif->bytes, 2*sizeof(void*));
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avn = cif->nargs;
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if (avn <= 2) {
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for (i = 0; i < avn; ++i) {
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switch(cif -> arg_types[i] -> type) {
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case FFI_TYPE_SINT32:
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simple_flag = FFI_ADD_INT_ARG(simple_flag);
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break;
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case FFI_TYPE_SINT64:
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case FFI_TYPE_UINT64:
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case FFI_TYPE_POINTER:
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simple_flag = FFI_ADD_LONG_ARG(simple_flag);
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break;
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default:
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is_simple = FALSE;
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}
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||||
}
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} else {
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is_simple = FALSE;
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}
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/* Set the return type flag */
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switch (cif->rtype->type)
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{
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case FFI_TYPE_VOID:
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cif->flags = FFI_TYPE_VOID;
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break;
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case FFI_TYPE_STRUCT:
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{
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size_t sz = cif -> rtype -> size;
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unsigned short element_type;
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is_simple = FALSE;
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if (is_homogeneous_fp_aggregate(cif -> rtype, 8, &element_type)) {
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int nelements = sz/float_type_size(element_type);
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if (nelements <= 1) {
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if (0 == nelements) {
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cif -> flags = FFI_TYPE_VOID;
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||||
} else {
|
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cif -> flags = element_type;
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||||
}
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||||
} else {
|
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switch(element_type) {
|
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case FFI_TYPE_FLOAT:
|
||||
cif -> flags = FFI_IS_FLOAT_FP_AGGREGATE | nelements;
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||||
break;
|
||||
case FFI_TYPE_DOUBLE:
|
||||
cif -> flags = FFI_IS_DOUBLE_FP_AGGREGATE | nelements;
|
||||
break;
|
||||
default:
|
||||
/* long double NYI */
|
||||
abort();
|
||||
}
|
||||
}
|
||||
break;
|
||||
}
|
||||
if (sz <= 32) {
|
||||
if (sz <= 8) {
|
||||
cif->flags = FFI_TYPE_INT;
|
||||
} else if (sz <= 16) {
|
||||
cif->flags = FFI_IS_SMALL_STRUCT2;
|
||||
} else if (sz <= 24) {
|
||||
cif->flags = FFI_IS_SMALL_STRUCT3;
|
||||
} else {
|
||||
cif->flags = FFI_IS_SMALL_STRUCT4;
|
||||
}
|
||||
} else {
|
||||
cif->flags = FFI_TYPE_STRUCT;
|
||||
}
|
||||
}
|
||||
break;
|
||||
|
||||
case FFI_TYPE_FLOAT:
|
||||
is_simple = FALSE;
|
||||
cif->flags = FFI_TYPE_FLOAT;
|
||||
break;
|
||||
|
||||
case FFI_TYPE_DOUBLE:
|
||||
is_simple = FALSE;
|
||||
cif->flags = FFI_TYPE_DOUBLE;
|
||||
break;
|
||||
|
||||
default:
|
||||
cif->flags = FFI_TYPE_INT;
|
||||
/* This seems to depend on little endian mode, and the fact that */
|
||||
/* the return pointer always points to at least 8 bytes. But */
|
||||
/* that also seems to be true for other platforms. */
|
||||
break;
|
||||
}
|
||||
|
||||
if (is_simple) cif -> flags |= simple_flag;
|
||||
return FFI_OK;
|
||||
}
|
||||
|
||||
