hpux32.S: Correct unwind offset calculation for ffi_closure_pa32.
[official-gcc.git] / libffi / src / pa / ffi.c
blob65f958ff2c1b15575eb7e830aba48ce9106b194a
1 /* -----------------------------------------------------------------------
2 ffi.c - (c) 2003-2004 Randolph Chung <tausq@debian.org>
4 HPPA Foreign Function Interface
5 HP-UX PA ABI support (c) 2006 Free Software Foundation, Inc.
7 Permission is hereby granted, free of charge, to any person obtaining
8 a copy of this software and associated documentation files (the
9 ``Software''), to deal in the Software without restriction, including
10 without limitation the rights to use, copy, modify, merge, publish,
11 distribute, sublicense, and/or sell copies of the Software, and to
12 permit persons to whom the Software is furnished to do so, subject to
13 the following conditions:
15 The above copyright notice and this permission notice shall be included
16 in all copies or substantial portions of the Software.
18 THE SOFTWARE IS PROVIDED ``AS IS'', WITHOUT WARRANTY OF ANY KIND, EXPRESS
19 OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
20 MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
21 IN NO EVENT SHALL CYGNUS SOLUTIONS BE LIABLE FOR ANY CLAIM, DAMAGES OR
22 OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
23 ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
24 OTHER DEALINGS IN THE SOFTWARE.
25 ----------------------------------------------------------------------- */
27 #include <ffi.h>
28 #include <ffi_common.h>
30 #include <stdlib.h>
31 #include <stdio.h>
33 #define ROUND_UP(v, a) (((size_t)(v) + (a) - 1) & ~((a) - 1))
35 #define MIN_STACK_SIZE 64
36 #define FIRST_ARG_SLOT 9
37 #define DEBUG_LEVEL 0
39 #define fldw(addr, fpreg) \
40 __asm__ volatile ("fldw 0(%0), %%" #fpreg "L" : : "r"(addr) : #fpreg)
41 #define fstw(fpreg, addr) \
42 __asm__ volatile ("fstw %%" #fpreg "L, 0(%0)" : : "r"(addr))
43 #define fldd(addr, fpreg) \
44 __asm__ volatile ("fldd 0(%0), %%" #fpreg : : "r"(addr) : #fpreg)
45 #define fstd(fpreg, addr) \
46 __asm__ volatile ("fstd %%" #fpreg "L, 0(%0)" : : "r"(addr))
48 #define debug(lvl, x...) do { if (lvl <= DEBUG_LEVEL) { printf(x); } } while (0)
50 static inline int ffi_struct_type(ffi_type *t)
52 size_t sz = t->size;
54 /* Small structure results are passed in registers,
55 larger ones are passed by pointer. Note that
56 small structures of size 2, 4 and 8 differ from
57 the corresponding integer types in that they have
58 different alignment requirements. */
60 if (sz <= 1)
61 return FFI_TYPE_UINT8;
62 else if (sz == 2)
63 return FFI_TYPE_SMALL_STRUCT2;
64 else if (sz == 3)
65 return FFI_TYPE_SMALL_STRUCT3;
66 else if (sz == 4)
67 return FFI_TYPE_SMALL_STRUCT4;
68 else if (sz == 5)
69 return FFI_TYPE_SMALL_STRUCT5;
70 else if (sz == 6)
71 return FFI_TYPE_SMALL_STRUCT6;
72 else if (sz == 7)
73 return FFI_TYPE_SMALL_STRUCT7;
74 else if (sz <= 8)
75 return FFI_TYPE_SMALL_STRUCT8;
76 else
77 return FFI_TYPE_STRUCT; /* else, we pass it by pointer. */
80 /* PA has a downward growing stack, which looks like this:
82 Offset
83 [ Variable args ]
84 SP = (4*(n+9)) arg word N
85 ...
