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771b4502 | 1 | /* SPU target-dependent code for GDB, the GNU debugger. |
6aba47ca | 2 | Copyright (C) 2006, 2007 Free Software Foundation, Inc. |
771b4502 UW |
3 | |
4 | Contributed by Ulrich Weigand <[email protected]>. | |
5 | Based on a port by Sid Manning <[email protected]>. | |
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 | |
11 | the Free Software Foundation; either version 2 of the License, or | |
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 | |
20 | along with this program; if not, write to the Free Software | |
21 | Foundation, Inc., 51 Franklin Street, Fifth Floor, | |
22 | Boston, MA 02110-1301, USA. */ | |
23 | ||
24 | #include "defs.h" | |
25 | #include "arch-utils.h" | |
26 | #include "gdbtypes.h" | |
27 | #include "gdbcmd.h" | |
28 | #include "gdbcore.h" | |
29 | #include "gdb_string.h" | |
30 | #include "gdb_assert.h" | |
31 | #include "frame.h" | |
32 | #include "frame-unwind.h" | |
33 | #include "frame-base.h" | |
34 | #include "trad-frame.h" | |
35 | #include "symtab.h" | |
36 | #include "symfile.h" | |
37 | #include "value.h" | |
38 | #include "inferior.h" | |
39 | #include "dis-asm.h" | |
40 | #include "objfiles.h" | |
41 | #include "language.h" | |
42 | #include "regcache.h" | |
43 | #include "reggroups.h" | |
44 | #include "floatformat.h" | |
45 | ||
46 | #include "spu-tdep.h" | |
47 | ||
f2d43c2c UW |
48 | /* SPU-specific vector type. */ |
49 | struct type *spu_builtin_type_vec128; | |
771b4502 UW |
50 | |
51 | /* Registers. */ | |
52 | ||
53 | static const char * | |
54 | spu_register_name (int reg_nr) | |
55 | { | |
56 | static char *register_names[] = | |
57 | { | |
58 | "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7", | |
59 | "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", | |
60 | "r16", "r17", "r18", "r19", "r20", "r21", "r22", "r23", | |
61 | "r24", "r25", "r26", "r27", "r28", "r29", "r30", "r31", | |
62 | "r32", "r33", "r34", "r35", "r36", "r37", "r38", "r39", | |
63 | "r40", "r41", "r42", "r43", "r44", "r45", "r46", "r47", | |
64 | "r48", "r49", "r50", "r51", "r52", "r53", "r54", "r55", | |
65 | "r56", "r57", "r58", "r59", "r60", "r61", "r62", "r63", | |
66 | "r64", "r65", "r66", "r67", "r68", "r69", "r70", "r71", | |
67 | "r72", "r73", "r74", "r75", "r76", "r77", "r78", "r79", | |
68 | "r80", "r81", "r82", "r83", "r84", "r85", "r86", "r87", | |
69 | "r88", "r89", "r90", "r91", "r92", "r93", "r94", "r95", | |
70 | "r96", "r97", "r98", "r99", "r100", "r101", "r102", "r103", | |
71 | "r104", "r105", "r106", "r107", "r108", "r109", "r110", "r111", | |
72 | "r112", "r113", "r114", "r115", "r116", "r117", "r118", "r119", | |
73 | "r120", "r121", "r122", "r123", "r124", "r125", "r126", "r127", | |
74 | "id", "pc", "sp" | |
75 | }; | |
76 | ||
77 | if (reg_nr < 0) | |
78 | return NULL; | |
79 | if (reg_nr >= sizeof register_names / sizeof *register_names) | |
80 | return NULL; | |
81 | ||
82 | return register_names[reg_nr]; | |
83 | } | |
84 | ||
85 | static struct type * | |
86 | spu_register_type (struct gdbarch *gdbarch, int reg_nr) | |
87 | { | |
88 | if (reg_nr < SPU_NUM_GPRS) | |
f2d43c2c | 89 | return spu_builtin_type_vec128; |
771b4502 UW |
90 | |
91 | switch (reg_nr) | |
92 | { | |
93 | case SPU_ID_REGNUM: | |
94 | return builtin_type_uint32; | |
95 | ||
96 | case SPU_PC_REGNUM: | |
97 | return builtin_type_void_func_ptr; | |
98 | ||
99 | case SPU_SP_REGNUM: | |
100 | return builtin_type_void_data_ptr; | |
101 | ||
102 | default: | |
103 | internal_error (__FILE__, __LINE__, "invalid regnum"); | |
104 | } | |
105 | } | |
106 | ||
107 | /* Pseudo registers for preferred slots - stack pointer. */ | |
108 | ||
109 | static void | |
110 | spu_pseudo_register_read (struct gdbarch *gdbarch, struct regcache *regcache, | |
111 | int regnum, gdb_byte *buf) | |
112 | { | |
113 | gdb_byte reg[16]; | |
114 | ||
115 | switch (regnum) | |
116 | { | |
117 | case SPU_SP_REGNUM: | |
118 | regcache_raw_read (regcache, SPU_RAW_SP_REGNUM, reg); | |
119 | memcpy (buf, reg, 4); | |
120 | break; | |
121 | ||
122 | default: | |
123 | internal_error (__FILE__, __LINE__, _("invalid regnum")); | |
124 | } | |
125 | } | |
126 | ||
127 | static void | |
128 | spu_pseudo_register_write (struct gdbarch *gdbarch, struct regcache *regcache, | |
129 | int regnum, const gdb_byte *buf) | |
130 | { | |
131 | gdb_byte reg[16]; | |
132 | ||
133 | switch (regnum) | |
134 | { | |
135 | case SPU_SP_REGNUM: | |
136 | regcache_raw_read (regcache, SPU_RAW_SP_REGNUM, reg); | |
137 | memcpy (reg, buf, 4); | |
138 | regcache_raw_write (regcache, SPU_RAW_SP_REGNUM, reg); | |
139 | break; | |
140 | ||
141 | default: | |
142 | internal_error (__FILE__, __LINE__, _("invalid regnum")); | |
143 | } | |
144 | } | |
145 | ||
146 | /* Value conversion -- access scalar values at the preferred slot. */ | |
147 | ||
9acbedc0 UW |
148 | static struct value * |
149 | spu_value_from_register (struct type *type, int regnum, | |
150 | struct frame_info *frame) | |
771b4502 | 151 | { |
9acbedc0 UW |
152 | struct value *value = default_value_from_register (type, regnum, frame); |
153 | int len = TYPE_LENGTH (type); | |
771b4502 | 154 | |
9acbedc0 UW |
155 | if (regnum < SPU_NUM_GPRS && len < 16) |
