ppc-linux-nat.c revision 1.6 1 1.1 christos /* PPC GNU/Linux native support.
2 1.1 christos
3 1.6 christos Copyright (C) 1988-2016 Free Software Foundation, Inc.
4 1.1 christos
5 1.1 christos This file is part of GDB.
6 1.1 christos
7 1.1 christos This program is free software; you can redistribute it and/or modify
8 1.1 christos it under the terms of the GNU General Public License as published by
9 1.1 christos the Free Software Foundation; either version 3 of the License, or
10 1.1 christos (at your option) any later version.
11 1.1 christos
12 1.1 christos This program is distributed in the hope that it will be useful,
13 1.1 christos but WITHOUT ANY WARRANTY; without even the implied warranty of
14 1.1 christos MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 1.1 christos GNU General Public License for more details.
16 1.1 christos
17 1.1 christos You should have received a copy of the GNU General Public License
18 1.1 christos along with this program. If not, see <http://www.gnu.org/licenses/>. */
19 1.1 christos
20 1.1 christos #include "defs.h"
21 1.1 christos #include "observer.h"
22 1.1 christos #include "frame.h"
23 1.1 christos #include "inferior.h"
24 1.1 christos #include "gdbthread.h"
25 1.1 christos #include "gdbcore.h"
26 1.1 christos #include "regcache.h"
27 1.1 christos #include "target.h"
28 1.1 christos #include "linux-nat.h"
29 1.1 christos #include <sys/types.h>
30 1.1 christos #include <signal.h>
31 1.1 christos #include <sys/user.h>
32 1.1 christos #include <sys/ioctl.h>
33 1.1 christos #include "gdb_wait.h"
34 1.1 christos #include <fcntl.h>
35 1.1 christos #include <sys/procfs.h>
36 1.6 christos #include "nat/gdb_ptrace.h"
37 1.1 christos
38 1.1 christos /* Prototypes for supply_gregset etc. */
39 1.1 christos #include "gregset.h"
40 1.1 christos #include "ppc-tdep.h"
41 1.1 christos #include "ppc-linux-tdep.h"
42 1.1 christos
43 1.1 christos /* Required when using the AUXV. */
44 1.1 christos #include "elf/common.h"
45 1.1 christos #include "auxv.h"
46 1.1 christos
47 1.5 christos #include "nat/ppc-linux.h"
48 1.1 christos
49 1.1 christos /* Similarly for the hardware watchpoint support. These requests are used
50 1.1 christos when the PowerPC HWDEBUG ptrace interface is not available. */
51 1.1 christos #ifndef PTRACE_GET_DEBUGREG
52 1.1 christos #define PTRACE_GET_DEBUGREG 25
53 1.1 christos #endif
54 1.1 christos #ifndef PTRACE_SET_DEBUGREG
55 1.1 christos #define PTRACE_SET_DEBUGREG 26
56 1.1 christos #endif
57 1.1 christos #ifndef PTRACE_GETSIGINFO
58 1.1 christos #define PTRACE_GETSIGINFO 0x4202
59 1.1 christos #endif
60 1.1 christos
61 1.1 christos /* These requests are used when the PowerPC HWDEBUG ptrace interface is
62 1.1 christos available. It exposes the debug facilities of PowerPC processors, as well
63 1.1 christos as additional features of BookE processors, such as ranged breakpoints and
64 1.1 christos watchpoints and hardware-accelerated condition evaluation. */
65 1.1 christos #ifndef PPC_PTRACE_GETHWDBGINFO
66 1.1 christos
67 1.1 christos /* Not having PPC_PTRACE_GETHWDBGINFO defined means that the PowerPC HWDEBUG
68 1.1 christos ptrace interface is not present in ptrace.h, so we'll have to pretty much
69 1.1 christos include it all here so that the code at least compiles on older systems. */
70 1.1 christos #define PPC_PTRACE_GETHWDBGINFO 0x89
71 1.1 christos #define PPC_PTRACE_SETHWDEBUG 0x88
72 1.1 christos #define PPC_PTRACE_DELHWDEBUG 0x87
73 1.1 christos
74 1.1 christos struct ppc_debug_info
75 1.1 christos {
76 1.1 christos uint32_t version; /* Only version 1 exists to date. */
77 1.1 christos uint32_t num_instruction_bps;
78 1.1 christos uint32_t num_data_bps;
79 1.1 christos uint32_t num_condition_regs;
80 1.1 christos uint32_t data_bp_alignment;
81 1.1 christos uint32_t sizeof_condition; /* size of the DVC register. */
82 1.1 christos uint64_t features;
83 1.1 christos };
84 1.1 christos
85 1.1 christos /* Features will have bits indicating whether there is support for: */
86 1.1 christos #define PPC_DEBUG_FEATURE_INSN_BP_RANGE 0x1
87 1.1 christos #define PPC_DEBUG_FEATURE_INSN_BP_MASK 0x2
88 1.1 christos #define PPC_DEBUG_FEATURE_DATA_BP_RANGE 0x4
89 1.1 christos #define PPC_DEBUG_FEATURE_DATA_BP_MASK 0x8
90 1.1 christos
91 1.1 christos struct ppc_hw_breakpoint
92 1.1 christos {
93 1.1 christos uint32_t version; /* currently, version must be 1 */
94 1.1 christos uint32_t trigger_type; /* only some combinations allowed */
95 1.1 christos uint32_t addr_mode; /* address match mode */
96 1.1 christos uint32_t condition_mode; /* break/watchpoint condition flags */
97 1.1 christos uint64_t addr; /* break/watchpoint address */
98 1.1 christos uint64_t addr2; /* range end or mask */
99 1.1 christos uint64_t condition_value; /* contents of the DVC register */
100 1.1 christos };
101 1.1 christos
102 1.1 christos /* Trigger type. */
103 1.1 christos #define PPC_BREAKPOINT_TRIGGER_EXECUTE 0x1
104 1.1 christos #define PPC_BREAKPOINT_TRIGGER_READ 0x2
105 1.1 christos #define PPC_BREAKPOINT_TRIGGER_WRITE 0x4
106 1.1 christos #define PPC_BREAKPOINT_TRIGGER_RW 0x6
107 1.1 christos
108 1.1 christos /* Address mode. */
109 1.1 christos #define PPC_BREAKPOINT_MODE_EXACT 0x0
110 1.1 christos #define PPC_BREAKPOINT_MODE_RANGE_INCLUSIVE 0x1
111 1.1 christos #define PPC_BREAKPOINT_MODE_RANGE_EXCLUSIVE 0x2
112 1.1 christos #define PPC_BREAKPOINT_MODE_MASK 0x3
113 1.1 christos
114 1.1 christos /* Condition mode. */
115 1.1 christos #define PPC_BREAKPOINT_CONDITION_NONE 0x0
116 1.1 christos #define PPC_BREAKPOINT_CONDITION_AND 0x1
117 1.1 christos #define PPC_BREAKPOINT_CONDITION_EXACT 0x1
118 1.1 christos #define PPC_BREAKPOINT_CONDITION_OR 0x2
119 1.1 christos #define PPC_BREAKPOINT_CONDITION_AND_OR 0x3
120 1.1 christos #define PPC_BREAKPOINT_CONDITION_BE_ALL 0x00ff0000
121 1.1 christos #define PPC_BREAKPOINT_CONDITION_BE_SHIFT 16
122 1.1 christos #define PPC_BREAKPOINT_CONDITION_BE(n) \
123 1.1 christos (1<<((n)+PPC_BREAKPOINT_CONDITION_BE_SHIFT))
124 1.1 christos #endif /* PPC_PTRACE_GETHWDBGINFO */
125 1.1 christos
126 1.1 christos /* Feature defined on Linux kernel v3.9: DAWR interface, that enables wider
127 1.1 christos watchpoint (up to 512 bytes). */
128 1.1 christos #ifndef PPC_DEBUG_FEATURE_DATA_BP_DAWR
129 1.1 christos #define PPC_DEBUG_FEATURE_DATA_BP_DAWR 0x10
130 1.1 christos #endif /* PPC_DEBUG_FEATURE_DATA_BP_DAWR */
131 1.1 christos
132 1.1 christos /* Similarly for the general-purpose (gp0 -- gp31)
133 1.1 christos and floating-point registers (fp0 -- fp31). */
134 1.1 christos #ifndef PTRACE_GETREGS
135 1.1 christos #define PTRACE_GETREGS 12
136 1.1 christos #endif
137 1.1 christos #ifndef PTRACE_SETREGS
138 1.1 christos #define PTRACE_SETREGS 13
139 1.1 christos #endif
140 1.1 christos #ifndef PTRACE_GETFPREGS
141 1.1 christos #define PTRACE_GETFPREGS 14
142 1.1 christos #endif
143 1.1 christos #ifndef PTRACE_SETFPREGS
144 1.1 christos #define PTRACE_SETFPREGS 15
145 1.1 christos #endif
146 1.1 christos
147 1.1 christos /* This oddity is because the Linux kernel defines elf_vrregset_t as
148 1.1 christos an array of 33 16 bytes long elements. I.e. it leaves out vrsave.
