* infcall.c (call_function_by_hand): Function return value is
[deliverable/binutils-gdb.git] / gdb / ppc-sysv-tdep.c
CommitLineData
7b112f9c
JT
1/* Target-dependent code for PowerPC systems using the SVR4 ABI
2 for GDB, the GNU debugger.
3
7b6bb8da 4 Copyright (C) 2000, 2001, 2002, 2003, 2005, 2007, 2008, 2009, 2010, 2011
65ada037 5 Free Software Foundation, Inc.
7b112f9c
JT
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
a9762ec7 11 the Free Software Foundation; either version 3 of the License, or
7b112f9c
JT
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
a9762ec7 20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
7b112f9c
JT
21
22#include "defs.h"
23#include "gdbcore.h"
24#include "inferior.h"
25#include "regcache.h"
26#include "value.h"
bdf64bac 27#include "gdb_string.h"
8be9034a 28#include "gdb_assert.h"
7b112f9c 29#include "ppc-tdep.h"
6066c3de 30#include "target.h"
0a90bcdd 31#include "objfiles.h"
7d9b040b 32#include "infcall.h"
54fcddd0 33#include "dwarf2.h"
7b112f9c 34
0df8b418 35/* Pass the arguments in either registers, or in the stack. Using the
7b112f9c
JT
36 ppc sysv ABI, the first eight words of the argument list (that might
37 be less than eight parameters if some parameters occupy more than one
38 word) are passed in r3..r10 registers. float and double parameters are
0df8b418
MS
39 passed in fpr's, in addition to that. Rest of the parameters if any
40 are passed in user stack.
7b112f9c
JT
41
42 If the function is returning a structure, then the return address is passed
43 in r3, then the first 7 words of the parametes can be passed in registers,
0df8b418 44 starting from r4. */
7b112f9c
JT
45
46CORE_ADDR
7d9b040b 47ppc_sysv_abi_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
77b2b6d4
AC
48 struct regcache *regcache, CORE_ADDR bp_addr,
49 int nargs, struct value **args, CORE_ADDR sp,
50 int struct_return, CORE_ADDR struct_addr)
7b112f9c 51{
40a6adc1 52 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
e17a4113 53 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
54fcddd0
UW
54 struct type *ftype;
55 int opencl_abi = 0;
fb4443d8 56 ULONGEST saved_sp;
68856ea3
AC
57 int argspace = 0; /* 0 is an initial wrong guess. */
58 int write_pass;
7b112f9c 59
b14d30e1
JM
60 gdb_assert (tdep->wordsize == 4);
61
40a6adc1 62 regcache_cooked_read_unsigned (regcache, gdbarch_sp_regnum (gdbarch),
3e8c568d 63 &saved_sp);
fb4443d8 64
54fcddd0
UW
65 ftype = check_typedef (value_type (function));
66 if (TYPE_CODE (ftype) == TYPE_CODE_PTR)
67 ftype = check_typedef (TYPE_TARGET_TYPE (ftype));
68 if (TYPE_CODE (ftype) == TYPE_CODE_FUNC
69 && TYPE_CALLING_CONVENTION (ftype) == DW_CC_GDB_IBM_OpenCL)
70 opencl_abi = 1;
71
68856ea3 72 /* Go through the argument list twice.
7b112f9c 73
68856ea3
AC
74 Pass 1: Figure out how much new stack space is required for
75 arguments and pushed values. Unlike the PowerOpen ABI, the SysV
76 ABI doesn't reserve any extra space for parameters which are put
77 in registers, but does always push structures and then pass their
78 address.
7a41266b 79
68856ea3
AC
80 Pass 2: Replay the same computation but this time also write the
81 values out to the target. */
7b112f9c 82
68856ea3
AC
83 for (write_pass = 0; write_pass < 2; write_pass++)
84 {
85 int argno;
86 /* Next available floating point register for float and double
87 arguments. */
88 int freg = 1;
89 /* Next available general register for non-float, non-vector
90 arguments. */
91 int greg = 3;
92 /* Next available vector register for vector arguments. */
93 int vreg = 2;
94 /* Arguments start above the "LR save word" and "Back chain". */
95 int argoffset = 2 * tdep->wordsize;
96 /* Structures start after the arguments. */
97 int structoffset = argoffset + argspace;
98
99 /* If the function is returning a `struct', then the first word
944fcfab
AC
100 (which will be passed in r3) is used for struct return
101 address. In that case we should advance one word and start
102 from r4 register to copy parameters. */
68856ea3 103 if (struct_return)
7b112f9c 104 {
68856ea3
AC
105 if (write_pass)
106 regcache_cooked_write_signed (regcache,
107 tdep->ppc_gp0_regnum + greg,
108 struct_addr);
109 greg++;
7b112f9c 110 }
68856ea3
AC
111
112 for (argno = 0; argno < nargs; argno++)
7b112f9c 113 {
68856ea3 114 struct value *arg = args[argno];
df407dfe 115 struct type *type = check_typedef (value_type (arg));
68856ea3 116 int len = TYPE_LENGTH (type);
0fd88904 117 const bfd_byte *val = value_contents (arg);
68856ea3 118
55eddb0f
DJ
119 if (TYPE_CODE (type) == TYPE_CODE_FLT && len <= 8
120 && !tdep->soft_float)
7b112f9c 121 {
68856ea3 122 /* Floating point value converted to "double" then
944fcfab
AC
123 passed in an FP register, when the registers run out,
124 8 byte aligned stack is used. */
68856ea3
AC
125 if (freg <= 8)
126 {
127 if (write_pass)
128 {
129 /* Always store the floating point value using
944fcfab 130 the register's floating-point format. */
50fd1280 131 gdb_byte regval[MAX_REGISTER_SIZE];
68856ea3 132 struct type *regtype
366f009f 133 = register_type (gdbarch, tdep->ppc_fp0_regnum + freg);
68856ea3 134 convert_typed_floating (val, type, regval, regtype);
366f009f
JB
135 regcache_cooked_write (regcache,
136 tdep->ppc_fp0_regnum + freg,
68856ea3
AC
137 regval);
138 }
139 freg++;
140 }
7b112f9c
JT
141 else
142 {
f964a756
MK
143 /* The SysV ABI tells us to convert floats to
144 doubles before writing them to an 8 byte aligned
145 stack location. Unfortunately GCC does not do
146 that, and stores floats into 4 byte aligned
147 locations without converting them to doubles.
148 Since there is no know compiler that actually
149 follows the ABI here, we implement the GCC
150 convention. */
151
152 /* Align to 4 bytes or 8 bytes depending on the type of
153 the argument (float or double). */
154 argoffset = align_up (argoffset, len);
68856ea3 155 if (write_pass)
68856ea3 156 write_memory (sp + argoffset, val, len);
f964a756 157 argoffset += len;
7b112f9c
JT
158 }
159 }
b14d30e1
JM
160 else if (TYPE_CODE (type) == TYPE_CODE_FLT
161 && len == 16
162 && !tdep->soft_float
40a6adc1 163 && (gdbarch_long_double_format (gdbarch)
b14d30e1
JM
164 == floatformats_ibm_long_double))
165 {
166 /* IBM long double passed in two FP registers if
167 available, otherwise 8-byte aligned stack. */
168 if (freg <= 7)
169 {
170 if (write_pass)
171 {
172 regcache_cooked_write (regcache,
173 tdep->ppc_fp0_regnum + freg,
174 val);
175 regcache_cooked_write (regcache,
176 tdep->ppc_fp0_regnum + freg + 1,
177 val + 8);
178 }
179 freg += 2;
180 }
181 else
182 {
183 argoffset = align_up (argoffset, 8);
184 if (write_pass)
185 write_memory (sp + argoffset, val, len);
186 argoffset += 16;
187 }
188 }
55eddb0f
DJ
189 else if (len == 8
190 && (TYPE_CODE (type) == TYPE_CODE_INT /* long long */
00fbcec4
JM
191 || TYPE_CODE (type) == TYPE_CODE_FLT /* double */
192 || (TYPE_CODE (type) == TYPE_CODE_DECFLOAT
193 && tdep->soft_float)))
7b112f9c 194 {
00fbcec4
JM
195 /* "long long" or soft-float "double" or "_Decimal64"
196 passed in an odd/even register pair with the low
197 addressed word in the odd register and the high
198 addressed word in the even register, or when the
199 registers run out an 8 byte aligned stack
200 location. */
68856ea3
AC
201 if (greg > 9)
202 {
203 /* Just in case GREG was 10. */
204 greg = 11;
205 argoffset = align_up (argoffset, 8);
206 if (write_pass)
207 write_memory (sp + argoffset, val, len);
208 argoffset += 8;
209 }
68856ea3
AC
210 else
211 {
212 /* Must start on an odd register - r3/r4 etc. */
213 if ((greg & 1) == 0)
214 greg++;
215 if (write_pass)
216 {
217 regcache_cooked_write (regcache,
218 tdep->ppc_gp0_regnum + greg + 0,
219 val + 0);
220 regcache_cooked_write (regcache,
221 tdep->ppc_gp0_regnum + greg + 1,
222 val + 4);
223 }
224 greg += 2;
225 }
7b112f9c 226 }
00fbcec4
JM
227 else if (len == 16
228 && ((TYPE_CODE (type) == TYPE_CODE_FLT
229 && (gdbarch_long_double_format (gdbarch)
230 == floatformats_ibm_long_double))
231 || (TYPE_CODE (type) == TYPE_CODE_DECFLOAT
232 && tdep->soft_float)))
b14d30e1 233 {
00fbcec4
JM
234 /* Soft-float IBM long double or _Decimal128 passed in
235 four consecutive registers, or on the stack. The
236 registers are not necessarily odd/even pairs. */
b14d30e1
JM
237 if (greg > 7)
238 {
239 greg = 11;
240 argoffset = align_up (argoffset, 8);
241 if (write_pass)
242 write_memory (sp + argoffset, val, len);
243 argoffset += 16;
244 }
245 else
246 {
247 if (write_pass)
248 {
249 regcache_cooked_write (regcache,
250 tdep->ppc_gp0_regnum + greg + 0,
251 val + 0);
252 regcache_cooked_write (regcache,
253 tdep->ppc_gp0_regnum + greg + 1,
254 val + 4);
255 regcache_cooked_write (regcache,
256 tdep->ppc_gp0_regnum + greg + 2,
257 val + 8);
258 regcache_cooked_write (regcache,
259 tdep->ppc_gp0_regnum + greg + 3,
260 val + 12);
261 }
262 greg += 4;
263 }
264 }
1300a2f4
TJB
265 else if (TYPE_CODE (type) == TYPE_CODE_DECFLOAT && len <= 8
266 && !tdep->soft_float)
267 {
268 /* 32-bit and 64-bit decimal floats go in f1 .. f8. They can
269 end up in memory. */
270
271 if (freg <= 8)
272 {
273 if (write_pass)
274 {
275 gdb_byte regval[MAX_REGISTER_SIZE];
276 const gdb_byte *p;
277
278 /* 32-bit decimal floats are right aligned in the
279 doubleword. */
280 if (TYPE_LENGTH (type) == 4)
281 {
282 memcpy (regval + 4, val, 4);
283 p = regval;
284 }
285 else
286 p = val;
287
288 regcache_cooked_write (regcache,
289 tdep->ppc_fp0_regnum + freg, p);
290 }
291
292 freg++;
293 }
294 else
295 {
296 argoffset = align_up (argoffset, len);
297
298 if (write_pass)
299 /* Write value in the stack's parameter save area. */
300 write_memory (sp + argoffset, val, len);
301
302 argoffset += len;
303 }
304 }
305 else if (TYPE_CODE (type) == TYPE_CODE_DECFLOAT && len == 16
306 && !tdep->soft_float)
307 {
308 /* 128-bit decimal floats go in f2 .. f7, always in even/odd
309 pairs. They can end up in memory, using two doublewords. */
310
311 if (freg <= 6)
312 {
313 /* Make sure freg is even. */
314 freg += freg & 1;
315
316 if (write_pass)
317 {
318 regcache_cooked_write (regcache,
319 tdep->ppc_fp0_regnum + freg, val);
320 regcache_cooked_write (regcache,
321 tdep->ppc_fp0_regnum + freg + 1, val + 8);
322 }
323 }
324 else
325 {
326 argoffset = align_up (argoffset, 8);
327
328 if (write_pass)
329 write_memory (sp + argoffset, val, 16);
330
331 argoffset += 16;
332 }
333
334 /* If a 128-bit decimal float goes to the stack because only f7
335 and f8 are free (thus there's no even/odd register pair
336 available), these registers should be marked as occupied.