86 SP-52 arg word 4
87 [ Fixed args ]
88 SP-48 arg word 3
89 SP-44 arg word 2
90 SP-40 arg word 1
91 SP-36 arg word 0
92 [ Frame marker ]
93 ...
94 SP-20 RP
95 SP-4 previous SP
97 The first four argument words on the stack are reserved for use by
98 the callee. Instead, the general and floating registers replace
99 the first four argument slots. Non FP arguments are passed solely
100 in the general registers. FP arguments are passed in both general
101 and floating registers when using libffi.
103 Non-FP 32-bit args are passed in gr26, gr25, gr24 and gr23.
104 Non-FP 64-bit args are passed in register pairs, starting
105 on an odd numbered register (i.e. r25+r26 and r23+r24).
106 FP 32-bit arguments are passed in fr4L, fr5L, fr6L and fr7L.
107 FP 64-bit arguments are passed in fr5 and fr7.
109 The registers are allocated in the same manner as stack slots.
110 This allows the callee to save its arguments on the stack if
111 necessary:
113 arg word 3 -> gr23 or fr7L
114 arg word 2 -> gr24 or fr6L or fr7R
115 arg word 1 -> gr25 or fr5L
116 arg word 0 -> gr26 or fr4L or fr5R
118 Note that fr4R and fr6R are never used for arguments (i.e.,
119 doubles are not passed in fr4 or fr6).
121 The rest of the arguments are passed on the stack starting at SP-52,
122 but 64-bit arguments need to be aligned to an 8-byte boundary
124 This means we can have holes either in the register allocation,
125 or in the stack. */
127 /* ffi_prep_args is called by the assembly routine once stack space
128 has been allocated for the function's arguments
130 The following code will put everything into the stack frame
131 (which was allocated by the asm routine), and on return
132 the asm routine will load the arguments that should be
133 passed by register into the appropriate registers
135 NOTE: We load floating point args in this function... that means we
136 assume gcc will not mess with fp regs in here. */
138 /*@-exportheader@*/
139 void ffi_prep_args_pa32(UINT32 *stack, extended_cif *ecif, unsigned bytes)
140 /*@=exportheader@*/
142 register unsigned int i;
143 register ffi_type **p_arg;
144 register void **p_argv;
145 unsigned int slot = FIRST_ARG_SLOT;
146 char *dest_cpy;
147 size_t len;
149 debug(1, "%s: stack = %p, ecif = %p, bytes = %u\n", __FUNCTION__, stack,
150 ecif, bytes);
152 p_arg = ecif->cif->arg_types;
153 p_argv = ecif->avalue;
155 for (i = 0; i < ecif->cif->nargs; i++)
157 int type = (*p_arg)->type;
159 switch (type)
161 case FFI_TYPE_SINT8:
162 *(SINT32 *)(stack - slot) = *(SINT8 *)(*p_argv);
163 break;
165 case FFI_TYPE_UINT8:
166 *(UINT32 *)(stack - slot) = *(UINT8 *)(*p_argv);
167 break;
169 case FFI_TYPE_SINT16:
170 *(SINT32 *)(stack - slot) = *(SINT16 *)(*p_argv);
171 break;
173 case FFI_TYPE_UINT16:
174 *(UINT32 *)(stack - slot) = *(UINT16 *)(*p_argv);
175 break;
177 case FFI_TYPE_UINT32:
178 case FFI_TYPE_SINT32:
179 case FFI_TYPE_POINTER:
180 debug(3, "Storing UINT32 %u in slot %u\n", *(UINT32 *)(*p_argv),
181 slot);
182 *(UINT32 *)(stack - slot) = *(UINT32 *)(*p_argv);
183 break;
185 case FFI_TYPE_UINT64:
186 case FFI_TYPE_SINT64:
187 /* Align slot for 64-bit type. */
188 slot += (slot & 1) ? 1 : 2;
189 *(UINT64 *)(stack - slot) = *(UINT64 *)(*p_argv);
190 break;
192 case FFI_TYPE_FLOAT:
193 /* First 4 args go in fr4L - fr7L. */
194 debug(3, "Storing UINT32(float) in slot %u\n", slot);
