[PowerPC] Fix access to VSCR in linux targets
[deliverable/binutils-gdb.git] / gdb / ppc-linux-tdep.c
CommitLineData
c877c8e6 1/* Target-dependent code for GDB, the GNU debugger.
4e052eda 2
e2882c85 3 Copyright (C) 1986-2018 Free Software Foundation, Inc.
c877c8e6
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4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
a9762ec7 9 the Free Software Foundation; either version 3 of the License, or
c877c8e6
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10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
a9762ec7 18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
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19
20#include "defs.h"
21#include "frame.h"
22#include "inferior.h"
23#include "symtab.h"
24#include "target.h"
25#include "gdbcore.h"
26#include "gdbcmd.h"
27#include "symfile.h"
28#include "objfiles.h"
4e052eda 29#include "regcache.h"
fd0407d6 30#include "value.h"
4be87837 31#include "osabi.h"
f9be684a 32#include "regset.h"
6ded7999 33#include "solib-svr4.h"
85e747d2 34#include "solib-spu.h"
cc5f0d61
UW
35#include "solib.h"
36#include "solist.h"
9aa1e687 37#include "ppc-tdep.h"
d78489bf 38#include "ppc64-tdep.h"
7284e1be 39#include "ppc-linux-tdep.h"
bd64614e
PFC
40#include "arch/ppc-linux-common.h"
41#include "arch/ppc-linux-tdesc.h"
5d853008 42#include "glibc-tdep.h"
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43#include "trad-frame.h"
44#include "frame-unwind.h"
a8f60bfc 45#include "tramp-frame.h"
76727919 46#include "observable.h"
85e747d2
UW
47#include "auxv.h"
48#include "elf/common.h"
591a12a1 49#include "elf/ppc64.h"
cc5f0d61
UW
50#include "arch-utils.h"
51#include "spu-tdep.h"
a96d9b2e 52#include "xml-syscall.h"
a5ee0f0c 53#include "linux-tdep.h"
b4cdae6f
WW
54#include "linux-record.h"
55#include "record-full.h"
cf90fd9a 56#include "infrun.h"
9aa1e687 57
55aa24fb
SDJ
58#include "stap-probe.h"
59#include "ax.h"
60#include "ax-gdb.h"
61#include "cli/cli-utils.h"
62#include "parser-defs.h"
63#include "user-regs.h"
64#include <ctype.h>
a2f63b2e 65#include "elf-bfd.h"
55aa24fb 66
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UW
67#include "features/rs6000/powerpc-32l.c"
68#include "features/rs6000/powerpc-altivec32l.c"
f4d9bade 69#include "features/rs6000/powerpc-cell32l.c"
604c2f83 70#include "features/rs6000/powerpc-vsx32l.c"
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TJB
71#include "features/rs6000/powerpc-isa205-32l.c"
72#include "features/rs6000/powerpc-isa205-altivec32l.c"
73#include "features/rs6000/powerpc-isa205-vsx32l.c"
7284e1be
UW
74#include "features/rs6000/powerpc-64l.c"
75#include "features/rs6000/powerpc-altivec64l.c"
f4d9bade 76#include "features/rs6000/powerpc-cell64l.c"
604c2f83 77#include "features/rs6000/powerpc-vsx64l.c"
69abc51c
TJB
78#include "features/rs6000/powerpc-isa205-64l.c"
79#include "features/rs6000/powerpc-isa205-altivec64l.c"
80#include "features/rs6000/powerpc-isa205-vsx64l.c"
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81#include "features/rs6000/powerpc-e500l.c"
82
5d853008
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83/* Shared library operations for PowerPC-Linux. */
84static struct target_so_ops powerpc_so_ops;
85
a96d9b2e
SDJ
86/* The syscall's XML filename for PPC and PPC64. */
87#define XML_SYSCALL_FILENAME_PPC "syscalls/ppc-linux.xml"
88#define XML_SYSCALL_FILENAME_PPC64 "syscalls/ppc64-linux.xml"
c877c8e6 89
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90/* ppc_linux_memory_remove_breakpoints attempts to remove a breakpoint
91 in much the same fashion as memory_remove_breakpoint in mem-break.c,
92 but is careful not to write back the previous contents if the code
93 in question has changed in between inserting the breakpoint and
94 removing it.
95
96 Here is the problem that we're trying to solve...
97
98 Once upon a time, before introducing this function to remove
99 breakpoints from the inferior, setting a breakpoint on a shared
100 library function prior to running the program would not work
101 properly. In order to understand the problem, it is first
102 necessary to understand a little bit about dynamic linking on
103 this platform.
104
105 A call to a shared library function is accomplished via a bl
106 (branch-and-link) instruction whose branch target is an entry
107 in the procedure linkage table (PLT). The PLT in the object
108 file is uninitialized. To gdb, prior to running the program, the
109 entries in the PLT are all zeros.
110
111 Once the program starts running, the shared libraries are loaded
112 and the procedure linkage table is initialized, but the entries in
113 the table are not (necessarily) resolved. Once a function is
114 actually called, the code in the PLT is hit and the function is
115 resolved. In order to better illustrate this, an example is in
116 order; the following example is from the gdb testsuite.
117
118 We start the program shmain.
119
120 [kev@arroyo testsuite]$ ../gdb gdb.base/shmain
121 [...]
122
123 We place two breakpoints, one on shr1 and the other on main.
124
125 (gdb) b shr1
126 Breakpoint 1 at 0x100409d4
127 (gdb) b main
128 Breakpoint 2 at 0x100006a0: file gdb.base/shmain.c, line 44.
129
130 Examine the instruction (and the immediatly following instruction)
131 upon which the breakpoint was placed. Note that the PLT entry
132 for shr1 contains zeros.
133
134 (gdb) x/2i 0x100409d4
135 0x100409d4 <shr1>: .long 0x0
136 0x100409d8 <shr1+4>: .long 0x0
137
138 Now run 'til main.
139
140 (gdb) r
141 Starting program: gdb.base/shmain
142 Breakpoint 1 at 0xffaf790: file gdb.base/shr1.c, line 19.
143
144 Breakpoint 2, main ()
145 at gdb.base/shmain.c:44
146 44 g = 1;
147
148 Examine the PLT again. Note that the loading of the shared
149 library has initialized the PLT to code which loads a constant
150 (which I think is an index into the GOT) into r11 and then
151 branchs a short distance to the code which actually does the
152 resolving.
153
154 (gdb) x/2i 0x100409d4
155 0x100409d4 <shr1>: li r11,4
156 0x100409d8 <shr1+4>: b 0x10040984 <sg+4>
157 (gdb) c
158 Continuing.
159
160 Breakpoint 1, shr1 (x=1)
161 at gdb.base/shr1.c:19
162 19 l = 1;
163
164 Now we've hit the breakpoint at shr1. (The breakpoint was
165 reset from the PLT entry to the actual shr1 function after the
166 shared library was loaded.) Note that the PLT entry has been
0df8b418 167 resolved to contain a branch that takes us directly to shr1.
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168 (The real one, not the PLT entry.)
169
170 (gdb) x/2i 0x100409d4
171 0x100409d4 <shr1>: b 0xffaf76c <shr1>
172 0x100409d8 <shr1+4>: b 0x10040984 <sg+4>
173
174 The thing to note here is that the PLT entry for shr1 has been
175 changed twice.
176
177 Now the problem should be obvious. GDB places a breakpoint (a
0df8b418 178 trap instruction) on the zero value of the PLT entry for shr1.
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179 Later on, after the shared library had been loaded and the PLT
180 initialized, GDB gets a signal indicating this fact and attempts
181 (as it always does when it stops) to remove all the breakpoints.
182
183 The breakpoint removal was causing the former contents (a zero
184 word) to be written back to the now initialized PLT entry thus
185 destroying a portion of the initialization that had occurred only a
186 short time ago. When execution continued, the zero word would be
766062f6 187 executed as an instruction an illegal instruction trap was
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188 generated instead. (0 is not a legal instruction.)
189
190 The fix for this problem was fairly straightforward. The function
191 memory_remove_breakpoint from mem-break.c was copied to this file,
192 modified slightly, and renamed to ppc_linux_memory_remove_breakpoint.
193 In tm-linux.h, MEMORY_REMOVE_BREAKPOINT is defined to call this new
194 function.
195
196 The differences between ppc_linux_memory_remove_breakpoint () and
197 memory_remove_breakpoint () are minor. All that the former does
198 that the latter does not is check to make sure that the breakpoint
199 location actually contains a breakpoint (trap instruction) prior
200 to attempting to write back the old contents. If it does contain
0df8b418 201 a trap instruction, we allow the old contents to be written back.
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202 Otherwise, we silently do nothing.
203
204 The big question is whether memory_remove_breakpoint () should be
205 changed to have the same functionality. The downside is that more
206 traffic is generated for remote targets since we'll have an extra
207 fetch of a memory word each time a breakpoint is removed.
208
209 For the time being, we'll leave this self-modifying-code-friendly
210 version in ppc-linux-tdep.c, but it ought to be migrated somewhere
211 else in the event that some other platform has similar needs with
212 regard to removing breakpoints in some potentially self modifying
213 code. */
63807e1d 214static int
ae4b2284
MD
215ppc_linux_memory_remove_breakpoint (struct gdbarch *gdbarch,
216 struct bp_target_info *bp_tgt)
482ca3f5 217{
0d5ed153 218 CORE_ADDR addr = bp_tgt->reqstd_address;
f4f9705a 219 const unsigned char *bp;
482ca3f5
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220 int val;
221 int bplen;
50fd1280 222 gdb_byte old_contents[BREAKPOINT_MAX];
482ca3f5
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223
224 /* Determine appropriate breakpoint contents and size for this address. */
ae4b2284 225 bp = gdbarch_breakpoint_from_pc (gdbarch, &addr, &bplen);
482ca3f5 226
8defab1a 227 /* Make sure we see the memory breakpoints. */
cb85b21b
TT
228 scoped_restore restore_memory
229 = make_scoped_restore_show_memory_breakpoints (1);
482ca3f5
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230 val = target_read_memory (addr, old_contents, bplen);
231
232 /* If our breakpoint is no longer at the address, this means that the
233 program modified the code on us, so it is wrong to put back the
0df8b418 234 old value. */
482ca3f5 235 if (val == 0 && memcmp (bp, old_contents, bplen) == 0)
dd110abf 236 val = target_write_raw_memory (addr, bp_tgt->shadow_contents, bplen);
482ca3f5
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237
238 return val;
239}
6ded7999 240
b9ff3018
AC
241/* For historic reasons, PPC 32 GNU/Linux follows PowerOpen rather
242 than the 32 bit SYSV R4 ABI structure return convention - all
243 structures, no matter their size, are put in memory. Vectors,
244 which were added later, do get returned in a register though. */
245
05580c65 246static enum return_value_convention
6a3a010b 247ppc_linux_return_value (struct gdbarch *gdbarch, struct value *function,
c055b101
CV
248 struct type *valtype, struct regcache *regcache,
249 gdb_byte *readbuf, const gdb_byte *writebuf)
b9ff3018 250{
05580c65
AC
251 if ((TYPE_CODE (valtype) == TYPE_CODE_STRUCT
252 || TYPE_CODE (valtype) == TYPE_CODE_UNION)
253 && !((TYPE_LENGTH (valtype) == 16 || TYPE_LENGTH (valtype) == 8)
254 && TYPE_VECTOR (valtype)))
255 return RETURN_VALUE_STRUCT_CONVENTION;
256 else
6a3a010b 257 return ppc_sysv_abi_return_value (gdbarch, function, valtype, regcache,
c055b101 258 readbuf, writebuf);
b9ff3018
AC
259}
260
7433498b
AM
261/* PLT stub in an executable. */
262static const struct ppc_insn_pattern powerpc32_plt_stub[] =
5d853008
ME
263 {
264 { 0xffff0000, 0x3d600000, 0 }, /* lis r11, xxxx */
265 { 0xffff0000, 0x816b0000, 0 }, /* lwz r11, xxxx(r11) */
266 { 0xffffffff, 0x7d6903a6, 0 }, /* mtctr r11 */
267 { 0xffffffff, 0x4e800420, 0 }, /* bctr */
268 { 0, 0, 0 }
269 };
270
7433498b
AM
271/* PLT stubs in a shared library or PIE.