149 1.1 christos However the PTRACE_GETVRREGS and PTRACE_SETVRREGS requests return
150 1.1 christos the vrsave as an extra 4 bytes at the end. I opted for creating a
151 1.1 christos flat array of chars, so that it is easier to manipulate for gdb.
152 1.1 christos
153 1.1 christos There are 32 vector registers 16 bytes longs, plus a VSCR register
154 1.1 christos which is only 4 bytes long, but is fetched as a 16 bytes
155 1.1 christos quantity. Up to here we have the elf_vrregset_t structure.
156 1.1 christos Appended to this there is space for the VRSAVE register: 4 bytes.
157 1.1 christos Even though this vrsave register is not included in the regset
158 1.1 christos typedef, it is handled by the ptrace requests.
159 1.1 christos
160 1.1 christos Note that GNU/Linux doesn't support little endian PPC hardware,
161 1.1 christos therefore the offset at which the real value of the VSCR register
162 1.1 christos is located will be always 12 bytes.
163 1.1 christos
164 1.1 christos The layout is like this (where x is the actual value of the vscr reg): */
165 1.1 christos
166 1.1 christos /* *INDENT-OFF* */
167 1.1 christos /*
168 1.1 christos |.|.|.|.|.....|.|.|.|.||.|.|.|x||.|
169 1.1 christos <-------> <-------><-------><->
170 1.1 christos VR0 VR31 VSCR VRSAVE
171 1.1 christos */
172 1.1 christos /* *INDENT-ON* */
173 1.1 christos
174 1.1 christos #define SIZEOF_VRREGS 33*16+4
175 1.1 christos
176 1.1 christos typedef char gdb_vrregset_t[SIZEOF_VRREGS];
177 1.1 christos
178 1.1 christos /* This is the layout of the POWER7 VSX registers and the way they overlap
179 1.1 christos with the existing FPR and VMX registers.
180 1.1 christos
181 1.1 christos VSR doubleword 0 VSR doubleword 1
182 1.1 christos ----------------------------------------------------------------
183 1.1 christos VSR[0] | FPR[0] | |
184 1.1 christos ----------------------------------------------------------------
185 1.1 christos VSR[1] | FPR[1] | |
186 1.1 christos ----------------------------------------------------------------
187 1.1 christos | ... | |
188 1.1 christos | ... | |
189 1.1 christos ----------------------------------------------------------------
190 1.1 christos VSR[30] | FPR[30] | |
191 1.1 christos ----------------------------------------------------------------
192 1.1 christos VSR[31] | FPR[31] | |
193 1.1 christos ----------------------------------------------------------------
194 1.1 christos VSR[32] | VR[0] |
195 1.1 christos ----------------------------------------------------------------
196 1.1 christos VSR[33] | VR[1] |
197 1.1 christos ----------------------------------------------------------------
198 1.1 christos | ... |
199 1.1 christos | ... |
200 1.1 christos ----------------------------------------------------------------
201 1.1 christos VSR[62] | VR[30] |
202 1.1 christos ----------------------------------------------------------------
203 1.1 christos VSR[63] | VR[31] |
204 1.1 christos ----------------------------------------------------------------
205 1.1 christos
206 1.1 christos VSX has 64 128bit registers. The first 32 registers overlap with
207 1.1 christos the FP registers (doubleword 0) and hence extend them with additional
208 1.1 christos 64 bits (doubleword 1). The other 32 regs overlap with the VMX
209 1.1 christos registers. */
210 1.1 christos #define SIZEOF_VSXREGS 32*8
211 1.1 christos
212 1.1 christos typedef char gdb_vsxregset_t[SIZEOF_VSXREGS];
213 1.1 christos
214 1.1 christos /* On PPC processors that support the Signal Processing Extension
215 1.1 christos (SPE) APU, the general-purpose registers are 64 bits long.
216 1.1 christos However, the ordinary Linux kernel PTRACE_PEEKUSER / PTRACE_POKEUSER
217 1.1 christos ptrace calls only access the lower half of each register, to allow
218 1.1 christos them to behave the same way they do on non-SPE systems. There's a
219 1.1 christos separate pair of calls, PTRACE_GETEVRREGS / PTRACE_SETEVRREGS, that
220 1.1 christos read and write the top halves of all the general-purpose registers
221 1.1 christos at once, along with some SPE-specific registers.
222 1.1 christos
223 1.1 christos GDB itself continues to claim the general-purpose registers are 32
224 1.1 christos bits long. It has unnamed raw registers that hold the upper halves
225 1.1 christos of the gprs, and the full 64-bit SIMD views of the registers,
226 1.1 christos 'ev0' -- 'ev31', are pseudo-registers that splice the top and
227 1.1 christos bottom halves together.
228 1.1 christos
229 1.1 christos This is the structure filled in by PTRACE_GETEVRREGS and written to
230 1.1 christos the inferior's registers by PTRACE_SETEVRREGS. */
231 1.1 christos struct gdb_evrregset_t
232 1.1 christos {
233 1.1 christos unsigned long evr[32];
234 1.1 christos unsigned long long acc;
235 1.1 christos unsigned long spefscr;
236 1.1 christos };
237 1.1 christos
238 1.1 christos /* Non-zero if our kernel may support the PTRACE_GETVSXREGS and
239 1.1 christos PTRACE_SETVSXREGS requests, for reading and writing the VSX
240 1.1 christos POWER7 registers 0 through 31. Zero if we've tried one of them and
241 1.1 christos gotten an error. Note that VSX registers 32 through 63 overlap
242 1.1 christos with VR registers 0 through 31. */
243 1.1 christos int have_ptrace_getsetvsxregs = 1;
244 1.1 christos
245 1.1 christos /* Non-zero if our kernel may support the PTRACE_GETVRREGS and
246 1.1 christos PTRACE_SETVRREGS requests, for reading and writing the Altivec
247 1.1 christos registers. Zero if we've tried one of them and gotten an
248 1.1 christos error. */
249 1.1 christos int have_ptrace_getvrregs = 1;
250 1.1 christos
251 1.1 christos /* Non-zero if our kernel may support the PTRACE_GETEVRREGS and
252 1.1 christos PTRACE_SETEVRREGS requests, for reading and writing the SPE
253 1.1 christos registers. Zero if we've tried one of them and gotten an
254 1.1 christos error. */
255 1.1 christos int have_ptrace_getsetevrregs = 1;
256 1.1 christos
257 1.1 christos /* Non-zero if our kernel may support the PTRACE_GETREGS and
258 1.1 christos PTRACE_SETREGS requests, for reading and writing the
259 1.1 christos general-purpose registers. Zero if we've tried one of
260 1.1 christos them and gotten an error. */
261 1.1 christos int have_ptrace_getsetregs = 1;
262 1.1 christos
263 1.1 christos /* Non-zero if our kernel may support the PTRACE_GETFPREGS and
264 1.1 christos PTRACE_SETFPREGS requests, for reading and writing the
265 1.1 christos floating-pointers registers. Zero if we've tried one of
266 1.1 christos them and gotten an error. */
267 1.1 christos int have_ptrace_getsetfpregs = 1;
268 1.1 christos
269 1.1 christos /* *INDENT-OFF* */
270 1.1 christos /* registers layout, as presented by the ptrace interface:
271 1.1 christos PT_R0, PT_R1, PT_R2, PT_R3, PT_R4, PT_R5, PT_R6, PT_R7,
272 1.1 christos PT_R8, PT_R9, PT_R10, PT_R11, PT_R12, PT_R13, PT_R14, PT_R15,
273 1.1 christos PT_R16, PT_R17, PT_R18, PT_R19, PT_R20, PT_R21, PT_R22, PT_R23,
274 1.1 christos PT_R24, PT_R25, PT_R26, PT_R27, PT_R28, PT_R29, PT_R30, PT_R31,
275 1.1 christos PT_FPR0, PT_FPR0 + 2, PT_FPR0 + 4, PT_FPR0 + 6,
276 1.1 christos PT_FPR0 + 8, PT_FPR0 + 10, PT_FPR0 + 12, PT_FPR0 + 14,
277 1.1 christos PT_FPR0 + 16, PT_FPR0 + 18, PT_FPR0 + 20, PT_FPR0 + 22,
