Fix PR tui/21216: TUI line breaks regression
[deliverable/binutils-gdb.git] / gdb / s390-linux-tdep.c
1 /* Target-dependent code for GDB, the GNU debugger.
2
3 Copyright (C) 2001-2017 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 "linux-record.h"
48 #include "record-full.h"
49 #include "auxv.h"
50 #include "xml-syscall.h"
51
52 #include "stap-probe.h"
53 #include "ax.h"
54 #include "ax-gdb.h"
55 #include "user-regs.h"
56 #include "cli/cli-utils.h"
57 #include <ctype.h>
58 #include "elf/common.h"
59 #include "elf/s390.h"
60 #include "elf-bfd.h"
61 #include <algorithm>
62
63 #include "features/s390-linux32.c"
64 #include "features/s390-linux32v1.c"
65 #include "features/s390-linux32v2.c"
66 #include "features/s390-linux64.c"
67 #include "features/s390-linux64v1.c"
68 #include "features/s390-linux64v2.c"
69 #include "features/s390-te-linux64.c"
70 #include "features/s390-vx-linux64.c"
71 #include "features/s390-tevx-linux64.c"
72 #include "features/s390x-linux64.c"
73 #include "features/s390x-linux64v1.c"
74 #include "features/s390x-linux64v2.c"
75 #include "features/s390x-te-linux64.c"
76 #include "features/s390x-vx-linux64.c"
77 #include "features/s390x-tevx-linux64.c"
78
79 #define XML_SYSCALL_FILENAME_S390 "syscalls/s390-linux.xml"
80 #define XML_SYSCALL_FILENAME_S390X "syscalls/s390x-linux.xml"
81
82 /* Holds the current set of options to be passed to the disassembler. */
83 static char *s390_disassembler_options;
84
85 enum s390_abi_kind
86 {
87 ABI_LINUX_S390,
88 ABI_LINUX_ZSERIES
89 };
90
91 enum s390_vector_abi_kind
92 {
93 S390_VECTOR_ABI_NONE,
94 S390_VECTOR_ABI_128
95 };
96
97 /* The tdep structure. */
98
99 struct gdbarch_tdep
100 {
101 /* ABI version. */
102 enum s390_abi_kind abi;
103
104 /* Vector ABI. */
105 enum s390_vector_abi_kind vector_abi;
106
107 /* Pseudo register numbers. */
108 int gpr_full_regnum;
109 int pc_regnum;
110 int cc_regnum;
111 int v0_full_regnum;
112
113 int have_linux_v1;
114 int have_linux_v2;
115 int have_tdb;
116 };
117
118
119 /* ABI call-saved register information. */
120
121 static int
122 s390_register_call_saved (struct gdbarch *gdbarch, int regnum)
123 {
124 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
125
126 switch (tdep->abi)
127 {
128 case ABI_LINUX_S390:
129 if ((regnum >= S390_R6_REGNUM && regnum <= S390_R15_REGNUM)
130 || regnum == S390_F4_REGNUM || regnum == S390_F6_REGNUM
131 || regnum == S390_A0_REGNUM)
132 return 1;
133
134 break;
135
136 case ABI_LINUX_ZSERIES:
137 if ((regnum >= S390_R6_REGNUM && regnum <= S390_R15_REGNUM)
138 || (regnum >= S390_F8_REGNUM && regnum <= S390_F15_REGNUM)
139 || (regnum >= S390_A0_REGNUM && regnum <= S390_A1_REGNUM))
140 return 1;
141
142 break;
143 }
144
145 return 0;
146 }
147
148 static int
149 s390_cannot_store_register (struct gdbarch *gdbarch, int regnum)
150 {
151 /* The last-break address is read-only. */
152 return regnum == S390_LAST_BREAK_REGNUM;
153 }
154
155 static void
156 s390_write_pc (struct regcache *regcache, CORE_ADDR pc)
157 {
158 struct gdbarch *gdbarch = get_regcache_arch (regcache);
159 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
160
161 regcache_cooked_write_unsigned (regcache, tdep->pc_regnum, pc);
162
163 /* Set special SYSTEM_CALL register to 0 to prevent the kernel from
164 messing with the PC we just installed, if we happen to be within
165 an interrupted system call that the kernel wants to restart.
166
167 Note that after we return from the dummy call, the SYSTEM_CALL and
168 ORIG_R2 registers will be automatically restored, and the kernel
169 continues to restart the system call at this point. */
170 if (register_size (gdbarch, S390_SYSTEM_CALL_REGNUM) > 0)
171 regcache_cooked_write_unsigned (regcache, S390_SYSTEM_CALL_REGNUM, 0);
172 }
173
174 /* The "guess_tracepoint_registers" gdbarch method. */
175
176 static void
177 s390_guess_tracepoint_registers (struct gdbarch *gdbarch,
178 struct regcache *regcache,
179 CORE_ADDR addr)
180 {
181 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
182 int sz = register_size (gdbarch, S390_PSWA_REGNUM);
183 gdb_byte *reg = (gdb_byte *) alloca (sz);
184 ULONGEST pswm, pswa;
185
186 /* Set PSWA from the location and a default PSWM (the only part we're
187 unlikely to get right is the CC). */
188 if (tdep->abi == ABI_LINUX_S390)
189 {
190 /* 31-bit PSWA needs high bit set (it's very unlikely the target
191 was in 24-bit mode). */
192 pswa = addr | 0x80000000UL;
193 pswm = 0x070d0000UL;
194 }
195 else
196 {
197 pswa = addr;
198 pswm = 0x0705000180000000ULL;
199 }
200
201 store_unsigned_integer (reg, sz, gdbarch_byte_order (gdbarch), pswa);
202 regcache_raw_supply (regcache, S390_PSWA_REGNUM, reg);
203
204 store_unsigned_integer (reg, sz, gdbarch_byte_order (gdbarch), pswm);
205 regcache_raw_supply (regcache, S390_PSWM_REGNUM, reg);
206 }
207
208
209 /* DWARF Register Mapping. */
210
211 static const short s390_dwarf_regmap[] =
212 {
213 /* 0-15: General Purpose Registers. */
214 S390_R0_REGNUM, S390_R1_REGNUM, S390_R2_REGNUM, S390_R3_REGNUM,
215 S390_R4_REGNUM, S390_R5_REGNUM, S390_R6_REGNUM, S390_R7_REGNUM,
216 S390_R8_REGNUM, S390_R9_REGNUM, S390_R10_REGNUM, S390_R11_REGNUM,
217 S390_R12_REGNUM, S390_R13_REGNUM, S390_R14_REGNUM, S390_R15_REGNUM,
218
219 /* 16-31: Floating Point Registers / Vector Registers 0-15. */
220 S390_F0_REGNUM, S390_F2_REGNUM, S390_F4_REGNUM, S390_F6_REGNUM,
221 S390_F1_REGNUM, S390_F3_REGNUM, S390_F5_REGNUM, S390_F7_REGNUM,
222 S390_F8_REGNUM, S390_F10_REGNUM, S390_F12_REGNUM, S390_F14_REGNUM,
223 S390_F9_REGNUM, S390_F11_REGNUM, S390_F13_REGNUM, S390_F15_REGNUM,
224
225 /* 32-47: Control Registers (not mapped). */
226 -1, -1, -1, -1, -1, -1, -1, -1,
227 -1, -1, -1, -1, -1, -1, -1, -1,
228
229 /* 48-63: Access Registers. */
230 S390_A0_REGNUM, S390_A1_REGNUM, S390_A2_REGNUM, S390_A3_REGNUM,
231 S390_A4_REGNUM, S390_A5_REGNUM, S390_A6_REGNUM, S390_A7_REGNUM,
232 S390_A8_REGNUM, S390_A9_REGNUM, S390_A10_REGNUM, S390_A11_REGNUM,
233 S390_A12_REGNUM, S390_A13_REGNUM, S390_A14_REGNUM, S390_A15_REGNUM,
234
235 /* 64-65: Program Status Word. */
236 S390_PSWM_REGNUM,
237 S390_PSWA_REGNUM,
238
239 /* 66-67: Reserved. */
240 -1, -1,
241
242 /* 68-83: Vector Registers 16-31. */
243 S390_V16_REGNUM, S390_V18_REGNUM, S390_V20_REGNUM, S390_V22_REGNUM,
244 S390_V17_REGNUM, S390_V19_REGNUM, S390_V21_REGNUM, S390_V23_REGNUM,
245 S390_V24_REGNUM, S390_V26_REGNUM, S390_V28_REGNUM, S390_V30_REGNUM,
246 S390_V25_REGNUM, S390_V27_REGNUM, S390_V29_REGNUM, S390_V31_REGNUM,
247
248 /* End of "official" DWARF registers. The remainder of the map is
249 for GDB internal use only. */
250
251 /* GPR Lower Half Access. */
252 S390_R0_REGNUM, S390_R1_REGNUM, S390_R2_REGNUM, S390_R3_REGNUM,
253 S390_R4_REGNUM, S390_R5_REGNUM, S390_R6_REGNUM, S390_R7_REGNUM,
254 S390_R8_REGNUM, S390_R9_REGNUM, S390_R10_REGNUM, S390_R11_REGNUM,
255 S390_R12_REGNUM, S390_R13_REGNUM, S390_R14_REGNUM, S390_R15_REGNUM,
256 };
257
258 enum { s390_dwarf_reg_r0l = ARRAY_SIZE (s390_dwarf_regmap) - 16 };
259
260 /* Convert DWARF register number REG to the appropriate register
261 number used by GDB. */
262 static int
263 s390_dwarf_reg_to_regnum (struct gdbarch *gdbarch, int reg)
264 {
265 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
266 int gdb_reg = -1;
267
268 /* In a 32-on-64 debug scenario, debug info refers to the full
269 64-bit GPRs. Note that call frame information still refers to
270 the 32-bit lower halves, because s390_adjust_frame_regnum uses
271 special register numbers to access GPRs. */
272 if (tdep->gpr_full_regnum != -1 && reg >= 0 && reg < 16)
273 return tdep->gpr_full_regnum + reg;
274
275 if (reg >= 0 && reg < ARRAY_SIZE (s390_dwarf_regmap))
276 gdb_reg = s390_dwarf_regmap[reg];
277
278 if (tdep->v0_full_regnum == -1)
279 {
280 if (gdb_reg >= S390_V16_REGNUM && gdb_reg <= S390_V31_REGNUM)
281 gdb_reg = -1;
282 }
283 else
284 {
285 if (gdb_reg >= S390_F0_REGNUM && gdb_reg <= S390_F15_REGNUM)
286 gdb_reg = gdb_reg - S390_F0_REGNUM + tdep->v0_full_regnum;
287 }
288
289 return gdb_reg;
290 }
291
292 /* Translate a .eh_frame register to DWARF register, or adjust a
293 .debug_frame register. */
294 static int
295 s390_adjust_frame_regnum (struct gdbarch *gdbarch, int num, int eh_frame_p)
296 {
297 /* See s390_dwarf_reg_to_regnum for comments. */
298 return (num >= 0 && num < 16) ? num + s390_dwarf_reg_r0l : num;
299 }
300
301
302 /* Pseudo registers. */
303
304 static int
305 regnum_is_gpr_full (struct gdbarch_tdep *tdep, int regnum)
306 {
307 return (tdep->gpr_full_regnum != -1
308 && regnum >= tdep->gpr_full_regnum
309 && regnum <= tdep->gpr_full_regnum + 15);
310 }
311
312 /* Check whether REGNUM indicates a full vector register (v0-v15).
313 These pseudo-registers are composed of f0-f15 and v0l-v15l. */
314
315 static int
316 regnum_is_vxr_full (struct gdbarch_tdep *tdep, int regnum)
317 {
318 return (tdep->v0_full_regnum != -1
319 && regnum >= tdep->v0_full_regnum
320 && regnum <= tdep->v0_full_regnum + 15);
321 }
322
323 /* Return the name of register REGNO. Return the empty string for
324 registers that shouldn't be visible. */
325
326 static const char *
327 s390_register_name (struct gdbarch *gdbarch, int regnum)
328 {
329 if (regnum >= S390_V0_LOWER_REGNUM
330 && regnum <= S390_V15_LOWER_REGNUM)
331 return "";
332 return tdesc_register_name (gdbarch, regnum);
333 }
334
335 static const char *
336 s390_pseudo_register_name (struct gdbarch *gdbarch, int regnum)
337 {
338 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
339
340 if (regnum == tdep->pc_regnum)
341 return "pc";
342
343 if (regnum == tdep->cc_regnum)
344 return "cc";
345
346 if (regnum_is_gpr_full (tdep, regnum))
347 {
348 static const char *full_name[] = {
349 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
350 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15"
351 };
352 return full_name[regnum - tdep->gpr_full_regnum];
353 }
354
355 if (regnum_is_vxr_full (tdep, regnum))
356 {
357 static const char *full_name[] = {
358 "v0", "v1", "v2", "v3", "v4", "v5", "v6", "v7",
359 "v8", "v9", "v10", "v11", "v12", "v13", "v14", "v15"
360 };
361 return full_name[regnum - tdep->v0_full_regnum];
362 }
363
364 internal_error (__FILE__, __LINE__, _("invalid regnum"));
365 }
366
367 static struct type *
368 s390_pseudo_register_type (struct gdbarch *gdbarch, int regnum)
369 {
370 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
371
372 if (regnum == tdep->pc_regnum)
373 return builtin_type (gdbarch)->builtin_func_ptr;
374
375 if (regnum == tdep->cc_regnum)
376 return builtin_type (gdbarch)->builtin_int;
377
378 if (regnum_is_gpr_full (tdep, regnum))
379 return builtin_type (gdbarch)->builtin_uint64;
380
381 if (regnum_is_vxr_full (tdep, regnum))
382 return tdesc_find_type (gdbarch, "vec128");
383
384 internal_error (__FILE__, __LINE__, _("invalid regnum"));
385 }
386
387 static enum register_status
388 s390_pseudo_register_read (struct gdbarch *gdbarch, struct regcache *regcache,
389 int regnum, gdb_byte *buf)
390 {
391 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
392 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
393 int regsize = register_size (gdbarch, regnum);
394 ULONGEST val;
395
396 if (regnum == tdep->pc_regnum)
397 {
398 enum register_status status;
399
400 status = regcache_raw_read_unsigned (regcache, S390_PSWA_REGNUM, &val);
401 if (status == REG_VALID)
402 {
403 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
404 val &= 0x7fffffff;
405 store_unsigned_integer (buf, regsize, byte_order, val);
406 }
407 return status;
408 }
409
410 if (regnum == tdep->cc_regnum)
411 {
412 enum register_status status;
413
414 status = regcache_raw_read_unsigned (regcache, S390_PSWM_REGNUM, &val);
415 if (status == REG_VALID)
416 {
417 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
418 val = (val >> 12) & 3;
419 else
420 val = (val >> 44) & 3;
421 store_unsigned_integer (buf, regsize, byte_order, val);
422 }
423 return status;
424 }
425
426 if (regnum_is_gpr_full (tdep, regnum))
427 {
428 enum register_status status;
429 ULONGEST val_upper;
430
431 regnum -= tdep->gpr_full_regnum;
432
433 status = regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + regnum, &val);
434 if (status == REG_VALID)
435 status = regcache_raw_read_unsigned (regcache, S390_R0_UPPER_REGNUM + regnum,
436 &val_upper);
437 if (status == REG_VALID)
438 {
439 val |= val_upper << 32;
440 store_unsigned_integer (buf, regsize, byte_order, val);
441 }
442 return status;
443 }
444
445 if (regnum_is_vxr_full (tdep, regnum))
446 {
447 enum register_status status;
448
449 regnum -= tdep->v0_full_regnum;
450
451 status = regcache_raw_read (regcache, S390_F0_REGNUM + regnum, buf);
452 if (status == REG_VALID)
453 status = regcache_raw_read (regcache,
454 S390_V0_LOWER_REGNUM + regnum, buf + 8);
455 return status;
456 }
457
458 internal_error (__FILE__, __LINE__, _("invalid regnum"));
459 }
460
461 static void
462 s390_pseudo_register_write (struct gdbarch *gdbarch, struct regcache *regcache,
463 int regnum, const gdb_byte *buf)
464 {
465 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
466 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
467 int regsize = register_size (gdbarch, regnum);
468 ULONGEST val, psw;
469
470 if (regnum == tdep->pc_regnum)
471 {
472 val = extract_unsigned_integer (buf, regsize, byte_order);
473 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
474 {
475 regcache_raw_read_unsigned (regcache, S390_PSWA_REGNUM, &psw);
476 val = (psw & 0x80000000) | (val & 0x7fffffff);
477 }
478 regcache_raw_write_unsigned (regcache, S390_PSWA_REGNUM, val);
479 return;
480 }
481
482 if (regnum == tdep->cc_regnum)
483 {
484 val = extract_unsigned_integer (buf, regsize, byte_order);
485 regcache_raw_read_unsigned (regcache, S390_PSWM_REGNUM, &psw);
486 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
487 val = (psw & ~((ULONGEST)3 << 12)) | ((val & 3) << 12);
488 else
489 val = (psw & ~((ULONGEST)3 << 44)) | ((val & 3) << 44);
490 regcache_raw_write_unsigned (regcache, S390_PSWM_REGNUM, val);
491 return;
492 }
493
494 if (regnum_is_gpr_full (tdep, regnum))
495 {
496 regnum -= tdep->gpr_full_regnum;
497 val = extract_unsigned_integer (buf, regsize, byte_order);
498 regcache_raw_write_unsigned (regcache, S390_R0_REGNUM + regnum,
499 val & 0xffffffff);
500 regcache_raw_write_unsigned (regcache, S390_R0_UPPER_REGNUM + regnum,
501 val >> 32);
502 return;
503 }
504
505 if (regnum_is_vxr_full (tdep, regnum))
506 {
507 regnum -= tdep->v0_full_regnum;
508 regcache_raw_write (regcache, S390_F0_REGNUM + regnum, buf);
509 regcache_raw_write (regcache, S390_V0_LOWER_REGNUM + regnum, buf + 8);
510 return;
511 }
512
513 internal_error (__FILE__, __LINE__, _("invalid regnum"));
514 }
515
516 /* 'float' values are stored in the upper half of floating-point
517 registers, even though we are otherwise a big-endian platform. The
518 same applies to a 'float' value within a vector. */
519
520 static struct value *
521 s390_value_from_register (struct gdbarch *gdbarch, struct type *type,
522 int regnum, struct frame_id frame_id)
523 {
524 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
525 struct value *value = default_value_from_register (gdbarch, type,
526 regnum, frame_id);
527 check_typedef (type);
528
529 if ((regnum >= S390_F0_REGNUM && regnum <= S390_F15_REGNUM
530 && TYPE_LENGTH (type) < 8)
531 || regnum_is_vxr_full (tdep, regnum)
532 || (regnum >= S390_V16_REGNUM && regnum <= S390_V31_REGNUM))
533 set_value_offset (value, 0);
534
535 return value;
536 }
537
538 /* Register groups. */
539
540 static int
541 s390_pseudo_register_reggroup_p (struct gdbarch *gdbarch, int regnum,
542 struct reggroup *group)
543 {
544 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
545
546 /* We usually save/restore the whole PSW, which includes PC and CC.
547 However, some older gdbservers may not support saving/restoring
548 the whole PSW yet, and will return an XML register description
549 excluding those from the save/restore register groups. In those
550 cases, we still need to explicitly save/restore PC and CC in order
551 to push or pop frames. Since this doesn't hurt anything if we
552 already save/restore the whole PSW (it's just redundant), we add
553 PC and CC at this point unconditionally. */
554 if (group == save_reggroup || group == restore_reggroup)
555 return regnum == tdep->pc_regnum || regnum == tdep->cc_regnum;
556
557 if (group == vector_reggroup)
558 return regnum_is_vxr_full (tdep, regnum);
559
560 if (group == general_reggroup && regnum_is_vxr_full (tdep, regnum))
561 return 0;
562
563 return default_register_reggroup_p (gdbarch, regnum, group);
564 }
565
566 /* The "ax_pseudo_register_collect" gdbarch method. */
567
568 static int
569 s390_ax_pseudo_register_collect (struct gdbarch *gdbarch,
570 struct agent_expr *ax, int regnum)
571 {
572 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
573 if (regnum == tdep->pc_regnum)
574 {
575 ax_reg_mask (ax, S390_PSWA_REGNUM);
576 }
577 else if (regnum == tdep->cc_regnum)
578 {
579 ax_reg_mask (ax, S390_PSWM_REGNUM);
580 }
581 else if (regnum_is_gpr_full (tdep, regnum))
582 {
583 regnum -= tdep->gpr_full_regnum;
584 ax_reg_mask (ax, S390_R0_REGNUM + regnum);
585 ax_reg_mask (ax, S390_R0_UPPER_REGNUM + regnum);
586 }
587 else if (regnum_is_vxr_full (tdep, regnum))
588 {
589 regnum -= tdep->v0_full_regnum;
590 ax_reg_mask (ax, S390_F0_REGNUM + regnum);
591 ax_reg_mask (ax, S390_V0_LOWER_REGNUM + regnum);
592 }
593 else
594 {
595 internal_error (__FILE__, __LINE__, _("invalid regnum"));
596 }
597 return 0;
598 }
599
600 /* The "ax_pseudo_register_push_stack" gdbarch method. */
601
602 static int
603 s390_ax_pseudo_register_push_stack (struct gdbarch *gdbarch,
604 struct agent_expr *ax, int regnum)
605 {
606 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
607 if (regnum == tdep->pc_regnum)
608 {
609 ax_reg (ax, S390_PSWA_REGNUM);
610 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
611 {
612 ax_zero_ext (ax, 31);
613 }
614 }
615 else if (regnum == tdep->cc_regnum)
616 {
617 ax_reg (ax, S390_PSWM_REGNUM);
618 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
619 ax_const_l (ax, 12);
620 else
621 ax_const_l (ax, 44);
622 ax_simple (ax, aop_rsh_unsigned);
623 ax_zero_ext (ax, 2);
624 }
625 else if (regnum_is_gpr_full (tdep, regnum))
626 {
627 regnum -= tdep->gpr_full_regnum;
628 ax_reg (ax, S390_R0_REGNUM + regnum);
629 ax_reg (ax, S390_R0_UPPER_REGNUM + regnum);
630 ax_const_l (ax, 32);
631 ax_simple (ax, aop_lsh);
632 ax_simple (ax, aop_bit_or);
633 }
634 else if (regnum_is_vxr_full (tdep, regnum))
635 {
636 /* Too large to stuff on the stack. */
637 return 1;
638 }
639 else
640 {
641 internal_error (__FILE__, __LINE__, _("invalid regnum"));
642 }
643 return 0;
644 }
645
646 /* The "gen_return_address" gdbarch method. Since this is supposed to be
647 just a best-effort method, and we don't really have the means to run
648 the full unwinder here, just collect the link register. */
649
650 static void
651 s390_gen_return_address (struct gdbarch *gdbarch,
652 struct agent_expr *ax, struct axs_value *value,
653 CORE_ADDR scope)
654 {
655 value->type = register_type (gdbarch, S390_R14_REGNUM);
656 value->kind = axs_lvalue_register;
657 value->u.reg = S390_R14_REGNUM;
658 }
659
660
661 /* A helper for s390_software_single_step, decides if an instruction
662 is a partial-execution instruction that needs to be executed until
663 completion when in record mode. If it is, returns 1 and writes
664 instruction length to a pointer. */
665
666 static int
667 s390_is_partial_instruction (struct gdbarch *gdbarch, CORE_ADDR loc, int *len)
668 {
669 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
670 uint16_t insn;
671
672 insn = read_memory_integer (loc, 2, byte_order);
673
674 switch (insn >> 8)
675 {
676 case 0xa8: /* MVCLE */
677 *len = 4;
678 return 1;
679
680 case 0xeb:
681 {
682 insn = read_memory_integer (loc + 4, 2, byte_order);
683 if ((insn & 0xff) == 0x8e)
684 {
685 /* MVCLU */
686 *len = 6;
687 return 1;
688 }
689 }
690 break;
691 }
692
693 switch (insn)
694 {
695 case 0xb255: /* MVST */
696 case 0xb263: /* CMPSC */
697 case 0xb2a5: /* TRE */
698 case 0xb2a6: /* CU21 */
699 case 0xb2a7: /* CU12 */
700 case 0xb9b0: /* CU14 */
701 case 0xb9b1: /* CU24 */
702 case 0xb9b2: /* CU41 */
703 case 0xb9b3: /* CU42 */
704 case 0xb92a: /* KMF */
705 case 0xb92b: /* KMO */
706 case 0xb92f: /* KMC */
707 case 0xb92d: /* KMCTR */
708 case 0xb92e: /* KM */
709 case 0xb93c: /* PPNO */
710 case 0xb990: /* TRTT */
711 case 0xb991: /* TRTO */
712 case 0xb992: /* TROT */
713 case 0xb993: /* TROO */
714 *len = 4;
715 return 1;
716 }
717
718 return 0;
719 }
720
721 /* Implement the "software_single_step" gdbarch method, needed to single step
722 through instructions like MVCLE in record mode, to make sure they are
723 executed to completion. Without that, record will save the full length
724 of destination buffer on every iteration, even though the CPU will only
725 process about 4kiB of it each time, leading to O(n**2) memory and time
726 complexity. */
727
728 static VEC (CORE_ADDR) *
729 s390_software_single_step (struct regcache *regcache)
730 {
731 struct gdbarch *gdbarch = get_regcache_arch (regcache);
732 CORE_ADDR loc = regcache_read_pc (regcache);
733 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
734 int len;
735 uint16_t insn;
736 VEC (CORE_ADDR) *next_pcs = NULL;
737
738 /* Special handling only if recording. */
739 if (!record_full_is_used ())
740 return NULL;
741
742 /* First, match a partial instruction. */
743 if (!s390_is_partial_instruction (gdbarch, loc, &len))
744 return NULL;
745
746 loc += len;
747
748 /* Second, look for a branch back to it. */
749 insn = read_memory_integer (loc, 2, byte_order);
750 if (insn != 0xa714) /* BRC with mask 1 */
751 return NULL;
752
753 insn = read_memory_integer (loc + 2, 2, byte_order);
754 if (insn != (uint16_t) -(len / 2))
755 return NULL;
756
757 loc += 4;
758
759 /* Found it, step past the whole thing. */
760 VEC_safe_push (CORE_ADDR, next_pcs, loc);
761
762 return next_pcs;
763 }
764
765 static int
766 s390_displaced_step_hw_singlestep (struct gdbarch *gdbarch,
767 struct displaced_step_closure *closure)
768 {
769 return 1;
770 }
771
772
773 /* Maps for register sets. */
774
775 static const struct regcache_map_entry s390_gregmap[] =
776 {
777 { 1, S390_PSWM_REGNUM },
778 { 1, S390_PSWA_REGNUM },
779 { 16, S390_R0_REGNUM },
780 { 16, S390_A0_REGNUM },
781 { 1, S390_ORIG_R2_REGNUM },
782 { 0 }
783 };
784
785 static const struct regcache_map_entry s390_fpregmap[] =
786 {
787 { 1, S390_FPC_REGNUM, 8 },
788 { 16, S390_F0_REGNUM, 8 },
789 { 0 }
790 };
791
792 static const struct regcache_map_entry s390_regmap_upper[] =
793 {
794 { 16, S390_R0_UPPER_REGNUM, 4 },
795 { 0 }
796 };
797
798 static const struct regcache_map_entry s390_regmap_last_break[] =
799 {
800 { 1, REGCACHE_MAP_SKIP, 4 },
801 { 1, S390_LAST_BREAK_REGNUM, 4 },
802 { 0 }
803 };
804
805 static const struct regcache_map_entry s390x_regmap_last_break[] =
806 {
807 { 1, S390_LAST_BREAK_REGNUM, 8 },
808 { 0 }
809 };
810
811 static const struct regcache_map_entry s390_regmap_system_call[] =
812 {
813 { 1, S390_SYSTEM_CALL_REGNUM, 4 },
814 { 0 }
815 };
816
817 static const struct regcache_map_entry s390_regmap_tdb[] =
818 {
819 { 1, S390_TDB_DWORD0_REGNUM, 8 },
820 { 1, S390_TDB_ABORT_CODE_REGNUM, 8 },
821 { 1, S390_TDB_CONFLICT_TOKEN_REGNUM, 8 },
822 { 1, S390_TDB_ATIA_REGNUM, 8 },
823 { 12, REGCACHE_MAP_SKIP, 8 },
824 { 16, S390_TDB_R0_REGNUM, 8 },
825 { 0 }
826 };
827
828 static const struct regcache_map_entry s390_regmap_vxrs_low[] =
829 {
830 { 16, S390_V0_LOWER_REGNUM, 8 },
831 { 0 }
832 };
833
834 static const struct regcache_map_entry s390_regmap_vxrs_high[] =
835 {
836 { 16, S390_V16_REGNUM, 16 },
837 { 0 }
838 };
839
840
841 /* Supply the TDB regset. Like regcache_supply_regset, but invalidate
842 the TDB registers unless the TDB format field is valid. */
843
844 static void
845 s390_supply_tdb_regset (const struct regset *regset, struct regcache *regcache,
846 int regnum, const void *regs, size_t len)
847 {
848 ULONGEST tdw;
849 enum register_status ret;
850
851 regcache_supply_regset (regset, regcache, regnum, regs, len);
852 ret = regcache_cooked_read_unsigned (regcache, S390_TDB_DWORD0_REGNUM, &tdw);
853 if (ret != REG_VALID || (tdw >> 56) != 1)
854 regcache_supply_regset (regset, regcache, regnum, NULL, len);
855 }
856
857 const struct regset s390_gregset = {
858 s390_gregmap,
859 regcache_supply_regset,
860 regcache_collect_regset
861 };
862
863 const struct regset s390_fpregset = {
864 s390_fpregmap,
865 regcache_supply_regset,
866 regcache_collect_regset
867 };
868
869 static const struct regset s390_upper_regset = {
870 s390_regmap_upper,
871 regcache_supply_regset,
872 regcache_collect_regset
873 };
874
875 const struct regset s390_last_break_regset = {
876 s390_regmap_last_break,
877 regcache_supply_regset,
878 regcache_collect_regset
879 };
880
881 const struct regset s390x_last_break_regset = {
882 s390x_regmap_last_break,
883 regcache_supply_regset,
884 regcache_collect_regset
885 };
886
887 const struct regset s390_system_call_regset = {
888 s390_regmap_system_call,
889 regcache_supply_regset,
890 regcache_collect_regset
891 };
892
893 const struct regset s390_tdb_regset = {
894 s390_regmap_tdb,
895 s390_supply_tdb_regset,
896 regcache_collect_regset
897 };
898
899 const struct regset s390_vxrs_low_regset = {
900 s390_regmap_vxrs_low,
901 regcache_supply_regset,
902 regcache_collect_regset
903 };
904
905 const struct regset s390_vxrs_high_regset = {
906 s390_regmap_vxrs_high,
907 regcache_supply_regset,
908 regcache_collect_regset
909 };
910
911 /* Iterate over supported core file register note sections. */
912
913 static void
914 s390_iterate_over_regset_sections (struct gdbarch *gdbarch,
915 iterate_over_regset_sections_cb *cb,
916 void *cb_data,
917 const struct regcache *regcache)
918 {
919 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
920 const int gregset_size = (tdep->abi == ABI_LINUX_S390 ?
921 s390_sizeof_gregset : s390x_sizeof_gregset);
922
923 cb (".reg", gregset_size, &s390_gregset, NULL, cb_data);
924 cb (".reg2", s390_sizeof_fpregset, &s390_fpregset, NULL, cb_data);
925
926 if (tdep->abi == ABI_LINUX_S390 && tdep->gpr_full_regnum != -1)
927 cb (".reg-s390-high-gprs", 16 * 4, &s390_upper_regset,
928 "s390 GPR upper halves", cb_data);
929
930 if (tdep->have_linux_v1)
931 cb (".reg-s390-last-break", 8,
932 (gdbarch_ptr_bit (gdbarch) == 32
933 ? &s390_last_break_regset : &s390x_last_break_regset),
934 "s390 last-break address", cb_data);
935
936 if (tdep->have_linux_v2)
937 cb (".reg-s390-system-call", 4, &s390_system_call_regset,
938 "s390 system-call", cb_data);
939
940 /* If regcache is set, we are in "write" (gcore) mode. In this
941 case, don't iterate over the TDB unless its registers are
942 available. */
943 if (tdep->have_tdb
944 && (regcache == NULL
945 || REG_VALID == regcache_register_status (regcache,
946 S390_TDB_DWORD0_REGNUM)))
947 cb (".reg-s390-tdb", s390_sizeof_tdbregset, &s390_tdb_regset,
948 "s390 TDB", cb_data);
949
950 if (tdep->v0_full_regnum != -1)
951 {
952 cb (".reg-s390-vxrs-low", 16 * 8, &s390_vxrs_low_regset,
953 "s390 vector registers 0-15 lower half", cb_data);
954 cb (".reg-s390-vxrs-high", 16 * 16, &s390_vxrs_high_regset,
955 "s390 vector registers 16-31", cb_data);
956 }
957 }
958
959 static const struct target_desc *
960 s390_core_read_description (struct gdbarch *gdbarch,
961 struct target_ops *target, bfd *abfd)
962 {
963 asection *section = bfd_get_section_by_name (abfd, ".reg");
964 CORE_ADDR hwcap = 0;
965 int high_gprs, v1, v2, te, vx;
966
967 target_auxv_search (target, AT_HWCAP, &hwcap);
968 if (!section)
969 return NULL;
970
971 high_gprs = (bfd_get_section_by_name (abfd, ".reg-s390-high-gprs")
972 != NULL);
973 v1 = (bfd_get_section_by_name (abfd, ".reg-s390-last-break") != NULL);
974 v2 = (bfd_get_section_by_name (abfd, ".reg-s390-system-call") != NULL);
975 vx = (hwcap & HWCAP_S390_VX);
976 te = (hwcap & HWCAP_S390_TE);
977
978 switch (bfd_section_size (abfd, section))
979 {
980 case s390_sizeof_gregset:
981 if (high_gprs)
982 return (te && vx ? tdesc_s390_tevx_linux64 :
983 vx ? tdesc_s390_vx_linux64 :
984 te ? tdesc_s390_te_linux64 :
985 v2 ? tdesc_s390_linux64v2 :
986 v1 ? tdesc_s390_linux64v1 : tdesc_s390_linux64);
987 else
988 return (v2 ? tdesc_s390_linux32v2 :
989 v1 ? tdesc_s390_linux32v1 : tdesc_s390_linux32);
990
991 case s390x_sizeof_gregset:
992 return (te && vx ? tdesc_s390x_tevx_linux64 :
993 vx ? tdesc_s390x_vx_linux64 :
994 te ? tdesc_s390x_te_linux64 :
995 v2 ? tdesc_s390x_linux64v2 :
996 v1 ? tdesc_s390x_linux64v1 : tdesc_s390x_linux64);
997
998 default:
999 return NULL;
1000 }
1001 }
1002
1003
1004 /* Decoding S/390 instructions. */
1005
1006 /* Named opcode values for the S/390 instructions we recognize. Some
1007 instructions have their opcode split across two fields; those are the
1008 op1_* and op2_* enums. */
1009 enum
1010 {
1011 op1_lhi = 0xa7, op2_lhi = 0x08,
1012 op1_lghi = 0xa7, op2_lghi = 0x09,
1013 op1_lgfi = 0xc0, op2_lgfi = 0x01,
1014 op_lr = 0x18,
1015 op_lgr = 0xb904,
1016 op_l = 0x58,
1017 op1_ly = 0xe3, op2_ly = 0x58,
1018 op1_lg = 0xe3, op2_lg = 0x04,
1019 op_lm = 0x98,
1020 op1_lmy = 0xeb, op2_lmy = 0x98,
1021 op1_lmg = 0xeb, op2_lmg = 0x04,
1022 op_st = 0x50,
1023 op1_sty = 0xe3, op2_sty = 0x50,
1024 op1_stg = 0xe3, op2_stg = 0x24,
1025 op_std = 0x60,
1026 op_stm = 0x90,
1027 op1_stmy = 0xeb, op2_stmy = 0x90,
1028 op1_stmg = 0xeb, op2_stmg = 0x24,
1029 op1_aghi = 0xa7, op2_aghi = 0x0b,
1030 op1_ahi = 0xa7, op2_ahi = 0x0a,
1031 op1_agfi = 0xc2, op2_agfi = 0x08,
1032 op1_afi = 0xc2, op2_afi = 0x09,
1033 op1_algfi= 0xc2, op2_algfi= 0x0a,
1034 op1_alfi = 0xc2, op2_alfi = 0x0b,
1035 op_ar = 0x1a,
1036 op_agr = 0xb908,
1037 op_a = 0x5a,
1038 op1_ay = 0xe3, op2_ay = 0x5a,
1039 op1_ag = 0xe3, op2_ag = 0x08,
1040 op1_slgfi= 0xc2, op2_slgfi= 0x04,
1041 op1_slfi = 0xc2, op2_slfi = 0x05,
1042 op_sr = 0x1b,
1043 op_sgr = 0xb909,
1044 op_s = 0x5b,
1045 op1_sy = 0xe3, op2_sy = 0x5b,
1046 op1_sg = 0xe3, op2_sg = 0x09,
1047 op_nr = 0x14,
1048 op_ngr = 0xb980,
1049 op_la = 0x41,
1050 op1_lay = 0xe3, op2_lay = 0x71,
1051 op1_larl = 0xc0, op2_larl = 0x00,
1052 op_basr = 0x0d,
1053 op_bas = 0x4d,
1054 op_bcr = 0x07,
1055 op_bc = 0x0d,
1056 op_bctr = 0x06,
1057 op_bctgr = 0xb946,
1058 op_bct = 0x46,
1059 op1_bctg = 0xe3, op2_bctg = 0x46,
1060 op_bxh = 0x86,
1061 op1_bxhg = 0xeb, op2_bxhg = 0x44,
1062 op_bxle = 0x87,
1063 op1_bxleg= 0xeb, op2_bxleg= 0x45,
1064 op1_bras = 0xa7, op2_bras = 0x05,
1065 op1_brasl= 0xc0, op2_brasl= 0x05,
1066 op1_brc = 0xa7, op2_brc = 0x04,
1067 op1_brcl = 0xc0, op2_brcl = 0x04,
1068 op1_brct = 0xa7, op2_brct = 0x06,
1069 op1_brctg= 0xa7, op2_brctg= 0x07,
1070 op_brxh = 0x84,
1071 op1_brxhg= 0xec, op2_brxhg= 0x44,
1072 op_brxle = 0x85,
1073 op1_brxlg= 0xec, op2_brxlg= 0x45,
1074 op_svc = 0x0a,
1075 };
1076
1077
1078 /* Read a single instruction from address AT. */
1079
1080 #define S390_MAX_INSTR_SIZE 6
1081 static int
1082 s390_readinstruction (bfd_byte instr[], CORE_ADDR at)
1083 {
1084 static int s390_instrlen[] = { 2, 4, 4, 6 };
1085 int instrlen;
1086
1087 if (target_read_memory (at, &instr[0], 2))
1088 return -1;
1089 instrlen = s390_instrlen[instr[0] >> 6];
1090 if (instrlen > 2)
1091 {
1092 if (target_read_memory (at + 2, &instr[2], instrlen - 2))
1093 return -1;
1094 }
1095 return instrlen;
1096 }
1097
1098
1099 /* The functions below are for recognizing and decoding S/390
1100 instructions of various formats. Each of them checks whether INSN
1101 is an instruction of the given format, with the specified opcodes.