195 *(UINT32 *)(stack - slot) = *(UINT32 *)(*p_argv);
196 switch (slot - FIRST_ARG_SLOT)
198 /* First 4 args go in fr4L - fr7L. */
199 case 0: fldw(*p_argv, fr4); break;
200 case 1: fldw(*p_argv, fr5); break;
201 case 2: fldw(*p_argv, fr6); break;
202 case 3: fldw(*p_argv, fr7); break;
204 break;
206 case FFI_TYPE_DOUBLE:
207 /* Align slot for 64-bit type. */
208 slot += (slot & 1) ? 1 : 2;
209 debug(3, "Storing UINT64(double) at slot %u\n", slot);
210 *(UINT64 *)(stack - slot) = *(UINT64 *)(*p_argv);
211 switch (slot - FIRST_ARG_SLOT)
213 /* First 2 args go in fr5, fr7. */
214 case 1: fldd(*p_argv, fr5); break;
215 case 3: fldd(*p_argv, fr7); break;
217 break;
219 #ifdef PA_HPUX
220 case FFI_TYPE_LONGDOUBLE:
221 /* Long doubles are passed in the same manner as structures
222 larger than 8 bytes. */
223 *(UINT32 *)(stack - slot) = (UINT32)(*p_argv);
224 break;
225 #endif
227 case FFI_TYPE_STRUCT:
229 /* Structs smaller or equal than 4 bytes are passed in one
230 register. Structs smaller or equal 8 bytes are passed in two
231 registers. Larger structures are passed by pointer. */
233 len = (*p_arg)->size;
234 if (len <= 4)
236 dest_cpy = (char *)(stack - slot) + 4 - len;
237 memcpy(dest_cpy, (char *)*p_argv, len);
239 else if (len <= 8)
241 slot += (slot & 1) ? 1 : 2;
242 dest_cpy = (char *)(stack - slot) + 8 - len;
243 memcpy(dest_cpy, (char *)*p_argv, len);
245 else
246 *(UINT32 *)(stack - slot) = (UINT32)(*p_argv);
247 break;
249 default:
250 FFI_ASSERT(0);
253 slot++;
254 p_arg++;
255 p_argv++;
258 /* Make sure we didn't mess up and scribble on the stack. */
260 unsigned int n;
262 debug(5, "Stack setup:\n");
263 for (n = 0; n < (bytes + 3) / 4; n++)
265 if ((n%4) == 0) { debug(5, "\n%08x: ", (unsigned int)(stack - n)); }
266 debug(5, "%08x ", *(stack - n));
268 debug(5, "\n");
271 FFI_ASSERT(slot * 4 <= bytes);
273 return;
276 static void ffi_size_stack_pa32(ffi_cif *cif)
278 ffi_type **ptr;
279 int i;
280 int z = 0; /* # stack slots */
282 for (ptr = cif->arg_types, i = 0; i < cif->nargs; ptr++, i++)
284 int type = (*ptr)->type;
286 switch (type)
288 case FFI_TYPE_DOUBLE:
289 case FFI_TYPE_UINT64:
290 case FFI_TYPE_SINT64:
291 z += 2 + (z & 1); /* must start on even regs, so we may waste one */
292 break;
294 #ifdef PA_HPUX
295 case FFI_TYPE_LONGDOUBLE:
296 #endif
297 case FFI_TYPE_STRUCT:
298 z += 1; /* pass by ptr, callee will copy */
299 break;
301 default: /* <= 32-bit values */
302 z++;
306 /* We can fit up to 6 args in the default 64-byte stack frame,
307 if we need more, we need more stack. */
308 if (z <= 6)
309 cif->bytes = MIN_STACK_SIZE; /* min stack size */
310 else
311 cif->bytes = 64 + ROUND_UP((z - 6) * sizeof(UINT32), MIN_STACK_SIZE);
313 debug(3, "Calculated stack size is %u bytes\n", cif->bytes);
316 /* Perform machine dependent cif processing. */
317 ffi_status ffi_prep_cif_machdep(ffi_cif *cif)
319 /* Set the return type flag */
320 switch (cif->rtype->type)
322 case FFI_TYPE_VOID:
323 case FFI_TYPE_FLOAT:
324 case FFI_TYPE_DOUBLE:
325 cif->flags = (unsigned) cif->rtype->type;
326 break;
328 #ifdef PA_HPUX
329 case FFI_TYPE_LONGDOUBLE:
330 /* Long doubles are treated like a structure. */
331 cif->flags = FFI_TYPE_STRUCT;
332 break;
333 #endif
335 case FFI_TYPE_STRUCT:
336 /* For the return type we have to check the size of the structures.