278 1.1 christos PT_FPR0 + 24, PT_FPR0 + 26, PT_FPR0 + 28, PT_FPR0 + 30,
279 1.1 christos PT_FPR0 + 32, PT_FPR0 + 34, PT_FPR0 + 36, PT_FPR0 + 38,
280 1.1 christos PT_FPR0 + 40, PT_FPR0 + 42, PT_FPR0 + 44, PT_FPR0 + 46,
281 1.1 christos PT_FPR0 + 48, PT_FPR0 + 50, PT_FPR0 + 52, PT_FPR0 + 54,
282 1.1 christos PT_FPR0 + 56, PT_FPR0 + 58, PT_FPR0 + 60, PT_FPR0 + 62,
283 1.1 christos PT_NIP, PT_MSR, PT_CCR, PT_LNK, PT_CTR, PT_XER, PT_MQ */
284 1.1 christos /* *INDENT_ON * */
285 1.1 christos
286 1.1 christos static int
287 1.1 christos ppc_register_u_addr (struct gdbarch *gdbarch, int regno)
288 1.1 christos {
289 1.1 christos int u_addr = -1;
290 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
291 1.1 christos /* NOTE: cagney/2003-11-25: This is the word size used by the ptrace
292 1.1 christos interface, and not the wordsize of the program's ABI. */
293 1.1 christos int wordsize = sizeof (long);
294 1.1 christos
295 1.1 christos /* General purpose registers occupy 1 slot each in the buffer. */
296 1.1 christos if (regno >= tdep->ppc_gp0_regnum
297 1.1 christos && regno < tdep->ppc_gp0_regnum + ppc_num_gprs)
298 1.1 christos u_addr = ((regno - tdep->ppc_gp0_regnum + PT_R0) * wordsize);
299 1.1 christos
300 1.1 christos /* Floating point regs: eight bytes each in both 32- and 64-bit
301 1.1 christos ptrace interfaces. Thus, two slots each in 32-bit interface, one
302 1.1 christos slot each in 64-bit interface. */
303 1.1 christos if (tdep->ppc_fp0_regnum >= 0
304 1.1 christos && regno >= tdep->ppc_fp0_regnum
305 1.1 christos && regno < tdep->ppc_fp0_regnum + ppc_num_fprs)
306 1.1 christos u_addr = (PT_FPR0 * wordsize) + ((regno - tdep->ppc_fp0_regnum) * 8);
307 1.1 christos
308 1.1 christos /* UISA special purpose registers: 1 slot each. */
309 1.1 christos if (regno == gdbarch_pc_regnum (gdbarch))
310 1.1 christos u_addr = PT_NIP * wordsize;
311 1.1 christos if (regno == tdep->ppc_lr_regnum)
312 1.1 christos u_addr = PT_LNK * wordsize;
313 1.1 christos if (regno == tdep->ppc_cr_regnum)
314 1.1 christos u_addr = PT_CCR * wordsize;
315 1.1 christos if (regno == tdep->ppc_xer_regnum)
316 1.1 christos u_addr = PT_XER * wordsize;
317 1.1 christos if (regno == tdep->ppc_ctr_regnum)
318 1.1 christos u_addr = PT_CTR * wordsize;
319 1.1 christos #ifdef PT_MQ
320 1.1 christos if (regno == tdep->ppc_mq_regnum)
321 1.1 christos u_addr = PT_MQ * wordsize;
322 1.1 christos #endif
323 1.1 christos if (regno == tdep->ppc_ps_regnum)
324 1.1 christos u_addr = PT_MSR * wordsize;
325 1.1 christos if (regno == PPC_ORIG_R3_REGNUM)
326 1.1 christos u_addr = PT_ORIG_R3 * wordsize;
327 1.1 christos if (regno == PPC_TRAP_REGNUM)
328 1.1 christos u_addr = PT_TRAP * wordsize;
329 1.1 christos if (tdep->ppc_fpscr_regnum >= 0
330 1.1 christos && regno == tdep->ppc_fpscr_regnum)
331 1.1 christos {
332 1.1 christos /* NOTE: cagney/2005-02-08: On some 64-bit GNU/Linux systems the
333 1.1 christos kernel headers incorrectly contained the 32-bit definition of
334 1.1 christos PT_FPSCR. For the 32-bit definition, floating-point
335 1.1 christos registers occupy two 32-bit "slots", and the FPSCR lives in
336 1.1 christos the second half of such a slot-pair (hence +1). For 64-bit,
337 1.1 christos the FPSCR instead occupies the full 64-bit 2-word-slot and
338 1.1 christos hence no adjustment is necessary. Hack around this. */
339 1.1 christos if (wordsize == 8 && PT_FPSCR == (48 + 32 + 1))
340 1.1 christos u_addr = (48 + 32) * wordsize;
341 1.1 christos /* If the FPSCR is 64-bit wide, we need to fetch the whole 64-bit
342 1.1 christos slot and not just its second word. The PT_FPSCR supplied when
343 1.1 christos GDB is compiled as a 32-bit app doesn't reflect this. */
344 1.1 christos else if (wordsize == 4 && register_size (gdbarch, regno) == 8
345 1.1 christos && PT_FPSCR == (48 + 2*32 + 1))
346 1.1 christos u_addr = (48 + 2*32) * wordsize;
347 1.1 christos else
348 1.1 christos u_addr = PT_FPSCR * wordsize;
349 1.1 christos }
350 1.1 christos return u_addr;
351 1.1 christos }
352 1.1 christos
353 1.1 christos /* The Linux kernel ptrace interface for POWER7 VSX registers uses the
354 1.1 christos registers set mechanism, as opposed to the interface for all the
355 1.1 christos other registers, that stores/fetches each register individually. */
356 1.1 christos static void
357 1.1 christos fetch_vsx_register (struct regcache *regcache, int tid, int regno)
358 1.1 christos {
359 1.1 christos int ret;
360 1.1 christos gdb_vsxregset_t regs;
361 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
362 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
363 1.1 christos int vsxregsize = register_size (gdbarch, tdep->ppc_vsr0_upper_regnum);
364 1.1 christos
365 1.1 christos ret = ptrace (PTRACE_GETVSXREGS, tid, 0, ®s);
366 1.1 christos if (ret < 0)
367 1.1 christos {
368 1.1 christos if (errno == EIO)
369 1.1 christos {
370 1.1 christos have_ptrace_getsetvsxregs = 0;
371 1.1 christos return;
372 1.1 christos }
373 1.1 christos perror_with_name (_("Unable to fetch VSX register"));
374 1.1 christos }
375 1.1 christos
376 1.1 christos regcache_raw_supply (regcache, regno,
377 1.1 christos regs + (regno - tdep->ppc_vsr0_upper_regnum)
378 1.1 christos * vsxregsize);
379 1.1 christos }
380 1.1 christos
381 1.1 christos /* The Linux kernel ptrace interface for AltiVec registers uses the
382 1.1 christos registers set mechanism, as opposed to the interface for all the
383 1.1 christos other registers, that stores/fetches each register individually. */
384 1.1 christos static void
385 1.1 christos fetch_altivec_register (struct regcache *regcache, int tid, int regno)
386 1.1 christos {
387 1.1 christos int ret;
388 1.1 christos int offset = 0;
389 1.1 christos gdb_vrregset_t regs;
390 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
391 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
392 1.1 christos int vrregsize = register_size (gdbarch, tdep->ppc_vr0_regnum);
393 1.1 christos
394 1.1 christos ret = ptrace (PTRACE_GETVRREGS, tid, 0, ®s);
395 1.1 christos if (ret < 0)
396 1.1 christos {
397 1.1 christos if (errno == EIO)
398 1.1 christos {
399 1.1 christos have_ptrace_getvrregs = 0;
400 1.1 christos return;
401 1.1 christos }
402 1.1 christos perror_with_name (_("Unable to fetch AltiVec register"));
403 1.1 christos }
404 1.1 christos
405 1.1 christos /* VSCR is fetched as a 16 bytes quantity, but it is really 4 bytes
406 1.1 christos long on the hardware. We deal only with the lower 4 bytes of the
407 1.1 christos vector. VRSAVE is at the end of the array in a 4 bytes slot, so
408 1.1 christos there is no need to define an offset for it. */
409 1.1 christos if (regno == (tdep->ppc_vrsave_regnum - 1))
410 1.1 christos offset = vrregsize - register_size (gdbarch, tdep->ppc_vrsave_regnum);
411 1.1 christos
412 1.1 christos regcache_raw_supply (regcache, regno,
413 1.1 christos regs + (regno
414 1.1 christos - tdep->ppc_vr0_regnum) * vrregsize + offset);
415 1.1 christos }
416 1.1 christos
417 1.1 christos /* Fetch the top 32 bits of TID's general-purpose registers and the
418 1.1 christos SPE-specific registers, and place the results in EVRREGSET. If we
419 1.1 christos don't support PTRACE_GETEVRREGS, then just fill EVRREGSET with
420 1.1 christos zeros.