1102 If it is, it sets the remaining arguments to the values of the
1103 instruction's fields, and returns a non-zero value; otherwise, it
1104 returns zero.
1105
1106 These functions' arguments appear in the order they appear in the
1107 instruction, not in the machine-language form. So, opcodes always
1108 come first, even though they're sometimes scattered around the
1109 instructions. And displacements appear before base and extension
1110 registers, as they do in the assembly syntax, not at the end, as
1111 they do in the machine language. */
1112 static int
1113 is_ri (bfd_byte *insn, int op1, int op2, unsigned int *r1, int *i2)
1114 {
1115 if (insn[0] == op1 && (insn[1] & 0xf) == op2)
1116 {
1117 *r1 = (insn[1] >> 4) & 0xf;
1118 /* i2 is a 16-bit signed quantity. */
1119 *i2 = (((insn[2] << 8) | insn[3]) ^ 0x8000) - 0x8000;
1120 return 1;
1121 }
1122 else
1123 return 0;
1124 }
1125
1126
1127 static int
1128 is_ril (bfd_byte *insn, int op1, int op2,
1129 unsigned int *r1, int *i2)
1130 {
1131 if (insn[0] == op1 && (insn[1] & 0xf) == op2)
1132 {
1133 *r1 = (insn[1] >> 4) & 0xf;
1134 /* i2 is a signed quantity. If the host 'int' is 32 bits long,
1135 no sign extension is necessary, but we don't want to assume
1136 that. */
1137 *i2 = (((insn[2] << 24)
1138 | (insn[3] << 16)
1139 | (insn[4] << 8)
1140 | (insn[5])) ^ 0x80000000) - 0x80000000;
1141 return 1;
1142 }
1143 else
1144 return 0;
1145 }
1146
1147
1148 static int
1149 is_rr (bfd_byte *insn, int op, unsigned int *r1, unsigned int *r2)
1150 {
1151 if (insn[0] == op)
1152 {
1153 *r1 = (insn[1] >> 4) & 0xf;
1154 *r2 = insn[1] & 0xf;
1155 return 1;
1156 }
1157 else
1158 return 0;
1159 }
1160
1161
1162 static int
1163 is_rre (bfd_byte *insn, int op, unsigned int *r1, unsigned int *r2)
1164 {
1165 if (((insn[0] << 8) | insn[1]) == op)
1166 {
1167 /* Yes, insn[3]. insn[2] is unused in RRE format. */
1168 *r1 = (insn[3] >> 4) & 0xf;
1169 *r2 = insn[3] & 0xf;
1170 return 1;
1171 }
1172 else
1173 return 0;
1174 }
1175
1176
1177 static int
1178 is_rs (bfd_byte *insn, int op,
1179 unsigned int *r1, unsigned int *r3, int *d2, unsigned int *b2)
1180 {
1181 if (insn[0] == op)
1182 {
1183 *r1 = (insn[1] >> 4) & 0xf;
1184 *r3 = insn[1] & 0xf;
1185 *b2 = (insn[2] >> 4) & 0xf;
1186 *d2 = ((insn[2] & 0xf) << 8) | insn[3];
1187 return 1;
1188 }
1189 else
1190 return 0;
1191 }
1192
1193
1194 static int
1195 is_rsy (bfd_byte *insn, int op1, int op2,
1196 unsigned int *r1, unsigned int *r3, int *d2, unsigned int *b2)
1197 {
1198 if (insn[0] == op1
1199 && insn[5] == op2)
1200 {
1201 *r1 = (insn[1] >> 4) & 0xf;
1202 *r3 = insn[1] & 0xf;
1203 *b2 = (insn[2] >> 4) & 0xf;
1204 /* The 'long displacement' is a 20-bit signed integer. */
1205 *d2 = ((((insn[2] & 0xf) << 8) | insn[3] | (insn[4] << 12))
1206 ^ 0x80000) - 0x80000;
1207 return 1;
1208 }
1209 else
1210 return 0;
1211 }
1212
1213
1214 static int
1215 is_rsi (bfd_byte *insn, int op,
1216 unsigned int *r1, unsigned int *r3, int *i2)
1217 {
1218 if (insn[0] == op)
1219 {
1220 *r1 = (insn[1] >> 4) & 0xf;
1221 *r3 = insn[1] & 0xf;
1222 /* i2 is a 16-bit signed quantity. */
1223 *i2 = (((insn[2] << 8) | insn[3]) ^ 0x8000) - 0x8000;
1224 return 1;
1225 }
1226 else
1227 return 0;
1228 }
1229
1230
1231 static int
1232 is_rie (bfd_byte *insn, int op1, int op2,
1233 unsigned int *r1, unsigned int *r3, int *i2)
1234 {
1235 if (insn[0] == op1
1236 && insn[5] == op2)
1237 {
1238 *r1 = (insn[1] >> 4) & 0xf;
1239 *r3 = insn[1] & 0xf;
1240 /* i2 is a 16-bit signed quantity. */
1241 *i2 = (((insn[2] << 8) | insn[3]) ^ 0x8000) - 0x8000;
1242 return 1;
1243 }
1244 else
1245 return 0;
1246 }
1247
1248
1249 static int
1250 is_rx (bfd_byte *insn, int op,
1251 unsigned int *r1, int *d2, unsigned int *x2, unsigned int *b2)
1252 {
1253 if (insn[0] == op)
1254 {
1255 *r1 = (insn[1] >> 4) & 0xf;
1256 *x2 = insn[1] & 0xf;
1257 *b2 = (insn[2] >> 4) & 0xf;
1258 *d2 = ((insn[2] & 0xf) << 8) | insn[3];
1259 return 1;
1260 }
1261 else
1262 return 0;
1263 }
1264
1265
1266 static int
1267 is_rxy (bfd_byte *insn, int op1, int op2,
1268 unsigned int *r1, int *d2, unsigned int *x2, unsigned int *b2)
1269 {
1270 if (insn[0] == op1
1271 && insn[5] == op2)
1272 {
1273 *r1 = (insn[1] >> 4) & 0xf;
1274 *x2 = insn[1] & 0xf;
1275 *b2 = (insn[2] >> 4) & 0xf;
1276 /* The 'long displacement' is a 20-bit signed integer. */
1277 *d2 = ((((insn[2] & 0xf) << 8) | insn[3] | (insn[4] << 12))
1278 ^ 0x80000) - 0x80000;
1279 return 1;
1280 }
1281 else
1282 return 0;
1283 }
1284
1285
1286 /* Prologue analysis. */
1287
1288 #define S390_NUM_GPRS 16
1289 #define S390_NUM_FPRS 16
1290
1291 struct s390_prologue_data {
1292
1293 /* The stack. */
1294 struct pv_area *stack;
1295
1296 /* The size and byte-order of a GPR or FPR. */
1297 int gpr_size;
1298 int fpr_size;
1299 enum bfd_endian byte_order;
1300
1301 /* The general-purpose registers. */
1302 pv_t gpr[S390_NUM_GPRS];
1303
1304 /* The floating-point registers. */
1305 pv_t fpr[S390_NUM_FPRS];
1306
1307 /* The offset relative to the CFA where the incoming GPR N was saved
1308 by the function prologue. 0 if not saved or unknown. */
1309 int gpr_slot[S390_NUM_GPRS];
1310
1311 /* Likewise for FPRs. */
1312 int fpr_slot[S390_NUM_FPRS];
1313
1314 /* Nonzero if the backchain was saved. This is assumed to be the
1315 case when the incoming SP is saved at the current SP location. */
1316 int back_chain_saved_p;
1317 };
1318
1319 /* Return the effective address for an X-style instruction, like:
1320
1321 L R1, D2(X2, B2)
1322
1323 Here, X2 and B2 are registers, and D2 is a signed 20-bit
1324 constant; the effective address is the sum of all three. If either
1325 X2 or B2 are zero, then it doesn't contribute to the sum --- this
1326 means that r0 can't be used as either X2 or B2. */
1327 static pv_t
1328 s390_addr (struct s390_prologue_data *data,
1329 int d2, unsigned int x2, unsigned int b2)
1330 {
1331 pv_t result;
1332
1333 result = pv_constant (d2);
1334 if (x2)
1335 result = pv_add (result, data->gpr[x2]);
1336 if (b2)
1337 result = pv_add (result, data->gpr[b2]);
1338
1339 return result;
1340 }
1341
1342 /* Do a SIZE-byte store of VALUE to D2(X2,B2). */
1343 static void
1344 s390_store (struct s390_prologue_data *data,
1345 int d2, unsigned int x2, unsigned int b2, CORE_ADDR size,
1346 pv_t value)
1347 {
1348 pv_t addr = s390_addr (data, d2, x2, b2);
1349 pv_t offset;
1350
1351 /* Check whether we are storing the backchain. */
1352 offset = pv_subtract (data->gpr[S390_SP_REGNUM - S390_R0_REGNUM], addr);
1353
1354 if (pv_is_constant (offset) && offset.k == 0)
1355 if (size == data->gpr_size
1356 && pv_is_register_k (value, S390_SP_REGNUM, 0))
1357 {
1358 data->back_chain_saved_p = 1;
1359 return;
1360 }
1361
1362
1363 /* Check whether we are storing a register into the stack. */
1364 if (!pv_area_store_would_trash (data->stack, addr))
1365 pv_area_store (data->stack, addr, size, value);
1366
1367
1368 /* Note: If this is some store we cannot identify, you might think we
1369 should forget our cached values, as any of those might have been hit.
1370
1371 However, we make the assumption that the register save areas are only
1372 ever stored to once in any given function, and we do recognize these
1373 stores. Thus every store we cannot recognize does not hit our data. */
1374 }
1375
1376 /* Do a SIZE-byte load from D2(X2,B2). */
1377 static pv_t
1378 s390_load (struct s390_prologue_data *data,
1379 int d2, unsigned int x2, unsigned int b2, CORE_ADDR size)
1380
1381 {
1382 pv_t addr = s390_addr (data, d2, x2, b2);
1383
1384 /* If it's a load from an in-line constant pool, then we can
1385 simulate that, under the assumption that the code isn't
1386 going to change between the time the processor actually
1387 executed it creating the current frame, and the time when
1388 we're analyzing the code to unwind past that frame. */
1389 if (pv_is_constant (addr))
1390 {
1391 struct target_section *secp;
1392 secp = target_section_by_addr (&current_target, addr.k);
1393 if (secp != NULL
1394 && (bfd_get_section_flags (secp->the_bfd_section->owner,
1395 secp->the_bfd_section)
1396 & SEC_READONLY))
1397 return pv_constant (read_memory_integer (addr.k, size,
1398 data->byte_order));
1399 }
1400
1401 /* Check whether we are accessing one of our save slots. */
1402 return pv_area_fetch (data->stack, addr, size);
1403 }
1404
1405 /* Function for finding saved registers in a 'struct pv_area'; we pass
1406 this to pv_area_scan.
1407
1408 If VALUE is a saved register, ADDR says it was saved at a constant
1409 offset from the frame base, and SIZE indicates that the whole
1410 register was saved, record its offset in the reg_offset table in
1411 PROLOGUE_UNTYPED. */
1412 static void
1413 s390_check_for_saved (void *data_untyped, pv_t addr,
1414 CORE_ADDR size, pv_t value)
1415 {
1416 struct s390_prologue_data *data = (struct s390_prologue_data *) data_untyped;
1417 int i, offset;
1418
1419 if (!pv_is_register (addr, S390_SP_REGNUM))
1420 return;
1421
1422 offset = 16 * data->gpr_size + 32 - addr.k;
1423
1424 /* If we are storing the original value of a register, we want to
1425 record the CFA offset. If the same register is stored multiple
1426 times, the stack slot with the highest address counts. */
1427
1428 for (i = 0; i < S390_NUM_GPRS; i++)
1429 if (size == data->gpr_size
1430 && pv_is_register_k (value, S390_R0_REGNUM + i, 0))
1431 if (data->gpr_slot[i] == 0
1432 || data->gpr_slot[i] > offset)
1433 {
1434 data->gpr_slot[i] = offset;
1435 return;
1436 }
1437
1438 for (i = 0; i < S390_NUM_FPRS; i++)
1439 if (size == data->fpr_size
1440 && pv_is_register_k (value, S390_F0_REGNUM + i, 0))
1441 if (data->fpr_slot[i] == 0
1442 || data->fpr_slot[i] > offset)
1443 {
1444 data->fpr_slot[i] = offset;
1445 return;
1446 }
1447 }
1448
1449 /* Analyze the prologue of the function starting at START_PC,
1450 continuing at most until CURRENT_PC. Initialize DATA to
1451 hold all information we find out about the state of the registers
1452 and stack slots. Return the address of the instruction after
1453 the last one that changed the SP, FP, or back chain; or zero
1454 on error. */
1455 static CORE_ADDR
1456 s390_analyze_prologue (struct gdbarch *gdbarch,
1457 CORE_ADDR start_pc,
1458 CORE_ADDR current_pc,
1459 struct s390_prologue_data *data)
1460 {
1461 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
1462
1463 /* Our return value:
1464 The address of the instruction after the last one that changed
1465 the SP, FP, or back chain; zero if we got an error trying to
1466 read memory. */
1467 CORE_ADDR result = start_pc;
1468
1469 /* The current PC for our abstract interpretation. */
1470 CORE_ADDR pc;
1471
1472 /* The address of the next instruction after that. */
1473 CORE_ADDR next_pc;
1474
1475 /* Set up everything's initial value. */
1476 {
1477 int i;
1478
1479 data->stack = make_pv_area (S390_SP_REGNUM, gdbarch_addr_bit (gdbarch));
1480
1481 /* For the purpose of prologue tracking, we consider the GPR size to
1482 be equal to the ABI word size, even if it is actually larger
1483 (i.e. when running a 32-bit binary under a 64-bit kernel). */
1484 data->gpr_size = word_size;
1485 data->fpr_size = 8;
1486 data->byte_order = gdbarch_byte_order (gdbarch);
1487
1488 for (i = 0; i < S390_NUM_GPRS; i++)
1489 data->gpr[i] = pv_register (S390_R0_REGNUM + i, 0);
1490
1491 for (i = 0; i < S390_NUM_FPRS; i++)
1492 data->fpr[i] = pv_register (S390_F0_REGNUM + i, 0);
1493
1494 for (i = 0; i < S390_NUM_GPRS; i++)
1495 data->gpr_slot[i] = 0;
1496
1497 for (i = 0; i < S390_NUM_FPRS; i++)
1498 data->fpr_slot[i] = 0;
1499
1500 data->back_chain_saved_p = 0;
1501 }
1502
1503 /* Start interpreting instructions, until we hit the frame's
1504 current PC or the first branch instruction. */
1505 for (pc = start_pc; pc > 0 && pc < current_pc; pc = next_pc)
1506 {
1507 bfd_byte insn[S390_MAX_INSTR_SIZE];
1508 int insn_len = s390_readinstruction (insn, pc);
1509
1510 bfd_byte dummy[S390_MAX_INSTR_SIZE] = { 0 };
1511 bfd_byte *insn32 = word_size == 4 ? insn : dummy;
1512 bfd_byte *insn64 = word_size == 8 ? insn : dummy;
1513
1514 /* Fields for various kinds of instructions. */
1515 unsigned int b2, r1, r2, x2, r3;
1516 int i2, d2;
1517
1518 /* The values of SP and FP before this instruction,
1519 for detecting instructions that change them. */
1520 pv_t pre_insn_sp, pre_insn_fp;
1521 /* Likewise for the flag whether the back chain was saved. */
1522 int pre_insn_back_chain_saved_p;
1523
1524 /* If we got an error trying to read the instruction, report it. */
1525 if (insn_len < 0)
1526 {
1527 result = 0;
1528 break;
1529 }
1530
1531 next_pc = pc + insn_len;
1532
1533 pre_insn_sp = data->gpr[S390_SP_REGNUM - S390_R0_REGNUM];
1534 pre_insn_fp = data->gpr[S390_FRAME_REGNUM - S390_R0_REGNUM];
1535 pre_insn_back_chain_saved_p = data->back_chain_saved_p;
1536
1537
1538 /* LHI r1, i2 --- load halfword immediate. */
1539 /* LGHI r1, i2 --- load halfword immediate (64-bit version). */
1540 /* LGFI r1, i2 --- load fullword immediate. */
1541 if (is_ri (insn32, op1_lhi, op2_lhi, &r1, &i2)
1542 || is_ri (insn64, op1_lghi, op2_lghi, &r1, &i2)
1543 || is_ril (insn, op1_lgfi, op2_lgfi, &r1, &i2))
1544 data->gpr[r1] = pv_constant (i2);
1545
1546 /* LR r1, r2 --- load from register. */
1547 /* LGR r1, r2 --- load from register (64-bit version). */
1548 else if (is_rr (insn32, op_lr, &r1, &r2)
1549 || is_rre (insn64, op_lgr, &r1, &r2))
1550 data->gpr[r1] = data->gpr[r2];
1551
1552 /* L r1, d2(x2, b2) --- load. */
1553 /* LY r1, d2(x2, b2) --- load (long-displacement version). */
1554 /* LG r1, d2(x2, b2) --- load (64-bit version). */
1555 else if (is_rx (insn32, op_l, &r1, &d2, &x2, &b2)
1556 || is_rxy (insn32, op1_ly, op2_ly, &r1, &d2, &x2, &b2)
1557 || is_rxy (insn64, op1_lg, op2_lg, &r1, &d2, &x2, &b2))
1558 data->gpr[r1] = s390_load (data, d2, x2, b2, data->gpr_size);
1559
1560 /* ST r1, d2(x2, b2) --- store. */
1561 /* STY r1, d2(x2, b2) --- store (long-displacement version). */
1562 /* STG r1, d2(x2, b2) --- store (64-bit version). */
1563 else if (is_rx (insn32, op_st, &r1, &d2, &x2, &b2)
1564 || is_rxy (insn32, op1_sty, op2_sty, &r1, &d2, &x2, &b2)
1565 || is_rxy (insn64, op1_stg, op2_stg, &r1, &d2, &x2, &b2))
1566 s390_store (data, d2, x2, b2, data->gpr_size, data->gpr[r1]);
1567
1568 /* STD r1, d2(x2,b2) --- store floating-point register. */
1569 else if (is_rx (insn, op_std, &r1, &d2, &x2, &b2))
1570 s390_store (data, d2, x2, b2, data->fpr_size, data->fpr[r1]);
1571
1572 /* STM r1, r3, d2(b2) --- store multiple. */
1573 /* STMY r1, r3, d2(b2) --- store multiple (long-displacement
1574 version). */
1575 /* STMG r1, r3, d2(b2) --- store multiple (64-bit version). */
1576 else if (is_rs (insn32, op_stm, &r1, &r3, &d2, &b2)
1577 || is_rsy (insn32, op1_stmy, op2_stmy, &r1, &r3, &d2, &b2)
1578 || is_rsy (insn64, op1_stmg, op2_stmg, &r1, &r3, &d2, &b2))
1579 {
1580 for (; r1 <= r3; r1++, d2 += data->gpr_size)
1581 s390_store (data, d2, 0, b2, data->gpr_size, data->gpr[r1]);
1582 }
1583
1584 /* AHI r1, i2 --- add halfword immediate. */
1585 /* AGHI r1, i2 --- add halfword immediate (64-bit version). */
1586 /* AFI r1, i2 --- add fullword immediate. */
1587 /* AGFI r1, i2 --- add fullword immediate (64-bit version). */
1588 else if (is_ri (insn32, op1_ahi, op2_ahi, &r1, &i2)
1589 || is_ri (insn64, op1_aghi, op2_aghi, &r1, &i2)
1590 || is_ril (insn32, op1_afi, op2_afi, &r1, &i2)
1591 || is_ril (insn64, op1_agfi, op2_agfi, &r1, &i2))
1592 data->gpr[r1] = pv_add_constant (data->gpr[r1], i2);
1593
1594 /* ALFI r1, i2 --- add logical immediate. */
1595 /* ALGFI r1, i2 --- add logical immediate (64-bit version). */
1596 else if (is_ril (insn32, op1_alfi, op2_alfi, &r1, &i2)
1597 || is_ril (insn64, op1_algfi, op2_algfi, &r1, &i2))
1598 data->gpr[r1] = pv_add_constant (data->gpr[r1],
1599 (CORE_ADDR)i2 & 0xffffffff);
1600
1601 /* AR r1, r2 -- add register. */
1602 /* AGR r1, r2 -- add register (64-bit version). */
1603 else if (is_rr (insn32, op_ar, &r1, &r2)
1604 || is_rre (insn64, op_agr, &r1, &r2))
1605 data->gpr[r1] = pv_add (data->gpr[r1], data->gpr[r2]);
1606
1607 /* A r1, d2(x2, b2) -- add. */
1608 /* AY r1, d2(x2, b2) -- add (long-displacement version). */
1609 /* AG r1, d2(x2, b2) -- add (64-bit version). */
1610 else if (is_rx (insn32, op_a, &r1, &d2, &x2, &b2)
1611 || is_rxy (insn32, op1_ay, op2_ay, &r1, &d2, &x2, &b2)
1612 || is_rxy (insn64, op1_ag, op2_ag, &r1, &d2, &x2, &b2))
1613 data->gpr[r1] = pv_add (data->gpr[r1],
1614 s390_load (data, d2, x2, b2, data->gpr_size));
1615
1616 /* SLFI r1, i2 --- subtract logical immediate. */
1617 /* SLGFI r1, i2 --- subtract logical immediate (64-bit version). */
1618 else if (is_ril (insn32, op1_slfi, op2_slfi, &r1, &i2)
1619 || is_ril (insn64, op1_slgfi, op2_slgfi, &r1, &i2))
1620 data->gpr[r1] = pv_add_constant (data->gpr[r1],
1621 -((CORE_ADDR)i2 & 0xffffffff));
1622
1623 /* SR r1, r2 -- subtract register. */
1624 /* SGR r1, r2 -- subtract register (64-bit version). */
1625 else if (is_rr (insn32, op_sr, &r1, &r2)
1626 || is_rre (insn64, op_sgr, &r1, &r2))
1627 data->gpr[r1] = pv_subtract (data->gpr[r1], data->gpr[r2]);
1628
1629 /* S r1, d2(x2, b2) -- subtract. */
1630 /* SY r1, d2(x2, b2) -- subtract (long-displacement version). */
1631 /* SG r1, d2(x2, b2) -- subtract (64-bit version). */
1632 else if (is_rx (insn32, op_s, &r1, &d2, &x2, &b2)
1633 || is_rxy (insn32, op1_sy, op2_sy, &r1, &d2, &x2, &b2)
1634 || is_rxy (insn64, op1_sg, op2_sg, &r1, &d2, &x2, &b2))
1635 data->gpr[r1] = pv_subtract (data->gpr[r1],
1636 s390_load (data, d2, x2, b2, data->gpr_size));
1637
1638 /* LA r1, d2(x2, b2) --- load address. */
1639 /* LAY r1, d2(x2, b2) --- load address (long-displacement version). */
1640 else if (is_rx (insn, op_la, &r1, &d2, &x2, &b2)
1641 || is_rxy (insn, op1_lay, op2_lay, &r1, &d2, &x2, &b2))
1642 data->gpr[r1] = s390_addr (data, d2, x2, b2);
1643
1644 /* LARL r1, i2 --- load address relative long. */
1645 else if (is_ril (insn, op1_larl, op2_larl, &r1, &i2))
1646 data->gpr[r1] = pv_constant (pc + i2 * 2);
1647
1648 /* BASR r1, 0 --- branch and save.
1649 Since r2 is zero, this saves the PC in r1, but doesn't branch. */
1650 else if (is_rr (insn, op_basr, &r1, &r2)
1651 && r2 == 0)
1652 data->gpr[r1] = pv_constant (next_pc);
1653
1654 /* BRAS r1, i2 --- branch relative and save. */
1655 else if (is_ri (insn, op1_bras, op2_bras, &r1, &i2))
1656 {
1657 data->gpr[r1] = pv_constant (next_pc);
1658 next_pc = pc + i2 * 2;
1659
1660 /* We'd better not interpret any backward branches. We'll
1661 never terminate. */
1662 if (next_pc <= pc)
1663 break;
1664 }
1665
1666 /* BRC/BRCL -- branch relative on condition. Ignore "branch
1667 never", branch to following instruction, and "conditional
1668 trap" (BRC +2). Otherwise terminate search. */
1669 else if (is_ri (insn, op1_brc, op2_brc, &r1, &i2))
1670 {
1671 if (r1 != 0 && i2 != 1 && i2 != 2)
1672 break;
1673 }
1674 else if (is_ril (insn, op1_brcl, op2_brcl, &r1, &i2))
1675 {
1676 if (r1 != 0 && i2 != 3)
1677 break;
1678 }
1679
1680 /* Terminate search when hitting any other branch instruction. */
1681 else if (is_rr (insn, op_basr, &r1, &r2)
1682 || is_rx (insn, op_bas, &r1, &d2, &x2, &b2)
1683 || is_rr (insn, op_bcr, &r1, &r2)
1684 || is_rx (insn, op_bc, &r1, &d2, &x2, &b2)
1685 || is_ril (insn, op1_brasl, op2_brasl, &r2, &i2))
1686 break;
1687
1688 else
1689 {
1690 /* An instruction we don't know how to simulate. The only
1691 safe thing to do would be to set every value we're tracking
1692 to 'unknown'. Instead, we'll be optimistic: we assume that
1693 we *can* interpret every instruction that the compiler uses
1694 to manipulate any of the data we're interested in here --
1695 then we can just ignore anything else. */
1696 }
1697
1698 /* Record the address after the last instruction that changed
1699 the FP, SP, or backlink. Ignore instructions that changed
1700 them back to their original values --- those are probably
1701 restore instructions. (The back chain is never restored,
1702 just popped.) */
1703 {
1704 pv_t sp = data->gpr[S390_SP_REGNUM - S390_R0_REGNUM];
1705 pv_t fp = data->gpr[S390_FRAME_REGNUM - S390_R0_REGNUM];
1706
1707 if ((! pv_is_identical (pre_insn_sp, sp)
1708 && ! pv_is_register_k (sp, S390_SP_REGNUM, 0)
1709 && sp.kind != pvk_unknown)
1710 || (! pv_is_identical (pre_insn_fp, fp)
1711 && ! pv_is_register_k (fp, S390_FRAME_REGNUM, 0)
1712 && fp.kind != pvk_unknown)
1713 || pre_insn_back_chain_saved_p != data->back_chain_saved_p)
1714 result = next_pc;
1715 }
1716 }
1717
1718 /* Record where all the registers were saved. */
1719 pv_area_scan (data->stack, s390_check_for_saved, data);
1720
1721 free_pv_area (data->stack);
1722 data->stack = NULL;
1723
1724 return result;
1725 }
1726
1727 /* Advance PC across any function entry prologue instructions to reach
1728 some "real" code. */
1729 static CORE_ADDR
1730 s390_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR pc)
1731 {
1732 struct s390_prologue_data data;
1733 CORE_ADDR skip_pc, func_addr;
1734
1735 if (find_pc_partial_function (pc, NULL, &func_addr, NULL))
1736 {
1737 CORE_ADDR post_prologue_pc
1738 = skip_prologue_using_sal (gdbarch, func_addr);
1739 if (post_prologue_pc != 0)
1740 return std::max (pc, post_prologue_pc);
1741 }
1742
1743 skip_pc = s390_analyze_prologue (gdbarch, pc, (CORE_ADDR)-1, &data);
1744 return skip_pc ? skip_pc : pc;
1745 }
1746
1747 /* Implmement the stack_frame_destroyed_p gdbarch method. */
1748 static int
1749 s390_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
1750 {
1751 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
1752
1753 /* In frameless functions, there's not frame to destroy and thus
1754 we don't care about the epilogue.
1755
1756 In functions with frame, the epilogue sequence is a pair of
1757 a LM-type instruction that restores (amongst others) the
1758 return register %r14 and the stack pointer %r15, followed
1759 by a branch 'br %r14' --or equivalent-- that effects the
1760 actual return.
1761
1762 In that situation, this function needs to return 'true' in
1763 exactly one case: when pc points to that branch instruction.
1764
1765 Thus we try to disassemble the one instructions immediately
1766 preceding pc and check whether it is an LM-type instruction
1767 modifying the stack pointer.
1768
1769 Note that disassembling backwards is not reliable, so there
1770 is a slight chance of false positives here ... */
1771
1772 bfd_byte insn[6];
1773 unsigned int r1, r3, b2;
1774 int d2;
1775
1776 if (word_size == 4
1777 && !target_read_memory (pc - 4, insn, 4)
1778 && is_rs (insn, op_lm, &r1, &r3, &d2, &b2)
1779 && r3 == S390_SP_REGNUM - S390_R0_REGNUM)
1780 return 1;
1781
1782 if (word_size == 4
1783 && !target_read_memory (pc - 6, insn, 6)
1784 && is_rsy (insn, op1_lmy, op2_lmy, &r1, &r3, &d2, &b2)
1785 && r3 == S390_SP_REGNUM - S390_R0_REGNUM)
1786 return 1;
1787
1788 if (word_size == 8
1789 && !target_read_memory (pc - 6, insn, 6)
1790 && is_rsy (insn, op1_lmg, op2_lmg, &r1, &r3, &d2, &b2)
1791 && r3 == S390_SP_REGNUM - S390_R0_REGNUM)
1792 return 1;
1793
1794 return 0;
1795 }
1796
1797 /* Displaced stepping. */
1798
1799 /* Return true if INSN is a non-branch RIL-b or RIL-c format
1800 instruction. */
1801
1802 static int
1803 is_non_branch_ril (gdb_byte *insn)
1804 {
1805 gdb_byte op1 = insn[0];
1806
1807 if (op1 == 0xc4)
1808 {
1809 gdb_byte op2 = insn[1] & 0x0f;
1810
1811 switch (op2)
1812 {
1813 case 0x02: /* llhrl */
1814 case 0x04: /* lghrl */
1815 case 0x05: /* lhrl */
1816 case 0x06: /* llghrl */
1817 case 0x07: /* sthrl */
1818 case 0x08: /* lgrl */
1819 case 0x0b: /* stgrl */
1820 case 0x0c: /* lgfrl */
1821 case 0x0d: /* lrl */
1822 case 0x0e: /* llgfrl */
1823 case 0x0f: /* strl */
1824 return 1;
1825 }
1826 }
1827 else if (op1 == 0xc6)
1828 {
1829 gdb_byte op2 = insn[1] & 0x0f;
1830
1831 switch (op2)
1832 {
1833 case 0x00: /* exrl */
1834 case 0x02: /* pfdrl */
1835 case 0x04: /* cghrl */
1836 case 0x05: /* chrl */
1837 case 0x06: /* clghrl */
1838 case 0x07: /* clhrl */
1839 case 0x08: /* cgrl */
1840 case 0x0a: /* clgrl */
1841 case 0x0c: /* cgfrl */
1842 case 0x0d: /* crl */
1843 case 0x0e: /* clgfrl */
1844 case 0x0f: /* clrl */
1845 return 1;
1846 }
1847 }
1848
1849 return 0;
1850 }
1851
1852 /* Implementation of gdbarch_displaced_step_copy_insn. */
1853
1854 static struct displaced_step_closure *
1855 s390_displaced_step_copy_insn (struct gdbarch *gdbarch,
1856 CORE_ADDR from, CORE_ADDR to,
1857 struct regcache *regs)
1858 {
1859 size_t len = gdbarch_max_insn_length (gdbarch);
1860 gdb_byte *buf = (gdb_byte *) xmalloc (len);
1861 struct cleanup *old_chain = make_cleanup (xfree, buf);
1862
1863 read_memory (from, buf, len);
1864
1865 /* Adjust the displacement field of PC-relative RIL instructions,
1866 except branches. The latter are handled in the fixup hook. */
1867 if (is_non_branch_ril (buf))
1868 {
1869 LONGEST offset;
1870
1871 offset = extract_signed_integer (buf + 2, 4, BFD_ENDIAN_BIG);
1872 offset = (from - to + offset * 2) / 2;
1873
1874 /* If the instruction is too far from the jump pad, punt. This
1875 will usually happen with instructions in shared libraries.
1876 We could probably support these by rewriting them to be
1877 absolute or fully emulating them. */
1878 if (offset < INT32_MIN || offset > INT32_MAX)
1879 {
1880 /* Let the core fall back to stepping over the breakpoint
1881 in-line. */
1882 if (debug_displaced)
1883 {
1884 fprintf_unfiltered (gdb_stdlog,
1885 "displaced: can't displaced step "
1886 "RIL instruction: offset %s out of range\n",
1887 plongest (offset));
1888 }
1889 do_cleanups (old_chain);
1890 return NULL;
1891 }
1892
1893 store_signed_integer (buf + 2, 4, BFD_ENDIAN_BIG, offset);
1894 }
1895
1896 write_memory (to, buf, len);
1897
1898 if (debug_displaced)
1899 {
1900 fprintf_unfiltered (gdb_stdlog, "displaced: copy %s->%s: ",
1901 paddress (gdbarch, from), paddress (gdbarch, to));
1902 displaced_step_dump_bytes (gdb_stdlog, buf, len);
1903 }
1904
1905 discard_cleanups (old_chain);
1906 return (struct displaced_step_closure *) buf;
1907 }
1908
1909 /* Fix up the state of registers and memory after having single-stepped
1910 a displaced instruction. */
1911 static void
1912 s390_displaced_step_fixup (struct gdbarch *gdbarch,
1913 struct displaced_step_closure *closure,
1914 CORE_ADDR from, CORE_ADDR to,
1915 struct regcache *regs)
1916 {
1917 /* Our closure is a copy of the instruction. */
1918 gdb_byte *insn = (gdb_byte *) closure;
1919 static int s390_instrlen[] = { 2, 4, 4, 6 };
1920 int insnlen = s390_instrlen[insn[0] >> 6];
1921
1922 /* Fields for various kinds of instructions. */
1923 unsigned int b2, r1, r2, x2, r3;
1924 int i2, d2;
1925
1926 /* Get current PC and addressing mode bit. */
1927 CORE_ADDR pc = regcache_read_pc (regs);
1928 ULONGEST amode = 0;
1929
1930 if (register_size (gdbarch, S390_PSWA_REGNUM) == 4)
1931 {
1932 regcache_cooked_read_unsigned (regs, S390_PSWA_REGNUM, &amode);
1933 amode &= 0x80000000;
1934 }
1935
1936 if (debug_displaced)
1937 fprintf_unfiltered (gdb_stdlog,
1938 "displaced: (s390) fixup (%s, %s) pc %s len %d amode 0x%x\n",
1939 paddress (gdbarch, from), paddress (gdbarch, to),
1940 paddress (gdbarch, pc), insnlen, (int) amode);
1941
1942 /* Handle absolute branch and save instructions. */
1943 if (is_rr (insn, op_basr, &r1, &r2)
1944 || is_rx (insn, op_bas, &r1, &d2, &x2, &b2))
1945 {
1946 /* Recompute saved return address in R1. */
1947 regcache_cooked_write_unsigned (regs, S390_R0_REGNUM + r1,
1948 amode | (from + insnlen));
1949 }
1950
1951 /* Handle absolute branch instructions. */
1952 else if (is_rr (insn, op_bcr, &r1, &r2)
1953 || is_rx (insn, op_bc, &r1, &d2, &x2, &b2)
1954 || is_rr (insn, op_bctr, &r1, &r2)
1955 || is_rre (insn, op_bctgr, &r1, &r2)
1956 || is_rx (insn, op_bct, &r1, &d2, &x2, &b2)
1957 || is_rxy (insn, op1_bctg, op2_brctg, &r1, &d2, &x2, &b2)
1958 || is_rs (insn, op_bxh, &r1, &r3, &d2, &b2)
1959 || is_rsy (insn, op1_bxhg, op2_bxhg, &r1, &r3, &d2, &b2)
1960 || is_rs (insn, op_bxle, &r1, &r3, &d2, &b2)
1961 || is_rsy (insn, op1_bxleg, op2_bxleg, &r1, &r3, &d2, &b2))
1962 {
1963 /* Update PC iff branch was *not* taken. */
1964 if (pc == to + insnlen)
1965 regcache_write_pc (regs, from + insnlen);
1966 }
1967
1968 /* Handle PC-relative branch and save instructions. */
1969 else if (is_ri (insn, op1_bras, op2_bras, &r1, &i2)
1970 || is_ril (insn, op1_brasl, op2_brasl, &r1, &i2))
1971 {
1972 /* Update PC. */
1973 regcache_write_pc (regs, pc - to + from);
1974 /* Recompute saved return address in R1. */
1975 regcache_cooked_write_unsigned (regs, S390_R0_REGNUM + r1,
1976 amode | (from + insnlen));
1977 }
1978
1979 /* Handle PC-relative branch instructions. */
1980 else if (is_ri (insn, op1_brc, op2_brc, &r1, &i2)
1981 || is_ril (insn, op1_brcl, op2_brcl, &r1, &i2)
1982 || is_ri (insn, op1_brct, op2_brct, &r1, &i2)
1983 || is_ri (insn, op1_brctg, op2_brctg, &r1, &i2)
1984 || is_rsi (insn, op_brxh, &r1, &r3, &i2)
1985 || is_rie (insn, op1_brxhg, op2_brxhg, &r1, &r3, &i2)
1986 || is_rsi (insn, op_brxle, &r1, &r3, &i2)
1987 || is_rie (insn, op1_brxlg, op2_brxlg, &r1, &r3, &i2))
1988 {
1989 /* Update PC. */
1990 regcache_write_pc (regs, pc - to + from);
1991 }
1992
1993 /* Handle LOAD ADDRESS RELATIVE LONG. */
1994 else if (is_ril (insn, op1_larl, op2_larl, &r1, &i2))
1995 {
1996 /* Update PC. */
1997 regcache_write_pc (regs, from + insnlen);
1998 /* Recompute output address in R1. */
1999 regcache_cooked_write_unsigned (regs, S390_R0_REGNUM + r1,
2000 amode | (from + i2 * 2));
2001 }
2002
2003 /* If we executed a breakpoint instruction, point PC right back at it. */
2004 else if (insn[0] == 0x0 && insn[1] == 0x1)
2005 regcache_write_pc (regs, from);
2006
2007 /* For any other insn, PC points right after the original instruction. */
2008 else
2009 regcache_write_pc (regs, from + insnlen);
2010
2011 if (debug_displaced)
2012 fprintf_unfiltered (gdb_stdlog,
2013 "displaced: (s390) pc is now %s\n",
2014 paddress (gdbarch, regcache_read_pc (regs)));
2015 }
2016
2017
2018 /* Helper routine to unwind pseudo registers. */
2019
2020 static struct value *
2021 s390_unwind_pseudo_register (struct frame_info *this_frame, int regnum)
2022 {
2023 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2024 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2025 struct type *type = register_type (gdbarch, regnum);
2026
2027 /* Unwind PC via PSW address. */
2028 if (regnum == tdep->pc_regnum)
2029 {
2030 struct value *val;
2031
2032 val = frame_unwind_register_value (this_frame, S390_PSWA_REGNUM);
2033 if (!value_optimized_out (val))
2034 {
2035 LONGEST pswa = value_as_long (val);
2036
2037 if (TYPE_LENGTH (type) == 4)
2038 return value_from_pointer (type, pswa & 0x7fffffff);
2039 else
2040 return value_from_pointer (type, pswa);
2041 }
2042 }
2043
2044 /* Unwind CC via PSW mask. */
2045 if (regnum == tdep->cc_regnum)
2046 {
2047 struct value *val;
2048
2049 val = frame_unwind_register_value (this_frame, S390_PSWM_REGNUM);
2050 if (!value_optimized_out (val))
2051 {
2052 LONGEST pswm = value_as_long (val);
2053
2054 if (TYPE_LENGTH (type) == 4)
2055 return value_from_longest (type, (pswm >> 12) & 3);
2056 else
2057 return value_from_longest (type, (pswm >> 44) & 3);
2058 }
2059 }
2060
2061 /* Unwind full GPRs to show at least the lower halves (as the
2062 upper halves are undefined). */
2063 if (regnum_is_gpr_full (tdep, regnum))
2064 {
2065 int reg = regnum - tdep->gpr_full_regnum;
2066 struct value *val;
2067
2068 val = frame_unwind_register_value (this_frame, S390_R0_REGNUM + reg);
2069 if (!value_optimized_out (val))
2070 return value_cast (type, val);
2071 }
2072
2073 return allocate_optimized_out_value (type);
2074 }
2075
2076 static struct value *
2077 s390_trad_frame_prev_register (struct frame_info *this_frame,
2078 struct trad_frame_saved_reg saved_regs[],
2079 int regnum)
2080 {
2081 if (regnum < S390_NUM_REGS)
2082 return trad_frame_get_prev_register (this_frame, saved_regs, regnum);
2083 else
2084 return s390_unwind_pseudo_register (this_frame, regnum);
2085 }
2086
2087
2088 /* Normal stack frames. */
2089
2090 struct s390_unwind_cache {
2091
2092 CORE_ADDR func;
2093 CORE_ADDR frame_base;
2094 CORE_ADDR local_base;
2095
2096 struct trad_frame_saved_reg *saved_regs;
2097 };
2098
2099 static int
2100 s390_prologue_frame_unwind_cache (struct frame_info *this_frame,
2101 struct s390_unwind_cache *info)
2102 {
2103 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2104 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2105 struct s390_prologue_data data;
2106 pv_t *fp = &data.gpr[S390_FRAME_REGNUM - S390_R0_REGNUM];
2107 pv_t *sp = &data.gpr[S390_SP_REGNUM - S390_R0_REGNUM];
2108 int i;
2109 CORE_ADDR cfa;
2110 CORE_ADDR func;
2111 CORE_ADDR result;
2112 ULONGEST reg;
2113 CORE_ADDR prev_sp;
2114 int frame_pointer;
2115 int size;
2116 struct frame_info *next_frame;
2117
2118 /* Try to find the function start address. If we can't find it, we don't
2119 bother searching for it -- with modern compilers this would be mostly
2120 pointless anyway. Trust that we'll either have valid DWARF-2 CFI data
2121 or else a valid backchain ... */
2122 if (!get_frame_func_if_available (this_frame, &info->func))
2123 {
2124 info->func = -1;
2125 return 0;
2126 }
2127 func = info->func;
2128
2129 /* Try to analyze the prologue. */
2130 result = s390_analyze_prologue (gdbarch, func,
2131 get_frame_pc (this_frame), &data);
2132 if (!result)
2133 return 0;
2134
2135 /* If this was successful, we should have found the instruction that
2136 sets the stack pointer register to the previous value of the stack
2137 pointer minus the frame size. */
2138 if (!pv_is_register (*sp, S390_SP_REGNUM))
2139 return 0;
2140
2141 /* A frame size of zero at this point can mean either a real
2142 frameless function, or else a failure to find the prologue.