272 The first variant is used when the PLT entry is within +/-32k of
273 the GOT pointer (r30). */
274static const struct ppc_insn_pattern powerpc32_plt_stub_so_1[] =
5d853008
ME
275 {
276 { 0xffff0000, 0x817e0000, 0 }, /* lwz r11, xxxx(r30) */
277 { 0xffffffff, 0x7d6903a6, 0 }, /* mtctr r11 */
278 { 0xffffffff, 0x4e800420, 0 }, /* bctr */
5d853008
ME
279 { 0, 0, 0 }
280 };
7433498b
AM
281
282/* The second variant is used when the PLT entry is more than +/-32k
283 from the GOT pointer (r30). */
284static const struct ppc_insn_pattern powerpc32_plt_stub_so_2[] =
285 {
286 { 0xffff0000, 0x3d7e0000, 0 }, /* addis r11, r30, xxxx */
287 { 0xffff0000, 0x816b0000, 0 }, /* lwz r11, xxxx(r11) */
288 { 0xffffffff, 0x7d6903a6, 0 }, /* mtctr r11 */
289 { 0xffffffff, 0x4e800420, 0 }, /* bctr */
290 { 0, 0, 0 }
291 };
292
293/* The max number of insns we check using ppc_insns_match_pattern. */
294#define POWERPC32_PLT_CHECK_LEN (ARRAY_SIZE (powerpc32_plt_stub) - 1)
5d853008
ME
295
296/* Check if PC is in PLT stub. For non-secure PLT, stub is in .plt
297 section. For secure PLT, stub is in .text and we need to check
298 instruction patterns. */
299
300static int
301powerpc_linux_in_dynsym_resolve_code (CORE_ADDR pc)
302{
7cbd4a93 303 struct bound_minimal_symbol sym;
5d853008
ME
304
305 /* Check whether PC is in the dynamic linker. This also checks
306 whether it is in the .plt section, used by non-PIC executables. */
307 if (svr4_in_dynsym_resolve_code (pc))
308 return 1;
309
310 /* Check if we are in the resolver. */
311 sym = lookup_minimal_symbol_by_pc (pc);
7cbd4a93 312 if (sym.minsym != NULL
efd66ac6
TT
313 && (strcmp (MSYMBOL_LINKAGE_NAME (sym.minsym), "__glink") == 0
314 || strcmp (MSYMBOL_LINKAGE_NAME (sym.minsym),
7cbd4a93 315 "__glink_PLTresolve") == 0))
5d853008
ME
316 return 1;
317
318 return 0;
319}
320
ddeca1df
WW
321/* Follow PLT stub to actual routine.
322
323 When the execution direction is EXEC_REVERSE, scan backward to
324 check whether we are in the middle of a PLT stub. Currently,
7433498b 325 we only look-behind at most 4 instructions (the max length of a PLT
ddeca1df 326 stub sequence. */
5d853008
ME
327
328static CORE_ADDR
329ppc_skip_trampoline_code (struct frame_info *frame, CORE_ADDR pc)
330{
7433498b 331 unsigned int insnbuf[POWERPC32_PLT_CHECK_LEN];
5d853008
ME
332 struct gdbarch *gdbarch = get_frame_arch (frame);
333 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
334 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
335 CORE_ADDR target = 0;
cf90fd9a 336 int scan_limit, i;
5d853008 337
cf90fd9a
WW
338 scan_limit = 1;
339 /* When reverse-debugging, scan backward to check whether we are
340 in the middle of trampoline code. */
341 if (execution_direction == EXEC_REVERSE)
7433498b 342 scan_limit = 4; /* At most 4 instructions. */
5d853008 343
cf90fd9a 344 for (i = 0; i < scan_limit; i++)
5d853008 345 {
cf90fd9a
WW
346 if (ppc_insns_match_pattern (frame, pc, powerpc32_plt_stub, insnbuf))
347 {
7433498b 348 /* Calculate PLT entry address from
cf90fd9a 349 lis r11, xxxx
7433498b
AM
350 lwz r11, xxxx(r11). */
351 target = ((ppc_insn_d_field (insnbuf[0]) << 16)
352 + ppc_insn_d_field (insnbuf[1]));
353 }
354 else if (i < ARRAY_SIZE (powerpc32_plt_stub_so_1) - 1
355 && ppc_insns_match_pattern (frame, pc, powerpc32_plt_stub_so_1,
356 insnbuf))
357 {
358 /* Calculate PLT entry address from
359 lwz r11, xxxx(r30). */
360 target = (ppc_insn_d_field (insnbuf[0])
361 + get_frame_register_unsigned (frame,
362 tdep->ppc_gp0_regnum + 30));
cf90fd9a 363 }
7433498b 364 else if (ppc_insns_match_pattern (frame, pc, powerpc32_plt_stub_so_2,
cf90fd9a
WW
365 insnbuf))
366 {
7433498b
AM
367 /* Calculate PLT entry address from
368 addis r11, r30, xxxx
369 lwz r11, xxxx(r11). */
370 target = ((ppc_insn_d_field (insnbuf[0]) << 16)
371 + ppc_insn_d_field (insnbuf[1])
372 + get_frame_register_unsigned (frame,
373 tdep->ppc_gp0_regnum + 30));
cf90fd9a
WW
374 }
375 else
376 {
7433498b 377 /* Scan backward one more instruction if it doesn't match. */
cf90fd9a
WW
378 pc -= 4;
379 continue;
380 }
381
7433498b 382 target = read_memory_unsigned_integer (target, 4, byte_order);
cf90fd9a 383 return target;
5d853008
ME
384 }
385
cf90fd9a 386 return 0;
5d853008 387}
f470a70a 388
7284e1be
UW
389/* Wrappers to handle Linux-only registers. */
390
391static void
392ppc_linux_supply_gregset (const struct regset *regset,
393 struct regcache *regcache,
394 int regnum, const void *gregs, size_t len)
395{
19ba03f4
SM
396 const struct ppc_reg_offsets *offsets
397 = (const struct ppc_reg_offsets *) regset->regmap;
7284e1be
UW
398
399 ppc_supply_gregset (regset, regcache, regnum, gregs, len);
400
ac7936df 401 if (ppc_linux_trap_reg_p (regcache->arch ()))
7284e1be
UW
402 {
403 /* "orig_r3" is stored 2 slots after "pc". */
404 if (regnum == -1 || regnum == PPC_ORIG_R3_REGNUM)
19ba03f4 405 ppc_supply_reg (regcache, PPC_ORIG_R3_REGNUM, (const gdb_byte *) gregs,
7284e1be
UW
406 offsets->pc_offset + 2 * offsets->gpr_size,
407 offsets->gpr_size);
408
409 /* "trap" is stored 8 slots after "pc". */
410 if (regnum == -1 || regnum == PPC_TRAP_REGNUM)
19ba03f4 411 ppc_supply_reg (regcache, PPC_TRAP_REGNUM, (const gdb_byte *) gregs,
7284e1be
UW
412 offsets->pc_offset + 8 * offsets->gpr_size,
413 offsets->gpr_size);
414 }
415}
f2db237a 416
f9be684a 417static void
f2db237a
AM
418ppc_linux_collect_gregset (const struct regset *regset,
419 const struct regcache *regcache,
420 int regnum, void *gregs, size_t len)
f9be684a 421{
19ba03f4
SM
422 const struct ppc_reg_offsets *offsets
423 = (const struct ppc_reg_offsets *) regset->regmap;
7284e1be
UW
424
425 /* Clear areas in the linux gregset not written elsewhere. */
f2db237a
AM
426 if (regnum == -1)
427 memset (gregs, 0, len);
7284e1be 428
f2db237a 429 ppc_collect_gregset (regset, regcache, regnum, gregs, len);
7284e1be 430
ac7936df 431 if (ppc_linux_trap_reg_p (regcache->arch ()))
7284e1be
UW
432 {
433 /* "orig_r3" is stored 2 slots after "pc". */
434 if (regnum == -1 || regnum == PPC_ORIG_R3_REGNUM)
19ba03f4 435 ppc_collect_reg (regcache, PPC_ORIG_R3_REGNUM, (gdb_byte *) gregs,
7284e1be
UW
436 offsets->pc_offset + 2 * offsets->gpr_size,
437 offsets->gpr_size);
438
439 /* "trap" is stored 8 slots after "pc". */
440 if (regnum == -1 || regnum == PPC_TRAP_REGNUM)
19ba03f4 441 ppc_collect_reg (regcache, PPC_TRAP_REGNUM, (gdb_byte *) gregs,
7284e1be
UW
442 offsets->pc_offset + 8 * offsets->gpr_size,
443 offsets->gpr_size);
444 }
f9be684a
AC
445}
446
1d75a658
PFC
447static void
448ppc_linux_collect_vrregset (const struct regset *regset,
449 const struct regcache *regcache,
450 int regnum, void *buf, size_t len)
451{
452 gdb_byte *vrregs = (gdb_byte *) buf;
453
454 /* Zero-pad the unused bytes in the fields for vscr and vrsave
455 in case they get displayed somewhere (e.g. in core files). */
456 if (regnum == PPC_VSCR_REGNUM || regnum == -1)
457 memset (&vrregs[32 * 16], 0, 16);
458
459 if (regnum == PPC_VRSAVE_REGNUM || regnum == -1)
460 memset (&vrregs[33 * 16], 0, 16);
461
462 regcache_collect_regset (regset, regcache, regnum, buf, len);
463}
464
f2db237a
AM
465/* Regset descriptions. */
466static const struct ppc_reg_offsets ppc32_linux_reg_offsets =
467 {
468 /* General-purpose registers. */
469 /* .r0_offset = */ 0,
470 /* .gpr_size = */ 4,
471 /* .xr_size = */ 4,
472 /* .pc_offset = */ 128,
473 /* .ps_offset = */ 132,
474 /* .cr_offset = */ 152,
475 /* .lr_offset = */ 144,
476 /* .ctr_offset = */ 140,
477 /* .xer_offset = */ 148,
478 /* .mq_offset = */ 156,
479
480 /* Floating-point registers. */
481 /* .f0_offset = */ 0,
482 /* .fpscr_offset = */ 256,
1d75a658 483 /* .fpscr_size = */ 8
f2db237a 484 };
f9be684a 485
f2db237a
AM
486static const struct ppc_reg_offsets ppc64_linux_reg_offsets =
487 {
488 /* General-purpose registers. */
489 /* .r0_offset = */ 0,
490 /* .gpr_size = */ 8,
491 /* .xr_size = */ 8,
492 /* .pc_offset = */ 256,
493 /* .ps_offset = */ 264,
494 /* .cr_offset = */ 304,
495 /* .lr_offset = */ 288,
496 /* .ctr_offset = */ 280,
497 /* .xer_offset = */ 296,
498 /* .mq_offset = */ 312,
499
500 /* Floating-point registers. */
501 /* .f0_offset = */ 0,
502 /* .fpscr_offset = */ 256,
1d75a658 503 /* .fpscr_size = */ 8
f2db237a 504 };
2fda4977 505
f2db237a
AM
506static const struct regset ppc32_linux_gregset = {
507 &ppc32_linux_reg_offsets,
7284e1be 508 ppc_linux_supply_gregset,
09424cff 509 ppc_linux_collect_gregset
f9be684a
AC
510};
511
f2db237a
AM
512static const struct regset ppc64_linux_gregset = {
513 &ppc64_linux_reg_offsets,
7284e1be 514 ppc_linux_supply_gregset,
09424cff 515 ppc_linux_collect_gregset
f2db237a 516};
f9be684a 517
f2db237a
AM
518static const struct regset ppc32_linux_fpregset = {
519 &ppc32_linux_reg_offsets,
520 ppc_supply_fpregset,
09424cff 521 ppc_collect_fpregset
f9be684a
AC
522};
523
1d75a658
PFC
524static const struct regcache_map_entry ppc32_le_linux_vrregmap[] =
525 {
526 { 32, PPC_VR0_REGNUM, 16 },
527 { 1, PPC_VSCR_REGNUM, 4 },
528 { 1, REGCACHE_MAP_SKIP, 12 },