337 If the size is smaller or equal 4 bytes, the result is given back
338 in one register. If the size is smaller or equal 8 bytes than we
339 return the result in two registers. But if the size is bigger than
340 8 bytes, we work with pointers. */
341 cif->flags = ffi_struct_type(cif->rtype);
342 break;
344 case FFI_TYPE_UINT64:
345 case FFI_TYPE_SINT64:
346 cif->flags = FFI_TYPE_UINT64;
347 break;
349 default:
350 cif->flags = FFI_TYPE_INT;
351 break;
354 /* Lucky us, because of the unique PA ABI we get to do our
355 own stack sizing. */
356 switch (cif->abi)
358 case FFI_PA32:
359 ffi_size_stack_pa32(cif);
360 break;
362 default:
363 FFI_ASSERT(0);
364 break;
367 return FFI_OK;
370 /*@-declundef@*/
371 /*@-exportheader@*/
372 extern void ffi_call_pa32(void (*)(UINT32 *, extended_cif *, unsigned),
373 /*@out@*/ extended_cif *,
374 unsigned, unsigned,
375 /*@out@*/ unsigned *,
376 void (*fn)());
377 /*@=declundef@*/
378 /*@=exportheader@*/
380 void ffi_call(/*@dependent@*/ ffi_cif *cif,
381 void (*fn)(),
382 /*@out@*/ void *rvalue,
383 /*@dependent@*/ void **avalue)
385 extended_cif ecif;
387 ecif.cif = cif;
388 ecif.avalue = avalue;
390 /* If the return value is a struct and we don't have a return
391 value address then we need to make one. */
393 if (rvalue == NULL
394 #ifdef PA_HPUX
395 && (cif->rtype->type == FFI_TYPE_STRUCT
396 || cif->rtype->type == FFI_TYPE_LONGDOUBLE))
397 #else
398 && cif->rtype->type == FFI_TYPE_STRUCT)
399 #endif
401 /*@-sysunrecog@*/
402 ecif.rvalue = alloca(cif->rtype->size);
403 /*@=sysunrecog@*/
405 else
406 ecif.rvalue = rvalue;
409 switch (cif->abi)
411 case FFI_PA32:
412 /*@-usedef@*/
413 debug(3, "Calling ffi_call_pa32: ecif=%p, bytes=%u, flags=%u, rvalue=%p, fn=%p\n", &ecif, cif->bytes, cif->flags, ecif.rvalue, (void *)fn);
414 ffi_call_pa32(ffi_prep_args_pa32, &ecif, cif->bytes,
415 cif->flags, ecif.rvalue, fn);
416 /*@=usedef@*/
417 break;
419 default:
420 FFI_ASSERT(0);
421 break;
425 #if FFI_CLOSURES
426 /* This is more-or-less an inverse of ffi_call -- we have arguments on
427 the stack, and we need to fill them into a cif structure and invoke
428 the user function. This really ought to be in asm to make sure
429 the compiler doesn't do things we don't expect. */
430 ffi_status ffi_closure_inner_pa32(ffi_closure *closure, UINT32 *stack)
432 ffi_cif *cif;
433 void **avalue;
434 void *rvalue;
