Normalize TRY_CATCH exception handling block
[deliverable/binutils-gdb.git] / gdb / s390-linux-tdep.c
1 /* Target-dependent code for GDB, the GNU debugger.
2
3 Copyright (C) 2001-2015 Free Software Foundation, Inc.
4
5 Contributed by D.J. Barrow (djbarrow@de.ibm.com,barrow_dj@yahoo.com)
6 for IBM Deutschland Entwicklung GmbH, IBM Corporation.
7
8 This file is part of GDB.
9
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
12 the Free Software Foundation; either version 3 of the License, or
13 (at your option) any later version.
14
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
19
20 You should have received a copy of the GNU General Public License
21 along with this program. If not, see <http://www.gnu.org/licenses/>. */
22
23 #include "defs.h"
24 #include "arch-utils.h"
25 #include "frame.h"
26 #include "inferior.h"
27 #include "infrun.h"
28 #include "symtab.h"
29 #include "target.h"
30 #include "gdbcore.h"
31 #include "gdbcmd.h"
32 #include "objfiles.h"
33 #include "floatformat.h"
34 #include "regcache.h"
35 #include "trad-frame.h"
36 #include "frame-base.h"
37 #include "frame-unwind.h"
38 #include "dwarf2-frame.h"
39 #include "reggroups.h"
40 #include "regset.h"
41 #include "value.h"
42 #include "dis-asm.h"
43 #include "solib-svr4.h"
44 #include "prologue-value.h"
45 #include "linux-tdep.h"
46 #include "s390-linux-tdep.h"
47 #include "auxv.h"
48 #include "xml-syscall.h"
49
50 #include "stap-probe.h"
51 #include "ax.h"
52 #include "ax-gdb.h"
53 #include "user-regs.h"
54 #include "cli/cli-utils.h"
55 #include <ctype.h>
56 #include "elf/common.h"
57
58 #include "features/s390-linux32.c"
59 #include "features/s390-linux32v1.c"
60 #include "features/s390-linux32v2.c"
61 #include "features/s390-linux64.c"
62 #include "features/s390-linux64v1.c"
63 #include "features/s390-linux64v2.c"
64 #include "features/s390-te-linux64.c"
65 #include "features/s390-vx-linux64.c"
66 #include "features/s390-tevx-linux64.c"
67 #include "features/s390x-linux64.c"
68 #include "features/s390x-linux64v1.c"
69 #include "features/s390x-linux64v2.c"
70 #include "features/s390x-te-linux64.c"
71 #include "features/s390x-vx-linux64.c"
72 #include "features/s390x-tevx-linux64.c"
73
74 #define XML_SYSCALL_FILENAME_S390 "syscalls/s390-linux.xml"
75 #define XML_SYSCALL_FILENAME_S390X "syscalls/s390x-linux.xml"
76
77 enum s390_abi_kind
78 {
79 ABI_LINUX_S390,
80 ABI_LINUX_ZSERIES
81 };
82
83 /* The tdep structure. */
84
85 struct gdbarch_tdep
86 {
87 /* ABI version. */
88 enum s390_abi_kind abi;
89
90 /* Pseudo register numbers. */
91 int gpr_full_regnum;
92 int pc_regnum;
93 int cc_regnum;
94 int v0_full_regnum;
95
96 int have_linux_v1;
97 int have_linux_v2;
98 int have_tdb;
99 };
100
101
102 /* ABI call-saved register information. */
103
104 static int
105 s390_register_call_saved (struct gdbarch *gdbarch, int regnum)
106 {
107 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
108
109 switch (tdep->abi)
110 {
111 case ABI_LINUX_S390:
112 if ((regnum >= S390_R6_REGNUM && regnum <= S390_R15_REGNUM)
113 || regnum == S390_F4_REGNUM || regnum == S390_F6_REGNUM
114 || regnum == S390_A0_REGNUM)
115 return 1;
116
117 break;
118
119 case ABI_LINUX_ZSERIES:
120 if ((regnum >= S390_R6_REGNUM && regnum <= S390_R15_REGNUM)
121 || (regnum >= S390_F8_REGNUM && regnum <= S390_F15_REGNUM)
122 || (regnum >= S390_A0_REGNUM && regnum <= S390_A1_REGNUM))
123 return 1;
124
125 break;
126 }
127
128 return 0;
129 }
130
131 static int
132 s390_cannot_store_register (struct gdbarch *gdbarch, int regnum)
133 {
134 /* The last-break address is read-only. */
135 return regnum == S390_LAST_BREAK_REGNUM;
136 }
137
138 static void
139 s390_write_pc (struct regcache *regcache, CORE_ADDR pc)
140 {
141 struct gdbarch *gdbarch = get_regcache_arch (regcache);
142 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
143
144 regcache_cooked_write_unsigned (regcache, tdep->pc_regnum, pc);
145
146 /* Set special SYSTEM_CALL register to 0 to prevent the kernel from
147 messing with the PC we just installed, if we happen to be within
148 an interrupted system call that the kernel wants to restart.
149
150 Note that after we return from the dummy call, the SYSTEM_CALL and
151 ORIG_R2 registers will be automatically restored, and the kernel
152 continues to restart the system call at this point. */
153 if (register_size (gdbarch, S390_SYSTEM_CALL_REGNUM) > 0)
154 regcache_cooked_write_unsigned (regcache, S390_SYSTEM_CALL_REGNUM, 0);
155 }
156
157
158 /* DWARF Register Mapping. */
159
160 static const short s390_dwarf_regmap[] =
161 {
162 /* 0-15: General Purpose Registers. */
163 S390_R0_REGNUM, S390_R1_REGNUM, S390_R2_REGNUM, S390_R3_REGNUM,
164 S390_R4_REGNUM, S390_R5_REGNUM, S390_R6_REGNUM, S390_R7_REGNUM,
165 S390_R8_REGNUM, S390_R9_REGNUM, S390_R10_REGNUM, S390_R11_REGNUM,
166 S390_R12_REGNUM, S390_R13_REGNUM, S390_R14_REGNUM, S390_R15_REGNUM,
167
168 /* 16-31: Floating Point Registers / Vector Registers 0-15. */
169 S390_F0_REGNUM, S390_F2_REGNUM, S390_F4_REGNUM, S390_F6_REGNUM,
170 S390_F1_REGNUM, S390_F3_REGNUM, S390_F5_REGNUM, S390_F7_REGNUM,
171 S390_F8_REGNUM, S390_F10_REGNUM, S390_F12_REGNUM, S390_F14_REGNUM,
172 S390_F9_REGNUM, S390_F11_REGNUM, S390_F13_REGNUM, S390_F15_REGNUM,
173
174 /* 32-47: Control Registers (not mapped). */
175 -1, -1, -1, -1, -1, -1, -1, -1,
176 -1, -1, -1, -1, -1, -1, -1, -1,
177
178 /* 48-63: Access Registers. */
179 S390_A0_REGNUM, S390_A1_REGNUM, S390_A2_REGNUM, S390_A3_REGNUM,
180 S390_A4_REGNUM, S390_A5_REGNUM, S390_A6_REGNUM, S390_A7_REGNUM,
181 S390_A8_REGNUM, S390_A9_REGNUM, S390_A10_REGNUM, S390_A11_REGNUM,
182 S390_A12_REGNUM, S390_A13_REGNUM, S390_A14_REGNUM, S390_A15_REGNUM,
183
184 /* 64-65: Program Status Word. */
185 S390_PSWM_REGNUM,
186 S390_PSWA_REGNUM,
187
188 /* 66-67: Reserved. */
189 -1, -1,
190
191 /* 68-83: Vector Registers 16-31. */
192 S390_V16_REGNUM, S390_V18_REGNUM, S390_V20_REGNUM, S390_V22_REGNUM,
193 S390_V17_REGNUM, S390_V19_REGNUM, S390_V21_REGNUM, S390_V23_REGNUM,
194 S390_V24_REGNUM, S390_V26_REGNUM, S390_V28_REGNUM, S390_V30_REGNUM,
195 S390_V25_REGNUM, S390_V27_REGNUM, S390_V29_REGNUM, S390_V31_REGNUM,
196
197 /* End of "official" DWARF registers. The remainder of the map is
198 for GDB internal use only. */
199
200 /* GPR Lower Half Access. */
201 S390_R0_REGNUM, S390_R1_REGNUM, S390_R2_REGNUM, S390_R3_REGNUM,
202 S390_R4_REGNUM, S390_R5_REGNUM, S390_R6_REGNUM, S390_R7_REGNUM,
203 S390_R8_REGNUM, S390_R9_REGNUM, S390_R10_REGNUM, S390_R11_REGNUM,
204 S390_R12_REGNUM, S390_R13_REGNUM, S390_R14_REGNUM, S390_R15_REGNUM,
205 };
206
207 enum { s390_dwarf_reg_r0l = ARRAY_SIZE (s390_dwarf_regmap) - 16 };
208
209 /* Convert DWARF register number REG to the appropriate register
210 number used by GDB. */
211 static int
212 s390_dwarf_reg_to_regnum (struct gdbarch *gdbarch, int reg)
213 {
214 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
215 int gdb_reg = -1;
216
217 /* In a 32-on-64 debug scenario, debug info refers to the full
218 64-bit GPRs. Note that call frame information still refers to
219 the 32-bit lower halves, because s390_adjust_frame_regnum uses
220 special register numbers to access GPRs. */
221 if (tdep->gpr_full_regnum != -1 && reg >= 0 && reg < 16)
222 return tdep->gpr_full_regnum + reg;
223
224 if (reg >= 0 && reg < ARRAY_SIZE (s390_dwarf_regmap))
225 gdb_reg = s390_dwarf_regmap[reg];
226
227 if (tdep->v0_full_regnum == -1)
228 {
229 if (gdb_reg >= S390_V16_REGNUM && gdb_reg <= S390_V31_REGNUM)
230 gdb_reg = -1;
231 }
232 else
233 {
234 if (gdb_reg >= S390_F0_REGNUM && gdb_reg <= S390_F15_REGNUM)
235 gdb_reg = gdb_reg - S390_F0_REGNUM + tdep->v0_full_regnum;
236 }
237
238 return gdb_reg;
239 }
240
241 /* Translate a .eh_frame register to DWARF register, or adjust a
242 .debug_frame register. */
243 static int
244 s390_adjust_frame_regnum (struct gdbarch *gdbarch, int num, int eh_frame_p)
245 {
246 /* See s390_dwarf_reg_to_regnum for comments. */
247 return (num >= 0 && num < 16) ? num + s390_dwarf_reg_r0l : num;
248 }
249
250
251 /* Pseudo registers. */
252
253 static int
254 regnum_is_gpr_full (struct gdbarch_tdep *tdep, int regnum)
255 {
256 return (tdep->gpr_full_regnum != -1
257 && regnum >= tdep->gpr_full_regnum
258 && regnum <= tdep->gpr_full_regnum + 15);
259 }
260
261 /* Check whether REGNUM indicates a full vector register (v0-v15).
262 These pseudo-registers are composed of f0-f15 and v0l-v15l. */
263
264 static int
265 regnum_is_vxr_full (struct gdbarch_tdep *tdep, int regnum)
266 {
267 return (tdep->v0_full_regnum != -1
268 && regnum >= tdep->v0_full_regnum
269 && regnum <= tdep->v0_full_regnum + 15);
270 }
271
272 /* Return the name of register REGNO. Return the empty string for
273 registers that shouldn't be visible. */
274
275 static const char *
276 s390_register_name (struct gdbarch *gdbarch, int regnum)
277 {
278 if (regnum >= S390_V0_LOWER_REGNUM
279 && regnum <= S390_V15_LOWER_REGNUM)
280 return "";
281 return tdesc_register_name (gdbarch, regnum);
282 }
283
284 static const char *
285 s390_pseudo_register_name (struct gdbarch *gdbarch, int regnum)
286 {
287 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
288
289 if (regnum == tdep->pc_regnum)
290 return "pc";
291
292 if (regnum == tdep->cc_regnum)
293 return "cc";
294
295 if (regnum_is_gpr_full (tdep, regnum))
296 {
297 static const char *full_name[] = {
298 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
299 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15"
300 };
301 return full_name[regnum - tdep->gpr_full_regnum];
302 }
303
304 if (regnum_is_vxr_full (tdep, regnum))
305 {
306 static const char *full_name[] = {
307 "v0", "v1", "v2", "v3", "v4", "v5", "v6", "v7",
308 "v8", "v9", "v10", "v11", "v12", "v13", "v14", "v15"
309 };
310 return full_name[regnum - tdep->v0_full_regnum];
311 }
312
313 internal_error (__FILE__, __LINE__, _("invalid regnum"));
314 }
315
316 static struct type *
317 s390_pseudo_register_type (struct gdbarch *gdbarch, int regnum)
318 {
319 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
320
321 if (regnum == tdep->pc_regnum)
322 return builtin_type (gdbarch)->builtin_func_ptr;
323
324 if (regnum == tdep->cc_regnum)
325 return builtin_type (gdbarch)->builtin_int;
326
327 if (regnum_is_gpr_full (tdep, regnum))
328 return builtin_type (gdbarch)->builtin_uint64;
329
330 if (regnum_is_vxr_full (tdep, regnum))
331 return tdesc_find_type (gdbarch, "vec128");
332
333 internal_error (__FILE__, __LINE__, _("invalid regnum"));
334 }
335
336 static enum register_status
337 s390_pseudo_register_read (struct gdbarch *gdbarch, struct regcache *regcache,
338 int regnum, gdb_byte *buf)
339 {
340 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
341 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
342 int regsize = register_size (gdbarch, regnum);
343 ULONGEST val;
344
345 if (regnum == tdep->pc_regnum)
346 {
347 enum register_status status;
348
349 status = regcache_raw_read_unsigned (regcache, S390_PSWA_REGNUM, &val);
350 if (status == REG_VALID)
351 {
352 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
353 val &= 0x7fffffff;
354 store_unsigned_integer (buf, regsize, byte_order, val);
355 }
356 return status;
357 }
358
359 if (regnum == tdep->cc_regnum)
360 {
361 enum register_status status;
362
363 status = regcache_raw_read_unsigned (regcache, S390_PSWM_REGNUM, &val);
364 if (status == REG_VALID)
365 {
366 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
367 val = (val >> 12) & 3;
368 else
369 val = (val >> 44) & 3;
370 store_unsigned_integer (buf, regsize, byte_order, val);
371 }
372 return status;
373 }
374
375 if (regnum_is_gpr_full (tdep, regnum))
376 {
377 enum register_status status;
378 ULONGEST val_upper;
379
380 regnum -= tdep->gpr_full_regnum;
381
382 status = regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + regnum, &val);
383 if (status == REG_VALID)
384 status = regcache_raw_read_unsigned (regcache, S390_R0_UPPER_REGNUM + regnum,
385 &val_upper);
386 if (status == REG_VALID)
387 {
388 val |= val_upper << 32;
389 store_unsigned_integer (buf, regsize, byte_order, val);
390 }
391 return status;
392 }
393
394 if (regnum_is_vxr_full (tdep, regnum))
395 {
396 enum register_status status;
397
398 regnum -= tdep->v0_full_regnum;
399
400 status = regcache_raw_read (regcache, S390_F0_REGNUM + regnum, buf);
401 if (status == REG_VALID)
402 status = regcache_raw_read (regcache,
403 S390_V0_LOWER_REGNUM + regnum, buf + 8);
404 return status;
405 }
406
407 internal_error (__FILE__, __LINE__, _("invalid regnum"));
408 }
409
410 static void
411 s390_pseudo_register_write (struct gdbarch *gdbarch, struct regcache *regcache,
412 int regnum, const gdb_byte *buf)
413 {
414 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
415 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
416 int regsize = register_size (gdbarch, regnum);
417 ULONGEST val, psw;
418
419 if (regnum == tdep->pc_regnum)
420 {
421 val = extract_unsigned_integer (buf, regsize, byte_order);
422 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
423 {
424 regcache_raw_read_unsigned (regcache, S390_PSWA_REGNUM, &psw);
425 val = (psw & 0x80000000) | (val & 0x7fffffff);
426 }
427 regcache_raw_write_unsigned (regcache, S390_PSWA_REGNUM, val);
428 return;
429 }
430
431 if (regnum == tdep->cc_regnum)
432 {
433 val = extract_unsigned_integer (buf, regsize, byte_order);
434 regcache_raw_read_unsigned (regcache, S390_PSWM_REGNUM, &psw);
435 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
436 val = (psw & ~((ULONGEST)3 << 12)) | ((val & 3) << 12);
437 else
438 val = (psw & ~((ULONGEST)3 << 44)) | ((val & 3) << 44);
439 regcache_raw_write_unsigned (regcache, S390_PSWM_REGNUM, val);
440 return;
441 }
442
443 if (regnum_is_gpr_full (tdep, regnum))
444 {
445 regnum -= tdep->gpr_full_regnum;
446 val = extract_unsigned_integer (buf, regsize, byte_order);
447 regcache_raw_write_unsigned (regcache, S390_R0_REGNUM + regnum,
448 val & 0xffffffff);
449 regcache_raw_write_unsigned (regcache, S390_R0_UPPER_REGNUM + regnum,
450 val >> 32);
451 return;
452 }
453
454 if (regnum_is_vxr_full (tdep, regnum))
455 {
456 regnum -= tdep->v0_full_regnum;
457 regcache_raw_write (regcache, S390_F0_REGNUM + regnum, buf);
458 regcache_raw_write (regcache, S390_V0_LOWER_REGNUM + regnum, buf + 8);
459 return;
460 }
461
462 internal_error (__FILE__, __LINE__, _("invalid regnum"));
463 }
464
465 /* 'float' values are stored in the upper half of floating-point
466 registers, even though we are otherwise a big-endian platform. The
467 same applies to a 'float' value within a vector. */
468
469 static struct value *
470 s390_value_from_register (struct gdbarch *gdbarch, struct type *type,
471 int regnum, struct frame_id frame_id)
472 {
473 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
474 struct value *value = default_value_from_register (gdbarch, type,
475 regnum, frame_id);
476 check_typedef (type);
477
478 if ((regnum >= S390_F0_REGNUM && regnum <= S390_F15_REGNUM
479 && TYPE_LENGTH (type) < 8)
480 || regnum_is_vxr_full (tdep, regnum)
481 || (regnum >= S390_V16_REGNUM && regnum <= S390_V31_REGNUM))
482 set_value_offset (value, 0);
483
484 return value;
485 }
486
487 /* Register groups. */
488
489 static int
490 s390_pseudo_register_reggroup_p (struct gdbarch *gdbarch, int regnum,
491 struct reggroup *group)
492 {
493 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
494
495 /* We usually save/restore the whole PSW, which includes PC and CC.