529 { 1, PPC_VRSAVE_REGNUM, 4 },
530 { 1, REGCACHE_MAP_SKIP, 12 },
531 { 0 }
532 };
533
534static const struct regcache_map_entry ppc32_be_linux_vrregmap[] =
535 {
536 { 32, PPC_VR0_REGNUM, 16 },
537 { 1, REGCACHE_MAP_SKIP, 12},
538 { 1, PPC_VSCR_REGNUM, 4 },
539 { 1, PPC_VRSAVE_REGNUM, 4 },
540 { 1, REGCACHE_MAP_SKIP, 12 },
541 { 0 }
542 };
543
544static const struct regset ppc32_le_linux_vrregset = {
545 ppc32_le_linux_vrregmap,
546 regcache_supply_regset,
547 ppc_linux_collect_vrregset
548};
549
550static const struct regset ppc32_be_linux_vrregset = {
551 ppc32_be_linux_vrregmap,
552 regcache_supply_regset,
553 ppc_linux_collect_vrregset
06caf7d2
CES
554};
555
604c2f83
LM
556static const struct regset ppc32_linux_vsxregset = {
557 &ppc32_linux_reg_offsets,
558 ppc_supply_vsxregset,
09424cff 559 ppc_collect_vsxregset
604c2f83
LM
560};
561
f2db237a
AM
562const struct regset *
563ppc_linux_gregset (int wordsize)
2fda4977 564{
f2db237a 565 return wordsize == 8 ? &ppc64_linux_gregset : &ppc32_linux_gregset;
2fda4977
DJ
566}
567
f2db237a
AM
568const struct regset *
569ppc_linux_fpregset (void)
570{
571 return &ppc32_linux_fpregset;
572}
2fda4977 573
1d75a658
PFC
574const struct regset *
575ppc_linux_vrregset (struct gdbarch *gdbarch)
576{
577 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
578 return &ppc32_be_linux_vrregset;
579 else
580 return &ppc32_le_linux_vrregset;
581}
582
5aa82d05
AA
583/* Iterate over supported core file register note sections. */
584
585static void
586ppc_linux_iterate_over_regset_sections (struct gdbarch *gdbarch,
587 iterate_over_regset_sections_cb *cb,
588 void *cb_data,
589 const struct regcache *regcache)
590{
591 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
592 int have_altivec = tdep->ppc_vr0_regnum != -1;
593 int have_vsx = tdep->ppc_vsr0_upper_regnum != -1;
594
8f0435f7
AA
595 if (tdep->wordsize == 4)
596 cb (".reg", 48 * 4, &ppc32_linux_gregset, NULL, cb_data);
597 else
598 cb (".reg", 48 * 8, &ppc64_linux_gregset, NULL, cb_data);
599
600 cb (".reg2", 264, &ppc32_linux_fpregset, NULL, cb_data);
5aa82d05
AA
601
602 if (have_altivec)
1d75a658
PFC
603 {
604 const struct regset *vrregset = ppc_linux_vrregset (gdbarch);
605 cb (".reg-ppc-vmx", PPC_LINUX_SIZEOF_VRREGSET, vrregset,
606 "ppc Altivec", cb_data);
607 }
5aa82d05
AA
608
609 if (have_vsx)
d078308a
PFC
610 cb (".reg-ppc-vsx", PPC_LINUX_SIZEOF_VSXREGSET,
611 &ppc32_linux_vsxregset, "POWER7 VSX", cb_data);
5aa82d05
AA
612}
613
a8f60bfc 614static void
5366653e 615ppc_linux_sigtramp_cache (struct frame_info *this_frame,
a8f60bfc
AC
616 struct trad_frame_cache *this_cache,
617 CORE_ADDR func, LONGEST offset,
618 int bias)
619{
620 CORE_ADDR base;
621 CORE_ADDR regs;
622 CORE_ADDR gpregs;
623 CORE_ADDR fpregs;
624 int i;
5366653e 625 struct gdbarch *gdbarch = get_frame_arch (this_frame);
a8f60bfc 626 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
e17a4113 627 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
a8f60bfc 628
5366653e
DJ
629 base = get_frame_register_unsigned (this_frame,
630 gdbarch_sp_regnum (gdbarch));
631 if (bias > 0 && get_frame_pc (this_frame) != func)
a8f60bfc
AC
632 /* See below, some signal trampolines increment the stack as their
633 first instruction, need to compensate for that. */
634 base -= bias;
635
636 /* Find the address of the register buffer pointer. */
637 regs = base + offset;
638 /* Use that to find the address of the corresponding register
639 buffers. */
e17a4113 640 gpregs = read_memory_unsigned_integer (regs, tdep->wordsize, byte_order);
a8f60bfc
AC
641 fpregs = gpregs + 48 * tdep->wordsize;
642
643 /* General purpose. */
644 for (i = 0; i < 32; i++)
645 {
646 int regnum = i + tdep->ppc_gp0_regnum;
0df8b418
MS
647 trad_frame_set_reg_addr (this_cache,
648 regnum, gpregs + i * tdep->wordsize);
a8f60bfc 649 }
3e8c568d 650 trad_frame_set_reg_addr (this_cache,
40a6adc1 651 gdbarch_pc_regnum (gdbarch),
3e8c568d 652 gpregs + 32 * tdep->wordsize);
a8f60bfc
AC
653 trad_frame_set_reg_addr (this_cache, tdep->ppc_ctr_regnum,
654 gpregs + 35 * tdep->wordsize);
655 trad_frame_set_reg_addr (this_cache, tdep->ppc_lr_regnum,
656 gpregs + 36 * tdep->wordsize);
657 trad_frame_set_reg_addr (this_cache, tdep->ppc_xer_regnum,
658 gpregs + 37 * tdep->wordsize);
659 trad_frame_set_reg_addr (this_cache, tdep->ppc_cr_regnum,
660 gpregs + 38 * tdep->wordsize);
661
7284e1be
UW
662 if (ppc_linux_trap_reg_p (gdbarch))
663 {
664 trad_frame_set_reg_addr (this_cache, PPC_ORIG_R3_REGNUM,
665 gpregs + 34 * tdep->wordsize);
666 trad_frame_set_reg_addr (this_cache, PPC_TRAP_REGNUM,
667 gpregs + 40 * tdep->wordsize);
668 }
669
60f140f9
PG
670 if (ppc_floating_point_unit_p (gdbarch))
671 {
672 /* Floating point registers. */
673 for (i = 0; i < 32; i++)
674 {
40a6adc1 675 int regnum = i + gdbarch_fp0_regnum (gdbarch);
60f140f9
PG
676 trad_frame_set_reg_addr (this_cache, regnum,
677 fpregs + i * tdep->wordsize);
678 }
679 trad_frame_set_reg_addr (this_cache, tdep->ppc_fpscr_regnum,
4019046a 680 fpregs + 32 * tdep->wordsize);
60f140f9 681 }
a8f60bfc
AC
682 trad_frame_set_id (this_cache, frame_id_build (base, func));
683}
684
685static void
686ppc32_linux_sigaction_cache_init (const struct tramp_frame *self,
5366653e 687 struct frame_info *this_frame,
a8f60bfc
AC
688 struct trad_frame_cache *this_cache,
689 CORE_ADDR func)
690{
5366653e 691 ppc_linux_sigtramp_cache (this_frame, this_cache, func,
a8f60bfc
AC
692 0xd0 /* Offset to ucontext_t. */
693 + 0x30 /* Offset to .reg. */,
694 0);
695}
696
697static void
698ppc64_linux_sigaction_cache_init (const struct tramp_frame *self,
5366653e 699 struct frame_info *this_frame,
a8f60bfc
AC
700 struct trad_frame_cache *this_cache,
701 CORE_ADDR func)
702{
5366653e 703 ppc_linux_sigtramp_cache (this_frame, this_cache, func,
a8f60bfc
AC
704 0x80 /* Offset to ucontext_t. */
705 + 0xe0 /* Offset to .reg. */,
706 128);
707}
708
709static void
710ppc32_linux_sighandler_cache_init (const struct tramp_frame *self,
5366653e 711 struct frame_info *this_frame,
a8f60bfc
AC
712 struct trad_frame_cache *this_cache,
713 CORE_ADDR func)
714{
5366653e 715 ppc_linux_sigtramp_cache (this_frame, this_cache, func,
a8f60bfc
AC
716 0x40 /* Offset to ucontext_t. */
717 + 0x1c /* Offset to .reg. */,
718 0);
719}
720
721static void
722ppc64_linux_sighandler_cache_init (const struct tramp_frame *self,
5366653e 723 struct frame_info *this_frame,
a8f60bfc
AC
724 struct trad_frame_cache *this_cache,
725 CORE_ADDR func)
726{
5366653e 727 ppc_linux_sigtramp_cache (this_frame, this_cache, func,
a8f60bfc
AC
728 0x80 /* Offset to struct sigcontext. */
729 + 0x38 /* Offset to .reg. */,
730 128);
731}
732
733static struct tramp_frame ppc32_linux_sigaction_tramp_frame = {
734 SIGTRAMP_FRAME,
735 4,
736 {
737 { 0x380000ac, -1 }, /* li r0, 172 */
738 { 0x44000002, -1 }, /* sc */
739 { TRAMP_SENTINEL_INSN },
740 },
741 ppc32_linux_sigaction_cache_init
742};
743static struct tramp_frame ppc64_linux_sigaction_tramp_frame = {
744 SIGTRAMP_FRAME,
745 4,
746 {
747 { 0x38210080, -1 }, /* addi r1,r1,128 */
748 { 0x380000ac, -1 }, /* li r0, 172 */
749 { 0x44000002, -1 }, /* sc */
750 { TRAMP_SENTINEL_INSN },
751 },
752 ppc64_linux_sigaction_cache_init
753};
754static struct tramp_frame ppc32_linux_sighandler_tramp_frame = {
755 SIGTRAMP_FRAME,
756 4,
757 {
758 { 0x38000077, -1 }, /* li r0,119 */
759 { 0x44000002, -1 }, /* sc */
760 { TRAMP_SENTINEL_INSN },
761 },
762 ppc32_linux_sighandler_cache_init
763};
764static struct tramp_frame ppc64_linux_sighandler_tramp_frame = {
765 SIGTRAMP_FRAME,
766 4,
767 {
768 { 0x38210080, -1 }, /* addi r1,r1,128 */
769 { 0x38000077, -1 }, /* li r0,119 */
770 { 0x44000002, -1 }, /* sc */
771 { TRAMP_SENTINEL_INSN },
772 },
773 ppc64_linux_sighandler_cache_init
774};
775
7284e1be
UW
776/* Return 1 if PPC_ORIG_R3_REGNUM and PPC_TRAP_REGNUM are usable. */
777int
778ppc_linux_trap_reg_p (struct gdbarch *gdbarch)
779{
780 /* If we do not have a target description with registers, then
781 the special registers will not be included in the register set. */
782 if (!tdesc_has_registers (gdbarch_target_desc (gdbarch)))
783 return 0;
784
785 /* If we do, then it is safe to check the size. */
786 return register_size (gdbarch, PPC_ORIG_R3_REGNUM) > 0
787 && register_size (gdbarch, PPC_TRAP_REGNUM) > 0;
788}
789
a96d9b2e
SDJ
790/* Return the current system call's number present in the
791 r0 register. When the function fails, it returns -1. */
792static LONGEST
793ppc_linux_get_syscall_number (struct gdbarch *gdbarch,
794 ptid_t ptid)
795{
796 struct regcache *regcache = get_thread_regcache (ptid);
797 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
798 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
a96d9b2e
SDJ
799
800 /* Make sure we're in a 32- or 64-bit machine */
801 gdb_assert (tdep->wordsize == 4 || tdep->wordsize == 8);
802
779bc38e
TT
803 /* The content of a register */
804 gdb::byte_vector buf (tdep->wordsize);
a96d9b2e
SDJ
805
806 /* Getting the system call number from the register.