435 UINT32 ret[2]; /* function can return up to 64-bits in registers */
436 ffi_type **p_arg;
437 char *tmp;
438 int i, avn;
439 unsigned int slot = FIRST_ARG_SLOT;
440 register UINT32 r28 asm("r28");
442 cif = closure->cif;
444 /* If returning via structure, callee will write to our pointer. */
445 if (cif->flags == FFI_TYPE_STRUCT)
446 rvalue = (void *)r28;
447 else
448 rvalue = &ret[0];
450 avalue = (void **)alloca(cif->nargs * FFI_SIZEOF_ARG);
451 avn = cif->nargs;
452 p_arg = cif->arg_types;
454 for (i = 0; i < avn; i++)
456 int type = (*p_arg)->type;
458 switch (type)
460 case FFI_TYPE_SINT8:
461 case FFI_TYPE_UINT8:
462 case FFI_TYPE_SINT16:
463 case FFI_TYPE_UINT16:
464 case FFI_TYPE_SINT32:
465 case FFI_TYPE_UINT32:
466 case FFI_TYPE_POINTER:
467 avalue[i] = (char *)(stack - slot) + sizeof(UINT32) - (*p_arg)->size;
468 break;
470 case FFI_TYPE_SINT64:
471 case FFI_TYPE_UINT64:
472 slot += (slot & 1) ? 1 : 2;
473 avalue[i] = (void *)(stack - slot);
474 break;
476 case FFI_TYPE_FLOAT:
477 #ifdef PA_LINUX
478 /* The closure call is indirect. In Linux, floating point
479 arguments in indirect calls with a prototype are passed
480 in the floating point registers instead of the general
481 registers. So, we need to replace what was previously
482 stored in the current slot with the value in the
483 corresponding floating point register. */
484 switch (slot - FIRST_ARG_SLOT)
486 case 0: fstw(fr4, (void *)(stack - slot)); break;
487 case 1: fstw(fr5, (void *)(stack - slot)); break;
488 case 2: fstw(fr6, (void *)(stack - slot)); break;
489 case 3: fstw(fr7, (void *)(stack - slot)); break;
491 #endif
492 avalue[i] = (void *)(stack - slot);
493 break;
495 case FFI_TYPE_DOUBLE:
496 slot += (slot & 1) ? 1 : 2;
497 #ifdef PA_LINUX
498 /* See previous comment for FFI_TYPE_FLOAT. */
499 switch (slot - FIRST_ARG_SLOT)
501 case 1: fstd(fr5, (void *)(stack - slot)); break;
502 case 3: fstd(fr7, (void *)(stack - slot)); break;
504 #endif
505 avalue[i] = (void *)(stack - slot);
506 break;
508 case FFI_TYPE_STRUCT:
509 /* Structs smaller or equal than 4 bytes are passed in one
510 register. Structs smaller or equal 8 bytes are passed in two
511 registers. Larger structures are passed by pointer. */
512 if((*p_arg)->size <= 4)
514 avalue[i] = (void *)(stack - slot) + sizeof(UINT32) -
515 (*p_arg)->size;
517 else if ((*p_arg)->size <= 8)
519 slot += (slot & 1) ? 1 : 2;
520 avalue[i] = (void *)(stack - slot) + sizeof(UINT64) -