2143 Perform some sanity checks to verify we really have a
2144 frameless function. */
2145 if (sp->k == 0)
2146 {
2147 /* If the next frame is a NORMAL_FRAME, this frame *cannot* have frame
2148 size zero. This is only possible if the next frame is a sentinel
2149 frame, a dummy frame, or a signal trampoline frame. */
2150 /* FIXME: cagney/2004-05-01: This sanity check shouldn't be
2151 needed, instead the code should simpliy rely on its
2152 analysis. */
2153 next_frame = get_next_frame (this_frame);
2154 while (next_frame && get_frame_type (next_frame) == INLINE_FRAME)
2155 next_frame = get_next_frame (next_frame);
2156 if (next_frame
2157 && get_frame_type (get_next_frame (this_frame)) == NORMAL_FRAME)
2158 return 0;
2159
2160 /* If we really have a frameless function, %r14 must be valid
2161 -- in particular, it must point to a different function. */
2162 reg = get_frame_register_unsigned (this_frame, S390_RETADDR_REGNUM);
2163 reg = gdbarch_addr_bits_remove (gdbarch, reg) - 1;
2164 if (get_pc_function_start (reg) == func)
2165 {
2166 /* However, there is one case where it *is* valid for %r14
2167 to point to the same function -- if this is a recursive
2168 call, and we have stopped in the prologue *before* the
2169 stack frame was allocated.
2170
2171 Recognize this case by looking ahead a bit ... */
2172
2173 struct s390_prologue_data data2;
2174 pv_t *sp = &data2.gpr[S390_SP_REGNUM - S390_R0_REGNUM];
2175
2176 if (!(s390_analyze_prologue (gdbarch, func, (CORE_ADDR)-1, &data2)
2177 && pv_is_register (*sp, S390_SP_REGNUM)
2178 && sp->k != 0))
2179 return 0;
2180 }
2181 }
2182
2183
2184 /* OK, we've found valid prologue data. */
2185 size = -sp->k;
2186
2187 /* If the frame pointer originally also holds the same value
2188 as the stack pointer, we're probably using it. If it holds
2189 some other value -- even a constant offset -- it is most
2190 likely used as temp register. */
2191 if (pv_is_identical (*sp, *fp))
2192 frame_pointer = S390_FRAME_REGNUM;
2193 else
2194 frame_pointer = S390_SP_REGNUM;
2195
2196 /* If we've detected a function with stack frame, we'll still have to
2197 treat it as frameless if we're currently within the function epilog
2198 code at a point where the frame pointer has already been restored.
2199 This can only happen in an innermost frame. */
2200 /* FIXME: cagney/2004-05-01: This sanity check shouldn't be needed,
2201 instead the code should simpliy rely on its analysis. */
2202 next_frame = get_next_frame (this_frame);
2203 while (next_frame && get_frame_type (next_frame) == INLINE_FRAME)
2204 next_frame = get_next_frame (next_frame);
2205 if (size > 0
2206 && (next_frame == NULL
2207 || get_frame_type (get_next_frame (this_frame)) != NORMAL_FRAME))
2208 {
2209 /* See the comment in s390_stack_frame_destroyed_p on why this is
2210 not completely reliable ... */
2211 if (s390_stack_frame_destroyed_p (gdbarch, get_frame_pc (this_frame)))
2212 {
2213 memset (&data, 0, sizeof (data));
2214 size = 0;
2215 frame_pointer = S390_SP_REGNUM;
2216 }
2217 }
2218
2219 /* Once we know the frame register and the frame size, we can unwind
2220 the current value of the frame register from the next frame, and
2221 add back the frame size to arrive that the previous frame's
2222 stack pointer value. */
2223 prev_sp = get_frame_register_unsigned (this_frame, frame_pointer) + size;
2224 cfa = prev_sp + 16*word_size + 32;
2225
2226 /* Set up ABI call-saved/call-clobbered registers. */
2227 for (i = 0; i < S390_NUM_REGS; i++)
2228 if (!s390_register_call_saved (gdbarch, i))
2229 trad_frame_set_unknown (info->saved_regs, i);
2230
2231 /* CC is always call-clobbered. */
2232 trad_frame_set_unknown (info->saved_regs, S390_PSWM_REGNUM);
2233
2234 /* Record the addresses of all register spill slots the prologue parser
2235 has recognized. Consider only registers defined as call-saved by the
2236 ABI; for call-clobbered registers the parser may have recognized
2237 spurious stores. */
2238
2239 for (i = 0; i < 16; i++)
2240 if (s390_register_call_saved (gdbarch, S390_R0_REGNUM + i)
2241 && data.gpr_slot[i] != 0)
2242 info->saved_regs[S390_R0_REGNUM + i].addr = cfa - data.gpr_slot[i];
2243
2244 for (i = 0; i < 16; i++)
2245 if (s390_register_call_saved (gdbarch, S390_F0_REGNUM + i)
2246 && data.fpr_slot[i] != 0)
2247 info->saved_regs[S390_F0_REGNUM + i].addr = cfa - data.fpr_slot[i];
2248
2249 /* Function return will set PC to %r14. */
2250 info->saved_regs[S390_PSWA_REGNUM] = info->saved_regs[S390_RETADDR_REGNUM];
2251
2252 /* In frameless functions, we unwind simply by moving the return
2253 address to the PC. However, if we actually stored to the
2254 save area, use that -- we might only think the function frameless
2255 because we're in the middle of the prologue ... */
2256 if (size == 0
2257 && !trad_frame_addr_p (info->saved_regs, S390_PSWA_REGNUM))
2258 {
2259 info->saved_regs[S390_PSWA_REGNUM].realreg = S390_RETADDR_REGNUM;
2260 }
2261
2262 /* Another sanity check: unless this is a frameless function,
2263 we should have found spill slots for SP and PC.
2264 If not, we cannot unwind further -- this happens e.g. in
2265 libc's thread_start routine. */
2266 if (size > 0)
2267 {
2268 if (!trad_frame_addr_p (info->saved_regs, S390_SP_REGNUM)
2269 || !trad_frame_addr_p (info->saved_regs, S390_PSWA_REGNUM))
2270 prev_sp = -1;
2271 }
2272
2273 /* We use the current value of the frame register as local_base,
2274 and the top of the register save area as frame_base. */
2275 if (prev_sp != -1)
2276 {
2277 info->frame_base = prev_sp + 16*word_size + 32;
2278 info->local_base = prev_sp - size;
2279 }
2280
2281 return 1;
2282 }
2283
2284 static void
2285 s390_backchain_frame_unwind_cache (struct frame_info *this_frame,
2286 struct s390_unwind_cache *info)
2287 {
2288 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2289 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2290 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2291 CORE_ADDR backchain;
2292 ULONGEST reg;
2293 LONGEST sp, tmp;
2294 int i;
2295
2296 /* Set up ABI call-saved/call-clobbered registers. */
2297 for (i = 0; i < S390_NUM_REGS; i++)
2298 if (!s390_register_call_saved (gdbarch, i))
2299 trad_frame_set_unknown (info->saved_regs, i);
2300
2301 /* CC is always call-clobbered. */
2302 trad_frame_set_unknown (info->saved_regs, S390_PSWM_REGNUM);
2303
2304 /* Get the backchain. */
2305 reg = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
2306 if (!safe_read_memory_integer (reg, word_size, byte_order, &tmp))
2307 tmp = 0;
2308 backchain = (CORE_ADDR) tmp;
2309
2310 /* A zero backchain terminates the frame chain. As additional
2311 sanity check, let's verify that the spill slot for SP in the
2312 save area pointed to by the backchain in fact links back to
2313 the save area. */
2314 if (backchain != 0
2315 && safe_read_memory_integer (backchain + 15*word_size,
2316 word_size, byte_order, &sp)
2317 && (CORE_ADDR)sp == backchain)
2318 {
2319 /* We don't know which registers were saved, but it will have
2320 to be at least %r14 and %r15. This will allow us to continue
2321 unwinding, but other prev-frame registers may be incorrect ... */
2322 info->saved_regs[S390_SP_REGNUM].addr = backchain + 15*word_size;
2323 info->saved_regs[S390_RETADDR_REGNUM].addr = backchain + 14*word_size;
2324
2325 /* Function return will set PC to %r14. */
2326 info->saved_regs[S390_PSWA_REGNUM]
2327 = info->saved_regs[S390_RETADDR_REGNUM];
2328
2329 /* We use the current value of the frame register as local_base,
2330 and the top of the register save area as frame_base. */
2331 info->frame_base = backchain + 16*word_size + 32;
2332 info->local_base = reg;
2333 }
2334
2335 info->func = get_frame_pc (this_frame);
2336 }
2337
2338 static struct s390_unwind_cache *
2339 s390_frame_unwind_cache (struct frame_info *this_frame,
2340 void **this_prologue_cache)
2341 {
2342 struct s390_unwind_cache *info;
2343
2344 if (*this_prologue_cache)
2345 return (struct s390_unwind_cache *) *this_prologue_cache;
2346
2347 info = FRAME_OBSTACK_ZALLOC (struct s390_unwind_cache);
2348 *this_prologue_cache = info;
2349 info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
2350 info->func = -1;
2351 info->frame_base = -1;
2352 info->local_base = -1;
2353
2354 TRY
2355 {
2356 /* Try to use prologue analysis to fill the unwind cache.
2357 If this fails, fall back to reading the stack backchain. */
2358 if (!s390_prologue_frame_unwind_cache (this_frame, info))
2359 s390_backchain_frame_unwind_cache (this_frame, info);
2360 }
2361 CATCH (ex, RETURN_MASK_ERROR)
2362 {
2363 if (ex.error != NOT_AVAILABLE_ERROR)
2364 throw_exception (ex);
2365 }
2366 END_CATCH
2367
2368 return info;
2369 }
2370
2371 static void
2372 s390_frame_this_id (struct frame_info *this_frame,
2373 void **this_prologue_cache,
2374 struct frame_id *this_id)
2375 {
2376 struct s390_unwind_cache *info
2377 = s390_frame_unwind_cache (this_frame, this_prologue_cache);
2378
2379 if (info->frame_base == -1)
2380 {
2381 if (info->func != -1)
2382 *this_id = frame_id_build_unavailable_stack (info->func);
2383 return;
2384 }
2385
2386 *this_id = frame_id_build (info->frame_base, info->func);
2387 }
2388
2389 static struct value *
2390 s390_frame_prev_register (struct frame_info *this_frame,
2391 void **this_prologue_cache, int regnum)
2392 {
2393 struct s390_unwind_cache *info
2394 = s390_frame_unwind_cache (this_frame, this_prologue_cache);
2395
2396 return s390_trad_frame_prev_register (this_frame, info->saved_regs, regnum);
2397 }
2398
2399 static const struct frame_unwind s390_frame_unwind = {
2400 NORMAL_FRAME,
2401 default_frame_unwind_stop_reason,
2402 s390_frame_this_id,
2403 s390_frame_prev_register,
2404 NULL,
2405 default_frame_sniffer
2406 };
2407
2408
2409 /* Code stubs and their stack frames. For things like PLTs and NULL
2410 function calls (where there is no true frame and the return address
2411 is in the RETADDR register). */
2412
2413 struct s390_stub_unwind_cache
2414 {
2415 CORE_ADDR frame_base;
2416 struct trad_frame_saved_reg *saved_regs;
2417 };
2418
2419 static struct s390_stub_unwind_cache *
2420 s390_stub_frame_unwind_cache (struct frame_info *this_frame,
2421 void **this_prologue_cache)
2422 {
2423 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2424 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2425 struct s390_stub_unwind_cache *info;
2426 ULONGEST reg;
2427
2428 if (*this_prologue_cache)
2429 return (struct s390_stub_unwind_cache *) *this_prologue_cache;
2430
2431 info = FRAME_OBSTACK_ZALLOC (struct s390_stub_unwind_cache);
2432 *this_prologue_cache = info;
2433 info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
2434
2435 /* The return address is in register %r14. */
2436 info->saved_regs[S390_PSWA_REGNUM].realreg = S390_RETADDR_REGNUM;
2437
2438 /* Retrieve stack pointer and determine our frame base. */
2439 reg = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
2440 info->frame_base = reg + 16*word_size + 32;
2441
2442 return info;
2443 }
2444
2445 static void
2446 s390_stub_frame_this_id (struct frame_info *this_frame,
2447 void **this_prologue_cache,
2448 struct frame_id *this_id)
2449 {
2450 struct s390_stub_unwind_cache *info
2451 = s390_stub_frame_unwind_cache (this_frame, this_prologue_cache);
2452 *this_id = frame_id_build (info->frame_base, get_frame_pc (this_frame));
2453 }
2454
2455 static struct value *
2456 s390_stub_frame_prev_register (struct frame_info *this_frame,
2457 void **this_prologue_cache, int regnum)
2458 {
2459 struct s390_stub_unwind_cache *info
2460 = s390_stub_frame_unwind_cache (this_frame, this_prologue_cache);
2461 return s390_trad_frame_prev_register (this_frame, info->saved_regs, regnum);
2462 }
2463
2464 static int
2465 s390_stub_frame_sniffer (const struct frame_unwind *self,
2466 struct frame_info *this_frame,
2467 void **this_prologue_cache)
2468 {
2469 CORE_ADDR addr_in_block;
2470 bfd_byte insn[S390_MAX_INSTR_SIZE];
2471
2472 /* If the current PC points to non-readable memory, we assume we
2473 have trapped due to an invalid function pointer call. We handle
2474 the non-existing current function like a PLT stub. */
2475 addr_in_block = get_frame_address_in_block (this_frame);
2476 if (in_plt_section (addr_in_block)
2477 || s390_readinstruction (insn, get_frame_pc (this_frame)) < 0)
2478 return 1;
2479 return 0;
2480 }
2481
2482 static const struct frame_unwind s390_stub_frame_unwind = {
2483 NORMAL_FRAME,
2484 default_frame_unwind_stop_reason,
2485 s390_stub_frame_this_id,
2486 s390_stub_frame_prev_register,
2487 NULL,
2488 s390_stub_frame_sniffer
2489 };
2490
2491
2492 /* Signal trampoline stack frames. */
2493
2494 struct s390_sigtramp_unwind_cache {
2495 CORE_ADDR frame_base;
2496 struct trad_frame_saved_reg *saved_regs;
2497 };
2498
2499 static struct s390_sigtramp_unwind_cache *
2500 s390_sigtramp_frame_unwind_cache (struct frame_info *this_frame,
2501 void **this_prologue_cache)
2502 {
2503 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2504 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2505 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
2506 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2507 struct s390_sigtramp_unwind_cache *info;
2508 ULONGEST this_sp, prev_sp;
2509 CORE_ADDR next_ra, next_cfa, sigreg_ptr, sigreg_high_off;
2510 int i;
2511
2512 if (*this_prologue_cache)
2513 return (struct s390_sigtramp_unwind_cache *) *this_prologue_cache;
2514
2515 info = FRAME_OBSTACK_ZALLOC (struct s390_sigtramp_unwind_cache);
2516 *this_prologue_cache = info;
2517 info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
2518
2519 this_sp = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
2520 next_ra = get_frame_pc (this_frame);
2521 next_cfa = this_sp + 16*word_size + 32;
2522
2523 /* New-style RT frame:
2524 retcode + alignment (8 bytes)
2525 siginfo (128 bytes)
2526 ucontext (contains sigregs at offset 5 words). */
2527 if (next_ra == next_cfa)
2528 {
2529 sigreg_ptr = next_cfa + 8 + 128 + align_up (5*word_size, 8);
2530 /* sigregs are followed by uc_sigmask (8 bytes), then by the
2531 upper GPR halves if present. */
2532 sigreg_high_off = 8;
2533 }
2534
2535 /* Old-style RT frame and all non-RT frames:
2536 old signal mask (8 bytes)
2537 pointer to sigregs. */
2538 else
2539 {
2540 sigreg_ptr = read_memory_unsigned_integer (next_cfa + 8,
2541 word_size, byte_order);
2542 /* sigregs are followed by signo (4 bytes), then by the
2543 upper GPR halves if present. */
2544 sigreg_high_off = 4;
2545 }
2546
2547 /* The sigregs structure looks like this:
2548 long psw_mask;
2549 long psw_addr;
2550 long gprs[16];
2551 int acrs[16];
2552 int fpc;
2553 int __pad;
2554 double fprs[16]; */
2555
2556 /* PSW mask and address. */
2557 info->saved_regs[S390_PSWM_REGNUM].addr = sigreg_ptr;
2558 sigreg_ptr += word_size;
2559 info->saved_regs[S390_PSWA_REGNUM].addr = sigreg_ptr;
2560 sigreg_ptr += word_size;
2561
2562 /* Then the GPRs. */
2563 for (i = 0; i < 16; i++)
2564 {
2565 info->saved_regs[S390_R0_REGNUM + i].addr = sigreg_ptr;
2566 sigreg_ptr += word_size;
2567 }
2568
2569 /* Then the ACRs. */
2570 for (i = 0; i < 16; i++)
2571 {
2572 info->saved_regs[S390_A0_REGNUM + i].addr = sigreg_ptr;
2573 sigreg_ptr += 4;
2574 }
2575
2576 /* The floating-point control word. */
2577 info->saved_regs[S390_FPC_REGNUM].addr = sigreg_ptr;
2578 sigreg_ptr += 8;
2579
2580 /* And finally the FPRs. */
2581 for (i = 0; i < 16; i++)
2582 {
2583 info->saved_regs[S390_F0_REGNUM + i].addr = sigreg_ptr;
2584 sigreg_ptr += 8;
2585 }
2586
2587 /* If we have them, the GPR upper halves are appended at the end. */
2588 sigreg_ptr += sigreg_high_off;
2589 if (tdep->gpr_full_regnum != -1)
2590 for (i = 0; i < 16; i++)
2591 {
2592 info->saved_regs[S390_R0_UPPER_REGNUM + i].addr = sigreg_ptr;
2593 sigreg_ptr += 4;
2594 }
2595
2596 /* Restore the previous frame's SP. */
2597 prev_sp = read_memory_unsigned_integer (
2598 info->saved_regs[S390_SP_REGNUM].addr,
2599 word_size, byte_order);
2600
2601 /* Determine our frame base. */
2602 info->frame_base = prev_sp + 16*word_size + 32;
2603
2604 return info;
2605 }
2606
2607 static void
2608 s390_sigtramp_frame_this_id (struct frame_info *this_frame,
2609 void **this_prologue_cache,
2610 struct frame_id *this_id)
2611 {
2612 struct s390_sigtramp_unwind_cache *info
2613 = s390_sigtramp_frame_unwind_cache (this_frame, this_prologue_cache);
2614 *this_id = frame_id_build (info->frame_base, get_frame_pc (this_frame));
2615 }
2616
2617 static struct value *
2618 s390_sigtramp_frame_prev_register (struct frame_info *this_frame,
2619 void **this_prologue_cache, int regnum)
2620 {
2621 struct s390_sigtramp_unwind_cache *info
2622 = s390_sigtramp_frame_unwind_cache (this_frame, this_prologue_cache);
2623 return s390_trad_frame_prev_register (this_frame, info->saved_regs, regnum);
2624 }
2625
2626 static int
2627 s390_sigtramp_frame_sniffer (const struct frame_unwind *self,
2628 struct frame_info *this_frame,
2629 void **this_prologue_cache)
2630 {
2631 CORE_ADDR pc = get_frame_pc (this_frame);
2632 bfd_byte sigreturn[2];
2633
2634 if (target_read_memory (pc, sigreturn, 2))
2635 return 0;
2636
2637 if (sigreturn[0] != op_svc)
2638 return 0;
2639
2640 if (sigreturn[1] != 119 /* sigreturn */
2641 && sigreturn[1] != 173 /* rt_sigreturn */)
2642 return 0;
2643
2644 return 1;
2645 }
2646
2647 static const struct frame_unwind s390_sigtramp_frame_unwind = {
2648 SIGTRAMP_FRAME,
2649 default_frame_unwind_stop_reason,
2650 s390_sigtramp_frame_this_id,
2651 s390_sigtramp_frame_prev_register,
2652 NULL,
2653 s390_sigtramp_frame_sniffer
2654 };
2655
2656 /* Retrieve the syscall number at a ptrace syscall-stop. Return -1
2657 upon error. */
2658
2659 static LONGEST
2660 s390_linux_get_syscall_number (struct gdbarch *gdbarch,
2661 ptid_t ptid)
2662 {
2663 struct regcache *regs = get_thread_regcache (ptid);
2664 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2665 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2666 ULONGEST pc;
2667 ULONGEST svc_number = -1;
2668 unsigned opcode;
2669
2670 /* Assume that the PC points after the 2-byte SVC instruction. We
2671 don't currently support SVC via EXECUTE. */
2672 regcache_cooked_read_unsigned (regs, tdep->pc_regnum, &pc);
2673 pc -= 2;
2674 opcode = read_memory_unsigned_integer ((CORE_ADDR) pc, 1, byte_order);
2675 if (opcode != op_svc)
2676 return -1;
2677
2678 svc_number = read_memory_unsigned_integer ((CORE_ADDR) pc + 1, 1,
2679 byte_order);
2680 if (svc_number == 0)
2681 regcache_cooked_read_unsigned (regs, S390_R1_REGNUM, &svc_number);
2682
2683 return svc_number;
2684 }
2685
2686 /* Process record-replay */
2687
2688 static struct linux_record_tdep s390_linux_record_tdep;
2689 static struct linux_record_tdep s390x_linux_record_tdep;
2690
2691 /* Record all registers but PC register for process-record. */
2692
2693 static int
2694 s390_all_but_pc_registers_record (struct regcache *regcache)
2695 {
2696 struct gdbarch *gdbarch = get_regcache_arch (regcache);
2697 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2698 int i;
2699
2700 for (i = 0; i < 16; i++)
2701 {
2702 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + i))
2703 return -1;
2704 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + i))
2705 return -1;
2706 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + i))
2707 return -1;
2708 if (tdep->gpr_full_regnum != -1)
2709 if (record_full_arch_list_add_reg (regcache, S390_R0_UPPER_REGNUM + i))
2710 return -1;
2711 if (tdep->v0_full_regnum != -1)
2712 {
2713 if (record_full_arch_list_add_reg (regcache, S390_V0_LOWER_REGNUM + i))
2714 return -1;
2715 if (record_full_arch_list_add_reg (regcache, S390_V16_REGNUM + i))
2716 return -1;
2717 }
2718 }
2719 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
2720 return -1;
2721 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
2722 return -1;
2723
2724 return 0;
2725 }
2726
2727 static enum gdb_syscall
2728 s390_canonicalize_syscall (int syscall, enum s390_abi_kind abi)
2729 {
2730 switch (syscall)
2731 {
2732 /* s390 syscall numbers < 222 are mostly the same as x86, so just list
2733 the exceptions. */
2734 case 0:
2735 return gdb_sys_no_syscall;
2736 case 7:
2737 return gdb_sys_restart_syscall;
2738 /* These syscalls work only on 31-bit. */
2739 case 13: /* time */
2740 case 16: /* lchown[16] */
2741 case 23: /* setuid[16] */
2742 case 24: /* getuid[16] */
2743 case 25: /* stime */
2744 case 46: /* setgid[16] */
2745 case 47: /* getgid[16] */
2746 case 49: /* seteuid[16] */
2747 case 50: /* getegid[16] */
2748 case 70: /* setreuid[16] */
2749 case 71: /* setregid[16] */
2750 case 76: /* [old_]getrlimit */
2751 case 80: /* getgroups[16] */
2752 case 81: /* setgroups[16] */
2753 case 95: /* fchown[16] */
2754 case 101: /* ioperm */
2755 case 138: /* setfsuid[16] */
2756 case 139: /* setfsgid[16] */
2757 case 140: /* _llseek */
2758 case 164: /* setresuid[16] */
2759 case 165: /* getresuid[16] */
2760 case 170: /* setresgid[16] */
2761 case 171: /* getresgid[16] */
2762 case 182: /* chown[16] */
2763 case 192: /* mmap2 */
2764 case 193: /* truncate64 */
2765 case 194: /* ftruncate64 */
2766 case 195: /* stat64 */
2767 case 196: /* lstat64 */
2768 case 197: /* fstat64 */
2769 case 221: /* fcntl64 */
2770 if (abi == ABI_LINUX_S390)
2771 return (enum gdb_syscall) syscall;
2772 return gdb_sys_no_syscall;
2773 /* These syscalls don't exist on s390. */
2774 case 17: /* break */
2775 case 18: /* oldstat */
2776 case 28: /* oldfstat */
2777 case 31: /* stty */
2778 case 32: /* gtty */
2779 case 35: /* ftime */
2780 case 44: /* prof */
2781 case 53: /* lock */
2782 case 56: /* mpx */
2783 case 58: /* ulimit */
2784 case 59: /* oldolduname */
2785 case 68: /* sgetmask */
2786 case 69: /* ssetmask */
2787 case 82: /* [old_]select */
2788 case 84: /* oldlstat */
2789 case 98: /* profil */
2790 case 109: /* olduname */
2791 case 113: /* vm86old */
2792 case 123: /* modify_ldt */
2793 case 166: /* vm86 */
2794 return gdb_sys_no_syscall;
2795 case 110:
2796 return gdb_sys_lookup_dcookie;
2797 /* Here come the differences. */
2798 case 222:
2799 return gdb_sys_readahead;
2800 case 223:
2801 if (abi == ABI_LINUX_S390)
2802 return gdb_sys_sendfile64;
2803 return gdb_sys_no_syscall;
2804 /* 224-235 handled below */
2805 case 236:
2806 return gdb_sys_gettid;
2807 case 237:
2808 return gdb_sys_tkill;
2809 case 238:
2810 return gdb_sys_futex;
2811 case 239:
2812 return gdb_sys_sched_setaffinity;
2813 case 240:
2814 return gdb_sys_sched_getaffinity;
2815 case 241:
2816 return gdb_sys_tgkill;
2817 /* 242 reserved */
2818 case 243:
2819 return gdb_sys_io_setup;
2820 case 244:
2821 return gdb_sys_io_destroy;
2822 case 245:
2823 return gdb_sys_io_getevents;
2824 case 246:
2825 return gdb_sys_io_submit;
2826 case 247:
2827 return gdb_sys_io_cancel;
2828 case 248:
2829 return gdb_sys_exit_group;
2830 case 249:
2831 return gdb_sys_epoll_create;
2832 case 250:
2833 return gdb_sys_epoll_ctl;
2834 case 251:
2835 return gdb_sys_epoll_wait;
2836 case 252:
2837 return gdb_sys_set_tid_address;
2838 case 253:
2839 return gdb_sys_fadvise64;
2840 /* 254-262 handled below */
2841 /* 263 reserved */
2842 case 264:
2843 if (abi == ABI_LINUX_S390)
2844 return gdb_sys_fadvise64_64;
2845 return gdb_sys_no_syscall;
2846 case 265:
2847 return gdb_sys_statfs64;
2848 case 266:
2849 return gdb_sys_fstatfs64;
2850 case 267:
2851 return gdb_sys_remap_file_pages;
2852 /* 268-270 reserved */
2853 /* 271-277 handled below */
2854 case 278:
2855 return gdb_sys_add_key;
2856 case 279:
2857 return gdb_sys_request_key;
2858 case 280:
2859 return gdb_sys_keyctl;
2860 case 281:
2861 return gdb_sys_waitid;
2862 /* 282-312 handled below */
2863 case 293:
2864 if (abi == ABI_LINUX_S390)
2865 return gdb_sys_fstatat64;
2866 return gdb_sys_newfstatat;
2867 /* 313+ not yet supported */
2868 default:
2869 {
2870 int ret;
2871
2872 /* Most "old" syscalls copied from i386. */
2873 if (syscall <= 221)
2874 ret = syscall;
2875 /* xattr syscalls. */
2876 else if (syscall >= 224 && syscall <= 235)
2877 ret = syscall + 2;
2878 /* timer syscalls. */
2879 else if (syscall >= 254 && syscall <= 262)
2880 ret = syscall + 5;
2881 /* mq_* and kexec_load */
2882 else if (syscall >= 271 && syscall <= 277)
2883 ret = syscall + 6;
2884 /* ioprio_set .. epoll_pwait */
2885 else if (syscall >= 282 && syscall <= 312)
2886 ret = syscall + 7;
2887 else
2888 ret = gdb_sys_no_syscall;
2889
2890 return (enum gdb_syscall) ret;
2891 }
2892 }
2893 }
2894
2895 static int
2896 s390_linux_syscall_record (struct regcache *regcache, LONGEST syscall_native)
2897 {
2898 struct gdbarch *gdbarch = get_regcache_arch (regcache);
2899 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2900 int ret;
2901 enum gdb_syscall syscall_gdb;
2902
2903 /* On s390, syscall number can be passed either as immediate field of svc
2904 instruction, or in %r1 (with svc 0). */
2905 if (syscall_native == 0)
2906 regcache_raw_read_signed (regcache, S390_R1_REGNUM, &syscall_native);
2907
2908 syscall_gdb = s390_canonicalize_syscall (syscall_native, tdep->abi);
2909
2910 if (syscall_gdb < 0)
2911 {
2912 printf_unfiltered (_("Process record and replay target doesn't "
2913 "support syscall number %s\n"),
2914 plongest (syscall_native));
2915 return -1;
2916 }
2917
2918 if (syscall_gdb == gdb_sys_sigreturn
2919 || syscall_gdb == gdb_sys_rt_sigreturn)
2920 {
2921 if (s390_all_but_pc_registers_record (regcache))
2922 return -1;
2923 return 0;
2924 }
2925
2926 if (tdep->abi == ABI_LINUX_ZSERIES)
2927 ret = record_linux_system_call (syscall_gdb, regcache,
2928 &s390x_linux_record_tdep);
2929 else
2930 ret = record_linux_system_call (syscall_gdb, regcache,
2931 &s390_linux_record_tdep);
2932
2933 if (ret)
2934 return ret;
2935
2936 /* Record the return value of the system call. */
2937 if (record_full_arch_list_add_reg (regcache, S390_R2_REGNUM))
2938 return -1;
2939
2940 return 0;
2941 }
2942
2943 static int
2944 s390_linux_record_signal (struct gdbarch *gdbarch, struct regcache *regcache,
2945 enum gdb_signal signal)
2946 {
2947 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2948 /* There are two kinds of signal frames on s390. rt_sigframe is always
2949 the larger one, so don't even bother with sigframe. */
2950 const int sizeof_rt_sigframe = (tdep->abi == ABI_LINUX_ZSERIES ?
2951 160 + 8 + 128 + 1024 : 96 + 8 + 128 + 1000);
2952 ULONGEST sp;
2953 int i;
2954
2955 for (i = 0; i < 16; i++)
2956 {
2957 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + i))
2958 return -1;
2959 if (tdep->gpr_full_regnum != -1)
2960 if (record_full_arch_list_add_reg (regcache, S390_R0_UPPER_REGNUM + i))
2961 return -1;
2962 }
2963 if (record_full_arch_list_add_reg (regcache, S390_PSWA_REGNUM))
2964 return -1;
2965 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
2966 return -1;
2967
2968 /* Record the change in the stack.