807 When dealing with PowerPC architecture, this information
808 is stored at 0th register. */
779bc38e 809 regcache_cooked_read (regcache, tdep->ppc_gp0_regnum, buf.data ());
a96d9b2e 810
779bc38e 811 return extract_signed_integer (buf.data (), tdep->wordsize, byte_order);
a96d9b2e
SDJ
812}
813
b4cdae6f
WW
814/* PPC process record-replay */
815
816static struct linux_record_tdep ppc_linux_record_tdep;
817static struct linux_record_tdep ppc64_linux_record_tdep;
818
ddeca1df
WW
819/* ppc_canonicalize_syscall maps from the native PowerPC Linux set of
820 syscall ids into a canonical set of syscall ids used by process
821 record. (See arch/powerpc/include/uapi/asm/unistd.h in kernel tree.)
822 Return -1 if this system call is not supported by process record.
823 Otherwise, return the syscall number for preocess reocrd of given
824 SYSCALL. */
825
b4cdae6f
WW
826static enum gdb_syscall
827ppc_canonicalize_syscall (int syscall)
828{
aead7601
SM
829 int result = -1;
830
b4cdae6f 831 if (syscall <= 165)
aead7601 832 result = syscall;
b4cdae6f 833 else if (syscall >= 167 && syscall <= 190) /* Skip query_module 166 */
aead7601 834 result = syscall + 1;
b4cdae6f 835 else if (syscall >= 192 && syscall <= 197) /* mmap2 */
aead7601 836 result = syscall;
b4cdae6f 837 else if (syscall == 208) /* tkill */
aead7601 838 result = gdb_sys_tkill;
b4cdae6f 839 else if (syscall >= 207 && syscall <= 220) /* gettid */
aead7601 840 result = syscall + 224 - 207;
b4cdae6f 841 else if (syscall >= 234 && syscall <= 239) /* exit_group */
aead7601
SM
842 result = syscall + 252 - 234;
843 else if (syscall >= 240 && syscall <= 248) /* timer_create */
844 result = syscall += 259 - 240;
845 else if (syscall >= 250 && syscall <= 251) /* tgkill */
846 result = syscall + 270 - 250;
b4cdae6f 847 else if (syscall == 336)
aead7601 848 result = gdb_sys_recv;
b4cdae6f 849 else if (syscall == 337)
aead7601 850 result = gdb_sys_recvfrom;
b4cdae6f 851 else if (syscall == 342)
aead7601
SM
852 result = gdb_sys_recvmsg;
853
854 return (enum gdb_syscall) result;
b4cdae6f
WW
855}
856
ddeca1df
WW
857/* Record registers which might be clobbered during system call.
858 Return 0 if successful. */
859
b4cdae6f
WW
860static int
861ppc_linux_syscall_record (struct regcache *regcache)
862{
ac7936df 863 struct gdbarch *gdbarch = regcache->arch ();
b4cdae6f
WW
864 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
865 ULONGEST scnum;
866 enum gdb_syscall syscall_gdb;
867 int ret;
868 int i;
869
870 regcache_raw_read_unsigned (regcache, tdep->ppc_gp0_regnum, &scnum);
871 syscall_gdb = ppc_canonicalize_syscall (scnum);
872
873 if (syscall_gdb < 0)
874 {
875 printf_unfiltered (_("Process record and replay target doesn't "
876 "support syscall number %d\n"), (int) scnum);
877 return 0;
878 }
879
880 if (syscall_gdb == gdb_sys_sigreturn
881 || syscall_gdb == gdb_sys_rt_sigreturn)
882 {
883 int i, j;
884 int regsets[] = { tdep->ppc_gp0_regnum,
885 tdep->ppc_fp0_regnum,
886 tdep->ppc_vr0_regnum,
887 tdep->ppc_vsr0_upper_regnum };
888
889 for (j = 0; j < 4; j++)
890 {
891 if (regsets[j] == -1)
892 continue;
893 for (i = 0; i < 32; i++)
894 {
895 if (record_full_arch_list_add_reg (regcache, regsets[j] + i))
896 return -1;
897 }
898 }
899
900 if (record_full_arch_list_add_reg (regcache, tdep->ppc_cr_regnum))
901 return -1;
902 if (record_full_arch_list_add_reg (regcache, tdep->ppc_ctr_regnum))
903 return -1;
904 if (record_full_arch_list_add_reg (regcache, tdep->ppc_lr_regnum))
905 return -1;
906 if (record_full_arch_list_add_reg (regcache, tdep->ppc_xer_regnum))
907 return -1;
908
909 return 0;
910 }
911
912 if (tdep->wordsize == 8)
913 ret = record_linux_system_call (syscall_gdb, regcache,
914 &ppc64_linux_record_tdep);
915 else
916 ret = record_linux_system_call (syscall_gdb, regcache,
917 &ppc_linux_record_tdep);
918
919 if (ret != 0)
920 return ret;
921
922 /* Record registers clobbered during syscall. */
923 for (i = 3; i <= 12; i++)
924 {
925 if (record_full_arch_list_add_reg (regcache, tdep->ppc_gp0_regnum + i))
926 return -1;
927 }
928 if (record_full_arch_list_add_reg (regcache, tdep->ppc_gp0_regnum + 0))
929 return -1;
930 if (record_full_arch_list_add_reg (regcache, tdep->ppc_cr_regnum))
931 return -1;
932 if (record_full_arch_list_add_reg (regcache, tdep->ppc_ctr_regnum))
933 return -1;
934 if (record_full_arch_list_add_reg (regcache, tdep->ppc_lr_regnum))
935 return -1;
936
937 return 0;
938}
939
ddeca1df
WW
940/* Record registers which might be clobbered during signal handling.
941 Return 0 if successful. */
942
b4cdae6f
WW
943static int
944ppc_linux_record_signal (struct gdbarch *gdbarch, struct regcache *regcache,
945 enum gdb_signal signal)
946{
947 /* See handle_rt_signal64 in arch/powerpc/kernel/signal_64.c
948 handle_rt_signal32 in arch/powerpc/kernel/signal_32.c
949 arch/powerpc/include/asm/ptrace.h
950 for details. */
951 const int SIGNAL_FRAMESIZE = 128;
952 const int sizeof_rt_sigframe = 1440 * 2 + 8 * 2 + 4 * 6 + 8 + 8 + 128 + 512;
953 ULONGEST sp;
954 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
955 int i;
956
957 for (i = 3; i <= 12; i++)
958 {
959 if (record_full_arch_list_add_reg (regcache, tdep->ppc_gp0_regnum + i))
960 return -1;
961 }
962
963 if (record_full_arch_list_add_reg (regcache, tdep->ppc_lr_regnum))
964 return -1;
965 if (record_full_arch_list_add_reg (regcache, tdep->ppc_cr_regnum))
966 return -1;
967 if (record_full_arch_list_add_reg (regcache, tdep->ppc_ctr_regnum))
968 return -1;
969 if (record_full_arch_list_add_reg (regcache, gdbarch_pc_regnum (gdbarch)))
970 return -1;
971 if (record_full_arch_list_add_reg (regcache, gdbarch_sp_regnum (gdbarch)))
972 return -1;
973
974 /* Record the change in the stack.
975 frame-size = sizeof (struct rt_sigframe) + SIGNAL_FRAMESIZE */
976 regcache_raw_read_unsigned (regcache, gdbarch_sp_regnum (gdbarch), &sp);
977 sp -= SIGNAL_FRAMESIZE;
978 sp -= sizeof_rt_sigframe;
979
980 if (record_full_arch_list_add_mem (sp, SIGNAL_FRAMESIZE + sizeof_rt_sigframe))
981 return -1;
982
983 if (record_full_arch_list_add_end ())
984 return -1;
985
986 return 0;
987}
988
7284e1be
UW
989static void
990ppc_linux_write_pc (struct regcache *regcache, CORE_ADDR pc)
991{
ac7936df 992 struct gdbarch *gdbarch = regcache->arch ();
7284e1be
UW
993
994 regcache_cooked_write_unsigned (regcache, gdbarch_pc_regnum (gdbarch), pc);
995
996 /* Set special TRAP register to -1 to prevent the kernel from
997 messing with the PC we just installed, if we happen to be
998 within an interrupted system call that the kernel wants to
999 restart.