521 (*p_arg)->size;
523 else
524 avalue[i] = (void *) *(stack - slot);
525 break;
527 default:
528 FFI_ASSERT(0);
531 slot++;
532 p_arg++;
535 /* Invoke the closure. */
536 (closure->fun) (cif, rvalue, avalue, closure->user_data);
538 debug(3, "after calling function, ret[0] = %08x, ret[1] = %08x\n", ret[0],
539 ret[1]);
541 /* Store the result using the lower 2 bytes of the flags. */
542 switch (cif->flags)
544 case FFI_TYPE_UINT8:
545 *(stack - FIRST_ARG_SLOT) = (UINT8)(ret[0] >> 24);
546 break;
547 case FFI_TYPE_SINT8:
548 *(stack - FIRST_ARG_SLOT) = (SINT8)(ret[0] >> 24);
549 break;
550 case FFI_TYPE_UINT16:
551 *(stack - FIRST_ARG_SLOT) = (UINT16)(ret[0] >> 16);
552 break;
553 case FFI_TYPE_SINT16:
554 *(stack - FIRST_ARG_SLOT) = (SINT16)(ret[0] >> 16);
555 break;
556 case FFI_TYPE_INT:
557 case FFI_TYPE_SINT32:
558 case FFI_TYPE_UINT32:
559 *(stack - FIRST_ARG_SLOT) = ret[0];
560 break;
561 case FFI_TYPE_SINT64:
562 case FFI_TYPE_UINT64:
563 *(stack - FIRST_ARG_SLOT) = ret[0];
564 *(stack - FIRST_ARG_SLOT - 1) = ret[1];
565 break;
567 case FFI_TYPE_DOUBLE:
568 fldd(rvalue, fr4);
569 break;
571 case FFI_TYPE_FLOAT:
572 fldw(rvalue, fr4);
573 break;
575 case FFI_TYPE_STRUCT:
576 /* Don't need a return value, done by caller. */
577 break;
579 case FFI_TYPE_SMALL_STRUCT2:
580 case FFI_TYPE_SMALL_STRUCT3:
581 case FFI_TYPE_SMALL_STRUCT4:
582 tmp = (void*)(stack - FIRST_ARG_SLOT);
583 tmp += 4 - cif->rtype->size;
584 memcpy((void*)tmp, &ret[0], cif->rtype->size);
585 break;
587 case FFI_TYPE_SMALL_STRUCT5:
588 case FFI_TYPE_SMALL_STRUCT6:
589 case FFI_TYPE_SMALL_STRUCT7:
590 case FFI_TYPE_SMALL_STRUCT8:
592 unsigned int ret2[2];
593 int off;
595 /* Right justify ret[0] and ret[1] */
596 switch (cif->flags)
598 case FFI_TYPE_SMALL_STRUCT5: off = 3; break;
599 case FFI_TYPE_SMALL_STRUCT6: off = 2; break;
600 case FFI_TYPE_SMALL_STRUCT7: off = 1; break;
601 default: off = 0; break;
604 memset (ret2, 0, sizeof (ret2));
605 memcpy ((char *)ret2 + off, ret, 8 - off);
607 *(stack - FIRST_ARG_SLOT) = ret2[0];
608 *(stack - FIRST_ARG_SLOT - 1) = ret2[1];
610 break;
612 case FFI_TYPE_POINTER:
613 case FFI_TYPE_VOID:
614 break;
616 default:
617 debug(0, "assert with cif->flags: %d\n",cif->flags);
618 FFI_ASSERT(0);
619 break;
621 return FFI_OK;
624 /* Fill in a closure to refer to the specified fun and user_data.
625 cif specifies the argument and result types for fun.