421 1.1 christos
422 1.1 christos All the logic to deal with whether or not the PTRACE_GETEVRREGS and
423 1.1 christos PTRACE_SETEVRREGS requests are supported is isolated here, and in
424 1.1 christos set_spe_registers. */
425 1.1 christos static void
426 1.1 christos get_spe_registers (int tid, struct gdb_evrregset_t *evrregset)
427 1.1 christos {
428 1.1 christos if (have_ptrace_getsetevrregs)
429 1.1 christos {
430 1.1 christos if (ptrace (PTRACE_GETEVRREGS, tid, 0, evrregset) >= 0)
431 1.1 christos return;
432 1.1 christos else
433 1.1 christos {
434 1.1 christos /* EIO means that the PTRACE_GETEVRREGS request isn't supported;
435 1.1 christos we just return zeros. */
436 1.1 christos if (errno == EIO)
437 1.1 christos have_ptrace_getsetevrregs = 0;
438 1.1 christos else
439 1.1 christos /* Anything else needs to be reported. */
440 1.1 christos perror_with_name (_("Unable to fetch SPE registers"));
441 1.1 christos }
442 1.1 christos }
443 1.1 christos
444 1.1 christos memset (evrregset, 0, sizeof (*evrregset));
445 1.1 christos }
446 1.1 christos
447 1.1 christos /* Supply values from TID for SPE-specific raw registers: the upper
448 1.1 christos halves of the GPRs, the accumulator, and the spefscr. REGNO must
449 1.1 christos be the number of an upper half register, acc, spefscr, or -1 to
450 1.1 christos supply the values of all registers. */
451 1.1 christos static void
452 1.1 christos fetch_spe_register (struct regcache *regcache, int tid, int regno)
453 1.1 christos {
454 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
455 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
456 1.1 christos struct gdb_evrregset_t evrregs;
457 1.1 christos
458 1.1 christos gdb_assert (sizeof (evrregs.evr[0])
459 1.1 christos == register_size (gdbarch, tdep->ppc_ev0_upper_regnum));
460 1.1 christos gdb_assert (sizeof (evrregs.acc)
461 1.1 christos == register_size (gdbarch, tdep->ppc_acc_regnum));
462 1.1 christos gdb_assert (sizeof (evrregs.spefscr)
463 1.1 christos == register_size (gdbarch, tdep->ppc_spefscr_regnum));
464 1.1 christos
465 1.1 christos get_spe_registers (tid, &evrregs);
466 1.1 christos
467 1.1 christos if (regno == -1)
468 1.1 christos {
469 1.1 christos int i;
470 1.1 christos
471 1.1 christos for (i = 0; i < ppc_num_gprs; i++)
472 1.1 christos regcache_raw_supply (regcache, tdep->ppc_ev0_upper_regnum + i,
473 1.1 christos &evrregs.evr[i]);
474 1.1 christos }
475 1.1 christos else if (tdep->ppc_ev0_upper_regnum <= regno
476 1.1 christos && regno < tdep->ppc_ev0_upper_regnum + ppc_num_gprs)
477 1.1 christos regcache_raw_supply (regcache, regno,
478 1.1 christos &evrregs.evr[regno - tdep->ppc_ev0_upper_regnum]);
479 1.1 christos
480 1.1 christos if (regno == -1
481 1.1 christos || regno == tdep->ppc_acc_regnum)
482 1.1 christos regcache_raw_supply (regcache, tdep->ppc_acc_regnum, &evrregs.acc);
483 1.1 christos
484 1.1 christos if (regno == -1
485 1.1 christos || regno == tdep->ppc_spefscr_regnum)
486 1.1 christos regcache_raw_supply (regcache, tdep->ppc_spefscr_regnum,
487 1.1 christos &evrregs.spefscr);
488 1.1 christos }
489 1.1 christos
490 1.1 christos static void
491 1.1 christos fetch_register (struct regcache *regcache, int tid, int regno)
492 1.1 christos {
493 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
494 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
495 1.1 christos /* This isn't really an address. But ptrace thinks of it as one. */
496 1.1 christos CORE_ADDR regaddr = ppc_register_u_addr (gdbarch, regno);
497 1.1 christos int bytes_transferred;
498 1.1 christos unsigned int offset; /* Offset of registers within the u area. */
499 1.1 christos gdb_byte buf[MAX_REGISTER_SIZE];
500 1.1 christos
501 1.1 christos if (altivec_register_p (gdbarch, regno))
502 1.1 christos {
503 1.1 christos /* If this is the first time through, or if it is not the first
504 1.1 christos time through, and we have comfirmed that there is kernel
505 1.1 christos support for such a ptrace request, then go and fetch the
506 1.1 christos register. */
507 1.1 christos if (have_ptrace_getvrregs)
508 1.1 christos {
509 1.1 christos fetch_altivec_register (regcache, tid, regno);
510 1.1 christos return;
511 1.1 christos }
512 1.1 christos /* If we have discovered that there is no ptrace support for
513 1.1 christos AltiVec registers, fall through and return zeroes, because
514 1.1 christos regaddr will be -1 in this case. */
515 1.1 christos }
516 1.1 christos if (vsx_register_p (gdbarch, regno))
517 1.1 christos {
518 1.1 christos if (have_ptrace_getsetvsxregs)
519 1.1 christos {
520 1.1 christos fetch_vsx_register (regcache, tid, regno);
521 1.1 christos return;
522 1.1 christos }
523 1.1 christos }
524 1.1 christos else if (spe_register_p (gdbarch, regno))
525 1.1 christos {
526 1.1 christos fetch_spe_register (regcache, tid, regno);
527 1.1 christos return;
528 1.1 christos }
529 1.1 christos
530 1.1 christos if (regaddr == -1)
531 1.1 christos {
532 1.1 christos memset (buf, '\0', register_size (gdbarch, regno)); /* Supply zeroes */
533 1.1 christos regcache_raw_supply (regcache, regno, buf);
534 1.1 christos return;
535 1.1 christos }
536 1.1 christos
537 1.1 christos /* Read the raw register using sizeof(long) sized chunks. On a
538 1.1 christos 32-bit platform, 64-bit floating-point registers will require two
539 1.1 christos transfers. */
540 1.1 christos for (bytes_transferred = 0;
541 1.1 christos bytes_transferred < register_size (gdbarch, regno);
542 1.1 christos bytes_transferred += sizeof (long))
543 1.1 christos {
544 1.1 christos long l;
545 1.1 christos
546 1.1 christos errno = 0;
547 1.1 christos l = ptrace (PTRACE_PEEKUSER, tid, (PTRACE_TYPE_ARG3) regaddr, 0);
548 1.1 christos regaddr += sizeof (long);
549 1.1 christos if (errno != 0)
550 1.1 christos {
551 1.1 christos char message[128];
552 1.1 christos xsnprintf (message, sizeof (message), "reading register %s (#%d)",
553 1.1 christos gdbarch_register_name (gdbarch, regno), regno);
554 1.1 christos perror_with_name (message);
555 1.1 christos }
556 1.1 christos memcpy (&buf[bytes_transferred], &l, sizeof (l));
557 1.1 christos }
558 1.1 christos
559 1.1 christos /* Now supply the register. Keep in mind that the regcache's idea
560 1.1 christos of the register's size may not be a multiple of sizeof
561 1.1 christos (long). */
562 1.1 christos if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_LITTLE)
563 1.1 christos {
564 1.1 christos /* Little-endian values are always found at the left end of the
565 1.1 christos bytes transferred. */
566 1.1 christos regcache_raw_supply (regcache, regno, buf);