156 | { | |
157 | int preferred_slot = len < 4 ? 4 - len : 0; | |
158 | set_value_offset (value, preferred_slot); | |
159 | } | |
771b4502 | 160 | |
9acbedc0 | 161 | return value; |
771b4502 UW |
162 | } |
163 | ||
164 | /* Register groups. */ | |
165 | ||
166 | static int | |
167 | spu_register_reggroup_p (struct gdbarch *gdbarch, int regnum, | |
168 | struct reggroup *group) | |
169 | { | |
170 | /* Registers displayed via 'info regs'. */ | |
171 | if (group == general_reggroup) | |
172 | return 1; | |
173 | ||
174 | /* Registers displayed via 'info float'. */ | |
175 | if (group == float_reggroup) | |
176 | return 0; | |
177 | ||
178 | /* Registers that need to be saved/restored in order to | |
179 | push or pop frames. */ | |
180 | if (group == save_reggroup || group == restore_reggroup) | |
181 | return 1; | |
182 | ||
183 | return default_register_reggroup_p (gdbarch, regnum, group); | |
184 | } | |
185 | ||
186 | ||
187 | /* Decoding SPU instructions. */ | |
188 | ||
189 | enum | |
190 | { | |
191 | op_lqd = 0x34, | |
192 | op_lqx = 0x3c4, | |
193 | op_lqa = 0x61, | |
194 | op_lqr = 0x67, | |
195 | op_stqd = 0x24, | |
196 | op_stqx = 0x144, | |
197 | op_stqa = 0x41, | |
198 | op_stqr = 0x47, | |
199 | ||
200 | op_il = 0x081, | |
201 | op_ila = 0x21, | |
202 | op_a = 0x0c0, | |
203 | op_ai = 0x1c, | |
204 | ||
205 | op_selb = 0x4, | |
206 | ||
207 | op_br = 0x64, | |
208 | op_bra = 0x60, | |
209 | op_brsl = 0x66, | |
210 | op_brasl = 0x62, | |
211 | op_brnz = 0x42, | |
212 | op_brz = 0x40, | |
213 | op_brhnz = 0x46, | |
214 | op_brhz = 0x44, | |
215 | op_bi = 0x1a8, | |
216 | op_bisl = 0x1a9, | |
217 | op_biz = 0x128, | |
218 | op_binz = 0x129, | |
219 | op_bihz = 0x12a, | |
220 | op_bihnz = 0x12b, | |
221 | }; | |
222 | ||
223 | static int | |
224 | is_rr (unsigned int insn, int op, int *rt, int *ra, int *rb) | |
225 | { | |
226 | if ((insn >> 21) == op) | |
227 | { | |
228 | *rt = insn & 127; | |
229 | *ra = (insn >> 7) & 127; | |
230 | *rb = (insn >> 14) & 127; | |
231 | return 1; | |
232 | } | |
233 | ||
234 | return 0; | |
235 | } | |
236 | ||
237 | static int | |
238 | is_rrr (unsigned int insn, int op, int *rt, int *ra, int *rb, int *rc) | |
239 | { | |
240 | if ((insn >> 28) == op) | |
241 | { | |
242 | *rt = (insn >> 21) & 127; | |
243 | *ra = (insn >> 7) & 127; | |
244 | *rb = (insn >> 14) & 127; | |
245 | *rc = insn & 127; | |
246 | return 1; | |
247 | } | |
248 | ||
249 | return 0; | |
250 | } | |
251 | ||
252 | static int | |
253 | is_ri7 (unsigned int insn, int op, int *rt, int *ra, int *i7) | |
254 | { | |
255 | if ((insn >> 21) == op) | |
256 | { | |
257 | *rt = insn & 127; | |
258 | *ra = (insn >> 7) & 127; | |
259 | *i7 = (((insn >> 14) & 127) ^ 0x40) - 0x40; | |
260 | return 1; | |
261 | } | |
262 | ||
263 | return 0; | |
264 | } | |
265 | ||
266 | static int | |
267 | is_ri10 (unsigned int insn, int op, int *rt, int *ra, int *i10) | |
268 | { | |
269 | if ((insn >> 24) == op) | |
270 | { | |
271 | *rt = insn & 127; | |
272 | *ra = (insn >> 7) & 127; | |
273 | *i10 = (((insn >> 14) & 0x3ff) ^ 0x200) - 0x200; | |
274 | return 1; | |
275 | } | |
276 | ||
277 | return 0; | |
278 | } | |
279 | ||
280 | static int | |
281 | is_ri16 (unsigned int insn, int op, int *rt, int *i16) | |
282 | { | |
283 | if ((insn >> 23) == op) | |
284 | { | |
285 | *rt = insn & 127; | |
286 | *i16 = (((insn >> 7) & 0xffff) ^ 0x8000) - 0x8000; | |
287 | return 1; | |
288 | } | |
289 | ||
290 | return 0; | |
291 | } | |
292 | ||
293 | static int | |
294 | is_ri18 (unsigned int insn, int op, int *rt, int *i18) | |
295 | { | |
296 | if ((insn >> 25) == op) | |
297 | { | |
298 | *rt = insn & 127; | |
299 | *i18 = (((insn >> 7) & 0x3ffff) ^ 0x20000) - 0x20000; | |
300 | return 1; | |
301 | } | |
302 | ||
303 | return 0; | |
304 | } | |
305 | ||
306 | static int | |
307 | is_branch (unsigned int insn, int *offset, int *reg) | |
308 | { | |
309 | int rt, i7, i16; | |
310 | ||
311 | if (is_ri16 (insn, op_br, &rt, &i16) | |
312 | || is_ri16 (insn, op_brsl, &rt, &i16) | |
313 | || is_ri16 (insn, op_brnz, &rt, &i16) | |
314 | || is_ri16 (insn, op_brz, &rt, &i16) | |
315 | || is_ri16 (insn, op_brhnz, &rt, &i16) | |
316 | || is_ri16 (insn, op_brhz, &rt, &i16)) | |
317 | { | |
318 | *reg = SPU_PC_REGNUM; | |
319 | *offset = i16 << 2; | |
320 | return 1; | |
321 | } | |
322 | ||
323 | if (is_ri16 (insn, op_bra, &rt, &i16) | |
324 | || is_ri16 (insn, op_brasl, &rt, &i16)) | |
325 | { | |
326 | *reg = -1; | |
327 | *offset = i16 << 2; | |
328 | return 1; | |
329 | } | |
330 | ||
331 | if (is_ri7 (insn, op_bi, &rt, reg, &i7) | |
332 | || is_ri7 (insn, op_bisl, &rt, reg, &i7) | |
333 | || is_ri7 (insn, op_biz, &rt, reg, &i7) | |
334 | || is_ri7 (insn, op_binz, &rt, reg, &i7) | |
335 | || is_ri7 (insn, op_bihz, &rt, reg, &i7) | |
336 | || is_ri7 (insn, op_bihnz, &rt, reg, &i7)) | |
337 | { | |
338 | *offset = 0; | |
339 | return 1; | |
340 | } | |
341 | ||
342 | return 0; | |
343 | } | |
344 | ||
345 | ||
346 | /* Prolog parsing. */ | |
347 | ||
348 | struct spu_prologue_data | |
349 | { | |
350 | /* Stack frame size. -1 if analysis was unsuccessful. */ | |
351 | int size; | |
352 | ||
353 | /* How to find the CFA. The CFA is equal to SP at function entry. */ | |
354 | int cfa_reg; | |