496 However, some older gdbservers may not support saving/restoring
497 the whole PSW yet, and will return an XML register description
498 excluding those from the save/restore register groups. In those
499 cases, we still need to explicitly save/restore PC and CC in order
500 to push or pop frames. Since this doesn't hurt anything if we
501 already save/restore the whole PSW (it's just redundant), we add
502 PC and CC at this point unconditionally. */
503 if (group == save_reggroup || group == restore_reggroup)
504 return regnum == tdep->pc_regnum || regnum == tdep->cc_regnum;
505
506 if (group == vector_reggroup)
507 return regnum_is_vxr_full (tdep, regnum);
508
509 if (group == general_reggroup && regnum_is_vxr_full (tdep, regnum))
510 return 0;
511
512 return default_register_reggroup_p (gdbarch, regnum, group);
513 }
514
515
516 /* Maps for register sets. */
517
518 static const struct regcache_map_entry s390_gregmap[] =
519 {
520 { 1, S390_PSWM_REGNUM },
521 { 1, S390_PSWA_REGNUM },
522 { 16, S390_R0_REGNUM },
523 { 16, S390_A0_REGNUM },
524 { 1, S390_ORIG_R2_REGNUM },
525 { 0 }
526 };
527
528 static const struct regcache_map_entry s390_fpregmap[] =
529 {
530 { 1, S390_FPC_REGNUM, 8 },
531 { 16, S390_F0_REGNUM, 8 },
532 { 0 }
533 };
534
535 static const struct regcache_map_entry s390_regmap_upper[] =
536 {
537 { 16, S390_R0_UPPER_REGNUM, 4 },
538 { 0 }
539 };
540
541 static const struct regcache_map_entry s390_regmap_last_break[] =
542 {
543 { 1, REGCACHE_MAP_SKIP, 4 },
544 { 1, S390_LAST_BREAK_REGNUM, 4 },
545 { 0 }
546 };
547
548 static const struct regcache_map_entry s390x_regmap_last_break[] =
549 {
550 { 1, S390_LAST_BREAK_REGNUM, 8 },
551 { 0 }
552 };
553
554 static const struct regcache_map_entry s390_regmap_system_call[] =
555 {
556 { 1, S390_SYSTEM_CALL_REGNUM, 4 },
557 { 0 }
558 };
559
560 static const struct regcache_map_entry s390_regmap_tdb[] =
561 {
562 { 1, S390_TDB_DWORD0_REGNUM, 8 },
563 { 1, S390_TDB_ABORT_CODE_REGNUM, 8 },
564 { 1, S390_TDB_CONFLICT_TOKEN_REGNUM, 8 },
565 { 1, S390_TDB_ATIA_REGNUM, 8 },
566 { 12, REGCACHE_MAP_SKIP, 8 },
567 { 16, S390_TDB_R0_REGNUM, 8 },
568 { 0 }
569 };
570
571 static const struct regcache_map_entry s390_regmap_vxrs_low[] =
572 {
573 { 16, S390_V0_LOWER_REGNUM, 8 },
574 { 0 }
575 };
576
577 static const struct regcache_map_entry s390_regmap_vxrs_high[] =
578 {
579 { 16, S390_V16_REGNUM, 16 },
580 { 0 }
581 };
582
583
584 /* Supply the TDB regset. Like regcache_supply_regset, but invalidate
585 the TDB registers unless the TDB format field is valid. */
586
587 static void
588 s390_supply_tdb_regset (const struct regset *regset, struct regcache *regcache,
589 int regnum, const void *regs, size_t len)
590 {
591 ULONGEST tdw;
592 enum register_status ret;
593 int i;
594
595 regcache_supply_regset (regset, regcache, regnum, regs, len);
596 ret = regcache_cooked_read_unsigned (regcache, S390_TDB_DWORD0_REGNUM, &tdw);
597 if (ret != REG_VALID || (tdw >> 56) != 1)
598 regcache_supply_regset (regset, regcache, regnum, NULL, len);
599 }
600
601 const struct regset s390_gregset = {
602 s390_gregmap,
603 regcache_supply_regset,
604 regcache_collect_regset
605 };
606
607 const struct regset s390_fpregset = {
608 s390_fpregmap,
609 regcache_supply_regset,
610 regcache_collect_regset
611 };
612
613 static const struct regset s390_upper_regset = {
614 s390_regmap_upper,
615 regcache_supply_regset,
616 regcache_collect_regset
617 };
618
619 const struct regset s390_last_break_regset = {
620 s390_regmap_last_break,
621 regcache_supply_regset,
622 regcache_collect_regset
623 };
624
625 const struct regset s390x_last_break_regset = {
626 s390x_regmap_last_break,
627 regcache_supply_regset,
628 regcache_collect_regset
629 };
630
631 const struct regset s390_system_call_regset = {
632 s390_regmap_system_call,
633 regcache_supply_regset,
634 regcache_collect_regset
635 };
636
637 const struct regset s390_tdb_regset = {
638 s390_regmap_tdb,
639 s390_supply_tdb_regset,
640 regcache_collect_regset
641 };
642
643 const struct regset s390_vxrs_low_regset = {
644 s390_regmap_vxrs_low,
645 regcache_supply_regset,
646 regcache_collect_regset
647 };
648
649 const struct regset s390_vxrs_high_regset = {
650 s390_regmap_vxrs_high,
651 regcache_supply_regset,
652 regcache_collect_regset
653 };
654
655 /* Iterate over supported core file register note sections. */
656
657 static void
658 s390_iterate_over_regset_sections (struct gdbarch *gdbarch,
659 iterate_over_regset_sections_cb *cb,
660 void *cb_data,
661 const struct regcache *regcache)
662 {
663 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
664 const int gregset_size = (tdep->abi == ABI_LINUX_S390 ?
665 s390_sizeof_gregset : s390x_sizeof_gregset);
666
667 cb (".reg", gregset_size, &s390_gregset, NULL, cb_data);
668 cb (".reg2", s390_sizeof_fpregset, &s390_fpregset, NULL, cb_data);
669
670 if (tdep->abi == ABI_LINUX_S390 && tdep->gpr_full_regnum != -1)
671 cb (".reg-s390-high-gprs", 16 * 4, &s390_upper_regset,
672 "s390 GPR upper halves", cb_data);
673
674 if (tdep->have_linux_v1)
675 cb (".reg-s390-last-break", 8,
676 (gdbarch_ptr_bit (gdbarch) == 32
677 ? &s390_last_break_regset : &s390x_last_break_regset),
678 "s930 last-break address", cb_data);
679
680 if (tdep->have_linux_v2)
681 cb (".reg-s390-system-call", 4, &s390_system_call_regset,
682 "s390 system-call", cb_data);
683
684 /* If regcache is set, we are in "write" (gcore) mode. In this
685 case, don't iterate over the TDB unless its registers are
686 available. */
687 if (tdep->have_tdb
688 && (regcache == NULL
689 || REG_VALID == regcache_register_status (regcache,
690 S390_TDB_DWORD0_REGNUM)))
691 cb (".reg-s390-tdb", s390_sizeof_tdbregset, &s390_tdb_regset,
692 "s390 TDB", cb_data);
693
694 if (tdep->v0_full_regnum != -1)
695 {
696 cb (".reg-s390-vxrs-low", 16 * 8, &s390_vxrs_low_regset,
697 "s390 vector registers 0-15 lower half", cb_data);
698 cb (".reg-s390-vxrs-high", 16 * 16, &s390_vxrs_high_regset,
699 "s390 vector registers 16-31", cb_data);
700 }
701 }
702
703 static const struct target_desc *
704 s390_core_read_description (struct gdbarch *gdbarch,
705 struct target_ops *target, bfd *abfd)
706 {
707 asection *section = bfd_get_section_by_name (abfd, ".reg");
708 CORE_ADDR hwcap = 0;
709 int high_gprs, v1, v2, te, vx;
710
711 target_auxv_search (target, AT_HWCAP, &hwcap);
712 if (!section)
713 return NULL;
714
715 high_gprs = (bfd_get_section_by_name (abfd, ".reg-s390-high-gprs")
716 != NULL);
717 v1 = (bfd_get_section_by_name (abfd, ".reg-s390-last-break") != NULL);
718 v2 = (bfd_get_section_by_name (abfd, ".reg-s390-system-call") != NULL);
719 vx = (hwcap & HWCAP_S390_VX);
720 te = (hwcap & HWCAP_S390_TE);
721
722 switch (bfd_section_size (abfd, section))
723 {
724 case s390_sizeof_gregset:
725 if (high_gprs)
726 return (te && vx ? tdesc_s390_tevx_linux64 :
727 vx ? tdesc_s390_vx_linux64 :
728 te ? tdesc_s390_te_linux64 :
729 v2 ? tdesc_s390_linux64v2 :
730 v1 ? tdesc_s390_linux64v1 : tdesc_s390_linux64);
731 else
732 return (v2 ? tdesc_s390_linux32v2 :
733 v1 ? tdesc_s390_linux32v1 : tdesc_s390_linux32);
734
735 case s390x_sizeof_gregset:
736 return (te && vx ? tdesc_s390x_tevx_linux64 :
737 vx ? tdesc_s390x_vx_linux64 :
738 te ? tdesc_s390x_te_linux64 :
739 v2 ? tdesc_s390x_linux64v2 :
740 v1 ? tdesc_s390x_linux64v1 : tdesc_s390x_linux64);
741
742 default:
743 return NULL;
744 }
745 }
746
747
748 /* Decoding S/390 instructions. */
749
750 /* Named opcode values for the S/390 instructions we recognize. Some
751 instructions have their opcode split across two fields; those are the
752 op1_* and op2_* enums. */
753 enum
754 {
755 op1_lhi = 0xa7, op2_lhi = 0x08,
756 op1_lghi = 0xa7, op2_lghi = 0x09,
757 op1_lgfi = 0xc0, op2_lgfi = 0x01,
758 op_lr = 0x18,
759 op_lgr = 0xb904,
760 op_l = 0x58,
761 op1_ly = 0xe3, op2_ly = 0x58,
762 op1_lg = 0xe3, op2_lg = 0x04,
763 op_lm = 0x98,
764 op1_lmy = 0xeb, op2_lmy = 0x98,
765 op1_lmg = 0xeb, op2_lmg = 0x04,
766 op_st = 0x50,
767 op1_sty = 0xe3, op2_sty = 0x50,
768 op1_stg = 0xe3, op2_stg = 0x24,
769 op_std = 0x60,
770 op_stm = 0x90,
771 op1_stmy = 0xeb, op2_stmy = 0x90,
772 op1_stmg = 0xeb, op2_stmg = 0x24,
773 op1_aghi = 0xa7, op2_aghi = 0x0b,
774 op1_ahi = 0xa7, op2_ahi = 0x0a,
775 op1_agfi = 0xc2, op2_agfi = 0x08,
776 op1_afi = 0xc2, op2_afi = 0x09,
777 op1_algfi= 0xc2, op2_algfi= 0x0a,
778 op1_alfi = 0xc2, op2_alfi = 0x0b,
779 op_ar = 0x1a,
780 op_agr = 0xb908,
781 op_a = 0x5a,
782 op1_ay = 0xe3, op2_ay = 0x5a,
783 op1_ag = 0xe3, op2_ag = 0x08,
784 op1_slgfi= 0xc2, op2_slgfi= 0x04,
785 op1_slfi = 0xc2, op2_slfi = 0x05,
786 op_sr = 0x1b,
787 op_sgr = 0xb909,
788 op_s = 0x5b,
789 op1_sy = 0xe3, op2_sy = 0x5b,
790 op1_sg = 0xe3, op2_sg = 0x09,
791 op_nr = 0x14,
792 op_ngr = 0xb980,
793 op_la = 0x41,
794 op1_lay = 0xe3, op2_lay = 0x71,
795 op1_larl = 0xc0, op2_larl = 0x00,
796 op_basr = 0x0d,
797 op_bas = 0x4d,
798 op_bcr = 0x07,
799 op_bc = 0x0d,
800 op_bctr = 0x06,
801 op_bctgr = 0xb946,
802 op_bct = 0x46,
803 op1_bctg = 0xe3, op2_bctg = 0x46,
804 op_bxh = 0x86,
805 op1_bxhg = 0xeb, op2_bxhg = 0x44,
806 op_bxle = 0x87,
807 op1_bxleg= 0xeb, op2_bxleg= 0x45,
808 op1_bras = 0xa7, op2_bras = 0x05,
809 op1_brasl= 0xc0, op2_brasl= 0x05,
810 op1_brc = 0xa7, op2_brc = 0x04,
811 op1_brcl = 0xc0, op2_brcl = 0x04,
812 op1_brct = 0xa7, op2_brct = 0x06,
813 op1_brctg= 0xa7, op2_brctg= 0x07,
814 op_brxh = 0x84,
815 op1_brxhg= 0xec, op2_brxhg= 0x44,
816 op_brxle = 0x85,
817 op1_brxlg= 0xec, op2_brxlg= 0x45,
818 op_svc = 0x0a,
819 };
820
821
822 /* Read a single instruction from address AT. */
823
824 #define S390_MAX_INSTR_SIZE 6
825 static int
826 s390_readinstruction (bfd_byte instr[], CORE_ADDR at)
827 {
828 static int s390_instrlen[] = { 2, 4, 4, 6 };
829 int instrlen;
830
831 if (target_read_memory (at, &instr[0], 2))
832 return -1;
833 instrlen = s390_instrlen[instr[0] >> 6];
834 if (instrlen > 2)
835 {
836 if (target_read_memory (at + 2, &instr[2], instrlen - 2))
837 return -1;
838 }
839 return instrlen;
840 }
841
842
843 /* The functions below are for recognizing and decoding S/390
844 instructions of various formats. Each of them checks whether INSN
845 is an instruction of the given format, with the specified opcodes.
846 If it is, it sets the remaining arguments to the values of the
847 instruction's fields, and returns a non-zero value; otherwise, it
848 returns zero.