626 The cif must already be prep'ed. */
628 extern void ffi_closure_pa32(void);
630 ffi_status
631 ffi_prep_closure (ffi_closure* closure,
632 ffi_cif* cif,
633 void (*fun)(ffi_cif*,void*,void**,void*),
634 void *user_data)
636 UINT32 *tramp = (UINT32 *)(closure->tramp);
637 #ifdef PA_HPUX
638 UINT32 *tmp;
639 #endif
641 FFI_ASSERT (cif->abi == FFI_PA32);
643 /* Make a small trampoline that will branch to our
644 handler function. Use PC-relative addressing. */
646 #ifdef PA_LINUX
647 tramp[0] = 0xeaa00000; /* b,l .+8,%r21 ; %r21 <- pc+8 */
648 tramp[1] = 0xd6a01c1e; /* depi 0,31,2,%r21 ; mask priv bits */
649 tramp[2] = 0x4aa10028; /* ldw 20(%r21),%r1 ; load plabel */
650 tramp[3] = 0x36b53ff1; /* ldo -8(%r21),%r21 ; get closure addr */
651 tramp[4] = 0x0c201096; /* ldw 0(%r1),%r22 ; address of handler */
652 tramp[5] = 0xeac0c000; /* bv%r0(%r22) ; branch to handler */
653 tramp[6] = 0x0c281093; /* ldw 4(%r1),%r19 ; GP of handler */
654 tramp[7] = ((UINT32)(ffi_closure_pa32) & ~2);
656 /* Flush d/icache -- have to flush up 2 two lines because of
657 alignment. */
658 __asm__ volatile(
659 "fdc 0(%0)\n\t"
660 "fdc %1(%0)\n\t"
661 "fic 0(%%sr4, %0)\n\t"
662 "fic %1(%%sr4, %0)\n\t"
663 "sync\n\t"
664 "nop\n\t"
665 "nop\n\t"
666 "nop\n\t"
667 "nop\n\t"
668 "nop\n\t"
669 "nop\n\t"
670 "nop\n"
672 : "r"((unsigned long)tramp & ~31),
673 "r"(32 /* stride */)
674 : "memory");
675 #endif
677 #ifdef PA_HPUX
678 tramp[0] = 0xeaa00000; /* b,l .+8,%r21 ; %r21 <- pc+8 */
679 tramp[1] = 0xd6a01c1e; /* depi 0,31,2,%r21 ; mask priv bits */
680 tramp[2] = 0x4aa10038; /* ldw 28(%r21),%r1 ; load plabel */
681 tramp[3] = 0x36b53ff1; /* ldo -8(%r21),%r21 ; get closure addr */
682 tramp[4] = 0x0c201096; /* ldw 0(%r1),%r22 ; address of handler */
683 tramp[5] = 0x02c010b4; /* ldsid (%r22),%r20 ; load space id */
684 tramp[6] = 0x00141820; /* mtsp %r20,%sr0 ; into %sr0 */
685 tramp[7] = 0xe2c00000; /* be 0(%sr0,%r22) ; branch to handler */
686 tramp[8] = 0x0c281093; /* ldw 4(%r1),%r19 ; GP of handler */
687 tramp[9] = ((UINT32)(ffi_closure_pa32) & ~2);
689 /* Flush d/icache -- have to flush three lines because of alignment. */
690 __asm__ volatile(
691 "copy %1,%0\n\t"
692 "fdc,m %2(%0)\n\t"
693 "fdc,m %2(%0)\n\t"
694 "fdc,m %2(%0)\n\t"
695 "ldsid (%1),%0\n\t"
696 "mtsp %0,%%sr0\n\t"
697 "copy %1,%0\n\t"
698 "fic,m %2(%%sr0,%0)\n\t"
699 "fic,m %2(%%sr0,%0)\n\t"
700 "fic,m %2(%%sr0,%0)\n\t"
701 "sync\n\t"
702 "nop\n\t"
703 "nop\n\t"
704 "nop\n\t"
705 "nop\n\t"
706 "nop\n\t"
707 "nop\n\t"
708 "nop\n"
709 : "=&r" ((unsigned long)tmp)
710 : "r" ((unsigned long)tramp & ~31),
711 "r" (32/* stride */)
712 : "memory");
713 #endif
715 closure->cif = cif;
716 closure->user_data = user_data;
717 closure->fun = fun;
719 return FFI_OK;
721 #endif