2969 frame-size = sizeof (struct rt_sigframe) + SIGNAL_FRAMESIZE */
2970 regcache_raw_read_unsigned (regcache, S390_SP_REGNUM, &sp);
2971 sp -= sizeof_rt_sigframe;
2972
2973 if (record_full_arch_list_add_mem (sp, sizeof_rt_sigframe))
2974 return -1;
2975
2976 if (record_full_arch_list_add_end ())
2977 return -1;
2978
2979 return 0;
2980 }
2981
2982 /* Frame base handling. */
2983
2984 static CORE_ADDR
2985 s390_frame_base_address (struct frame_info *this_frame, void **this_cache)
2986 {
2987 struct s390_unwind_cache *info
2988 = s390_frame_unwind_cache (this_frame, this_cache);
2989 return info->frame_base;
2990 }
2991
2992 static CORE_ADDR
2993 s390_local_base_address (struct frame_info *this_frame, void **this_cache)
2994 {
2995 struct s390_unwind_cache *info
2996 = s390_frame_unwind_cache (this_frame, this_cache);
2997 return info->local_base;
2998 }
2999
3000 static const struct frame_base s390_frame_base = {
3001 &s390_frame_unwind,
3002 s390_frame_base_address,
3003 s390_local_base_address,
3004 s390_local_base_address
3005 };
3006
3007 static CORE_ADDR
3008 s390_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame)
3009 {
3010 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
3011 ULONGEST pc;
3012 pc = frame_unwind_register_unsigned (next_frame, tdep->pc_regnum);
3013 return gdbarch_addr_bits_remove (gdbarch, pc);
3014 }
3015
3016 static CORE_ADDR
3017 s390_unwind_sp (struct gdbarch *gdbarch, struct frame_info *next_frame)
3018 {
3019 ULONGEST sp;
3020 sp = frame_unwind_register_unsigned (next_frame, S390_SP_REGNUM);
3021 return gdbarch_addr_bits_remove (gdbarch, sp);
3022 }
3023
3024
3025 /* DWARF-2 frame support. */
3026
3027 static struct value *
3028 s390_dwarf2_prev_register (struct frame_info *this_frame, void **this_cache,
3029 int regnum)
3030 {
3031 return s390_unwind_pseudo_register (this_frame, regnum);
3032 }
3033
3034 static void
3035 s390_dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
3036 struct dwarf2_frame_state_reg *reg,
3037 struct frame_info *this_frame)
3038 {
3039 /* The condition code (and thus PSW mask) is call-clobbered. */
3040 if (regnum == S390_PSWM_REGNUM)
3041 reg->how = DWARF2_FRAME_REG_UNDEFINED;
3042
3043 /* The PSW address unwinds to the return address. */
3044 else if (regnum == S390_PSWA_REGNUM)
3045 reg->how = DWARF2_FRAME_REG_RA;
3046
3047 /* Fixed registers are call-saved or call-clobbered
3048 depending on the ABI in use. */
3049 else if (regnum < S390_NUM_REGS)
3050 {
3051 if (s390_register_call_saved (gdbarch, regnum))
3052 reg->how = DWARF2_FRAME_REG_SAME_VALUE;
3053 else
3054 reg->how = DWARF2_FRAME_REG_UNDEFINED;
3055 }
3056
3057 /* We install a special function to unwind pseudos. */
3058 else
3059 {
3060 reg->how = DWARF2_FRAME_REG_FN;
3061 reg->loc.fn = s390_dwarf2_prev_register;
3062 }
3063 }
3064
3065
3066 /* Dummy function calls. */
3067
3068 /* Unwrap any single-field structs in TYPE and return the effective
3069 "inner" type. E.g., yield "float" for all these cases:
3070
3071 float x;
3072 struct { float x };
3073 struct { struct { float x; } x; };
3074 struct { struct { struct { float x; } x; } x; };
3075
3076 However, if an inner type is smaller than MIN_SIZE, abort the
3077 unwrapping. */
3078
3079 static struct type *
3080 s390_effective_inner_type (struct type *type, unsigned int min_size)
3081 {
3082 while (TYPE_CODE (type) == TYPE_CODE_STRUCT
3083 && TYPE_NFIELDS (type) == 1)
3084 {
3085 struct type *inner = check_typedef (TYPE_FIELD_TYPE (type, 0));
3086
3087 if (TYPE_LENGTH (inner) < min_size)
3088 break;
3089 type = inner;
3090 }
3091
3092 return type;
3093 }
3094
3095 /* Return non-zero if TYPE should be passed like "float" or
3096 "double". */
3097
3098 static int
3099 s390_function_arg_float (struct type *type)
3100 {
3101 /* Note that long double as well as complex types are intentionally
3102 excluded. */
3103 if (TYPE_LENGTH (type) > 8)
3104 return 0;
3105
3106 /* A struct containing just a float or double is passed like a float
3107 or double. */
3108 type = s390_effective_inner_type (type, 0);
3109
3110 return (TYPE_CODE (type) == TYPE_CODE_FLT
3111 || TYPE_CODE (type) == TYPE_CODE_DECFLOAT);
3112 }
3113
3114 /* Return non-zero if TYPE should be passed like a vector. */
3115
3116 static int
3117 s390_function_arg_vector (struct type *type)
3118 {
3119 if (TYPE_LENGTH (type) > 16)
3120 return 0;
3121
3122 /* Structs containing just a vector are passed like a vector. */
3123 type = s390_effective_inner_type (type, TYPE_LENGTH (type));
3124
3125 return TYPE_CODE (type) == TYPE_CODE_ARRAY && TYPE_VECTOR (type);
3126 }
3127
3128 /* Determine whether N is a power of two. */
3129
3130 static int
3131 is_power_of_two (unsigned int n)
3132 {
3133 return n && ((n & (n - 1)) == 0);
3134 }
3135
3136 /* For an argument whose type is TYPE and which is not passed like a
3137 float or vector, return non-zero if it should be passed like "int"
3138 or "long long". */
3139
3140 static int
3141 s390_function_arg_integer (struct type *type)
3142 {
3143 enum type_code code = TYPE_CODE (type);
3144
3145 if (TYPE_LENGTH (type) > 8)
3146 return 0;
3147
3148 if (code == TYPE_CODE_INT
3149 || code == TYPE_CODE_ENUM
3150 || code == TYPE_CODE_RANGE
3151 || code == TYPE_CODE_CHAR
3152 || code == TYPE_CODE_BOOL
3153 || code == TYPE_CODE_PTR
3154 || code == TYPE_CODE_REF)
3155 return 1;
3156
3157 return ((code == TYPE_CODE_UNION || code == TYPE_CODE_STRUCT)
3158 && is_power_of_two (TYPE_LENGTH (type)));
3159 }
3160
3161 /* Argument passing state: Internal data structure passed to helper
3162 routines of s390_push_dummy_call. */
3163
3164 struct s390_arg_state
3165 {
3166 /* Register cache, or NULL, if we are in "preparation mode". */
3167 struct regcache *regcache;
3168 /* Next available general/floating-point/vector register for
3169 argument passing. */
3170 int gr, fr, vr;
3171 /* Current pointer to copy area (grows downwards). */
3172 CORE_ADDR copy;
3173 /* Current pointer to parameter area (grows upwards). */
3174 CORE_ADDR argp;
3175 };
3176
3177 /* Prepare one argument ARG for a dummy call and update the argument
3178 passing state AS accordingly. If the regcache field in AS is set,
3179 operate in "write mode" and write ARG into the inferior. Otherwise
3180 run "preparation mode" and skip all updates to the inferior. */
3181
3182 static void
3183 s390_handle_arg (struct s390_arg_state *as, struct value *arg,
3184 struct gdbarch_tdep *tdep, int word_size,
3185 enum bfd_endian byte_order, int is_unnamed)
3186 {
3187 struct type *type = check_typedef (value_type (arg));
3188 unsigned int length = TYPE_LENGTH (type);
3189 int write_mode = as->regcache != NULL;
3190
3191 if (s390_function_arg_float (type))
3192 {
3193 /* The GNU/Linux for S/390 ABI uses FPRs 0 and 2 to pass
3194 arguments. The GNU/Linux for zSeries ABI uses 0, 2, 4, and
3195 6. */
3196 if (as->fr <= (tdep->abi == ABI_LINUX_S390 ? 2 : 6))
3197 {
3198 /* When we store a single-precision value in an FP register,
3199 it occupies the leftmost bits. */
3200 if (write_mode)
3201 regcache_cooked_write_part (as->regcache,
3202 S390_F0_REGNUM + as->fr,
3203 0, length,
3204 value_contents (arg));
3205 as->fr += 2;
3206 }
3207 else
3208 {
3209 /* When we store a single-precision value in a stack slot,
3210 it occupies the rightmost bits. */
3211 as->argp = align_up (as->argp + length, word_size);
3212 if (write_mode)
3213 write_memory (as->argp - length, value_contents (arg),
3214 length);
3215 }
3216 }
3217 else if (tdep->vector_abi == S390_VECTOR_ABI_128
3218 && s390_function_arg_vector (type))
3219 {
3220 static const char use_vr[] = {24, 26, 28, 30, 25, 27, 29, 31};
3221
3222 if (!is_unnamed && as->vr < ARRAY_SIZE (use_vr))
3223 {
3224 int regnum = S390_V24_REGNUM + use_vr[as->vr] - 24;
3225
3226 if (write_mode)
3227 regcache_cooked_write_part (as->regcache, regnum,
3228 0, length,
3229 value_contents (arg));
3230 as->vr++;
3231 }
3232 else
3233 {
3234 if (write_mode)
3235 write_memory (as->argp, value_contents (arg), length);
3236 as->argp = align_up (as->argp + length, word_size);
3237 }
3238 }
3239 else if (s390_function_arg_integer (type) && length <= word_size)
3240 {
3241 /* Initialize it just to avoid a GCC false warning. */
3242 ULONGEST val = 0;
3243
3244 if (write_mode)
3245 {
3246 /* Place value in least significant bits of the register or
3247 memory word and sign- or zero-extend to full word size.
3248 This also applies to a struct or union. */
3249 val = TYPE_UNSIGNED (type)
3250 ? extract_unsigned_integer (value_contents (arg),
3251 length, byte_order)
3252 : extract_signed_integer (value_contents (arg),
3253 length, byte_order);
3254 }
3255
3256 if (as->gr <= 6)
3257 {
3258 if (write_mode)
3259 regcache_cooked_write_unsigned (as->regcache,
3260 S390_R0_REGNUM + as->gr,
3261 val);
3262 as->gr++;
3263 }
3264 else
3265 {
3266 if (write_mode)
3267 write_memory_unsigned_integer (as->argp, word_size,
3268 byte_order, val);
3269 as->argp += word_size;
3270 }
3271 }
3272 else if (s390_function_arg_integer (type) && length == 8)
3273 {
3274 if (as->gr <= 5)
3275 {
3276 if (write_mode)
3277 {
3278 regcache_cooked_write (as->regcache,
3279 S390_R0_REGNUM + as->gr,
3280 value_contents (arg));
3281 regcache_cooked_write (as->regcache,
3282 S390_R0_REGNUM + as->gr + 1,
3283 value_contents (arg) + word_size);
3284 }
3285 as->gr += 2;
3286 }
3287 else
3288 {
3289 /* If we skipped r6 because we couldn't fit a DOUBLE_ARG
3290 in it, then don't go back and use it again later. */
3291 as->gr = 7;
3292
3293 if (write_mode)
3294 write_memory (as->argp, value_contents (arg), length);
3295 as->argp += length;
3296 }
3297 }
3298 else
3299 {
3300 /* This argument type is never passed in registers. Place the
3301 value in the copy area and pass a pointer to it. Use 8-byte
3302 alignment as a conservative assumption. */
3303 as->copy = align_down (as->copy - length, 8);
3304 if (write_mode)
3305 write_memory (as->copy, value_contents (arg), length);
3306
3307 if (as->gr <= 6)
3308 {
3309 if (write_mode)
3310 regcache_cooked_write_unsigned (as->regcache,
3311 S390_R0_REGNUM + as->gr,
3312 as->copy);
3313 as->gr++;
3314 }
3315 else
3316 {
3317 if (write_mode)
3318 write_memory_unsigned_integer (as->argp, word_size,
3319 byte_order, as->copy);
3320 as->argp += word_size;
3321 }
3322 }
3323 }
3324
3325 /* Put the actual parameter values pointed to by ARGS[0..NARGS-1] in
3326 place to be passed to a function, as specified by the "GNU/Linux
3327 for S/390 ELF Application Binary Interface Supplement".
3328
3329 SP is the current stack pointer. We must put arguments, links,
3330 padding, etc. whereever they belong, and return the new stack
3331 pointer value.
3332
3333 If STRUCT_RETURN is non-zero, then the function we're calling is
3334 going to return a structure by value; STRUCT_ADDR is the address of
3335 a block we've allocated for it on the stack.
3336
3337 Our caller has taken care of any type promotions needed to satisfy
3338 prototypes or the old K&R argument-passing rules. */
3339
3340 static CORE_ADDR
3341 s390_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
3342 struct regcache *regcache, CORE_ADDR bp_addr,
3343 int nargs, struct value **args, CORE_ADDR sp,
3344 int struct_return, CORE_ADDR struct_addr)
3345 {
3346 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
3347 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
3348 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
3349 int i;
3350 struct s390_arg_state arg_state, arg_prep;
3351 CORE_ADDR param_area_start, new_sp;
3352 struct type *ftype = check_typedef (value_type (function));
3353
3354 if (TYPE_CODE (ftype) == TYPE_CODE_PTR)
3355 ftype = check_typedef (TYPE_TARGET_TYPE (ftype));
3356
3357 arg_prep.copy = sp;
3358 arg_prep.gr = struct_return ? 3 : 2;
3359 arg_prep.fr = 0;
3360 arg_prep.vr = 0;
3361 arg_prep.argp = 0;
3362 arg_prep.regcache = NULL;
3363
3364 /* Initialize arg_state for "preparation mode". */
3365 arg_state = arg_prep;
3366
3367 /* Update arg_state.copy with the start of the reference-to-copy area
3368 and arg_state.argp with the size of the parameter area. */
3369 for (i = 0; i < nargs; i++)
3370 s390_handle_arg (&arg_state, args[i], tdep, word_size, byte_order,
3371 TYPE_VARARGS (ftype) && i >= TYPE_NFIELDS (ftype));
3372
3373 param_area_start = align_down (arg_state.copy - arg_state.argp, 8);
3374
3375 /* Allocate the standard frame areas: the register save area, the
3376 word reserved for the compiler, and the back chain pointer. */
3377 new_sp = param_area_start - (16 * word_size + 32);
3378
3379 /* Now we have the final stack pointer. Make sure we didn't
3380 underflow; on 31-bit, this would result in addresses with the
3381 high bit set, which causes confusion elsewhere. Note that if we
3382 error out here, stack and registers remain untouched. */
3383 if (gdbarch_addr_bits_remove (gdbarch, new_sp) != new_sp)
3384 error (_("Stack overflow"));
3385
3386 /* Pass the structure return address in general register 2. */
3387 if (struct_return)
3388 regcache_cooked_write_unsigned (regcache, S390_R2_REGNUM, struct_addr);
3389
3390 /* Initialize arg_state for "write mode". */
3391 arg_state = arg_prep;
3392 arg_state.argp = param_area_start;
3393 arg_state.regcache = regcache;
3394
3395 /* Write all parameters. */
3396 for (i = 0; i < nargs; i++)
3397 s390_handle_arg (&arg_state, args[i], tdep, word_size, byte_order,
3398 TYPE_VARARGS (ftype) && i >= TYPE_NFIELDS (ftype));
3399
3400 /* Store return PSWA. In 31-bit mode, keep addressing mode bit. */
3401 if (word_size == 4)
3402 {
3403 ULONGEST pswa;
3404 regcache_cooked_read_unsigned (regcache, S390_PSWA_REGNUM, &pswa);
3405 bp_addr = (bp_addr & 0x7fffffff) | (pswa & 0x80000000);
3406 }
3407 regcache_cooked_write_unsigned (regcache, S390_RETADDR_REGNUM, bp_addr);
3408
3409 /* Store updated stack pointer. */
3410 regcache_cooked_write_unsigned (regcache, S390_SP_REGNUM, new_sp);
3411
3412 /* We need to return the 'stack part' of the frame ID,
3413 which is actually the top of the register save area. */
3414 return param_area_start;
3415 }
3416
3417 /* Assuming THIS_FRAME is a dummy, return the frame ID of that
3418 dummy frame. The frame ID's base needs to match the TOS value
3419 returned by push_dummy_call, and the PC match the dummy frame's
3420 breakpoint. */
3421 static struct frame_id
3422 s390_dummy_id (struct gdbarch *gdbarch, struct frame_info *this_frame)
3423 {
3424 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
3425 CORE_ADDR sp = get_frame_register_unsigned (this_frame, S390_SP_REGNUM);
3426 sp = gdbarch_addr_bits_remove (gdbarch, sp);
3427
3428 return frame_id_build (sp + 16*word_size + 32,
3429 get_frame_pc (this_frame));
3430 }
3431
3432 static CORE_ADDR
3433 s390_frame_align (struct gdbarch *gdbarch, CORE_ADDR addr)
3434 {
3435 /* Both the 32- and 64-bit ABI's say that the stack pointer should
3436 always be aligned on an eight-byte boundary. */
3437 return (addr & -8);
3438 }
3439
3440
3441 /* Helper for s390_return_value: Set or retrieve a function return
3442 value if it resides in a register. */
3443
3444 static void
3445 s390_register_return_value (struct gdbarch *gdbarch, struct type *type,
3446 struct regcache *regcache,
3447 gdb_byte *out, const gdb_byte *in)
3448 {
3449 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
3450 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
3451 int length = TYPE_LENGTH (type);
3452 int code = TYPE_CODE (type);
3453
3454 if (code == TYPE_CODE_FLT || code == TYPE_CODE_DECFLOAT)
3455 {
3456 /* Float-like value: left-aligned in f0. */
3457 if (in != NULL)
3458 regcache_cooked_write_part (regcache, S390_F0_REGNUM,
3459 0, length, in);
3460 else
3461 regcache_cooked_read_part (regcache, S390_F0_REGNUM,
3462 0, length, out);
3463 }
3464 else if (code == TYPE_CODE_ARRAY)
3465 {
3466 /* Vector: left-aligned in v24. */
3467 if (in != NULL)
3468 regcache_cooked_write_part (regcache, S390_V24_REGNUM,
3469 0, length, in);
3470 else
3471 regcache_cooked_read_part (regcache, S390_V24_REGNUM,
3472 0, length, out);
3473 }
3474 else if (length <= word_size)
3475 {
3476 /* Integer: zero- or sign-extended in r2. */
3477 if (out != NULL)
3478 regcache_cooked_read_part (regcache, S390_R2_REGNUM,
3479 word_size - length, length, out);
3480 else if (TYPE_UNSIGNED (type))
3481 regcache_cooked_write_unsigned
3482 (regcache, S390_R2_REGNUM,
3483 extract_unsigned_integer (in, length, byte_order));
3484 else
3485 regcache_cooked_write_signed
3486 (regcache, S390_R2_REGNUM,
3487 extract_signed_integer (in, length, byte_order));
3488 }
3489 else if (length == 2 * word_size)
3490 {
3491 /* Double word: in r2 and r3. */
3492 if (in != NULL)
3493 {
3494 regcache_cooked_write (regcache, S390_R2_REGNUM, in);
3495 regcache_cooked_write (regcache, S390_R3_REGNUM,
3496 in + word_size);
3497 }
3498 else
3499 {
3500 regcache_cooked_read (regcache, S390_R2_REGNUM, out);
3501 regcache_cooked_read (regcache, S390_R3_REGNUM,
3502 out + word_size);
3503 }
3504 }
3505 else
3506 internal_error (__FILE__, __LINE__, _("invalid return type"));
3507 }
3508
3509
3510 /* Implement the 'return_value' gdbarch method. */
3511
3512 static enum return_value_convention
3513 s390_return_value (struct gdbarch *gdbarch, struct value *function,
3514 struct type *type, struct regcache *regcache,
3515 gdb_byte *out, const gdb_byte *in)
3516 {
3517 enum return_value_convention rvc;
3518
3519 type = check_typedef (type);
3520
3521 switch (TYPE_CODE (type))
3522 {
3523 case TYPE_CODE_STRUCT:
3524 case TYPE_CODE_UNION:
3525 case TYPE_CODE_COMPLEX:
3526 rvc = RETURN_VALUE_STRUCT_CONVENTION;
3527 break;
3528 case TYPE_CODE_ARRAY:
3529 rvc = (gdbarch_tdep (gdbarch)->vector_abi == S390_VECTOR_ABI_128
3530 && TYPE_LENGTH (type) <= 16 && TYPE_VECTOR (type))
3531 ? RETURN_VALUE_REGISTER_CONVENTION
3532 : RETURN_VALUE_STRUCT_CONVENTION;
3533 break;
3534 default:
3535 rvc = TYPE_LENGTH (type) <= 8
3536 ? RETURN_VALUE_REGISTER_CONVENTION
3537 : RETURN_VALUE_STRUCT_CONVENTION;
3538 }
3539
3540 if (in != NULL || out != NULL)
3541 {
3542 if (rvc == RETURN_VALUE_REGISTER_CONVENTION)
3543 s390_register_return_value (gdbarch, type, regcache, out, in);
3544 else if (in != NULL)
3545 error (_("Cannot set function return value."));
3546 else
3547 error (_("Function return value unknown."));
3548 }
3549
3550 return rvc;
3551 }
3552
3553
3554 /* Breakpoints. */
3555 constexpr gdb_byte s390_break_insn[] = { 0x0, 0x1 };
3556
3557 typedef BP_MANIPULATION (s390_break_insn) s390_breakpoint;
3558
3559 /* Address handling. */
3560
3561 static CORE_ADDR
3562 s390_addr_bits_remove (struct gdbarch *gdbarch, CORE_ADDR addr)
3563 {
3564 return addr & 0x7fffffff;
3565 }
3566
3567 static int
3568 s390_address_class_type_flags (int byte_size, int dwarf2_addr_class)
3569 {
3570 if (byte_size == 4)
3571 return TYPE_INSTANCE_FLAG_ADDRESS_CLASS_1;
3572 else
3573 return 0;
3574 }
3575
3576 static const char *
3577 s390_address_class_type_flags_to_name (struct gdbarch *gdbarch, int type_flags)
3578 {
3579 if (type_flags & TYPE_INSTANCE_FLAG_ADDRESS_CLASS_1)
3580 return "mode32";
3581 else
3582 return NULL;
3583 }
3584
3585 static int
3586 s390_address_class_name_to_type_flags (struct gdbarch *gdbarch,
3587 const char *name,
3588 int *type_flags_ptr)
3589 {
3590 if (strcmp (name, "mode32") == 0)
3591 {
3592 *type_flags_ptr = TYPE_INSTANCE_FLAG_ADDRESS_CLASS_1;
3593 return 1;
3594 }
3595 else
3596 return 0;
3597 }
3598
3599 /* Implement gdbarch_gcc_target_options. GCC does not know "-m32" or
3600 "-mcmodel=large". */
3601
3602 static char *
3603 s390_gcc_target_options (struct gdbarch *gdbarch)
3604 {
3605 return xstrdup (gdbarch_ptr_bit (gdbarch) == 64 ? "-m64" : "-m31");
3606 }
3607
3608 /* Implement gdbarch_gnu_triplet_regexp. Target triplets are "s390-*"
3609 for 31-bit and "s390x-*" for 64-bit, while the BFD arch name is
3610 always "s390". Note that an s390x compiler supports "-m31" as
3611 well. */
3612
3613 static const char *
3614 s390_gnu_triplet_regexp (struct gdbarch *gdbarch)
3615 {
3616 return "s390x?";
3617 }
3618
3619 /* Implementation of `gdbarch_stap_is_single_operand', as defined in
3620 gdbarch.h. */
3621
3622 static int
3623 s390_stap_is_single_operand (struct gdbarch *gdbarch, const char *s)
3624 {
3625 return ((isdigit (*s) && s[1] == '(' && s[2] == '%') /* Displacement
3626 or indirection. */
3627 || *s == '%' /* Register access. */
3628 || isdigit (*s)); /* Literal number. */
3629 }
3630
3631 /* Process record and replay helpers. */
3632
3633 /* Takes the intermediate sum of address calculations and masks off upper
3634 bits according to current addressing mode. */
3635
3636 static CORE_ADDR
3637 s390_record_address_mask (struct gdbarch *gdbarch, struct regcache *regcache,
3638 CORE_ADDR val) {
3639 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
3640 ULONGEST pswm, pswa;
3641 int am;
3642 if (tdep->abi == ABI_LINUX_S390)
3643 {
3644 regcache_raw_read_unsigned (regcache, S390_PSWA_REGNUM, &pswa);
3645 am = pswa >> 31 & 1;
3646 }
3647 else
3648 {
3649 regcache_raw_read_unsigned (regcache, S390_PSWM_REGNUM, &pswm);
3650 am = pswm >> 31 & 3;
3651 }
3652 switch (am)
3653 {
3654 case 0:
3655 return val & 0xffffff;
3656 case 1:
3657 return val & 0x7fffffff;
3658 case 3:
3659 return val;
3660 default:
3661 fprintf_unfiltered (gdb_stdlog, "Warning: Addressing mode %d used.", am);
3662 return 0;
3663 }
3664 }
3665
3666 /* Calculates memory address using pre-calculated index, raw instruction word
3667 with b and d/dl fields, and raw instruction byte with dh field. Index and
3668 dh should be set to 0 if unused. */
3669
3670 static CORE_ADDR
3671 s390_record_calc_disp_common (struct gdbarch *gdbarch, struct regcache *regcache,
3672 ULONGEST x, uint16_t bd, int8_t dh)
3673 {
3674 uint8_t rb = bd >> 12 & 0xf;
3675 int32_t d = (bd & 0xfff) | ((int32_t)dh << 12);
3676 ULONGEST b;
3677 CORE_ADDR res = d + x;
3678 if (rb)
3679 {
3680 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + rb, &b);
3681 res += b;
3682 }
3683 return s390_record_address_mask (gdbarch, regcache, res);
3684 }
3685
3686 /* Calculates memory address using raw x, b + d/dl, dh fields from
3687 instruction. rx and dh should be set to 0 if unused. */
3688
3689 static CORE_ADDR
3690 s390_record_calc_disp (struct gdbarch *gdbarch, struct regcache *regcache,
3691 uint8_t rx, uint16_t bd, int8_t dh)
3692 {
3693 ULONGEST x = 0;
3694 if (rx)
3695 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + rx, &x);
3696 return s390_record_calc_disp_common (gdbarch, regcache, x, bd, dh);
3697 }
3698
3699 /* Calculates memory address for VSCE[GF] instructions. */
3700
3701 static int
3702 s390_record_calc_disp_vsce (struct gdbarch *gdbarch, struct regcache *regcache,
3703 uint8_t vx, uint8_t el, uint8_t es, uint16_t bd,
3704 int8_t dh, CORE_ADDR *res)
3705 {
3706 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
3707 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
3708 ULONGEST x;
3709 gdb_byte buf[16];
3710 if (tdep->v0_full_regnum == -1 || el * es >= 16)
3711 return -1;
3712 if (vx < 16)
3713 regcache_cooked_read (regcache, tdep->v0_full_regnum + vx, buf);
3714 else
3715 regcache_raw_read (regcache, S390_V16_REGNUM + vx - 16, buf);
3716 x = extract_unsigned_integer (buf + el * es, es, byte_order);
3717 *res = s390_record_calc_disp_common (gdbarch, regcache, x, bd, dh);
3718 return 0;
3719 }
3720
3721 /* Calculates memory address for instructions with relative long addressing. */
3722
3723 static CORE_ADDR
3724 s390_record_calc_rl (struct gdbarch *gdbarch, struct regcache *regcache,
3725 CORE_ADDR addr, uint16_t i1, uint16_t i2)
3726 {
3727 int32_t ri = i1 << 16 | i2;
3728 return s390_record_address_mask (gdbarch, regcache, addr + (LONGEST)ri * 2);
3729 }
3730
3731 /* Population count helper. */
3732
3733 static int s390_popcnt (unsigned int x) {
3734 int res = 0;
3735 while (x)
3736 {
3737 if (x & 1)
3738 res++;
3739 x >>= 1;
3740 }
3741 return res;
3742 }
3743
3744 /* Record 64-bit register. */
3745
3746 static int
3747 s390_record_gpr_g (struct gdbarch *gdbarch, struct regcache *regcache, int i)
3748 {
3749 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
3750 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + i))
3751 return -1;
3752 if (tdep->abi == ABI_LINUX_S390)
3753 if (record_full_arch_list_add_reg (regcache, S390_R0_UPPER_REGNUM + i))
3754 return -1;
3755 return 0;
3756 }
3757
3758 /* Record high 32 bits of a register. */
3759
3760 static int
3761 s390_record_gpr_h (struct gdbarch *gdbarch, struct regcache *regcache, int i)
3762 {
3763 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
3764 if (tdep->abi == ABI_LINUX_S390)
3765 {
3766 if (record_full_arch_list_add_reg (regcache, S390_R0_UPPER_REGNUM + i))
3767 return -1;
3768 }
3769 else
3770 {
3771 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + i))
3772 return -1;
3773 }
3774 return 0;
3775 }
3776
3777 /* Record vector register. */
3778
3779 static int
3780 s390_record_vr (struct gdbarch *gdbarch, struct regcache *regcache, int i)
3781 {
3782 if (i < 16)
3783 {
3784 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + i))
3785 return -1;
3786 if (record_full_arch_list_add_reg (regcache, S390_V0_LOWER_REGNUM + i))
3787 return -1;
3788 }
3789 else
3790 {
3791 if (record_full_arch_list_add_reg (regcache, S390_V16_REGNUM + i - 16))
3792 return -1;
3793 }
3794 return 0;
3795 }
3796
3797 static int
3798 s390_process_record (struct gdbarch *gdbarch, struct regcache *regcache,
3799 CORE_ADDR addr)
3800 {
3801 uint16_t insn[3] = {0};
3802 /* Instruction as bytes. */
3803 uint8_t ibyte[6];
3804 /* Instruction as nibbles. */
3805 uint8_t inib[12];
3806 /* Instruction vector registers. */
3807 uint8_t ivec[4];
3808 CORE_ADDR oaddr, oaddr2, oaddr3;
3809 ULONGEST tmp;
3810 int i, n;
3811 /* if EX/EXRL instruction used, here's the reg parameter */
3812 int ex = -1;
3813 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
3814
3815 /* Attempting to use EX or EXRL jumps back here */
3816 ex:
3817
3818 /* Read instruction. */
3819 insn[0] = read_memory_unsigned_integer (addr, 2, byte_order);
3820 /* If execute was involved, do the adjustment. */
3821 if (ex != -1)
3822 insn[0] |= ex & 0xff;
3823 /* Two highest bits determine instruction size. */
3824 if (insn[0] >= 0x4000)
3825 insn[1] = read_memory_unsigned_integer (addr+2, 2, byte_order);
3826 else
3827 /* Not necessary, but avoids uninitialized variable warnings. */
3828 insn[1] = 0;
3829 if (insn[0] >= 0xc000)
3830 insn[2] = read_memory_unsigned_integer (addr+4, 2, byte_order);
3831 else
3832 insn[2] = 0;
3833 /* Split instruction into bytes and nibbles. */
3834 for (i = 0; i < 3; i++)
3835 {
3836 ibyte[i*2] = insn[i] >> 8 & 0xff;
3837 ibyte[i*2+1] = insn[i] & 0xff;
3838 }
3839 for (i = 0; i < 6; i++)
3840 {
3841 inib[i*2] = ibyte[i] >> 4 & 0xf;
3842 inib[i*2+1] = ibyte[i] & 0xf;
3843 }
3844 /* Compute vector registers, if applicable. */
3845 ivec[0] = (inib[9] >> 3 & 1) << 4 | inib[2];
3846 ivec[1] = (inib[9] >> 2 & 1) << 4 | inib[3];
3847 ivec[2] = (inib[9] >> 1 & 1) << 4 | inib[4];
3848 ivec[3] = (inib[9] >> 0 & 1) << 4 | inib[8];
3849
3850 switch (ibyte[0])
3851 {
3852 /* 0x00 undefined */
3853
3854 case 0x01:
3855 /* E-format instruction */
3856 switch (ibyte[1])
3857 {
3858 /* 0x00 undefined */
3859 /* 0x01 unsupported: PR - program return */
3860 /* 0x02 unsupported: UPT */
3861 /* 0x03 undefined */
3862 /* 0x04 privileged: PTFF - perform timing facility function */
3863 /* 0x05-0x06 undefined */
3864 /* 0x07 privileged: SCKPF - set clock programmable field */
3865 /* 0x08-0x09 undefined */
3866
3867 case 0x0a: /* PFPO - perform floating point operation */
3868 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
3869 if (!(tmp & 0x80000000u))
3870 {
3871 uint8_t ofc = tmp >> 16 & 0xff;
3872 switch (ofc)
3873 {
3874 case 0x00: /* HFP32 */
3875 case 0x01: /* HFP64 */
3876 case 0x05: /* BFP32 */
3877 case 0x06: /* BFP64 */
3878 case 0x08: /* DFP32 */
3879 case 0x09: /* DFP64 */
3880 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM))
3881 return -1;
3882 break;
3883 case 0x02: /* HFP128 */
3884 case 0x07: /* BFP128 */
3885 case 0x0a: /* DFP128 */
3886 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM))
3887 return -1;
3888 if (record_full_arch_list_add_reg (regcache, S390_F2_REGNUM))
3889 return -1;
3890 break;
3891 default:
3892 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown PFPO OFC %02x at %s.\n",
3893 ofc, paddress (gdbarch, addr));
3894 return -1;
3895 }
3896
3897 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
3898 return -1;
3899 }
3900 if (record_full_arch_list_add_reg (regcache, S390_R1_REGNUM))
3901 return -1;
3902 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
3903 return -1;
3904 break;
3905
3906 case 0x0b: /* TAM - test address mode */
3907 case 0x0c: /* SAM24 - set address mode 24 */
3908 case 0x0d: /* SAM31 - set address mode 31 */
3909 case 0x0e: /* SAM64 - set address mode 64 */
3910 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
3911 return -1;
3912 break;
3913
3914 /* 0x0f-0xfe undefined */
3915
3916 /* 0xff unsupported: TRAP */
3917
3918 default:
3919 goto UNKNOWN_OP;
3920 }
3921 break;
3922
3923 /* 0x02 undefined */
3924 /* 0x03 undefined */
3925
3926 case 0x04: /* SPM - set program mask */
3927 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
3928 return -1;
3929 break;
3930
3931 case 0x05: /* BALR - branch and link */
3932 case 0x45: /* BAL - branch and link */
3933 case 0x06: /* BCTR - branch on count */
3934 case 0x46: /* BCT - branch on count */
3935 case 0x0d: /* BASR - branch and save */
3936 case 0x4d: /* BAS - branch and save */
3937 case 0x84: /* BRXH - branch relative on index high */
3938 case 0x85: /* BRXLE - branch relative on index low or equal */
3939 case 0x86: /* BXH - branch on index high */
3940 case 0x87: /* BXLE - branch on index low or equal */
3941 /* BA[SL]* use native-size destination for linkage info, BCT*, BRX*, BX*
3942 use 32-bit destination as counter. */
3943 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
3944 return -1;
3945 break;
3946
3947 case 0x07: /* BCR - branch on condition */
3948 case 0x47: /* BC - branch on condition */
3949 /* No effect other than PC transfer. */
3950 break;
3951
3952 /* 0x08 undefined */
3953 /* 0x09 undefined */
3954
3955 case 0x0a:
3956 /* SVC - supervisor call */
3957 if (s390_linux_syscall_record (regcache, ibyte[1]))
3958 return -1;
3959 break;
3960
3961 case 0x0b: /* BSM - branch and set mode */
3962 if (inib[2])
3963 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
3964 return -1;
3965 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
3966 return -1;
3967 break;
3968
3969 case 0x0c: /* BASSM - branch and save and set mode */
3970 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
3971 return -1;
3972 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
3973 return -1;
3974 break;
3975
3976 case 0x0e: /* MVCL - move long [interruptible] */
3977 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[2], &tmp);
3978 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
3979 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[2] | 1), &tmp);
3980 tmp &= 0xffffff;
3981 if (record_full_arch_list_add_mem (oaddr, tmp))
3982 return -1;
3983 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
3984 return -1;
3985 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
3986 return -1;
3987 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
3988 return -1;
3989 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[3] | 1)))
3990 return -1;
3991 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
3992 return -1;
3993 break;
3994
3995 case 0x0f: /* CLCL - compare logical long [interruptible] */
3996 case 0xa9: /* CLCLE - compare logical long extended [partial] */
3997 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
3998 return -1;
3999 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
4000 return -1;
4001 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
4002 return -1;
4003 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[3] | 1)))
4004 return -1;
4005 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4006 return -1;
4007 break;
4008
4009 case 0x10: /* LPR - load positive */
4010 case 0x11: /* LNR - load negative */
4011 case 0x12: /* LTR - load and test */
4012 case 0x13: /* LCR - load complement */
4013 case 0x14: /* NR - and */
4014 case 0x16: /* OR - or */
4015 case 0x17: /* XR - xor */
4016 case 0x1a: /* AR - add */
4017 case 0x1b: /* SR - subtract */
4018 case 0x1e: /* ALR - add logical */
4019 case 0x1f: /* SLR - subtract logical */
4020 case 0x54: /* N - and */
4021 case 0x56: /* O - or */
4022 case 0x57: /* X - xor */
4023 case 0x5a: /* A - add */
4024 case 0x5b: /* S - subtract */
4025 case 0x5e: /* AL - add logical */
4026 case 0x5f: /* SL - subtract logical */
4027 case 0x4a: /* AH - add halfword */
4028 case 0x4b: /* SH - subtract halfword */
4029 case 0x8a: /* SRA - shift right single */
4030 case 0x8b: /* SLA - shift left single */
4031 case 0xbf: /* ICM - insert characters under mask */
4032 /* 32-bit destination + flags */
4033 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4034 return -1;
4035 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4036 return -1;
4037 break;
4038
4039 case 0x15: /* CLR - compare logical */
4040 case 0x55: /* CL - compare logical */
4041 case 0x19: /* CR - compare */
4042 case 0x29: /* CDR - compare */
4043 case 0x39: /* CER - compare */
4044 case 0x49: /* CH - compare halfword */
4045 case 0x59: /* C - compare */
4046 case 0x69: /* CD - compare */
4047 case 0x79: /* CE - compare */
4048 case 0x91: /* TM - test under mask */
4049 case 0x95: /* CLI - compare logical */
4050 case 0xbd: /* CLM - compare logical under mask */
4051 case 0xd5: /* CLC - compare logical */
4052 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4053 return -1;
4054 break;
4055
4056 case 0x18: /* LR - load */
4057 case 0x48: /* LH - load halfword */
4058 case 0x58: /* L - load */
4059 case 0x41: /* LA - load address */
4060 case 0x43: /* IC - insert character */
4061 case 0x4c: /* MH - multiply halfword */
4062 case 0x71: /* MS - multiply single */
4063 case 0x88: /* SRL - shift right single logical */
4064 case 0x89: /* SLL - shift left single logical */
4065 /* 32-bit, 8-bit (IC), or native width (LA) destination, no flags */
4066 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4067 return -1;
4068 break;
4069
4070 case 0x1c: /* MR - multiply */
4071 case 0x5c: /* M - multiply */
4072 case 0x1d: /* DR - divide */
4073 case 0x5d: /* D - divide */
4074 case 0x8c: /* SRDL - shift right double logical */
4075 case 0x8d: /* SLDL - shift left double logical */
4076 /* 32-bit pair destination, no flags */
4077 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4078 return -1;
4079 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
4080 return -1;
4081 break;
4082
4083 case 0x20: /* LPDR - load positive */
4084 case 0x30: /* LPER - load positive */
4085 case 0x21: /* LNDR - load negative */
4086 case 0x31: /* LNER - load negative */
4087 case 0x22: /* LTDR - load and test */
4088 case 0x32: /* LTER - load and test */
4089 case 0x23: /* LCDR - load complement */
4090 case 0x33: /* LCER - load complement */
4091 case 0x2a: /* ADR - add */
4092 case 0x3a: /* AER - add */
4093 case 0x6a: /* AD - add */
4094 case 0x7a: /* AE - add */
4095 case 0x2b: /* SDR - subtract */
4096 case 0x3b: /* SER - subtract */
4097 case 0x6b: /* SD - subtract */
4098 case 0x7b: /* SE - subtract */
4099 case 0x2e: /* AWR - add unnormalized */
4100 case 0x3e: /* AUR - add unnormalized */
4101 case 0x6e: /* AW - add unnormalized */
4102 case 0x7e: /* AU - add unnormalized */
4103 case 0x2f: /* SWR - subtract unnormalized */
4104 case 0x3f: /* SUR - subtract unnormalized */