849
850 These functions' arguments appear in the order they appear in the
851 instruction, not in the machine-language form. So, opcodes always
852 come first, even though they're sometimes scattered around the
853 instructions. And displacements appear before base and extension
854 registers, as they do in the assembly syntax, not at the end, as
855 they do in the machine language. */
856 static int
857 is_ri (bfd_byte *insn, int op1, int op2, unsigned int *r1, int *i2)
858 {
859 if (insn[0] == op1 && (insn[1] & 0xf) == op2)
860 {
861 *r1 = (insn[1] >> 4) & 0xf;
862 /* i2 is a 16-bit signed quantity. */
863 *i2 = (((insn[2] << 8) | insn[3]) ^ 0x8000) - 0x8000;
864 return 1;
865 }
866 else
867 return 0;
868 }
869
870
871 static int
872 is_ril (bfd_byte *insn, int op1, int op2,
873 unsigned int *r1, int *i2)
874 {
875 if (insn[0] == op1 && (insn[1] & 0xf) == op2)
876 {
877 *r1 = (insn[1] >> 4) & 0xf;
878 /* i2 is a signed quantity. If the host 'int' is 32 bits long,
879 no sign extension is necessary, but we don't want to assume
880 that. */
881 *i2 = (((insn[2] << 24)
882 | (insn[3] << 16)
883 | (insn[4] << 8)
884 | (insn[5])) ^ 0x80000000) - 0x80000000;
885 return 1;
886 }
887 else
888 return 0;
889 }
890
891
892 static int
893 is_rr (bfd_byte *insn, int op, unsigned int *r1, unsigned int *r2)
894 {
895 if (insn[0] == op)
896 {
897 *r1 = (insn[1] >> 4) & 0xf;
898 *r2 = insn[1] & 0xf;
899 return 1;
900 }
901 else
902 return 0;
903 }
904
905
906 static int
907 is_rre (bfd_byte *insn, int op, unsigned int *r1, unsigned int *r2)
908 {
909 if (((insn[0] << 8) | insn[1]) == op)
910 {
911 /* Yes, insn[3]. insn[2] is unused in RRE format. */
912 *r1 = (insn[3] >> 4) & 0xf;
913 *r2 = insn[3] & 0xf;
914 return 1;
915 }
916 else
917 return 0;
918 }
919
920
921 static int
922 is_rs (bfd_byte *insn, int op,
923 unsigned int *r1, unsigned int *r3, int *d2, unsigned int *b2)
924 {
925 if (insn[0] == op)
926 {
927 *r1 = (insn[1] >> 4) & 0xf;
928 *r3 = insn[1] & 0xf;
929 *b2 = (insn[2] >> 4) & 0xf;
930 *d2 = ((insn[2] & 0xf) << 8) | insn[3];
931 return 1;
932 }
933 else
934 return 0;
935 }
936
937
938 static int
939 is_rsy (bfd_byte *insn, int op1, int op2,
940 unsigned int *r1, unsigned int *r3, int *d2, unsigned int *b2)
941 {
942 if (insn[0] == op1
943 && insn[5] == op2)
944 {
945 *r1 = (insn[1] >> 4) & 0xf;
946 *r3 = insn[1] & 0xf;
947 *b2 = (insn[2] >> 4) & 0xf;
948 /* The 'long displacement' is a 20-bit signed integer. */
949 *d2 = ((((insn[2] & 0xf) << 8) | insn[3] | (insn[4] << 12))
950 ^ 0x80000) - 0x80000;
951 return 1;
952 }
953 else
954 return 0;
955 }
956
957
958 static int
959 is_rsi (bfd_byte *insn, int op,
960 unsigned int *r1, unsigned int *r3, int *i2)
961 {
962 if (insn[0] == op)
963 {
964 *r1 = (insn[1] >> 4) & 0xf;
965 *r3 = insn[1] & 0xf;
966 /* i2 is a 16-bit signed quantity. */
967 *i2 = (((insn[2] << 8) | insn[3]) ^ 0x8000) - 0x8000;
968 return 1;
969 }
970 else
971 return 0;
972 }
973
974
975 static int
976 is_rie (bfd_byte *insn, int op1, int op2,
977 unsigned int *r1, unsigned int *r3, int *i2)
978 {
979 if (insn[0] == op1
980 && insn[5] == op2)
981 {
982 *r1 = (insn[1] >> 4) & 0xf;
983 *r3 = insn[1] & 0xf;
984 /* i2 is a 16-bit signed quantity. */
985 *i2 = (((insn[2] << 8) | insn[3]) ^ 0x8000) - 0x8000;
986 return 1;
987 }
988 else
989 return 0;
990 }
991
992
993 static int
994 is_rx (bfd_byte *insn, int op,
995 unsigned int *r1, int *d2, unsigned int *x2, unsigned int *b2)
996 {
997 if (insn[0] == op)
998 {
999 *r1 = (insn[1] >> 4) & 0xf;
1000 *x2 = insn[1] & 0xf;
1001 *b2 = (insn[2] >> 4) & 0xf;
1002 *d2 = ((insn[2] & 0xf) << 8) | insn[3];
1003 return 1;
1004 }
1005 else
1006 return 0;
1007 }
1008
1009
1010 static int
1011 is_rxy (bfd_byte *insn, int op1, int op2,
1012 unsigned int *r1, int *d2, unsigned int *x2, unsigned int *b2)
1013 {
1014 if (insn[0] == op1
1015 && insn[5] == op2)
1016 {
1017 *r1 = (insn[1] >> 4) & 0xf;
1018 *x2 = insn[1] & 0xf;
1019 *b2 = (insn[2] >> 4) & 0xf;
1020 /* The 'long displacement' is a 20-bit signed integer. */
1021 *d2 = ((((insn[2] & 0xf) << 8) | insn[3] | (insn[4] << 12))
1022 ^ 0x80000) - 0x80000;
1023 return 1;
1024 }
1025 else
1026 return 0;
1027 }
1028
1029
1030 /* Prologue analysis. */
1031
1032 #define S390_NUM_GPRS 16
1033 #define S390_NUM_FPRS 16
1034
1035 struct s390_prologue_data {
1036
1037 /* The stack. */
1038 struct pv_area *stack;
1039
1040 /* The size and byte-order of a GPR or FPR. */
1041 int gpr_size;
1042 int fpr_size;
1043 enum bfd_endian byte_order;
1044
1045 /* The general-purpose registers. */
1046 pv_t gpr[S390_NUM_GPRS];
1047
1048 /* The floating-point registers. */
1049 pv_t fpr[S390_NUM_FPRS];
1050
1051 /* The offset relative to the CFA where the incoming GPR N was saved
1052 by the function prologue. 0 if not saved or unknown. */
1053 int gpr_slot[S390_NUM_GPRS];
1054
1055 /* Likewise for FPRs. */
1056 int fpr_slot[S390_NUM_FPRS];
1057
1058 /* Nonzero if the backchain was saved. This is assumed to be the
1059 case when the incoming SP is saved at the current SP location. */
1060 int back_chain_saved_p;
1061 };
1062
1063 /* Return the effective address for an X-style instruction, like:
1064
1065 L R1, D2(X2, B2)
1066
1067 Here, X2 and B2 are registers, and D2 is a signed 20-bit
1068 constant; the effective address is the sum of all three. If either
1069 X2 or B2 are zero, then it doesn't contribute to the sum --- this
1070 means that r0 can't be used as either X2 or B2. */
1071 static pv_t
1072 s390_addr (struct s390_prologue_data *data,
1073 int d2, unsigned int x2, unsigned int b2)
1074 {
1075 pv_t result;
1076
1077 result = pv_constant (d2);
1078 if (x2)
1079 result = pv_add (result, data->gpr[x2]);
1080 if (b2)
1081 result = pv_add (result, data->gpr[b2]);
1082
1083 return result;
1084 }
1085
1086 /* Do a SIZE-byte store of VALUE to D2(X2,B2). */
1087 static void
1088 s390_store (struct s390_prologue_data *data,
1089 int d2, unsigned int x2, unsigned int b2, CORE_ADDR size,
1090 pv_t value)
1091 {
1092 pv_t addr = s390_addr (data, d2, x2, b2);
1093 pv_t offset;
1094
1095 /* Check whether we are storing the backchain. */
1096 offset = pv_subtract (data->gpr[S390_SP_REGNUM - S390_R0_REGNUM], addr);
1097
1098 if (pv_is_constant (offset) && offset.k == 0)
1099 if (size == data->gpr_size
1100 && pv_is_register_k (value, S390_SP_REGNUM, 0))
1101 {
1102 data->back_chain_saved_p = 1;
1103 return;
1104 }
1105
1106
1107 /* Check whether we are storing a register into the stack. */
1108 if (!pv_area_store_would_trash (data->stack, addr))
1109 pv_area_store (data->stack, addr, size, value);
1110
1111
1112 /* Note: If this is some store we cannot identify, you might think we
1113 should forget our cached values, as any of those might have been hit.
1114
1115 However, we make the assumption that the register save areas are only
1116 ever stored to once in any given function, and we do recognize these
1117 stores. Thus every store we cannot recognize does not hit our data. */
1118 }
1119
1120 /* Do a SIZE-byte load from D2(X2,B2). */
1121 static pv_t
1122 s390_load (struct s390_prologue_data *data,
1123 int d2, unsigned int x2, unsigned int b2, CORE_ADDR size)
1124
1125 {
1126 pv_t addr = s390_addr (data, d2, x2, b2);
1127
1128 /* If it's a load from an in-line constant pool, then we can
1129 simulate that, under the assumption that the code isn't
1130 going to change between the time the processor actually
1131 executed it creating the current frame, and the time when
1132 we're analyzing the code to unwind past that frame. */
1133 if (pv_is_constant (addr))
1134 {
1135 struct target_section *secp;
1136 secp = target_section_by_addr (&current_target, addr.k);
1137 if (secp != NULL
1138 && (bfd_get_section_flags (secp->the_bfd_section->owner,
1139 secp->the_bfd_section)
1140 & SEC_READONLY))
1141 return pv_constant (read_memory_integer (addr.k, size,
1142 data->byte_order));
1143 }
1144
1145 /* Check whether we are accessing one of our save slots. */
1146 return pv_area_fetch (data->stack, addr, size);
1147 }
1148
1149 /* Function for finding saved registers in a 'struct pv_area'; we pass
1150 this to pv_area_scan.
1151
1152 If VALUE is a saved register, ADDR says it was saved at a constant
1153 offset from the frame base, and SIZE indicates that the whole
1154 register was saved, record its offset in the reg_offset table in
1155 PROLOGUE_UNTYPED. */
1156 static void
1157 s390_check_for_saved (void *data_untyped, pv_t addr,
1158 CORE_ADDR size, pv_t value)
1159 {
1160 struct s390_prologue_data *data = data_untyped;
1161 int i, offset;
1162
1163 if (!pv_is_register (addr, S390_SP_REGNUM))
1164 return;
1165
1166 offset = 16 * data->gpr_size + 32 - addr.k;
1167
1168 /* If we are storing the original value of a register, we want to
1169 record the CFA offset. If the same register is stored multiple
1170 times, the stack slot with the highest address counts. */
1171
1172 for (i = 0; i < S390_NUM_GPRS; i++)
1173 if (size == data->gpr_size
1174 && pv_is_register_k (value, S390_R0_REGNUM + i, 0))
1175 if (data->gpr_slot[i] == 0
1176 || data->gpr_slot[i] > offset)
1177 {
1178 data->gpr_slot[i] = offset;
1179 return;
1180 }
1181
1182 for (i = 0; i < S390_NUM_FPRS; i++)
1183 if (size == data->fpr_size
1184 && pv_is_register_k (value, S390_F0_REGNUM + i, 0))
1185 if (data->fpr_slot[i] == 0
1186 || data->fpr_slot[i] > offset)
1187 {
1188 data->fpr_slot[i] = offset;
1189 return;
1190 }
1191 }
1192
1193 /* Analyze the prologue of the function starting at START_PC,
1194 continuing at most until CURRENT_PC. Initialize DATA to
1195 hold all information we find out about the state of the registers
1196 and stack slots. Return the address of the instruction after
1197 the last one that changed the SP, FP, or back chain; or zero
1198 on error. */
1199 static CORE_ADDR
1200 s390_analyze_prologue (struct gdbarch *gdbarch,
1201 CORE_ADDR start_pc,
1202 CORE_ADDR current_pc,
1203 struct s390_prologue_data *data)
1204 {
1205 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
1206
1207 /* Our return value:
1208 The address of the instruction after the last one that changed
1209 the SP, FP, or back chain; zero if we got an error trying to
1210 read memory. */
1211 CORE_ADDR result = start_pc;
1212
1213 /* The current PC for our abstract interpretation. */
1214 CORE_ADDR pc;
1215
1216 /* The address of the next instruction after that. */
1217 CORE_ADDR next_pc;
1218
1219 /* Set up everything's initial value. */
1220 {
1221 int i;
1222
1223 data->stack = make_pv_area (S390_SP_REGNUM, gdbarch_addr_bit (gdbarch));
1224
1225 /* For the purpose of prologue tracking, we consider the GPR size to
1226 be equal to the ABI word size, even if it is actually larger
1227 (i.e. when running a 32-bit binary under a 64-bit kernel). */
1228 data->gpr_size = word_size;
1229 data->fpr_size = 8;
1230 data->byte_order = gdbarch_byte_order (gdbarch);
1231
1232 for (i = 0; i < S390_NUM_GPRS; i++)
1233 data->gpr[i] = pv_register (S390_R0_REGNUM + i, 0);
1234
1235 for (i = 0; i < S390_NUM_FPRS; i++)
1236 data->fpr[i] = pv_register (S390_F0_REGNUM + i, 0);
1237
1238 for (i = 0; i < S390_NUM_GPRS; i++)
1239 data->gpr_slot[i] = 0;
1240
1241 for (i = 0; i < S390_NUM_FPRS; i++)
1242 data->fpr_slot[i] = 0;
1243
1244 data->back_chain_saved_p = 0;
1245 }
1246
1247 /* Start interpreting instructions, until we hit the frame's
1248 current PC or the first branch instruction. */
1249 for (pc = start_pc; pc > 0 && pc < current_pc; pc = next_pc)
1250 {
1251 bfd_byte insn[S390_MAX_INSTR_SIZE];
1252 int insn_len = s390_readinstruction (insn, pc);
1253
1254 bfd_byte dummy[S390_MAX_INSTR_SIZE] = { 0 };
1255 bfd_byte *insn32 = word_size == 4 ? insn : dummy;
1256 bfd_byte *insn64 = word_size == 8 ? insn : dummy;
1257
1258 /* Fields for various kinds of instructions. */
1259 unsigned int b2, r1, r2, x2, r3;
1260 int i2, d2;
1261
1262 /* The values of SP and FP before this instruction,
1263 for detecting instructions that change them. */
1264 pv_t pre_insn_sp, pre_insn_fp;
1265 /* Likewise for the flag whether the back chain was saved. */
1266 int pre_insn_back_chain_saved_p;
1267
1268 /* If we got an error trying to read the instruction, report it. */
1269 if (insn_len < 0)
1270 {
1271 result = 0;
1272 break;
1273 }
1274
1275 next_pc = pc + insn_len;
1276
1277 pre_insn_sp = data->gpr[S390_SP_REGNUM - S390_R0_REGNUM];
1278 pre_insn_fp = data->gpr[S390_FRAME_REGNUM - S390_R0_REGNUM];
1279 pre_insn_back_chain_saved_p = data->back_chain_saved_p;
1280
1281
1282 /* LHI r1, i2 --- load halfword immediate. */
1283 /* LGHI r1, i2 --- load halfword immediate (64-bit version). */
1284 /* LGFI r1, i2 --- load fullword immediate. */
1285 if (is_ri (insn32, op1_lhi, op2_lhi, &r1, &i2)
1286 || is_ri (insn64, op1_lghi, op2_lghi, &r1, &i2)
1287 || is_ril (insn, op1_lgfi, op2_lgfi, &r1, &i2))
1288 data->gpr[r1] = pv_constant (i2);
1289
1290 /* LR r1, r2 --- load from register. */
1291 /* LGR r1, r2 --- load from register (64-bit version). */
1292 else if (is_rr (insn32, op_lr, &r1, &r2)
1293 || is_rre (insn64, op_lgr, &r1, &r2))
1294 data->gpr[r1] = data->gpr[r2];
1295
1296 /* L r1, d2(x2, b2) --- load. */
1297 /* LY r1, d2(x2, b2) --- load (long-displacement version). */
1298 /* LG r1, d2(x2, b2) --- load (64-bit version). */
1299 else if (is_rx (insn32, op_l, &r1, &d2, &x2, &b2)
1300 || is_rxy (insn32, op1_ly, op2_ly, &r1, &d2, &x2, &b2)
1301 || is_rxy (insn64, op1_lg, op2_lg, &r1, &d2, &x2, &b2))
1302 data->gpr[r1] = s390_load (data, d2, x2, b2, data->gpr_size);
1303
1304 /* ST r1, d2(x2, b2) --- store. */
1305 /* STY r1, d2(x2, b2) --- store (long-displacement version). */
1306 /* STG r1, d2(x2, b2) --- store (64-bit version). */
1307 else if (is_rx (insn32, op_st, &r1, &d2, &x2, &b2)
1308 || is_rxy (insn32, op1_sty, op2_sty, &r1, &d2, &x2, &b2)
1309 || is_rxy (insn64, op1_stg, op2_stg, &r1, &d2, &x2, &b2))
1310 s390_store (data, d2, x2, b2, data->gpr_size, data->gpr[r1]);
1311
1312 /* STD r1, d2(x2,b2) --- store floating-point register. */
1313 else if (is_rx (insn, op_std, &r1, &d2, &x2, &b2))
1314 s390_store (data, d2, x2, b2, data->fpr_size, data->fpr[r1]);
1315
1316 /* STM r1, r3, d2(b2) --- store multiple. */
1317 /* STMY r1, r3, d2(b2) --- store multiple (long-displacement
1318 version). */
1319 /* STMG r1, r3, d2(b2) --- store multiple (64-bit version). */
1320 else if (is_rs (insn32, op_stm, &r1, &r3, &d2, &b2)
1321 || is_rsy (insn32, op1_stmy, op2_stmy, &r1, &r3, &d2, &b2)
1322 || is_rsy (insn64, op1_stmg, op2_stmg, &r1, &r3, &d2, &b2))
1323 {
1324 for (; r1 <= r3; r1++, d2 += data->gpr_size)
1325 s390_store (data, d2, 0, b2, data->gpr_size, data->gpr[r1]);
1326 }
1327
1328 /* AHI r1, i2 --- add halfword immediate. */
1329 /* AGHI r1, i2 --- add halfword immediate (64-bit version). */
1330 /* AFI r1, i2 --- add fullword immediate. */
1331 /* AGFI r1, i2 --- add fullword immediate (64-bit version). */
1332 else if (is_ri (insn32, op1_ahi, op2_ahi, &r1, &i2)
1333 || is_ri (insn64, op1_aghi, op2_aghi, &r1, &i2)