337 Hence we increase freg even when writing to memory. */
338 freg += 2;
339 }
54fcddd0
UW
340 else if (len < 16
341 && TYPE_CODE (type) == TYPE_CODE_ARRAY
342 && TYPE_VECTOR (type)
343 && opencl_abi)
344 {
345 /* OpenCL vectors shorter than 16 bytes are passed as if
346 a series of independent scalars. */
347 struct type *eltype = check_typedef (TYPE_TARGET_TYPE (type));
348 int i, nelt = TYPE_LENGTH (type) / TYPE_LENGTH (eltype);
349
350 for (i = 0; i < nelt; i++)
351 {
352 const gdb_byte *elval = val + i * TYPE_LENGTH (eltype);
353
354 if (TYPE_CODE (eltype) == TYPE_CODE_FLT && !tdep->soft_float)
355 {
356 if (freg <= 8)
357 {
358 if (write_pass)
359 {
360 int regnum = tdep->ppc_fp0_regnum + freg;
361 gdb_byte regval[MAX_REGISTER_SIZE];
362 struct type *regtype
363 = register_type (gdbarch, regnum);
364 convert_typed_floating (elval, eltype,
365 regval, regtype);
366 regcache_cooked_write (regcache, regnum, regval);
367 }
368 freg++;
369 }
370 else
371 {
372 argoffset = align_up (argoffset, len);
373 if (write_pass)
374 write_memory (sp + argoffset, val, len);
375 argoffset += len;
376 }
377 }
378 else if (TYPE_LENGTH (eltype) == 8)
379 {
380 if (greg > 9)
381 {
382 /* Just in case GREG was 10. */
383 greg = 11;
384 argoffset = align_up (argoffset, 8);
385 if (write_pass)
386 write_memory (sp + argoffset, elval,
387 TYPE_LENGTH (eltype));
388 argoffset += 8;
389 }
390 else
391 {
392 /* Must start on an odd register - r3/r4 etc. */
393 if ((greg & 1) == 0)
394 greg++;
395 if (write_pass)
396 {
397 int regnum = tdep->ppc_gp0_regnum + greg;
398 regcache_cooked_write (regcache,
399 regnum + 0, elval + 0);
400 regcache_cooked_write (regcache,
401 regnum + 1, elval + 4);
402 }
403 greg += 2;
404 }
405 }
406 else
407 {
408 gdb_byte word[MAX_REGISTER_SIZE];
409 store_unsigned_integer (word, tdep->wordsize, byte_order,
410 unpack_long (eltype, elval));
411
412 if (greg <= 10)
413 {
414 if (write_pass)
415 regcache_cooked_write (regcache,
416 tdep->ppc_gp0_regnum + greg,
417 word);
418 greg++;
419 }
420 else
421 {
422 argoffset = align_up (argoffset, tdep->wordsize);
423 if (write_pass)
424 write_memory (sp + argoffset, word, tdep->wordsize);
425 argoffset += tdep->wordsize;
426 }
427 }
428 }
429 }
430 else if (len >= 16
431 && TYPE_CODE (type) == TYPE_CODE_ARRAY
432 && TYPE_VECTOR (type)
433 && opencl_abi)
434 {
435 /* OpenCL vectors 16 bytes or longer are passed as if
436 a series of AltiVec vectors. */
437 int i;
438
439 for (i = 0; i < len / 16; i++)
440 {
441 const gdb_byte *elval = val + i * 16;
442
443 if (vreg <= 13)
444 {
445 if (write_pass)
446 regcache_cooked_write (regcache,
447 tdep->ppc_vr0_regnum + vreg,
448 elval);
449 vreg++;
450 }
451 else
452 {
453 argoffset = align_up (argoffset, 16);
454 if (write_pass)
455 write_memory (sp + argoffset, elval, 16);
456 argoffset += 16;
457 }
458 }
459 }
68856ea3
AC
460 else if (len == 16
461 && TYPE_CODE (type) == TYPE_CODE_ARRAY
55eddb0f
DJ
462 && TYPE_VECTOR (type)
463 && tdep->vector_abi == POWERPC_VEC_ALTIVEC)
7b112f9c 464 {
68856ea3 465 /* Vector parameter passed in an Altivec register, or
944fcfab 466 when that runs out, 16 byte aligned stack location. */
7b112f9c
JT
467 if (vreg <= 13)
468 {
68856ea3 469 if (write_pass)
9c9acae0 470 regcache_cooked_write (regcache,
944fcfab 471 tdep->ppc_vr0_regnum + vreg, val);
7b112f9c
JT
472 vreg++;
473 }
474 else
475 {
68856ea3
AC
476 argoffset = align_up (argoffset, 16);
477 if (write_pass)
478 write_memory (sp + argoffset, val, 16);
7b112f9c
JT
479 argoffset += 16;
480 }
481 }
944fcfab 482 else if (len == 8
0a613259 483 && TYPE_CODE (type) == TYPE_CODE_ARRAY
55eddb0f
DJ
484 && TYPE_VECTOR (type)
485 && tdep->vector_abi == POWERPC_VEC_SPE)
944fcfab 486 {
68856ea3 487 /* Vector parameter passed in an e500 register, or when
944fcfab
AC
488 that runs out, 8 byte aligned stack location. Note
489 that since e500 vector and general purpose registers
490 both map onto the same underlying register set, a
491 "greg" and not a "vreg" is consumed here. A cooked
492 write stores the value in the correct locations
493 within the raw register cache. */
494 if (greg <= 10)
495 {
68856ea3 496 if (write_pass)
9c9acae0 497 regcache_cooked_write (regcache,
944fcfab
AC
498 tdep->ppc_ev0_regnum + greg, val);
499 greg++;
500 }
501 else
502 {
68856ea3
AC
503 argoffset = align_up (argoffset, 8);
504 if (write_pass)
505 write_memory (sp + argoffset, val, 8);
944fcfab
AC
506 argoffset += 8;
507 }
508 }
68856ea3
AC
509 else
510 {
511 /* Reduce the parameter down to something that fits in a
944fcfab 512 "word". */
50fd1280 513 gdb_byte word[MAX_REGISTER_SIZE];
68856ea3
AC
514 memset (word, 0, MAX_REGISTER_SIZE);
515 if (len > tdep->wordsize
516 || TYPE_CODE (type) == TYPE_CODE_STRUCT
517 || TYPE_CODE (type) == TYPE_CODE_UNION)
518 {
55eddb0f 519 /* Structs and large values are put in an
0df8b418 520 aligned stack slot ... */
55eddb0f
DJ
521 if (TYPE_CODE (type) == TYPE_CODE_ARRAY
522 && TYPE_VECTOR (type)
523 && len >= 16)
524 structoffset = align_up (structoffset, 16);
525 else
526 structoffset = align_up (structoffset, 8);
527
68856ea3
AC
528 if (write_pass)
529 write_memory (sp + structoffset, val, len);
530 /* ... and then a "word" pointing to that address is
944fcfab 531 passed as the parameter. */
e17a4113 532 store_unsigned_integer (word, tdep->wordsize, byte_order,
68856ea3
AC
533 sp + structoffset);
534 structoffset += len;
535 }
536 else if (TYPE_CODE (type) == TYPE_CODE_INT)
537 /* Sign or zero extend the "int" into a "word". */
e17a4113 538 store_unsigned_integer (word, tdep->wordsize, byte_order,
68856ea3
AC
539 unpack_long (type, val));
540 else
541 /* Always goes in the low address. */
542 memcpy (word, val, len);
543 /* Store that "word" in a register, or on the stack.