4105 case 0x6f: /* SW - subtract unnormalized */
4106 case 0x7f: /* SU - subtract unnormalized */
4107 /* float destination + flags */
4108 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
4109 return -1;
4110 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4111 return -1;
4112 break;
4113
4114 case 0x24: /* HDR - halve */
4115 case 0x34: /* HER - halve */
4116 case 0x25: /* LDXR - load rounded */
4117 case 0x35: /* LEDR - load rounded */
4118 case 0x28: /* LDR - load */
4119 case 0x38: /* LER - load */
4120 case 0x68: /* LD - load */
4121 case 0x78: /* LE - load */
4122 case 0x2c: /* MDR - multiply */
4123 case 0x3c: /* MDER - multiply */
4124 case 0x6c: /* MD - multiply */
4125 case 0x7c: /* MDE - multiply */
4126 case 0x2d: /* DDR - divide */
4127 case 0x3d: /* DER - divide */
4128 case 0x6d: /* DD - divide */
4129 case 0x7d: /* DE - divide */
4130 /* float destination, no flags */
4131 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
4132 return -1;
4133 break;
4134
4135 case 0x26: /* MXR - multiply */
4136 case 0x27: /* MXDR - multiply */
4137 case 0x67: /* MXD - multiply */
4138 /* float pair destination, no flags */
4139 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
4140 return -1;
4141 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[2] | 2)))
4142 return -1;
4143 break;
4144
4145 case 0x36: /* AXR - add */
4146 case 0x37: /* SXR - subtract */
4147 /* float pair destination + flags */
4148 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
4149 return -1;
4150 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[2] | 2)))
4151 return -1;
4152 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4153 return -1;
4154 break;
4155
4156 case 0x40: /* STH - store halfword */
4157 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
4158 if (record_full_arch_list_add_mem (oaddr, 2))
4159 return -1;
4160 break;
4161
4162 case 0x42: /* STC - store character */
4163 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
4164 if (record_full_arch_list_add_mem (oaddr, 1))
4165 return -1;
4166 break;
4167
4168 case 0x44: /* EX - execute */
4169 if (ex != -1)
4170 {
4171 fprintf_unfiltered (gdb_stdlog, "Warning: Double execute at %s.\n",
4172 paddress (gdbarch, addr));
4173 return -1;
4174 }
4175 addr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
4176 if (inib[2])
4177 {
4178 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[2], &tmp);
4179 ex = tmp & 0xff;
4180 }
4181 else
4182 {
4183 ex = 0;
4184 }
4185 goto ex;
4186
4187 case 0x4e: /* CVD - convert to decimal */
4188 case 0x60: /* STD - store */
4189 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
4190 if (record_full_arch_list_add_mem (oaddr, 8))
4191 return -1;
4192 break;
4193
4194 case 0x4f: /* CVB - convert to binary */
4195 /* 32-bit gpr destination + FPC (DXC write) */
4196 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4197 return -1;
4198 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4199 return -1;
4200 break;
4201
4202 case 0x50: /* ST - store */
4203 case 0x70: /* STE - store */
4204 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
4205 if (record_full_arch_list_add_mem (oaddr, 4))
4206 return -1;
4207 break;
4208
4209 case 0x51: /* LAE - load address extended */
4210 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4211 return -1;
4212 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + inib[2]))
4213 return -1;
4214 break;
4215
4216 /* 0x52 undefined */
4217 /* 0x53 undefined */
4218
4219 /* 0x61-0x66 undefined */
4220
4221 /* 0x72-0x77 undefined */
4222
4223 /* 0x80 privileged: SSM - set system mask */
4224 /* 0x81 undefined */
4225 /* 0x82 privileged: LPSW - load PSW */
4226 /* 0x83 privileged: diagnose */
4227
4228 case 0x8e: /* SRDA - shift right double */
4229 case 0x8f: /* SLDA - shift left double */
4230 /* 32-bit pair destination + flags */
4231 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4232 return -1;
4233 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
4234 return -1;
4235 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4236 return -1;
4237 break;
4238
4239 case 0x90: /* STM - store multiple */
4240 case 0x9b: /* STAM - store access multiple */
4241 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
4242 if (inib[2] <= inib[3])
4243 n = inib[3] - inib[2] + 1;
4244 else
4245 n = inib[3] + 0x10 - inib[2] + 1;
4246 if (record_full_arch_list_add_mem (oaddr, n * 4))
4247 return -1;
4248 break;
4249
4250 case 0x92: /* MVI - move */
4251 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
4252 if (record_full_arch_list_add_mem (oaddr, 1))
4253 return -1;
4254 break;
4255
4256 case 0x93: /* TS - test and set */
4257 case 0x94: /* NI - and */
4258 case 0x96: /* OI - or */
4259 case 0x97: /* XI - xor */
4260 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
4261 if (record_full_arch_list_add_mem (oaddr, 1))
4262 return -1;
4263 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4264 return -1;
4265 break;
4266
4267 case 0x98: /* LM - load multiple */
4268 for (i = inib[2]; i != inib[3]; i++, i &= 0xf)
4269 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + i))
4270 return -1;
4271 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
4272 return -1;
4273 break;
4274
4275 /* 0x99 privileged: TRACE */
4276
4277 case 0x9a: /* LAM - load access multiple */
4278 for (i = inib[2]; i != inib[3]; i++, i &= 0xf)
4279 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + i))
4280 return -1;
4281 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + inib[3]))
4282 return -1;
4283 break;
4284
4285 /* 0x9c-0x9f privileged and obsolete (old I/O) */
4286 /* 0xa0-0xa4 undefined */
4287
4288 case 0xa5:
4289 case 0xa7:
4290 /* RI-format instruction */
4291 switch (ibyte[0] << 4 | inib[3])
4292 {
4293 case 0xa50: /* IIHH - insert immediate */
4294 case 0xa51: /* IIHL - insert immediate */
4295 /* high 32-bit destination */
4296 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
4297 return -1;
4298 break;
4299
4300 case 0xa52: /* IILH - insert immediate */
4301 case 0xa53: /* IILL - insert immediate */
4302 case 0xa75: /* BRAS - branch relative and save */
4303 case 0xa76: /* BRCT - branch relative on count */
4304 case 0xa78: /* LHI - load halfword immediate */
4305 case 0xa7c: /* MHI - multiply halfword immediate */
4306 /* 32-bit or native destination */
4307 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4308 return -1;
4309 break;
4310
4311 case 0xa54: /* NIHH - and immediate */
4312 case 0xa55: /* NIHL - and immediate */
4313 case 0xa58: /* OIHH - or immediate */
4314 case 0xa59: /* OIHL - or immediate */
4315 /* high 32-bit destination + flags */
4316 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
4317 return -1;
4318 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4319 return -1;
4320 break;
4321
4322 case 0xa56: /* NILH - and immediate */
4323 case 0xa57: /* NILL - and immediate */
4324 case 0xa5a: /* OILH - or immediate */
4325 case 0xa5b: /* OILL - or immediate */
4326 case 0xa7a: /* AHI - add halfword immediate */
4327 /* 32-bit destination + flags */
4328 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4329 return -1;
4330 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4331 return -1;
4332 break;
4333
4334 case 0xa5c: /* LLIHH - load logical immediate */
4335 case 0xa5d: /* LLIHL - load logical immediate */
4336 case 0xa5e: /* LLILH - load logical immediate */
4337 case 0xa5f: /* LLILL - load logical immediate */
4338 case 0xa77: /* BRCTG - branch relative on count */
4339 case 0xa79: /* LGHI - load halfword immediate */
4340 case 0xa7d: /* MGHI - multiply halfword immediate */
4341 /* 64-bit destination */
4342 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
4343 return -1;
4344 break;
4345
4346 case 0xa70: /* TMLH - test under mask */
4347 case 0xa71: /* TMLL - test under mask */
4348 case 0xa72: /* TMHH - test under mask */
4349 case 0xa73: /* TMHL - test under mask */
4350 case 0xa7e: /* CHI - compare halfword immediate */
4351 case 0xa7f: /* CGHI - compare halfword immediate */
4352 /* flags only */
4353 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4354 return -1;
4355 break;
4356
4357 case 0xa74: /* BRC - branch relative on condition */
4358 /* no register change */
4359 break;
4360
4361 case 0xa7b: /* AGHI - add halfword immediate */
4362 /* 64-bit destination + flags */
4363 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
4364 return -1;
4365 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4366 return -1;
4367 break;
4368
4369 default:
4370 goto UNKNOWN_OP;
4371 }
4372 break;
4373
4374 /* 0xa6 undefined */
4375
4376 case 0xa8: /* MVCLE - move long extended [partial] */
4377 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[2], &tmp);
4378 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
4379 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[2] | 1), &tmp);
4380 if (record_full_arch_list_add_mem (oaddr, tmp))
4381 return -1;
4382 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
4383 return -1;
4384 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
4385 return -1;
4386 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
4387 return -1;
4388 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[3] | 1)))
4389 return -1;
4390 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4391 return -1;
4392 break;
4393
4394 /* 0xaa-0xab undefined */
4395 /* 0xac privileged: STNSM - store then and system mask */
4396 /* 0xad privileged: STOSM - store then or system mask */
4397 /* 0xae privileged: SIGP - signal processor */
4398 /* 0xaf unsupported: MC - monitor call */
4399 /* 0xb0 undefined */
4400 /* 0xb1 privileged: LRA - load real address */
4401
4402 case 0xb2:
4403 case 0xb3:
4404 case 0xb9:
4405 /* S/RRD/RRE/RRF/IE-format instruction */
4406 switch (insn[0])
4407 {
4408 /* 0xb200-0xb204 undefined or privileged */
4409
4410 case 0xb205: /* STCK - store clock */
4411 case 0xb27c: /* STCKF - store clock fast */
4412 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
4413 if (record_full_arch_list_add_mem (oaddr, 8))
4414 return -1;
4415 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4416 return -1;
4417 break;
4418
4419 /* 0xb206-0xb219 undefined, privileged, or unsupported */
4420 /* 0xb21a unsupported: CFC */
4421 /* 0xb21b-0xb221 undefined or privileged */
4422
4423 case 0xb222: /* IPM - insert program mask */
4424 case 0xb24f: /* EAR - extract access */
4425 case 0xb252: /* MSR - multiply single */
4426 case 0xb2ec: /* ETND - extract transaction nesting depth */
4427 case 0xb38c: /* EFPC - extract fpc */
4428 case 0xb91f: /* LRVR - load reversed */
4429 case 0xb926: /* LBR - load byte */
4430 case 0xb927: /* LHR - load halfword */
4431 case 0xb994: /* LLCR - load logical character */
4432 case 0xb995: /* LLHR - load logical halfword */
4433 case 0xb9f2: /* LOCR - load on condition */
4434 /* 32-bit gpr destination */
4435 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4436 return -1;
4437 break;
4438
4439 /* 0xb223-0xb22c privileged or unsupported */
4440
4441 case 0xb22d: /* DXR - divide */
4442 case 0xb325: /* LXDR - load lengthened */
4443 case 0xb326: /* LXER - load lengthened */
4444 case 0xb336: /* SQXR - square root */
4445 case 0xb365: /* LXR - load */
4446 case 0xb367: /* FIXR - load fp integer */
4447 case 0xb376: /* LZXR - load zero */
4448 case 0xb3b6: /* CXFR - convert from fixed */
4449 case 0xb3c6: /* CXGR - convert from fixed */
4450 case 0xb3fe: /* IEXTR - insert biased exponent */
4451 /* float pair destination */
4452 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4453 return -1;
4454 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[6] | 2)))
4455 return -1;
4456 break;
4457
4458 /* 0xb22e-0xb240 undefined, privileged, or unsupported */
4459
4460 case 0xb241: /* CKSM - checksum [partial] */
4461 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4462 return -1;
4463 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
4464 return -1;
4465 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
4466 return -1;
4467 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4468 return -1;
4469 break;
4470
4471 /* 0xb242-0xb243 undefined */
4472
4473 case 0xb244: /* SQDR - square root */
4474 case 0xb245: /* SQER - square root */
4475 case 0xb324: /* LDER - load lengthened */
4476 case 0xb337: /* MEER - multiply */
4477 case 0xb366: /* LEXR - load rounded */
4478 case 0xb370: /* LPDFR - load positive */
4479 case 0xb371: /* LNDFR - load negative */
4480 case 0xb372: /* CSDFR - copy sign */
4481 case 0xb373: /* LCDFR - load complement */
4482 case 0xb374: /* LZER - load zero */
4483 case 0xb375: /* LZDR - load zero */
4484 case 0xb377: /* FIER - load fp integer */
4485 case 0xb37f: /* FIDR - load fp integer */
4486 case 0xb3b4: /* CEFR - convert from fixed */
4487 case 0xb3b5: /* CDFR - convert from fixed */
4488 case 0xb3c1: /* LDGR - load fpr from gr */
4489 case 0xb3c4: /* CEGR - convert from fixed */
4490 case 0xb3c5: /* CDGR - convert from fixed */
4491 case 0xb3f6: /* IEDTR - insert biased exponent */
4492 /* float destination */
4493 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4494 return -1;
4495 break;
4496
4497 /* 0xb246-0xb24c: privileged or unsupported */
4498
4499 case 0xb24d: /* CPYA - copy access */
4500 case 0xb24e: /* SAR - set access */
4501 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + inib[6]))
4502 return -1;
4503 break;
4504
4505 /* 0xb250-0xb251 undefined or privileged */
4506 /* 0xb253-0xb254 undefined or privileged */
4507
4508 case 0xb255: /* MVST - move string [partial] */
4509 {
4510 uint8_t end;
4511 gdb_byte cur;
4512 ULONGEST num = 0;
4513 /* Read ending byte. */
4514 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
4515 end = tmp & 0xff;
4516 /* Get address of second operand. */
4517 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[7], &tmp);
4518 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
4519 /* Search for ending byte and compute length. */
4520 do {
4521 num++;
4522 if (target_read_memory (oaddr, &cur, 1))
4523 return -1;
4524 oaddr++;
4525 } while (cur != end);
4526 /* Get address of first operand and record it. */
4527 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
4528 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
4529 if (record_full_arch_list_add_mem (oaddr, num))
4530 return -1;
4531 /* Record the registers. */
4532 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4533 return -1;
4534 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
4535 return -1;
4536 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4537 return -1;
4538 }
4539 break;
4540
4541 /* 0xb256 undefined */
4542
4543 case 0xb257: /* CUSE - compare until substring equal [interruptible] */
4544 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4545 return -1;
4546 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
4547 return -1;
4548 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
4549 return -1;
4550 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
4551 return -1;
4552 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4553 return -1;
4554 break;
4555
4556 /* 0xb258-0xb25c undefined, privileged, or unsupported */
4557
4558 case 0xb25d: /* CLST - compare logical string [partial] */
4559 case 0xb25e: /* SRST - search string [partial] */
4560 case 0xb9be: /* SRSTU - search string unicode [partial] */
4561 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4562 return -1;
4563 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
4564 return -1;
4565 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4566 return -1;
4567 break;
4568
4569 /* 0xb25f-0xb262 undefined */
4570
4571 case 0xb263: /* CMPSC - compression call [interruptible] */
4572 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
4573 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
4574 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[6] | 1), &tmp);
4575 if (record_full_arch_list_add_mem (oaddr, tmp))
4576 return -1;
4577 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4578 return -1;
4579 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
4580 return -1;
4581 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
4582 return -1;
4583 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
4584 return -1;
4585 if (record_full_arch_list_add_reg (regcache, S390_R1_REGNUM))
4586 return -1;
4587 /* DXC may be written */
4588 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4589 return -1;
4590 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4591 return -1;
4592 break;
4593
4594 /* 0xb264-0xb277 undefined, privileged, or unsupported */
4595
4596 case 0xb278: /* STCKE - store clock extended */
4597 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
4598 if (record_full_arch_list_add_mem (oaddr, 16))
4599 return -1;
4600 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4601 return -1;
4602 break;
4603
4604 /* 0xb279-0xb27b undefined or unsupported */
4605 /* 0xb27d-0xb298 undefined or privileged */
4606
4607 case 0xb299: /* SRNM - set rounding mode */
4608 case 0xb2b8: /* SRNMB - set bfp rounding mode */
4609 case 0xb2b9: /* SRNMT - set dfp rounding mode */
4610 case 0xb29d: /* LFPC - load fpc */
4611 case 0xb2bd: /* LFAS - load fpc and signal */
4612 case 0xb384: /* SFPC - set fpc */
4613 case 0xb385: /* SFASR - set fpc and signal */
4614 case 0xb960: /* CGRT - compare and trap */
4615 case 0xb961: /* CLGRT - compare logical and trap */
4616 case 0xb972: /* CRT - compare and trap */
4617 case 0xb973: /* CLRT - compare logical and trap */
4618 /* fpc only - including possible DXC write for trapping insns */
4619 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4620 return -1;
4621 break;
4622
4623 /* 0xb29a-0xb29b undefined */
4624
4625 case 0xb29c: /* STFPC - store fpc */
4626 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
4627 if (record_full_arch_list_add_mem (oaddr, 4))
4628 return -1;
4629 break;
4630
4631 /* 0xb29e-0xb2a4 undefined */
4632
4633 case 0xb2a5: /* TRE - translate extended [partial] */
4634 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
4635 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
4636 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[6] | 1), &tmp);
4637 if (record_full_arch_list_add_mem (oaddr, tmp))
4638 return -1;
4639 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4640 return -1;
4641 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
4642 return -1;
4643 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4644 return -1;
4645 break;
4646
4647 case 0xb2a6: /* CU21 - convert UTF-16 to UTF-8 [partial] */
4648 case 0xb2a7: /* CU12 - convert UTF-8 to UTF-16 [partial] */
4649 case 0xb9b0: /* CU14 - convert UTF-8 to UTF-32 [partial] */
4650 case 0xb9b1: /* CU24 - convert UTF-16 to UTF-32 [partial] */
4651 case 0xb9b2: /* CU41 - convert UTF-32 to UTF-8 [partial] */
4652 case 0xb9b3: /* CU42 - convert UTF-32 to UTF-16 [partial] */
4653 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
4654 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
4655 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[6] | 1), &tmp);
4656 if (record_full_arch_list_add_mem (oaddr, tmp))
4657 return -1;
4658 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4659 return -1;
4660 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
4661 return -1;
4662 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
4663 return -1;
4664 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
4665 return -1;
4666 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4667 return -1;
4668 break;
4669
4670 /* 0xb2a8-0xb2af undefined */
4671
4672 case 0xb2b0: /* STFLE - store facility list extended */
4673 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
4674 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
4675 tmp &= 0xff;
4676 if (record_full_arch_list_add_mem (oaddr, 8 * (tmp + 1)))
4677 return -1;
4678 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM))
4679 return -1;
4680 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4681 return -1;
4682 break;
4683
4684 /* 0xb2b1-0xb2b7 undefined or privileged */
4685 /* 0xb2ba-0xb2bc undefined */
4686 /* 0xb2be-0xb2e7 undefined */
4687 /* 0xb2e9-0xb2eb undefined */
4688 /* 0xb2ed-0xb2f7 undefined */
4689 /* 0xb2f8 unsupported: TEND */
4690 /* 0xb2f9 undefined */
4691
4692 case 0xb2e8: /* PPA - perform processor assist */
4693 case 0xb2fa: /* NIAI - next instruction access intent */
4694 /* no visible effects */
4695 break;
4696
4697 /* 0xb2fb undefined */
4698 /* 0xb2fc unsupported: TABORT */
4699 /* 0xb2fd-0xb2fe undefined */
4700 /* 0xb2ff unsupported: TRAP */
4701
4702 case 0xb300: /* LPEBR - load positive */
4703 case 0xb301: /* LNEBR - load negative */
4704 case 0xb303: /* LCEBR - load complement */
4705 case 0xb310: /* LPDBR - load positive */
4706 case 0xb311: /* LNDBR - load negative */
4707 case 0xb313: /* LCDBR - load complement */
4708 case 0xb350: /* TBEDR - convert hfp to bfp */
4709 case 0xb351: /* TBDR - convert hfp to bfp */
4710 case 0xb358: /* THDER - convert bfp to hfp */
4711 case 0xb359: /* THDR - convert bfp to hfp */
4712 /* float destination + flags */
4713 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4714 return -1;
4715 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4716 return -1;
4717 break;
4718
4719 case 0xb304: /* LDEBR - load lengthened */
4720 case 0xb30c: /* MDEBR - multiply */
4721 case 0xb30d: /* DEBR - divide */
4722 case 0xb314: /* SQEBR - square root */
4723 case 0xb315: /* SQDBR - square root */
4724 case 0xb317: /* MEEBR - multiply */
4725 case 0xb31c: /* MDBR - multiply */
4726 case 0xb31d: /* DDBR - divide */
4727 case 0xb344: /* LEDBRA - load rounded */
4728 case 0xb345: /* LDXBRA - load rounded */
4729 case 0xb346: /* LEXBRA - load rounded */
4730 case 0xb357: /* FIEBRA - load fp integer */
4731 case 0xb35f: /* FIDBRA - load fp integer */
4732 case 0xb390: /* CELFBR - convert from logical */
4733 case 0xb391: /* CDLFBR - convert from logical */
4734 case 0xb394: /* CEFBR - convert from fixed */
4735 case 0xb395: /* CDFBR - convert from fixed */
4736 case 0xb3a0: /* CELGBR - convert from logical */
4737 case 0xb3a1: /* CDLGBR - convert from logical */
4738 case 0xb3a4: /* CEGBR - convert from fixed */
4739 case 0xb3a5: /* CDGBR - convert from fixed */
4740 case 0xb3d0: /* MDTR - multiply */
4741 case 0xb3d1: /* DDTR - divide */
4742 case 0xb3d4: /* LDETR - load lengthened */
4743 case 0xb3d5: /* LEDTR - load lengthened */
4744 case 0xb3d7: /* FIDTR - load fp integer */
4745 case 0xb3dd: /* LDXTR - load lengthened */
4746 case 0xb3f1: /* CDGTR - convert from fixed */
4747 case 0xb3f2: /* CDUTR - convert from unsigned packed */
4748 case 0xb3f3: /* CDSTR - convert from signed packed */
4749 case 0xb3f5: /* QADTR - quantize */
4750 case 0xb3f7: /* RRDTR - reround */
4751 case 0xb951: /* CDFTR - convert from fixed */
4752 case 0xb952: /* CDLGTR - convert from logical */
4753 case 0xb953: /* CDLFTR - convert from logical */
4754 /* float destination + fpc */
4755 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4756 return -1;
4757 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4758 return -1;
4759 break;
4760
4761 case 0xb305: /* LXDBR - load lengthened */
4762 case 0xb306: /* LXEBR - load lengthened */
4763 case 0xb307: /* MXDBR - multiply */
4764 case 0xb316: /* SQXBR - square root */
4765 case 0xb34c: /* MXBR - multiply */
4766 case 0xb34d: /* DXBR - divide */
4767 case 0xb347: /* FIXBRA - load fp integer */
4768 case 0xb392: /* CXLFBR - convert from logical */
4769 case 0xb396: /* CXFBR - convert from fixed */
4770 case 0xb3a2: /* CXLGBR - convert from logical */
4771 case 0xb3a6: /* CXGBR - convert from fixed */
4772 case 0xb3d8: /* MXTR - multiply */
4773 case 0xb3d9: /* DXTR - divide */
4774 case 0xb3dc: /* LXDTR - load lengthened */
4775 case 0xb3df: /* FIXTR - load fp integer */
4776 case 0xb3f9: /* CXGTR - convert from fixed */
4777 case 0xb3fa: /* CXUTR - convert from unsigned packed */
4778 case 0xb3fb: /* CXSTR - convert from signed packed */
4779 case 0xb3fd: /* QAXTR - quantize */
4780 case 0xb3ff: /* RRXTR - reround */
4781 case 0xb959: /* CXFTR - convert from fixed */
4782 case 0xb95a: /* CXLGTR - convert from logical */
4783 case 0xb95b: /* CXLFTR - convert from logical */
4784 /* float pair destination + fpc */
4785 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4786 return -1;
4787 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[6] | 2)))
4788 return -1;
4789 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4790 return -1;
4791 break;
4792
4793 case 0xb308: /* KEBR - compare and signal */
4794 case 0xb309: /* CEBR - compare */
4795 case 0xb318: /* KDBR - compare and signal */
4796 case 0xb319: /* CDBR - compare */
4797 case 0xb348: /* KXBR - compare and signal */
4798 case 0xb349: /* CXBR - compare */
4799 case 0xb3e0: /* KDTR - compare and signal */
4800 case 0xb3e4: /* CDTR - compare */
4801 case 0xb3e8: /* KXTR - compare and signal */
4802 case 0xb3ec: /* CXTR - compare */
4803 /* flags + fpc only */
4804 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4805 return -1;
4806 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4807 return -1;
4808 break;
4809
4810 case 0xb302: /* LTEBR - load and test */
4811 case 0xb312: /* LTDBR - load and test */
4812 case 0xb30a: /* AEBR - add */
4813 case 0xb30b: /* SEBR - subtract */
4814 case 0xb31a: /* ADBR - add */
4815 case 0xb31b: /* SDBR - subtract */
4816 case 0xb3d2: /* ADTR - add */
4817 case 0xb3d3: /* SDTR - subtract */
4818 case 0xb3d6: /* LTDTR - load and test */
4819 /* float destination + flags + fpc */
4820 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4821 return -1;
4822 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4823 return -1;
4824 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4825 return -1;
4826 break;
4827
4828 case 0xb30e: /* MAEBR - multiply and add */
4829 case 0xb30f: /* MSEBR - multiply and subtract */
4830 case 0xb31e: /* MADBR - multiply and add */
4831 case 0xb31f: /* MSDBR - multiply and subtract */
4832 /* float destination [RRD] + fpc */
4833 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[4]))
4834 return -1;
4835 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4836 return -1;
4837 break;
4838
4839 /* 0xb320-0xb323 undefined */
4840 /* 0xb327-0xb32d undefined */
4841
4842 case 0xb32e: /* MAER - multiply and add */
4843 case 0xb32f: /* MSER - multiply and subtract */
4844 case 0xb338: /* MAYLR - multiply and add unnormalized */
4845 case 0xb339: /* MYLR - multiply unnormalized */
4846 case 0xb33c: /* MAYHR - multiply and add unnormalized */
4847 case 0xb33d: /* MYHR - multiply unnormalized */
4848 case 0xb33e: /* MADR - multiply and add */
4849 case 0xb33f: /* MSDR - multiply and subtract */
4850 /* float destination [RRD] */
4851 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[4]))
4852 return -1;
4853 break;
4854
4855 /* 0xb330-0xb335 undefined */
4856
4857 case 0xb33a: /* MAYR - multiply and add unnormalized */
4858 case 0xb33b: /* MYR - multiply unnormalized */
4859 /* float pair destination [RRD] */
4860 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[4]))
4861 return -1;
4862 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[4] | 2)))
4863 return -1;
4864 break;
4865
4866 case 0xb340: /* LPXBR - load positive */
4867 case 0xb341: /* LNXBR - load negative */
4868 case 0xb343: /* LCXBR - load complement */
4869 case 0xb360: /* LPXR - load positive */
4870 case 0xb361: /* LNXR - load negative */
4871 case 0xb362: /* LTXR - load and test */
4872 case 0xb363: /* LCXR - load complement */
4873 /* float pair destination + flags */
4874 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4875 return -1;
4876 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[6] | 2)))
4877 return -1;
4878 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4879 return -1;
4880 break;
4881
4882 case 0xb342: /* LTXBR - load and test */
4883 case 0xb34a: /* AXBR - add */
4884 case 0xb34b: /* SXBR - subtract */
4885 case 0xb3da: /* AXTR - add */
4886 case 0xb3db: /* SXTR - subtract */
4887 case 0xb3de: /* LTXTR - load and test */
4888 /* float pair destination + flags + fpc */
4889 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4890 return -1;
4891 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[6] | 2)))
4892 return -1;
4893 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4894 return -1;
4895 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4896 return -1;
4897 break;
4898
4899 /* 0xb34e-0xb34f undefined */
4900 /* 0xb352 undefined */
4901
4902 case 0xb353: /* DIEBR - divide to integer */
4903 case 0xb35b: /* DIDBR - divide to integer */
4904 /* two float destinations + flags + fpc */
4905 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[4]))
4906 return -1;
4907 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[6]))
4908 return -1;
4909 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4910 return -1;
4911 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4912 return -1;
4913 break;
4914
4915 /* 0xb354-0xb356 undefined */
4916 /* 0xb35a undefined */
4917
4918 /* 0xb35c-0xb35e undefined */
4919 /* 0xb364 undefined */
4920 /* 0xb368 undefined */
4921
4922 case 0xb369: /* CXR - compare */
4923 case 0xb3f4: /* CEDTR - compare biased exponent */
4924 case 0xb3fc: /* CEXTR - compare biased exponent */
4925 case 0xb920: /* CGR - compare */
4926 case 0xb921: /* CLGR - compare logical */
4927 case 0xb930: /* CGFR - compare */
4928 case 0xb931: /* CLGFR - compare logical */
4929 case 0xb9cd: /* CHHR - compare high */
4930 case 0xb9cf: /* CLHHR - compare logical high */
4931 case 0xb9dd: /* CHLR - compare high */
4932 case 0xb9df: /* CLHLR - compare logical high */
4933 /* flags only */
4934 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4935 return -1;
4936 break;
4937
4938 /* 0xb36a-0xb36f undefined */
4939 /* 0xb377-0xb37e undefined */
4940 /* 0xb380-0xb383 undefined */
4941 /* 0xb386-0xb38b undefined */
4942 /* 0xb38d-0xb38f undefined */
4943 /* 0xb393 undefined */
4944 /* 0xb397 undefined */
4945
4946 case 0xb398: /* CFEBR - convert to fixed */
4947 case 0xb399: /* CFDBR - convert to fixed */
4948 case 0xb39a: /* CFXBR - convert to fixed */
4949 case 0xb39c: /* CLFEBR - convert to logical */
4950 case 0xb39d: /* CLFDBR - convert to logical */
4951 case 0xb39e: /* CLFXBR - convert to logical */
4952 case 0xb941: /* CFDTR - convert to fixed */
4953 case 0xb949: /* CFXTR - convert to fixed */
4954 case 0xb943: /* CLFDTR - convert to logical */
4955 case 0xb94b: /* CLFXTR - convert to logical */
4956 /* 32-bit gpr destination + flags + fpc */
4957 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
4958 return -1;
4959 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4960 return -1;
4961 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4962 return -1;
4963 break;
4964
4965 /* 0xb39b undefined */
4966 /* 0xb39f undefined */
4967
4968 /* 0xb3a3 undefined */
4969 /* 0xb3a7 undefined */
4970
4971 case 0xb3a8: /* CGEBR - convert to fixed */
4972 case 0xb3a9: /* CGDBR - convert to fixed */
4973 case 0xb3aa: /* CGXBR - convert to fixed */
4974 case 0xb3ac: /* CLGEBR - convert to logical */
4975 case 0xb3ad: /* CLGDBR - convert to logical */
4976 case 0xb3ae: /* CLGXBR - convert to logical */
4977 case 0xb3e1: /* CGDTR - convert to fixed */
4978 case 0xb3e9: /* CGXTR - convert to fixed */
4979 case 0xb942: /* CLGDTR - convert to logical */
4980 case 0xb94a: /* CLGXTR - convert to logical */
4981 /* 64-bit gpr destination + flags + fpc */
4982 if (s390_record_gpr_g (gdbarch, regcache, inib[6]))
4983 return -1;
4984 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
4985 return -1;
4986 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
4987 return -1;
4988 break;
4989
4990 /* 0xb3ab undefined */
4991 /* 0xb3af-0xb3b3 undefined */
4992 /* 0xb3b7 undefined */
4993
4994 case 0xb3b8: /* CFER - convert to fixed */
4995 case 0xb3b9: /* CFDR - convert to fixed */
4996 case 0xb3ba: /* CFXR - convert to fixed */
4997 case 0xb998: /* ALCR - add logical with carry */
4998 case 0xb999: /* SLBR - subtract logical with borrow */
4999 case 0xb9f4: /* NRK - and */
5000 case 0xb9f6: /* ORK - or */
5001 case 0xb9f7: /* XRK - xor */
5002 case 0xb9f8: /* ARK - add */
5003 case 0xb9f9: /* SRK - subtract */
5004 case 0xb9fa: /* ALRK - add logical */
5005 case 0xb9fb: /* SLRK - subtract logical */
5006 /* 32-bit gpr destination + flags */
5007 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5008 return -1;
5009 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5010 return -1;
5011 break;
5012
5013 case 0xb3c8: /* CGER - convert to fixed */
5014 case 0xb3c9: /* CGDR - convert to fixed */
5015 case 0xb3ca: /* CGXR - convert to fixed */
5016 case 0xb900: /* LPGR - load positive */
5017 case 0xb901: /* LNGR - load negative */
5018 case 0xb902: /* LTGR - load and test */
5019 case 0xb903: /* LCGR - load complement */
5020 case 0xb908: /* AGR - add */
5021 case 0xb909: /* SGR - subtract */
5022 case 0xb90a: /* ALGR - add logical */
5023 case 0xb90b: /* SLGR - subtract logical */
5024 case 0xb910: /* LPGFR - load positive */
5025 case 0xb911: /* LNGFR - load negative */
5026 case 0xb912: /* LTGFR - load and test */
5027 case 0xb913: /* LCGFR - load complement */
5028 case 0xb918: /* AGFR - add */
5029 case 0xb919: /* SGFR - subtract */
5030 case 0xb91a: /* ALGFR - add logical */
5031 case 0xb91b: /* SLGFR - subtract logical */
5032 case 0xb980: /* NGR - and */
5033 case 0xb981: /* OGR - or */
5034 case 0xb982: /* XGR - xor */
5035 case 0xb988: /* ALCGR - add logical with carry */
5036 case 0xb989: /* SLBGR - subtract logical with borrow */
5037 case 0xb9e1: /* POPCNT - population count */
5038 case 0xb9e4: /* NGRK - and */
5039 case 0xb9e6: /* OGRK - or */
5040 case 0xb9e7: /* XGRK - xor */
5041 case 0xb9e8: /* AGRK - add */
5042 case 0xb9e9: /* SGRK - subtract */
5043 case 0xb9ea: /* ALGRK - add logical */
5044 case 0xb9eb: /* SLGRK - subtract logical */
5045 /* 64-bit gpr destination + flags */
5046 if (s390_record_gpr_g (gdbarch, regcache, inib[6]))
5047 return -1;
5048 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5049 return -1;
5050 break;
5051
5052 /* 0xb3bb-0xb3c0 undefined */
5053 /* 0xb3c2-0xb3c3 undefined */
5054 /* 0xb3c7 undefined */
5055 /* 0xb3cb-0xb3cc undefined */
5056
5057 case 0xb3cd: /* LGDR - load gr from fpr */
5058 case 0xb3e2: /* CUDTR - convert to unsigned packed */
5059 case 0xb3e3: /* CSDTR - convert to signed packed */
5060 case 0xb3e5: /* EEDTR - extract biased exponent */
5061 case 0xb3e7: /* ESDTR - extract significance */
5062 case 0xb3ed: /* EEXTR - extract biased exponent */
5063 case 0xb3ef: /* ESXTR - extract significance */
5064 case 0xb904: /* LGR - load */
5065 case 0xb906: /* LGBR - load byte */
5066 case 0xb907: /* LGHR - load halfword */
5067 case 0xb90c: /* MSGR - multiply single */
5068 case 0xb90f: /* LRVGR - load reversed */
5069 case 0xb914: /* LGFR - load */
5070 case 0xb916: /* LLGFR - load logical */
5071 case 0xb917: /* LLGTR - load logical thirty one bits */
5072 case 0xb91c: /* MSGFR - load */
5073 case 0xb946: /* BCTGR - branch on count */
5074 case 0xb984: /* LLGCR - load logical character */
5075 case 0xb985: /* LLGHR - load logical halfword */
5076 case 0xb9e2: /* LOCGR - load on condition */
5077 /* 64-bit gpr destination */
5078 if (s390_record_gpr_g (gdbarch, regcache, inib[6]))
5079 return -1;
5080 break;
5081
5082 /* 0xb3ce-0xb3cf undefined */
5083 /* 0xb3e6 undefined */
5084
5085 case 0xb3ea: /* CUXTR - convert to unsigned packed */
5086 case 0xb3eb: /* CSXTR - convert to signed packed */
5087 case 0xb90d: /* DSGR - divide single */
5088 case 0xb91d: /* DSGFR - divide single */
5089 case 0xb986: /* MLGR - multiply logical */
5090 case 0xb987: /* DLGR - divide logical */