1334 || is_ril (insn32, op1_afi, op2_afi, &r1, &i2)
1335 || is_ril (insn64, op1_agfi, op2_agfi, &r1, &i2))
1336 data->gpr[r1] = pv_add_constant (data->gpr[r1], i2);
1337
1338 /* ALFI r1, i2 --- add logical immediate. */
1339 /* ALGFI r1, i2 --- add logical immediate (64-bit version). */
1340 else if (is_ril (insn32, op1_alfi, op2_alfi, &r1, &i2)
1341 || is_ril (insn64, op1_algfi, op2_algfi, &r1, &i2))
1342 data->gpr[r1] = pv_add_constant (data->gpr[r1],
1343 (CORE_ADDR)i2 & 0xffffffff);
1344
1345 /* AR r1, r2 -- add register. */
1346 /* AGR r1, r2 -- add register (64-bit version). */
1347 else if (is_rr (insn32, op_ar, &r1, &r2)
1348 || is_rre (insn64, op_agr, &r1, &r2))
1349 data->gpr[r1] = pv_add (data->gpr[r1], data->gpr[r2]);
1350
1351 /* A r1, d2(x2, b2) -- add. */
1352 /* AY r1, d2(x2, b2) -- add (long-displacement version). */
1353 /* AG r1, d2(x2, b2) -- add (64-bit version). */
1354 else if (is_rx (insn32, op_a, &r1, &d2, &x2, &b2)
1355 || is_rxy (insn32, op1_ay, op2_ay, &r1, &d2, &x2, &b2)
1356 || is_rxy (insn64, op1_ag, op2_ag, &r1, &d2, &x2, &b2))
1357 data->gpr[r1] = pv_add (data->gpr[r1],
1358 s390_load (data, d2, x2, b2, data->gpr_size));
1359
1360 /* SLFI r1, i2 --- subtract logical immediate. */
1361 /* SLGFI r1, i2 --- subtract logical immediate (64-bit version). */
1362 else if (is_ril (insn32, op1_slfi, op2_slfi, &r1, &i2)
1363 || is_ril (insn64, op1_slgfi, op2_slgfi, &r1, &i2))
1364 data->gpr[r1] = pv_add_constant (data->gpr[r1],
1365 -((CORE_ADDR)i2 & 0xffffffff));
1366
1367 /* SR r1, r2 -- subtract register. */
1368 /* SGR r1, r2 -- subtract register (64-bit version). */
1369 else if (is_rr (insn32, op_sr, &r1, &r2)
1370 || is_rre (insn64, op_sgr, &r1, &r2))
1371 data->gpr[r1] = pv_subtract (data->gpr[r1], data->gpr[r2]);
1372
1373 /* S r1, d2(x2, b2) -- subtract. */
1374 /* SY r1, d2(x2, b2) -- subtract (long-displacement version). */
1375 /* SG r1, d2(x2, b2) -- subtract (64-bit version). */
1376 else if (is_rx (insn32, op_s, &r1, &d2, &x2, &b2)
1377 || is_rxy (insn32, op1_sy, op2_sy, &r1, &d2, &x2, &b2)
1378 || is_rxy (insn64, op1_sg, op2_sg, &r1, &d2, &x2, &b2))
1379 data->gpr[r1] = pv_subtract (data->gpr[r1],
1380 s390_load (data, d2, x2, b2, data->gpr_size));
1381
1382 /* LA r1, d2(x2, b2) --- load address. */
1383 /* LAY r1, d2(x2, b2) --- load address (long-displacement version). */
1384 else if (is_rx (insn, op_la, &r1, &d2, &x2, &b2)
1385 || is_rxy (insn, op1_lay, op2_lay, &r1, &d2, &x2, &b2))
1386 data->gpr[r1] = s390_addr (data, d2, x2, b2);
1387
1388 /* LARL r1, i2 --- load address relative long. */
1389 else if (is_ril (insn, op1_larl, op2_larl, &r1, &i2))
1390 data->gpr[r1] = pv_constant (pc + i2 * 2);
1391
1392 /* BASR r1, 0 --- branch and save.
1393 Since r2 is zero, this saves the PC in r1, but doesn't branch. */
1394 else if (is_rr (insn, op_basr, &r1, &r2)
1395 && r2 == 0)
1396 data->gpr[r1] = pv_constant (next_pc);
1397
1398 /* BRAS r1, i2 --- branch relative and save. */
1399 else if (is_ri (insn, op1_bras, op2_bras, &r1, &i2))
1400 {
1401 data->gpr[r1] = pv_constant (next_pc);
1402 next_pc = pc + i2 * 2;
1403
1404 /* We'd better not interpret any backward branches. We'll
1405 never terminate. */
1406 if (next_pc <= pc)
1407 break;
1408 }
1409
1410 /* Terminate search when hitting any other branch instruction. */
1411 else if (is_rr (insn, op_basr, &r1, &r2)
1412 || is_rx (insn, op_bas, &r1, &d2, &x2, &b2)
1413 || is_rr (insn, op_bcr, &r1, &r2)
1414 || is_rx (insn, op_bc, &r1, &d2, &x2, &b2)
1415 || is_ri (insn, op1_brc, op2_brc, &r1, &i2)
1416 || is_ril (insn, op1_brcl, op2_brcl, &r1, &i2)
1417 || is_ril (insn, op1_brasl, op2_brasl, &r2, &i2))
1418 break;
1419
1420 else
1421 {
1422 /* An instruction we don't know how to simulate. The only
1423 safe thing to do would be to set every value we're tracking
1424 to 'unknown'. Instead, we'll be optimistic: we assume that
1425 we *can* interpret every instruction that the compiler uses
1426 to manipulate any of the data we're interested in here --
1427 then we can just ignore anything else. */
1428 }
1429
1430 /* Record the address after the last instruction that changed
1431 the FP, SP, or backlink. Ignore instructions that changed
1432 them back to their original values --- those are probably
1433 restore instructions. (The back chain is never restored,
1434 just popped.) */
1435 {
1436 pv_t sp = data->gpr[S390_SP_REGNUM - S390_R0_REGNUM];
1437 pv_t fp = data->gpr[S390_FRAME_REGNUM - S390_R0_REGNUM];
1438
1439 if ((! pv_is_identical (pre_insn_sp, sp)
1440 && ! pv_is_register_k (sp, S390_SP_REGNUM, 0)
1441 && sp.kind != pvk_unknown)
1442 || (! pv_is_identical (pre_insn_fp, fp)
1443 && ! pv_is_register_k (fp, S390_FRAME_REGNUM, 0)
1444 && fp.kind != pvk_unknown)
1445 || pre_insn_back_chain_saved_p != data->back_chain_saved_p)
1446 result = next_pc;
1447 }
1448 }
1449
1450 /* Record where all the registers were saved. */
1451 pv_area_scan (data->stack, s390_check_for_saved, data);
1452
1453 free_pv_area (data->stack);
1454 data->stack = NULL;
1455
1456 return result;
1457 }
1458
1459 /* Advance PC across any function entry prologue instructions to reach
1460 some "real" code. */
1461 static CORE_ADDR
1462 s390_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR pc)
1463 {
1464 struct s390_prologue_data data;
1465 CORE_ADDR skip_pc;
1466 skip_pc = s390_analyze_prologue (gdbarch, pc, (CORE_ADDR)-1, &data);
1467 return skip_pc ? skip_pc : pc;
1468 }
1469
1470 /* Return true if we are in the functin's epilogue, i.e. after the
1471 instruction that destroyed the function's stack frame. */
1472 static int
1473 s390_in_function_epilogue_p (struct gdbarch *gdbarch, CORE_ADDR pc)
1474 {
1475 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
1476
1477 /* In frameless functions, there's not frame to destroy and thus
1478 we don't care about the epilogue.
1479
1480 In functions with frame, the epilogue sequence is a pair of
1481 a LM-type instruction that restores (amongst others) the
1482 return register %r14 and the stack pointer %r15, followed
1483 by a branch 'br %r14' --or equivalent-- that effects the
1484 actual return.
1485
1486 In that situation, this function needs to return 'true' in
1487 exactly one case: when pc points to that branch instruction.
1488
1489 Thus we try to disassemble the one instructions immediately
1490 preceding pc and check whether it is an LM-type instruction
1491 modifying the stack pointer.
1492
1493 Note that disassembling backwards is not reliable, so there
1494 is a slight chance of false positives here ... */
1495
1496 bfd_byte insn[6];
1497 unsigned int r1, r3, b2;
1498 int d2;
1499
1500 if (word_size == 4
1501 && !target_read_memory (pc - 4, insn, 4)
1502 && is_rs (insn, op_lm, &r1, &r3, &d2, &b2)
1503 && r3 == S390_SP_REGNUM - S390_R0_REGNUM)
1504 return 1;
1505
1506 if (word_size == 4
1507 && !target_read_memory (pc - 6, insn, 6)
1508 && is_rsy (insn, op1_lmy, op2_lmy, &r1, &r3, &d2, &b2)
1509 && r3 == S390_SP_REGNUM - S390_R0_REGNUM)
1510 return 1;
1511
1512 if (word_size == 8
1513 && !target_read_memory (pc - 6, insn, 6)
1514 && is_rsy (insn, op1_lmg, op2_lmg, &r1, &r3, &d2, &b2)
1515 && r3 == S390_SP_REGNUM - S390_R0_REGNUM)
1516 return 1;
1517
1518 return 0;
1519 }
1520
1521 /* Displaced stepping. */
1522
1523 /* Fix up the state of registers and memory after having single-stepped
1524 a displaced instruction. */
1525 static void
1526 s390_displaced_step_fixup (struct gdbarch *gdbarch,
1527 struct displaced_step_closure *closure,
1528 CORE_ADDR from, CORE_ADDR to,
1529 struct regcache *regs)
1530 {
1531 /* Since we use simple_displaced_step_copy_insn, our closure is a
1532 copy of the instruction. */
1533 gdb_byte *insn = (gdb_byte *) closure;
1534 static int s390_instrlen[] = { 2, 4, 4, 6 };
1535 int insnlen = s390_instrlen[insn[0] >> 6];
1536
1537 /* Fields for various kinds of instructions. */
1538 unsigned int b2, r1, r2, x2, r3;
1539 int i2, d2;
1540
1541 /* Get current PC and addressing mode bit. */
1542 CORE_ADDR pc = regcache_read_pc (regs);
1543 ULONGEST amode = 0;
1544
1545 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
1546 {
1547 regcache_cooked_read_unsigned (regs, S390_PSWA_REGNUM, &amode);
1548 amode &= 0x80000000;
1549 }
1550
1551 if (debug_displaced)
1552 fprintf_unfiltered (gdb_stdlog,
1553 "displaced: (s390) fixup (%s, %s) pc %s len %d amode 0x%x\n",
1554 paddress (gdbarch, from), paddress (gdbarch, to),
1555 paddress (gdbarch, pc), insnlen, (int) amode);
1556
1557 /* Handle absolute branch and save instructions. */
1558 if (is_rr (insn, op_basr, &r1, &r2)
1559 || is_rx (insn, op_bas, &r1, &d2, &x2, &b2))
1560 {
1561 /* Recompute saved return address in R1. */
1562 regcache_cooked_write_unsigned (regs, S390_R0_REGNUM + r1,
1563 amode | (from + insnlen));
1564 }
1565
1566 /* Handle absolute branch instructions. */
1567 else if (is_rr (insn, op_bcr, &r1, &r2)
1568 || is_rx (insn, op_bc, &r1, &d2, &x2, &b2)
1569 || is_rr (insn, op_bctr, &r1, &r2)
1570 || is_rre (insn, op_bctgr, &r1, &r2)
1571 || is_rx (insn, op_bct, &r1, &d2, &x2, &b2)
1572 || is_rxy (insn, op1_bctg, op2_brctg, &r1, &d2, &x2, &b2)
1573 || is_rs (insn, op_bxh, &r1, &r3, &d2, &b2)
1574 || is_rsy (insn, op1_bxhg, op2_bxhg, &r1, &r3, &d2, &b2)
1575 || is_rs (insn, op_bxle, &r1, &r3, &d2, &b2)
1576 || is_rsy (insn, op1_bxleg, op2_bxleg, &r1, &r3, &d2, &b2))
1577 {
1578 /* Update PC iff branch was *not* taken. */
1579 if (pc == to + insnlen)
1580 regcache_write_pc (regs, from + insnlen);
1581 }
1582
1583 /* Handle PC-relative branch and save instructions. */
1584 else if (is_ri (insn, op1_bras, op2_bras, &r1, &i2)
1585 || is_ril (insn, op1_brasl, op2_brasl, &r1, &i2))
1586 {
1587 /* Update PC. */
1588 regcache_write_pc (regs, pc - to + from);
1589 /* Recompute saved return address in R1. */
1590 regcache_cooked_write_unsigned (regs, S390_R0_REGNUM + r1,
1591 amode | (from + insnlen));
1592 }
1593
1594 /* Handle PC-relative branch instructions. */
1595 else if (is_ri (insn, op1_brc, op2_brc, &r1, &i2)
1596 || is_ril (insn, op1_brcl, op2_brcl, &r1, &i2)
1597 || is_ri (insn, op1_brct, op2_brct, &r1, &i2)
1598 || is_ri (insn, op1_brctg, op2_brctg, &r1, &i2)
1599 || is_rsi (insn, op_brxh, &r1, &r3, &i2)
1600 || is_rie (insn, op1_brxhg, op2_brxhg, &r1, &r3, &i2)
1601 || is_rsi (insn, op_brxle, &r1, &r3, &i2)
1602 || is_rie (insn, op1_brxlg, op2_brxlg, &r1, &r3, &i2))
1603 {
1604 /* Update PC. */
1605 regcache_write_pc (regs, pc - to + from);
1606 }
1607
1608 /* Handle LOAD ADDRESS RELATIVE LONG. */
1609 else if (is_ril (insn, op1_larl, op2_larl, &r1, &i2))
1610 {
1611 /* Update PC. */
1612 regcache_write_pc (regs, from + insnlen);
1613 /* Recompute output address in R1. */
1614 regcache_cooked_write_unsigned (regs, S390_R0_REGNUM + r1,
1615 amode | (from + i2 * 2));
1616 }
1617
1618 /* If we executed a breakpoint instruction, point PC right back at it. */
1619 else if (insn[0] == 0x0 && insn[1] == 0x1)
1620 regcache_write_pc (regs, from);
1621
1622 /* For any other insn, PC points right after the original instruction. */
1623 else
1624 regcache_write_pc (regs, from + insnlen);
1625
1626 if (debug_displaced)
1627 fprintf_unfiltered (gdb_stdlog,
1628 "displaced: (s390) pc is now %s\n",
1629 paddress (gdbarch, regcache_read_pc (regs)));
1630 }
1631
1632
1633 /* Helper routine to unwind pseudo registers. */
1634
1635 static struct value *
1636 s390_unwind_pseudo_register (struct frame_info *this_frame, int regnum)
1637 {
1638 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1639 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1640 struct type *type = register_type (gdbarch, regnum);
1641
1642 /* Unwind PC via PSW address. */
1643 if (regnum == tdep->pc_regnum)
1644 {
1645 struct value *val;
1646
1647 val = frame_unwind_register_value (this_frame, S390_PSWA_REGNUM);
1648 if (!value_optimized_out (val))
1649 {
1650 LONGEST pswa = value_as_long (val);
1651
1652 if (TYPE_LENGTH (type) == 4)
1653 return value_from_pointer (type, pswa & 0x7fffffff);
1654 else
1655 return value_from_pointer (type, pswa);
1656 }
1657 }
1658
1659 /* Unwind CC via PSW mask. */
1660 if (regnum == tdep->cc_regnum)
1661 {
1662 struct value *val;
1663
1664 val = frame_unwind_register_value (this_frame, S390_PSWM_REGNUM);
1665 if (!value_optimized_out (val))
1666 {
1667 LONGEST pswm = value_as_long (val);
1668
1669 if (TYPE_LENGTH (type) == 4)
1670 return value_from_longest (type, (pswm >> 12) & 3);
1671 else
1672 return value_from_longest (type, (pswm >> 44) & 3);
1673 }
1674 }
1675
1676 /* Unwind full GPRs to show at least the lower halves (as the
1677 upper halves are undefined). */
1678 if (regnum_is_gpr_full (tdep, regnum))
1679 {
1680 int reg = regnum - tdep->gpr_full_regnum;
1681 struct value *val;
1682
1683 val = frame_unwind_register_value (this_frame, S390_R0_REGNUM + reg);
1684 if (!value_optimized_out (val))
1685 return value_cast (type, val);
1686 }
1687
1688 return allocate_optimized_out_value (type);
1689 }
1690
1691 static struct value *
1692 s390_trad_frame_prev_register (struct frame_info *this_frame,
1693 struct trad_frame_saved_reg saved_regs[],
1694 int regnum)
1695 {
1696 if (regnum < S390_NUM_REGS)
1697 return trad_frame_get_prev_register (this_frame, saved_regs, regnum);
1698 else
1699 return s390_unwind_pseudo_register (this_frame, regnum);
1700 }
1701
1702
1703 /* Normal stack frames. */
1704
1705 struct s390_unwind_cache {
1706
1707 CORE_ADDR func;
1708 CORE_ADDR frame_base;
1709 CORE_ADDR local_base;
1710
1711 struct trad_frame_saved_reg *saved_regs;
1712 };
1713
1714 static int
1715 s390_prologue_frame_unwind_cache (struct frame_info *this_frame,
1716 struct s390_unwind_cache *info)
1717 {
1718 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1719 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
1720 struct s390_prologue_data data;
1721 pv_t *fp = &data.gpr[S390_FRAME_REGNUM - S390_R0_REGNUM];
1722 pv_t *sp = &data.gpr[S390_SP_REGNUM - S390_R0_REGNUM];
1723 int i;
1724 CORE_ADDR cfa;
1725 CORE_ADDR func;
1726 CORE_ADDR result;
1727 ULONGEST reg;
1728 CORE_ADDR prev_sp;
1729 int frame_pointer;
1730 int size;
1731 struct frame_info *next_frame;
1732
1733 /* Try to find the function start address. If we can't find it, we don't
1734 bother searching for it -- with modern compilers this would be mostly
1735 pointless anyway. Trust that we'll either have valid DWARF-2 CFI data
1736 or else a valid backchain ... */
1737 func = get_frame_func (this_frame);
1738 if (!func)
1739 return 0;
1740
1741 /* Try to analyze the prologue. */
1742 result = s390_analyze_prologue (gdbarch, func,
1743 get_frame_pc (this_frame), &data);
1744 if (!result)
1745 return 0;
1746
1747 /* If this was successful, we should have found the instruction that
1748 sets the stack pointer register to the previous value of the stack
1749 pointer minus the frame size. */
1750 if (!pv_is_register (*sp, S390_SP_REGNUM))
1751 return 0;
1752
1753 /* A frame size of zero at this point can mean either a real
1754 frameless function, or else a failure to find the prologue.