extern int ffi_call_unix(bool (*)(struct ia64_args *, extended_cif *, int),
|
||||
extended_cif *, unsigned,
|
||||
unsigned, unsigned *, void (*)());
|
||||
|
||||
void
|
||||
ffi_call(ffi_cif *cif, void (*fn)(), void *rvalue, void **avalue)
|
||||
{
|
||||
extended_cif ecif;
|
||||
long simple = cif -> flags & FFI_SIMPLE;
|
||||
|
||||
/* Should this also check for Unix ABI? */
|
||||
/* This is almost, but not quite, machine independent. Note that */
|
||||
/* we can get away with not caring about length of the result because */
|
||||
/* we assume we are little endian, and the result buffer is large */
|
||||
/* enough. */
|
||||
/* This needs work for HP/UX. */
|
||||
if (simple) {
|
||||
long (*lfn)() = (long (*)())fn;
|
||||
long result;
|
||||
switch(simple) {
|
||||
case FFI_SIMPLE_V:
|
||||
result = lfn();
|
||||
break;
|
||||
case FFI_SIMPLE_I:
|
||||
result = lfn(*(int *)avalue[0]);
|
||||
break;
|
||||
case FFI_SIMPLE_L:
|
||||
result = lfn(*(long *)avalue[0]);
|
||||
break;
|
||||
case FFI_SIMPLE_II:
|
||||
result = lfn(*(int *)avalue[0], *(int *)avalue[1]);
|
||||
break;
|
||||
case FFI_SIMPLE_IL:
|
||||
result = lfn(*(int *)avalue[0], *(long *)avalue[1]);
|
||||
break;
|
||||
case FFI_SIMPLE_LI:
|
||||
result = lfn(*(long *)avalue[0], *(int *)avalue[1]);
|
||||
break;
|
||||
case FFI_SIMPLE_LL:
|
||||
result = lfn(*(long *)avalue[0], *(long *)avalue[1]);
|
||||
break;
|
||||
}
|
||||
if ((cif->flags & ~FFI_SIMPLE) != FFI_TYPE_VOID && 0 != rvalue) {
|
||||
* (long *)rvalue = result;
|
||||
}
|
||||
return;
|
||||
}
|
||||
ecif.cif = cif;
|
||||
ecif.avalue = avalue;
|
||||
|
||||
/* If the return value is a struct and we don't have a return
|
||||
value address then we need to make one. */
|
||||
|
||||
if (rvalue == NULL && cif->rtype->type == FFI_TYPE_STRUCT)
|
||||
ecif.rvalue = alloca(cif->rtype->size);
|
||||
else
|
||||
ecif.rvalue = rvalue;
|
||||
|
||||
switch (cif->abi)
|
||||
{
|
||||
case FFI_UNIX:
|
||||
ffi_call_unix(ffi_prep_args, &ecif, cif->bytes,
|
||||
cif->flags, rvalue, fn);
|
||||
break;
|
||||
|
||||
default:
|
||||
FFI_ASSERT(0);
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
/*
|
||||
* Closures represent a pair consisting of a function pointer, and
|
||||
* some user data. A closure is invoked by reinterpreting the closure
|
||||
* as a function pointer, and branching to it. Thus we can make an
|
||||
* interpreted function callable as a C function: We turn the interpreter
|
||||
* itself, together with a pointer specifying the interpreted procedure,
|
||||
* into a closure.
|
||||
* On X86, the first few words of the closure structure actually contain code,
|
||||
* which will do the right thing. On most other architectures, this
|
||||
* would raise some Icache/Dcache coherence issues (which can be solved, but
|
||||
* often not cheaply).
|
||||
* For IA64, function pointer are already pairs consisting of a code
|
||||
* pointer, and a gp pointer. The latter is needed to access global variables.
|
||||
* Here we set up such a pair as the first two words of the closure (in
|
||||
* the "trampoline" area), but we replace the gp pointer with a pointer
|
||||
* to the closure itself. We also add the real gp pointer to the
|
||||
* closure. This allows the function entry code to both retrieve the
|
||||
* user data, and to restire the correct gp pointer.
|
||||
*/
|
||||
|
||||
static void
|
||||
ffi_prep_incoming_args_UNIX(struct ia64_args *args, void **rvalue,
|
||||
void **avalue, ffi_cif *cif);
|
||||
|
||||
/* This function is entered with the doctored gp (r1) value.
|
||||
* This code is extremely gcc specific. There is some argument that
|
||||
* it should really be written in assembly code, since it depends on
|
||||
* gcc properties that might change over time.
|
||||
*/
|
||||
|
||||
/* ffi_closure_UNIX is an assembly routine, which copies the register */
|
||||
/* state into s struct ia64_args, and the invokes */
|
||||
/* ffi_closure_UNIX_inner. It also recovers the closure pointer */
|
||||
/* from its fake gp pointer. */
|
||||
void ffi_closure_UNIX();
|
||||
|
||||
#ifndef __GNUC__
|
||||
# error This requires gcc
|
||||
#endif
|
||||
void
|
||||
ffi_closure_UNIX_inner (ffi_closure *closure, struct ia64_args * args)
|
||||
/* Hopefully declarint this as a varargs function will force all args */
|
||||
/* to memory. */
|
||||
{
|
||||
// this is our return value storage
|
||||
long double res;
|
||||
|
||||
// our various things...