5091 /* 64-bit gpr pair destination */
5092 if (s390_record_gpr_g (gdbarch, regcache, inib[6]))
5093 return -1;
5094 if (s390_record_gpr_g (gdbarch, regcache, inib[6] | 1))
5095 return -1;
5096 break;
5097
5098 /* 0xb3ee undefined */
5099 /* 0xb3f0 undefined */
5100 /* 0xb3f8 undefined */
5101
5102 /* 0xb905 privileged */
5103
5104 /* 0xb90e unsupported: EREGG */
5105
5106 /* 0xb915 undefined */
5107
5108 case 0xb91e: /* KMAC - compute message authentication code [partial] */
5109 regcache_raw_read_unsigned (regcache, S390_R1_REGNUM, &tmp);
5110 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5111 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5112 tmp &= 0xff;
5113 switch (tmp)
5114 {
5115 case 0x00: /* KMAC-Query */
5116 if (record_full_arch_list_add_mem (oaddr, 16))
5117 return -1;
5118 break;
5119
5120 case 0x01: /* KMAC-DEA */
5121 case 0x02: /* KMAC-TDEA-128 */
5122 case 0x03: /* KMAC-TDEA-192 */
5123 case 0x09: /* KMAC-Encrypted-DEA */
5124 case 0x0a: /* KMAC-Encrypted-TDEA-128 */
5125 case 0x0b: /* KMAC-Encrypted-TDEA-192 */
5126 if (record_full_arch_list_add_mem (oaddr, 8))
5127 return -1;
5128 break;
5129
5130 case 0x12: /* KMAC-AES-128 */
5131 case 0x13: /* KMAC-AES-192 */
5132 case 0x14: /* KMAC-AES-256 */
5133 case 0x1a: /* KMAC-Encrypted-AES-128 */
5134 case 0x1b: /* KMAC-Encrypted-AES-192 */
5135 case 0x1c: /* KMAC-Encrypted-AES-256 */
5136 if (record_full_arch_list_add_mem (oaddr, 16))
5137 return -1;
5138 break;
5139
5140 default:
5141 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown KMAC function %02x at %s.\n",
5142 (int)tmp, paddress (gdbarch, addr));
5143 return -1;
5144 }
5145 if (tmp != 0)
5146 {
5147 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5148 return -1;
5149 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
5150 return -1;
5151 }
5152 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5153 return -1;
5154 break;
5155
5156 /* 0xb922-0xb924 undefined */
5157 /* 0xb925 privileged */
5158 /* 0xb928 privileged */
5159 /* 0xb929 undefined */
5160
5161 case 0xb92a: /* KMF - cipher message with cipher feedback [partial] */
5162 case 0xb92b: /* KMO - cipher message with output feedback [partial] */
5163 case 0xb92f: /* KMC - cipher message with chaining [partial] */
5164 regcache_raw_read_unsigned (regcache, S390_R1_REGNUM, &tmp);
5165 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5166 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5167 tmp &= 0x7f;
5168 switch (tmp)
5169 {
5170 case 0x00: /* KM*-Query */
5171 if (record_full_arch_list_add_mem (oaddr, 16))
5172 return -1;
5173 break;
5174
5175 case 0x01: /* KM*-DEA */
5176 case 0x02: /* KM*-TDEA-128 */
5177 case 0x03: /* KM*-TDEA-192 */
5178 case 0x09: /* KM*-Encrypted-DEA */
5179 case 0x0a: /* KM*-Encrypted-TDEA-128 */
5180 case 0x0b: /* KM*-Encrypted-TDEA-192 */
5181 if (record_full_arch_list_add_mem (oaddr, 8))
5182 return -1;
5183 break;
5184
5185 case 0x12: /* KM*-AES-128 */
5186 case 0x13: /* KM*-AES-192 */
5187 case 0x14: /* KM*-AES-256 */
5188 case 0x1a: /* KM*-Encrypted-AES-128 */
5189 case 0x1b: /* KM*-Encrypted-AES-192 */
5190 case 0x1c: /* KM*-Encrypted-AES-256 */
5191 if (record_full_arch_list_add_mem (oaddr, 16))
5192 return -1;
5193 break;
5194
5195 case 0x43: /* KMC-PRNG */
5196 /* Only valid for KMC. */
5197 if (insn[0] == 0xb92f)
5198 {
5199 if (record_full_arch_list_add_mem (oaddr, 8))
5200 return -1;
5201 break;
5202 }
5203 /* For other instructions, fallthru. */
5204 default:
5205 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown KM* function %02x at %s.\n",
5206 (int)tmp, paddress (gdbarch, addr));
5207 return -1;
5208 }
5209 if (tmp != 0)
5210 {
5211 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
5212 oaddr2 = s390_record_address_mask (gdbarch, regcache, tmp);
5213 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[7] | 1), &tmp);
5214 if (record_full_arch_list_add_mem (oaddr2, tmp))
5215 return -1;
5216 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5217 return -1;
5218 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5219 return -1;
5220 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
5221 return -1;
5222 }
5223 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5224 return -1;
5225 break;
5226
5227 case 0xb92c: /* PCC - perform cryptographic computation [partial] */
5228 regcache_raw_read_unsigned (regcache, S390_R1_REGNUM, &tmp);
5229 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5230 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5231 tmp &= 0x7f;
5232 switch (tmp)
5233 {
5234 case 0x00: /* PCC-Query */
5235 if (record_full_arch_list_add_mem (oaddr, 16))
5236 return -1;
5237 break;
5238
5239 case 0x01: /* PCC-Compute-Last-Block-CMAC-Using-DEA */
5240 case 0x02: /* PCC-Compute-Last-Block-CMAC-Using-TDEA-128 */
5241 case 0x03: /* PCC-Compute-Last-Block-CMAC-Using-TDEA-192 */
5242 case 0x09: /* PCC-Compute-Last-Block-CMAC-Using-Encrypted-DEA */
5243 case 0x0a: /* PCC-Compute-Last-Block-CMAC-Using-Encrypted-TDEA-128 */
5244 case 0x0b: /* PCC-Compute-Last-Block-CMAC-Using-Encrypted-TDEA-192 */
5245 if (record_full_arch_list_add_mem (oaddr + 0x10, 8))
5246 return -1;
5247 break;
5248
5249 case 0x12: /* PCC-Compute-Last-Block-CMAC-Using-AES-128 */
5250 case 0x13: /* PCC-Compute-Last-Block-CMAC-Using-AES-192 */
5251 case 0x14: /* PCC-Compute-Last-Block-CMAC-Using-AES-256 */
5252 case 0x1a: /* PCC-Compute-Last-Block-CMAC-Using-Encrypted-AES-128 */
5253 case 0x1b: /* PCC-Compute-Last-Block-CMAC-Using-Encrypted-AES-192 */
5254 case 0x1c: /* PCC-Compute-Last-Block-CMAC-Using-Encrypted-AES-256 */
5255 if (record_full_arch_list_add_mem (oaddr + 0x18, 16))
5256 return -1;
5257 break;
5258
5259 case 0x32: /* PCC-Compute-XTS-Parameter-Using-AES-128 */
5260 if (record_full_arch_list_add_mem (oaddr + 0x30, 32))
5261 return -1;
5262 break;
5263
5264 case 0x34: /* PCC-Compute-XTS-Parameter-Using-AES-256 */
5265 if (record_full_arch_list_add_mem (oaddr + 0x40, 32))
5266 return -1;
5267 break;
5268
5269 case 0x3a: /* PCC-Compute-XTS-Parameter-Using-Encrypted-AES-128 */
5270 if (record_full_arch_list_add_mem (oaddr + 0x50, 32))
5271 return -1;
5272 break;
5273
5274 case 0x3c: /* PCC-Compute-XTS-Parameter-Using-Encrypted-AES-256 */
5275 if (record_full_arch_list_add_mem (oaddr + 0x60, 32))
5276 return -1;
5277 break;
5278
5279 default:
5280 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown PCC function %02x at %s.\n",
5281 (int)tmp, paddress (gdbarch, addr));
5282 return -1;
5283 }
5284 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5285 return -1;
5286 break;
5287
5288 case 0xb92d: /* KMCTR - cipher message with counter [partial] */
5289 regcache_raw_read_unsigned (regcache, S390_R1_REGNUM, &tmp);
5290 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5291 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5292 tmp &= 0x7f;
5293 switch (tmp)
5294 {
5295 case 0x00: /* KMCTR-Query */
5296 if (record_full_arch_list_add_mem (oaddr, 16))
5297 return -1;
5298 break;
5299
5300 case 0x01: /* KMCTR-DEA */
5301 case 0x02: /* KMCTR-TDEA-128 */
5302 case 0x03: /* KMCTR-TDEA-192 */
5303 case 0x09: /* KMCTR-Encrypted-DEA */
5304 case 0x0a: /* KMCTR-Encrypted-TDEA-128 */
5305 case 0x0b: /* KMCTR-Encrypted-TDEA-192 */
5306 case 0x12: /* KMCTR-AES-128 */
5307 case 0x13: /* KMCTR-AES-192 */
5308 case 0x14: /* KMCTR-AES-256 */
5309 case 0x1a: /* KMCTR-Encrypted-AES-128 */
5310 case 0x1b: /* KMCTR-Encrypted-AES-192 */
5311 case 0x1c: /* KMCTR-Encrypted-AES-256 */
5312 break;
5313
5314 default:
5315 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown KMCTR function %02x at %s.\n",
5316 (int)tmp, paddress (gdbarch, addr));
5317 return -1;
5318 }
5319 if (tmp != 0)
5320 {
5321 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
5322 oaddr2 = s390_record_address_mask (gdbarch, regcache, tmp);
5323 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[7] | 1), &tmp);
5324 if (record_full_arch_list_add_mem (oaddr2, tmp))
5325 return -1;
5326 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5327 return -1;
5328 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5329 return -1;
5330 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
5331 return -1;
5332 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[4]))
5333 return -1;
5334 }
5335 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5336 return -1;
5337 break;
5338
5339 case 0xb92e: /* KM - cipher message [partial] */
5340 regcache_raw_read_unsigned (regcache, S390_R1_REGNUM, &tmp);
5341 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5342 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5343 tmp &= 0x7f;
5344 switch (tmp)
5345 {
5346 case 0x00: /* KM-Query */
5347 if (record_full_arch_list_add_mem (oaddr, 16))
5348 return -1;
5349 break;
5350
5351 case 0x01: /* KM-DEA */
5352 case 0x02: /* KM-TDEA-128 */
5353 case 0x03: /* KM-TDEA-192 */
5354 case 0x09: /* KM-Encrypted-DEA */
5355 case 0x0a: /* KM-Encrypted-TDEA-128 */
5356 case 0x0b: /* KM-Encrypted-TDEA-192 */
5357 case 0x12: /* KM-AES-128 */
5358 case 0x13: /* KM-AES-192 */
5359 case 0x14: /* KM-AES-256 */
5360 case 0x1a: /* KM-Encrypted-AES-128 */
5361 case 0x1b: /* KM-Encrypted-AES-192 */
5362 case 0x1c: /* KM-Encrypted-AES-256 */
5363 break;
5364
5365 case 0x32: /* KM-XTS-AES-128 */
5366 if (record_full_arch_list_add_mem (oaddr + 0x10, 16))
5367 return -1;
5368 break;
5369
5370 case 0x34: /* KM-XTS-AES-256 */
5371 if (record_full_arch_list_add_mem (oaddr + 0x20, 16))
5372 return -1;
5373 break;
5374
5375 case 0x3a: /* KM-XTS-Encrypted-AES-128 */
5376 if (record_full_arch_list_add_mem (oaddr + 0x30, 16))
5377 return -1;
5378 break;
5379
5380 case 0x3c: /* KM-XTS-Encrypted-AES-256 */
5381 if (record_full_arch_list_add_mem (oaddr + 0x40, 16))
5382 return -1;
5383 break;
5384
5385 default:
5386 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown KM function %02x at %s.\n",
5387 (int)tmp, paddress (gdbarch, addr));
5388 return -1;
5389 }
5390 if (tmp != 0)
5391 {
5392 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
5393 oaddr2 = s390_record_address_mask (gdbarch, regcache, tmp);
5394 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[7] | 1), &tmp);
5395 if (record_full_arch_list_add_mem (oaddr2, tmp))
5396 return -1;
5397 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5398 return -1;
5399 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5400 return -1;
5401 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
5402 return -1;
5403 }
5404 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5405 return -1;
5406 break;
5407
5408 /* 0xb932-0xb93b undefined */
5409
5410 case 0xb93c: /* PPNO - perform pseudorandom number operation [partial] */
5411 regcache_raw_read_unsigned (regcache, S390_R1_REGNUM, &tmp);
5412 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5413 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5414 tmp &= 0xff;
5415 switch (tmp)
5416 {
5417 case 0x00: /* PPNO-Query */
5418 case 0x80: /* PPNO-Query */
5419 if (record_full_arch_list_add_mem (oaddr, 16))
5420 return -1;
5421 break;
5422
5423 case 0x03: /* PPNO-SHA-512-DRNG - generate */
5424 if (record_full_arch_list_add_mem (oaddr, 240))
5425 return -1;
5426 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
5427 oaddr2 = s390_record_address_mask (gdbarch, regcache, tmp);
5428 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[6] | 1), &tmp);
5429 if (record_full_arch_list_add_mem (oaddr2, tmp))
5430 return -1;
5431 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5432 return -1;
5433 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
5434 return -1;
5435 break;
5436
5437 case 0x83: /* PPNO-SHA-512-DRNG - seed */
5438 if (record_full_arch_list_add_mem (oaddr, 240))
5439 return -1;
5440 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5441 return -1;
5442 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
5443 return -1;
5444 break;
5445
5446 default:
5447 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown PPNO function %02x at %s.\n",
5448 (int)tmp, paddress (gdbarch, addr));
5449 return -1;
5450 }
5451 /* DXC may be written */
5452 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
5453 return -1;
5454 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5455 return -1;
5456 break;
5457
5458 /* 0xb93d undefined */
5459
5460 case 0xb93e: /* KIMD - compute intermediate message digest [partial] */
5461 case 0xb93f: /* KLMD - compute last message digest [partial] */
5462 regcache_raw_read_unsigned (regcache, S390_R1_REGNUM, &tmp);
5463 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5464 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5465 tmp &= 0xff;
5466 switch (tmp)
5467 {
5468 case 0x00: /* K*MD-Query */
5469 if (record_full_arch_list_add_mem (oaddr, 16))
5470 return -1;
5471 break;
5472
5473 case 0x01: /* K*MD-SHA-1 */
5474 if (record_full_arch_list_add_mem (oaddr, 20))
5475 return -1;
5476 break;
5477
5478 case 0x02: /* K*MD-SHA-256 */
5479 if (record_full_arch_list_add_mem (oaddr, 32))
5480 return -1;
5481 break;
5482
5483 case 0x03: /* K*MD-SHA-512 */
5484 if (record_full_arch_list_add_mem (oaddr, 64))
5485 return -1;
5486 break;
5487
5488 case 0x41: /* KIMD-GHASH */
5489 /* Only valid for KIMD. */
5490 if (insn[0] == 0xb93e)
5491 {
5492 if (record_full_arch_list_add_mem (oaddr, 16))
5493 return -1;
5494 break;
5495 }
5496 /* For KLMD, fallthru. */
5497 default:
5498 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown KMAC function %02x at %s.\n",
5499 (int)tmp, paddress (gdbarch, addr));
5500 return -1;
5501 }
5502 if (tmp != 0)
5503 {
5504 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5505 return -1;
5506 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[7] | 1)))
5507 return -1;
5508 }
5509 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5510 return -1;
5511 break;
5512
5513 /* 0xb940 undefined */
5514 /* 0xb944-0xb945 undefined */
5515 /* 0xb947-0xb948 undefined */
5516 /* 0xb94c-0xb950 undefined */
5517 /* 0xb954-0xb958 undefined */
5518 /* 0xb95c-0xb95f undefined */
5519 /* 0xb962-0xb971 undefined */
5520 /* 0xb974-0xb97f undefined */
5521
5522 case 0xb983: /* FLOGR - find leftmost one */
5523 /* 64-bit gpr pair destination + flags */
5524 if (s390_record_gpr_g (gdbarch, regcache, inib[6]))
5525 return -1;
5526 if (s390_record_gpr_g (gdbarch, regcache, inib[6] | 1))
5527 return -1;
5528 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5529 return -1;
5530 break;
5531
5532 /* 0xb98a privileged */
5533 /* 0xb98b-0xb98c undefined */
5534
5535 case 0xb98d: /* EPSW - extract psw */
5536 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5537 return -1;
5538 if (inib[7])
5539 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5540 return -1;
5541 break;
5542
5543 /* 0xb98e-0xb98f privileged */
5544
5545 case 0xb990: /* TRTT - translate two to two [partial] */
5546 case 0xb991: /* TRTO - translate two to one [partial] */
5547 case 0xb992: /* TROT - translate one to two [partial] */
5548 case 0xb993: /* TROO - translate one to one [partial] */
5549 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[6], &tmp);
5550 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
5551 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[6] | 1), &tmp);
5552 /* tmp is source length, we want destination length. Adjust. */
5553 if (insn[0] == 0xb991)
5554 tmp >>= 1;
5555 if (insn[0] == 0xb992)
5556 tmp <<= 1;
5557 if (record_full_arch_list_add_mem (oaddr, tmp))
5558 return -1;
5559 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5560 return -1;
5561 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
5562 return -1;
5563 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5564 return -1;
5565 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5566 return -1;
5567 break;
5568
5569 case 0xb996: /* MLR - multiply logical */
5570 case 0xb997: /* DLR - divide logical */
5571 /* 32-bit gpr pair destination */
5572 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5573 return -1;
5574 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
5575 return -1;
5576 break;
5577
5578 /* 0xb99a-0xb9af unsupported, privileged, or undefined */
5579 /* 0xb9b4-0xb9bc undefined */
5580
5581 case 0xb9bd: /* TRTRE - translate and test reverse extended [partial] */
5582 case 0xb9bf: /* TRTE - translate and test extended [partial] */
5583 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[6]))
5584 return -1;
5585 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[6] | 1)))
5586 return -1;
5587 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[7]))
5588 return -1;
5589 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5590 return -1;
5591 break;
5592
5593 /* 0xb9c0-0xb9c7 undefined */
5594
5595 case 0xb9c8: /* AHHHR - add high */
5596 case 0xb9c9: /* SHHHR - subtract high */
5597 case 0xb9ca: /* ALHHHR - add logical high */
5598 case 0xb9cb: /* SLHHHR - subtract logical high */
5599 case 0xb9d8: /* AHHLR - add high */
5600 case 0xb9d9: /* SHHLR - subtract high */
5601 case 0xb9da: /* ALHHLR - add logical high */
5602 case 0xb9db: /* SLHHLR - subtract logical high */
5603 /* 32-bit high gpr destination + flags */
5604 if (s390_record_gpr_h (gdbarch, regcache, inib[6]))
5605 return -1;
5606 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5607 return -1;
5608 break;
5609
5610 /* 0xb9cc undefined */
5611 /* 0xb9ce undefined */
5612 /* 0xb9d0-0xb9d7 undefined */
5613 /* 0xb9dc undefined */
5614 /* 0xb9de undefined */
5615
5616 case 0xb9e0: /* LOCFHR - load high on condition */
5617 /* 32-bit high gpr destination */
5618 if (s390_record_gpr_h (gdbarch, regcache, inib[6]))
5619 return -1;
5620 break;
5621
5622 /* 0xb9e3 undefined */
5623 /* 0xb9e5 undefined */
5624 /* 0xb9ec-0xb9f1 undefined */
5625 /* 0xb9f3 undefined */
5626 /* 0xb9f5 undefined */
5627 /* 0xb9fc-0xb9ff undefined */
5628
5629 default:
5630 goto UNKNOWN_OP;
5631 }
5632 break;
5633
5634 /* 0xb4-0xb5 undefined */
5635 /* 0xb6 privileged: STCTL - store control */
5636 /* 0xb7 privileged: LCTL - load control */
5637 /* 0xb8 undefined */
5638
5639 case 0xba: /* CS - compare and swap */
5640 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5641 if (record_full_arch_list_add_mem (oaddr, 4))
5642 return -1;
5643 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
5644 return -1;
5645 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5646 return -1;
5647 break;
5648
5649 case 0xbb: /* CDS - compare double and swap */
5650 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5651 if (record_full_arch_list_add_mem (oaddr, 8))
5652 return -1;
5653 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
5654 return -1;
5655 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
5656 return -1;
5657 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5658 return -1;
5659 break;
5660
5661 /* 0xbc undefined */
5662
5663 case 0xbe: /* STCM - store characters under mask */
5664 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5665 if (record_full_arch_list_add_mem (oaddr, s390_popcnt (inib[3])))
5666 return -1;
5667 break;
5668
5669 case 0xc0:
5670 case 0xc2:
5671 case 0xc4:
5672 case 0xc6:
5673 case 0xcc:
5674 /* RIL-format instruction */
5675 switch (ibyte[0] << 4 | inib[3])
5676 {
5677 case 0xc00: /* LARL - load address relative long */
5678 case 0xc05: /* BRASL - branch relative and save long */
5679 case 0xc09: /* IILF - insert immediate */
5680 case 0xc21: /* MSFI - multiply single immediate */
5681 case 0xc42: /* LLHRL - load logical halfword relative long */
5682 case 0xc45: /* LHRL - load halfword relative long */
5683 case 0xc4d: /* LRL - load relative long */
5684 /* 32-bit or native gpr destination */
5685 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
5686 return -1;
5687 break;
5688
5689 case 0xc01: /* LGFI - load immediate */
5690 case 0xc0e: /* LLIHF - load logical immediate */
5691 case 0xc0f: /* LLILF - load logical immediate */
5692 case 0xc20: /* MSGFI - multiply single immediate */
5693 case 0xc44: /* LGHRL - load halfword relative long */
5694 case 0xc46: /* LLGHRL - load logical halfword relative long */
5695 case 0xc48: /* LGRL - load relative long */
5696 case 0xc4c: /* LGFRL - load relative long */
5697 case 0xc4e: /* LLGFRL - load logical relative long */
5698 /* 64-bit gpr destination */
5699 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
5700 return -1;
5701 break;
5702
5703 /* 0xc02-0xc03 undefined */
5704
5705 case 0xc04: /* BRCL - branch relative on condition long */
5706 case 0xc62: /* PFDRL - prefetch data relative long */
5707 break;
5708
5709 case 0xc06: /* XIHF - xor immediate */
5710 case 0xc0a: /* NIHF - and immediate */
5711 case 0xc0c: /* OIHF - or immediate */
5712 case 0xcc8: /* AIH - add immediate high */
5713 case 0xcca: /* ALSIH - add logical with signed immediate high */
5714 /* 32-bit high gpr destination + flags */
5715 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
5716 return -1;
5717 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5718 return -1;
5719 break;
5720
5721 case 0xc07: /* XILF - xor immediate */
5722 case 0xc0b: /* NILF - and immediate */
5723 case 0xc0d: /* OILF - or immediate */
5724 case 0xc25: /* SLFI - subtract logical immediate */
5725 case 0xc29: /* AFI - add immediate */
5726 case 0xc2b: /* ALFI - add logical immediate */
5727 /* 32-bit gpr destination + flags */
5728 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
5729 return -1;
5730 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5731 return -1;
5732 break;
5733
5734 case 0xc08: /* IIHF - insert immediate */
5735 case 0xcc6: /* BRCTH - branch relative on count high */
5736 case 0xccb: /* ALSIHN - add logical with signed immediate high */
5737 /* 32-bit high gpr destination */
5738 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
5739 return -1;
5740 break;
5741
5742 /* 0xc22-0xc23 undefined */
5743
5744 case 0xc24: /* SLGFI - subtract logical immediate */
5745 case 0xc28: /* AGFI - add immediate */
5746 case 0xc2a: /* ALGFI - add logical immediate */
5747 /* 64-bit gpr destination + flags */
5748 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
5749 return -1;
5750 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5751 return -1;
5752 break;
5753
5754 /* 0xc26-0xc27 undefined */
5755
5756 case 0xc2c: /* CGFI - compare immediate */
5757 case 0xc2d: /* CFI - compare immediate */
5758 case 0xc2e: /* CLGFI - compare logical immediate */
5759 case 0xc2f: /* CLFI - compare logical immediate */
5760 case 0xc64: /* CGHRL - compare halfword relative long */
5761 case 0xc65: /* CHRL - compare halfword relative long */
5762 case 0xc66: /* CLGHRL - compare logical halfword relative long */
5763 case 0xc67: /* CLHRL - compare logical halfword relative long */
5764 case 0xc68: /* CGRL - compare relative long */
5765 case 0xc6a: /* CLGRL - compare logical relative long */
5766 case 0xc6c: /* CGFRL - compare relative long */
5767 case 0xc6d: /* CRL - compare relative long */
5768 case 0xc6e: /* CLGFRL - compare logical relative long */
5769 case 0xc6f: /* CLRL - compare logical relative long */
5770 case 0xccd: /* CIH - compare immediate high */
5771 case 0xccf: /* CLIH - compare logical immediate high */
5772 /* flags only */
5773 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5774 return -1;
5775 break;
5776
5777 /* 0xc40-0xc41 undefined */
5778 /* 0xc43 undefined */
5779
5780 case 0xc47: /* STHRL - store halfword relative long */
5781 oaddr = s390_record_calc_rl (gdbarch, regcache, addr, insn[1], insn[2]);
5782 if (record_full_arch_list_add_mem (oaddr, 2))
5783 return -1;
5784 break;
5785
5786 /* 0xc49-0xc4a undefined */
5787
5788 case 0xc4b: /* STGRL - store relative long */
5789 oaddr = s390_record_calc_rl (gdbarch, regcache, addr, insn[1], insn[2]);
5790 if (record_full_arch_list_add_mem (oaddr, 8))
5791 return -1;
5792 break;
5793
5794 case 0xc4f: /* STRL - store relative long */
5795 oaddr = s390_record_calc_rl (gdbarch, regcache, addr, insn[1], insn[2]);
5796 if (record_full_arch_list_add_mem (oaddr, 4))
5797 return -1;
5798 break;
5799
5800 case 0xc60: /* EXRL - execute relative long */
5801 if (ex != -1)
5802 {
5803 fprintf_unfiltered (gdb_stdlog, "Warning: Double execute at %s.\n",
5804 paddress (gdbarch, addr));
5805 return -1;
5806 }
5807 addr = s390_record_calc_rl (gdbarch, regcache, addr, insn[1], insn[2]);
5808 if (inib[2])
5809 {
5810 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[2], &tmp);
5811 ex = tmp & 0xff;
5812 }
5813 else
5814 {
5815 ex = 0;
5816 }
5817 goto ex;
5818
5819 /* 0xc61 undefined */
5820 /* 0xc63 undefined */
5821 /* 0xc69 undefined */
5822 /* 0xc6b undefined */
5823 /* 0xcc0-0xcc5 undefined */
5824 /* 0xcc7 undefined */
5825 /* 0xcc9 undefined */
5826 /* 0xccc undefined */
5827 /* 0xcce undefined */
5828
5829 default:
5830 goto UNKNOWN_OP;
5831 }
5832 break;
5833
5834 /* 0xc1 undefined */
5835 /* 0xc3 undefined */
5836
5837 case 0xc5: /* BPRP - branch prediction relative preload */
5838 case 0xc7: /* BPP - branch prediction preload */
5839 /* no visible effect */
5840 break;
5841
5842 case 0xc8:
5843 /* SSF-format instruction */
5844 switch (ibyte[0] << 4 | inib[3])
5845 {
5846 /* 0xc80 unsupported */
5847
5848 case 0xc81: /* ECTG - extract cpu time */
5849 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
5850 return -1;
5851 if (s390_record_gpr_g (gdbarch, regcache, 0))
5852 return -1;
5853 if (s390_record_gpr_g (gdbarch, regcache, 1))
5854 return -1;
5855 break;
5856
5857 case 0xc82: /* CSST - compare and swap and store */
5858 {
5859 uint8_t fc, sc;
5860 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
5861 fc = tmp & 0xff;
5862 sc = tmp >> 8 & 0xff;
5863
5864 /* First and third operands. */
5865 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5866 switch (fc)
5867 {
5868 case 0x00: /* 32-bit */
5869 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
5870 return -1;
5871 if (record_full_arch_list_add_mem (oaddr, 4))
5872 return -1;
5873 break;
5874
5875 case 0x01: /* 64-bit */
5876 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
5877 return -1;
5878 if (record_full_arch_list_add_mem (oaddr, 8))
5879 return -1;
5880 break;
5881
5882 case 0x02: /* 128-bit */
5883 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
5884 return -1;
5885 if (s390_record_gpr_g (gdbarch, regcache, inib[2] | 1))
5886 return -1;
5887 if (record_full_arch_list_add_mem (oaddr, 16))
5888 return -1;
5889 break;
5890
5891 default:
5892 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown CSST FC %02x at %s.\n",
5893 fc, paddress (gdbarch, addr));
5894 return -1;
5895 }
5896
5897 /* Second operand. */
5898 oaddr2 = s390_record_calc_disp (gdbarch, regcache, 0, insn[2], 0);
5899 if (sc > 4)
5900 {
5901 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown CSST FC %02x at %s.\n",
5902 sc, paddress (gdbarch, addr));
5903 return -1;
5904 }
5905
5906 if (record_full_arch_list_add_mem (oaddr2, 1 << sc))
5907 return -1;
5908
5909 /* Flags. */
5910 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5911 return -1;
5912 }
5913 break;
5914
5915 /* 0xc83 undefined */
5916
5917 case 0xc84: /* LPD - load pair disjoint */
5918 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
5919 return -1;
5920 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
5921 return -1;
5922 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5923 return -1;
5924 break;
5925
5926 case 0xc85: /* LPDG - load pair disjoint */
5927 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
5928 return -1;
5929 if (s390_record_gpr_g (gdbarch, regcache, inib[2] | 1))
5930 return -1;
5931 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5932 return -1;
5933 break;
5934
5935 /* 0xc86-0xc8f undefined */
5936
5937 default:
5938 goto UNKNOWN_OP;
5939 }
5940 break;
5941
5942 /* 0xc9-0xcb undefined */
5943 /* 0xcd-0xcf undefined */
5944
5945 case 0xd0: /* TRTR - translate and test reversed */
5946 case 0xdd: /* TRT - translate and test */
5947 if (record_full_arch_list_add_reg (regcache, S390_R1_REGNUM))
5948 return -1;
5949 if (record_full_arch_list_add_reg (regcache, S390_R2_REGNUM))
5950 return -1;
5951 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5952 return -1;
5953 break;
5954
5955 case 0xd1: /* MVN - move numbers */
5956 case 0xd2: /* MVC - move */
5957 case 0xd3: /* MVZ - move zones */
5958 case 0xdc: /* TR - translate */
5959 case 0xe8: /* MVCIN - move inverse */
5960 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5961 if (record_full_arch_list_add_mem (oaddr, ibyte[1] + 1))
5962 return -1;
5963 break;
5964
5965 case 0xd4: /* NC - and */
5966 case 0xd6: /* OC - or*/
5967 case 0xd7: /* XC - xor */
5968 case 0xe2: /* UNPKU - unpack unicode */
5969 case 0xea: /* UNPKA - unpack ASCII */
5970 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5971 if (record_full_arch_list_add_mem (oaddr, ibyte[1] + 1))
5972 return -1;
5973 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5974 return -1;
5975 break;
5976
5977 case 0xde: /* ED - edit */
5978 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5979 if (record_full_arch_list_add_mem (oaddr, ibyte[1] + 1))
5980 return -1;
5981 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5982 return -1;
5983 /* DXC may be written */
5984 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
5985 return -1;
5986 break;
5987
5988 case 0xdf: /* EDMK - edit and mark */
5989 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
5990 if (record_full_arch_list_add_mem (oaddr, ibyte[1] + 1))
5991 return -1;
5992 if (record_full_arch_list_add_reg (regcache, S390_R1_REGNUM))
5993 return -1;
5994 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
5995 return -1;
5996 /* DXC may be written */
5997 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
5998 return -1;
5999 break;
6000
6001 /* 0xd8 undefined */
6002 /* 0xd9 unsupported: MVCK - move with key */
6003 /* 0xda unsupported: MVCP - move to primary */
6004 /* 0xdb unsupported: MVCS - move to secondary */
6005 /* 0xe0 undefined */
6006
6007 case 0xe1: /* PKU - pack unicode */
6008 case 0xe9: /* PKA - pack ASCII */
6009 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
6010 if (record_full_arch_list_add_mem (oaddr, 16))
6011 return -1;
6012 break;
6013
6014 case 0xe3:
6015 case 0xe7:
6016 case 0xeb:
6017 case 0xed:
6018 /* RXY/RXE/RXF/RSL/RSY/SIY/V*-format instruction */
6019 switch (ibyte[0] << 8 | ibyte[5])
6020 {
6021 /* 0xe300-0xe301 undefined */
6022
6023 case 0xe302: /* LTG - load and test */
6024 case 0xe308: /* AG - add */
6025 case 0xe309: /* SG - subtract */
6026 case 0xe30a: /* ALG - add logical */
6027 case 0xe30b: /* SLG - subtract logical */
6028 case 0xe318: /* AGF - add */
6029 case 0xe319: /* SGF - subtract */
6030 case 0xe31a: /* ALGF - add logical */
6031 case 0xe31b: /* SLGF - subtract logical */
6032 case 0xe332: /* LTGF - load and test */
6033 case 0xe380: /* NG - and */
6034 case 0xe381: /* OG - or */
6035 case 0xe382: /* XG - xor */
6036 case 0xe388: /* ALCG - add logical with carry */
6037 case 0xe389: /* SLBG - subtract logical with borrow */
6038 case 0xeb0a: /* SRAG - shift right single */
6039 case 0xeb0b: /* SLAG - shift left single */
6040 /* 64-bit gpr destination + flags */
6041 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
6042 return -1;
6043 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6044 return -1;
6045 break;
6046
6047 /* 0xe303 privileged */
6048
6049 case 0xe304: /* LG - load */
6050 case 0xe30c: /* MSG - multiply single */
6051 case 0xe30f: /* LRVG - load reversed */
6052 case 0xe314: /* LGF - load */
6053 case 0xe315: /* LGH - load halfword */
6054 case 0xe316: /* LLGF - load logical */
6055 case 0xe317: /* LLGT - load logical thirty one bits */
6056 case 0xe31c: /* MSGF - multiply single */
6057 case 0xe32a: /* LZRG - load and zero rightmost byte */
6058 case 0xe33a: /* LLZRGF - load logical and zero rightmost byte */
6059 case 0xe346: /* BCTG - branch on count */
6060 case 0xe377: /* LGB - load byte */
6061 case 0xe390: /* LLGC - load logical character */
6062 case 0xe391: /* LLGH - load logical halfword */
6063 case 0xeb0c: /* SRLG - shift right single logical */
6064 case 0xeb0d: /* SLLG - shift left single logical */
6065 case 0xeb1c: /* RLLG - rotate left single logical */
6066 case 0xeb44: /* BXHG - branch on index high */
6067 case 0xeb45: /* BXLEG - branch on index low or equal */
6068 case 0xeb4c: /* ECAG - extract cpu attribute */
6069 case 0xebe2: /* LOCG - load on condition */
6070 /* 64-bit gpr destination */
6071 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
6072 return -1;
6073 break;
6074
6075 /* 0xe305 undefined */
6076
6077 case 0xe306: /* CVBY - convert to binary */
6078 /* 32-bit or native gpr destination + FPC (DXC write) */
6079 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6080 return -1;
6081 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6082 return -1;
6083 break;
6084
6085 /* 0xe307 undefined */
6086
6087 case 0xe30d: /* DSG - divide single */
6088 case 0xe31d: /* DSGF - divide single */
6089 case 0xe386: /* MLG - multiply logical */
6090 case 0xe387: /* DLG - divide logical */
6091 case 0xe38f: /* LPQ - load pair from quadword */
6092 /* 64-bit gpr pair destination */
6093 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
6094 return -1;
6095 if (s390_record_gpr_g (gdbarch, regcache, inib[2] | 1))
6096 return -1;
6097 break;
6098
6099 case 0xe30e: /* CVBG - convert to binary */
6100 /* 64-bit gpr destination + FPC (DXC write) */
6101 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
6102 return -1;
6103 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6104 return -1;
6105 break;
6106
6107 /* 0xe310-0xe311 undefined */
6108
6109 case 0xe312: /* LT - load and test */
6110 case 0xe354: /* NY - and */
6111 case 0xe356: /* OY - or */
6112 case 0xe357: /* XY - xor */
6113 case 0xe35a: /* AY - add */
6114 case 0xe35b: /* SY - subtract */
6115 case 0xe35e: /* ALY - add logical */
6116 case 0xe35f: /* SLY - subtract logical */
6117 case 0xe37a: /* AHY - add halfword */
6118 case 0xe37b: /* SHY - subtract halfword */
6119 case 0xe398: /* ALC - add logical with carry */
6120 case 0xe399: /* SLB - subtract logical with borrow */
6121 case 0xe727: /* LCBB - load count to block bounduary */
6122 case 0xeb81: /* ICMY - insert characters under mask */
6123 case 0xebdc: /* SRAK - shift left single */
6124 case 0xebdd: /* SLAK - shift left single */
6125 /* 32-bit gpr destination + flags */
6126 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6127 return -1;
6128 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6129 return -1;
6130 break;
6131
6132 /* 0xe313 privileged */
6133
6134 case 0xe31e: /* LRV - load reversed */
6135 case 0xe31f: /* LRVH - load reversed */
6136 case 0xe33b: /* LZRF - load and zero rightmost byte */
6137 case 0xe351: /* MSY - multiply single */
6138 case 0xe358: /* LY - load */
6139 case 0xe371: /* LAY - load address */
6140 case 0xe373: /* ICY - insert character */
6141 case 0xe376: /* LB - load byte */
6142 case 0xe378: /* LHY - load */
6143 case 0xe37c: /* MHY - multiply halfword */
6144 case 0xe394: /* LLC - load logical character */
6145 case 0xe395: /* LLH - load logical halfword */
6146 case 0xeb1d: /* RLL - rotate left single logical */
6147 case 0xebde: /* SRLK - shift left single logical */
6148 case 0xebdf: /* SLLK - shift left single logical */
6149 case 0xebf2: /* LOC - load on condition */
6150 /* 32-bit or native gpr destination */
6151 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6152 return -1;
6153 break;
6154
6155 case 0xe320: /* CG - compare */
6156 case 0xe321: /* CLG - compare logical */
6157 case 0xe330: /* CGF - compare */
6158 case 0xe331: /* CLGF - compare logical */
6159 case 0xe334: /* CGH - compare halfword */
6160 case 0xe355: /* CLY - compare logical */
6161 case 0xe359: /* CY - compare */
6162 case 0xe379: /* CHY - compare halfword */