1000
1001 Note that after we return from the dummy call, the TRAP and
1002 ORIG_R3 registers will be automatically restored, and the
1003 kernel continues to restart the system call at this point. */
1004 if (ppc_linux_trap_reg_p (gdbarch))
1005 regcache_cooked_write_unsigned (regcache, PPC_TRAP_REGNUM, -1);
1006}
1007
f4d9bade
UW
1008static int
1009ppc_linux_spu_section (bfd *abfd, asection *asect, void *user_data)
1010{
61012eef 1011 return startswith (bfd_section_name (abfd, asect), "SPU/");
f4d9bade
UW
1012}
1013
7284e1be
UW
1014static const struct target_desc *
1015ppc_linux_core_read_description (struct gdbarch *gdbarch,
1016 struct target_ops *target,
1017 bfd *abfd)
1018{
bd64614e 1019 struct ppc_linux_features features = ppc_linux_no_features;
f4d9bade 1020 asection *cell = bfd_sections_find_if (abfd, ppc_linux_spu_section, NULL);
7284e1be 1021 asection *altivec = bfd_get_section_by_name (abfd, ".reg-ppc-vmx");
604c2f83 1022 asection *vsx = bfd_get_section_by_name (abfd, ".reg-ppc-vsx");
7284e1be 1023 asection *section = bfd_get_section_by_name (abfd, ".reg");
bd64614e 1024
7284e1be
UW
1025 if (! section)
1026 return NULL;
1027
1028 switch (bfd_section_size (abfd, section))
1029 {
1030 case 48 * 4:
bd64614e
PFC
1031 features.wordsize = 4;
1032 break;
7284e1be 1033 case 48 * 8:
bd64614e
PFC
1034 features.wordsize = 8;
1035 break;
7284e1be
UW
1036 default:
1037 return NULL;
1038 }
bd64614e
PFC
1039
1040 if (cell)
1041 features.cell = true;
1042
1043 if (altivec)
1044 features.altivec = true;
1045
1046 if (vsx)
1047 features.vsx = true;
1048
1049 return ppc_linux_match_description (features);
7284e1be
UW
1050}
1051
591a12a1
UW
1052
1053/* Implementation of `gdbarch_elf_make_msymbol_special', as defined in
1054 gdbarch.h. This implementation is used for the ELFv2 ABI only. */
1055
1056static void
1057ppc_elfv2_elf_make_msymbol_special (asymbol *sym, struct minimal_symbol *msym)
1058{
1059 elf_symbol_type *elf_sym = (elf_symbol_type *)sym;
1060
1061 /* If the symbol is marked as having a local entry point, set a target
1062 flag in the msymbol. We currently only support local entry point
1063 offsets of 8 bytes, which is the only entry point offset ever used
1064 by current compilers. If/when other offsets are ever used, we will
1065 have to use additional target flag bits to store them. */
1066 switch (PPC64_LOCAL_ENTRY_OFFSET (elf_sym->internal_elf_sym.st_other))
1067 {
1068 default:
1069 break;
1070 case 8:
1071 MSYMBOL_TARGET_FLAG_1 (msym) = 1;
1072 break;
1073 }
1074}
1075
1076/* Implementation of `gdbarch_skip_entrypoint', as defined in
1077 gdbarch.h. This implementation is used for the ELFv2 ABI only. */
1078
1079static CORE_ADDR
1080ppc_elfv2_skip_entrypoint (struct gdbarch *gdbarch, CORE_ADDR pc)
1081{
1082 struct bound_minimal_symbol fun;
1083 int local_entry_offset = 0;
1084
1085 fun = lookup_minimal_symbol_by_pc (pc);
1086 if (fun.minsym == NULL)
1087 return pc;
1088
1089 /* See ppc_elfv2_elf_make_msymbol_special for how local entry point
1090 offset values are encoded. */
1091 if (MSYMBOL_TARGET_FLAG_1 (fun.minsym))
1092 local_entry_offset = 8;
1093
77e371c0
TT
1094 if (BMSYMBOL_VALUE_ADDRESS (fun) <= pc
1095 && pc < BMSYMBOL_VALUE_ADDRESS (fun) + local_entry_offset)
1096 return BMSYMBOL_VALUE_ADDRESS (fun) + local_entry_offset;
591a12a1
UW
1097
1098 return pc;
1099}
1100
55aa24fb
SDJ
1101/* Implementation of `gdbarch_stap_is_single_operand', as defined in
1102 gdbarch.h. */
1103
1104static int
1105ppc_stap_is_single_operand (struct gdbarch *gdbarch, const char *s)
1106{
1107 return (*s == 'i' /* Literal number. */
1108 || (isdigit (*s) && s[1] == '('
1109 && isdigit (s[2])) /* Displacement. */
1110 || (*s == '(' && isdigit (s[1])) /* Register indirection. */
1111 || isdigit (*s)); /* Register value. */
1112}
1113
1114/* Implementation of `gdbarch_stap_parse_special_token', as defined in
1115 gdbarch.h. */
1116
1117static int
1118ppc_stap_parse_special_token (struct gdbarch *gdbarch,
1119 struct stap_parse_info *p)
1120{
1121 if (isdigit (*p->arg))
1122 {
1123 /* This temporary pointer is needed because we have to do a lookahead.
1124 We could be dealing with a register displacement, and in such case
1125 we would not need to do anything. */
1126 const char *s = p->arg;
1127 char *regname;
1128 int len;
1129 struct stoken str;
1130
1131 while (isdigit (*s))
1132 ++s;
1133
1134 if (*s == '(')
1135 {
1136 /* It is a register displacement indeed. Returning 0 means we are
1137 deferring the treatment of this case to the generic parser. */
1138 return 0;
1139 }
1140
1141 len = s - p->arg;
224c3ddb 1142 regname = (char *) alloca (len + 2);
55aa24fb
SDJ
1143 regname[0] = 'r';
1144
1145 strncpy (regname + 1, p->arg, len);
1146 ++len;
1147 regname[len] = '\0';
1148
1149 if (user_reg_map_name_to_regnum (gdbarch, regname, len) == -1)
1150 error (_("Invalid register name `%s' on expression `%s'."),
1151 regname, p->saved_arg);
1152
410a0ff2 1153 write_exp_elt_opcode (&p->pstate, OP_REGISTER);
55aa24fb
SDJ
1154 str.ptr = regname;
1155 str.length = len;
410a0ff2
SDJ
1156 write_exp_string (&p->pstate, str);
1157 write_exp_elt_opcode (&p->pstate, OP_REGISTER);
55aa24fb
SDJ
1158
1159 p->arg = s;
1160 }
1161 else
1162 {
1163 /* All the other tokens should be handled correctly by the generic
1164 parser. */
1165 return 0;
1166 }
1167
1168 return 1;
1169}
cc5f0d61
UW
1170
1171/* Cell/B.E. active SPE context tracking support. */
1172
1173static struct objfile *spe_context_objfile = NULL;
1174static CORE_ADDR spe_context_lm_addr = 0;
1175static CORE_ADDR spe_context_offset = 0;
1176
1177static ptid_t spe_context_cache_ptid;
1178static CORE_ADDR spe_context_cache_address;
1179
1180/* Hook into inferior_created, solib_loaded, and solib_unloaded observers
1181 to track whether we've loaded a version of libspe2 (as static or dynamic
1182 library) that provides the __spe_current_active_context variable. */
1183static void
1184ppc_linux_spe_context_lookup (struct objfile *objfile)
1185{
3b7344d5 1186 struct bound_minimal_symbol sym;
cc5f0d61
UW
1187
1188 if (!objfile)
1189 {
1190 spe_context_objfile = NULL;
1191 spe_context_lm_addr = 0;
1192 spe_context_offset = 0;
1193 spe_context_cache_ptid = minus_one_ptid;
1194 spe_context_cache_address = 0;
1195 return;
1196 }
1197
1198 sym = lookup_minimal_symbol ("__spe_current_active_context", NULL, objfile);
3b7344d5 1199 if (sym.minsym)
cc5f0d61
UW
1200 {
1201 spe_context_objfile = objfile;
1202 spe_context_lm_addr = svr4_fetch_objfile_link_map (objfile);
ef36892e 1203 spe_context_offset = MSYMBOL_VALUE_RAW_ADDRESS (sym.minsym);
cc5f0d61
UW
1204 spe_context_cache_ptid = minus_one_ptid;
1205 spe_context_cache_address = 0;
1206 return;
1207 }
1208}
1209
1210static void
1211ppc_linux_spe_context_inferior_created (struct target_ops *t, int from_tty)
1212{
1213 struct objfile *objfile;
1214
1215 ppc_linux_spe_context_lookup (NULL);
1216 ALL_OBJFILES (objfile)
1217 ppc_linux_spe_context_lookup (objfile);
1218}
1219
1220static void
1221ppc_linux_spe_context_solib_loaded (struct so_list *so)
1222{
1223 if (strstr (so->so_original_name, "/libspe") != NULL)
1224 {
7e559477 1225 solib_read_symbols (so, 0);
cc5f0d61
UW
1226 ppc_linux_spe_context_lookup (so->objfile);
1227 }
1228}
1229
1230static void
1231ppc_linux_spe_context_solib_unloaded (struct so_list *so)
1232{
1233 if (so->objfile == spe_context_objfile)
1234 ppc_linux_spe_context_lookup (NULL);
1235}
1236
1237/* Retrieve contents of the N'th element in the current thread's
1238 linked SPE context list into ID and NPC. Return the address of
1239 said context element, or 0 if not found. */
1240static CORE_ADDR
1241ppc_linux_spe_context (int wordsize, enum bfd_endian byte_order,
1242 int n, int *id, unsigned int *npc)
1243{
1244 CORE_ADDR spe_context = 0;
1245 gdb_byte buf[16];
1246 int i;
1247
1248 /* Quick exit if we have not found __spe_current_active_context. */
1249 if (!spe_context_objfile)
1250 return 0;
1251
1252 /* Look up cached address of thread-local variable. */
1253 if (!ptid_equal (spe_context_cache_ptid, inferior_ptid))
1254 {
f6ac5f3d 1255 struct target_ops *target = target_stack;
cc5f0d61 1256
492d29ea 1257 TRY
cc5f0d61
UW
1258 {
1259 /* We do not call target_translate_tls_address here, because
1260 svr4_fetch_objfile_link_map may invalidate the frame chain,
1261 which must not do while inside a frame sniffer.