355 | int cfa_offset; | |
356 | ||
357 | /* Offset relative to CFA where a register is saved. -1 if invalid. */ | |
358 | int reg_offset[SPU_NUM_GPRS]; | |
359 | }; | |
360 | ||
361 | static CORE_ADDR | |
362 | spu_analyze_prologue (CORE_ADDR start_pc, CORE_ADDR end_pc, | |
363 | struct spu_prologue_data *data) | |
364 | { | |
365 | int found_sp = 0; | |
366 | int found_fp = 0; | |
367 | int found_lr = 0; | |
368 | int reg_immed[SPU_NUM_GPRS]; | |
369 | gdb_byte buf[16]; | |
370 | CORE_ADDR prolog_pc = start_pc; | |
371 | CORE_ADDR pc; | |
372 | int i; | |
373 | ||
374 | ||
375 | /* Initialize DATA to default values. */ | |
376 | data->size = -1; | |
377 | ||
378 | data->cfa_reg = SPU_RAW_SP_REGNUM; | |
379 | data->cfa_offset = 0; | |
380 | ||
381 | for (i = 0; i < SPU_NUM_GPRS; i++) | |
382 | data->reg_offset[i] = -1; | |
383 | ||
384 | /* Set up REG_IMMED array. This is non-zero for a register if we know its | |
385 | preferred slot currently holds this immediate value. */ | |
386 | for (i = 0; i < SPU_NUM_GPRS; i++) | |
387 | reg_immed[i] = 0; | |
388 | ||
389 | /* Scan instructions until the first branch. | |
390 | ||
391 | The following instructions are important prolog components: | |
392 | ||
393 | - The first instruction to set up the stack pointer. | |
394 | - The first instruction to set up the frame pointer. | |
395 | - The first instruction to save the link register. | |
396 | ||
397 | We return the instruction after the latest of these three, | |
398 | or the incoming PC if none is found. The first instruction | |
399 | to set up the stack pointer also defines the frame size. | |
400 | ||
401 | Note that instructions saving incoming arguments to their stack | |
402 | slots are not counted as important, because they are hard to | |
403 | identify with certainty. This should not matter much, because | |
404 | arguments are relevant only in code compiled with debug data, | |
405 | and in such code the GDB core will advance until the first source | |
406 | line anyway, using SAL data. | |
407 | ||
408 | For purposes of stack unwinding, we analyze the following types | |
409 | of instructions in addition: | |
410 | ||
411 | - Any instruction adding to the current frame pointer. | |
412 | - Any instruction loading an immediate constant into a register. | |
413 | - Any instruction storing a register onto the stack. | |
414 | ||
415 | These are used to compute the CFA and REG_OFFSET output. */ | |
416 | ||
417 | for (pc = start_pc; pc < end_pc; pc += 4) | |
418 | { | |
419 | unsigned int insn; | |
420 | int rt, ra, rb, rc, immed; | |
421 | ||
422 | if (target_read_memory (pc, buf, 4)) | |
423 | break; | |
424 | insn = extract_unsigned_integer (buf, 4); | |
425 | ||
426 | /* AI is the typical instruction to set up a stack frame. | |
427 | It is also used to initialize the frame pointer. */ | |
428 | if (is_ri10 (insn, op_ai, &rt, &ra, &immed)) | |
429 | { | |
430 | if (rt == data->cfa_reg && ra == data->cfa_reg) | |
431 | data->cfa_offset -= immed; | |
432 | ||
433 | if (rt == SPU_RAW_SP_REGNUM && ra == SPU_RAW_SP_REGNUM | |
434 | && !found_sp) | |
435 | { | |
436 | found_sp = 1; | |
437 | prolog_pc = pc + 4; | |
438 | ||
439 | data->size = -immed; | |
440 | } | |
441 | else if (rt == SPU_FP_REGNUM && ra == SPU_RAW_SP_REGNUM | |
442 | && !found_fp) | |
443 | { | |
444 | found_fp = 1; | |
445 | prolog_pc = pc + 4; | |
446 | ||
447 | data->cfa_reg = SPU_FP_REGNUM; | |
448 | data->cfa_offset -= immed; | |
449 | } | |
450 | } | |
451 | ||
452 | /* A is used to set up stack frames of size >= 512 bytes. | |
453 | If we have tracked the contents of the addend register, | |
454 | we can handle this as well. */ | |
455 | else if (is_rr (insn, op_a, &rt, &ra, &rb)) | |
456 | { | |
457 | if (rt == data->cfa_reg && ra == data->cfa_reg) | |
458 | { | |
459 | if (reg_immed[rb] != 0) | |
460 | data->cfa_offset -= reg_immed[rb]; | |
461 | else | |
462 | data->cfa_reg = -1; /* We don't know the CFA any more. */ | |
463 | } | |
464 | ||
465 | if (rt == SPU_RAW_SP_REGNUM && ra == SPU_RAW_SP_REGNUM | |
466 | && !found_sp) | |
467 | { | |
468 | found_sp = 1; | |
469 | prolog_pc = pc + 4; | |
470 | ||
471 | if (reg_immed[rb] != 0) | |
472 | data->size = -reg_immed[rb]; | |
473 | } | |
474 | } | |
475 | ||
476 | /* We need to track IL and ILA used to load immediate constants | |
477 | in case they are later used as input to an A instruction. */ | |
478 | else if (is_ri16 (insn, op_il, &rt, &immed)) | |
479 | { | |
480 | reg_immed[rt] = immed; | |
12102450 UW |
481 | |
482 | if (rt == SPU_RAW_SP_REGNUM && !found_sp) | |
483 | found_sp = 1; | |
771b4502 UW |
484 | } |
485 | ||
486 | else if (is_ri18 (insn, op_ila, &rt, &immed)) | |
487 | { | |
488 | reg_immed[rt] = immed & 0x3ffff; | |
12102450 UW |
489 | |
490 | if (rt == SPU_RAW_SP_REGNUM && !found_sp) | |
491 | found_sp = 1; | |
771b4502 UW |
492 | } |
493 | ||
494 | /* STQD is used to save registers to the stack. */ | |
495 | else if (is_ri10 (insn, op_stqd, &rt, &ra, &immed)) | |
496 | { | |
497 | if (ra == data->cfa_reg) | |
498 | data->reg_offset[rt] = data->cfa_offset - (immed << 4); | |
499 | ||
500 | if (ra == data->cfa_reg && rt == SPU_LR_REGNUM | |
501 | && !found_lr) | |
502 | { | |
503 | found_lr = 1; | |