944fcfab 544 The words have "4" byte alignment. */
68856ea3
AC
545 if (greg <= 10)
546 {
547 if (write_pass)
548 regcache_cooked_write (regcache,
944fcfab 549 tdep->ppc_gp0_regnum + greg, word);
68856ea3
AC
550 greg++;
551 }
552 else
553 {
554 argoffset = align_up (argoffset, tdep->wordsize);
555 if (write_pass)
556 write_memory (sp + argoffset, word, tdep->wordsize);
557 argoffset += tdep->wordsize;
558 }
559 }
560 }
561
562 /* Compute the actual stack space requirements. */
563 if (!write_pass)
564 {
565 /* Remember the amount of space needed by the arguments. */
566 argspace = argoffset;
567 /* Allocate space for both the arguments and the structures. */
568 sp -= (argoffset + structoffset);
569 /* Ensure that the stack is still 16 byte aligned. */
570 sp = align_down (sp, 16);
571 }
65ada037
MK
572
573 /* The psABI says that "A caller of a function that takes a
574 variable argument list shall set condition register bit 6 to
575 1 if it passes one or more arguments in the floating-point
0df8b418 576 registers. It is strongly recommended that the caller set the
65ada037
MK
577 bit to 0 otherwise..." Doing this for normal functions too
578 shouldn't hurt. */
579 if (write_pass)
580 {
581 ULONGEST cr;
582
583 regcache_cooked_read_unsigned (regcache, tdep->ppc_cr_regnum, &cr);
584 if (freg > 1)
585 cr |= 0x02000000;
586 else
587 cr &= ~0x02000000;
588 regcache_cooked_write_unsigned (regcache, tdep->ppc_cr_regnum, cr);
589 }
7b112f9c
JT
590 }
591
68856ea3 592 /* Update %sp. */
40a6adc1 593 regcache_cooked_write_signed (regcache, gdbarch_sp_regnum (gdbarch), sp);
68856ea3
AC
594
595 /* Write the backchain (it occupies WORDSIZED bytes). */
e17a4113 596 write_memory_signed_integer (sp, tdep->wordsize, byte_order, saved_sp);
68856ea3 597
e56a0ecc
AC
598 /* Point the inferior function call's return address at the dummy's
599 breakpoint. */
68856ea3 600 regcache_cooked_write_signed (regcache, tdep->ppc_lr_regnum, bp_addr);
e56a0ecc 601
7b112f9c
JT
602 return sp;
603}
604
1300a2f4
TJB
605/* Handle the return-value conventions for Decimal Floating Point values
606 in both ppc32 and ppc64, which are the same. */
607static int
608get_decimal_float_return_value (struct gdbarch *gdbarch, struct type *valtype,
609 struct regcache *regcache, gdb_byte *readbuf,
610 const gdb_byte *writebuf)
611{
612 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
613
614 gdb_assert (TYPE_CODE (valtype) == TYPE_CODE_DECFLOAT);
615
616 /* 32-bit and 64-bit decimal floats in f1. */
617 if (TYPE_LENGTH (valtype) <= 8)
618 {
619 if (writebuf != NULL)
620 {
621 gdb_byte regval[MAX_REGISTER_SIZE];
622 const gdb_byte *p;
623
624 /* 32-bit decimal float is right aligned in the doubleword. */
625 if (TYPE_LENGTH (valtype) == 4)
626 {
627 memcpy (regval + 4, writebuf, 4);
628 p = regval;
629 }
630 else
631 p = writebuf;
632
633 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 1, p);
634 }
635 if (readbuf != NULL)
636 {
637 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 1, readbuf);
638
639 /* Left align 32-bit decimal float. */
640 if (TYPE_LENGTH (valtype) == 4)
641 memcpy (readbuf, readbuf + 4, 4);
642 }
643 }
644 /* 128-bit decimal floats in f2,f3. */
645 else if (TYPE_LENGTH (valtype) == 16)
646 {
647 if (writebuf != NULL || readbuf != NULL)
648 {
649 int i;
650
651 for (i = 0; i < 2; i++)
652 {
653 if (writebuf != NULL)
654 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 2 + i,
655 writebuf + i * 8);
656 if (readbuf != NULL)
657 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 2 + i,
658 readbuf + i * 8);
659 }
660 }
661 }
662 else
663 /* Can't happen. */
9b20d036 664 internal_error (__FILE__, __LINE__, _("Unknown decimal float size."));
1300a2f4
TJB
665
666 return RETURN_VALUE_REGISTER_CONVENTION;
667}
668
e754ae69
AC
669/* Handle the return-value conventions specified by the SysV 32-bit
670 PowerPC ABI (including all the supplements):
671
672 no floating-point: floating-point values returned using 32-bit
673 general-purpose registers.
674
675 Altivec: 128-bit vectors returned using vector registers.
676
677 e500: 64-bit vectors returned using the full full 64 bit EV
678 register, floating-point values returned using 32-bit
679 general-purpose registers.
680
681 GCC (broken): Small struct values right (instead of left) aligned
682 when returned in general-purpose registers. */
683
684static enum return_value_convention
54fcddd0
UW
685do_ppc_sysv_return_value (struct gdbarch *gdbarch, struct type *func_type,
686 struct type *type, struct regcache *regcache,
687 gdb_byte *readbuf, const gdb_byte *writebuf,
688 int broken_gcc)
e754ae69 689{
05580c65 690 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
e17a4113 691 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
54fcddd0
UW
692 int opencl_abi = 0;
693
694 if (func_type
695 && TYPE_CALLING_CONVENTION (func_type) == DW_CC_GDB_IBM_OpenCL)
696 opencl_abi = 1;
697
e754ae69 698 gdb_assert (tdep->wordsize == 4);
54fcddd0 699
e754ae69
AC
700 if (TYPE_CODE (type) == TYPE_CODE_FLT
701 && TYPE_LENGTH (type) <= 8
55eddb0f 702 && !tdep->soft_float)
e754ae69 703 {
963e2bb7 704 if (readbuf)
e754ae69
AC
705 {
706 /* Floats and doubles stored in "f1". Convert the value to
707 the required type. */
50fd1280 708 gdb_byte regval[MAX_REGISTER_SIZE];
366f009f
JB
709 struct type *regtype = register_type (gdbarch,
710 tdep->ppc_fp0_regnum + 1);
711 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 1, regval);
963e2bb7 712 convert_typed_floating (regval, regtype, readbuf, type);
e754ae69 713 }
963e2bb7 714 if (writebuf)
e754ae69
AC
715 {
716 /* Floats and doubles stored in "f1". Convert the value to
717 the register's "double" type. */
50fd1280 718 gdb_byte regval[MAX_REGISTER_SIZE];
366f009f 719 struct type *regtype = register_type (gdbarch, tdep->ppc_fp0_regnum);
963e2bb7 720 convert_typed_floating (writebuf, type, regval, regtype);
366f009f 721 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 1, regval);
e754ae69
AC
722 }
723 return RETURN_VALUE_REGISTER_CONVENTION;
724 }
b14d30e1
JM
725 if (TYPE_CODE (type) == TYPE_CODE_FLT
726 && TYPE_LENGTH (type) == 16
727 && !tdep->soft_float
0df8b418
MS
728 && (gdbarch_long_double_format (gdbarch)
729 == floatformats_ibm_long_double))
b14d30e1
JM
730 {
731 /* IBM long double stored in f1 and f2. */
732 if (readbuf)
733 {
734 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 1, readbuf);
735 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 2,
736 readbuf + 8);
737 }
738 if (writebuf)
739 {
740 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 1, writebuf);
741 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 2,
742 writebuf + 8);
743 }
744 return RETURN_VALUE_REGISTER_CONVENTION;
745 }
00fbcec4
JM
746 if (TYPE_LENGTH (type) == 16
747 && ((TYPE_CODE (type) == TYPE_CODE_FLT
0df8b418
MS
748 && (gdbarch_long_double_format (gdbarch)
749 == floatformats_ibm_long_double))
00fbcec4 750 || (TYPE_CODE (type) == TYPE_CODE_DECFLOAT && tdep->soft_float)))
b14d30e1 751 {
00fbcec4
JM
752 /* Soft-float IBM long double or _Decimal128 stored in r3, r4,
753 r5, r6. */
b14d30e1
JM
754 if (readbuf)
755 {
756 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 3, readbuf);
757 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 4,
758 readbuf + 4);
759 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 5,
760 readbuf + 8);
761 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 6,
762 readbuf + 12);
763 }
764 if (writebuf)
765 {
766 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 3, writebuf);
767 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 4,
768 writebuf + 4);
769 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 5,
770 writebuf + 8);
771 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 6,
772 writebuf + 12);
773 }
774 return RETURN_VALUE_REGISTER_CONVENTION;
775 }
e754ae69 776 if ((TYPE_CODE (type) == TYPE_CODE_INT && TYPE_LENGTH (type) == 8)
00fbcec4
JM
777 || (TYPE_CODE (type) == TYPE_CODE_FLT && TYPE_LENGTH (type) == 8)
778 || (TYPE_CODE (type) == TYPE_CODE_DECFLOAT && TYPE_LENGTH (type) == 8
779 && tdep->soft_float))
e754ae69 780 {
963e2bb7 781 if (readbuf)
e754ae69 782 {
00fbcec4
JM
783 /* A long long, double or _Decimal64 stored in the 32 bit
784 r3/r4. */
e754ae69 785 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 3,
55eddb0f 786 readbuf + 0);
e754ae69 787 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 4,
55eddb0f 788 readbuf + 4);
e754ae69 789 }
963e2bb7 790 if (writebuf)
e754ae69 791 {
00fbcec4
JM
792 /* A long long, double or _Decimal64 stored in the 32 bit
793 r3/r4. */
e754ae69 794 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 3,
55eddb0f 795 writebuf + 0);
e754ae69 796 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 4,
55eddb0f 797 writebuf + 4);
e754ae69
AC
798 }
799 return RETURN_VALUE_REGISTER_CONVENTION;
800 }
1300a2f4
TJB
801 if (TYPE_CODE (type) == TYPE_CODE_DECFLOAT && !tdep->soft_float)
802 return get_decimal_float_return_value (gdbarch, type, regcache, readbuf,
803 writebuf);
f0027ce2
DJ
804 else if ((TYPE_CODE (type) == TYPE_CODE_INT
805 || TYPE_CODE (type) == TYPE_CODE_CHAR