1262
1263 Instead, we have cached the lm_addr value, and use that to
1264 directly call the target's to_get_thread_local_address. */
1265 spe_context_cache_address
f6ac5f3d
PA
1266 = target->get_thread_local_address (inferior_ptid,
1267 spe_context_lm_addr,
1268 spe_context_offset);
cc5f0d61
UW
1269 spe_context_cache_ptid = inferior_ptid;
1270 }
1271
492d29ea
PA
1272 CATCH (ex, RETURN_MASK_ERROR)
1273 {
1274 return 0;
1275 }
1276 END_CATCH
cc5f0d61
UW
1277 }
1278
1279 /* Read variable value. */
1280 if (target_read_memory (spe_context_cache_address, buf, wordsize) == 0)
1281 spe_context = extract_unsigned_integer (buf, wordsize, byte_order);
1282
1283 /* Cyle through to N'th linked list element. */
1284 for (i = 0; i < n && spe_context; i++)
1285 if (target_read_memory (spe_context + align_up (12, wordsize),
1286 buf, wordsize) == 0)
1287 spe_context = extract_unsigned_integer (buf, wordsize, byte_order);
1288 else
1289 spe_context = 0;
1290
1291 /* Read current context. */
1292 if (spe_context
1293 && target_read_memory (spe_context, buf, 12) != 0)
1294 spe_context = 0;
1295
1296 /* Extract data elements. */
1297 if (spe_context)
1298 {
1299 if (id)
1300 *id = extract_signed_integer (buf, 4, byte_order);
1301 if (npc)
1302 *npc = extract_unsigned_integer (buf + 4, 4, byte_order);
1303 }
1304
1305 return spe_context;
1306}
1307
1308
1309/* Cell/B.E. cross-architecture unwinder support. */
1310
1311struct ppu2spu_cache
1312{
1313 struct frame_id frame_id;
daf6667d 1314 readonly_detached_regcache *regcache;
cc5f0d61
UW
1315};
1316
1317static struct gdbarch *
1318ppu2spu_prev_arch (struct frame_info *this_frame, void **this_cache)
1319{
19ba03f4 1320 struct ppu2spu_cache *cache = (struct ppu2spu_cache *) *this_cache;
ac7936df 1321 return cache->regcache->arch ();
cc5f0d61
UW
1322}
1323
1324static void
1325ppu2spu_this_id (struct frame_info *this_frame,
1326 void **this_cache, struct frame_id *this_id)
1327{
19ba03f4 1328 struct ppu2spu_cache *cache = (struct ppu2spu_cache *) *this_cache;
cc5f0d61
UW
1329 *this_id = cache->frame_id;
1330}
1331
1332static struct value *
1333ppu2spu_prev_register (struct frame_info *this_frame,
1334 void **this_cache, int regnum)
1335{
19ba03f4 1336 struct ppu2spu_cache *cache = (struct ppu2spu_cache *) *this_cache;
ac7936df 1337 struct gdbarch *gdbarch = cache->regcache->arch ();
cc5f0d61
UW
1338 gdb_byte *buf;
1339
224c3ddb 1340 buf = (gdb_byte *) alloca (register_size (gdbarch, regnum));
a536c6d7 1341
d679c21a 1342 cache->regcache->cooked_read (regnum, buf);
cc5f0d61
UW
1343 return frame_unwind_got_bytes (this_frame, regnum, buf);
1344}
1345
1346struct ppu2spu_data
1347{
1348 struct gdbarch *gdbarch;
1349 int id;
1350 unsigned int npc;
1351 gdb_byte gprs[128*16];
1352};
1353
f486487f 1354static enum register_status
cc5f0d61
UW
1355ppu2spu_unwind_register (void *src, int regnum, gdb_byte *buf)
1356{
19ba03f4 1357 struct ppu2spu_data *data = (struct ppu2spu_data *) src;
cc5f0d61
UW
1358 enum bfd_endian byte_order = gdbarch_byte_order (data->gdbarch);
1359
1360 if (regnum >= 0 && regnum < SPU_NUM_GPRS)
1361 memcpy (buf, data->gprs + 16*regnum, 16);
1362 else if (regnum == SPU_ID_REGNUM)
1363 store_unsigned_integer (buf, 4, byte_order, data->id);
1364 else if (regnum == SPU_PC_REGNUM)
1365 store_unsigned_integer (buf, 4, byte_order, data->npc);
1366 else
a536c6d7 1367 return REG_UNAVAILABLE;
cc5f0d61 1368
a536c6d7 1369 return REG_VALID;
cc5f0d61
UW
1370}
1371
1372static int
1373ppu2spu_sniffer (const struct frame_unwind *self,
1374 struct frame_info *this_frame, void **this_prologue_cache)
1375{
1376 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1377 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1378 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1379 struct ppu2spu_data data;
1380 struct frame_info *fi;
1381 CORE_ADDR base, func, backchain, spe_context;
1382 gdb_byte buf[8];
1383 int n = 0;
1384
1385 /* Count the number of SPU contexts already in the frame chain. */
1386 for (fi = get_next_frame (this_frame); fi; fi = get_next_frame (fi))
1387 if (get_frame_type (fi) == ARCH_FRAME
1388 && gdbarch_bfd_arch_info (get_frame_arch (fi))->arch == bfd_arch_spu)
1389 n++;
1390
1391 base = get_frame_sp (this_frame);
1392 func = get_frame_pc (this_frame);
1393 if (target_read_memory (base, buf, tdep->wordsize))
1394 return 0;
1395 backchain = extract_unsigned_integer (buf, tdep->wordsize, byte_order);
1396
1397 spe_context = ppc_linux_spe_context (tdep->wordsize, byte_order,
1398 n, &data.id, &data.npc);
1399 if (spe_context && base <= spe_context && spe_context < backchain)
1400 {
1401 char annex[32];
1402
1403 /* Find gdbarch for SPU. */
1404 struct gdbarch_info info;
1405 gdbarch_info_init (&info);
1406 info.bfd_arch_info = bfd_lookup_arch (bfd_arch_spu, bfd_mach_spu);
1407 info.byte_order = BFD_ENDIAN_BIG;
1408 info.osabi = GDB_OSABI_LINUX;
0dba2a6c 1409 info.id = &data.id;
cc5f0d61
UW
1410 data.gdbarch = gdbarch_find_by_info (info);
1411 if (!data.gdbarch)
1412 return 0;
1413
1414 xsnprintf (annex, sizeof annex, "%d/regs", data.id);
f6ac5f3d 1415 if (target_read (target_stack, TARGET_OBJECT_SPU, annex,
cc5f0d61
UW
1416 data.gprs, 0, sizeof data.gprs)
1417 == sizeof data.gprs)
1418 {
1419 struct ppu2spu_cache *cache
1420 = FRAME_OBSTACK_CALLOC (1, struct ppu2spu_cache);
daf6667d
YQ
1421 std::unique_ptr<readonly_detached_regcache> regcache
1422 (new readonly_detached_regcache (data.gdbarch,
1423 ppu2spu_unwind_register,
1424 &data));
cc5f0d61
UW
1425
1426 cache->frame_id = frame_id_build (base, func);
9ac86b52 1427 cache->regcache = regcache.release ();
cc5f0d61
UW
1428 *this_prologue_cache = cache;
1429 return 1;
1430 }
1431 }
1432
1433 return 0;
1434}
1435
1436static void
1437ppu2spu_dealloc_cache (struct frame_info *self, void *this_cache)
1438{
19ba03f4 1439 struct ppu2spu_cache *cache = (struct ppu2spu_cache *) this_cache;
c0e383c6 1440 delete cache->regcache;
cc5f0d61
UW
1441}
1442
1443static const struct frame_unwind ppu2spu_unwind = {
1444 ARCH_FRAME,
8fbca658 1445 default_frame_unwind_stop_reason,
cc5f0d61
UW
1446 ppu2spu_this_id,
1447 ppu2spu_prev_register,
1448 NULL,
1449 ppu2spu_sniffer,
1450 ppu2spu_dealloc_cache,
1451 ppu2spu_prev_arch,
1452};
1453
ddeca1df
WW
1454/* Initialize linux_record_tdep if not initialized yet.
1455 WORDSIZE is 4 or 8 for 32- or 64-bit PowerPC Linux respectively.
1456 Sizes of data structures are initialized accordingly. */
b4cdae6f
WW
1457
1458static void
1459ppc_init_linux_record_tdep (struct linux_record_tdep *record_tdep,
1460 int wordsize)
1461{
1462 /* Simply return if it had been initialized. */
1463 if (record_tdep->size_pointer != 0)
1464 return;
1465
1466 /* These values are the size of the type that will be used in a system
1467 call. They are obtained from Linux Kernel source. */
1468
1469 if (wordsize == 8)
1470 {
1471 record_tdep->size_pointer = 8;
1472 record_tdep->size__old_kernel_stat = 32;
1473 record_tdep->size_tms = 32;
1474 record_tdep->size_loff_t = 8;
1475 record_tdep->size_flock = 32;
1476 record_tdep->size_oldold_utsname = 45;
1477 record_tdep->size_ustat = 32;
7571f7f2
MK
1478 record_tdep->size_old_sigaction = 32;
1479 record_tdep->size_old_sigset_t = 8;
b4cdae6f
WW
1480 record_tdep->size_rlimit = 16;
1481 record_tdep->size_rusage = 144;
1482 record_tdep->size_timeval = 16;
1483 record_tdep->size_timezone = 8;
1484 record_tdep->size_old_gid_t = 4;
1485 record_tdep->size_old_uid_t = 4;
1486 record_tdep->size_fd_set = 128;
72aded86 1487 record_tdep->size_old_dirent = 280;
b4cdae6f
WW
1488 record_tdep->size_statfs = 120;
1489 record_tdep->size_statfs64 = 120;
1490 record_tdep->size_sockaddr = 16;
1491 record_tdep->size_int = 4;
1492 record_tdep->size_long = 8;
1493 record_tdep->size_ulong = 8;
1494 record_tdep->size_msghdr = 56;
1495 record_tdep->size_itimerval = 32;
1496 record_tdep->size_stat = 144;
1497 record_tdep->size_old_utsname = 325;
1498 record_tdep->size_sysinfo = 112;
1499 record_tdep->size_msqid_ds = 120;
1500 record_tdep->size_shmid_ds = 112;
1501 record_tdep->size_new_utsname = 390;
1502 record_tdep->size_timex = 208;
1503 record_tdep->size_mem_dqinfo = 24;
1504 record_tdep->size_if_dqblk = 72;
1505 record_tdep->size_fs_quota_stat = 80;
1506 record_tdep->size_timespec = 16;
1507 record_tdep->size_pollfd = 8;
1508 record_tdep->size_NFS_FHSIZE = 32;
1509 record_tdep->size_knfsd_fh = 132;
c28ebe25 1510 record_tdep->size_TASK_COMM_LEN = 16;
7571f7f2
MK
1511 record_tdep->size_sigaction = 32;
1512 record_tdep->size_sigset_t = 8;
b4cdae6f
WW