567 1.1 christos }
568 1.1 christos else if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
569 1.1 christos {
570 1.1 christos /* Big-endian values are found at the right end of the bytes
571 1.1 christos transferred. */
572 1.1 christos size_t padding = (bytes_transferred - register_size (gdbarch, regno));
573 1.1 christos regcache_raw_supply (regcache, regno, buf + padding);
574 1.1 christos }
575 1.1 christos else
576 1.1 christos internal_error (__FILE__, __LINE__,
577 1.1 christos _("fetch_register: unexpected byte order: %d"),
578 1.1 christos gdbarch_byte_order (gdbarch));
579 1.1 christos }
580 1.1 christos
581 1.1 christos static void
582 1.1 christos supply_vsxregset (struct regcache *regcache, gdb_vsxregset_t *vsxregsetp)
583 1.1 christos {
584 1.1 christos int i;
585 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
586 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
587 1.1 christos int vsxregsize = register_size (gdbarch, tdep->ppc_vsr0_upper_regnum);
588 1.1 christos
589 1.1 christos for (i = 0; i < ppc_num_vshrs; i++)
590 1.1 christos {
591 1.1 christos regcache_raw_supply (regcache, tdep->ppc_vsr0_upper_regnum + i,
592 1.1 christos *vsxregsetp + i * vsxregsize);
593 1.1 christos }
594 1.1 christos }
595 1.1 christos
596 1.1 christos static void
597 1.1 christos supply_vrregset (struct regcache *regcache, gdb_vrregset_t *vrregsetp)
598 1.1 christos {
599 1.1 christos int i;
600 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
601 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
602 1.1 christos int num_of_vrregs = tdep->ppc_vrsave_regnum - tdep->ppc_vr0_regnum + 1;
603 1.1 christos int vrregsize = register_size (gdbarch, tdep->ppc_vr0_regnum);
604 1.1 christos int offset = vrregsize - register_size (gdbarch, tdep->ppc_vrsave_regnum);
605 1.1 christos
606 1.1 christos for (i = 0; i < num_of_vrregs; i++)
607 1.1 christos {
608 1.1 christos /* The last 2 registers of this set are only 32 bit long, not
609 1.1 christos 128. However an offset is necessary only for VSCR because it
610 1.1 christos occupies a whole vector, while VRSAVE occupies a full 4 bytes
611 1.1 christos slot. */
612 1.1 christos if (i == (num_of_vrregs - 2))
613 1.1 christos regcache_raw_supply (regcache, tdep->ppc_vr0_regnum + i,
614 1.1 christos *vrregsetp + i * vrregsize + offset);
615 1.1 christos else
616 1.1 christos regcache_raw_supply (regcache, tdep->ppc_vr0_regnum + i,
617 1.1 christos *vrregsetp + i * vrregsize);
618 1.1 christos }
619 1.1 christos }
620 1.1 christos
621 1.1 christos static void
622 1.1 christos fetch_vsx_registers (struct regcache *regcache, int tid)
623 1.1 christos {
624 1.1 christos int ret;
625 1.1 christos gdb_vsxregset_t regs;
626 1.1 christos
627 1.1 christos ret = ptrace (PTRACE_GETVSXREGS, tid, 0, ®s);
628 1.1 christos if (ret < 0)
629 1.1 christos {
630 1.1 christos if (errno == EIO)
631 1.1 christos {
632 1.1 christos have_ptrace_getsetvsxregs = 0;
633 1.1 christos return;
634 1.1 christos }
635 1.1 christos perror_with_name (_("Unable to fetch VSX registers"));
636 1.1 christos }
637 1.1 christos supply_vsxregset (regcache, ®s);
638 1.1 christos }
639 1.1 christos
640 1.1 christos static void
641 1.1 christos fetch_altivec_registers (struct regcache *regcache, int tid)
642 1.1 christos {
643 1.1 christos int ret;
644 1.1 christos gdb_vrregset_t regs;
645 1.1 christos
646 1.1 christos ret = ptrace (PTRACE_GETVRREGS, tid, 0, ®s);
647 1.1 christos if (ret < 0)
648 1.1 christos {
649 1.1 christos if (errno == EIO)
650 1.1 christos {
651 1.1 christos have_ptrace_getvrregs = 0;
652 1.1 christos return;
653 1.1 christos }
654 1.1 christos perror_with_name (_("Unable to fetch AltiVec registers"));
655 1.1 christos }
656 1.1 christos supply_vrregset (regcache, ®s);
657 1.1 christos }
658 1.1 christos
659 1.1 christos /* This function actually issues the request to ptrace, telling
660 1.1 christos it to get all general-purpose registers and put them into the
661 1.1 christos specified regset.
662 1.1 christos
663 1.1 christos If the ptrace request does not exist, this function returns 0
664 1.1 christos and properly sets the have_ptrace_* flag. If the request fails,
665 1.1 christos this function calls perror_with_name. Otherwise, if the request
666 1.1 christos succeeds, then the regcache gets filled and 1 is returned. */
667 1.1 christos static int
668 1.1 christos fetch_all_gp_regs (struct regcache *regcache, int tid)
669 1.1 christos {
670 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
671 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
672 1.1 christos gdb_gregset_t gregset;
673 1.1 christos
674 1.1 christos if (ptrace (PTRACE_GETREGS, tid, 0, (void *) &gregset) < 0)
675 1.1 christos {
676 1.1 christos if (errno == EIO)
677 1.1 christos {
678 1.1 christos have_ptrace_getsetregs = 0;
679 1.1 christos return 0;
680 1.1 christos }
681 1.1 christos perror_with_name (_("Couldn't get general-purpose registers."));
682 1.1 christos }
683 1.1 christos
684 1.1 christos supply_gregset (regcache, (const gdb_gregset_t *) &gregset);
685 1.1 christos
686 1.1 christos return 1;
687 1.1 christos }
688 1.1 christos
689 1.1 christos /* This is a wrapper for the fetch_all_gp_regs function. It is
690 1.1 christos responsible for verifying if this target has the ptrace request
691 1.1 christos that can be used to fetch all general-purpose registers at one
692 1.1 christos shot. If it doesn't, then we should fetch them using the
693 1.1 christos old-fashioned way, which is to iterate over the registers and
694 1.1 christos request them one by one. */
695 1.1 christos static void
696 1.1 christos fetch_gp_regs (struct regcache *regcache, int tid)
697 1.1 christos {
698 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
699 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
700 1.1 christos int i;
701 1.1 christos
702 1.1 christos if (have_ptrace_getsetregs)
703 1.1 christos if (fetch_all_gp_regs (regcache, tid))
704 1.1 christos return;
705 1.1 christos
706 1.1 christos /* If we've hit this point, it doesn't really matter which
707 1.1 christos architecture we are using. We just need to read the
708 1.1 christos registers in the "old-fashioned way". */
709 1.1 christos for (i = 0; i < ppc_num_gprs; i++)
710 1.1 christos fetch_register (regcache, tid, tdep->ppc_gp0_regnum + i);
711 1.1 christos }
712 1.1 christos
713 1.1 christos /* This function actually issues the request to ptrace, telling
714 1.1 christos it to get all floating-point registers and put them into the
715 1.1 christos specified regset.