|
||||
ffi_cif *cif;
|
||||
unsigned short rtype;
|
||||
void *resp;
|
||||
void **arg_area;
|
||||
|
||||
resp = (void*)&res;
|
||||
cif = closure->cif;
|
||||
arg_area = (void**) alloca (cif->nargs * sizeof (void*));
|
||||
|
||||
/* this call will initialize ARG_AREA, such that each
|
||||
* element in that array points to the corresponding
|
||||
* value on the stack; and if the function returns
|
||||
* a structure, it will re-set RESP to point to the
|
||||
* structure return address. */
|
||||
|
||||
ffi_prep_incoming_args_UNIX(args, (void**)&resp, arg_area, cif);
|
||||
|
||||
(closure->fun) (cif, resp, arg_area, closure->user_data);
|
||||
|
||||
rtype = cif->flags;
|
||||
|
||||
/* now, do a generic return based on the value of rtype */
|
||||
if (rtype == FFI_TYPE_INT)
|
||||
{
|
||||
asm volatile ("ld8 r8=[%0]" : : "r" (resp) : "r8");
|
||||
}
|
||||
else if (rtype == FFI_TYPE_FLOAT)
|
||||
{
|
||||
asm volatile ("ldfs f8=[%0]" : : "r" (resp) : "f8");
|
||||
}
|
||||
else if (rtype == FFI_TYPE_DOUBLE)
|
||||
{
|
||||
asm volatile ("ldfd f8=[%0]" : : "r" (resp) : "f8");
|
||||
}
|
||||
else if (rtype == FFI_IS_SMALL_STRUCT2)
|
||||
{
|
||||
asm volatile ("ld8 r8=[%0]; ld8 r9=[%1]"
|
||||
: : "r" (resp), "r" (resp+8) : "r8","r9");
|
||||
}
|
||||
else if (rtype == FFI_IS_SMALL_STRUCT3)
|
||||
{
|
||||
asm volatile ("ld8 r8=[%0]; ld8 r9=[%1]; ld8 r10=[%2]"
|
||||
: : "r" (resp), "r" (resp+8), "r" (resp+16)
|
||||
: "r8","r9","r10");
|
||||
}
|
||||
else if (rtype == FFI_IS_SMALL_STRUCT4)
|
||||
{
|
||||
asm volatile ("ld8 r8=[%0]; ld8 r9=[%1]; ld8 r10=[%2]; ld8 r11=[%3]"
|
||||
: : "r" (resp), "r" (resp+8), "r" (resp+16), "r" (resp+24)
|
||||
: "r8","r9","r10","r11");
|
||||
}
|
||||
else if (rtype != FFI_TYPE_VOID && rtype != FFI_TYPE_STRUCT)
|
||||
{
|
||||
/* Can only happen for homogeneous FP aggregates? */
|
||||
abort();
|
||||
}
|
||||
}
|
||||
|
||||
static void
|
||||
ffi_prep_incoming_args_UNIX(struct ia64_args *args, void **rvalue,
|
||||
void **avalue, ffi_cif *cif)
|
||||
{
|
||||
register unsigned int i;
|
||||
register unsigned int avn;
|
||||
register void **p_argv;
|
||||
register unsigned long *argp = args -> out_regs;
|
||||
unsigned fp_reg_num = 0;
|
||||
register ffi_type **p_arg;
|
||||
|
||||
avn = cif->nargs;
|
||||
p_argv = avalue;
|
||||
|
||||
for (i = cif->nargs, p_arg = cif->arg_types; i != 0; i--, p_arg++)
|
||||
{
|
||||
size_t z; /* In units of words or argument slots. */
|
||||
|
||||
switch ((*p_arg)->type)
|
||||
{
|
||||
case FFI_TYPE_SINT8:
|
||||
case FFI_TYPE_UINT8:
|
||||
case FFI_TYPE_SINT16:
|
||||
case FFI_TYPE_UINT16:
|
||||
case FFI_TYPE_SINT32:
|
||||
case FFI_TYPE_UINT32:
|
||||
case FFI_TYPE_SINT64:
|
||||
case FFI_TYPE_UINT64:
|
||||