1755 Perform some sanity checks to verify we really have a
1756 frameless function. */
1757 if (sp->k == 0)
1758 {
1759 /* If the next frame is a NORMAL_FRAME, this frame *cannot* have frame
1760 size zero. This is only possible if the next frame is a sentinel
1761 frame, a dummy frame, or a signal trampoline frame. */
1762 /* FIXME: cagney/2004-05-01: This sanity check shouldn't be
1763 needed, instead the code should simpliy rely on its
1764 analysis. */
1765 next_frame = get_next_frame (this_frame);
1766 while (next_frame && get_frame_type (next_frame) == INLINE_FRAME)
1767 next_frame = get_next_frame (next_frame);
1768 if (next_frame
1769 && get_frame_type (get_next_frame (this_frame)) == NORMAL_FRAME)
1770 return 0;
1771
1772 /* If we really have a frameless function, %r14 must be valid
1773 -- in particular, it must point to a different function. */
1774 reg = get_frame_register_unsigned (this_frame, S390_RETADDR_REGNUM);
1775 reg = gdbarch_addr_bits_remove (gdbarch, reg) - 1;
1776 if (get_pc_function_start (reg) == func)
1777 {
1778 /* However, there is one case where it *is* valid for %r14
1779 to point to the same function -- if this is a recursive
1780 call, and we have stopped in the prologue *before* the
1781 stack frame was allocated.
1782
1783 Recognize this case by looking ahead a bit ... */
1784
1785 struct s390_prologue_data data2;
1786 pv_t *sp = &data2.gpr[S390_SP_REGNUM - S390_R0_REGNUM];
1787
1788 if (!(s390_analyze_prologue (gdbarch, func, (CORE_ADDR)-1, &data2)
1789 && pv_is_register (*sp, S390_SP_REGNUM)
1790 && sp->k != 0))
1791 return 0;
1792 }
1793 }
1794
1795
1796 /* OK, we've found valid prologue data. */
1797 size = -sp->k;
1798
1799 /* If the frame pointer originally also holds the same value
1800 as the stack pointer, we're probably using it. If it holds
1801 some other value -- even a constant offset -- it is most
1802 likely used as temp register. */
1803 if (pv_is_identical (*sp, *fp))
1804 frame_pointer = S390_FRAME_REGNUM;
1805 else
1806 frame_pointer = S390_SP_REGNUM;
1807
1808 /* If we've detected a function with stack frame, we'll still have to
1809 treat it as frameless if we're currently within the function epilog
1810 code at a point where the frame pointer has already been restored.
1811 This can only happen in an innermost frame. */
1812 /* FIXME: cagney/2004-05-01: This sanity check shouldn't be needed,
1813 instead the code should simpliy rely on its analysis. */
1814 next_frame = get_next_frame (this_frame);
1815 while (next_frame && get_frame_type (next_frame) == INLINE_FRAME)
1816 next_frame = get_next_frame (next_frame);
1817 if (size > 0
1818 && (next_frame == NULL
1819 || get_frame_type (get_next_frame (this_frame)) != NORMAL_FRAME))
1820 {
1821 /* See the comment in s390_in_function_epilogue_p on why this is
1822 not completely reliable ... */
1823 if (s390_in_function_epilogue_p (gdbarch, get_frame_pc (this_frame)))
1824 {
1825 memset (&data, 0, sizeof (data));
1826 size = 0;
1827 frame_pointer = S390_SP_REGNUM;
1828 }
1829 }
1830
1831 /* Once we know the frame register and the frame size, we can unwind
1832 the current value of the frame register from the next frame, and
1833 add back the frame size to arrive that the previous frame's
1834 stack pointer value. */
1835 prev_sp = get_frame_register_unsigned (this_frame, frame_pointer) + size;
1836 cfa = prev_sp + 16*word_size + 32;
1837
1838 /* Set up ABI call-saved/call-clobbered registers. */
1839 for (i = 0; i < S390_NUM_REGS; i++)
1840 if (!s390_register_call_saved (gdbarch, i))
1841 trad_frame_set_unknown (info->saved_regs, i);
1842
1843 /* CC is always call-clobbered. */
1844 trad_frame_set_unknown (info->saved_regs, S390_PSWM_REGNUM);
1845
1846 /* Record the addresses of all register spill slots the prologue parser
1847 has recognized. Consider only registers defined as call-saved by the
1848 ABI; for call-clobbered registers the parser may have recognized
1849 spurious stores. */
1850
1851 for (i = 0; i < 16; i++)
1852 if (s390_register_call_saved (gdbarch, S390_R0_REGNUM + i)
1853 && data.gpr_slot[i] != 0)
1854 info->saved_regs[S390_R0_REGNUM + i].addr = cfa - data.gpr_slot[i];
1855
1856 for (i = 0; i < 16; i++)
1857 if (s390_register_call_saved (gdbarch, S390_F0_REGNUM + i)
1858 && data.fpr_slot[i] != 0)
1859 info->saved_regs[S390_F0_REGNUM + i].addr = cfa - data.fpr_slot[i];
1860
1861 /* Function return will set PC to %r14. */
1862 info->saved_regs[S390_PSWA_REGNUM] = info->saved_regs[S390_RETADDR_REGNUM];
1863
1864 /* In frameless functions, we unwind simply by moving the return
1865 address to the PC. However, if we actually stored to the
1866 save area, use that -- we might only think the function frameless
1867 because we're in the middle of the prologue ... */
1868 if (size == 0
1869 && !trad_frame_addr_p (info->saved_regs, S390_PSWA_REGNUM))
1870 {
1871 info->saved_regs[S390_PSWA_REGNUM].realreg = S390_RETADDR_REGNUM;
1872 }
1873
1874 /* Another sanity check: unless this is a frameless function,
1875 we should have found spill slots for SP and PC.
1876 If not, we cannot unwind further -- this happens e.g. in
1877 libc's thread_start routine. */
1878 if (size > 0)
1879 {
1880 if (!trad_frame_addr_p (info->saved_regs, S390_SP_REGNUM)
1881 || !trad_frame_addr_p (info->saved_regs, S390_PSWA_REGNUM))
1882 prev_sp = -1;
1883 }
1884
1885 /* We use the current value of the frame register as local_base,
1886 and the top of the register save area as frame_base. */
1887 if (prev_sp != -1)
1888 {
1889 info->frame_base = prev_sp + 16*word_size + 32;
1890 info->local_base = prev_sp - size;
1891 }
1892
1893 info->func = func;
1894 return 1;
1895 }
1896
1897 static void
1898 s390_backchain_frame_unwind_cache (struct frame_info *this_frame,
1899 struct s390_unwind_cache *info)
1900 {
1901 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1902 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
1903 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1904 CORE_ADDR backchain;
1905 ULONGEST reg;
1906 LONGEST sp;
1907 int i;
1908
1909 /* Set up ABI call-saved/call-clobbered registers. */
1910 for (i = 0; i < S390_NUM_REGS; i++)
1911 if (!s390_register_call_saved (gdbarch, i))
1912 trad_frame_set_unknown (info->saved_regs, i);
1913
1914 /* CC is always call-clobbered. */
1915 trad_frame_set_unknown (info->saved_regs, S390_PSWM_REGNUM);
1916
1917 /* Get the backchain. */
1918 reg = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
1919 backchain = read_memory_unsigned_integer (reg, word_size, byte_order);
1920
1921 /* A zero backchain terminates the frame chain. As additional
1922 sanity check, let's verify that the spill slot for SP in the
1923 save area pointed to by the backchain in fact links back to
1924 the save area. */
1925 if (backchain != 0
1926 && safe_read_memory_integer (backchain + 15*word_size,
1927 word_size, byte_order, &sp)
1928 && (CORE_ADDR)sp == backchain)
1929 {
1930 /* We don't know which registers were saved, but it will have
1931 to be at least %r14 and %r15. This will allow us to continue
1932 unwinding, but other prev-frame registers may be incorrect ... */
1933 info->saved_regs[S390_SP_REGNUM].addr = backchain + 15*word_size;
1934 info->saved_regs[S390_RETADDR_REGNUM].addr = backchain + 14*word_size;
1935
1936 /* Function return will set PC to %r14. */
1937 info->saved_regs[S390_PSWA_REGNUM]
1938 = info->saved_regs[S390_RETADDR_REGNUM];
1939
1940 /* We use the current value of the frame register as local_base,
1941 and the top of the register save area as frame_base. */
1942 info->frame_base = backchain + 16*word_size + 32;
1943 info->local_base = reg;
1944 }
1945
1946 info->func = get_frame_pc (this_frame);
1947 }
1948
1949 static struct s390_unwind_cache *
1950 s390_frame_unwind_cache (struct frame_info *this_frame,
1951 void **this_prologue_cache)
1952 {
1953 volatile struct gdb_exception ex;
1954 struct s390_unwind_cache *info;
1955
1956 if (*this_prologue_cache)
1957 return *this_prologue_cache;
1958
1959 info = FRAME_OBSTACK_ZALLOC (struct s390_unwind_cache);
1960 *this_prologue_cache = info;
1961 info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
1962 info->func = -1;
1963 info->frame_base = -1;
1964 info->local_base = -1;
1965
1966 TRY_CATCH (ex, RETURN_MASK_ERROR)
1967 {
1968 /* Try to use prologue analysis to fill the unwind cache.