806 || TYPE_CODE (type) == TYPE_CODE_BOOL
807 || TYPE_CODE (type) == TYPE_CODE_PTR
808 || TYPE_CODE (type) == TYPE_CODE_REF
809 || TYPE_CODE (type) == TYPE_CODE_ENUM)
810 && TYPE_LENGTH (type) <= tdep->wordsize)
e754ae69 811 {
963e2bb7 812 if (readbuf)
e754ae69
AC
813 {
814 /* Some sort of integer stored in r3. Since TYPE isn't
815 bigger than the register, sign extension isn't a problem
816 - just do everything unsigned. */
817 ULONGEST regval;
818 regcache_cooked_read_unsigned (regcache, tdep->ppc_gp0_regnum + 3,
819 &regval);
e17a4113
UW
820 store_unsigned_integer (readbuf, TYPE_LENGTH (type), byte_order,
821 regval);
e754ae69 822 }
963e2bb7 823 if (writebuf)
e754ae69
AC
824 {
825 /* Some sort of integer stored in r3. Use unpack_long since
826 that should handle any required sign extension. */
827 regcache_cooked_write_unsigned (regcache, tdep->ppc_gp0_regnum + 3,
963e2bb7 828 unpack_long (type, writebuf));
e754ae69
AC
829 }
830 return RETURN_VALUE_REGISTER_CONVENTION;
831 }
54fcddd0
UW
832 /* OpenCL vectors < 16 bytes are returned as distinct
833 scalars in f1..f2 or r3..r10. */
834 if (TYPE_CODE (type) == TYPE_CODE_ARRAY
835 && TYPE_VECTOR (type)
836 && TYPE_LENGTH (type) < 16
837 && opencl_abi)
838 {
839 struct type *eltype = check_typedef (TYPE_TARGET_TYPE (type));
840 int i, nelt = TYPE_LENGTH (type) / TYPE_LENGTH (eltype);
841
842 for (i = 0; i < nelt; i++)
843 {
844 int offset = i * TYPE_LENGTH (eltype);
845
846 if (TYPE_CODE (eltype) == TYPE_CODE_FLT)
847 {
848 int regnum = tdep->ppc_fp0_regnum + 1 + i;
849 gdb_byte regval[MAX_REGISTER_SIZE];
850 struct type *regtype = register_type (gdbarch, regnum);
851
852 if (writebuf != NULL)
853 {
854 convert_typed_floating (writebuf + offset, eltype,
855 regval, regtype);
856 regcache_cooked_write (regcache, regnum, regval);
857 }
858 if (readbuf != NULL)
859 {
860 regcache_cooked_read (regcache, regnum, regval);
861 convert_typed_floating (regval, regtype,
862 readbuf + offset, eltype);
863 }
864 }
865 else
866 {
867 int regnum = tdep->ppc_gp0_regnum + 3 + i;
868 ULONGEST regval;
869
870 if (writebuf != NULL)
871 {
872 regval = unpack_long (eltype, writebuf + offset);
873 regcache_cooked_write_unsigned (regcache, regnum, regval);
874 }
875 if (readbuf != NULL)
876 {
877 regcache_cooked_read_unsigned (regcache, regnum, &regval);
878 store_unsigned_integer (readbuf + offset,
879 TYPE_LENGTH (eltype), byte_order,
880 regval);
881 }
882 }
883 }
884
885 return RETURN_VALUE_REGISTER_CONVENTION;
886 }
887 /* OpenCL vectors >= 16 bytes are returned in v2..v9. */
888 if (TYPE_CODE (type) == TYPE_CODE_ARRAY
889 && TYPE_VECTOR (type)
890 && TYPE_LENGTH (type) >= 16
891 && opencl_abi)
892 {
893 int n_regs = TYPE_LENGTH (type) / 16;
894 int i;
895
896 for (i = 0; i < n_regs; i++)
897 {
898 int offset = i * 16;
899 int regnum = tdep->ppc_vr0_regnum + 2 + i;
900
901 if (writebuf != NULL)
902 regcache_cooked_write (regcache, regnum, writebuf + offset);
903 if (readbuf != NULL)
904 regcache_cooked_read (regcache, regnum, readbuf + offset);
905 }
906
907 return RETURN_VALUE_REGISTER_CONVENTION;
908 }
e754ae69
AC
909 if (TYPE_LENGTH (type) == 16
910 && TYPE_CODE (type) == TYPE_CODE_ARRAY
55eddb0f
DJ
911 && TYPE_VECTOR (type)
912 && tdep->vector_abi == POWERPC_VEC_ALTIVEC)
e754ae69 913 {
963e2bb7 914 if (readbuf)
e754ae69
AC
915 {
916 /* Altivec places the return value in "v2". */
963e2bb7 917 regcache_cooked_read (regcache, tdep->ppc_vr0_regnum + 2, readbuf);
e754ae69 918 }
963e2bb7 919 if (writebuf)
e754ae69
AC
920 {
921 /* Altivec places the return value in "v2". */
963e2bb7 922 regcache_cooked_write (regcache, tdep->ppc_vr0_regnum + 2, writebuf);
e754ae69
AC
923 }
924 return RETURN_VALUE_REGISTER_CONVENTION;
925 }
55eddb0f
DJ
926 if (TYPE_LENGTH (type) == 16
927 && TYPE_CODE (type) == TYPE_CODE_ARRAY
928 && TYPE_VECTOR (type)
929 && tdep->vector_abi == POWERPC_VEC_GENERIC)
930 {
931 /* GCC -maltivec -mabi=no-altivec returns vectors in r3/r4/r5/r6.
932 GCC without AltiVec returns them in memory, but it warns about
933 ABI risks in that case; we don't try to support it. */
934 if (readbuf)
935 {
936 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 3,
937 readbuf + 0);
938 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 4,
939 readbuf + 4);
940 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 5,
941 readbuf + 8);
942 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 6,
943 readbuf + 12);
944 }
945 if (writebuf)
946 {
947 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 3,
948 writebuf + 0);
949 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 4,
950 writebuf + 4);
951 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 5,
952 writebuf + 8);
953 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 6,
954 writebuf + 12);
955 }
956 return RETURN_VALUE_REGISTER_CONVENTION;
957 }
e754ae69
AC
958 if (TYPE_LENGTH (type) == 8
959 && TYPE_CODE (type) == TYPE_CODE_ARRAY
55eddb0f
DJ
960 && TYPE_VECTOR (type)
961 && tdep->vector_abi == POWERPC_VEC_SPE)
e754ae69
AC
962 {
963 /* The e500 ABI places return values for the 64-bit DSP types
964 (__ev64_opaque__) in r3. However, in GDB-speak, ev3
965 corresponds to the entire r3 value for e500, whereas GDB's r3
966 only corresponds to the least significant 32-bits. So place
967 the 64-bit DSP type's value in ev3. */
963e2bb7
AC
968 if (readbuf)
969 regcache_cooked_read (regcache, tdep->ppc_ev0_regnum + 3, readbuf);
970 if (writebuf)
971 regcache_cooked_write (regcache, tdep->ppc_ev0_regnum + 3, writebuf);
e754ae69
AC
972 return RETURN_VALUE_REGISTER_CONVENTION;
973 }
974 if (broken_gcc && TYPE_LENGTH (type) <= 8)
975 {
61bf9ae0
MK
976 /* GCC screwed up for structures or unions whose size is less
977 than or equal to 8 bytes.. Instead of left-aligning, it
978 right-aligns the data into the buffer formed by r3, r4. */
979 gdb_byte regvals[MAX_REGISTER_SIZE * 2];
980 int len = TYPE_LENGTH (type);
981 int offset = (2 * tdep->wordsize - len) % tdep->wordsize;
982
963e2bb7 983 if (readbuf)
e754ae69 984 {
61bf9ae0
MK
985 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 3,
986 regvals + 0 * tdep->wordsize);
987 if (len > tdep->wordsize)
988 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 4,
989 regvals + 1 * tdep->wordsize);
990 memcpy (readbuf, regvals + offset, len);
e754ae69 991 }
963e2bb7 992 if (writebuf)
e754ae69 993 {
61bf9ae0
MK
994 memset (regvals, 0, sizeof regvals);
995 memcpy (regvals + offset, writebuf, len);
996 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 3,
997 regvals + 0 * tdep->wordsize);
998 if (len > tdep->wordsize)
999 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 4,
1000 regvals + 1 * tdep->wordsize);
e754ae69 1001 }
61bf9ae0 1002
e754ae69
AC
1003 return RETURN_VALUE_REGISTER_CONVENTION;
1004 }
1005 if (TYPE_LENGTH (type) <= 8)
1006 {
963e2bb7 1007 if (readbuf)
e754ae69
AC
1008 {
1009 /* This matches SVr4 PPC, it does not match GCC. */
1010 /* The value is right-padded to 8 bytes and then loaded, as
1011 two "words", into r3/r4. */
50fd1280 1012 gdb_byte regvals[MAX_REGISTER_SIZE * 2];
e754ae69
AC
1013 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 3,
1014 regvals + 0 * tdep->wordsize);
1015 if (TYPE_LENGTH (type) > tdep->wordsize)
1016 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 4,
1017 regvals + 1 * tdep->wordsize);
963e2bb7 1018 memcpy (readbuf, regvals, TYPE_LENGTH (type));
e754ae69 1019 }
963e2bb7 1020 if (writebuf)
e754ae69
AC
1021 {
1022 /* This matches SVr4 PPC, it does not match GCC. */
1023 /* The value is padded out to 8 bytes and then loaded, as
1024 two "words" into r3/r4. */
50fd1280 1025 gdb_byte regvals[MAX_REGISTER_SIZE * 2];
e754ae69 1026 memset (regvals, 0, sizeof regvals);
963e2bb7 1027 memcpy (regvals, writebuf, TYPE_LENGTH (type));
e754ae69
AC
1028 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 3,
1029 regvals + 0 * tdep->wordsize);
1030 if (TYPE_LENGTH (type) > tdep->wordsize)
1031 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 4,
1032 regvals + 1 * tdep->wordsize);
1033 }
1034 return RETURN_VALUE_REGISTER_CONVENTION;
1035 }
1036 return RETURN_VALUE_STRUCT_CONVENTION;
1037}
1038
05580c65 1039enum return_value_convention
c055b101
CV
1040ppc_sysv_abi_return_value (struct gdbarch *gdbarch, struct type *func_type,
1041 struct type *valtype, struct regcache *regcache,
1042 gdb_byte *readbuf, const gdb_byte *writebuf)
e754ae69 1043{
54fcddd0
UW
1044 return do_ppc_sysv_return_value (gdbarch, func_type, valtype, regcache,
1045 readbuf, writebuf, 0);
e754ae69
AC
1046}
1047
05580c65 1048enum return_value_convention
963e2bb7 1049ppc_sysv_abi_broken_return_value (struct gdbarch *gdbarch,
c055b101 1050 struct type *func_type,
963e2bb7
AC
1051 struct type *valtype,
1052 struct regcache *regcache,
50fd1280 1053 gdb_byte *readbuf, const gdb_byte *writebuf)
e754ae69 1054{
54fcddd0
UW
1055 return do_ppc_sysv_return_value (gdbarch, func_type, valtype, regcache,
1056 readbuf, writebuf, 1);
944fcfab 1057}
afd48b75 1058
b6e1c027
AC
1059/* The helper function for 64-bit SYSV push_dummy_call. Converts the
1060 function's code address back into the function's descriptor
1061 address.