504 | prolog_pc = pc + 4; | |
505 | } | |
506 | } | |
507 | ||
508 | /* _start uses SELB to set up the stack pointer. */ | |
509 | else if (is_rrr (insn, op_selb, &rt, &ra, &rb, &rc)) | |
510 | { | |
511 | if (rt == SPU_RAW_SP_REGNUM && !found_sp) | |
512 | found_sp = 1; | |
513 | } | |
514 | ||
515 | /* We terminate if we find a branch. */ | |
516 | else if (is_branch (insn, &immed, &ra)) | |
517 | break; | |
518 | } | |
519 | ||
520 | ||
521 | /* If we successfully parsed until here, and didn't find any instruction | |
522 | modifying SP, we assume we have a frameless function. */ | |
523 | if (!found_sp) | |
524 | data->size = 0; | |
525 | ||
526 | /* Return cooked instead of raw SP. */ | |
527 | if (data->cfa_reg == SPU_RAW_SP_REGNUM) | |
528 | data->cfa_reg = SPU_SP_REGNUM; | |
529 | ||
530 | return prolog_pc; | |
531 | } | |
532 | ||
533 | /* Return the first instruction after the prologue starting at PC. */ | |
534 | static CORE_ADDR | |
535 | spu_skip_prologue (CORE_ADDR pc) | |
536 | { | |
537 | struct spu_prologue_data data; | |
538 | return spu_analyze_prologue (pc, (CORE_ADDR)-1, &data); | |
539 | } | |
540 | ||
541 | /* Return the frame pointer in use at address PC. */ | |
542 | static void | |
543 | spu_virtual_frame_pointer (CORE_ADDR pc, int *reg, LONGEST *offset) | |
544 | { | |
545 | struct spu_prologue_data data; | |
546 | spu_analyze_prologue (pc, (CORE_ADDR)-1, &data); | |
547 | ||
548 | if (data.size != -1 && data.cfa_reg != -1) | |
549 | { | |
550 | /* The 'frame pointer' address is CFA minus frame size. */ | |
551 | *reg = data.cfa_reg; | |
552 | *offset = data.cfa_offset - data.size; | |
553 | } | |
554 | else | |
555 | { | |
556 | /* ??? We don't really know ... */ | |
557 | *reg = SPU_SP_REGNUM; | |
558 | *offset = 0; | |
559 | } | |
560 | } | |
561 | ||
fe5febed UW |
562 | /* Return true if we are in the function's epilogue, i.e. after the |
563 | instruction that destroyed the function's stack frame. | |
564 | ||
565 | 1) scan forward from the point of execution: | |
566 | a) If you find an instruction that modifies the stack pointer | |
567 | or transfers control (except a return), execution is not in | |
568 | an epilogue, return. | |
569 | b) Stop scanning if you find a return instruction or reach the | |
570 | end of the function or reach the hard limit for the size of | |
571 | an epilogue. | |
572 | 2) scan backward from the point of execution: | |
573 | a) If you find an instruction that modifies the stack pointer, | |
574 | execution *is* in an epilogue, return. | |
575 | b) Stop scanning if you reach an instruction that transfers | |
576 | control or the beginning of the function or reach the hard | |
577 | limit for the size of an epilogue. */ | |
578 | ||
579 | static int | |
580 | spu_in_function_epilogue_p (struct gdbarch *gdbarch, CORE_ADDR pc) | |
581 | { | |
582 | CORE_ADDR scan_pc, func_start, func_end, epilogue_start, epilogue_end; | |
583 | bfd_byte buf[4]; | |
584 | unsigned int insn; | |
585 | int rt, ra, rb, rc, immed; | |
586 | ||
587 | /* Find the search limits based on function boundaries and hard limit. | |
588 | We assume the epilogue can be up to 64 instructions long. */ | |
589 | ||
590 | const int spu_max_epilogue_size = 64 * 4; | |
591 | ||
592 | if (!find_pc_partial_function (pc, NULL, &func_start, &func_end)) | |
593 | return 0; | |
594 | ||
595 | if (pc - func_start < spu_max_epilogue_size) | |
596 | epilogue_start = func_start; | |
597 | else | |
598 | epilogue_start = pc - spu_max_epilogue_size; | |
599 | ||
600 | if (func_end - pc < spu_max_epilogue_size) | |
601 | epilogue_end = func_end; | |
602 | else | |
603 | epilogue_end = pc + spu_max_epilogue_size; | |
604 | ||
605 | /* Scan forward until next 'bi $0'. */ | |
606 | ||
607 | for (scan_pc = pc; scan_pc < epilogue_end; scan_pc += 4) | |
608 | { | |
609 | if (target_read_memory (scan_pc, buf, 4)) | |
610 | return 0; | |
611 | insn = extract_unsigned_integer (buf, 4); | |
612 | ||
613 | if (is_branch (insn, &immed, &ra)) | |
614 | { | |
615 | if (immed == 0 && ra == SPU_LR_REGNUM) | |
616 | break; | |
617 | ||
618 | return 0; | |
619 | } | |
620 | ||
621 | if (is_ri10 (insn, op_ai, &rt, &ra, &immed) | |
622 | || is_rr (insn, op_a, &rt, &ra, &rb) | |
623 | || is_ri10 (insn, op_lqd, &rt, &ra, &immed)) | |
624 | { | |
625 | if (rt == SPU_RAW_SP_REGNUM) | |
626 | return 0; | |
627 | } | |
628 | } | |
629 | ||
630 | if (scan_pc >= epilogue_end) | |
631 | return 0; | |
632 | ||
633 | /* Scan backward until adjustment to stack pointer (R1). */ | |
634 | ||
635 | for (scan_pc = pc - 4; scan_pc >= epilogue_start; scan_pc -= 4) | |
636 | { | |
637 | if (target_read_memory (scan_pc, buf, 4)) | |
638 | return 0; | |
639 | insn = extract_unsigned_integer (buf, 4); | |
640 | ||
641 | if (is_branch (insn, &immed, &ra)) | |
642 | return 0; | |
643 | ||
644 | if (is_ri10 (insn, op_ai, &rt, &ra, &immed) | |
645 | || is_rr (insn, op_a, &rt, &ra, &rb) | |
646 | || is_ri10 (insn, op_lqd, &rt, &ra, &immed)) | |
647 | { | |
648 | if (rt == SPU_RAW_SP_REGNUM) | |
649 | return 1; | |
650 | } | |
651 | } | |
652 | ||
653 | return 0; | |
654 | } | |
655 | ||
656 | ||
771b4502 UW |
657 | /* Normal stack frames. */ |
658 | ||
659 | struct spu_unwind_cache | |
660 | { | |