1969 If this fails, fall back to reading the stack backchain. */
1970 if (!s390_prologue_frame_unwind_cache (this_frame, info))
1971 s390_backchain_frame_unwind_cache (this_frame, info);
1972 }
1973 if (ex.reason < 0)
1974 {
1975 if (ex.error != NOT_AVAILABLE_ERROR)
1976 throw_exception (ex);
1977 }
1978
1979 return info;
1980 }
1981
1982 static void
1983 s390_frame_this_id (struct frame_info *this_frame,
1984 void **this_prologue_cache,
1985 struct frame_id *this_id)
1986 {
1987 struct s390_unwind_cache *info
1988 = s390_frame_unwind_cache (this_frame, this_prologue_cache);
1989
1990 if (info->frame_base == -1)
1991 return;
1992
1993 *this_id = frame_id_build (info->frame_base, info->func);
1994 }
1995
1996 static struct value *
1997 s390_frame_prev_register (struct frame_info *this_frame,
1998 void **this_prologue_cache, int regnum)
1999 {
2000 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2001 struct s390_unwind_cache *info
2002 = s390_frame_unwind_cache (this_frame, this_prologue_cache);
2003
2004 return s390_trad_frame_prev_register (this_frame, info->saved_regs, regnum);
2005 }
2006
2007 static const struct frame_unwind s390_frame_unwind = {
2008 NORMAL_FRAME,
2009 default_frame_unwind_stop_reason,
2010 s390_frame_this_id,
2011 s390_frame_prev_register,
2012 NULL,
2013 default_frame_sniffer
2014 };
2015
2016
2017 /* Code stubs and their stack frames. For things like PLTs and NULL
2018 function calls (where there is no true frame and the return address
2019 is in the RETADDR register). */
2020
2021 struct s390_stub_unwind_cache
2022 {
2023 CORE_ADDR frame_base;
2024 struct trad_frame_saved_reg *saved_regs;
2025 };
2026
2027 static struct s390_stub_unwind_cache *
2028 s390_stub_frame_unwind_cache (struct frame_info *this_frame,
2029 void **this_prologue_cache)
2030 {
2031 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2032 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2033 struct s390_stub_unwind_cache *info;
2034 ULONGEST reg;
2035
2036 if (*this_prologue_cache)
2037 return *this_prologue_cache;
2038
2039 info = FRAME_OBSTACK_ZALLOC (struct s390_stub_unwind_cache);
2040 *this_prologue_cache = info;
2041 info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
2042
2043 /* The return address is in register %r14. */
2044 info->saved_regs[S390_PSWA_REGNUM].realreg = S390_RETADDR_REGNUM;
2045
2046 /* Retrieve stack pointer and determine our frame base. */
2047 reg = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
2048 info->frame_base = reg + 16*word_size + 32;
2049
2050 return info;
2051 }
2052
2053 static void
2054 s390_stub_frame_this_id (struct frame_info *this_frame,
2055 void **this_prologue_cache,
2056 struct frame_id *this_id)
2057 {
2058 struct s390_stub_unwind_cache *info
2059 = s390_stub_frame_unwind_cache (this_frame, this_prologue_cache);
2060 *this_id = frame_id_build (info->frame_base, get_frame_pc (this_frame));
2061 }
2062
2063 static struct value *
2064 s390_stub_frame_prev_register (struct frame_info *this_frame,
2065 void **this_prologue_cache, int regnum)
2066 {
2067 struct s390_stub_unwind_cache *info
2068 = s390_stub_frame_unwind_cache (this_frame, this_prologue_cache);
2069 return s390_trad_frame_prev_register (this_frame, info->saved_regs, regnum);
2070 }
2071
2072 static int
2073 s390_stub_frame_sniffer (const struct frame_unwind *self,
2074 struct frame_info *this_frame,
2075 void **this_prologue_cache)
2076 {
2077 CORE_ADDR addr_in_block;
2078 bfd_byte insn[S390_MAX_INSTR_SIZE];
2079
2080 /* If the current PC points to non-readable memory, we assume we
2081 have trapped due to an invalid function pointer call. We handle
2082 the non-existing current function like a PLT stub. */
2083 addr_in_block = get_frame_address_in_block (this_frame);
2084 if (in_plt_section (addr_in_block)
2085 || s390_readinstruction (insn, get_frame_pc (this_frame)) < 0)
2086 return 1;
2087 return 0;
2088 }
2089
2090 static const struct frame_unwind s390_stub_frame_unwind = {
2091 NORMAL_FRAME,
2092 default_frame_unwind_stop_reason,
2093 s390_stub_frame_this_id,
2094 s390_stub_frame_prev_register,
2095 NULL,
2096 s390_stub_frame_sniffer
2097 };
2098
2099
2100 /* Signal trampoline stack frames. */
2101
2102 struct s390_sigtramp_unwind_cache {
2103 CORE_ADDR frame_base;
2104 struct trad_frame_saved_reg *saved_regs;
2105 };
2106
2107 static struct s390_sigtramp_unwind_cache *
2108 s390_sigtramp_frame_unwind_cache (struct frame_info *this_frame,
2109 void **this_prologue_cache)
2110 {
2111 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2112 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2113 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2114 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2115 struct s390_sigtramp_unwind_cache *info;
2116 ULONGEST this_sp, prev_sp;
2117 CORE_ADDR next_ra, next_cfa, sigreg_ptr, sigreg_high_off;
2118 int i;
2119
2120 if (*this_prologue_cache)
2121 return *this_prologue_cache;
2122
2123 info = FRAME_OBSTACK_ZALLOC (struct s390_sigtramp_unwind_cache);
2124 *this_prologue_cache = info;
2125 info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
2126
2127 this_sp = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
2128 next_ra = get_frame_pc (this_frame);
2129 next_cfa = this_sp + 16*word_size + 32;
2130
2131 /* New-style RT frame:
2132 retcode + alignment (8 bytes)
2133 siginfo (128 bytes)
2134 ucontext (contains sigregs at offset 5 words). */
2135 if (next_ra == next_cfa)
2136 {
2137 sigreg_ptr = next_cfa + 8 + 128 + align_up (5*word_size, 8);
2138 /* sigregs are followed by uc_sigmask (8 bytes), then by the
2139 upper GPR halves if present. */
2140 sigreg_high_off = 8;
2141 }
2142
2143 /* Old-style RT frame and all non-RT frames:
2144 old signal mask (8 bytes)
2145 pointer to sigregs. */
2146 else
2147 {
2148 sigreg_ptr = read_memory_unsigned_integer (next_cfa + 8,
2149 word_size, byte_order);
2150 /* sigregs are followed by signo (4 bytes), then by the
2151 upper GPR halves if present. */
2152 sigreg_high_off = 4;
2153 }
2154
2155 /* The sigregs structure looks like this:
2156 long psw_mask;
2157 long psw_addr;
2158 long gprs[16];
2159 int acrs[16];
2160 int fpc;
2161 int __pad;
2162 double fprs[16]; */
2163
2164 /* PSW mask and address. */
2165 info->saved_regs[S390_PSWM_REGNUM].addr = sigreg_ptr;
2166 sigreg_ptr += word_size;
2167 info->saved_regs[S390_PSWA_REGNUM].addr = sigreg_ptr;
2168 sigreg_ptr += word_size;
2169
2170 /* Then the GPRs. */
2171 for (i = 0; i < 16; i++)
2172 {
2173 info->saved_regs[S390_R0_REGNUM + i].addr = sigreg_ptr;
2174 sigreg_ptr += word_size;
2175 }
2176
2177 /* Then the ACRs. */
2178 for (i = 0; i < 16; i++)
2179 {
2180 info->saved_regs[S390_A0_REGNUM + i].addr = sigreg_ptr;
2181 sigreg_ptr += 4;
2182 }
2183
2184 /* The floating-point control word. */
2185 info->saved_regs[S390_FPC_REGNUM].addr = sigreg_ptr;
2186 sigreg_ptr += 8;
2187
2188 /* And finally the FPRs. */
2189 for (i = 0; i < 16; i++)
2190 {
2191 info->saved_regs[S390_F0_REGNUM + i].addr = sigreg_ptr;
2192 sigreg_ptr += 8;
2193 }
2194
2195 /* If we have them, the GPR upper halves are appended at the end. */
2196 sigreg_ptr += sigreg_high_off;
2197 if (tdep->gpr_full_regnum != -1)
2198 for (i = 0; i < 16; i++)
2199 {
2200 info->saved_regs[S390_R0_UPPER_REGNUM + i].addr = sigreg_ptr;
2201 sigreg_ptr += 4;
2202 }
2203
2204 /* Restore the previous frame's SP. */
2205 prev_sp = read_memory_unsigned_integer (
2206 info->saved_regs[S390_SP_REGNUM].addr,
2207 word_size, byte_order);
2208
2209 /* Determine our frame base. */
2210 info->frame_base = prev_sp + 16*word_size + 32;
2211
2212 return info;
2213 }
2214
2215 static void
2216 s390_sigtramp_frame_this_id (struct frame_info *this_frame,
2217 void **this_prologue_cache,
2218 struct frame_id *this_id)
2219 {
2220 struct s390_sigtramp_unwind_cache *info
2221 = s390_sigtramp_frame_unwind_cache (this_frame, this_prologue_cache);
2222 *this_id = frame_id_build (info->frame_base, get_frame_pc (this_frame));
2223 }
2224
2225 static struct value *
2226 s390_sigtramp_frame_prev_register (struct frame_info *this_frame,
2227 void **this_prologue_cache, int regnum)
2228 {
2229 struct s390_sigtramp_unwind_cache *info
2230 = s390_sigtramp_frame_unwind_cache (this_frame, this_prologue_cache);
2231 return s390_trad_frame_prev_register (this_frame, info->saved_regs, regnum);
2232 }
2233
2234 static int
2235 s390_sigtramp_frame_sniffer (const struct frame_unwind *self,
2236 struct frame_info *this_frame,
2237 void **this_prologue_cache)
2238 {
2239 CORE_ADDR pc = get_frame_pc (this_frame);
2240 bfd_byte sigreturn[2];
2241
2242 if (target_read_memory (pc, sigreturn, 2))
2243 return 0;
2244
2245 if (sigreturn[0] != op_svc)
2246 return 0;
2247
2248 if (sigreturn[1] != 119 /* sigreturn */
2249 && sigreturn[1] != 173 /* rt_sigreturn */)
2250 return 0;
2251
2252 return 1;
2253 }
2254
2255 static const struct frame_unwind s390_sigtramp_frame_unwind = {
2256 SIGTRAMP_FRAME,
2257 default_frame_unwind_stop_reason,
2258 s390_sigtramp_frame_this_id,
2259 s390_sigtramp_frame_prev_register,
2260 NULL,
2261 s390_sigtramp_frame_sniffer
2262 };
2263
2264 /* Retrieve the syscall number at a ptrace syscall-stop. Return -1
2265 upon error. */
2266
2267 static LONGEST
2268 s390_linux_get_syscall_number (struct gdbarch *gdbarch,
2269 ptid_t ptid)
2270 {
2271 struct regcache *regs = get_thread_regcache (ptid);
2272 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2273 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2274 ULONGEST pc;
2275 ULONGEST svc_number = -1;
2276 unsigned opcode;
2277
2278 /* Assume that the PC points after the 2-byte SVC instruction. We
2279 don't currently support SVC via EXECUTE. */
2280 regcache_cooked_read_unsigned (regs, tdep->pc_regnum, &pc);
2281 pc -= 2;
2282 opcode = read_memory_unsigned_integer ((CORE_ADDR) pc, 1, byte_order);
2283 if (opcode != op_svc)
2284 return -1;
2285
2286 svc_number = read_memory_unsigned_integer ((CORE_ADDR) pc + 1, 1,
2287 byte_order);
2288 if (svc_number == 0)
2289 regcache_cooked_read_unsigned (regs, S390_R1_REGNUM, &svc_number);
2290
2291 return svc_number;
2292 }
2293
2294
2295 /* Frame base handling. */
2296
2297 static CORE_ADDR
2298 s390_frame_base_address (struct frame_info *this_frame, void **this_cache)
2299 {
2300 struct s390_unwind_cache *info
2301 = s390_frame_unwind_cache (this_frame, this_cache);
2302 return info->frame_base;
2303 }
2304
2305 static CORE_ADDR
2306 s390_local_base_address (struct frame_info *this_frame, void **this_cache)
2307 {
2308 struct s390_unwind_cache *info
2309 = s390_frame_unwind_cache (this_frame, this_cache);
2310 return info->local_base;
2311 }
2312
2313 static const struct frame_base s390_frame_base = {
2314 &s390_frame_unwind,
2315 s390_frame_base_address,
2316 s390_local_base_address,
2317 s390_local_base_address
2318 };
2319
2320 static CORE_ADDR
2321 s390_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame)
2322 {
2323 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2324 ULONGEST pc;
2325 pc = frame_unwind_register_unsigned (next_frame, tdep->pc_regnum);
2326 return gdbarch_addr_bits_remove (gdbarch, pc);
2327 }
2328
2329 static CORE_ADDR
2330 s390_unwind_sp (struct gdbarch *gdbarch, struct frame_info *next_frame)
2331 {
2332 ULONGEST sp;
2333 sp = frame_unwind_register_unsigned (next_frame, S390_SP_REGNUM);
2334 return gdbarch_addr_bits_remove (gdbarch, sp);
2335 }
2336
2337
2338 /* DWARF-2 frame support. */
2339
2340 static struct value *
2341 s390_dwarf2_prev_register (struct frame_info *this_frame, void **this_cache,
2342 int regnum)
2343 {
2344 return s390_unwind_pseudo_register (this_frame, regnum);
2345 }
2346
2347 static void
2348 s390_dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
2349 struct dwarf2_frame_state_reg *reg,
2350 struct frame_info *this_frame)
2351 {
2352 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2353
2354 /* The condition code (and thus PSW mask) is call-clobbered. */
2355 if (regnum == S390_PSWM_REGNUM)
2356 reg->how = DWARF2_FRAME_REG_UNDEFINED;
2357
2358 /* The PSW address unwinds to the return address. */
2359 else if (regnum == S390_PSWA_REGNUM)
2360 reg->how = DWARF2_FRAME_REG_RA;
2361
2362 /* Fixed registers are call-saved or call-clobbered
2363 depending on the ABI in use. */
2364 else if (regnum < S390_NUM_REGS)
2365 {
2366 if (s390_register_call_saved (gdbarch, regnum))
2367 reg->how = DWARF2_FRAME_REG_SAME_VALUE;
2368 else
2369 reg->how = DWARF2_FRAME_REG_UNDEFINED;
2370 }
2371
2372 /* We install a special function to unwind pseudos. */
2373 else
2374 {
2375 reg->how = DWARF2_FRAME_REG_FN;
2376 reg->loc.fn = s390_dwarf2_prev_register;
2377 }
2378 }
2379
2380
2381 /* Dummy function calls. */
2382
2383 /* Return non-zero if TYPE is an integer-like type, zero otherwise.
2384 "Integer-like" types are those that should be passed the way
2385 integers are: integers, enums, ranges, characters, and booleans. */
2386 static int
2387 is_integer_like (struct type *type)
2388 {
2389 enum type_code code = TYPE_CODE (type);
2390
2391 return (code == TYPE_CODE_INT
2392 || code == TYPE_CODE_ENUM
2393 || code == TYPE_CODE_RANGE
2394 || code == TYPE_CODE_CHAR
2395 || code == TYPE_CODE_BOOL);
2396 }
2397
2398 /* Return non-zero if TYPE is a pointer-like type, zero otherwise.
2399 "Pointer-like" types are those that should be passed the way
2400 pointers are: pointers and references. */
2401 static int
2402 is_pointer_like (struct type *type)
2403 {
2404 enum type_code code = TYPE_CODE (type);
2405
2406 return (code == TYPE_CODE_PTR
2407 || code == TYPE_CODE_REF);
2408 }
2409
2410
2411 /* Return non-zero if TYPE is a `float singleton' or `double
2412 singleton', zero otherwise.
2413
2414 A `T singleton' is a struct type with one member, whose type is
2415 either T or a `T singleton'. So, the following are all float
2416 singletons:
2417
2418 struct { float x };
2419 struct { struct { float x; } x; };
2420 struct { struct { struct { float x; } x; } x; };
2421
2422 ... and so on.
2423
2424 All such structures are passed as if they were floats or doubles,
2425 as the (revised) ABI says. */
2426 static int
2427 is_float_singleton (struct type *type)
2428 {
2429 if (TYPE_CODE (type) == TYPE_CODE_STRUCT && TYPE_NFIELDS (type) == 1)
2430 {
2431 struct type *singleton_type = TYPE_FIELD_TYPE (type, 0);
2432 CHECK_TYPEDEF (singleton_type);
2433
2434 return (TYPE_CODE (singleton_type) == TYPE_CODE_FLT
2435 || TYPE_CODE (singleton_type) == TYPE_CODE_DECFLOAT
2436 || is_float_singleton (singleton_type));
2437 }
2438
2439 return 0;
2440 }
2441
2442
2443 /* Return non-zero if TYPE is a struct-like type, zero otherwise.
2444 "Struct-like" types are those that should be passed as structs are:
2445 structs and unions.
2446
2447 As an odd quirk, not mentioned in the ABI, GCC passes float and
2448 double singletons as if they were a plain float, double, etc. (The
2449 corresponding union types are handled normally.) So we exclude
2450 those types here. *shrug* */
2451 static int
2452 is_struct_like (struct type *type)
2453 {
2454 enum type_code code = TYPE_CODE (type);
2455
2456 return (code == TYPE_CODE_UNION
2457 || (code == TYPE_CODE_STRUCT && ! is_float_singleton (type)));
2458 }
2459
2460
2461 /* Return non-zero if TYPE is a float-like type, zero otherwise.
2462 "Float-like" types are those that should be passed as
2463 floating-point values are.
2464
2465 You'd think this would just be floats, doubles, long doubles, etc.
2466 But as an odd quirk, not mentioned in the ABI, GCC passes float and
2467 double singletons as if they were a plain float, double, etc. (The
2468 corresponding union types are handled normally.) So we include
2469 those types here. *shrug* */
2470 static int
2471 is_float_like (struct type *type)
2472 {
2473 return (TYPE_CODE (type) == TYPE_CODE_FLT
2474 || TYPE_CODE (type) == TYPE_CODE_DECFLOAT
2475 || is_float_singleton (type));
2476 }
2477
2478
2479 static int
2480 is_power_of_two (unsigned int n)
2481 {
2482 return ((n & (n - 1)) == 0);
2483 }
2484
2485 /* Return non-zero if TYPE should be passed as a pointer to a copy,
2486 zero otherwise. */
2487 static int
2488 s390_function_arg_pass_by_reference (struct type *type)
2489 {
2490 if (TYPE_LENGTH (type) > 8)
2491 return 1;
2492
2493 return (is_struct_like (type) && !is_power_of_two (TYPE_LENGTH (type)))
2494 || TYPE_CODE (type) == TYPE_CODE_COMPLEX
2495 || (TYPE_CODE (type) == TYPE_CODE_ARRAY && TYPE_VECTOR (type));
2496 }
2497
2498 /* Return non-zero if TYPE should be passed in a float register
2499 if possible. */
2500 static int
2501 s390_function_arg_float (struct type *type)
2502 {
2503 if (TYPE_LENGTH (type) > 8)
2504 return 0;
2505
2506 return is_float_like (type);
2507 }
2508
2509 /* Return non-zero if TYPE should be passed in an integer register
2510 (or a pair of integer registers) if possible. */
2511 static int
2512 s390_function_arg_integer (struct type *type)
2513 {
2514 if (TYPE_LENGTH (type) > 8)
2515 return 0;
2516
2517 return is_integer_like (type)
2518 || is_pointer_like (type)
2519 || (is_struct_like (type) && is_power_of_two (TYPE_LENGTH (type)));
2520 }
2521
2522 /* Return ARG, a `SIMPLE_ARG', sign-extended or zero-extended to a full
2523 word as required for the ABI. */
2524 static LONGEST
2525 extend_simple_arg (struct gdbarch *gdbarch, struct value *arg)
2526 {
2527 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2528 struct type *type = check_typedef (value_type (arg));
2529
2530 /* Even structs get passed in the least significant bits of the
2531 register / memory word. It's not really right to extract them as
2532 an integer, but it does take care of the extension. */
2533 if (TYPE_UNSIGNED (type))
2534 return extract_unsigned_integer (value_contents (arg),
2535 TYPE_LENGTH (type), byte_order);
2536 else
2537 return extract_signed_integer (value_contents (arg),
2538 TYPE_LENGTH (type), byte_order);
2539 }
2540
2541
2542 /* Return the alignment required by TYPE. */
2543 static int
2544 alignment_of (struct type *type)
2545 {
2546 int alignment;
2547
2548 if (is_integer_like (type)
2549 || is_pointer_like (type)
2550 || TYPE_CODE (type) == TYPE_CODE_FLT
2551 || TYPE_CODE (type) == TYPE_CODE_DECFLOAT)
2552 alignment = TYPE_LENGTH (type);
2553 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
2554 || TYPE_CODE (type) == TYPE_CODE_UNION)
2555 {
2556 int i;
2557
2558 alignment = 1;
2559 for (i = 0; i < TYPE_NFIELDS (type); i++)
2560 {
2561 int field_alignment
2562 = alignment_of (check_typedef (TYPE_FIELD_TYPE (type, i)));
2563
2564 if (field_alignment > alignment)
2565 alignment = field_alignment;
2566 }
2567 }
2568 else
2569 alignment = 1;
2570
2571 /* Check that everything we ever return is a power of two. Lots of
2572 code doesn't want to deal with aligning things to arbitrary
2573 boundaries. */
2574 gdb_assert ((alignment & (alignment - 1)) == 0);
2575
2576 return alignment;
2577 }
2578
2579
2580 /* Put the actual parameter values pointed to by ARGS[0..NARGS-1] in
2581 place to be passed to a function, as specified by the "GNU/Linux
2582 for S/390 ELF Application Binary Interface Supplement".