1062
1063 Find a value for the TOC register. Every symbol should have both
1064 ".FN" and "FN" in the minimal symbol table. "FN" points at the
1065 FN's descriptor, while ".FN" points at the entry point (which
1066 matches FUNC_ADDR). Need to reverse from FUNC_ADDR back to the
1067 FN's descriptor address (while at the same time being careful to
1068 find "FN" in the same object file as ".FN"). */
1069
1070static int
1071convert_code_addr_to_desc_addr (CORE_ADDR code_addr, CORE_ADDR *desc_addr)
1072{
1073 struct obj_section *dot_fn_section;
1074 struct minimal_symbol *dot_fn;
1075 struct minimal_symbol *fn;
1076 CORE_ADDR toc;
1077 /* Find the minimal symbol that corresponds to CODE_ADDR (should
1078 have a name of the form ".FN"). */
1079 dot_fn = lookup_minimal_symbol_by_pc (code_addr);
1080 if (dot_fn == NULL || SYMBOL_LINKAGE_NAME (dot_fn)[0] != '.')
1081 return 0;
1082 /* Get the section that contains CODE_ADDR. Need this for the
1083 "objfile" that it contains. */
1084 dot_fn_section = find_pc_section (code_addr);
1085 if (dot_fn_section == NULL || dot_fn_section->objfile == NULL)
1086 return 0;
1087 /* Now find the corresponding "FN" (dropping ".") minimal symbol's
1088 address. Only look for the minimal symbol in ".FN"'s object file
1089 - avoids problems when two object files (i.e., shared libraries)
1090 contain a minimal symbol with the same name. */
1091 fn = lookup_minimal_symbol (SYMBOL_LINKAGE_NAME (dot_fn) + 1, NULL,
1092 dot_fn_section->objfile);
1093 if (fn == NULL)
1094 return 0;
1095 /* Found a descriptor. */
1096 (*desc_addr) = SYMBOL_VALUE_ADDRESS (fn);
1097 return 1;
1098}
1099
0df8b418 1100/* Pass the arguments in either registers, or in the stack. Using the
8be9034a
AC
1101 ppc 64 bit SysV ABI.
1102
1103 This implements a dumbed down version of the ABI. It always writes
1104 values to memory, GPR and FPR, even when not necessary. Doing this
0df8b418 1105 greatly simplifies the logic. */
8be9034a
AC
1106
1107CORE_ADDR
0df8b418
MS
1108ppc64_sysv_abi_push_dummy_call (struct gdbarch *gdbarch,
1109 struct value *function,
8be9034a
AC
1110 struct regcache *regcache, CORE_ADDR bp_addr,
1111 int nargs, struct value **args, CORE_ADDR sp,
1112 int struct_return, CORE_ADDR struct_addr)
1113{
7d9b040b 1114 CORE_ADDR func_addr = find_function_addr (function, NULL);
40a6adc1 1115 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
e17a4113 1116 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
54fcddd0
UW
1117 struct type *ftype;
1118 int opencl_abi = 0;
fb4443d8 1119 ULONGEST back_chain;
8be9034a
AC
1120 /* See for-loop comment below. */
1121 int write_pass;
8be9034a
AC
1122 /* Size of the general parameter region, the final value is computed
1123 in the for-loop below. */
1124 LONGEST gparam_size = 0;
1125 /* Kevin writes ... I don't mind seeing tdep->wordsize used in the
0df8b418 1126 calls to align_up(), align_down(), etc. because this makes it
8be9034a
AC
1127 easier to reuse this code (in a copy/paste sense) in the future,
1128 but it is a 64-bit ABI and asserting that the wordsize is 8 bytes
1129 at some point makes it easier to verify that this function is
1130 correct without having to do a non-local analysis to figure out
1131 the possible values of tdep->wordsize. */
1132 gdb_assert (tdep->wordsize == 8);
1133
55eddb0f
DJ
1134 /* This function exists to support a calling convention that
1135 requires floating-point registers. It shouldn't be used on
1136 processors that lack them. */
1137 gdb_assert (ppc_floating_point_unit_p (gdbarch));
1138
fb4443d8
UW
1139 /* By this stage in the proceedings, SP has been decremented by "red
1140 zone size" + "struct return size". Fetch the stack-pointer from
1141 before this and use that as the BACK_CHAIN. */
40a6adc1 1142 regcache_cooked_read_unsigned (regcache, gdbarch_sp_regnum (gdbarch),
3e8c568d 1143 &back_chain);
fb4443d8 1144
54fcddd0
UW
1145 ftype = check_typedef (value_type (function));
1146 if (TYPE_CODE (ftype) == TYPE_CODE_PTR)
1147 ftype = check_typedef (TYPE_TARGET_TYPE (ftype));
1148 if (TYPE_CODE (ftype) == TYPE_CODE_FUNC
1149 && TYPE_CALLING_CONVENTION (ftype) == DW_CC_GDB_IBM_OpenCL)
1150 opencl_abi = 1;
1151
8be9034a
AC
1152 /* Go through the argument list twice.
1153
1154 Pass 1: Compute the function call's stack space and register
1155 requirements.
1156
1157 Pass 2: Replay the same computation but this time also write the
1158 values out to the target. */
1159
1160 for (write_pass = 0; write_pass < 2; write_pass++)
1161 {
1162 int argno;
1163 /* Next available floating point register for float and double
1164 arguments. */
1165 int freg = 1;
1166 /* Next available general register for non-vector (but possibly
1167 float) arguments. */
1168 int greg = 3;
1169 /* Next available vector register for vector arguments. */
1170 int vreg = 2;
1171 /* The address, at which the next general purpose parameter
d6dafb7c 1172 (integer, struct, float, vector, ...) should be saved. */
8be9034a 1173 CORE_ADDR gparam;
8be9034a
AC
1174
1175 if (!write_pass)
1176 {
d6dafb7c
UW
1177 /* During the first pass, GPARAM is more like an offset
1178 (start address zero) than an address. That way it
1179 accumulates the total stack space required. */
8be9034a 1180 gparam = 0;
8be9034a
AC
1181 }
1182 else
1183 {
d6dafb7c
UW
1184 /* Decrement the stack pointer making space for the on-stack
1185 stack parameters. Set gparam to that region. */
1186 gparam = align_down (sp - gparam_size, 16);
8be9034a
AC
1187 /* Add in space for the TOC, link editor double word,
1188 compiler double word, LR save area, CR save area. */
1189 sp = align_down (gparam - 48, 16);
1190 }
1191
1192 /* If the function is returning a `struct', then there is an
1193 extra hidden parameter (which will be passed in r3)
1194 containing the address of that struct.. In that case we
1195 should advance one word and start from r4 register to copy
1196 parameters. This also consumes one on-stack parameter slot. */
1197 if (struct_return)
1198 {
1199 if (write_pass)
1200 regcache_cooked_write_signed (regcache,
1201 tdep->ppc_gp0_regnum + greg,
1202 struct_addr);
1203 greg++;
1204 gparam = align_up (gparam + tdep->wordsize, tdep->wordsize);
1205 }
1206
1207 for (argno = 0; argno < nargs; argno++)
1208 {
1209 struct value *arg = args[argno];
df407dfe 1210 struct type *type = check_typedef (value_type (arg));
0fd88904 1211 const bfd_byte *val = value_contents (arg);
ce0451ad 1212
8be9034a
AC
1213 if (TYPE_CODE (type) == TYPE_CODE_FLT && TYPE_LENGTH (type) <= 8)
1214 {
1215 /* Floats and Doubles go in f1 .. f13. They also
1216 consume a left aligned GREG,, and can end up in
1217 memory. */
1218 if (write_pass)
1219 {
ce0451ad
TJB
1220 gdb_byte regval[MAX_REGISTER_SIZE];
1221 const gdb_byte *p;
1222
1223 /* Version 1.7 of the 64-bit PowerPC ELF ABI says:
1224
1225 "Single precision floating point values are mapped to
1226 the first word in a single doubleword."
1227
1228 And version 1.9 says:
1229
1230 "Single precision floating point values are mapped to
1231 the second word in a single doubleword."