661 | CORE_ADDR func; | |
662 | CORE_ADDR frame_base; | |
663 | CORE_ADDR local_base; | |
664 | ||
665 | struct trad_frame_saved_reg *saved_regs; | |
666 | }; | |
667 | ||
668 | static struct spu_unwind_cache * | |
669 | spu_frame_unwind_cache (struct frame_info *next_frame, | |
670 | void **this_prologue_cache) | |
671 | { | |
672 | struct spu_unwind_cache *info; | |
673 | struct spu_prologue_data data; | |
674 | ||
675 | if (*this_prologue_cache) | |
676 | return *this_prologue_cache; | |
677 | ||
678 | info = FRAME_OBSTACK_ZALLOC (struct spu_unwind_cache); | |
679 | *this_prologue_cache = info; | |
680 | info->saved_regs = trad_frame_alloc_saved_regs (next_frame); | |
681 | info->frame_base = 0; | |
682 | info->local_base = 0; | |
683 | ||
684 | /* Find the start of the current function, and analyze its prologue. */ | |
93d42b30 | 685 | info->func = frame_func_unwind (next_frame, NORMAL_FRAME); |
771b4502 UW |
686 | if (info->func == 0) |
687 | { | |
688 | /* Fall back to using the current PC as frame ID. */ | |
689 | info->func = frame_pc_unwind (next_frame); | |
690 | data.size = -1; | |
691 | } | |
692 | else | |
693 | spu_analyze_prologue (info->func, frame_pc_unwind (next_frame), &data); | |
694 | ||
695 | ||
696 | /* If successful, use prologue analysis data. */ | |
697 | if (data.size != -1 && data.cfa_reg != -1) | |
698 | { | |
699 | CORE_ADDR cfa; | |
700 | int i; | |
701 | gdb_byte buf[16]; | |
702 | ||
703 | /* Determine CFA via unwound CFA_REG plus CFA_OFFSET. */ | |
704 | frame_unwind_register (next_frame, data.cfa_reg, buf); | |
705 | cfa = extract_unsigned_integer (buf, 4) + data.cfa_offset; | |
706 | ||
707 | /* Call-saved register slots. */ | |
708 | for (i = 0; i < SPU_NUM_GPRS; i++) | |
709 | if (i == SPU_LR_REGNUM | |
710 | || (i >= SPU_SAVED1_REGNUM && i <= SPU_SAVEDN_REGNUM)) | |
711 | if (data.reg_offset[i] != -1) | |
712 | info->saved_regs[i].addr = cfa - data.reg_offset[i]; | |
713 | ||
714 | /* The previous PC comes from the link register. */ | |
715 | if (trad_frame_addr_p (info->saved_regs, SPU_LR_REGNUM)) | |
716 | info->saved_regs[SPU_PC_REGNUM] = info->saved_regs[SPU_LR_REGNUM]; | |
717 | else | |
718 | info->saved_regs[SPU_PC_REGNUM].realreg = SPU_LR_REGNUM; | |
719 | ||
720 | /* The previous SP is equal to the CFA. */ | |
721 | trad_frame_set_value (info->saved_regs, SPU_SP_REGNUM, cfa); | |
722 | ||
723 | /* Frame bases. */ | |
724 | info->frame_base = cfa; | |
725 | info->local_base = cfa - data.size; | |
726 | } | |
727 | ||
728 | /* Otherwise, fall back to reading the backchain link. */ | |
729 | else | |
730 | { | |
731 | CORE_ADDR reg, backchain; | |
732 | ||
733 | /* Get the backchain. */ | |
734 | reg = frame_unwind_register_unsigned (next_frame, SPU_SP_REGNUM); | |
735 | backchain = read_memory_unsigned_integer (reg, 4); | |
736 | ||
737 | /* A zero backchain terminates the frame chain. Also, sanity | |
738 | check against the local store size limit. */ | |
739 | if (backchain != 0 && backchain < SPU_LS_SIZE) | |
740 | { | |
741 | /* Assume the link register is saved into its slot. */ | |
742 | if (backchain + 16 < SPU_LS_SIZE) | |
743 | info->saved_regs[SPU_LR_REGNUM].addr = backchain + 16; | |
744 | ||
745 | /* This will also be the previous PC. */ | |
746 | if (trad_frame_addr_p (info->saved_regs, SPU_LR_REGNUM)) | |
747 | info->saved_regs[SPU_PC_REGNUM] = info->saved_regs[SPU_LR_REGNUM]; | |
748 | else | |
749 | info->saved_regs[SPU_PC_REGNUM].realreg = SPU_LR_REGNUM; | |
750 | ||
751 | /* The previous SP will equal the backchain value. */ | |
752 | trad_frame_set_value (info->saved_regs, SPU_SP_REGNUM, backchain); | |
753 | ||
754 | /* Frame bases. */ | |
755 | info->frame_base = backchain; | |
756 | info->local_base = reg; | |
757 | } | |
758 | } | |
759 | ||
760 | return info; | |
761 | } | |
762 | ||
763 | static void | |
764 | spu_frame_this_id (struct frame_info *next_frame, | |
765 | void **this_prologue_cache, struct frame_id *this_id) | |
766 | { | |
767 | struct spu_unwind_cache *info = | |
768 | spu_frame_unwind_cache (next_frame, this_prologue_cache); | |
769 | ||
770 | if (info->frame_base == 0) | |
771 | return; | |
772 | ||
773 | *this_id = frame_id_build (info->frame_base, info->func); | |
774 | } | |
775 | ||
776 | static void | |
777 | spu_frame_prev_register (struct frame_info *next_frame, | |
778 | void **this_prologue_cache, | |
779 | int regnum, int *optimizedp, | |
780 | enum lval_type *lvalp, CORE_ADDR * addrp, | |
781 | int *realnump, gdb_byte *bufferp) | |
782 | { | |
783 | struct spu_unwind_cache *info | |
784 | = spu_frame_unwind_cache (next_frame, this_prologue_cache); | |
785 | ||
786 | /* Special-case the stack pointer. */ | |
787 | if (regnum == SPU_RAW_SP_REGNUM) | |
788 | regnum = SPU_SP_REGNUM; | |
789 | ||
790 | trad_frame_get_prev_register (next_frame, info->saved_regs, regnum, | |
791 | optimizedp, lvalp, addrp, realnump, bufferp); | |
792 | } | |
793 | ||
794 | static const struct frame_unwind spu_frame_unwind = { | |
795 | NORMAL_FRAME, | |
796 | spu_frame_this_id, | |
797 | spu_frame_prev_register | |
798 | }; | |
799 | ||
800 | const struct frame_unwind * | |
801 | spu_frame_sniffer (struct frame_info *next_frame) | |
802 | { | |
803 | return &spu_frame_unwind; | |