2583
2584 SP is the current stack pointer. We must put arguments, links,
2585 padding, etc. whereever they belong, and return the new stack
2586 pointer value.
2587
2588 If STRUCT_RETURN is non-zero, then the function we're calling is
2589 going to return a structure by value; STRUCT_ADDR is the address of
2590 a block we've allocated for it on the stack.
2591
2592 Our caller has taken care of any type promotions needed to satisfy
2593 prototypes or the old K&R argument-passing rules. */
2594 static CORE_ADDR
2595 s390_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
2596 struct regcache *regcache, CORE_ADDR bp_addr,
2597 int nargs, struct value **args, CORE_ADDR sp,
2598 int struct_return, CORE_ADDR struct_addr)
2599 {
2600 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2601 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2602 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2603 int i;
2604
2605 /* If the i'th argument is passed as a reference to a copy, then
2606 copy_addr[i] is the address of the copy we made. */
2607 CORE_ADDR *copy_addr = alloca (nargs * sizeof (CORE_ADDR));
2608
2609 /* Reserve space for the reference-to-copy area. */
2610 for (i = 0; i < nargs; i++)
2611 {
2612 struct value *arg = args[i];
2613 struct type *type = check_typedef (value_type (arg));
2614
2615 if (s390_function_arg_pass_by_reference (type))
2616 {
2617 sp -= TYPE_LENGTH (type);
2618 sp = align_down (sp, alignment_of (type));
2619 copy_addr[i] = sp;
2620 }
2621 }
2622
2623 /* Reserve space for the parameter area. As a conservative
2624 simplification, we assume that everything will be passed on the
2625 stack. Since every argument larger than 8 bytes will be
2626 passed by reference, we use this simple upper bound. */
2627 sp -= nargs * 8;
2628
2629 /* After all that, make sure it's still aligned on an eight-byte
2630 boundary. */
2631 sp = align_down (sp, 8);
2632
2633 /* Allocate the standard frame areas: the register save area, the
2634 word reserved for the compiler (which seems kind of meaningless),
2635 and the back chain pointer. */
2636 sp -= 16*word_size + 32;
2637
2638 /* Now we have the final SP value. Make sure we didn't underflow;
2639 on 31-bit, this would result in addresses with the high bit set,
2640 which causes confusion elsewhere. Note that if we error out
2641 here, stack and registers remain untouched. */
2642 if (gdbarch_addr_bits_remove (gdbarch, sp) != sp)
2643 error (_("Stack overflow"));
2644
2645
2646 /* Finally, place the actual parameters, working from SP towards
2647 higher addresses. The code above is supposed to reserve enough
2648 space for this. */
2649 {
2650 int fr = 0;
2651 int gr = 2;
2652 CORE_ADDR starg = sp + 16*word_size + 32;
2653
2654 /* A struct is returned using general register 2. */
2655 if (struct_return)
2656 {
2657 regcache_cooked_write_unsigned (regcache, S390_R0_REGNUM + gr,
2658 struct_addr);
2659 gr++;
2660 }
2661
2662 for (i = 0; i < nargs; i++)
2663 {
2664 struct value *arg = args[i];
2665 struct type *type = check_typedef (value_type (arg));
2666 unsigned length = TYPE_LENGTH (type);
2667
2668 if (s390_function_arg_pass_by_reference (type))
2669 {
2670 /* Actually copy the argument contents to the stack slot
2671 that was reserved above. */
2672 write_memory (copy_addr[i], value_contents (arg), length);
2673
2674 if (gr <= 6)
2675 {
2676 regcache_cooked_write_unsigned (regcache, S390_R0_REGNUM + gr,
2677 copy_addr[i]);
2678 gr++;
2679 }
2680 else
2681 {
2682 write_memory_unsigned_integer (starg, word_size, byte_order,
2683 copy_addr[i]);
2684 starg += word_size;
2685 }
2686 }
2687 else if (s390_function_arg_float (type))
2688 {
2689 /* The GNU/Linux for S/390 ABI uses FPRs 0 and 2 to pass arguments,
2690 the GNU/Linux for zSeries ABI uses 0, 2, 4, and 6. */
2691 if (fr <= (tdep->abi == ABI_LINUX_S390 ? 2 : 6))
2692 {
2693 /* When we store a single-precision value in an FP register,
2694 it occupies the leftmost bits. */
2695 regcache_cooked_write_part (regcache, S390_F0_REGNUM + fr,
2696 0, length, value_contents (arg));
2697 fr += 2;
2698 }
2699 else
2700 {
2701 /* When we store a single-precision value in a stack slot,
2702 it occupies the rightmost bits. */
2703 starg = align_up (starg + length, word_size);
2704 write_memory (starg - length, value_contents (arg), length);
2705 }
2706 }
2707 else if (s390_function_arg_integer (type) && length <= word_size)
2708 {
2709 if (gr <= 6)
2710 {
2711 /* Integer arguments are always extended to word size. */
2712 regcache_cooked_write_signed (regcache, S390_R0_REGNUM + gr,
2713 extend_simple_arg (gdbarch,
2714 arg));
2715 gr++;
2716 }
2717 else
2718 {
2719 /* Integer arguments are always extended to word size. */
2720 write_memory_signed_integer (starg, word_size, byte_order,
2721 extend_simple_arg (gdbarch, arg));
2722 starg += word_size;
2723 }
2724 }
2725 else if (s390_function_arg_integer (type) && length == 2*word_size)
2726 {
2727 if (gr <= 5)
2728 {
2729 regcache_cooked_write (regcache, S390_R0_REGNUM + gr,
2730 value_contents (arg));
2731 regcache_cooked_write (regcache, S390_R0_REGNUM + gr + 1,
2732 value_contents (arg) + word_size);
2733 gr += 2;
2734 }
2735 else
2736 {
2737 /* If we skipped r6 because we couldn't fit a DOUBLE_ARG
2738 in it, then don't go back and use it again later. */
2739 gr = 7;
2740
2741 write_memory (starg, value_contents (arg), length);
2742 starg += length;
2743 }
2744 }
2745 else
2746 internal_error (__FILE__, __LINE__, _("unknown argument type"));
2747 }
2748 }
2749
2750 /* Store return PSWA. In 31-bit mode, keep addressing mode bit. */
2751 if (word_size == 4)
2752 {
2753 ULONGEST pswa;
2754 regcache_cooked_read_unsigned (regcache, S390_PSWA_REGNUM, &pswa);
2755 bp_addr = (bp_addr & 0x7fffffff) | (pswa & 0x80000000);
2756 }
2757 regcache_cooked_write_unsigned (regcache, S390_RETADDR_REGNUM, bp_addr);
2758
2759 /* Store updated stack pointer. */
2760 regcache_cooked_write_unsigned (regcache, S390_SP_REGNUM, sp);
2761
2762 /* We need to return the 'stack part' of the frame ID,
2763 which is actually the top of the register save area. */
2764 return sp + 16*word_size + 32;
2765 }
2766
2767 /* Assuming THIS_FRAME is a dummy, return the frame ID of that
2768 dummy frame. The frame ID's base needs to match the TOS value
2769 returned by push_dummy_call, and the PC match the dummy frame's
2770 breakpoint. */
2771 static struct frame_id
2772 s390_dummy_id (struct gdbarch *gdbarch, struct frame_info *this_frame)
2773 {
2774 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2775 CORE_ADDR sp = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
2776 sp = gdbarch_addr_bits_remove (gdbarch, sp);
2777
2778 return frame_id_build (sp + 16*word_size + 32,
2779 get_frame_pc (this_frame));
2780 }
2781
2782 static CORE_ADDR
2783 s390_frame_align (struct gdbarch *gdbarch, CORE_ADDR addr)
2784 {
2785 /* Both the 32- and 64-bit ABI's say that the stack pointer should
2786 always be aligned on an eight-byte boundary. */
2787 return (addr & -8);
2788 }
2789
2790
2791 /* Function return value access. */
2792
2793 static enum return_value_convention
2794 s390_return_value_convention (struct gdbarch *gdbarch, struct type *type)
2795 {
2796 if (TYPE_LENGTH (type) > 8)
2797 return RETURN_VALUE_STRUCT_CONVENTION;
2798
2799 switch (TYPE_CODE (type))
2800 {
2801 case TYPE_CODE_STRUCT:
2802 case TYPE_CODE_UNION:
2803 case TYPE_CODE_ARRAY:
2804 case TYPE_CODE_COMPLEX:
2805 return RETURN_VALUE_STRUCT_CONVENTION;
2806
2807 default:
2808 return RETURN_VALUE_REGISTER_CONVENTION;
2809 }
2810 }
2811
2812 static enum return_value_convention
2813 s390_return_value (struct gdbarch *gdbarch, struct value *function,
2814 struct type *type, struct regcache *regcache,
2815 gdb_byte *out, const gdb_byte *in)
2816 {
2817 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2818 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2819 enum return_value_convention rvc;
2820 int length;
2821
2822 type = check_typedef (type);
2823 rvc = s390_return_value_convention (gdbarch, type);
2824 length = TYPE_LENGTH (type);
2825
2826 if (in)
2827 {
2828 switch (rvc)
2829 {
2830 case RETURN_VALUE_REGISTER_CONVENTION:
2831 if (TYPE_CODE (type) == TYPE_CODE_FLT
2832 || TYPE_CODE (type) == TYPE_CODE_DECFLOAT)
2833 {
2834 /* When we store a single-precision value in an FP register,
2835 it occupies the leftmost bits. */
2836 regcache_cooked_write_part (regcache, S390_F0_REGNUM,
2837 0, length, in);
2838 }
2839 else if (length <= word_size)
2840 {
2841 /* Integer arguments are always extended to word size. */
2842 if (TYPE_UNSIGNED (type))
2843 regcache_cooked_write_unsigned (regcache, S390_R2_REGNUM,
2844 extract_unsigned_integer (in, length, byte_order));
2845 else
2846 regcache_cooked_write_signed (regcache, S390_R2_REGNUM,
2847 extract_signed_integer (in, length, byte_order));
2848 }
2849 else if (length == 2*word_size)
2850 {
2851 regcache_cooked_write (regcache, S390_R2_REGNUM, in);
2852 regcache_cooked_write (regcache, S390_R3_REGNUM, in + word_size);
2853 }
2854 else
2855 internal_error (__FILE__, __LINE__, _("invalid return type"));
2856 break;
2857
2858 case RETURN_VALUE_STRUCT_CONVENTION:
2859 error (_("Cannot set function return value."));
2860 break;
2861 }
2862 }
2863 else if (out)
2864 {
2865 switch (rvc)
2866 {
2867 case RETURN_VALUE_REGISTER_CONVENTION:
2868 if (TYPE_CODE (type) == TYPE_CODE_FLT
2869 || TYPE_CODE (type) == TYPE_CODE_DECFLOAT)
2870 {
2871 /* When we store a single-precision value in an FP register,
2872 it occupies the leftmost bits. */
2873 regcache_cooked_read_part (regcache, S390_F0_REGNUM,
2874 0, length, out);
2875 }
2876 else if (length <= word_size)
2877 {
2878 /* Integer arguments occupy the rightmost bits. */
2879 regcache_cooked_read_part (regcache, S390_R2_REGNUM,
2880 word_size - length, length, out);
2881 }
2882 else if (length == 2*word_size)
2883 {
2884 regcache_cooked_read (regcache, S390_R2_REGNUM, out);
2885 regcache_cooked_read (regcache, S390_R3_REGNUM, out + word_size);
2886 }
2887 else
2888 internal_error (__FILE__, __LINE__, _("invalid return type"));
2889 break;
2890
2891 case RETURN_VALUE_STRUCT_CONVENTION:
2892 error (_("Function return value unknown."));
2893 break;
2894 }
2895 }
2896
2897 return rvc;
2898 }
2899
2900
2901 /* Breakpoints. */
2902
2903 static const gdb_byte *
2904 s390_breakpoint_from_pc (struct gdbarch *gdbarch,
2905 CORE_ADDR *pcptr, int *lenptr)
2906 {
2907 static const gdb_byte breakpoint[] = { 0x0, 0x1 };
2908
2909 *lenptr = sizeof (breakpoint);
2910 return breakpoint;
2911 }
2912
2913
2914 /* Address handling. */
2915
2916 static CORE_ADDR
2917 s390_addr_bits_remove (struct gdbarch *gdbarch, CORE_ADDR addr)
2918 {
2919 return addr & 0x7fffffff;
2920 }
2921
2922 static int
2923 s390_address_class_type_flags (int byte_size, int dwarf2_addr_class)
2924 {
2925 if (byte_size == 4)
2926 return TYPE_INSTANCE_FLAG_ADDRESS_CLASS_1;
2927 else
2928 return 0;
2929 }
2930
2931 static const char *
2932 s390_address_class_type_flags_to_name (struct gdbarch *gdbarch, int type_flags)
2933 {
2934 if (type_flags & TYPE_INSTANCE_FLAG_ADDRESS_CLASS_1)
2935 return "mode32";
2936 else
2937 return NULL;
2938 }
2939
2940 static int
2941 s390_address_class_name_to_type_flags (struct gdbarch *gdbarch,
2942 const char *name,
2943 int *type_flags_ptr)
2944 {
2945 if (strcmp (name, "mode32") == 0)
2946 {
2947 *type_flags_ptr = TYPE_INSTANCE_FLAG_ADDRESS_CLASS_1;
2948 return 1;
2949 }
2950 else
2951 return 0;
2952 }
2953
2954 /* Implement gdbarch_gcc_target_options. GCC does not know "-m32" or
2955 "-mcmodel=large". */
2956
2957 static char *
2958 s390_gcc_target_options (struct gdbarch *gdbarch)
2959 {
2960 return xstrdup (gdbarch_ptr_bit (gdbarch) == 64 ? "-m64" : "-m31");
2961 }
2962
2963 /* Implement gdbarch_gnu_triplet_regexp. Target triplets are "s390-*"
2964 for 31-bit and "s390x-*" for 64-bit, while the BFD arch name is
2965 always "s390". Note that an s390x compiler supports "-m31" as
2966 well. */
2967
2968 static const char *
2969 s390_gnu_triplet_regexp (struct gdbarch *gdbarch)
2970 {
2971 return "s390x?";
2972 }
2973
2974 /* Implementation of `gdbarch_stap_is_single_operand', as defined in
2975 gdbarch.h. */
2976
2977 static int
2978 s390_stap_is_single_operand (struct gdbarch *gdbarch, const char *s)
2979 {
2980 return ((isdigit (*s) && s[1] == '(' && s[2] == '%') /* Displacement
2981 or indirection. */
2982 || *s == '%' /* Register access. */
2983 || isdigit (*s)); /* Literal number. */
2984 }
2985
2986 /* Set up gdbarch struct. */
2987
2988 static struct gdbarch *
2989 s390_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
2990 {
2991 const struct target_desc *tdesc = info.target_desc;
2992 struct tdesc_arch_data *tdesc_data = NULL;
2993 struct gdbarch *gdbarch;
2994 struct gdbarch_tdep *tdep;
2995 int tdep_abi;
2996 int have_upper = 0;
2997 int have_linux_v1 = 0;
2998 int have_linux_v2 = 0;
2999 int have_tdb = 0;
3000 int have_vx = 0;
3001 int first_pseudo_reg, last_pseudo_reg;
3002 static const char *const stap_register_prefixes[] = { "%", NULL };
3003 static const char *const stap_register_indirection_prefixes[] = { "(",
3004 NULL };
3005 static const char *const stap_register_indirection_suffixes[] = { ")",
3006 NULL };
3007