1513 record_tdep->size_siginfo_t = 128;
1514 record_tdep->size_cap_user_data_t = 8;
1515 record_tdep->size_stack_t = 24;
1516 record_tdep->size_off_t = 8;
1517 record_tdep->size_stat64 = 104;
1518 record_tdep->size_gid_t = 4;
1519 record_tdep->size_uid_t = 4;
1520 record_tdep->size_PAGE_SIZE = 0x10000; /* 64KB */
1521 record_tdep->size_flock64 = 32;
1522 record_tdep->size_io_event = 32;
1523 record_tdep->size_iocb = 64;
1524 record_tdep->size_epoll_event = 16;
1525 record_tdep->size_itimerspec = 32;
1526 record_tdep->size_mq_attr = 64;
b4cdae6f
WW
1527 record_tdep->size_termios = 44;
1528 record_tdep->size_pid_t = 4;
1529 record_tdep->size_winsize = 8;
1530 record_tdep->size_serial_struct = 72;
1531 record_tdep->size_serial_icounter_struct = 80;
1532 record_tdep->size_size_t = 8;
1533 record_tdep->size_iovec = 16;
b80d067f 1534 record_tdep->size_time_t = 8;
b4cdae6f
WW
1535 }
1536 else if (wordsize == 4)
1537 {
1538 record_tdep->size_pointer = 4;
1539 record_tdep->size__old_kernel_stat = 32;
1540 record_tdep->size_tms = 16;
1541 record_tdep->size_loff_t = 8;
1542 record_tdep->size_flock = 16;
1543 record_tdep->size_oldold_utsname = 45;
1544 record_tdep->size_ustat = 20;
7571f7f2
MK
1545 record_tdep->size_old_sigaction = 16;
1546 record_tdep->size_old_sigset_t = 4;
b4cdae6f
WW
1547 record_tdep->size_rlimit = 8;
1548 record_tdep->size_rusage = 72;
1549 record_tdep->size_timeval = 8;
1550 record_tdep->size_timezone = 8;
1551 record_tdep->size_old_gid_t = 4;
1552 record_tdep->size_old_uid_t = 4;
1553 record_tdep->size_fd_set = 128;
72aded86 1554 record_tdep->size_old_dirent = 268;
b4cdae6f
WW
1555 record_tdep->size_statfs = 64;
1556 record_tdep->size_statfs64 = 88;
1557 record_tdep->size_sockaddr = 16;
1558 record_tdep->size_int = 4;
1559 record_tdep->size_long = 4;
1560 record_tdep->size_ulong = 4;
1561 record_tdep->size_msghdr = 28;
1562 record_tdep->size_itimerval = 16;
1563 record_tdep->size_stat = 88;
1564 record_tdep->size_old_utsname = 325;
1565 record_tdep->size_sysinfo = 64;
1566 record_tdep->size_msqid_ds = 68;
1567 record_tdep->size_shmid_ds = 60;
1568 record_tdep->size_new_utsname = 390;
1569 record_tdep->size_timex = 128;
1570 record_tdep->size_mem_dqinfo = 24;
1571 record_tdep->size_if_dqblk = 72;
1572 record_tdep->size_fs_quota_stat = 80;
1573 record_tdep->size_timespec = 8;
1574 record_tdep->size_pollfd = 8;
1575 record_tdep->size_NFS_FHSIZE = 32;
1576 record_tdep->size_knfsd_fh = 132;
c28ebe25 1577 record_tdep->size_TASK_COMM_LEN = 16;
7571f7f2
MK
1578 record_tdep->size_sigaction = 20;
1579 record_tdep->size_sigset_t = 8;
b4cdae6f
WW
1580 record_tdep->size_siginfo_t = 128;
1581 record_tdep->size_cap_user_data_t = 4;
1582 record_tdep->size_stack_t = 12;
1583 record_tdep->size_off_t = 4;
1584 record_tdep->size_stat64 = 104;
1585 record_tdep->size_gid_t = 4;
1586 record_tdep->size_uid_t = 4;
1587 record_tdep->size_PAGE_SIZE = 0x10000; /* 64KB */
1588 record_tdep->size_flock64 = 32;
1589 record_tdep->size_io_event = 32;
1590 record_tdep->size_iocb = 64;
1591 record_tdep->size_epoll_event = 16;
1592 record_tdep->size_itimerspec = 16;
1593 record_tdep->size_mq_attr = 32;
b4cdae6f
WW
1594 record_tdep->size_termios = 44;
1595 record_tdep->size_pid_t = 4;
1596 record_tdep->size_winsize = 8;
1597 record_tdep->size_serial_struct = 60;
1598 record_tdep->size_serial_icounter_struct = 80;
1599 record_tdep->size_size_t = 4;
1600 record_tdep->size_iovec = 8;
b80d067f 1601 record_tdep->size_time_t = 4;
b4cdae6f
WW
1602 }
1603 else
1604 internal_error (__FILE__, __LINE__, _("unexpected wordsize"));
1605
1606 /* These values are the second argument of system call "sys_fcntl"
1607 and "sys_fcntl64". They are obtained from Linux Kernel source. */
1608 record_tdep->fcntl_F_GETLK = 5;
1609 record_tdep->fcntl_F_GETLK64 = 12;
1610 record_tdep->fcntl_F_SETLK64 = 13;
1611 record_tdep->fcntl_F_SETLKW64 = 14;
1612
1613 record_tdep->arg1 = PPC_R0_REGNUM + 3;
1614 record_tdep->arg2 = PPC_R0_REGNUM + 4;
1615 record_tdep->arg3 = PPC_R0_REGNUM + 5;
1616 record_tdep->arg4 = PPC_R0_REGNUM + 6;
1617 record_tdep->arg5 = PPC_R0_REGNUM + 7;
1618 record_tdep->arg6 = PPC_R0_REGNUM + 8;
1619
1620 /* These values are the second argument of system call "sys_ioctl".
1621 They are obtained from Linux Kernel source.
1622 See arch/powerpc/include/uapi/asm/ioctls.h. */
1623 record_tdep->ioctl_TCGETS = 0x403c7413;
1624 record_tdep->ioctl_TCSETS = 0x803c7414;
1625 record_tdep->ioctl_TCSETSW = 0x803c7415;
1626 record_tdep->ioctl_TCSETSF = 0x803c7416;
1627 record_tdep->ioctl_TCGETA = 0x40147417;
1628 record_tdep->ioctl_TCSETA = 0x80147418;
1629 record_tdep->ioctl_TCSETAW = 0x80147419;
1630 record_tdep->ioctl_TCSETAF = 0x8014741c;
1631 record_tdep->ioctl_TCSBRK = 0x2000741d;
1632 record_tdep->ioctl_TCXONC = 0x2000741e;
1633 record_tdep->ioctl_TCFLSH = 0x2000741f;
1634 record_tdep->ioctl_TIOCEXCL = 0x540c;
1635 record_tdep->ioctl_TIOCNXCL = 0x540d;
1636 record_tdep->ioctl_TIOCSCTTY = 0x540e;
1637 record_tdep->ioctl_TIOCGPGRP = 0x40047477;
1638 record_tdep->ioctl_TIOCSPGRP = 0x80047476;
1639 record_tdep->ioctl_TIOCOUTQ = 0x40047473;
1640 record_tdep->ioctl_TIOCSTI = 0x5412;
1641 record_tdep->ioctl_TIOCGWINSZ = 0x40087468;
1642 record_tdep->ioctl_TIOCSWINSZ = 0x80087467;
1643 record_tdep->ioctl_TIOCMGET = 0x5415;
1644 record_tdep->ioctl_TIOCMBIS = 0x5416;
1645 record_tdep->ioctl_TIOCMBIC = 0x5417;
1646 record_tdep->ioctl_TIOCMSET = 0x5418;
1647 record_tdep->ioctl_TIOCGSOFTCAR = 0x5419;
1648 record_tdep->ioctl_TIOCSSOFTCAR = 0x541a;
1649 record_tdep->ioctl_FIONREAD = 0x4004667f;
1650 record_tdep->ioctl_TIOCINQ = 0x4004667f;
1651 record_tdep->ioctl_TIOCLINUX = 0x541c;
1652 record_tdep->ioctl_TIOCCONS = 0x541d;
1653 record_tdep->ioctl_TIOCGSERIAL = 0x541e;
1654 record_tdep->ioctl_TIOCSSERIAL = 0x541f;
1655 record_tdep->ioctl_TIOCPKT = 0x5420;
1656 record_tdep->ioctl_FIONBIO = 0x8004667e;
1657 record_tdep->ioctl_TIOCNOTTY = 0x5422;
1658 record_tdep->ioctl_TIOCSETD = 0x5423;
1659 record_tdep->ioctl_TIOCGETD = 0x5424;
1660 record_tdep->ioctl_TCSBRKP = 0x5425;
1661 record_tdep->ioctl_TIOCSBRK = 0x5427;
1662 record_tdep->ioctl_TIOCCBRK = 0x5428;
1663 record_tdep->ioctl_TIOCGSID = 0x5429;
1664 record_tdep->ioctl_TIOCGPTN = 0x40045430;
1665 record_tdep->ioctl_TIOCSPTLCK = 0x80045431;
1666 record_tdep->ioctl_FIONCLEX = 0x20006602;
1667 record_tdep->ioctl_FIOCLEX = 0x20006601;
1668 record_tdep->ioctl_FIOASYNC = 0x8004667d;
1669 record_tdep->ioctl_TIOCSERCONFIG = 0x5453;
1670 record_tdep->ioctl_TIOCSERGWILD = 0x5454;
1671 record_tdep->ioctl_TIOCSERSWILD = 0x5455;
1672 record_tdep->ioctl_TIOCGLCKTRMIOS = 0x5456;
1673 record_tdep->ioctl_TIOCSLCKTRMIOS = 0x5457;
1674 record_tdep->ioctl_TIOCSERGSTRUCT = 0x5458;
1675 record_tdep->ioctl_TIOCSERGETLSR = 0x5459;
1676 record_tdep->ioctl_TIOCSERGETMULTI = 0x545a;
1677 record_tdep->ioctl_TIOCSERSETMULTI = 0x545b;
1678 record_tdep->ioctl_TIOCMIWAIT = 0x545c;
1679 record_tdep->ioctl_TIOCGICOUNT = 0x545d;
1680 record_tdep->ioctl_FIOQSIZE = 0x40086680;
1681}
cc5f0d61 1682
00d5215e
UW
1683/* Return a floating-point format for a floating-point variable of
1684 length LEN in bits. If non-NULL, NAME is the name of its type.
1685 If no suitable type is found, return NULL. */
1686
1687const struct floatformat **
1688ppc_floatformat_for_type (struct gdbarch *gdbarch,
1689 const char *name, int len)
1690{
1691 if (len == 128 && name)
ed0f4273
UW
1692 {
1693 if (strcmp (name, "__float128") == 0
1694 || strcmp (name, "_Float128") == 0
1695 || strcmp (name, "_Float64x") == 0
1696 || strcmp (name, "complex _Float128") == 0
1697 || strcmp (name, "complex _Float64x") == 0)
1698 return floatformats_ia64_quad;
1699
1700 if (strcmp (name, "__ibm128") == 0)
1701 return floatformats_ibm_long_double;
1702 }
00d5215e
UW
1703
1704 return default_floatformat_for_type (gdbarch, name, len);
1705}
1706
7b112f9c
JT
1707static void
1708ppc_linux_init_abi (struct gdbarch_info info,
1709 struct gdbarch *gdbarch)
1710{
1711 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
0dba2a6c 1712 struct tdesc_arch_data *tdesc_data = info.tdesc_data;
05c0465e
SDJ
1713 static const char *const stap_integer_prefixes[] = { "i", NULL };
1714 static const char *const stap_register_indirection_prefixes[] = { "(",
1715 NULL };
1716 static const char *const stap_register_indirection_suffixes[] = { ")",
1717 NULL };
7b112f9c 1718
a5ee0f0c
PA
1719 linux_init_abi (info, gdbarch);
1720
b14d30e1 1721 /* PPC GNU/Linux uses either 64-bit or 128-bit long doubles; where
ed0f4273
UW
1722 128-bit, they can be either IBM long double or IEEE quad long double.