716 1.1 christos
717 1.1 christos If the ptrace request does not exist, this function returns 0
718 1.1 christos and properly sets the have_ptrace_* flag. If the request fails,
719 1.1 christos this function calls perror_with_name. Otherwise, if the request
720 1.1 christos succeeds, then the regcache gets filled and 1 is returned. */
721 1.1 christos static int
722 1.1 christos fetch_all_fp_regs (struct regcache *regcache, int tid)
723 1.1 christos {
724 1.1 christos gdb_fpregset_t fpregs;
725 1.1 christos
726 1.1 christos if (ptrace (PTRACE_GETFPREGS, tid, 0, (void *) &fpregs) < 0)
727 1.1 christos {
728 1.1 christos if (errno == EIO)
729 1.1 christos {
730 1.1 christos have_ptrace_getsetfpregs = 0;
731 1.1 christos return 0;
732 1.1 christos }
733 1.1 christos perror_with_name (_("Couldn't get floating-point registers."));
734 1.1 christos }
735 1.1 christos
736 1.1 christos supply_fpregset (regcache, (const gdb_fpregset_t *) &fpregs);
737 1.1 christos
738 1.1 christos return 1;
739 1.1 christos }
740 1.1 christos
741 1.1 christos /* This is a wrapper for the fetch_all_fp_regs function. It is
742 1.1 christos responsible for verifying if this target has the ptrace request
743 1.1 christos that can be used to fetch all floating-point registers at one
744 1.1 christos shot. If it doesn't, then we should fetch them using the
745 1.1 christos old-fashioned way, which is to iterate over the registers and
746 1.1 christos request them one by one. */
747 1.1 christos static void
748 1.1 christos fetch_fp_regs (struct regcache *regcache, int tid)
749 1.1 christos {
750 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
751 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
752 1.1 christos int i;
753 1.1 christos
754 1.1 christos if (have_ptrace_getsetfpregs)
755 1.1 christos if (fetch_all_fp_regs (regcache, tid))
756 1.1 christos return;
757 1.1 christos
758 1.1 christos /* If we've hit this point, it doesn't really matter which
759 1.1 christos architecture we are using. We just need to read the
760 1.1 christos registers in the "old-fashioned way". */
761 1.1 christos for (i = 0; i < ppc_num_fprs; i++)
762 1.1 christos fetch_register (regcache, tid, tdep->ppc_fp0_regnum + i);
763 1.1 christos }
764 1.1 christos
765 1.1 christos static void
766 1.1 christos fetch_ppc_registers (struct regcache *regcache, int tid)
767 1.1 christos {
768 1.1 christos int i;
769 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
770 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
771 1.1 christos
772 1.1 christos fetch_gp_regs (regcache, tid);
773 1.1 christos if (tdep->ppc_fp0_regnum >= 0)
774 1.1 christos fetch_fp_regs (regcache, tid);
775 1.1 christos fetch_register (regcache, tid, gdbarch_pc_regnum (gdbarch));
776 1.1 christos if (tdep->ppc_ps_regnum != -1)
777 1.1 christos fetch_register (regcache, tid, tdep->ppc_ps_regnum);
778 1.1 christos if (tdep->ppc_cr_regnum != -1)
779 1.1 christos fetch_register (regcache, tid, tdep->ppc_cr_regnum);
780 1.1 christos if (tdep->ppc_lr_regnum != -1)
781 1.1 christos fetch_register (regcache, tid, tdep->ppc_lr_regnum);
782 1.1 christos if (tdep->ppc_ctr_regnum != -1)
783 1.1 christos fetch_register (regcache, tid, tdep->ppc_ctr_regnum);
784 1.1 christos if (tdep->ppc_xer_regnum != -1)
785 1.1 christos fetch_register (regcache, tid, tdep->ppc_xer_regnum);
786 1.1 christos if (tdep->ppc_mq_regnum != -1)
787 1.1 christos fetch_register (regcache, tid, tdep->ppc_mq_regnum);
788 1.1 christos if (ppc_linux_trap_reg_p (gdbarch))
789 1.1 christos {
790 1.1 christos fetch_register (regcache, tid, PPC_ORIG_R3_REGNUM);
791 1.1 christos fetch_register (regcache, tid, PPC_TRAP_REGNUM);
792 1.1 christos }
793 1.1 christos if (tdep->ppc_fpscr_regnum != -1)
794 1.1 christos fetch_register (regcache, tid, tdep->ppc_fpscr_regnum);
795 1.1 christos if (have_ptrace_getvrregs)
796 1.1 christos if (tdep->ppc_vr0_regnum != -1 && tdep->ppc_vrsave_regnum != -1)
797 1.1 christos fetch_altivec_registers (regcache, tid);
798 1.1 christos if (have_ptrace_getsetvsxregs)
799 1.1 christos if (tdep->ppc_vsr0_upper_regnum != -1)
800 1.1 christos fetch_vsx_registers (regcache, tid);
801 1.1 christos if (tdep->ppc_ev0_upper_regnum >= 0)
802 1.1 christos fetch_spe_register (regcache, tid, -1);
803 1.1 christos }
804 1.1 christos
805 1.1 christos /* Fetch registers from the child process. Fetch all registers if
806 1.1 christos regno == -1, otherwise fetch all general registers or all floating
807 1.1 christos point registers depending upon the value of regno. */
808 1.1 christos static void
809 1.1 christos ppc_linux_fetch_inferior_registers (struct target_ops *ops,
810 1.1 christos struct regcache *regcache, int regno)
811 1.1 christos {
812 1.1 christos /* Overload thread id onto process id. */
813 1.1 christos int tid = ptid_get_lwp (inferior_ptid);
814 1.1 christos
815 1.1 christos /* No thread id, just use process id. */
816 1.1 christos if (tid == 0)
817 1.1 christos tid = ptid_get_pid (inferior_ptid);
818 1.1 christos
819 1.1 christos if (regno == -1)
820 1.1 christos fetch_ppc_registers (regcache, tid);
821 1.1 christos else
822 1.1 christos fetch_register (regcache, tid, regno);
823 1.1 christos }
824 1.1 christos
825 1.1 christos /* Store one VSX register. */
826 1.1 christos static void
827 1.1 christos store_vsx_register (const struct regcache *regcache, int tid, int regno)
828 1.1 christos {
829 1.1 christos int ret;
830 1.1 christos gdb_vsxregset_t regs;
831 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
832 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
833 1.1 christos int vsxregsize = register_size (gdbarch, tdep->ppc_vsr0_upper_regnum);
834 1.1 christos
835 1.1 christos ret = ptrace (PTRACE_GETVSXREGS, tid, 0, ®s);
836 1.1 christos if (ret < 0)
837 1.1 christos {
838 1.1 christos if (errno == EIO)
839 1.1 christos {
840 1.1 christos have_ptrace_getsetvsxregs = 0;
841 1.1 christos return;
842 1.1 christos }
843 1.1 christos perror_with_name (_("Unable to fetch VSX register"));
844 1.1 christos }
845 1.1 christos
846 1.1 christos regcache_raw_collect (regcache, regno, regs +
847 1.1 christos (regno - tdep->ppc_vsr0_upper_regnum) * vsxregsize);
848 1.1 christos
849 1.1 christos ret = ptrace (PTRACE_SETVSXREGS, tid, 0, ®s);
850 1.1 christos if (ret < 0)
851 1.1 christos perror_with_name (_("Unable to store VSX register"));
852 1.1 christos }
853 1.1 christos
854 1.1 christos /* Store one register. */
855 1.1 christos static void
856 1.1 christos store_altivec_register (const struct regcache *regcache, int tid, int regno)
857 1.1 christos {
858 1.1 christos int ret;
859 1.1 christos int offset = 0;
860 1.1 christos gdb_vrregset_t regs;
861 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
862 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
863 1.1 christos int vrregsize = register_size (gdbarch, tdep->ppc_vr0_regnum);
864 1.1 christos
865 1.1 christos ret = ptrace (PTRACE_GETVRREGS, tid, 0, ®s);
866 1.1 christos if (ret < 0)
867 1.1 christos {
868 1.1 christos if (errno == EIO)
869 1.1 christos {
870 1.1 christos have_ptrace_getvrregs = 0;
871 1.1 christos return;
872 1.1 christos }
873 1.1 christos perror_with_name (_("Unable to fetch AltiVec register"));
874 1.1 christos }
875 1.1 christos
876 1.1 christos /* VSCR is fetched as a 16 bytes quantity, but it is really 4 bytes
877 1.1 christos long on the hardware. */
878 1.1 christos if (regno == (tdep->ppc_vrsave_regnum - 1))
879 1.1 christos offset = vrregsize - register_size (gdbarch, tdep->ppc_vrsave_regnum);
880 1.1 christos
881 1.1 christos regcache_raw_collect (regcache, regno,
882 1.1 christos regs + (regno
883 1.1 christos - tdep->ppc_vr0_regnum) * vrregsize + offset);
884 1.1 christos
885 1.1 christos ret = ptrace (PTRACE_SETVRREGS, tid, 0, ®s);
886 1.1 christos if (ret < 0)
887 1.1 christos perror_with_name (_("Unable to store AltiVec register"));
888 1.1 christos }
889 1.1 christos
890 1.1 christos /* Assuming TID referrs to an SPE process, set the top halves of TID's
891 1.1 christos general-purpose registers and its SPE-specific registers to the
892 1.1 christos values in EVRREGSET. If we don't support PTRACE_SETEVRREGS, do
893 1.1 christos nothing.