804 | } | |
805 | ||
806 | static CORE_ADDR | |
807 | spu_frame_base_address (struct frame_info *next_frame, void **this_cache) | |
808 | { | |
809 | struct spu_unwind_cache *info | |
810 | = spu_frame_unwind_cache (next_frame, this_cache); | |
811 | return info->local_base; | |
812 | } | |
813 | ||
814 | static const struct frame_base spu_frame_base = { | |
815 | &spu_frame_unwind, | |
816 | spu_frame_base_address, | |
817 | spu_frame_base_address, | |
818 | spu_frame_base_address | |
819 | }; | |
820 | ||
821 | static CORE_ADDR | |
822 | spu_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame) | |
823 | { | |
118dfbaf UW |
824 | CORE_ADDR pc = frame_unwind_register_unsigned (next_frame, SPU_PC_REGNUM); |
825 | /* Mask off interrupt enable bit. */ | |
826 | return pc & -4; | |
771b4502 UW |
827 | } |
828 | ||
829 | static CORE_ADDR | |
830 | spu_unwind_sp (struct gdbarch *gdbarch, struct frame_info *next_frame) | |
831 | { | |
832 | return frame_unwind_register_unsigned (next_frame, SPU_SP_REGNUM); | |
833 | } | |
834 | ||
118dfbaf UW |
835 | static CORE_ADDR |
836 | spu_read_pc (ptid_t ptid) | |
837 | { | |
838 | CORE_ADDR pc = read_register_pid (SPU_PC_REGNUM, ptid); | |
839 | /* Mask off interrupt enable bit. */ | |
840 | return pc & -4; | |
841 | } | |
842 | ||
843 | static void | |
844 | spu_write_pc (CORE_ADDR pc, ptid_t ptid) | |
845 | { | |
846 | /* Keep interrupt enabled state unchanged. */ | |
847 | CORE_ADDR old_pc = read_register_pid (SPU_PC_REGNUM, ptid); | |
848 | write_register_pid (SPU_PC_REGNUM, (pc & -4) | (old_pc & 3), ptid); | |
849 | } | |
850 | ||
771b4502 UW |
851 | |
852 | /* Function calling convention. */ | |
853 | ||
7b3dc0b7 UW |
854 | static CORE_ADDR |
855 | spu_frame_align (struct gdbarch *gdbarch, CORE_ADDR sp) | |
856 | { | |
857 | return sp & ~15; | |
858 | } | |
859 | ||
771b4502 UW |
860 | static int |
861 | spu_scalar_value_p (struct type *type) | |
862 | { | |
863 | switch (TYPE_CODE (type)) | |
864 | { | |
865 | case TYPE_CODE_INT: | |
866 | case TYPE_CODE_ENUM: | |
867 | case TYPE_CODE_RANGE: | |
868 | case TYPE_CODE_CHAR: | |
869 | case TYPE_CODE_BOOL: | |
870 | case TYPE_CODE_PTR: | |
871 | case TYPE_CODE_REF: | |
872 | return TYPE_LENGTH (type) <= 16; | |
873 | ||
874 | default: | |
875 | return 0; | |
876 | } | |
877 | } | |
878 | ||
879 | static void | |
880 | spu_value_to_regcache (struct regcache *regcache, int regnum, | |
881 | struct type *type, const gdb_byte *in) | |
882 | { | |
883 | int len = TYPE_LENGTH (type); | |
884 | ||
885 | if (spu_scalar_value_p (type)) | |
886 | { | |
887 | int preferred_slot = len < 4 ? 4 - len : 0; | |
888 | regcache_cooked_write_part (regcache, regnum, preferred_slot, len, in); | |
889 | } | |
890 | else | |
891 | { | |
892 | while (len >= 16) | |
893 | { | |
894 | regcache_cooked_write (regcache, regnum++, in); | |
895 | in += 16; | |
896 | len -= 16; | |
897 | } | |
898 | ||
899 | if (len > 0) | |
900 | regcache_cooked_write_part (regcache, regnum, 0, len, in); | |
901 | } | |
902 | } | |
903 | ||
904 | static void | |
905 | spu_regcache_to_value (struct regcache *regcache, int regnum, | |
906 | struct type *type, gdb_byte *out) | |
907 | { | |
908 | int len = TYPE_LENGTH (type); | |
909 | ||
910 | if (spu_scalar_value_p (type)) | |
911 | { | |
912 | int preferred_slot = len < 4 ? 4 - len : 0; | |
913 | regcache_cooked_read_part (regcache, regnum, preferred_slot, len, out); | |
914 | } | |
915 | else | |
916 | { | |
917 | while (len >= 16) | |
918 | { | |
919 | regcache_cooked_read (regcache, regnum++, out); | |
920 | out += 16; | |
921 | len -= 16; | |
922 | } | |
923 | ||
924 | if (len > 0) | |
925 | regcache_cooked_read_part (regcache, regnum, 0, len, out); | |
926 | } | |
927 | } | |
928 | ||
929 | static CORE_ADDR | |
930 | spu_push_dummy_call (struct gdbarch *gdbarch, struct value *function, | |
931 | struct regcache *regcache, CORE_ADDR bp_addr, | |
932 | int nargs, struct value **args, CORE_ADDR sp, | |
933 | int struct_return, CORE_ADDR struct_addr) | |
934 | { | |
935 | int i; | |
936 | int regnum = SPU_ARG1_REGNUM; | |
937 | int stack_arg = -1; | |
938 | gdb_byte buf[16]; | |
939 | ||
940 | /* Set the return address. */ | |
941 | memset (buf, 0, sizeof buf); | |
942 | store_unsigned_integer (buf, 4, bp_addr); | |
943 | regcache_cooked_write (regcache, SPU_LR_REGNUM, buf); | |
944 | ||
945 | /* If STRUCT_RETURN is true, then the struct return address (in | |
946 | STRUCT_ADDR) will consume the first argument-passing register. | |
947 | Both adjust the register count and store that value. */ | |
948 | if (struct_return) | |
949 | { | |
950 | memset (buf, 0, sizeof buf); | |
951 | store_unsigned_integer (buf, 4, struct_addr); | |
952 | regcache_cooked_write (regcache, regnum++, buf); | |
953 | } | |
954 | ||
955 | /* Fill in argument registers. */ | |
956 | for (i = 0; i < nargs; i++) | |
957 | { | |
958 | struct value *arg = args[i]; | |
959 | struct type *type = check_typedef (value_type (arg)); | |
960 | const gdb_byte *contents = value_contents (arg); | |
961 | int len = TYPE_LENGTH (type); | |
962 | int n_regs = align_up (len, 16) / 16; | |
963 | ||
964 | /* If the argument doesn't wholly fit into registers, it and | |
965 | all subsequent arguments go to the stack. */ | |