1232
1233 GDB then writes single precision floating point values
1234 at both words in a doubleword, to support both ABIs. */
1235 if (TYPE_LENGTH (type) == 4)
1236 {
1237 memcpy (regval, val, 4);
1238 memcpy (regval + 4, val, 4);
1239 p = regval;
1240 }
1241 else
1242 p = val;
1243
1244 /* Write value in the stack's parameter save area. */
1245 write_memory (gparam, p, 8);
1246
55eddb0f 1247 if (freg <= 13)
8be9034a 1248 {
366f009f
JB
1249 struct type *regtype
1250 = register_type (gdbarch, tdep->ppc_fp0_regnum);
ce0451ad 1251
8be9034a 1252 convert_typed_floating (val, type, regval, regtype);
366f009f
JB
1253 regcache_cooked_write (regcache,
1254 tdep->ppc_fp0_regnum + freg,
8be9034a
AC
1255 regval);
1256 }
1257 if (greg <= 10)
ce0451ad
TJB
1258 regcache_cooked_write (regcache,
1259 tdep->ppc_gp0_regnum + greg,
1260 regval);
8be9034a 1261 }
ce0451ad 1262
8be9034a
AC
1263 freg++;
1264 greg++;
ce0451ad
TJB
1265 /* Always consume parameter stack space. */
1266 gparam = align_up (gparam + 8, tdep->wordsize);
8be9034a 1267 }
b14d30e1
JM
1268 else if (TYPE_CODE (type) == TYPE_CODE_FLT
1269 && TYPE_LENGTH (type) == 16
40a6adc1 1270 && (gdbarch_long_double_format (gdbarch)
b14d30e1
JM
1271 == floatformats_ibm_long_double))
1272 {
1273 /* IBM long double stored in two doublewords of the
1274 parameter save area and corresponding registers. */
1275 if (write_pass)
1276 {
1277 if (!tdep->soft_float && freg <= 13)
1278 {
1279 regcache_cooked_write (regcache,
1280 tdep->ppc_fp0_regnum + freg,
1281 val);
1282 if (freg <= 12)
1283 regcache_cooked_write (regcache,
1284 tdep->ppc_fp0_regnum + freg + 1,
1285 val + 8);
1286 }
1287 if (greg <= 10)
1288 {
1289 regcache_cooked_write (regcache,
1290 tdep->ppc_gp0_regnum + greg,
1291 val);
1292 if (greg <= 9)
1293 regcache_cooked_write (regcache,
1294 tdep->ppc_gp0_regnum + greg + 1,
1295 val + 8);
1296 }
1297 write_memory (gparam, val, TYPE_LENGTH (type));
1298 }
1299 freg += 2;
1300 greg += 2;
1301 gparam = align_up (gparam + TYPE_LENGTH (type), tdep->wordsize);
1302 }
1300a2f4
TJB
1303 else if (TYPE_CODE (type) == TYPE_CODE_DECFLOAT
1304 && TYPE_LENGTH (type) <= 8)
1305 {
1306 /* 32-bit and 64-bit decimal floats go in f1 .. f13. They can
1307 end up in memory. */
1308 if (write_pass)
1309 {
1310 gdb_byte regval[MAX_REGISTER_SIZE];
1311 const gdb_byte *p;
1312
1313 /* 32-bit decimal floats are right aligned in the
1314 doubleword. */
1315 if (TYPE_LENGTH (type) == 4)
1316 {
1317 memcpy (regval + 4, val, 4);
1318 p = regval;
1319 }
1320 else
1321 p = val;
1322
1323 /* Write value in the stack's parameter save area. */
1324 write_memory (gparam, p, 8);
1325
1326 if (freg <= 13)
1327 regcache_cooked_write (regcache,
1328 tdep->ppc_fp0_regnum + freg, p);
1329 }
1330
1331 freg++;
1332 greg++;
1333 /* Always consume parameter stack space. */
1334 gparam = align_up (gparam + 8, tdep->wordsize);
1335 }
1336 else if (TYPE_CODE (type) == TYPE_CODE_DECFLOAT &&
1337 TYPE_LENGTH (type) == 16)
1338 {
1339 /* 128-bit decimal floats go in f2 .. f12, always in even/odd
1340 pairs. They can end up in memory, using two doublewords. */
1341 if (write_pass)
1342 {
1343 if (freg <= 12)
1344 {
1345 /* Make sure freg is even. */
1346 freg += freg & 1;
1347 regcache_cooked_write (regcache,
1348 tdep->ppc_fp0_regnum + freg, val);
1349 regcache_cooked_write (regcache,
1350 tdep->ppc_fp0_regnum + freg + 1, val + 8);
1351 }
1352
1353 write_memory (gparam, val, TYPE_LENGTH (type));
1354 }
1355
1356 freg += 2;
1357 greg += 2;
1358 gparam = align_up (gparam + TYPE_LENGTH (type), tdep->wordsize);
1359 }
54fcddd0
UW
1360 else if (TYPE_LENGTH (type) < 16
1361 && TYPE_CODE (type) == TYPE_CODE_ARRAY
1362 && TYPE_VECTOR (type)
1363 && opencl_abi)
1364 {
1365 /* OpenCL vectors shorter than 16 bytes are passed as if
1366 a series of independent scalars. */
1367 struct type *eltype = check_typedef (TYPE_TARGET_TYPE (type));
1368 int i, nelt = TYPE_LENGTH (type) / TYPE_LENGTH (eltype);
1369
1370 for (i = 0; i < nelt; i++)
1371 {
1372 const gdb_byte *elval = val + i * TYPE_LENGTH (eltype);
1373
1374 if (TYPE_CODE (eltype) == TYPE_CODE_FLT)
1375 {
1376 if (write_pass)
1377 {
1378 gdb_byte regval[MAX_REGISTER_SIZE];
1379 const gdb_byte *p;
1380
1381 if (TYPE_LENGTH (eltype) == 4)
1382 {
1383 memcpy (regval, elval, 4);
1384 memcpy (regval + 4, elval, 4);
1385 p = regval;
1386 }
1387 else
1388 p = elval;
1389
1390 write_memory (gparam, p, 8);
1391
1392 if (freg <= 13)
1393 {
1394 int regnum = tdep->ppc_fp0_regnum + freg;
1395 struct type *regtype
1396 = register_type (gdbarch, regnum);
1397
1398 convert_typed_floating (elval, eltype,
1399 regval, regtype);
1400 regcache_cooked_write (regcache, regnum, regval);
1401 }
1402
1403 if (greg <= 10)
1404 regcache_cooked_write (regcache,
1405 tdep->ppc_gp0_regnum + greg,
1406 regval);
1407 }
1408
1409 freg++;
1410 greg++;
1411 gparam = align_up (gparam + 8, tdep->wordsize);
1412 }
1413 else
1414 {
1415 if (write_pass)
1416 {
1417 ULONGEST word = unpack_long (eltype, elval);
1418 if (greg <= 10)
1419 regcache_cooked_write_unsigned
1420 (regcache, tdep->ppc_gp0_regnum + greg, word);
1421
1422 write_memory_unsigned_integer
1423 (gparam, tdep->wordsize, byte_order, word);
1424 }
1425
1426 greg++;
1427 gparam = align_up (gparam + TYPE_LENGTH (eltype),
1428 tdep->wordsize);
1429 }
1430 }
1431 }
1432 else if (TYPE_LENGTH (type) >= 16
1433 && TYPE_CODE (type) == TYPE_CODE_ARRAY
1434 && TYPE_VECTOR (type)
1435 && opencl_abi)
1436 {
1437 /* OpenCL vectors 16 bytes or longer are passed as if
1438 a series of AltiVec vectors. */
1439 int i;
1440
1441 for (i = 0; i < TYPE_LENGTH (type) / 16; i++)
1442 {
1443 const gdb_byte *elval = val + i * 16;
1444
1445 gparam = align_up (gparam, 16);
1446 greg += greg & 1;
1447
1448 if (write_pass)
1449 {
1450 if (vreg <= 13)
1451 regcache_cooked_write (regcache,
1452 tdep->ppc_vr0_regnum + vreg,
1453 elval);
1454
1455 write_memory (gparam, elval, 16);
1456 }
1457
1458 greg += 2;
1459 vreg++;
1460 gparam += 16;
1461 }
1462 }
8be9034a
AC
1463 else if (TYPE_LENGTH (type) == 16 && TYPE_VECTOR (type)
1464 && TYPE_CODE (type) == TYPE_CODE_ARRAY
1465 && tdep->ppc_vr0_regnum >= 0)
1466 {
d6dafb7c
UW
1467 /* In the Altivec ABI, vectors go in the vector registers
1468 v2 .. v13, as well as the parameter area -- always at
1469 16-byte aligned addresses. */
1470
1471 gparam = align_up (gparam, 16);
1472 greg += greg & 1;
1473
1474 if (write_pass)
8be9034a 1475 {
d6dafb7c 1476 if (vreg <= 13)
8be9034a
AC
1477 regcache_cooked_write (regcache,
1478 tdep->ppc_vr0_regnum + vreg, val);
d6dafb7c
UW
1479
1480 write_memory (gparam, val, TYPE_LENGTH (type));
8be9034a 1481 }
d6dafb7c
UW
1482
1483 greg += 2;
1484 vreg++;
1485 gparam += 16;
8be9034a
AC
1486 }
1487 else if ((TYPE_CODE (type) == TYPE_CODE_INT
b6e1c027 1488 || TYPE_CODE (type) == TYPE_CODE_ENUM
93d4208d
UW
1489 || TYPE_CODE (type) == TYPE_CODE_BOOL
1490 || TYPE_CODE (type) == TYPE_CODE_CHAR
1491 || TYPE_CODE (type) == TYPE_CODE_PTR
1492 || TYPE_CODE (type) == TYPE_CODE_REF)
8be9034a
AC
1493 && TYPE_LENGTH (type) <= 8)
1494 {
b6e1c027
AC
1495 /* Scalars and Pointers get sign[un]extended and go in
1496 gpr3 .. gpr10. They can also end up in memory. */
8be9034a
AC
1497 if (write_pass)
1498 {
1499 /* Sign extend the value, then store it unsigned. */
1500 ULONGEST word = unpack_long (type, val);
b6e1c027
AC
1501 /* Convert any function code addresses into
1502 descriptors. */
1503 if (TYPE_CODE (type) == TYPE_CODE_PTR
93d4208d 1504 || TYPE_CODE (type) == TYPE_CODE_REF)
b6e1c027 1505 {
93d4208d
UW
1506 struct type *target_type;