894 1.1 christos
895 1.1 christos All the logic to deal with whether or not the PTRACE_GETEVRREGS and
896 1.1 christos PTRACE_SETEVRREGS requests are supported is isolated here, and in
897 1.1 christos get_spe_registers. */
898 1.1 christos static void
899 1.1 christos set_spe_registers (int tid, struct gdb_evrregset_t *evrregset)
900 1.1 christos {
901 1.1 christos if (have_ptrace_getsetevrregs)
902 1.1 christos {
903 1.1 christos if (ptrace (PTRACE_SETEVRREGS, tid, 0, evrregset) >= 0)
904 1.1 christos return;
905 1.1 christos else
906 1.1 christos {
907 1.1 christos /* EIO means that the PTRACE_SETEVRREGS request isn't
908 1.1 christos supported; we fail silently, and don't try the call
909 1.1 christos again. */
910 1.1 christos if (errno == EIO)
911 1.1 christos have_ptrace_getsetevrregs = 0;
912 1.1 christos else
913 1.1 christos /* Anything else needs to be reported. */
914 1.1 christos perror_with_name (_("Unable to set SPE registers"));
915 1.1 christos }
916 1.1 christos }
917 1.1 christos }
918 1.1 christos
919 1.1 christos /* Write GDB's value for the SPE-specific raw register REGNO to TID.
920 1.1 christos If REGNO is -1, write the values of all the SPE-specific
921 1.1 christos registers. */
922 1.1 christos static void
923 1.1 christos store_spe_register (const struct regcache *regcache, int tid, int regno)
924 1.1 christos {
925 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
926 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
927 1.1 christos struct gdb_evrregset_t evrregs;
928 1.1 christos
929 1.1 christos gdb_assert (sizeof (evrregs.evr[0])
930 1.1 christos == register_size (gdbarch, tdep->ppc_ev0_upper_regnum));
931 1.1 christos gdb_assert (sizeof (evrregs.acc)
932 1.1 christos == register_size (gdbarch, tdep->ppc_acc_regnum));
933 1.1 christos gdb_assert (sizeof (evrregs.spefscr)
934 1.1 christos == register_size (gdbarch, tdep->ppc_spefscr_regnum));
935 1.1 christos
936 1.1 christos if (regno == -1)
937 1.1 christos /* Since we're going to write out every register, the code below
938 1.1 christos should store to every field of evrregs; if that doesn't happen,
939 1.1 christos make it obvious by initializing it with suspicious values. */
940 1.1 christos memset (&evrregs, 42, sizeof (evrregs));
941 1.1 christos else
942 1.1 christos /* We can only read and write the entire EVR register set at a
943 1.1 christos time, so to write just a single register, we do a
944 1.1 christos read-modify-write maneuver. */
945 1.1 christos get_spe_registers (tid, &evrregs);
946 1.1 christos
947 1.1 christos if (regno == -1)
948 1.1 christos {
949 1.1 christos int i;
950 1.1 christos
951 1.1 christos for (i = 0; i < ppc_num_gprs; i++)
952 1.1 christos regcache_raw_collect (regcache,
953 1.1 christos tdep->ppc_ev0_upper_regnum + i,
954 1.1 christos &evrregs.evr[i]);
955 1.1 christos }
956 1.1 christos else if (tdep->ppc_ev0_upper_regnum <= regno
957 1.1 christos && regno < tdep->ppc_ev0_upper_regnum + ppc_num_gprs)
958 1.1 christos regcache_raw_collect (regcache, regno,
959 1.1 christos &evrregs.evr[regno - tdep->ppc_ev0_upper_regnum]);
960 1.1 christos
961 1.1 christos if (regno == -1
962 1.1 christos || regno == tdep->ppc_acc_regnum)
963 1.1 christos regcache_raw_collect (regcache,
964 1.1 christos tdep->ppc_acc_regnum,
965 1.1 christos &evrregs.acc);
966 1.1 christos
967 1.1 christos if (regno == -1
968 1.1 christos || regno == tdep->ppc_spefscr_regnum)
969 1.1 christos regcache_raw_collect (regcache,
970 1.1 christos tdep->ppc_spefscr_regnum,
971 1.1 christos &evrregs.spefscr);
972 1.1 christos
973 1.1 christos /* Write back the modified register set. */
974 1.1 christos set_spe_registers (tid, &evrregs);
975 1.1 christos }
976 1.1 christos
977 1.1 christos static void
978 1.1 christos store_register (const struct regcache *regcache, int tid, int regno)
979 1.1 christos {
980 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
981 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
982 1.1 christos /* This isn't really an address. But ptrace thinks of it as one. */
983 1.1 christos CORE_ADDR regaddr = ppc_register_u_addr (gdbarch, regno);
984 1.1 christos int i;
985 1.1 christos size_t bytes_to_transfer;
986 1.1 christos gdb_byte buf[MAX_REGISTER_SIZE];
987 1.1 christos
988 1.1 christos if (altivec_register_p (gdbarch, regno))
989 1.1 christos {
990 1.1 christos store_altivec_register (regcache, tid, regno);
991 1.1 christos return;
992 1.1 christos }
993 1.1 christos if (vsx_register_p (gdbarch, regno))
994 1.1 christos {
995 1.1 christos store_vsx_register (regcache, tid, regno);
996 1.1 christos return;
997 1.1 christos }
998 1.1 christos else if (spe_register_p (gdbarch, regno))
999 1.1 christos {
1000 1.1 christos store_spe_register (regcache, tid, regno);
1001 1.1 christos return;
1002 1.1 christos }
1003 1.1 christos
1004 1.1 christos if (regaddr == -1)
1005 1.1 christos return;
1006 1.1 christos
1007 1.1 christos /* First collect the register. Keep in mind that the regcache's
1008 1.1 christos idea of the register's size may not be a multiple of sizeof
1009 1.1 christos (long). */
1010 1.1 christos memset (buf, 0, sizeof buf);
1011 1.1 christos bytes_to_transfer = align_up (register_size (gdbarch, regno), sizeof (long));
1012 1.1 christos if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_LITTLE)
1013 1.1 christos {
1014 1.1 christos /* Little-endian values always sit at the left end of the buffer. */
1015 1.1 christos regcache_raw_collect (regcache, regno, buf);
1016 1.1 christos }
1017 1.1 christos else if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
1018 1.1 christos {
1019 1.1 christos /* Big-endian values sit at the right end of the buffer. */
1020 1.1 christos size_t padding = (bytes_to_transfer - register_size (gdbarch, regno));
1021 1.1 christos regcache_raw_collect (regcache, regno, buf + padding);
1022 1.1 christos }
1023 1.1 christos
1024 1.1 christos for (i = 0; i < bytes_to_transfer; i += sizeof (long))
1025 1.1 christos {
1026 1.1 christos long l;
1027 1.1 christos
1028 1.1 christos memcpy (&l, &buf[i], sizeof (l));
1029 1.1 christos errno = 0;
1030 1.1 christos ptrace (PTRACE_POKEUSER, tid, (PTRACE_TYPE_ARG3) regaddr, l);
1031 1.1 christos regaddr += sizeof (long);
1032 1.1 christos
1033 1.1 christos if (errno == EIO
1034 1.1 christos && (regno == tdep->ppc_fpscr_regnum
1035 1.1 christos || regno == PPC_ORIG_R3_REGNUM