966 | if (regnum + n_regs - 1 > SPU_ARGN_REGNUM) | |
967 | { | |
968 | stack_arg = i; | |
969 | break; | |
970 | } | |
971 | ||
972 | spu_value_to_regcache (regcache, regnum, type, contents); | |
973 | regnum += n_regs; | |
974 | } | |
975 | ||
976 | /* Overflow arguments go to the stack. */ | |
977 | if (stack_arg != -1) | |
978 | { | |
979 | CORE_ADDR ap; | |
980 | ||
981 | /* Allocate all required stack size. */ | |
982 | for (i = stack_arg; i < nargs; i++) | |
983 | { | |
984 | struct type *type = check_typedef (value_type (args[i])); | |
985 | sp -= align_up (TYPE_LENGTH (type), 16); | |
986 | } | |
987 | ||
988 | /* Fill in stack arguments. */ | |
989 | ap = sp; | |
990 | for (i = stack_arg; i < nargs; i++) | |
991 | { | |
992 | struct value *arg = args[i]; | |
993 | struct type *type = check_typedef (value_type (arg)); | |
994 | int len = TYPE_LENGTH (type); | |
995 | int preferred_slot; | |
996 | ||
997 | if (spu_scalar_value_p (type)) | |
998 | preferred_slot = len < 4 ? 4 - len : 0; | |
999 | else | |
1000 | preferred_slot = 0; | |
1001 | ||
1002 | target_write_memory (ap + preferred_slot, value_contents (arg), len); | |
1003 | ap += align_up (TYPE_LENGTH (type), 16); | |
1004 | } | |
1005 | } | |
1006 | ||
1007 | /* Allocate stack frame header. */ | |
1008 | sp -= 32; | |
1009 | ||
1010 | /* Finally, update the SP register. */ | |
1011 | regcache_cooked_write_unsigned (regcache, SPU_SP_REGNUM, sp); | |
1012 | ||
1013 | return sp; | |
1014 | } | |
1015 | ||
1016 | static struct frame_id | |
1017 | spu_unwind_dummy_id (struct gdbarch *gdbarch, struct frame_info *next_frame) | |
1018 | { | |
1019 | return frame_id_build (spu_unwind_sp (gdbarch, next_frame), | |
1020 | spu_unwind_pc (gdbarch, next_frame)); | |
1021 | } | |
1022 | ||
1023 | /* Function return value access. */ | |
1024 | ||
1025 | static enum return_value_convention | |
1026 | spu_return_value (struct gdbarch *gdbarch, struct type *type, | |
1027 | struct regcache *regcache, gdb_byte *out, const gdb_byte *in) | |
1028 | { | |
1029 | enum return_value_convention rvc; | |
1030 | ||
1031 | if (TYPE_LENGTH (type) <= (SPU_ARGN_REGNUM - SPU_ARG1_REGNUM + 1) * 16) | |
1032 | rvc = RETURN_VALUE_REGISTER_CONVENTION; | |
1033 | else | |
1034 | rvc = RETURN_VALUE_STRUCT_CONVENTION; | |
1035 | ||
1036 | if (in) | |
1037 | { | |
1038 | switch (rvc) | |
1039 | { | |
1040 | case RETURN_VALUE_REGISTER_CONVENTION: | |
1041 | spu_value_to_regcache (regcache, SPU_ARG1_REGNUM, type, in); | |
1042 | break; | |
1043 | ||
1044 | case RETURN_VALUE_STRUCT_CONVENTION: | |
1045 | error ("Cannot set function return value."); | |
1046 | break; | |
1047 | } | |
1048 | } | |
1049 | else if (out) | |
1050 | { | |
1051 | switch (rvc) | |
1052 | { | |
1053 | case RETURN_VALUE_REGISTER_CONVENTION: | |
1054 | spu_regcache_to_value (regcache, SPU_ARG1_REGNUM, type, out); | |
1055 | break; | |
1056 | ||
1057 | case RETURN_VALUE_STRUCT_CONVENTION: | |
1058 | error ("Function return value unknown."); | |
1059 | break; | |
1060 | } | |
1061 | } | |
1062 | ||
1063 | return rvc; | |
1064 | } | |
1065 | ||
1066 | ||
1067 | /* Breakpoints. */ | |
1068 | ||
1069 | static const gdb_byte * | |
1070 | spu_breakpoint_from_pc (CORE_ADDR * pcptr, int *lenptr) | |
1071 | { | |
1072 | static const gdb_byte breakpoint[] = { 0x00, 0x00, 0x3f, 0xff }; | |
1073 | ||
1074 | *lenptr = sizeof breakpoint; | |
1075 | return breakpoint; | |
1076 | } | |
1077 | ||
1078 | ||
1079 | /* Software single-stepping support. */ | |
1080 | ||
1081 | void | |
1082 | spu_software_single_step (enum target_signal signal, int insert_breakpoints_p) | |
1083 | { | |
1084 | if (insert_breakpoints_p) | |
1085 | { | |
1086 | CORE_ADDR pc, next_pc; | |
1087 | unsigned int insn; | |
1088 | int offset, reg; | |
1089 | gdb_byte buf[4]; | |
1090 | ||
1091 | regcache_cooked_read (current_regcache, SPU_PC_REGNUM, buf); | |
118dfbaf UW |
1092 | /* Mask off interrupt enable bit. */ |
1093 | pc = extract_unsigned_integer (buf, 4) & -4; | |
771b4502 UW |
1094 | |
1095 | if (target_read_memory (pc, buf, 4)) | |
1096 | return; | |
1097 | insn = extract_unsigned_integer (buf, 4); | |
1098 | ||
1099 | /* Next sequential instruction is at PC + 4, except if the current | |
1100 | instruction is a PPE-assisted call, in which case it is at PC + 8. | |
1101 | Wrap around LS limit to be on the safe side. */ | |
1102 | if ((insn & 0xffffff00) == 0x00002100) | |
118dfbaf | 1103 | next_pc = (pc + 8) & (SPU_LS_SIZE - 1); |
771b4502 | 1104 | else |
118dfbaf | 1105 | next_pc = (pc + 4) & (SPU_LS_SIZE - 1); |
771b4502 UW |
1106 | |
1107 | insert_single_step_breakpoint (next_pc); | |
1108 | ||
1109 | if (is_branch (insn, &offset, ®)) | |
1110 | { | |
1111 | CORE_ADDR target = offset; | |
1112 | ||
1113 | if (reg == SPU_PC_REGNUM) | |
1114 | target += pc; | |
1115 | else if (reg != -1) | |
1116 | { | |
1117 | regcache_cooked_read_part (current_regcache, reg, 0, 4, buf); | |
118dfbaf | 1118 | target += extract_unsigned_integer (buf, 4) & -4; |
771b4502 UW |
1119 | } |
1120 | ||
118dfbaf | 1121 | target = target & (SPU_LS_SIZE - 1); |
771b4502 UW |
1122 | if (target != next_pc) |
1123 | insert_single_step_breakpoint (target); | |
1124 | } | |
1125 | } | |
1126 | else | |