1723 The 64-bit long double case will be detected automatically using
1724 the size specified in debug info. We use a .gnu.attribute flag
1725 to distinguish between the IBM long double and IEEE quad cases. */
b14d30e1 1726 set_gdbarch_long_double_bit (gdbarch, 16 * TARGET_CHAR_BIT);
ed0f4273
UW
1727 if (tdep->long_double_abi == POWERPC_LONG_DOUBLE_IEEE128)
1728 set_gdbarch_long_double_format (gdbarch, floatformats_ia64_quad);
1729 else
1730 set_gdbarch_long_double_format (gdbarch, floatformats_ibm_long_double);
0598a43c 1731
00d5215e
UW
1732 /* Support for floating-point data type variants. */
1733 set_gdbarch_floatformat_for_type (gdbarch, ppc_floatformat_for_type);
1734
7284e1be
UW
1735 /* Handle inferior calls during interrupted system calls. */
1736 set_gdbarch_write_pc (gdbarch, ppc_linux_write_pc);
1737
a96d9b2e
SDJ
1738 /* Get the syscall number from the arch's register. */
1739 set_gdbarch_get_syscall_number (gdbarch, ppc_linux_get_syscall_number);
1740
55aa24fb 1741 /* SystemTap functions. */
05c0465e
SDJ
1742 set_gdbarch_stap_integer_prefixes (gdbarch, stap_integer_prefixes);
1743 set_gdbarch_stap_register_indirection_prefixes (gdbarch,
1744 stap_register_indirection_prefixes);
1745 set_gdbarch_stap_register_indirection_suffixes (gdbarch,
1746 stap_register_indirection_suffixes);
55aa24fb
SDJ
1747 set_gdbarch_stap_gdb_register_prefix (gdbarch, "r");
1748 set_gdbarch_stap_is_single_operand (gdbarch, ppc_stap_is_single_operand);
1749 set_gdbarch_stap_parse_special_token (gdbarch,
1750 ppc_stap_parse_special_token);
1751
7b112f9c
JT
1752 if (tdep->wordsize == 4)
1753 {
b9ff3018
AC
1754 /* Until November 2001, gcc did not comply with the 32 bit SysV
1755 R4 ABI requirement that structures less than or equal to 8
1756 bytes should be returned in registers. Instead GCC was using
b021a221 1757 the AIX/PowerOpen ABI - everything returned in memory
b9ff3018
AC
1758 (well ignoring vectors that is). When this was corrected, it
1759 wasn't fixed for GNU/Linux native platform. Use the
1760 PowerOpen struct convention. */
05580c65 1761 set_gdbarch_return_value (gdbarch, ppc_linux_return_value);
b9ff3018 1762
7b112f9c
JT
1763 set_gdbarch_memory_remove_breakpoint (gdbarch,
1764 ppc_linux_memory_remove_breakpoint);
61a65099 1765
f470a70a 1766 /* Shared library handling. */
5d853008 1767 set_gdbarch_skip_trampoline_code (gdbarch, ppc_skip_trampoline_code);
7b112f9c 1768 set_solib_svr4_fetch_link_map_offsets
76a9d10f 1769 (gdbarch, svr4_ilp32_fetch_link_map_offsets);
a8f60bfc 1770
a96d9b2e 1771 /* Setting the correct XML syscall filename. */
458c8db8 1772 set_xml_syscall_file_name (gdbarch, XML_SYSCALL_FILENAME_PPC);
a96d9b2e 1773
a8f60bfc 1774 /* Trampolines. */
0df8b418
MS
1775 tramp_frame_prepend_unwinder (gdbarch,
1776 &ppc32_linux_sigaction_tramp_frame);
1777 tramp_frame_prepend_unwinder (gdbarch,
1778 &ppc32_linux_sighandler_tramp_frame);
a78c2d62
UW
1779
1780 /* BFD target for core files. */
1781 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_LITTLE)
1782 set_gdbarch_gcore_bfd_target (gdbarch, "elf32-powerpcle");
1783 else
1784 set_gdbarch_gcore_bfd_target (gdbarch, "elf32-powerpc");
2f2241f1 1785
5d853008
ME
1786 if (powerpc_so_ops.in_dynsym_resolve_code == NULL)
1787 {
1788 powerpc_so_ops = svr4_so_ops;
1789 /* Override dynamic resolve function. */
1790 powerpc_so_ops.in_dynsym_resolve_code =
1791 powerpc_linux_in_dynsym_resolve_code;
1792 }
1793 set_solib_ops (gdbarch, &powerpc_so_ops);
1794
1795 set_gdbarch_skip_solib_resolver (gdbarch, glibc_skip_solib_resolver);
7b112f9c 1796 }
f470a70a
JB
1797
1798 if (tdep->wordsize == 8)
1799 {
d4094b6a
UW
1800 if (tdep->elf_abi == POWERPC_ELF_V1)
1801 {
1802 /* Handle PPC GNU/Linux 64-bit function pointers (which are really
1803 function descriptors). */
1804 set_gdbarch_convert_from_func_ptr_addr
1805 (gdbarch, ppc64_convert_from_func_ptr_addr);
00d5f93a 1806
d4094b6a
UW
1807 set_gdbarch_elf_make_msymbol_special
1808 (gdbarch, ppc64_elf_make_msymbol_special);
1809 }
591a12a1
UW
1810 else
1811 {
1812 set_gdbarch_elf_make_msymbol_special
1813 (gdbarch, ppc_elfv2_elf_make_msymbol_special);
1814
1815 set_gdbarch_skip_entrypoint (gdbarch, ppc_elfv2_skip_entrypoint);
1816 }
24c274a1 1817
fb318ff7 1818 /* Shared library handling. */
2bbe3cc1 1819 set_gdbarch_skip_trampoline_code (gdbarch, ppc64_skip_trampoline_code);
fb318ff7
DJ
1820 set_solib_svr4_fetch_link_map_offsets
1821 (gdbarch, svr4_lp64_fetch_link_map_offsets);
1822
a96d9b2e 1823 /* Setting the correct XML syscall filename. */
458c8db8 1824 set_xml_syscall_file_name (gdbarch, XML_SYSCALL_FILENAME_PPC64);
a96d9b2e 1825
a8f60bfc 1826 /* Trampolines. */
0df8b418
MS
1827 tramp_frame_prepend_unwinder (gdbarch,
1828 &ppc64_linux_sigaction_tramp_frame);
1829 tramp_frame_prepend_unwinder (gdbarch,
1830 &ppc64_linux_sighandler_tramp_frame);
a78c2d62
UW
1831
1832 /* BFD target for core files. */
1833 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_LITTLE)
1834 set_gdbarch_gcore_bfd_target (gdbarch, "elf64-powerpcle");
1835 else
1836 set_gdbarch_gcore_bfd_target (gdbarch, "elf64-powerpc");
f470a70a 1837 }
b3ac9c77 1838
7284e1be 1839 set_gdbarch_core_read_description (gdbarch, ppc_linux_core_read_description);
5aa82d05
AA
1840 set_gdbarch_iterate_over_regset_sections (gdbarch,
1841 ppc_linux_iterate_over_regset_sections);
b2756930
KB
1842
1843 /* Enable TLS support. */
1844 set_gdbarch_fetch_tls_load_module_address (gdbarch,
1845 svr4_fetch_objfile_link_map);
7284e1be
UW
1846
1847 if (tdesc_data)
1848 {
1849 const struct tdesc_feature *feature;
1850
1851 /* If we have target-described registers, then we can safely
1852 reserve a number for PPC_ORIG_R3_REGNUM and PPC_TRAP_REGNUM
1853 (whether they are described or not). */
1854 gdb_assert (gdbarch_num_regs (gdbarch) <= PPC_ORIG_R3_REGNUM);
1855 set_gdbarch_num_regs (gdbarch, PPC_TRAP_REGNUM + 1);
1856
1857 /* If they are present, then assign them to the reserved number. */
1858 feature = tdesc_find_feature (info.target_desc,
1859 "org.gnu.gdb.power.linux");
1860 if (feature != NULL)
1861 {
1862 tdesc_numbered_register (feature, tdesc_data,
1863 PPC_ORIG_R3_REGNUM, "orig_r3");
1864 tdesc_numbered_register (feature, tdesc_data,
1865 PPC_TRAP_REGNUM, "trap");
1866 }
1867 }
85e747d2
UW
1868
1869 /* Enable Cell/B.E. if supported by the target. */
1870 if (tdesc_compatible_p (info.target_desc,
1871 bfd_lookup_arch (bfd_arch_spu, bfd_mach_spu)))
1872 {
1873 /* Cell/B.E. multi-architecture support. */
1874 set_spu_solib_ops (gdbarch);
1875
cc5f0d61
UW
1876 /* Cell/B.E. cross-architecture unwinder support. */
1877 frame_unwind_prepend_unwinder (gdbarch, &ppu2spu_unwind);
396d3980
UW
1878
1879 /* We need to support more than "addr_bit" significant address bits
1880 in order to support SPUADDR_ADDR encoded values. */
1881 set_gdbarch_significant_addr_bit (gdbarch, 64);
85e747d2 1882 }
f782ad9b 1883
906d60cf
PA
1884 set_gdbarch_displaced_step_location (gdbarch,
1885 linux_displaced_step_location);
1886
b4cdae6f
WW
1887 /* Support reverse debugging. */
1888 set_gdbarch_process_record (gdbarch, ppc_process_record);
1889 set_gdbarch_process_record_signal (gdbarch, ppc_linux_record_signal);
1890 tdep->ppc_syscall_record = ppc_linux_syscall_record;
1891
1892 ppc_init_linux_record_tdep (&ppc_linux_record_tdep, 4);
1893 ppc_init_linux_record_tdep (&ppc64_linux_record_tdep, 8);
7b112f9c
JT
1894}
1895
1896void
1897_initialize_ppc_linux_tdep (void)
1898{
0a0a4ac3
AC
1899 /* Register for all sub-familes of the POWER/PowerPC: 32-bit and
1900 64-bit PowerPC, and the older rs6k. */
1901 gdbarch_register_osabi (bfd_arch_powerpc, bfd_mach_ppc, GDB_OSABI_LINUX,
1902 ppc_linux_init_abi);
1903 gdbarch_register_osabi (bfd_arch_powerpc, bfd_mach_ppc64, GDB_OSABI_LINUX,
1904 ppc_linux_init_abi);
1905 gdbarch_register_osabi (bfd_arch_rs6000, bfd_mach_rs6k, GDB_OSABI_LINUX,
1906 ppc_linux_init_abi);
7284e1be 1907
cc5f0d61 1908 /* Attach to observers to track __spe_current_active_context. */
76727919
TT
1909 gdb::observers::inferior_created.attach (ppc_linux_spe_context_inferior_created);
1910 gdb::observers::solib_loaded.attach (ppc_linux_spe_context_solib_loaded);
1911 gdb::observers::solib_unloaded.attach (ppc_linux_spe_context_solib_unloaded);
cc5f0d61 1912
7284e1be
UW
1913 /* Initialize the Linux target descriptions. */
1914 initialize_tdesc_powerpc_32l ();
1915 initialize_tdesc_powerpc_altivec32l ();
f4d9bade 1916 initialize_tdesc_powerpc_cell32l ();
604c2f83 1917 initialize_tdesc_powerpc_vsx32l ();
69abc51c
TJB
1918 initialize_tdesc_powerpc_isa205_32l ();
1919 initialize_tdesc_powerpc_isa205_altivec32l ();
1920 initialize_tdesc_powerpc_isa205_vsx32l ();
7284e1be
UW
1921 initialize_tdesc_powerpc_64l ();
1922 initialize_tdesc_powerpc_altivec64l ();
f4d9bade 1923 initialize_tdesc_powerpc_cell64l ();
604c2f83 1924 initialize_tdesc_powerpc_vsx64l ();
69abc51c
TJB
1925 initialize_tdesc_powerpc_isa205_64l ();
1926 initialize_tdesc_powerpc_isa205_altivec64l ();
1927 initialize_tdesc_powerpc_isa205_vsx64l ();
7284e1be 1928 initialize_tdesc_powerpc_e500l ();
7b112f9c 1929}
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