case FFI_TYPE_POINTER:
|
||||
z = 1;
|
||||
*p_argv = (void *)argp;
|
||||
break;
|
||||
|
||||
case FFI_TYPE_FLOAT:
|
||||
z = 1;
|
||||
/* Convert argument back to float in place from the saved value */
|
||||
if (fp_reg_num < 8) {
|
||||
*(float *)argp = args -> fp_regs[fp_reg_num++];
|
||||
} else {
|
||||
*(float *)argp = *(double *)argp;
|
||||
}
|
||||
*p_argv = (void *)argp;
|
||||
break;
|
||||
|
||||
case FFI_TYPE_DOUBLE:
|
||||
z = 1;
|
||||
if (fp_reg_num < 8) {
|
||||
*p_argv = args -> fp_regs + fp_reg_num++;
|
||||
} else {
|
||||
*p_argv = (void *)argp;
|
||||
}
|
||||
break;
|
||||
|
||||
case FFI_TYPE_STRUCT:
|
||||
{
|
||||
size_t sz = (*p_arg)->size;
|
||||
unsigned short element_type;
|
||||
z = ((*p_arg)->size + SIZEOF_ARG - 1)/SIZEOF_ARG;
|
||||
if (is_homogeneous_fp_aggregate(*p_arg, 8, &element_type)) {
|
||||
int nelements = sz/float_type_size(element_type);
|
||||
if (nelements + fp_reg_num >= 8) {
|
||||
/* hard case NYI. */
|
||||
abort();
|
||||
}
|
||||
if (element_type == FFI_TYPE_DOUBLE) {
|
||||
*p_argv = args -> fp_regs + fp_reg_num;
|
||||
fp_reg_num += nelements;
|
||||
break;
|
||||
}
|
||||
if (element_type == FFI_TYPE_FLOAT) {
|
||||
int j;
|
||||
for (j = 0; j < nelements; ++ j) {
|
||||
((float *)argp)[j] = args -> fp_regs[fp_reg_num + j];
|
||||
}
|
||||
*p_argv = (void *)argp;
|
||||
fp_reg_num += nelements;
|
||||
break;
|
||||
}
|
||||
abort(); /* Other fp types NYI */
|
||||
}
|
||||
}
|
||||
break;
|
||||
|
||||
default:
|
||||
FFI_ASSERT(0);
|
||||
}
|
||||
|
||||
argp += z;
|
||||
p_argv++;
|
||||
|
||||
}
|
||||
|
||||
return;
|
||||
}
|
||||
|
||||
|
||||
/* Fill in a closure to refer to the specified fun and user_data. */
|
||||
/* cif specifies the argument and result types for fun. */
|
||||
/* the cif must already be prep'ed */
|
||||
|
||||
/* The layout of a function descriptor. A C function pointer really */
|
||||
/* points to one of these. */
|
||||
typedef struct ia64_fd_struct {
|
||||
void *code_pointer;
|
||||
void *gp;
|
||||
} ia64_fd;
|
||||
|
||||
ffi_status
|
||||
ffi_prep_closure (ffi_closure* closure,
|
||||
ffi_cif* cif,
|
||||
void (*fun)(ffi_cif*,void*,void**,void*),
|
||||
void *user_data)
|
||||
{
|
||||
struct ffi_ia64_trampoline_struct *tramp =
|
||||
(struct ffi_ia64_trampoline_struct *) (closure -> tramp);
|
||||
ia64_fd *fd = (ia64_fd *)(void *)ffi_closure_UNIX;
|
||||
|
||||
FFI_ASSERT (cif->abi == FFI_UNIX);
|
||||
|
||||
tramp -> code_pointer = fd -> code_pointer;
|
||||
tramp -> real_gp = fd -> gp;
|
||||
tramp -> fake_gp = closure;
|
||||
closure->cif = cif;
|
||||
closure->user_data = user_data;
|
||||
closure->fun = fun;
|
||||
|
||||
return FFI_OK;
|
||||
}
|
||||
|
||||
|
||||
Reference in New Issue
Block a user