1127 | remove_single_step_breakpoints (); | |
1128 | } | |
1129 | ||
1130 | ||
1131 | /* Set up gdbarch struct. */ | |
1132 | ||
1133 | static struct gdbarch * | |
1134 | spu_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches) | |
1135 | { | |
1136 | struct gdbarch *gdbarch; | |
1137 | ||
1138 | /* Find a candidate among the list of pre-declared architectures. */ | |
1139 | arches = gdbarch_list_lookup_by_info (arches, &info); | |
1140 | if (arches != NULL) | |
1141 | return arches->gdbarch; | |
1142 | ||
1143 | /* Is is for us? */ | |
1144 | if (info.bfd_arch_info->mach != bfd_mach_spu) | |
1145 | return NULL; | |
1146 | ||
1147 | /* Yes, create a new architecture. */ | |
1148 | gdbarch = gdbarch_alloc (&info, NULL); | |
1149 | ||
1150 | /* Disassembler. */ | |
1151 | set_gdbarch_print_insn (gdbarch, print_insn_spu); | |
1152 | ||
1153 | /* Registers. */ | |
1154 | set_gdbarch_num_regs (gdbarch, SPU_NUM_REGS); | |
1155 | set_gdbarch_num_pseudo_regs (gdbarch, SPU_NUM_PSEUDO_REGS); | |
1156 | set_gdbarch_sp_regnum (gdbarch, SPU_SP_REGNUM); | |
1157 | set_gdbarch_pc_regnum (gdbarch, SPU_PC_REGNUM); | |
118dfbaf UW |
1158 | set_gdbarch_read_pc (gdbarch, spu_read_pc); |
1159 | set_gdbarch_write_pc (gdbarch, spu_write_pc); | |
771b4502 UW |
1160 | set_gdbarch_register_name (gdbarch, spu_register_name); |
1161 | set_gdbarch_register_type (gdbarch, spu_register_type); | |
1162 | set_gdbarch_pseudo_register_read (gdbarch, spu_pseudo_register_read); | |
1163 | set_gdbarch_pseudo_register_write (gdbarch, spu_pseudo_register_write); | |
9acbedc0 | 1164 | set_gdbarch_value_from_register (gdbarch, spu_value_from_register); |
771b4502 UW |
1165 | set_gdbarch_register_reggroup_p (gdbarch, spu_register_reggroup_p); |
1166 | ||
1167 | /* Data types. */ | |
1168 | set_gdbarch_char_signed (gdbarch, 0); | |
1169 | set_gdbarch_ptr_bit (gdbarch, 32); | |
1170 | set_gdbarch_addr_bit (gdbarch, 32); | |
1171 | set_gdbarch_short_bit (gdbarch, 16); | |
1172 | set_gdbarch_int_bit (gdbarch, 32); | |
1173 | set_gdbarch_long_bit (gdbarch, 32); | |
1174 | set_gdbarch_long_long_bit (gdbarch, 64); | |
1175 | set_gdbarch_float_bit (gdbarch, 32); | |
1176 | set_gdbarch_double_bit (gdbarch, 64); | |
1177 | set_gdbarch_long_double_bit (gdbarch, 64); | |
8da61cc4 DJ |
1178 | set_gdbarch_float_format (gdbarch, floatformats_ieee_single); |
1179 | set_gdbarch_double_format (gdbarch, floatformats_ieee_double); | |
1180 | set_gdbarch_long_double_format (gdbarch, floatformats_ieee_double); | |
771b4502 UW |
1181 | |
1182 | /* Inferior function calls. */ | |
7b3dc0b7 UW |
1183 | set_gdbarch_call_dummy_location (gdbarch, ON_STACK); |
1184 | set_gdbarch_frame_align (gdbarch, spu_frame_align); | |
771b4502 UW |
1185 | set_gdbarch_push_dummy_call (gdbarch, spu_push_dummy_call); |
1186 | set_gdbarch_unwind_dummy_id (gdbarch, spu_unwind_dummy_id); | |
1187 | set_gdbarch_return_value (gdbarch, spu_return_value); | |
1188 | ||
1189 | /* Frame handling. */ | |
1190 | set_gdbarch_inner_than (gdbarch, core_addr_lessthan); | |
1191 | frame_unwind_append_sniffer (gdbarch, spu_frame_sniffer); | |
1192 | frame_base_set_default (gdbarch, &spu_frame_base); | |
1193 | set_gdbarch_unwind_pc (gdbarch, spu_unwind_pc); | |
1194 | set_gdbarch_unwind_sp (gdbarch, spu_unwind_sp); | |
1195 | set_gdbarch_virtual_frame_pointer (gdbarch, spu_virtual_frame_pointer); | |
1196 | set_gdbarch_frame_args_skip (gdbarch, 0); | |
1197 | set_gdbarch_skip_prologue (gdbarch, spu_skip_prologue); | |
fe5febed | 1198 | set_gdbarch_in_function_epilogue_p (gdbarch, spu_in_function_epilogue_p); |
771b4502 UW |
1199 | |
1200 | /* Breakpoints. */ | |
1201 | set_gdbarch_decr_pc_after_break (gdbarch, 4); | |
1202 | set_gdbarch_breakpoint_from_pc (gdbarch, spu_breakpoint_from_pc); | |
1203 | set_gdbarch_cannot_step_breakpoint (gdbarch, 1); | |
1204 | set_gdbarch_software_single_step (gdbarch, spu_software_single_step); | |
1205 | ||
1206 | return gdbarch; | |
1207 | } | |
1208 | ||
f2d43c2c UW |
1209 | /* Implement a SPU-specific vector type as replacement |
1210 | for __gdb_builtin_type_vec128. */ | |
1211 | static void | |
1212 | spu_init_vector_type (void) | |
1213 | { | |
1214 | struct type *type; | |
1215 | ||
1216 | type = init_composite_type ("__spu_builtin_type_vec128", TYPE_CODE_UNION); | |
1217 | append_composite_type_field (type, "uint128", builtin_type_int128); | |
1218 | append_composite_type_field (type, "v2_int64", builtin_type_v2_int64); | |
1219 | append_composite_type_field (type, "v4_int32", builtin_type_v4_int32); | |
1220 | append_composite_type_field (type, "v8_int16", builtin_type_v8_int16); | |
1221 | append_composite_type_field (type, "v16_int8", builtin_type_v16_int8); | |
1222 | append_composite_type_field (type, "v2_double", builtin_type_v2_double); | |
1223 | append_composite_type_field (type, "v4_float", builtin_type_v4_float); | |
1224 | ||
1225 | TYPE_FLAGS (type) |= TYPE_FLAG_VECTOR; | |
1226 | TYPE_NAME (type) = "spu_builtin_type_vec128"; | |
1227 | spu_builtin_type_vec128 = type; | |
1228 | } | |
1229 | ||
771b4502 UW |
1230 | void |
1231 | _initialize_spu_tdep (void) | |
1232 | { | |
1233 | register_gdbarch_init (bfd_arch_spu, spu_gdbarch_init); | |
f2d43c2c UW |
1234 | |
1235 | spu_init_vector_type (); | |
771b4502 | 1236 | } |