6163 case 0xe3cd: /* CHF - compare high */
6164 case 0xe3cf: /* CLHF - compare logical high */
6165 case 0xeb20: /* CLMH - compare logical under mask high */
6166 case 0xeb21: /* CLMY - compare logical under mask */
6167 case 0xeb51: /* TMY - test under mask */
6168 case 0xeb55: /* CLIY - compare logical */
6169 case 0xebc0: /* TP - test decimal */
6170 case 0xed10: /* TCEB - test data class */
6171 case 0xed11: /* TCDB - test data class */
6172 case 0xed12: /* TCXB - test data class */
6173 case 0xed50: /* TDCET - test data class */
6174 case 0xed51: /* TDGET - test data group */
6175 case 0xed54: /* TDCDT - test data class */
6176 case 0xed55: /* TDGDT - test data group */
6177 case 0xed58: /* TDCXT - test data class */
6178 case 0xed59: /* TDGXT - test data group */
6179 /* flags only */
6180 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6181 return -1;
6182 break;
6183
6184 /* 0xe322-0xe323 undefined */
6185
6186 case 0xe324: /* STG - store */
6187 case 0xe325: /* NTSTG - nontransactional store */
6188 case 0xe326: /* CVDY - convert to decimal */
6189 case 0xe32f: /* STRVG - store reversed */
6190 case 0xebe3: /* STOCG - store on condition */
6191 case 0xed67: /* STDY - store */
6192 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], ibyte[4]);
6193 if (record_full_arch_list_add_mem (oaddr, 8))
6194 return -1;
6195 break;
6196
6197 /* 0xe327-0xe329 undefined */
6198 /* 0xe32b-0xe32d undefined */
6199
6200 case 0xe32e: /* CVDG - convert to decimal */
6201 case 0xe38e: /* STPQ - store pair to quadword */
6202 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], ibyte[4]);
6203 if (record_full_arch_list_add_mem (oaddr, 16))
6204 return -1;
6205 break;
6206
6207 /* 0xe333 undefined */
6208 /* 0xe335 undefined */
6209
6210 case 0xe336: /* PFD - prefetch data */
6211 break;
6212
6213 /* 0xe337-0xe339 undefined */
6214 /* 0xe33c-0xe33d undefined */
6215
6216 case 0xe33e: /* STRV - store reversed */
6217 case 0xe350: /* STY - store */
6218 case 0xe3cb: /* STFH - store high */
6219 case 0xebe1: /* STOCFH - store high on condition */
6220 case 0xebf3: /* STOC - store on condition */
6221 case 0xed66: /* STEY - store */
6222 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], ibyte[4]);
6223 if (record_full_arch_list_add_mem (oaddr, 4))
6224 return -1;
6225 break;
6226
6227 case 0xe33f: /* STRVH - store reversed */
6228 case 0xe370: /* STHY - store halfword */
6229 case 0xe3c7: /* STHH - store halfword high */
6230 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], ibyte[4]);
6231 if (record_full_arch_list_add_mem (oaddr, 2))
6232 return -1;
6233 break;
6234
6235 /* 0xe340-0xe345 undefined */
6236 /* 0xe347-0xe34f undefined */
6237 /* 0xe352-0xe353 undefined */
6238
6239 case 0xe35c: /* MFY - multiply */
6240 case 0xe396: /* ML - multiply logical */
6241 case 0xe397: /* DL - divide logical */
6242 /* 32-bit gpr pair destination */
6243 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6244 return -1;
6245 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
6246 return -1;
6247 break;
6248
6249 /* 0xe35d undefined */
6250 /* 0xe360-0xe36f undefined */
6251
6252 case 0xe372: /* STCY - store character */
6253 case 0xe3c3: /* STCH - store character high */
6254 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], ibyte[4]);
6255 if (record_full_arch_list_add_mem (oaddr, 1))
6256 return -1;
6257 break;
6258
6259 /* 0xe374 undefined */
6260
6261 case 0xe375: /* LAEY - load address extended */
6262 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6263 return -1;
6264 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + inib[2]))
6265 return -1;
6266 break;
6267
6268 /* 0xe37d-0xe37f undefined */
6269 /* 0xe383-0xe384 undefined */
6270
6271 case 0xe385: /* LGAT - load and trap */
6272 case 0xe39c: /* LLGTAT - load logical thirty one bits and trap */
6273 case 0xe39d: /* LLGFAT - load logical and trap */
6274 case 0xe721: /* VLGV - vector load gr from vr element */
6275 /* 64-bit gpr destination + fpc for possible DXC write */
6276 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
6277 return -1;
6278 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6279 return -1;
6280 break;
6281
6282 /* 0xe38a-0xe38d undefined */
6283 /* 0xe392-0xe393 undefined */
6284 /* 0xe39a-0xe39b undefined */
6285 /* 0xe39e undefined */
6286
6287 case 0xe39f: /* LAT - load and trap */
6288 /* 32-bit gpr destination + fpc for possible DXC write */
6289 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6290 return -1;
6291 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6292 return -1;
6293 break;
6294
6295 /* 0xe3a0-0xe3bf undefined */
6296
6297 case 0xe3c0: /* LBH - load byte high */
6298 case 0xe3c2: /* LLCH - load logical character high */
6299 case 0xe3c4: /* LHH - load halfword high */
6300 case 0xe3c6: /* LLHH - load logical halfword high */
6301 case 0xe3ca: /* LFH - load high */
6302 case 0xebe0: /* LOCFH - load high on condition */
6303 /* 32-bit high gpr destination */
6304 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
6305 return -1;
6306 break;
6307
6308 /* 0xe3c1 undefined */
6309 /* 0xe3c5 undefined */
6310
6311 case 0xe3c8: /* LFHAT - load high and trap */
6312 /* 32-bit high gpr destination + fpc for possible DXC write */
6313 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
6314 return -1;
6315 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6316 return -1;
6317 break;
6318
6319 /* 0xe3c9 undefined */
6320 /* 0xe3cc undefined */
6321 /* 0xe3ce undefined */
6322 /* 0xe3d0-0xe3ff undefined */
6323
6324 case 0xe700: /* VLEB - vector load element */
6325 case 0xe701: /* VLEH - vector load element */
6326 case 0xe702: /* VLEG - vector load element */
6327 case 0xe703: /* VLEF - vector load element */
6328 case 0xe704: /* VLLEZ - vector load logical element and zero */
6329 case 0xe705: /* VLREP - vector load and replicate */
6330 case 0xe706: /* VL - vector load */
6331 case 0xe707: /* VLBB - vector load to block bounduary */
6332 case 0xe712: /* VGEG - vector gather element */
6333 case 0xe713: /* VGEF - vector gather element */
6334 case 0xe722: /* VLVG - vector load vr element from gr */
6335 case 0xe730: /* VESL - vector element shift left */
6336 case 0xe733: /* VERLL - vector element rotate left logical */
6337 case 0xe737: /* VLL - vector load with length */
6338 case 0xe738: /* VESRL - vector element shift right logical */
6339 case 0xe73a: /* VESRA - vector element shift right arithmetic */
6340 case 0xe740: /* VLEIB - vector load element immediate */
6341 case 0xe741: /* VLEIH - vector load element immediate */
6342 case 0xe742: /* VLEIG - vector load element immediate */
6343 case 0xe743: /* VLEIF - vector load element immediate */
6344 case 0xe744: /* VGBM - vector generate byte mask */
6345 case 0xe745: /* VREPI - vector replicate immediate */
6346 case 0xe746: /* VGM - vector generate mask */
6347 case 0xe74d: /* VREP - vector replicate */
6348 case 0xe750: /* VPOPCT - vector population count */
6349 case 0xe752: /* VCTZ - vector count trailing zeros */
6350 case 0xe753: /* VCLZ - vector count leading zeros */
6351 case 0xe756: /* VLR - vector load */
6352 case 0xe75f: /* VSEG -vector sign extend to doubleword */
6353 case 0xe760: /* VMRL - vector merge low */
6354 case 0xe761: /* VMRH - vector merge high */
6355 case 0xe762: /* VLVGP - vector load vr from grs disjoint */
6356 case 0xe764: /* VSUM - vector sum across word */
6357 case 0xe765: /* VSUMG - vector sum across doubleword */
6358 case 0xe766: /* VCKSM - vector checksum */
6359 case 0xe767: /* VSUMQ - vector sum across quadword */
6360 case 0xe768: /* VN - vector and */
6361 case 0xe769: /* VNC - vector and with complement */
6362 case 0xe76a: /* VO - vector or */
6363 case 0xe76b: /* VNO - vector nor */
6364 case 0xe76d: /* VX - vector xor */
6365 case 0xe770: /* VESLV - vector element shift left */
6366 case 0xe772: /* VERIM - vector element rotate and insert under mask */
6367 case 0xe773: /* VERLLV - vector element rotate left logical */
6368 case 0xe774: /* VSL - vector shift left */
6369 case 0xe775: /* VSLB - vector shift left by byte */
6370 case 0xe777: /* VSLDB - vector shift left double by byte */
6371 case 0xe778: /* VESRLV - vector element shift right logical */
6372 case 0xe77a: /* VESRAV - vector element shift right arithmetic */
6373 case 0xe77c: /* VSRL - vector shift right logical */
6374 case 0xe77d: /* VSRLB - vector shift right logical by byte */
6375 case 0xe77e: /* VSRA - vector shift right arithmetic */
6376 case 0xe77f: /* VSRAB - vector shift right arithmetic by byte */
6377 case 0xe784: /* VPDI - vector permute doubleword immediate */
6378 case 0xe78c: /* VPERM - vector permute */
6379 case 0xe78d: /* VSEL - vector select */
6380 case 0xe78e: /* VFMS - vector fp multiply and subtract */
6381 case 0xe78f: /* VFMA - vector fp multiply and add */
6382 case 0xe794: /* VPK - vector pack */
6383 case 0xe7a1: /* VMLH - vector multiply logical high */
6384 case 0xe7a2: /* VML - vector multiply low */
6385 case 0xe7a3: /* VMH - vector multiply high */
6386 case 0xe7a4: /* VMLE - vector multiply logical even */
6387 case 0xe7a5: /* VMLO - vector multiply logical odd */
6388 case 0xe7a6: /* VME - vector multiply even */
6389 case 0xe7a7: /* VMO - vector multiply odd */
6390 case 0xe7a9: /* VMALH - vector multiply and add logical high */
6391 case 0xe7aa: /* VMAL - vector multiply and add low */
6392 case 0xe7ab: /* VMAH - vector multiply and add high */
6393 case 0xe7ac: /* VMALE - vector multiply and add logical even */
6394 case 0xe7ad: /* VMALO - vector multiply and add logical odd */
6395 case 0xe7ae: /* VMAE - vector multiply and add even */
6396 case 0xe7af: /* VMAO - vector multiply and add odd */
6397 case 0xe7b4: /* VGFM - vector Galois field multiply sum */
6398 case 0xe7b9: /* VACCC - vector add with carry compute carry */
6399 case 0xe7bb: /* VAC - vector add with carry */
6400 case 0xe7bc: /* VGFMA - vector Galois field multiply sum and accumulate */
6401 case 0xe7bd: /* VSBCBI - vector subtract with borrow compute borrow indication */
6402 case 0xe7bf: /* VSBI - vector subtract with borrow indication */
6403 case 0xe7c0: /* VCLGD - vector convert to logical 64-bit */
6404 case 0xe7c1: /* VCDLG - vector convert from logical 64-bit */
6405 case 0xe7c2: /* VCGD - vector convert to fixed 64-bit */
6406 case 0xe7c3: /* VCDG - vector convert from fixed 64-bit */
6407 case 0xe7c4: /* VLDE - vector fp load lengthened */
6408 case 0xe7c5: /* VLED - vector fp load rounded */
6409 case 0xe7c7: /* VFI - vector load fp integer */
6410 case 0xe7cc: /* VFPSO - vector fp perform sign operation */
6411 case 0xe7ce: /* VFSQ - vector fp square root */
6412 case 0xe7d4: /* VUPLL - vector unpack logical low */
6413 case 0xe7d6: /* VUPL - vector unpack low */
6414 case 0xe7d5: /* VUPLH - vector unpack logical high */
6415 case 0xe7d7: /* VUPH - vector unpack high */
6416 case 0xe7de: /* VLC - vector load complement */
6417 case 0xe7df: /* VLP - vector load positive */
6418 case 0xe7e2: /* VFA - vector fp subtract */
6419 case 0xe7e3: /* VFA - vector fp add */
6420 case 0xe7e5: /* VFD - vector fp divide */
6421 case 0xe7e7: /* VFM - vector fp multiply */
6422 case 0xe7f0: /* VAVGL - vector average logical */
6423 case 0xe7f1: /* VACC - vector add and compute carry */
6424 case 0xe7f2: /* VAVG - vector average */
6425 case 0xe7f3: /* VA - vector add */
6426 case 0xe7f5: /* VSCBI - vector subtract compute borrow indication */
6427 case 0xe7f7: /* VS - vector subtract */
6428 case 0xe7fc: /* VMNL - vector minimum logical */
6429 case 0xe7fd: /* VMXL - vector maximum logical */
6430 case 0xe7fe: /* VMN - vector minimum */
6431 case 0xe7ff: /* VMX - vector maximum */
6432 /* vector destination + FPC */
6433 if (s390_record_vr (gdbarch, regcache, ivec[0]))
6434 return -1;
6435 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6436 return -1;
6437 break;
6438
6439 case 0xe708: /* VSTEB - vector store element */
6440 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
6441 if (record_full_arch_list_add_mem (oaddr, 1))
6442 return -1;
6443 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6444 return -1;
6445 break;
6446
6447 case 0xe709: /* VSTEH - vector store element */
6448 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
6449 if (record_full_arch_list_add_mem (oaddr, 2))
6450 return -1;
6451 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6452 return -1;
6453 break;
6454
6455 case 0xe70a: /* VSTEG - vector store element */
6456 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
6457 if (record_full_arch_list_add_mem (oaddr, 8))
6458 return -1;
6459 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6460 return -1;
6461 break;
6462
6463 case 0xe70b: /* VSTEF - vector store element */
6464 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
6465 if (record_full_arch_list_add_mem (oaddr, 4))
6466 return -1;
6467 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6468 return -1;
6469 break;
6470
6471 /* 0xe70c-0xe70d undefined */
6472
6473 case 0xe70e: /* VST - vector store */
6474 oaddr = s390_record_calc_disp (gdbarch, regcache, inib[3], insn[1], 0);
6475 if (record_full_arch_list_add_mem (oaddr, 16))
6476 return -1;
6477 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6478 return -1;
6479 break;
6480
6481 /* 0xe70f-0xe711 undefined */
6482 /* 0xe714-0xe719 undefined */
6483
6484 case 0xe71a: /* VSCEG - vector scatter element */
6485 if (s390_record_calc_disp_vsce (gdbarch, regcache, ivec[1], inib[8], 8, insn[1], 0, &oaddr))
6486 return -1;
6487 if (record_full_arch_list_add_mem (oaddr, 8))
6488 return -1;
6489 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6490 return -1;
6491 break;
6492
6493 case 0xe71b: /* VSCEF - vector scatter element */
6494 if (s390_record_calc_disp_vsce (gdbarch, regcache, ivec[1], inib[8], 4, insn[1], 0, &oaddr))
6495 return -1;
6496 if (record_full_arch_list_add_mem (oaddr, 4))
6497 return -1;
6498 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6499 return -1;
6500 break;
6501
6502 /* 0xe71c-0xe720 undefined */
6503 /* 0xe723-0xe726 undefined */
6504 /* 0xe728-0xe72f undefined */
6505 /* 0xe731-0xe732 undefined */
6506 /* 0xe734-0xe735 undefined */
6507
6508 case 0xe736: /* VLM - vector load multiple */
6509 for (i = ivec[0]; i != ivec[1]; i++, i &= 0x1f)
6510 if (s390_record_vr (gdbarch, regcache, i))
6511 return -1;
6512 if (s390_record_vr (gdbarch, regcache, ivec[1]))
6513 return -1;
6514 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6515 return -1;
6516 break;
6517
6518 /* 0xe739 undefined */
6519 /* 0xe73b-0xe73d undefined */
6520
6521 case 0xe73e: /* VSTM - vector store multiple */
6522 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
6523 if (ivec[0] <= ivec[1])
6524 n = ivec[1] - ivec[0] + 1;
6525 else
6526 n = ivec[1] + 0x20 - ivec[0] + 1;
6527 if (record_full_arch_list_add_mem (oaddr, n * 16))
6528 return -1;
6529 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6530 return -1;
6531 break;
6532
6533 case 0xe73f: /* VSTL - vector store with length */
6534 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
6535 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[3], &tmp);
6536 tmp &= 0xffffffffu;
6537 if (tmp > 16)
6538 tmp = 16;
6539 if (record_full_arch_list_add_mem (oaddr, tmp))
6540 return -1;
6541 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6542 return -1;
6543 break;
6544
6545 /* 0xe747-0xe749 undefined */
6546
6547 case 0xe74a: /* VFTCI - vector fp test data class immediate */
6548 case 0xe75c: /* VISTR - vector isolate string */
6549 case 0xe780: /* VFEE - vector find element equal */
6550 case 0xe781: /* VFENE - vector find element not equal */
6551 case 0xe782: /* VFA - vector find any element equal */
6552 case 0xe78a: /* VSTRC - vector string range compare */
6553 case 0xe795: /* VPKLS - vector pack logical saturate */
6554 case 0xe797: /* VPKS - vector pack saturate */
6555 case 0xe7e8: /* VFCE - vector fp compare equal */
6556 case 0xe7ea: /* VFCHE - vector fp compare high or equal */
6557 case 0xe7eb: /* VFCE - vector fp compare high */
6558 case 0xe7f8: /* VCEQ - vector compare equal */
6559 case 0xe7f9: /* VCHL - vector compare high logical */
6560 case 0xe7fb: /* VCH - vector compare high */
6561 /* vector destination + flags + FPC */
6562 if (s390_record_vr (gdbarch, regcache, ivec[0]))
6563 return -1;
6564 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6565 return -1;
6566 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6567 return -1;
6568 break;
6569
6570 /* 0xe74b-0xe74c undefined */
6571 /* 0xe74e-0xe74f undefined */
6572 /* 0xe751 undefined */
6573 /* 0xe754-0xe755 undefined */
6574 /* 0xe757-0xe75b undefined */
6575 /* 0xe75d-0xe75e undefined */
6576 /* 0xe763 undefined */
6577 /* 0xe76c undefined */
6578 /* 0xe76e-0xe76f undefined */
6579 /* 0xe771 undefined */
6580 /* 0xe776 undefined */
6581 /* 0xe779 undefined */
6582 /* 0xe77b undefined */
6583 /* 0xe783 undefined */
6584 /* 0xe785-0xe789 undefined */
6585 /* 0xe78b undefined */
6586 /* 0xe790-0xe793 undefined */
6587 /* 0xe796 undefined */
6588 /* 0xe798-0xe7a0 undefined */
6589 /* 0xe7a8 undefined */
6590 /* 0xe7b0-0xe7b3 undefined */
6591 /* 0xe7b5-0xe7b8 undefined */
6592 /* 0xe7ba undefined */
6593 /* 0xe7be undefined */
6594 /* 0xe7c6 undefined */
6595 /* 0xe7c8-0xe7c9 undefined */
6596
6597 case 0xe7ca: /* WFK - vector fp compare and signal scalar */
6598 case 0xe7cb: /* WFC - vector fp compare scalar */
6599 case 0xe7d8: /* VTM - vector test under mask */
6600 case 0xe7d9: /* VECL - vector element compare logical */
6601 case 0xe7db: /* VEC - vector element compare */
6602 case 0xed08: /* KEB - compare and signal */
6603 case 0xed09: /* CEB - compare */
6604 case 0xed18: /* KDB - compare and signal */
6605 case 0xed19: /* CDB - compare */
6606 /* flags + fpc only */
6607 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6608 return -1;
6609 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6610 return -1;
6611 break;
6612
6613 /* 0xe7cd undefined */
6614 /* 0xe7cf-0xe7d3 undefined */
6615 /* 0xe7da undefined */
6616 /* 0xe7dc-0xe7dd undefined */
6617 /* 0xe7e0-0xe7e1 undefined */
6618 /* 0xe7e4 undefined */
6619 /* 0xe7e6 undefined */
6620 /* 0xe7e9 undefined */
6621 /* 0xe7ec-0xe7ef undefined */
6622 /* 0xe7f4 undefined */
6623 /* 0xe7f6 undefined */
6624 /* 0xe7fa undefined */
6625
6626 /* 0xeb00-0xeb03 undefined */
6627
6628 case 0xeb04: /* LMG - load multiple */
6629 for (i = inib[2]; i != inib[3]; i++, i &= 0xf)
6630 if (s390_record_gpr_g (gdbarch, regcache, i))
6631 return -1;
6632 if (s390_record_gpr_g (gdbarch, regcache, inib[3]))
6633 return -1;
6634 break;
6635
6636 /* 0xeb05-0xeb09 undefined */
6637 /* 0xeb0e undefined */
6638 /* 0xeb0f privileged: TRACG */
6639 /* 0xeb10-0xeb13 undefined */
6640
6641 case 0xeb14: /* CSY - compare and swap */
6642 case 0xebf4: /* LAN - load and and */
6643 case 0xebf6: /* LAO - load and or */
6644 case 0xebf7: /* LAX - load and xor */
6645 case 0xebf8: /* LAA - load and add */
6646 case 0xebfa: /* LAAL - load and add logical */
6647 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6648 if (record_full_arch_list_add_mem (oaddr, 4))
6649 return -1;
6650 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6651 return -1;
6652 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6653 return -1;
6654 break;
6655
6656 /* 0xeb15-0xeb1b undefined */
6657 /* 0xeb1e-0xeb1f undefined */
6658 /* 0xeb22 undefined */
6659
6660 case 0xeb23: /* CLT - compare logical and trap */
6661 case 0xeb2b: /* CLGT - compare logical and trap */
6662 /* fpc only - including possible DXC write for trapping insns */
6663 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6664 return -1;
6665 break;
6666
6667 case 0xeb24: /* STMG - store multiple */
6668 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6669 if (inib[2] <= inib[3])
6670 n = inib[3] - inib[2] + 1;
6671 else
6672 n = inib[3] + 0x10 - inib[2] + 1;
6673 if (record_full_arch_list_add_mem (oaddr, n * 8))
6674 return -1;
6675 break;
6676
6677 /* 0xeb25 privileged */
6678
6679 case 0xeb26: /* STMH - store multiple high */
6680 case 0xeb90: /* STMY - store multiple */
6681 case 0xeb9b: /* STAMY - store access multiple */
6682 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6683 if (inib[2] <= inib[3])
6684 n = inib[3] - inib[2] + 1;
6685 else
6686 n = inib[3] + 0x10 - inib[2] + 1;
6687 if (record_full_arch_list_add_mem (oaddr, n * 4))
6688 return -1;
6689 break;
6690
6691 /* 0xeb27-0xeb2a undefined */
6692
6693 case 0xeb2c: /* STCMH - store characters under mask */
6694 case 0xeb2d: /* STCMY - store characters under mask */
6695 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6696 if (record_full_arch_list_add_mem (oaddr, s390_popcnt (inib[3])))
6697 return -1;
6698 break;
6699
6700 /* 0xeb2e undefined */
6701 /* 0xeb2f privileged */
6702
6703 case 0xeb30: /* CSG - compare and swap */
6704 case 0xebe4: /* LANG - load and and */
6705 case 0xebe6: /* LAOG - load and or */
6706 case 0xebe7: /* LAXG - load and xor */
6707 case 0xebe8: /* LAAG - load and add */
6708 case 0xebea: /* LAALG - load and add logical */
6709 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6710 if (record_full_arch_list_add_mem (oaddr, 8))
6711 return -1;
6712 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
6713 return -1;
6714 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6715 return -1;
6716 break;
6717
6718 case 0xeb31: /* CDSY - compare double and swap */
6719 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6720 if (record_full_arch_list_add_mem (oaddr, 8))
6721 return -1;
6722 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6723 return -1;
6724 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
6725 return -1;
6726 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6727 return -1;
6728 break;
6729
6730 /* 0xeb32-0xeb3d undefined */
6731
6732 case 0xeb3e: /* CDSG - compare double and swap */
6733 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6734 if (record_full_arch_list_add_mem (oaddr, 16))
6735 return -1;
6736 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
6737 return -1;
6738 if (s390_record_gpr_g (gdbarch, regcache, inib[2] | 1))
6739 return -1;
6740 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6741 return -1;
6742 break;
6743
6744 /* 0xeb3f-0xeb43 undefined */
6745 /* 0xeb46-0xeb4b undefined */
6746 /* 0xeb4d-0xeb50 undefined */
6747
6748 case 0xeb52: /* MVIY - move */
6749 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6750 if (record_full_arch_list_add_mem (oaddr, 1))
6751 return -1;
6752 break;
6753
6754 case 0xeb54: /* NIY - and */
6755 case 0xeb56: /* OIY - or */
6756 case 0xeb57: /* XIY - xor */
6757 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6758 if (record_full_arch_list_add_mem (oaddr, 1))
6759 return -1;
6760 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6761 return -1;
6762 break;
6763
6764 /* 0xeb53 undefined */
6765 /* 0xeb58-0xeb69 undefined */
6766
6767 case 0xeb6a: /* ASI - add immediate */
6768 case 0xeb6e: /* ALSI - add immediate */
6769 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6770 if (record_full_arch_list_add_mem (oaddr, 4))
6771 return -1;
6772 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6773 return -1;
6774 break;
6775
6776 /* 0xeb6b-0xeb6d undefined */
6777 /* 0xeb6f-0xeb79 undefined */
6778
6779 case 0xeb7a: /* AGSI - add immediate */
6780 case 0xeb7e: /* ALGSI - add immediate */
6781 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], ibyte[4]);
6782 if (record_full_arch_list_add_mem (oaddr, 8))
6783 return -1;
6784 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6785 return -1;
6786 break;
6787
6788 /* 0xeb7b-0xeb7d undefined */
6789 /* 0xeb7f undefined */
6790
6791 case 0xeb80: /* ICMH - insert characters under mask */
6792 /* 32-bit high gpr destination + flags */
6793 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
6794 return -1;
6795 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6796 return -1;
6797 break;
6798
6799 /* 0xeb82-0xeb8d undefined */
6800
6801 case 0xeb8e: /* MVCLU - move long unicode [partial] */
6802 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + inib[2], &tmp);
6803 oaddr = s390_record_address_mask (gdbarch, regcache, tmp);
6804 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM + (inib[2] | 1), &tmp);
6805 if (record_full_arch_list_add_mem (oaddr, tmp))
6806 return -1;
6807 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6808 return -1;
6809 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
6810 return -1;
6811 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
6812 return -1;
6813 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[3] | 1)))
6814 return -1;
6815 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6816 return -1;
6817 break;
6818
6819 case 0xeb8f: /* CLCLU - compare logical long unicode [partial] */
6820 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
6821 return -1;
6822 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[2] | 1)))
6823 return -1;
6824 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
6825 return -1;
6826 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + (inib[3] | 1)))
6827 return -1;
6828 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6829 return -1;
6830 break;
6831
6832 /* 0xeb91-0xeb95 undefined */
6833
6834 case 0xeb96: /* LMH - load multiple high */
6835 for (i = inib[2]; i != inib[3]; i++, i &= 0xf)
6836 if (s390_record_gpr_h (gdbarch, regcache, i))
6837 return -1;
6838 if (s390_record_gpr_h (gdbarch, regcache, inib[3]))
6839 return -1;
6840 break;
6841
6842 /* 0xeb97 undefined */
6843
6844 case 0xeb98: /* LMY - load multiple */
6845 for (i = inib[2]; i != inib[3]; i++, i &= 0xf)
6846 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + i))
6847 return -1;
6848 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
6849 return -1;
6850 break;
6851
6852 /* 0xeb99 undefined */
6853
6854 case 0xeb9a: /* LAMY - load access multiple */
6855 for (i = inib[2]; i != inib[3]; i++, i &= 0xf)
6856 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + i))
6857 return -1;
6858 if (record_full_arch_list_add_reg (regcache, S390_A0_REGNUM + inib[3]))
6859 return -1;
6860 break;
6861
6862 /* 0xeb9c-0xebbf undefined */
6863 /* 0xebc1-0xebdb undefined */
6864 /* 0xebe5 undefined */
6865 /* 0xebe9 undefined */
6866 /* 0xebeb-0xebf1 undefined */
6867 /* 0xebf5 undefined */
6868 /* 0xebf9 undefined */
6869 /* 0xebfb-0xebff undefined */
6870
6871 /* 0xed00-0xed03 undefined */
6872
6873 case 0xed04: /* LDEB - load lengthened */
6874 case 0xed0c: /* MDEB - multiply */
6875 case 0xed0d: /* DEB - divide */
6876 case 0xed14: /* SQEB - square root */
6877 case 0xed15: /* SQDB - square root */
6878 case 0xed17: /* MEEB - multiply */
6879 case 0xed1c: /* MDB - multiply */
6880 case 0xed1d: /* DDB - divide */
6881 /* float destination + fpc */
6882 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
6883 return -1;
6884 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6885 return -1;
6886 break;
6887
6888 case 0xed05: /* LXDB - load lengthened */
6889 case 0xed06: /* LXEB - load lengthened */
6890 case 0xed07: /* MXDB - multiply */
6891 /* float pair destination + fpc */
6892 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
6893 return -1;
6894 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[2] | 2)))
6895 return -1;
6896 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6897 return -1;
6898 break;
6899
6900 case 0xed0a: /* AEB - add */
6901 case 0xed0b: /* SEB - subtract */
6902 case 0xed1a: /* ADB - add */
6903 case 0xed1b: /* SDB - subtract */
6904 /* float destination + flags + fpc */
6905 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
6906 return -1;
6907 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
6908 return -1;
6909 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6910 return -1;
6911 break;
6912
6913 case 0xed0e: /* MAEB - multiply and add */
6914 case 0xed0f: /* MSEB - multiply and subtract */
6915 case 0xed1e: /* MADB - multiply and add */
6916 case 0xed1f: /* MSDB - multiply and subtract */
6917 case 0xed40: /* SLDT - shift significand left */
6918 case 0xed41: /* SRDT - shift significand right */
6919 case 0xedaa: /* CDZT - convert from zoned */
6920 case 0xedae: /* CDPT - convert from packed */
6921 /* float destination [RXF] + fpc */
6922 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[8]))
6923 return -1;
6924 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6925 return -1;
6926 break;
6927
6928 /* 0xed13 undefined */
6929 /* 0xed16 undefined */
6930 /* 0xed20-0xed23 undefined */
6931
6932 case 0xed24: /* LDE - load lengthened */
6933 case 0xed34: /* SQE - square root */
6934 case 0xed35: /* SQD - square root */
6935 case 0xed37: /* MEE - multiply */
6936 case 0xed64: /* LEY - load */
6937 case 0xed65: /* LDY - load */
6938 /* float destination */
6939 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
6940 return -1;
6941 break;
6942
6943 case 0xed25: /* LXD - load lengthened */
6944 case 0xed26: /* LXE - load lengthened */
6945 /* float pair destination */
6946 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[2]))
6947 return -1;
6948 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[2] | 2)))
6949 return -1;
6950 break;
6951
6952 /* 0xed27-0xed2d undefined */
6953
6954 case 0xed2e: /* MAE - multiply and add */
6955 case 0xed2f: /* MSE - multiply and subtract */
6956 case 0xed38: /* MAYL - multiply and add unnormalized */
6957 case 0xed39: /* MYL - multiply unnormalized */
6958 case 0xed3c: /* MAYH - multiply and add unnormalized */
6959 case 0xed3d: /* MYH - multiply unnormalized */
6960 case 0xed3e: /* MAD - multiply and add */
6961 case 0xed3f: /* MSD - multiply and subtract */
6962 /* float destination [RXF] */
6963 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[8]))
6964 return -1;
6965 break;
6966
6967 /* 0xed30-0xed33 undefined */
6968 /* 0xed36 undefined */
6969
6970 case 0xed3a: /* MAY - multiply and add unnormalized */
6971 case 0xed3b: /* MY - multiply unnormalized */
6972 /* float pair destination [RXF] */
6973 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[8]))
6974 return -1;
6975 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[8] | 2)))
6976 return -1;
6977 break;
6978
6979 /* 0xed42-0xed47 undefind */
6980
6981 case 0xed48: /* SLXT - shift significand left */
6982 case 0xed49: /* SRXT - shift significand right */
6983 case 0xedab: /* CXZT - convert from zoned */
6984 case 0xedaf: /* CXPT - convert from packed */
6985 /* float pair destination [RXF] + fpc */
6986 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + inib[8]))
6987 return -1;
6988 if (record_full_arch_list_add_reg (regcache, S390_F0_REGNUM + (inib[8] | 2)))
6989 return -1;
6990 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
6991 return -1;
6992 break;
6993
6994 /* 0xed4a-0xed4f undefind */
6995 /* 0xed52-0xed53 undefind */
6996 /* 0xed56-0xed57 undefind */
6997 /* 0xed5a-0xed63 undefind */
6998 /* 0xed68-0xeda7 undefined */
6999
7000 case 0xeda8: /* CZDT - convert to zoned */
7001 case 0xeda9: /* CZXT - convert to zoned */
7002 case 0xedac: /* CPDT - convert to packed */
7003 case 0xedad: /* CPXT - convert to packed */
7004 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7005 if (record_full_arch_list_add_mem (oaddr, ibyte[1] + 1))
7006 return -1;
7007 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7008 return -1;
7009 break;
7010
7011 /* 0xedb0-0xedff undefined */
7012
7013 default:
7014 goto UNKNOWN_OP;
7015 }
7016 break;
7017
7018 /* 0xe4 undefined */
7019
7020 case 0xe5:
7021 /* SSE/SIL-format instruction */
7022 switch (insn[0])
7023 {
7024 /* 0xe500-0xe543 undefined, privileged, or unsupported */
7025
7026 case 0xe544: /* MVHHI - move */
7027 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7028 if (record_full_arch_list_add_mem (oaddr, 2))
7029 return -1;
7030 break;
7031
7032 /* 0xe545-0xe547 undefined */
7033
7034 case 0xe548: /* MVGHI - move */
7035 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7036 if (record_full_arch_list_add_mem (oaddr, 8))
7037 return -1;
7038 break;
7039
7040 /* 0xe549-0xe54b undefined */
7041
7042 case 0xe54c: /* MVHI - move */
7043 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7044 if (record_full_arch_list_add_mem (oaddr, 4))
7045 return -1;
7046 break;
7047
7048 /* 0xe54d-0xe553 undefined */
7049
7050 case 0xe554: /* CHHSI - compare halfword immediate */
7051 case 0xe555: /* CLHHSI - compare logical immediate */
7052 case 0xe558: /* CGHSI - compare halfword immediate */
7053 case 0xe559: /* CLGHSI - compare logical immediate */
7054 case 0xe55c: /* CHSI - compare halfword immediate */
7055 case 0xe55d: /* CLFHSI - compare logical immediate */
7056 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7057 return -1;
7058 break;
7059
7060 /* 0xe556-0xe557 undefined */
7061 /* 0xe55a-0xe55b undefined */
7062 /* 0xe55e-0xe55f undefined */
7063
7064 case 0xe560: /* TBEGIN - transaction begin */
7065 /* The transaction will be immediately aborted after this
7066 instruction, due to single-stepping. This instruction is
7067 only supported so that the program can fail a few times
7068 and go to the non-transactional fallback. */
7069 if (inib[4])
7070 {
7071 /* Transaction diagnostic block - user. */
7072 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7073 if (record_full_arch_list_add_mem (oaddr, 256))
7074 return -1;
7075 }
7076 /* Transaction diagnostic block - supervisor. */
7077 if (record_full_arch_list_add_reg (regcache, S390_TDB_DWORD0_REGNUM))
7078 return -1;
7079 if (record_full_arch_list_add_reg (regcache, S390_TDB_ABORT_CODE_REGNUM))
7080 return -1;
7081 if (record_full_arch_list_add_reg (regcache, S390_TDB_CONFLICT_TOKEN_REGNUM))
7082 return -1;
7083 if (record_full_arch_list_add_reg (regcache, S390_TDB_ATIA_REGNUM))
7084 return -1;
7085 for (i = 0; i < 16; i++)
7086 if (record_full_arch_list_add_reg (regcache, S390_TDB_R0_REGNUM + i))
7087 return -1;
7088 /* And flags. */
7089 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7090 return -1;
7091 break;
7092
7093 /* 0xe561 unsupported: TBEGINC */
7094 /* 0xe562-0xe5ff undefined */
7095
7096 default:
7097 goto UNKNOWN_OP;
7098 }
7099 break;
7100
7101 /* 0xe6 undefined */
7102
7103 case 0xec:
7104 /* RIE/RIS/RRS-format instruction */
7105 switch (ibyte[0] << 8 | ibyte[5])
7106 {
7107 /* 0xec00-0xec41 undefined */
7108
7109 case 0xec42: /* LOCHI - load halfword immediate on condition */
7110 case 0xec51: /* RISBLG - rotate then insert selected bits low */
7111 /* 32-bit or native gpr destination */
7112 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
7113 return -1;
7114 break;
7115
7116 /* 0xec43 undefined */
7117
7118 case 0xec44: /* BRXHG - branch relative on index high */
7119 case 0xec45: /* BRXLG - branch relative on index low or equal */
7120 case 0xec46: /* LOCGHI - load halfword immediate on condition */
7121 case 0xec59: /* RISBGN - rotate then insert selected bits */
7122 /* 64-bit gpr destination */
7123 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
7124 return -1;
7125 break;
7126
7127 /* 0xec47-0xec4d undefined */
7128
7129 case 0xec4e: /* LOCHHI - load halfword immediate on condition */
7130 case 0xec5d: /* RISBHG - rotate then insert selected bits high */
7131 /* 32-bit high gpr destination */
7132 if (s390_record_gpr_h (gdbarch, regcache, inib[2]))
7133 return -1;
7134 break;
7135
7136 /* 0xec4f-0xec50 undefined */
7137 /* 0xec52-0xec53 undefined */
7138
7139 case 0xec54: /* RNSBG - rotate then and selected bits */
7140 case 0xec55: /* RISBG - rotate then insert selected bits */
7141 case 0xec56: /* ROSBG - rotate then or selected bits */
7142 case 0xec57: /* RXSBG - rotate then xor selected bits */