1507 target_type = check_typedef (TYPE_TARGET_TYPE (type));
1508
1509 if (TYPE_CODE (target_type) == TYPE_CODE_FUNC
1510 || TYPE_CODE (target_type) == TYPE_CODE_METHOD)
1511 {
1512 CORE_ADDR desc = word;
1513 convert_code_addr_to_desc_addr (word, &desc);
1514 word = desc;
1515 }
b6e1c027 1516 }
8be9034a
AC
1517 if (greg <= 10)
1518 regcache_cooked_write_unsigned (regcache,
1519 tdep->ppc_gp0_regnum +
1520 greg, word);
1521 write_memory_unsigned_integer (gparam, tdep->wordsize,
e17a4113 1522 byte_order, word);
8be9034a
AC
1523 }
1524 greg++;
1525 gparam = align_up (gparam + TYPE_LENGTH (type), tdep->wordsize);
1526 }
1527 else
1528 {
1529 int byte;
1530 for (byte = 0; byte < TYPE_LENGTH (type);
1531 byte += tdep->wordsize)
1532 {
1533 if (write_pass && greg <= 10)
1534 {
50fd1280 1535 gdb_byte regval[MAX_REGISTER_SIZE];
8be9034a
AC
1536 int len = TYPE_LENGTH (type) - byte;
1537 if (len > tdep->wordsize)
1538 len = tdep->wordsize;
1539 memset (regval, 0, sizeof regval);
36815e57
JM
1540 /* The ABI (version 1.9) specifies that values
1541 smaller than one doubleword are right-aligned
1542 and those larger are left-aligned. GCC
1543 versions before 3.4 implemented this
1544 incorrectly; see
1545 <http://gcc.gnu.org/gcc-3.4/powerpc-abi.html>. */
1546 if (byte == 0)
8be9034a
AC
1547 memcpy (regval + tdep->wordsize - len,
1548 val + byte, len);
36815e57
JM
1549 else
1550 memcpy (regval, val + byte, len);
8be9034a
AC
1551 regcache_cooked_write (regcache, greg, regval);
1552 }
1553 greg++;
1554 }
1555 if (write_pass)
93d4208d
UW
1556 {
1557 /* WARNING: cagney/2003-09-21: Strictly speaking, this
1558 isn't necessary, unfortunately, GCC appears to get
1559 "struct convention" parameter passing wrong putting
1560 odd sized structures in memory instead of in a
1561 register. Work around this by always writing the
1562 value to memory. Fortunately, doing this
1563 simplifies the code. */
1564 int len = TYPE_LENGTH (type);
1565 if (len < tdep->wordsize)
1566 write_memory (gparam + tdep->wordsize - len, val, len);
1567 else
1568 write_memory (gparam, val, len);
1569 }
36815e57
JM
1570 if (freg <= 13
1571 && TYPE_CODE (type) == TYPE_CODE_STRUCT
1572 && TYPE_NFIELDS (type) == 1
1573 && TYPE_LENGTH (type) <= 16)
1574 {
1575 /* The ABI (version 1.9) specifies that structs
1576 containing a single floating-point value, at any
1577 level of nesting of single-member structs, are
1578 passed in floating-point registers. */
1579 while (TYPE_CODE (type) == TYPE_CODE_STRUCT
1580 && TYPE_NFIELDS (type) == 1)
1581 type = check_typedef (TYPE_FIELD_TYPE (type, 0));
1582 if (TYPE_CODE (type) == TYPE_CODE_FLT)
1583 {
1584 if (TYPE_LENGTH (type) <= 8)
1585 {
1586 if (write_pass)
1587 {
1588 gdb_byte regval[MAX_REGISTER_SIZE];
1589 struct type *regtype
1590 = register_type (gdbarch,
1591 tdep->ppc_fp0_regnum);
1592 convert_typed_floating (val, type, regval,
1593 regtype);
1594 regcache_cooked_write (regcache,
1595 (tdep->ppc_fp0_regnum
1596 + freg),
1597 regval);
1598 }
1599 freg++;
1600 }
1601 else if (TYPE_LENGTH (type) == 16
40a6adc1 1602 && (gdbarch_long_double_format (gdbarch)
36815e57
JM
1603 == floatformats_ibm_long_double))
1604 {
1605 if (write_pass)
1606 {
1607 regcache_cooked_write (regcache,
1608 (tdep->ppc_fp0_regnum
1609 + freg),
1610 val);
1611 if (freg <= 12)
1612 regcache_cooked_write (regcache,
1613 (tdep->ppc_fp0_regnum
1614 + freg + 1),
1615 val + 8);
1616 }
1617 freg += 2;
1618 }
1619 }
1620 }
8be9034a
AC
1621 /* Always consume parameter stack space. */
1622 gparam = align_up (gparam + TYPE_LENGTH (type), tdep->wordsize);
1623 }
1624 }
1625
1626 if (!write_pass)
1627 {
d6dafb7c
UW
1628 /* Save the true region sizes ready for the second pass.
1629 Make certain that the general parameter save area is at
8be9034a
AC
1630 least the minimum 8 registers (or doublewords) in size. */
1631 if (greg < 8)
1632 gparam_size = 8 * tdep->wordsize;
1633 else
1634 gparam_size = gparam;
1635 }
1636 }
1637
1638 /* Update %sp. */
40a6adc1 1639 regcache_cooked_write_signed (regcache, gdbarch_sp_regnum (gdbarch), sp);
8be9034a
AC
1640
1641 /* Write the backchain (it occupies WORDSIZED bytes). */
e17a4113 1642 write_memory_signed_integer (sp, tdep->wordsize, byte_order, back_chain);
8be9034a
AC
1643
1644 /* Point the inferior function call's return address at the dummy's
1645 breakpoint. */
1646 regcache_cooked_write_signed (regcache, tdep->ppc_lr_regnum, bp_addr);
1647
b6e1c027 1648 /* Use the func_addr to find the descriptor, and use that to find
69368a60
UW
1649 the TOC. If we're calling via a function pointer, the pointer
1650 itself identifies the descriptor. */
8be9034a 1651 {
69368a60
UW
1652 struct type *ftype = check_typedef (value_type (function));
1653 CORE_ADDR desc_addr = value_as_address (function);
1654
1655 if (TYPE_CODE (ftype) == TYPE_CODE_PTR
1656 || convert_code_addr_to_desc_addr (func_addr, &desc_addr))
8be9034a 1657 {
b6e1c027
AC
1658 /* The TOC is the second double word in the descriptor. */
1659 CORE_ADDR toc =
1660 read_memory_unsigned_integer (desc_addr + tdep->wordsize,
e17a4113 1661 tdep->wordsize, byte_order);
b6e1c027
AC
1662 regcache_cooked_write_unsigned (regcache,
1663 tdep->ppc_gp0_regnum + 2, toc);
8be9034a
AC
1664 }
1665 }
1666
1667 return sp;
1668}
1669
afd48b75 1670
55eddb0f 1671/* The 64 bit ABI return value convention.
afd48b75
AC
1672
1673 Return non-zero if the return-value is stored in a register, return
1674 0 if the return-value is instead stored on the stack (a.k.a.,
1675 struct return convention).
1676
963e2bb7 1677 For a return-value stored in a register: when WRITEBUF is non-NULL,
afd48b75 1678 copy the buffer to the corresponding register return-value location
963e2bb7 1679 location; when READBUF is non-NULL, fill the buffer from the
afd48b75 1680 corresponding register return-value location. */
05580c65 1681enum return_value_convention
c055b101
CV
1682ppc64_sysv_abi_return_value (struct gdbarch *gdbarch, struct type *func_type,
1683 struct type *valtype, struct regcache *regcache,
1684 gdb_byte *readbuf, const gdb_byte *writebuf)
afd48b75 1685{
05580c65 1686 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
e17a4113 1687 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
54fcddd0
UW
1688 int opencl_abi = 0;
1689
1690 if (func_type
1691 && TYPE_CALLING_CONVENTION (func_type) == DW_CC_GDB_IBM_OpenCL)
1692 opencl_abi = 1;
16796152
JB
1693
1694 /* This function exists to support a calling convention that
1695 requires floating-point registers. It shouldn't be used on
1696 processors that lack them. */
1697 gdb_assert (ppc_floating_point_unit_p (gdbarch));
1698
afd48b75 1699 /* Floats and doubles in F1. */
944fcfab 1700 if (TYPE_CODE (valtype) == TYPE_CODE_FLT && TYPE_LENGTH (valtype) <= 8)
afd48b75 1701 {
50fd1280 1702 gdb_byte regval[MAX_REGISTER_SIZE];
366f009f 1703 struct type *regtype = register_type (gdbarch, tdep->ppc_fp0_regnum);
963e2bb7 1704 if (writebuf != NULL)
afd48b75 1705 {
963e2bb7 1706 convert_typed_floating (writebuf, valtype, regval, regtype);
366f009f 1707 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 1, regval);
afd48b75 1708 }
963e2bb7 1709 if (readbuf != NULL)
afd48b75 1710 {
366f009f 1711 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 1, regval);
963e2bb7 1712 convert_typed_floating (regval, regtype, readbuf, valtype);
afd48b75
AC
1713 }
1714 return RETURN_VALUE_REGISTER_CONVENTION;
1715 }
1300a2f4
TJB
1716 if (TYPE_CODE (valtype) == TYPE_CODE_DECFLOAT)
1717 return get_decimal_float_return_value (gdbarch, valtype, regcache, readbuf,
1718 writebuf);
3d8476bc 1719 /* Integers in r3. */