3008 /* Default ABI and register size. */
3009 switch (info.bfd_arch_info->mach)
3010 {
3011 case bfd_mach_s390_31:
3012 tdep_abi = ABI_LINUX_S390;
3013 break;
3014
3015 case bfd_mach_s390_64:
3016 tdep_abi = ABI_LINUX_ZSERIES;
3017 break;
3018
3019 default:
3020 return NULL;
3021 }
3022
3023 /* Use default target description if none provided by the target. */
3024 if (!tdesc_has_registers (tdesc))
3025 {
3026 if (tdep_abi == ABI_LINUX_S390)
3027 tdesc = tdesc_s390_linux32;
3028 else
3029 tdesc = tdesc_s390x_linux64;
3030 }
3031
3032 /* Check any target description for validity. */
3033 if (tdesc_has_registers (tdesc))
3034 {
3035 static const char *const gprs[] = {
3036 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
3037 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15"
3038 };
3039 static const char *const fprs[] = {
3040 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
3041 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15"
3042 };
3043 static const char *const acrs[] = {
3044 "acr0", "acr1", "acr2", "acr3", "acr4", "acr5", "acr6", "acr7",
3045 "acr8", "acr9", "acr10", "acr11", "acr12", "acr13", "acr14", "acr15"
3046 };
3047 static const char *const gprs_lower[] = {
3048 "r0l", "r1l", "r2l", "r3l", "r4l", "r5l", "r6l", "r7l",
3049 "r8l", "r9l", "r10l", "r11l", "r12l", "r13l", "r14l", "r15l"
3050 };
3051 static const char *const gprs_upper[] = {
3052 "r0h", "r1h", "r2h", "r3h", "r4h", "r5h", "r6h", "r7h",
3053 "r8h", "r9h", "r10h", "r11h", "r12h", "r13h", "r14h", "r15h"
3054 };
3055 static const char *const tdb_regs[] = {
3056 "tdb0", "tac", "tct", "atia",
3057 "tr0", "tr1", "tr2", "tr3", "tr4", "tr5", "tr6", "tr7",
3058 "tr8", "tr9", "tr10", "tr11", "tr12", "tr13", "tr14", "tr15"
3059 };
3060 static const char *const vxrs_low[] = {
3061 "v0l", "v1l", "v2l", "v3l", "v4l", "v5l", "v6l", "v7l", "v8l",
3062 "v9l", "v10l", "v11l", "v12l", "v13l", "v14l", "v15l",
3063 };
3064 static const char *const vxrs_high[] = {
3065 "v16", "v17", "v18", "v19", "v20", "v21", "v22", "v23", "v24",
3066 "v25", "v26", "v27", "v28", "v29", "v30", "v31",
3067 };
3068 const struct tdesc_feature *feature;
3069 int i, valid_p = 1;
3070
3071 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.core");
3072 if (feature == NULL)
3073 return NULL;
3074
3075 tdesc_data = tdesc_data_alloc ();
3076
3077 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3078 S390_PSWM_REGNUM, "pswm");
3079 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3080 S390_PSWA_REGNUM, "pswa");
3081
3082 if (tdesc_unnumbered_register (feature, "r0"))
3083 {
3084 for (i = 0; i < 16; i++)
3085 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3086 S390_R0_REGNUM + i, gprs[i]);
3087 }
3088 else
3089 {
3090 have_upper = 1;
3091
3092 for (i = 0; i < 16; i++)
3093 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3094 S390_R0_REGNUM + i,
3095 gprs_lower[i]);
3096 for (i = 0; i < 16; i++)
3097 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3098 S390_R0_UPPER_REGNUM + i,
3099 gprs_upper[i]);
3100 }
3101
3102 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.fpr");
3103 if (feature == NULL)
3104 {
3105 tdesc_data_cleanup (tdesc_data);
3106 return NULL;
3107 }
3108
3109 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3110 S390_FPC_REGNUM, "fpc");
3111 for (i = 0; i < 16; i++)
3112 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3113 S390_F0_REGNUM + i, fprs[i]);
3114
3115 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.acr");
3116 if (feature == NULL)
3117 {
3118 tdesc_data_cleanup (tdesc_data);
3119 return NULL;
3120 }
3121
3122 for (i = 0; i < 16; i++)
3123 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3124 S390_A0_REGNUM + i, acrs[i]);
3125
3126 /* Optional GNU/Linux-specific "registers". */
3127 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.linux");
3128 if (feature)
3129 {
3130 tdesc_numbered_register (feature, tdesc_data,
3131 S390_ORIG_R2_REGNUM, "orig_r2");
3132
3133 if (tdesc_numbered_register (feature, tdesc_data,
3134 S390_LAST_BREAK_REGNUM, "last_break"))
3135 have_linux_v1 = 1;
3136
3137 if (tdesc_numbered_register (feature, tdesc_data,
3138 S390_SYSTEM_CALL_REGNUM, "system_call"))
3139 have_linux_v2 = 1;
3140
3141 if (have_linux_v2 > have_linux_v1)
3142 valid_p = 0;
3143 }
3144
3145 /* Transaction diagnostic block. */
3146 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.tdb");
3147 if (feature)
3148 {
3149 for (i = 0; i < ARRAY_SIZE (tdb_regs); i++)
3150 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3151 S390_TDB_DWORD0_REGNUM + i,
3152 tdb_regs[i]);
3153 have_tdb = 1;
3154 }
3155
3156 /* Vector registers. */
3157 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.vx");
3158 if (feature)
3159 {
3160 for (i = 0; i < 16; i++)
3161 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3162 S390_V0_LOWER_REGNUM + i,
3163 vxrs_low[i]);
3164 for (i = 0; i < 16; i++)
3165 valid_p &= tdesc_numbered_register (feature, tdesc_data,
3166 S390_V16_REGNUM + i,
3167 vxrs_high[i]);
3168 have_vx = 1;
3169 }
3170
3171 if (!valid_p)
3172 {
3173 tdesc_data_cleanup (tdesc_data);
3174 return NULL;
3175 }
3176 }
3177
3178 /* Find a candidate among extant architectures. */
3179 for (arches = gdbarch_list_lookup_by_info (arches, &info);
3180 arches != NULL;
3181 arches = gdbarch_list_lookup_by_info (arches->next, &info))
3182 {
3183 tdep = gdbarch_tdep (arches->gdbarch);
3184 if (!tdep)
3185 continue;
3186 if (tdep->abi != tdep_abi)
3187 continue;
3188 if ((tdep->gpr_full_regnum != -1) != have_upper)
3189 continue;
3190 if (tdesc_data != NULL)
3191 tdesc_data_cleanup (tdesc_data);
3192 return arches->gdbarch;
3193 }
3194
3195 /* Otherwise create a new gdbarch for the specified machine type. */
3196 tdep = XCNEW (struct gdbarch_tdep);
3197 tdep->abi = tdep_abi;
3198 tdep->have_linux_v1 = have_linux_v1;
3199 tdep->have_linux_v2 = have_linux_v2;
3200 tdep->have_tdb = have_tdb;
3201 gdbarch = gdbarch_alloc (&info, tdep);
3202
3203 set_gdbarch_believe_pcc_promotion (gdbarch, 0);
3204 set_gdbarch_char_signed (gdbarch, 0);
3205
3206 /* S/390 GNU/Linux uses either 64-bit or 128-bit long doubles.
3207 We can safely let them default to 128-bit, since the debug info
3208 will give the size of type actually used in each case. */
3209 set_gdbarch_long_double_bit (gdbarch, 128);
3210 set_gdbarch_long_double_format (gdbarch, floatformats_ia64_quad);
3211
3212 /* Amount PC must be decremented by after a breakpoint. This is
3213 often the number of bytes returned by gdbarch_breakpoint_from_pc but not
3214 always. */
3215 set_gdbarch_decr_pc_after_break (gdbarch, 2);
3216 /* Stack grows downward. */
3217 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
3218 set_gdbarch_breakpoint_from_pc (gdbarch, s390_breakpoint_from_pc);
3219 set_gdbarch_skip_prologue (gdbarch, s390_skip_prologue);
3220 set_gdbarch_in_function_epilogue_p (gdbarch, s390_in_function_epilogue_p);
3221
3222 set_gdbarch_num_regs (gdbarch, S390_NUM_REGS);
3223 set_gdbarch_sp_regnum (gdbarch, S390_SP_REGNUM);
3224 set_gdbarch_fp0_regnum (gdbarch, S390_F0_REGNUM);
3225 set_gdbarch_stab_reg_to_regnum (gdbarch, s390_dwarf_reg_to_regnum);
3226 set_gdbarch_dwarf2_reg_to_regnum (gdbarch, s390_dwarf_reg_to_regnum);
3227 set_gdbarch_value_from_register (gdbarch, s390_value_from_register);
3228 set_gdbarch_core_read_description (gdbarch, s390_core_read_description);
3229 set_gdbarch_iterate_over_regset_sections (gdbarch,
3230 s390_iterate_over_regset_sections);
3231 set_gdbarch_cannot_store_register (gdbarch, s390_cannot_store_register);
3232 set_gdbarch_write_pc (gdbarch, s390_write_pc);
3233 set_gdbarch_pseudo_register_read (gdbarch, s390_pseudo_register_read);
3234 set_gdbarch_pseudo_register_write (gdbarch, s390_pseudo_register_write);
3235 set_tdesc_pseudo_register_name (gdbarch, s390_pseudo_register_name);
3236 set_tdesc_pseudo_register_type (gdbarch, s390_pseudo_register_type);
3237 set_tdesc_pseudo_register_reggroup_p (gdbarch,
3238 s390_pseudo_register_reggroup_p);
3239 tdesc_use_registers (gdbarch, tdesc, tdesc_data);
3240 set_gdbarch_register_name (gdbarch, s390_register_name);
3241
3242 /* Assign pseudo register numbers. */
3243 first_pseudo_reg = gdbarch_num_regs (gdbarch);
3244 last_pseudo_reg = first_pseudo_reg;
3245 tdep->gpr_full_regnum = -1;
3246 if (have_upper)
3247 {
3248 tdep->gpr_full_regnum = last_pseudo_reg;
3249 last_pseudo_reg += 16;
3250 }
3251 tdep->v0_full_regnum = -1;
3252 if (have_vx)
3253 {
3254 tdep->v0_full_regnum = last_pseudo_reg;
3255 last_pseudo_reg += 16;
3256 }
3257 tdep->pc_regnum = last_pseudo_reg++;
3258 tdep->cc_regnum = last_pseudo_reg++;
3259 set_gdbarch_pc_regnum (gdbarch, tdep->pc_regnum);
3260 set_gdbarch_num_pseudo_regs (gdbarch, last_pseudo_reg - first_pseudo_reg);
3261
3262 /* Inferior function calls. */
3263 set_gdbarch_push_dummy_call (gdbarch, s390_push_dummy_call);
3264 set_gdbarch_dummy_id (gdbarch, s390_dummy_id);
3265 set_gdbarch_frame_align (gdbarch, s390_frame_align);
3266 set_gdbarch_return_value (gdbarch, s390_return_value);
3267
3268 /* Syscall handling. */
3269 set_gdbarch_get_syscall_number (gdbarch, s390_linux_get_syscall_number);
3270
3271 /* Frame handling. */
3272 dwarf2_frame_set_init_reg (gdbarch, s390_dwarf2_frame_init_reg);
3273 dwarf2_frame_set_adjust_regnum (gdbarch, s390_adjust_frame_regnum);
3274 dwarf2_append_unwinders (gdbarch);
3275 frame_base_append_sniffer (gdbarch, dwarf2_frame_base_sniffer);
3276 frame_unwind_append_unwinder (gdbarch, &s390_stub_frame_unwind);
3277 frame_unwind_append_unwinder (gdbarch, &s390_sigtramp_frame_unwind);
3278 frame_unwind_append_unwinder (gdbarch, &s390_frame_unwind);
3279 frame_base_set_default (gdbarch, &s390_frame_base);
3280 set_gdbarch_unwind_pc (gdbarch, s390_unwind_pc);
3281 set_gdbarch_unwind_sp (gdbarch, s390_unwind_sp);
3282
3283 /* Displaced stepping. */
3284 set_gdbarch_displaced_step_copy_insn (gdbarch,
3285 simple_displaced_step_copy_insn);
3286 set_gdbarch_displaced_step_fixup (gdbarch, s390_displaced_step_fixup);
3287 set_gdbarch_displaced_step_free_closure (gdbarch,
3288 simple_displaced_step_free_closure);
3289 set_gdbarch_displaced_step_location (gdbarch,
3290 displaced_step_at_entry_point);
3291 set_gdbarch_max_insn_length (gdbarch, S390_MAX_INSTR_SIZE);
3292
3293 /* Note that GNU/Linux is the only OS supported on this
3294 platform. */
3295 linux_init_abi (info, gdbarch);
3296
3297 switch (tdep->abi)
3298 {
3299 case ABI_LINUX_S390:
3300 set_gdbarch_addr_bits_remove (gdbarch, s390_addr_bits_remove);
3301 set_solib_svr4_fetch_link_map_offsets
3302 (gdbarch, svr4_ilp32_fetch_link_map_offsets);
3303
3304 set_xml_syscall_file_name (gdbarch, XML_SYSCALL_FILENAME_S390);
3305 break;
3306
3307 case ABI_LINUX_ZSERIES:
3308 set_gdbarch_long_bit (gdbarch, 64);
3309 set_gdbarch_long_long_bit (gdbarch, 64);
3310 set_gdbarch_ptr_bit (gdbarch, 64);
3311 set_solib_svr4_fetch_link_map_offsets
3312 (gdbarch, svr4_lp64_fetch_link_map_offsets);
3313 set_gdbarch_address_class_type_flags (gdbarch,
3314 s390_address_class_type_flags);
3315 set_gdbarch_address_class_type_flags_to_name (gdbarch,
3316 s390_address_class_type_flags_to_name);
3317 set_gdbarch_address_class_name_to_type_flags (gdbarch,
3318 s390_address_class_name_to_type_flags);
3319 set_xml_syscall_file_name (gdbarch, XML_SYSCALL_FILENAME_S390X);
3320 break;
3321 }
3322
3323 set_gdbarch_print_insn (gdbarch, print_insn_s390);
3324
3325 set_gdbarch_skip_trampoline_code (gdbarch, find_solib_trampoline_target);
3326
3327 /* Enable TLS support. */
3328 set_gdbarch_fetch_tls_load_module_address (gdbarch,
3329 svr4_fetch_objfile_link_map);
3330
3331 set_gdbarch_get_siginfo_type (gdbarch, linux_get_siginfo_type);
3332
3333 /* SystemTap functions. */
3334 set_gdbarch_stap_register_prefixes (gdbarch, stap_register_prefixes);
3335 set_gdbarch_stap_register_indirection_prefixes (gdbarch,
3336 stap_register_indirection_prefixes);
3337 set_gdbarch_stap_register_indirection_suffixes (gdbarch,
3338 stap_register_indirection_suffixes);
3339 set_gdbarch_stap_is_single_operand (gdbarch, s390_stap_is_single_operand);
3340 set_gdbarch_gcc_target_options (gdbarch, s390_gcc_target_options);
3341 set_gdbarch_gnu_triplet_regexp (gdbarch, s390_gnu_triplet_regexp);
3342
3343 return gdbarch;
3344 }
3345
3346
3347 extern initialize_file_ftype _initialize_s390_tdep; /* -Wmissing-prototypes */
3348
3349 void
3350 _initialize_s390_tdep (void)
3351 {
3352 /* Hook us into the gdbarch mechanism. */
3353 register_gdbarch_init (bfd_arch_s390, s390_gdbarch_init);
3354
3355 /* Initialize the GNU/Linux target descriptions. */
3356 initialize_tdesc_s390_linux32 ();
3357 initialize_tdesc_s390_linux32v1 ();
3358 initialize_tdesc_s390_linux32v2 ();
3359 initialize_tdesc_s390_linux64 ();
3360 initialize_tdesc_s390_linux64v1 ();
3361 initialize_tdesc_s390_linux64v2 ();
3362 initialize_tdesc_s390_te_linux64 ();
3363 initialize_tdesc_s390_vx_linux64 ();
3364 initialize_tdesc_s390_tevx_linux64 ();
3365 initialize_tdesc_s390x_linux64 ();
3366 initialize_tdesc_s390x_linux64v1 ();
3367 initialize_tdesc_s390x_linux64v2 ();
3368 initialize_tdesc_s390x_te_linux64 ();
3369 initialize_tdesc_s390x_vx_linux64 ();
3370 initialize_tdesc_s390x_tevx_linux64 ();
3371 }
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