7143 case 0xecd9: /* AGHIK - add immediate */
7144 case 0xecdb: /* ALGHSIK - add logical immediate */
7145 /* 64-bit gpr destination + flags */
7146 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
7147 return -1;
7148 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7149 return -1;
7150 break;
7151
7152 /* 0xec58 undefined */
7153 /* 0xec5a-0xec5c undefined */
7154 /* 0xec5e-0xec63 undefined */
7155
7156 case 0xec64: /* CGRJ - compare and branch relative */
7157 case 0xec65: /* CLGRJ - compare logical and branch relative */
7158 case 0xec76: /* CRJ - compare and branch relative */
7159 case 0xec77: /* CLRJ - compare logical and branch relative */
7160 case 0xec7c: /* CGIJ - compare immediate and branch relative */
7161 case 0xec7d: /* CLGIJ - compare logical immediate and branch relative */
7162 case 0xec7e: /* CIJ - compare immediate and branch relative */
7163 case 0xec7f: /* CLIJ - compare logical immediate and branch relative */
7164 case 0xece4: /* CGRB - compare and branch */
7165 case 0xece5: /* CLGRB - compare logical and branch */
7166 case 0xecf6: /* CRB - compare and branch */
7167 case 0xecf7: /* CLRB - compare logical and branch */
7168 case 0xecfc: /* CGIB - compare immediate and branch */
7169 case 0xecfd: /* CLGIB - compare logical immediate and branch */
7170 case 0xecfe: /* CIB - compare immediate and branch */
7171 case 0xecff: /* CLIB - compare logical immediate and branch */
7172 break;
7173
7174 /* 0xec66-0xec6f undefined */
7175
7176 case 0xec70: /* CGIT - compare immediate and trap */
7177 case 0xec71: /* CLGIT - compare logical immediate and trap */
7178 case 0xec72: /* CIT - compare immediate and trap */
7179 case 0xec73: /* CLFIT - compare logical immediate and trap */
7180 /* fpc only - including possible DXC write for trapping insns */
7181 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
7182 return -1;
7183 break;
7184
7185 /* 0xec74-0xec75 undefined */
7186 /* 0xec78-0xec7b undefined */
7187
7188 /* 0xec80-0xecd7 undefined */
7189
7190 case 0xecd8: /* AHIK - add immediate */
7191 case 0xecda: /* ALHSIK - add logical immediate */
7192 /* 32-bit gpr destination + flags */
7193 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
7194 return -1;
7195 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7196 return -1;
7197 break;
7198
7199 /* 0xecdc-0xece3 undefined */
7200 /* 0xece6-0xecf5 undefined */
7201 /* 0xecf8-0xecfb undefined */
7202
7203 default:
7204 goto UNKNOWN_OP;
7205 }
7206 break;
7207
7208 case 0xee: /* PLO - perform locked operation */
7209 regcache_raw_read_unsigned (regcache, S390_R0_REGNUM, &tmp);
7210 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7211 oaddr2 = s390_record_calc_disp (gdbarch, regcache, 0, insn[2], 0);
7212 if (!(tmp & 0x100))
7213 {
7214 uint8_t fc = tmp & 0xff;
7215 gdb_byte buf[8];
7216 switch (fc)
7217 {
7218 case 0x00: /* CL */
7219 /* op1c */
7220 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
7221 return -1;
7222 /* op3 */
7223 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
7224 return -1;
7225 break;
7226
7227 case 0x01: /* CLG */
7228 /* op1c */
7229 if (record_full_arch_list_add_mem (oaddr2 + 0x08, 8))
7230 return -1;
7231 /* op3 */
7232 if (record_full_arch_list_add_mem (oaddr2 + 0x28, 8))
7233 return -1;
7234 break;
7235
7236 case 0x02: /* CLGR */
7237 /* op1c */
7238 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
7239 return -1;
7240 /* op3 */
7241 if (s390_record_gpr_g (gdbarch, regcache, inib[3]))
7242 return -1;
7243 break;
7244
7245 case 0x03: /* CLX */
7246 /* op1c */
7247 if (record_full_arch_list_add_mem (oaddr2 + 0x00, 16))
7248 return -1;
7249 /* op3 */
7250 if (record_full_arch_list_add_mem (oaddr2 + 0x20, 16))
7251 return -1;
7252 break;
7253
7254 case 0x08: /* DCS */
7255 /* op3c */
7256 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[3]))
7257 return -1;
7258 /* fallthru */
7259 case 0x0c: /* CSST */
7260 /* op4 */
7261 if (record_full_arch_list_add_mem (oaddr2, 4))
7262 return -1;
7263 goto CS;
7264
7265 case 0x14: /* CSTST */
7266 /* op8 */
7267 if (target_read_memory (oaddr2 + 0x88, buf, 8))
7268 return -1;
7269 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7270 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7271 if (record_full_arch_list_add_mem (oaddr3, 4))
7272 return -1;
7273 /* fallthru */
7274 case 0x10: /* CSDST */
7275 /* op6 */
7276 if (target_read_memory (oaddr2 + 0x68, buf, 8))
7277 return -1;
7278 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7279 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7280 if (record_full_arch_list_add_mem (oaddr3, 4))
7281 return -1;
7282 /* op4 */
7283 if (target_read_memory (oaddr2 + 0x48, buf, 8))
7284 return -1;
7285 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7286 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7287 if (record_full_arch_list_add_mem (oaddr3, 4))
7288 return -1;
7289 /* fallthru */
7290 case 0x04: /* CS */
7291 CS:
7292 /* op1c */
7293 if (record_full_arch_list_add_reg (regcache, S390_R0_REGNUM + inib[2]))
7294 return -1;
7295 /* op2 */
7296 if (record_full_arch_list_add_mem (oaddr, 4))
7297 return -1;
7298 break;
7299
7300 case 0x09: /* DCSG */
7301 /* op3c */
7302 if (record_full_arch_list_add_mem (oaddr2 + 0x28, 8))
7303 return -1;
7304 goto CSSTG;
7305
7306 case 0x15: /* CSTSTG */
7307 /* op8 */
7308 if (target_read_memory (oaddr2 + 0x88, buf, 8))
7309 return -1;
7310 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7311 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7312 if (record_full_arch_list_add_mem (oaddr3, 8))
7313 return -1;
7314 /* fallthru */
7315 case 0x11: /* CSDSTG */
7316 /* op6 */
7317 if (target_read_memory (oaddr2 + 0x68, buf, 8))
7318 return -1;
7319 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7320 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7321 if (record_full_arch_list_add_mem (oaddr3, 8))
7322 return -1;
7323 /* fallthru */
7324 case 0x0d: /* CSSTG */
7325 CSSTG:
7326 /* op4 */
7327 if (target_read_memory (oaddr2 + 0x48, buf, 8))
7328 return -1;
7329 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7330 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7331 if (record_full_arch_list_add_mem (oaddr3, 8))
7332 return -1;
7333 /* fallthru */
7334 case 0x05: /* CSG */
7335 /* op1c */
7336 if (record_full_arch_list_add_mem (oaddr2 + 0x08, 8))
7337 return -1;
7338 /* op2 */
7339 if (record_full_arch_list_add_mem (oaddr, 8))
7340 return -1;
7341 break;
7342
7343 case 0x0a: /* DCSGR */
7344 /* op3c */
7345 if (s390_record_gpr_g (gdbarch, regcache, inib[3]))
7346 return -1;
7347 /* fallthru */
7348 case 0x0e: /* CSSTGR */
7349 /* op4 */
7350 if (record_full_arch_list_add_mem (oaddr2, 8))
7351 return -1;
7352 goto CSGR;
7353
7354 case 0x16: /* CSTSTGR */
7355 /* op8 */
7356 if (target_read_memory (oaddr2 + 0x88, buf, 8))
7357 return -1;
7358 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7359 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7360 if (record_full_arch_list_add_mem (oaddr3, 8))
7361 return -1;
7362 /* fallthru */
7363 case 0x12: /* CSDSTGR */
7364 /* op6 */
7365 if (target_read_memory (oaddr2 + 0x68, buf, 8))
7366 return -1;
7367 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7368 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7369 if (record_full_arch_list_add_mem (oaddr3, 8))
7370 return -1;
7371 /* op4 */
7372 if (target_read_memory (oaddr2 + 0x48, buf, 8))
7373 return -1;
7374 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7375 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7376 if (record_full_arch_list_add_mem (oaddr3, 8))
7377 return -1;
7378 /* fallthru */
7379 case 0x06: /* CSGR */
7380 CSGR:
7381 /* op1c */
7382 if (s390_record_gpr_g (gdbarch, regcache, inib[2]))
7383 return -1;
7384 /* op2 */
7385 if (record_full_arch_list_add_mem (oaddr, 8))
7386 return -1;
7387 break;
7388
7389 case 0x0b: /* DCSX */
7390 /* op3c */
7391 if (record_full_arch_list_add_mem (oaddr2 + 0x20, 16))
7392 return -1;
7393 goto CSSTX;
7394
7395 case 0x17: /* CSTSTX */
7396 /* op8 */
7397 if (target_read_memory (oaddr2 + 0x88, buf, 8))
7398 return -1;
7399 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7400 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7401 if (record_full_arch_list_add_mem (oaddr3, 16))
7402 return -1;
7403 /* fallthru */
7404 case 0x13: /* CSDSTX */
7405 /* op6 */
7406 if (target_read_memory (oaddr2 + 0x68, buf, 8))
7407 return -1;
7408 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7409 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7410 if (record_full_arch_list_add_mem (oaddr3, 16))
7411 return -1;
7412 /* fallthru */
7413 case 0x0f: /* CSSTX */
7414 CSSTX:
7415 /* op4 */
7416 if (target_read_memory (oaddr2 + 0x48, buf, 8))
7417 return -1;
7418 oaddr3 = extract_unsigned_integer (buf, 8, byte_order);
7419 oaddr3 = s390_record_address_mask (gdbarch, regcache, oaddr3);
7420 if (record_full_arch_list_add_mem (oaddr3, 16))
7421 return -1;
7422 /* fallthru */
7423 case 0x07: /* CSX */
7424 /* op1c */
7425 if (record_full_arch_list_add_mem (oaddr2 + 0x00, 16))
7426 return -1;
7427 /* op2 */
7428 if (record_full_arch_list_add_mem (oaddr, 16))
7429 return -1;
7430 break;
7431
7432 default:
7433 fprintf_unfiltered (gdb_stdlog, "Warning: Unknown PLO FC %02x at %s.\n",
7434 fc, paddress (gdbarch, addr));
7435 return -1;
7436 }
7437 }
7438 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7439 return -1;
7440 break;
7441
7442 case 0xef: /* LMD - load multiple disjoint */
7443 for (i = inib[2]; i != inib[3]; i++, i &= 0xf)
7444 if (s390_record_gpr_g (gdbarch, regcache, i))
7445 return -1;
7446 if (s390_record_gpr_g (gdbarch, regcache, inib[3]))
7447 return -1;
7448 break;
7449
7450 case 0xf0: /* SRP - shift and round decimal */
7451 case 0xf8: /* ZAP - zero and add */
7452 case 0xfa: /* AP - add decimal */
7453 case 0xfb: /* SP - subtract decimal */
7454 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7455 if (record_full_arch_list_add_mem (oaddr, inib[2] + 1))
7456 return -1;
7457 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7458 return -1;
7459 /* DXC may be written */
7460 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
7461 return -1;
7462 break;
7463
7464 case 0xf1: /* MVO - move with offset */
7465 case 0xf2: /* PACK - pack */
7466 case 0xf3: /* UNPK - unpack */
7467 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7468 if (record_full_arch_list_add_mem (oaddr, inib[2] + 1))
7469 return -1;
7470 break;
7471
7472 /* 0xf4-0xf7 undefined */
7473
7474 case 0xf9: /* CP - compare decimal */
7475 if (record_full_arch_list_add_reg (regcache, S390_PSWM_REGNUM))
7476 return -1;
7477 /* DXC may be written */
7478 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
7479 return -1;
7480 break;
7481
7482 case 0xfc: /* MP - multiply decimal */
7483 case 0xfd: /* DP - divide decimal */
7484 oaddr = s390_record_calc_disp (gdbarch, regcache, 0, insn[1], 0);
7485 if (record_full_arch_list_add_mem (oaddr, inib[2] + 1))
7486 return -1;
7487 /* DXC may be written */
7488 if (record_full_arch_list_add_reg (regcache, S390_FPC_REGNUM))
7489 return -1;
7490 break;
7491
7492 /* 0xfe-0xff undefined */
7493
7494 default:
7495 UNKNOWN_OP:
7496 fprintf_unfiltered (gdb_stdlog, "Warning: Don't know how to record %04x "
7497 "at %s.\n", insn[0], paddress (gdbarch, addr));
7498 return -1;
7499 }
7500
7501 if (record_full_arch_list_add_reg (regcache, S390_PSWA_REGNUM))
7502 return -1;
7503 if (record_full_arch_list_add_end ())
7504 return -1;
7505 return 0;
7506 }
7507
7508 /* Initialize linux_record_tdep if not initialized yet. */
7509
7510 static void
7511 s390_init_linux_record_tdep (struct linux_record_tdep *record_tdep,
7512 enum s390_abi_kind abi)
7513 {
7514 /* These values are the size of the type that will be used in a system
7515 call. They are obtained from Linux Kernel source. */
7516
7517 if (abi == ABI_LINUX_ZSERIES)
7518 {
7519 record_tdep->size_pointer = 8;
7520 /* no _old_kernel_stat */
7521 record_tdep->size_tms = 32;
7522 record_tdep->size_loff_t = 8;
7523 record_tdep->size_flock = 32;
7524 record_tdep->size_ustat = 32;
7525 record_tdep->size_old_sigaction = 32;
7526 record_tdep->size_old_sigset_t = 8;
7527 record_tdep->size_rlimit = 16;
7528 record_tdep->size_rusage = 144;
7529 record_tdep->size_timeval = 16;
7530 record_tdep->size_timezone = 8;
7531 /* old_[ug]id_t never used */
7532 record_tdep->size_fd_set = 128;
7533 record_tdep->size_old_dirent = 280;
7534 record_tdep->size_statfs = 88;
7535 record_tdep->size_statfs64 = 88;
7536 record_tdep->size_sockaddr = 16;
7537 record_tdep->size_int = 4;
7538 record_tdep->size_long = 8;
7539 record_tdep->size_ulong = 8;
7540 record_tdep->size_msghdr = 56;
7541 record_tdep->size_itimerval = 32;
7542 record_tdep->size_stat = 144;
7543 /* old_utsname unused */
7544 record_tdep->size_sysinfo = 112;
7545 record_tdep->size_msqid_ds = 120;
7546 record_tdep->size_shmid_ds = 112;
7547 record_tdep->size_new_utsname = 390;
7548 record_tdep->size_timex = 208;
7549 record_tdep->size_mem_dqinfo = 24;
7550 record_tdep->size_if_dqblk = 72;
7551 record_tdep->size_fs_quota_stat = 80;
7552 record_tdep->size_timespec = 16;
7553 record_tdep->size_pollfd = 8;
7554 record_tdep->size_NFS_FHSIZE = 32;
7555 record_tdep->size_knfsd_fh = 132;
7556 record_tdep->size_TASK_COMM_LEN = 16;
7557 record_tdep->size_sigaction = 32;
7558 record_tdep->size_sigset_t = 8;
7559 record_tdep->size_siginfo_t = 128;
7560 record_tdep->size_cap_user_data_t = 12;
7561 record_tdep->size_stack_t = 24;
7562 record_tdep->size_off_t = 8;
7563 /* stat64 unused */
7564 record_tdep->size_gid_t = 4;
7565 record_tdep->size_uid_t = 4;
7566 record_tdep->size_PAGE_SIZE = 0x1000; /* 4KB */
7567 record_tdep->size_flock64 = 32;
7568 record_tdep->size_io_event = 32;
7569 record_tdep->size_iocb = 64;
7570 record_tdep->size_epoll_event = 16;
7571 record_tdep->size_itimerspec = 32;
7572 record_tdep->size_mq_attr = 64;
7573 record_tdep->size_termios = 36;
7574 record_tdep->size_termios2 = 44;
7575 record_tdep->size_pid_t = 4;
7576 record_tdep->size_winsize = 8;
7577 record_tdep->size_serial_struct = 72;
7578 record_tdep->size_serial_icounter_struct = 80;
7579 record_tdep->size_size_t = 8;
7580 record_tdep->size_iovec = 16;
7581 record_tdep->size_time_t = 8;
7582 }
7583 else if (abi == ABI_LINUX_S390)
7584 {
7585 record_tdep->size_pointer = 4;
7586 record_tdep->size__old_kernel_stat = 32;
7587 record_tdep->size_tms = 16;
7588 record_tdep->size_loff_t = 8;
7589 record_tdep->size_flock = 16;
7590 record_tdep->size_ustat = 20;
7591 record_tdep->size_old_sigaction = 16;
7592 record_tdep->size_old_sigset_t = 4;
7593 record_tdep->size_rlimit = 8;
7594 record_tdep->size_rusage = 72;
7595 record_tdep->size_timeval = 8;
7596 record_tdep->size_timezone = 8;
7597 record_tdep->size_old_gid_t = 2;
7598 record_tdep->size_old_uid_t = 2;
7599 record_tdep->size_fd_set = 128;
7600 record_tdep->size_old_dirent = 268;
7601 record_tdep->size_statfs = 64;
7602 record_tdep->size_statfs64 = 88;
7603 record_tdep->size_sockaddr = 16;
7604 record_tdep->size_int = 4;
7605 record_tdep->size_long = 4;
7606 record_tdep->size_ulong = 4;
7607 record_tdep->size_msghdr = 28;
7608 record_tdep->size_itimerval = 16;
7609 record_tdep->size_stat = 64;
7610 /* old_utsname unused */
7611 record_tdep->size_sysinfo = 64;
7612 record_tdep->size_msqid_ds = 88;
7613 record_tdep->size_shmid_ds = 84;
7614 record_tdep->size_new_utsname = 390;
7615 record_tdep->size_timex = 128;
7616 record_tdep->size_mem_dqinfo = 24;
7617 record_tdep->size_if_dqblk = 72;
7618 record_tdep->size_fs_quota_stat = 80;
7619 record_tdep->size_timespec = 8;
7620 record_tdep->size_pollfd = 8;
7621 record_tdep->size_NFS_FHSIZE = 32;
7622 record_tdep->size_knfsd_fh = 132;
7623 record_tdep->size_TASK_COMM_LEN = 16;
7624 record_tdep->size_sigaction = 20;
7625 record_tdep->size_sigset_t = 8;
7626 record_tdep->size_siginfo_t = 128;
7627 record_tdep->size_cap_user_data_t = 12;
7628 record_tdep->size_stack_t = 12;
7629 record_tdep->size_off_t = 4;
7630 record_tdep->size_stat64 = 104;
7631 record_tdep->size_gid_t = 4;
7632 record_tdep->size_uid_t = 4;
7633 record_tdep->size_PAGE_SIZE = 0x1000; /* 4KB */
7634 record_tdep->size_flock64 = 32;
7635 record_tdep->size_io_event = 32;
7636 record_tdep->size_iocb = 64;
7637 record_tdep->size_epoll_event = 16;
7638 record_tdep->size_itimerspec = 16;
7639 record_tdep->size_mq_attr = 32;
7640 record_tdep->size_termios = 36;
7641 record_tdep->size_termios2 = 44;
7642 record_tdep->size_pid_t = 4;
7643 record_tdep->size_winsize = 8;
7644 record_tdep->size_serial_struct = 60;
7645 record_tdep->size_serial_icounter_struct = 80;
7646 record_tdep->size_size_t = 4;
7647 record_tdep->size_iovec = 8;
7648 record_tdep->size_time_t = 4;
7649 }
7650
7651 /* These values are the second argument of system call "sys_fcntl"
7652 and "sys_fcntl64". They are obtained from Linux Kernel source. */
7653 record_tdep->fcntl_F_GETLK = 5;
7654 record_tdep->fcntl_F_GETLK64 = 12;
7655 record_tdep->fcntl_F_SETLK64 = 13;
7656 record_tdep->fcntl_F_SETLKW64 = 14;
7657
7658 record_tdep->arg1 = S390_R2_REGNUM;
7659 record_tdep->arg2 = S390_R3_REGNUM;
7660 record_tdep->arg3 = S390_R4_REGNUM;
7661 record_tdep->arg4 = S390_R5_REGNUM;
7662 record_tdep->arg5 = S390_R6_REGNUM;
7663
7664 /* These values are the second argument of system call "sys_ioctl".
7665 They are obtained from Linux Kernel source.
7666 See arch/s390/include/uapi/asm/ioctls.h. */
7667
7668 record_tdep->ioctl_TCGETS = 0x5401;
7669 record_tdep->ioctl_TCSETS = 0x5402;
7670 record_tdep->ioctl_TCSETSW = 0x5403;
7671 record_tdep->ioctl_TCSETSF = 0x5404;
7672 record_tdep->ioctl_TCGETA = 0x5405;
7673 record_tdep->ioctl_TCSETA = 0x5406;
7674 record_tdep->ioctl_TCSETAW = 0x5407;
7675 record_tdep->ioctl_TCSETAF = 0x5408;
7676 record_tdep->ioctl_TCSBRK = 0x5409;
7677 record_tdep->ioctl_TCXONC = 0x540a;
7678 record_tdep->ioctl_TCFLSH = 0x540b;
7679 record_tdep->ioctl_TIOCEXCL = 0x540c;
7680 record_tdep->ioctl_TIOCNXCL = 0x540d;
7681 record_tdep->ioctl_TIOCSCTTY = 0x540e;
7682 record_tdep->ioctl_TIOCGPGRP = 0x540f;
7683 record_tdep->ioctl_TIOCSPGRP = 0x5410;
7684 record_tdep->ioctl_TIOCOUTQ = 0x5411;
7685 record_tdep->ioctl_TIOCSTI = 0x5412;
7686 record_tdep->ioctl_TIOCGWINSZ = 0x5413;
7687 record_tdep->ioctl_TIOCSWINSZ = 0x5414;
7688 record_tdep->ioctl_TIOCMGET = 0x5415;
7689 record_tdep->ioctl_TIOCMBIS = 0x5416;
7690 record_tdep->ioctl_TIOCMBIC = 0x5417;
7691 record_tdep->ioctl_TIOCMSET = 0x5418;
7692 record_tdep->ioctl_TIOCGSOFTCAR = 0x5419;
7693 record_tdep->ioctl_TIOCSSOFTCAR = 0x541a;
7694 record_tdep->ioctl_FIONREAD = 0x541b;
7695 record_tdep->ioctl_TIOCINQ = 0x541b; /* alias */
7696 record_tdep->ioctl_TIOCLINUX = 0x541c;
7697 record_tdep->ioctl_TIOCCONS = 0x541d;
7698 record_tdep->ioctl_TIOCGSERIAL = 0x541e;
7699 record_tdep->ioctl_TIOCSSERIAL = 0x541f;
7700 record_tdep->ioctl_TIOCPKT = 0x5420;
7701 record_tdep->ioctl_FIONBIO = 0x5421;
7702 record_tdep->ioctl_TIOCNOTTY = 0x5422;
7703 record_tdep->ioctl_TIOCSETD = 0x5423;
7704 record_tdep->ioctl_TIOCGETD = 0x5424;
7705 record_tdep->ioctl_TCSBRKP = 0x5425;
7706 record_tdep->ioctl_TIOCSBRK = 0x5427;
7707 record_tdep->ioctl_TIOCCBRK = 0x5428;
7708 record_tdep->ioctl_TIOCGSID = 0x5429;
7709 record_tdep->ioctl_TCGETS2 = 0x802c542a;
7710 record_tdep->ioctl_TCSETS2 = 0x402c542b;
7711 record_tdep->ioctl_TCSETSW2 = 0x402c542c;
7712 record_tdep->ioctl_TCSETSF2 = 0x402c542d;
7713 record_tdep->ioctl_TIOCGPTN = 0x80045430;
7714 record_tdep->ioctl_TIOCSPTLCK = 0x40045431;
7715 record_tdep->ioctl_FIONCLEX = 0x5450;
7716 record_tdep->ioctl_FIOCLEX = 0x5451;
7717 record_tdep->ioctl_FIOASYNC = 0x5452;
7718 record_tdep->ioctl_TIOCSERCONFIG = 0x5453;
7719 record_tdep->ioctl_TIOCSERGWILD = 0x5454;
7720 record_tdep->ioctl_TIOCSERSWILD = 0x5455;
7721 record_tdep->ioctl_TIOCGLCKTRMIOS = 0x5456;
7722 record_tdep->ioctl_TIOCSLCKTRMIOS = 0x5457;
7723 record_tdep->ioctl_TIOCSERGSTRUCT = 0x5458;
7724 record_tdep->ioctl_TIOCSERGETLSR = 0x5459;
7725 record_tdep->ioctl_TIOCSERGETMULTI = 0x545a;
7726 record_tdep->ioctl_TIOCSERSETMULTI = 0x545b;
7727 record_tdep->ioctl_TIOCMIWAIT = 0x545c;
7728 record_tdep->ioctl_TIOCGICOUNT = 0x545d;
7729 record_tdep->ioctl_FIOQSIZE = 0x545e;
7730 }
7731
7732 /* Set up gdbarch struct. */
7733
7734 static struct gdbarch *
7735 s390_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
7736 {
7737 const struct target_desc *tdesc = info.target_desc;
7738 struct tdesc_arch_data *tdesc_data = NULL;
7739 struct gdbarch *gdbarch;
7740 struct gdbarch_tdep *tdep;
7741 enum s390_abi_kind tdep_abi;
7742 enum s390_vector_abi_kind vector_abi;
7743 int have_upper = 0;
7744 int have_linux_v1 = 0;
7745 int have_linux_v2 = 0;
7746 int have_tdb = 0;
7747 int have_vx = 0;
7748 int first_pseudo_reg, last_pseudo_reg;
7749 static const char *const stap_register_prefixes[] = { "%", NULL };
7750 static const char *const stap_register_indirection_prefixes[] = { "(",
7751 NULL };
7752 static const char *const stap_register_indirection_suffixes[] = { ")",
7753 NULL };
7754
7755 /* Default ABI and register size. */
7756 switch (info.bfd_arch_info->mach)
7757 {
7758 case bfd_mach_s390_31:
7759 tdep_abi = ABI_LINUX_S390;
7760 break;
7761
7762 case bfd_mach_s390_64:
7763 tdep_abi = ABI_LINUX_ZSERIES;
7764 break;
7765
7766 default:
7767 return NULL;
7768 }
7769
7770 /* Use default target description if none provided by the target. */
7771 if (!tdesc_has_registers (tdesc))
7772 {
7773 if (tdep_abi == ABI_LINUX_S390)
7774 tdesc = tdesc_s390_linux32;
7775 else
7776 tdesc = tdesc_s390x_linux64;
7777 }
7778
7779 /* Check any target description for validity. */
7780 if (tdesc_has_registers (tdesc))
7781 {
7782 static const char *const gprs[] = {
7783 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
7784 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15"
7785 };
7786 static const char *const fprs[] = {
7787 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
7788 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15"
7789 };
7790 static const char *const acrs[] = {
7791 "acr0", "acr1", "acr2", "acr3", "acr4", "acr5", "acr6", "acr7",
7792 "acr8", "acr9", "acr10", "acr11", "acr12", "acr13", "acr14", "acr15"
7793 };
7794 static const char *const gprs_lower[] = {
7795 "r0l", "r1l", "r2l", "r3l", "r4l", "r5l", "r6l", "r7l",
7796 "r8l", "r9l", "r10l", "r11l", "r12l", "r13l", "r14l", "r15l"
7797 };
7798 static const char *const gprs_upper[] = {
7799 "r0h", "r1h", "r2h", "r3h", "r4h", "r5h", "r6h", "r7h",
7800 "r8h", "r9h", "r10h", "r11h", "r12h", "r13h", "r14h", "r15h"
7801 };
7802 static const char *const tdb_regs[] = {
7803 "tdb0", "tac", "tct", "atia",
7804 "tr0", "tr1", "tr2", "tr3", "tr4", "tr5", "tr6", "tr7",
7805 "tr8", "tr9", "tr10", "tr11", "tr12", "tr13", "tr14", "tr15"
7806 };
7807 static const char *const vxrs_low[] = {
7808 "v0l", "v1l", "v2l", "v3l", "v4l", "v5l", "v6l", "v7l", "v8l",
7809 "v9l", "v10l", "v11l", "v12l", "v13l", "v14l", "v15l",
7810 };
7811 static const char *const vxrs_high[] = {
7812 "v16", "v17", "v18", "v19", "v20", "v21", "v22", "v23", "v24",
7813 "v25", "v26", "v27", "v28", "v29", "v30", "v31",
7814 };
7815 const struct tdesc_feature *feature;
7816 int i, valid_p = 1;
7817
7818 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.core");
7819 if (feature == NULL)
7820 return NULL;
7821
7822 tdesc_data = tdesc_data_alloc ();
7823
7824 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7825 S390_PSWM_REGNUM, "pswm");
7826 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7827 S390_PSWA_REGNUM, "pswa");
7828
7829 if (tdesc_unnumbered_register (feature, "r0"))
7830 {
7831 for (i = 0; i < 16; i++)
7832 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7833 S390_R0_REGNUM + i, gprs[i]);
7834 }
7835 else
7836 {
7837 have_upper = 1;
7838
7839 for (i = 0; i < 16; i++)
7840 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7841 S390_R0_REGNUM + i,
7842 gprs_lower[i]);
7843 for (i = 0; i < 16; i++)
7844 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7845 S390_R0_UPPER_REGNUM + i,
7846 gprs_upper[i]);
7847 }
7848
7849 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.fpr");
7850 if (feature == NULL)
7851 {
7852 tdesc_data_cleanup (tdesc_data);
7853 return NULL;
7854 }
7855
7856 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7857 S390_FPC_REGNUM, "fpc");
7858 for (i = 0; i < 16; i++)
7859 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7860 S390_F0_REGNUM + i, fprs[i]);
7861
7862 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.acr");
7863 if (feature == NULL)
7864 {
7865 tdesc_data_cleanup (tdesc_data);
7866 return NULL;
7867 }
7868
7869 for (i = 0; i < 16; i++)
7870 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7871 S390_A0_REGNUM + i, acrs[i]);
7872
7873 /* Optional GNU/Linux-specific "registers". */
7874 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.linux");
7875 if (feature)
7876 {
7877 tdesc_numbered_register (feature, tdesc_data,
7878 S390_ORIG_R2_REGNUM, "orig_r2");
7879
7880 if (tdesc_numbered_register (feature, tdesc_data,
7881 S390_LAST_BREAK_REGNUM, "last_break"))
7882 have_linux_v1 = 1;
7883
7884 if (tdesc_numbered_register (feature, tdesc_data,
7885 S390_SYSTEM_CALL_REGNUM, "system_call"))
7886 have_linux_v2 = 1;
7887
7888 if (have_linux_v2 > have_linux_v1)
7889 valid_p = 0;
7890 }
7891
7892 /* Transaction diagnostic block. */
7893 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.tdb");
7894 if (feature)
7895 {
7896 for (i = 0; i < ARRAY_SIZE (tdb_regs); i++)
7897 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7898 S390_TDB_DWORD0_REGNUM + i,
7899 tdb_regs[i]);
7900 have_tdb = 1;
7901 }
7902
7903 /* Vector registers. */
7904 feature = tdesc_find_feature (tdesc, "org.gnu.gdb.s390.vx");
7905 if (feature)
7906 {
7907 for (i = 0; i < 16; i++)
7908 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7909 S390_V0_LOWER_REGNUM + i,
7910 vxrs_low[i]);
7911 for (i = 0; i < 16; i++)
7912 valid_p &= tdesc_numbered_register (feature, tdesc_data,
7913 S390_V16_REGNUM + i,
7914 vxrs_high[i]);
7915 have_vx = 1;
7916 }
7917
7918 if (!valid_p)
7919 {
7920 tdesc_data_cleanup (tdesc_data);
7921 return NULL;
7922 }
7923 }
7924
7925 /* Determine vector ABI. */
7926 vector_abi = S390_VECTOR_ABI_NONE;
7927 #ifdef HAVE_ELF
7928 if (have_vx
7929 && info.abfd != NULL
7930 && info.abfd->format == bfd_object
7931 && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour
7932 && bfd_elf_get_obj_attr_int (info.abfd, OBJ_ATTR_GNU,
7933 Tag_GNU_S390_ABI_Vector) == 2)
7934 vector_abi = S390_VECTOR_ABI_128;
7935 #endif
7936
7937 /* Find a candidate among extant architectures. */
7938 for (arches = gdbarch_list_lookup_by_info (arches, &info);
7939 arches != NULL;
7940 arches = gdbarch_list_lookup_by_info (arches->next, &info))
7941 {
7942 tdep = gdbarch_tdep (arches->gdbarch);
7943 if (!tdep)
7944 continue;
7945 if (tdep->abi != tdep_abi)
7946 continue;
7947 if (tdep->vector_abi != vector_abi)
7948 continue;
7949 if ((tdep->gpr_full_regnum != -1) != have_upper)
7950 continue;
7951 if (tdesc_data != NULL)
7952 tdesc_data_cleanup (tdesc_data);
7953 return arches->gdbarch;
7954 }
7955
7956 /* Otherwise create a new gdbarch for the specified machine type. */
7957 tdep = XCNEW (struct gdbarch_tdep);
7958 tdep->abi = tdep_abi;
7959 tdep->vector_abi = vector_abi;
7960 tdep->have_linux_v1 = have_linux_v1;
7961 tdep->have_linux_v2 = have_linux_v2;
7962 tdep->have_tdb = have_tdb;
7963 gdbarch = gdbarch_alloc (&info, tdep);
7964
7965 set_gdbarch_believe_pcc_promotion (gdbarch, 0);
7966 set_gdbarch_char_signed (gdbarch, 0);
7967
7968 /* S/390 GNU/Linux uses either 64-bit or 128-bit long doubles.
7969 We can safely let them default to 128-bit, since the debug info
7970 will give the size of type actually used in each case. */
7971 set_gdbarch_long_double_bit (gdbarch, 128);
7972 set_gdbarch_long_double_format (gdbarch, floatformats_ia64_quad);
7973
7974 /* Amount PC must be decremented by after a breakpoint. This is
7975 often the number of bytes returned by gdbarch_breakpoint_from_pc but not
7976 always. */
7977 set_gdbarch_decr_pc_after_break (gdbarch, 2);
7978 /* Stack grows downward. */
7979 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
7980 set_gdbarch_breakpoint_kind_from_pc (gdbarch, s390_breakpoint::kind_from_pc);
7981 set_gdbarch_sw_breakpoint_from_kind (gdbarch, s390_breakpoint::bp_from_kind);
7982 set_gdbarch_software_single_step (gdbarch, s390_software_single_step);
7983 set_gdbarch_displaced_step_hw_singlestep (gdbarch, s390_displaced_step_hw_singlestep);
7984 set_gdbarch_skip_prologue (gdbarch, s390_skip_prologue);
7985 set_gdbarch_stack_frame_destroyed_p (gdbarch, s390_stack_frame_destroyed_p);
7986
7987 set_gdbarch_num_regs (gdbarch, S390_NUM_REGS);
7988 set_gdbarch_sp_regnum (gdbarch, S390_SP_REGNUM);
7989 set_gdbarch_fp0_regnum (gdbarch, S390_F0_REGNUM);
7990 set_gdbarch_stab_reg_to_regnum (gdbarch, s390_dwarf_reg_to_regnum);
7991 set_gdbarch_dwarf2_reg_to_regnum (gdbarch, s390_dwarf_reg_to_regnum);
7992 set_gdbarch_value_from_register (gdbarch, s390_value_from_register);
7993 set_gdbarch_core_read_description (gdbarch, s390_core_read_description);
7994 set_gdbarch_iterate_over_regset_sections (gdbarch,
7995 s390_iterate_over_regset_sections);
7996 set_gdbarch_cannot_store_register (gdbarch, s390_cannot_store_register);
7997 set_gdbarch_write_pc (gdbarch, s390_write_pc);
7998 set_gdbarch_guess_tracepoint_registers (gdbarch, s390_guess_tracepoint_registers);
7999 set_gdbarch_pseudo_register_read (gdbarch, s390_pseudo_register_read);
8000 set_gdbarch_pseudo_register_write (gdbarch, s390_pseudo_register_write);
8001 set_tdesc_pseudo_register_name (gdbarch, s390_pseudo_register_name);
8002 set_tdesc_pseudo_register_type (gdbarch, s390_pseudo_register_type);
8003 set_tdesc_pseudo_register_reggroup_p (gdbarch,
8004 s390_pseudo_register_reggroup_p);
8005 set_gdbarch_ax_pseudo_register_collect (gdbarch,
8006 s390_ax_pseudo_register_collect);
8007 set_gdbarch_ax_pseudo_register_push_stack
8008 (gdbarch, s390_ax_pseudo_register_push_stack);
8009 set_gdbarch_gen_return_address (gdbarch, s390_gen_return_address);
8010 tdesc_use_registers (gdbarch, tdesc, tdesc_data);
8011 set_gdbarch_register_name (gdbarch, s390_register_name);
8012
8013 /* Assign pseudo register numbers. */
8014 first_pseudo_reg = gdbarch_num_regs (gdbarch);
8015 last_pseudo_reg = first_pseudo_reg;
8016 tdep->gpr_full_regnum = -1;
8017 if (have_upper)
8018 {
8019 tdep->gpr_full_regnum = last_pseudo_reg;
8020 last_pseudo_reg += 16;
8021 }
8022 tdep->v0_full_regnum = -1;
8023 if (have_vx)
8024 {
8025 tdep->v0_full_regnum = last_pseudo_reg;
8026 last_pseudo_reg += 16;
8027 }
8028 tdep->pc_regnum = last_pseudo_reg++;
8029 tdep->cc_regnum = last_pseudo_reg++;
8030 set_gdbarch_pc_regnum (gdbarch, tdep->pc_regnum);
8031 set_gdbarch_num_pseudo_regs (gdbarch, last_pseudo_reg - first_pseudo_reg);
8032
8033 /* Inferior function calls. */
8034 set_gdbarch_push_dummy_call (gdbarch, s390_push_dummy_call);
8035 set_gdbarch_dummy_id (gdbarch, s390_dummy_id);
8036 set_gdbarch_frame_align (gdbarch, s390_frame_align);
8037 set_gdbarch_return_value (gdbarch, s390_return_value);
8038
8039 /* Syscall handling. */
8040 set_gdbarch_get_syscall_number (gdbarch, s390_linux_get_syscall_number);
8041
8042 /* Frame handling. */
8043 dwarf2_frame_set_init_reg (gdbarch, s390_dwarf2_frame_init_reg);
8044 dwarf2_frame_set_adjust_regnum (gdbarch, s390_adjust_frame_regnum);
8045 dwarf2_append_unwinders (gdbarch);
8046 frame_base_append_sniffer (gdbarch, dwarf2_frame_base_sniffer);
8047 frame_unwind_append_unwinder (gdbarch, &s390_stub_frame_unwind);
8048 frame_unwind_append_unwinder (gdbarch, &s390_sigtramp_frame_unwind);
8049 frame_unwind_append_unwinder (gdbarch, &s390_frame_unwind);
8050 frame_base_set_default (gdbarch, &s390_frame_base);
8051 set_gdbarch_unwind_pc (gdbarch, s390_unwind_pc);
8052 set_gdbarch_unwind_sp (gdbarch, s390_unwind_sp);
8053
8054 /* Displaced stepping. */
8055 set_gdbarch_displaced_step_copy_insn (gdbarch,
8056 s390_displaced_step_copy_insn);
8057 set_gdbarch_displaced_step_fixup (gdbarch, s390_displaced_step_fixup);
8058 set_gdbarch_displaced_step_free_closure (gdbarch,
8059 simple_displaced_step_free_closure);
8060 set_gdbarch_displaced_step_location (gdbarch, linux_displaced_step_location);
8061 set_gdbarch_max_insn_length (gdbarch, S390_MAX_INSTR_SIZE);
8062
8063 /* Note that GNU/Linux is the only OS supported on this
8064 platform. */
8065 linux_init_abi (info, gdbarch);
8066
8067 switch (tdep->abi)
8068 {
8069 case ABI_LINUX_S390:
8070 set_gdbarch_addr_bits_remove (gdbarch, s390_addr_bits_remove);
8071 set_solib_svr4_fetch_link_map_offsets
8072 (gdbarch, svr4_ilp32_fetch_link_map_offsets);
8073
8074 set_xml_syscall_file_name (gdbarch, XML_SYSCALL_FILENAME_S390);
8075 break;
8076
8077 case ABI_LINUX_ZSERIES:
8078 set_gdbarch_long_bit (gdbarch, 64);
8079 set_gdbarch_long_long_bit (gdbarch, 64);
8080 set_gdbarch_ptr_bit (gdbarch, 64);
8081 set_solib_svr4_fetch_link_map_offsets
8082 (gdbarch, svr4_lp64_fetch_link_map_offsets);
8083 set_gdbarch_address_class_type_flags (gdbarch,
8084 s390_address_class_type_flags);
8085 set_gdbarch_address_class_type_flags_to_name (gdbarch,
8086 s390_address_class_type_flags_to_name);
8087 set_gdbarch_address_class_name_to_type_flags (gdbarch,
8088 s390_address_class_name_to_type_flags);
8089 set_xml_syscall_file_name (gdbarch, XML_SYSCALL_FILENAME_S390X);
8090 break;
8091 }
8092
8093 set_gdbarch_print_insn (gdbarch, print_insn_s390);
8094
8095 set_gdbarch_skip_trampoline_code (gdbarch, find_solib_trampoline_target);
8096
8097 /* Enable TLS support. */
8098 set_gdbarch_fetch_tls_load_module_address (gdbarch,
8099 svr4_fetch_objfile_link_map);
8100
8101 /* SystemTap functions. */
8102 set_gdbarch_stap_register_prefixes (gdbarch, stap_register_prefixes);
8103 set_gdbarch_stap_register_indirection_prefixes (gdbarch,
8104 stap_register_indirection_prefixes);
8105 set_gdbarch_stap_register_indirection_suffixes (gdbarch,
8106 stap_register_indirection_suffixes);
8107 set_gdbarch_stap_is_single_operand (gdbarch, s390_stap_is_single_operand);
8108 set_gdbarch_gcc_target_options (gdbarch, s390_gcc_target_options);
8109 set_gdbarch_gnu_triplet_regexp (gdbarch, s390_gnu_triplet_regexp);
8110
8111 /* Support reverse debugging. */
8112
8113 set_gdbarch_process_record (gdbarch, s390_process_record);
8114 set_gdbarch_process_record_signal (gdbarch, s390_linux_record_signal);
8115
8116 s390_init_linux_record_tdep (&s390_linux_record_tdep, ABI_LINUX_S390);
8117 s390_init_linux_record_tdep (&s390x_linux_record_tdep, ABI_LINUX_ZSERIES);
8118
8119 set_gdbarch_disassembler_options (gdbarch, &s390_disassembler_options);
8120 set_gdbarch_valid_disassembler_options (gdbarch,
8121 disassembler_options_s390 ());
8122
8123 return gdbarch;
8124 }
8125
8126
8127 extern initialize_file_ftype _initialize_s390_tdep; /* -Wmissing-prototypes */
8128
8129 void
8130 _initialize_s390_tdep (void)
8131 {
8132 /* Hook us into the gdbarch mechanism. */
8133 register_gdbarch_init (bfd_arch_s390, s390_gdbarch_init);
8134
8135 /* Initialize the GNU/Linux target descriptions. */
8136 initialize_tdesc_s390_linux32 ();
8137 initialize_tdesc_s390_linux32v1 ();
8138 initialize_tdesc_s390_linux32v2 ();
8139 initialize_tdesc_s390_linux64 ();
8140 initialize_tdesc_s390_linux64v1 ();
8141 initialize_tdesc_s390_linux64v2 ();
8142 initialize_tdesc_s390_te_linux64 ();
8143 initialize_tdesc_s390_vx_linux64 ();
8144 initialize_tdesc_s390_tevx_linux64 ();
8145 initialize_tdesc_s390x_linux64 ();
8146 initialize_tdesc_s390x_linux64v1 ();
8147 initialize_tdesc_s390x_linux64v2 ();
8148 initialize_tdesc_s390x_te_linux64 ();
8149 initialize_tdesc_s390x_vx_linux64 ();
8150 initialize_tdesc_s390x_tevx_linux64 ();
8151 }
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