b6e1c027 1720 if ((TYPE_CODE (valtype) == TYPE_CODE_INT
93d4208d
UW
1721 || TYPE_CODE (valtype) == TYPE_CODE_ENUM
1722 || TYPE_CODE (valtype) == TYPE_CODE_CHAR
1723 || TYPE_CODE (valtype) == TYPE_CODE_BOOL)
b6e1c027 1724 && TYPE_LENGTH (valtype) <= 8)
afd48b75 1725 {
963e2bb7 1726 if (writebuf != NULL)
afd48b75
AC
1727 {
1728 /* Be careful to sign extend the value. */
1729 regcache_cooked_write_unsigned (regcache, tdep->ppc_gp0_regnum + 3,
963e2bb7 1730 unpack_long (valtype, writebuf));
afd48b75 1731 }
963e2bb7 1732 if (readbuf != NULL)
afd48b75
AC
1733 {
1734 /* Extract the integer from r3. Since this is truncating the
1735 value, there isn't a sign extension problem. */
1736 ULONGEST regval;
1737 regcache_cooked_read_unsigned (regcache, tdep->ppc_gp0_regnum + 3,
1738 &regval);
e17a4113
UW
1739 store_unsigned_integer (readbuf, TYPE_LENGTH (valtype), byte_order,
1740 regval);
afd48b75
AC
1741 }
1742 return RETURN_VALUE_REGISTER_CONVENTION;
1743 }
1744 /* All pointers live in r3. */
93d4208d
UW
1745 if (TYPE_CODE (valtype) == TYPE_CODE_PTR
1746 || TYPE_CODE (valtype) == TYPE_CODE_REF)
afd48b75
AC
1747 {
1748 /* All pointers live in r3. */
963e2bb7
AC
1749 if (writebuf != NULL)
1750 regcache_cooked_write (regcache, tdep->ppc_gp0_regnum + 3, writebuf);
1751 if (readbuf != NULL)
1752 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum + 3, readbuf);
afd48b75
AC
1753 return RETURN_VALUE_REGISTER_CONVENTION;
1754 }
54fcddd0
UW
1755 /* OpenCL vectors < 16 bytes are returned as distinct
1756 scalars in f1..f2 or r3..r10. */
1757 if (TYPE_CODE (valtype) == TYPE_CODE_ARRAY
1758 && TYPE_VECTOR (valtype)
1759 && TYPE_LENGTH (valtype) < 16
1760 && opencl_abi)
1761 {
1762 struct type *eltype = check_typedef (TYPE_TARGET_TYPE (valtype));
1763 int i, nelt = TYPE_LENGTH (valtype) / TYPE_LENGTH (eltype);
1764
1765 for (i = 0; i < nelt; i++)
1766 {
1767 int offset = i * TYPE_LENGTH (eltype);
1768
1769 if (TYPE_CODE (eltype) == TYPE_CODE_FLT)
1770 {
1771 int regnum = tdep->ppc_fp0_regnum + 1 + i;
1772 gdb_byte regval[MAX_REGISTER_SIZE];
1773 struct type *regtype = register_type (gdbarch, regnum);
1774
1775 if (writebuf != NULL)
1776 {
1777 convert_typed_floating (writebuf + offset, eltype,
1778 regval, regtype);
1779 regcache_cooked_write (regcache, regnum, regval);
1780 }
1781 if (readbuf != NULL)
1782 {
1783 regcache_cooked_read (regcache, regnum, regval);
1784 convert_typed_floating (regval, regtype,
1785 readbuf + offset, eltype);
1786 }
1787 }
1788 else
1789 {
1790 int regnum = tdep->ppc_gp0_regnum + 3 + i;
1791 ULONGEST regval;
1792
1793 if (writebuf != NULL)
1794 {
1795 regval = unpack_long (eltype, writebuf + offset);
1796 regcache_cooked_write_unsigned (regcache, regnum, regval);
1797 }
1798 if (readbuf != NULL)
1799 {
1800 regcache_cooked_read_unsigned (regcache, regnum, &regval);
1801 store_unsigned_integer (readbuf + offset,
1802 TYPE_LENGTH (eltype), byte_order,
1803 regval);
1804 }
1805 }
1806 }
1807
1808 return RETURN_VALUE_REGISTER_CONVENTION;
1809 }
1810 /* OpenCL vectors >= 16 bytes are returned in v2..v9. */
1811 if (TYPE_CODE (valtype) == TYPE_CODE_ARRAY
1812 && TYPE_VECTOR (valtype)
1813 && TYPE_LENGTH (valtype) >= 16
1814 && opencl_abi)
1815 {
1816 int n_regs = TYPE_LENGTH (valtype) / 16;
1817 int i;
1818
1819 for (i = 0; i < n_regs; i++)
1820 {
1821 int offset = i * 16;
1822 int regnum = tdep->ppc_vr0_regnum + 2 + i;
1823
1824 if (writebuf != NULL)
1825 regcache_cooked_write (regcache, regnum, writebuf + offset);
1826 if (readbuf != NULL)
1827 regcache_cooked_read (regcache, regnum, readbuf + offset);
1828 }
1829
1830 return RETURN_VALUE_REGISTER_CONVENTION;
1831 }
3d8476bc
PG
1832 /* Array type has more than one use. */
1833 if (TYPE_CODE (valtype) == TYPE_CODE_ARRAY)
afd48b75
AC
1834 {
1835 /* Small character arrays are returned, right justified, in r3. */
3d8476bc
PG
1836 if (TYPE_LENGTH (valtype) <= 8
1837 && TYPE_CODE (TYPE_TARGET_TYPE (valtype)) == TYPE_CODE_INT
1838 && TYPE_LENGTH (TYPE_TARGET_TYPE (valtype)) == 1)
1839 {
1840 int offset = (register_size (gdbarch, tdep->ppc_gp0_regnum + 3)
1841 - TYPE_LENGTH (valtype));
1842 if (writebuf != NULL)
1843 regcache_cooked_write_part (regcache, tdep->ppc_gp0_regnum + 3,
1844 offset, TYPE_LENGTH (valtype), writebuf);
1845 if (readbuf != NULL)
1846 regcache_cooked_read_part (regcache, tdep->ppc_gp0_regnum + 3,
1847 offset, TYPE_LENGTH (valtype), readbuf);
1848 return RETURN_VALUE_REGISTER_CONVENTION;
1849 }
1850 /* A VMX vector is returned in v2. */
1851 if (TYPE_CODE (valtype) == TYPE_CODE_ARRAY
1852 && TYPE_VECTOR (valtype) && tdep->ppc_vr0_regnum >= 0)
1853 {
1854 if (readbuf)
1855 regcache_cooked_read (regcache, tdep->ppc_vr0_regnum + 2, readbuf);
1856 if (writebuf)
0df8b418
MS
1857 regcache_cooked_write (regcache, tdep->ppc_vr0_regnum + 2,
1858 writebuf);
3d8476bc
PG
1859 return RETURN_VALUE_REGISTER_CONVENTION;
1860 }
afd48b75
AC
1861 }
1862 /* Big floating point values get stored in adjacent floating
3d8476bc 1863 point registers, starting with F1. */
afd48b75 1864 if (TYPE_CODE (valtype) == TYPE_CODE_FLT
944fcfab 1865 && (TYPE_LENGTH (valtype) == 16 || TYPE_LENGTH (valtype) == 32))
afd48b75 1866 {
963e2bb7 1867 if (writebuf || readbuf != NULL)
afd48b75
AC
1868 {
1869 int i;
1870 for (i = 0; i < TYPE_LENGTH (valtype) / 8; i++)
1871 {
963e2bb7 1872 if (writebuf != NULL)
366f009f 1873 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 1 + i,
963e2bb7
AC
1874 (const bfd_byte *) writebuf + i * 8);
1875 if (readbuf != NULL)
366f009f 1876 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 1 + i,
963e2bb7 1877 (bfd_byte *) readbuf + i * 8);
afd48b75
AC
1878 }
1879 }
1880 return RETURN_VALUE_REGISTER_CONVENTION;
1881 }
1882 /* Complex values get returned in f1:f2, need to convert. */
1883 if (TYPE_CODE (valtype) == TYPE_CODE_COMPLEX
1884 && (TYPE_LENGTH (valtype) == 8 || TYPE_LENGTH (valtype) == 16))
1885 {
1886 if (regcache != NULL)
1887 {
1888 int i;
1889 for (i = 0; i < 2; i++)
1890 {
50fd1280 1891 gdb_byte regval[MAX_REGISTER_SIZE];
944fcfab 1892 struct type *regtype =
40a6adc1 1893 register_type (gdbarch, tdep->ppc_fp0_regnum);
963e2bb7 1894 if (writebuf != NULL)
afd48b75 1895 {
963e2bb7 1896 convert_typed_floating ((const bfd_byte *) writebuf +
944fcfab 1897 i * (TYPE_LENGTH (valtype) / 2),
afd48b75 1898 valtype, regval, regtype);
366f009f
JB
1899 regcache_cooked_write (regcache,
1900 tdep->ppc_fp0_regnum + 1 + i,
944fcfab 1901 regval);
afd48b75 1902 }
963e2bb7 1903 if (readbuf != NULL)
afd48b75 1904 {
366f009f
JB
1905 regcache_cooked_read (regcache,
1906 tdep->ppc_fp0_regnum + 1 + i,
1907 regval);
afd48b75 1908 convert_typed_floating (regval, regtype,
963e2bb7 1909 (bfd_byte *) readbuf +
944fcfab 1910 i * (TYPE_LENGTH (valtype) / 2),
afd48b75
AC
1911 valtype);
1912 }
1913 }
1914 }
1915 return RETURN_VALUE_REGISTER_CONVENTION;
1916 }
1917 /* Big complex values get stored in f1:f4. */
944fcfab 1918 if (TYPE_CODE (valtype) == TYPE_CODE_COMPLEX && TYPE_LENGTH (valtype) == 32)
afd48b75
AC
1919 {
1920 if (regcache != NULL)
1921 {
1922 int i;
1923 for (i = 0; i < 4; i++)
1924 {
963e2bb7 1925 if (writebuf != NULL)
366f009f 1926 regcache_cooked_write (regcache, tdep->ppc_fp0_regnum + 1 + i,
963e2bb7
AC
1927 (const bfd_byte *) writebuf + i * 8);
1928 if (readbuf != NULL)
366f009f 1929 regcache_cooked_read (regcache, tdep->ppc_fp0_regnum + 1 + i,
963e2bb7 1930 (bfd_byte *) readbuf + i * 8);
afd48b75
AC
1931 }
1932 }
1933 return RETURN_VALUE_REGISTER_CONVENTION;
1934 }
1935 return RETURN_VALUE_STRUCT_CONVENTION;
1936}
1937
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