1036 1.1 christos || regno == PPC_TRAP_REGNUM))
1037 1.1 christos {
1038 1.1 christos /* Some older kernel versions don't allow fpscr, orig_r3
1039 1.1 christos or trap to be written. */
1040 1.1 christos continue;
1041 1.1 christos }
1042 1.1 christos
1043 1.1 christos if (errno != 0)
1044 1.1 christos {
1045 1.1 christos char message[128];
1046 1.1 christos xsnprintf (message, sizeof (message), "writing register %s (#%d)",
1047 1.1 christos gdbarch_register_name (gdbarch, regno), regno);
1048 1.1 christos perror_with_name (message);
1049 1.1 christos }
1050 1.1 christos }
1051 1.1 christos }
1052 1.1 christos
1053 1.1 christos static void
1054 1.1 christos fill_vsxregset (const struct regcache *regcache, gdb_vsxregset_t *vsxregsetp)
1055 1.1 christos {
1056 1.1 christos int i;
1057 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
1058 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1059 1.1 christos int vsxregsize = register_size (gdbarch, tdep->ppc_vsr0_upper_regnum);
1060 1.1 christos
1061 1.1 christos for (i = 0; i < ppc_num_vshrs; i++)
1062 1.1 christos regcache_raw_collect (regcache, tdep->ppc_vsr0_upper_regnum + i,
1063 1.1 christos *vsxregsetp + i * vsxregsize);
1064 1.1 christos }
1065 1.1 christos
1066 1.1 christos static void
1067 1.1 christos fill_vrregset (const struct regcache *regcache, gdb_vrregset_t *vrregsetp)
1068 1.1 christos {
1069 1.1 christos int i;
1070 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
1071 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1072 1.1 christos int num_of_vrregs = tdep->ppc_vrsave_regnum - tdep->ppc_vr0_regnum + 1;
1073 1.1 christos int vrregsize = register_size (gdbarch, tdep->ppc_vr0_regnum);
1074 1.1 christos int offset = vrregsize - register_size (gdbarch, tdep->ppc_vrsave_regnum);
1075 1.1 christos
1076 1.1 christos for (i = 0; i < num_of_vrregs; i++)
1077 1.1 christos {
1078 1.1 christos /* The last 2 registers of this set are only 32 bit long, not
1079 1.1 christos 128, but only VSCR is fetched as a 16 bytes quantity. */
1080 1.1 christos if (i == (num_of_vrregs - 2))
1081 1.1 christos regcache_raw_collect (regcache, tdep->ppc_vr0_regnum + i,
1082 1.1 christos *vrregsetp + i * vrregsize + offset);
1083 1.1 christos else
1084 1.1 christos regcache_raw_collect (regcache, tdep->ppc_vr0_regnum + i,
1085 1.1 christos *vrregsetp + i * vrregsize);
1086 1.1 christos }
1087 1.1 christos }
1088 1.1 christos
1089 1.1 christos static void
1090 1.1 christos store_vsx_registers (const struct regcache *regcache, int tid)
1091 1.1 christos {
1092 1.1 christos int ret;
1093 1.1 christos gdb_vsxregset_t regs;
1094 1.1 christos
1095 1.1 christos ret = ptrace (PTRACE_GETVSXREGS, tid, 0, ®s);
1096 1.1 christos if (ret < 0)
1097 1.1 christos {
1098 1.1 christos if (errno == EIO)
1099 1.1 christos {
1100 1.1 christos have_ptrace_getsetvsxregs = 0;
1101 1.1 christos return;
1102 1.1 christos }
1103 1.1 christos perror_with_name (_("Couldn't get VSX registers"));
1104 1.1 christos }
1105 1.1 christos
1106 1.1 christos fill_vsxregset (regcache, ®s);
1107 1.1 christos
1108 1.1 christos if (ptrace (PTRACE_SETVSXREGS, tid, 0, ®s) < 0)
1109 1.1 christos perror_with_name (_("Couldn't write VSX registers"));
1110 1.1 christos }
1111 1.1 christos
1112 1.1 christos static void
1113 1.1 christos store_altivec_registers (const struct regcache *regcache, int tid)
1114 1.1 christos {
1115 1.1 christos int ret;
1116 1.1 christos gdb_vrregset_t regs;
1117 1.1 christos
1118 1.1 christos ret = ptrace (PTRACE_GETVRREGS, tid, 0, ®s);
1119 1.1 christos if (ret < 0)
1120 1.1 christos {
1121 1.1 christos if (errno == EIO)
1122 1.1 christos {
1123 1.1 christos have_ptrace_getvrregs = 0;
1124 1.1 christos return;
1125 1.1 christos }
1126 1.1 christos perror_with_name (_("Couldn't get AltiVec registers"));
1127 1.1 christos }
1128 1.1 christos
1129 1.1 christos fill_vrregset (regcache, ®s);
1130 1.1 christos
1131 1.1 christos if (ptrace (PTRACE_SETVRREGS, tid, 0, ®s) < 0)
1132 1.1 christos perror_with_name (_("Couldn't write AltiVec registers"));
1133 1.1 christos }
1134 1.1 christos
1135 1.1 christos /* This function actually issues the request to ptrace, telling
1136 1.1 christos it to store all general-purpose registers present in the specified
1137 1.1 christos regset.
1138 1.1 christos
1139 1.1 christos If the ptrace request does not exist, this function returns 0
1140 1.1 christos and properly sets the have_ptrace_* flag. If the request fails,
1141 1.1 christos this function calls perror_with_name. Otherwise, if the request
1142 1.1 christos succeeds, then the regcache is stored and 1 is returned. */
1143 1.1 christos static int
1144 1.1 christos store_all_gp_regs (const struct regcache *regcache, int tid, int regno)
1145 1.1 christos {
1146 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
1147 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1148 1.1 christos gdb_gregset_t gregset;
1149 1.1 christos
1150 1.1 christos if (ptrace (PTRACE_GETREGS, tid, 0, (void *) &gregset) < 0)
1151 1.1 christos {
1152 1.1 christos if (errno == EIO)
1153 1.1 christos {
1154 1.1 christos have_ptrace_getsetregs = 0;
1155 1.1 christos return 0;
1156 1.1 christos }
1157 1.1 christos perror_with_name (_("Couldn't get general-purpose registers."));
1158 1.1 christos }
1159 1.1 christos
1160 1.1 christos fill_gregset (regcache, &gregset, regno);
1161 1.1 christos
1162 1.1 christos if (ptrace (PTRACE_SETREGS, tid, 0, (void *) &gregset) < 0)
1163 1.1 christos {
1164 1.1 christos if (errno == EIO)
1165 1.1 christos {
1166 1.1 christos have_ptrace_getsetregs = 0;
1167 1.1 christos return 0;
1168 1.1 christos }
1169 1.1 christos perror_with_name (_("Couldn't set general-purpose registers."));
1170 1.1 christos }
1171 1.1 christos
1172 1.1 christos return 1;
1173 1.1 christos }
1174 1.1 christos
1175 1.1 christos /* This is a wrapper for the store_all_gp_regs function. It is
1176 1.1 christos responsible for verifying if this target has the ptrace request
1177 1.1 christos that can be used to store all general-purpose registers at one
1178 1.1 christos shot. If it doesn't, then we should store them using the
1179 1.1 christos old-fashioned way, which is to iterate over the registers and
1180 1.1 christos store them one by one. */
1181 1.1 christos static void
1182 1.1 christos store_gp_regs (const struct regcache *regcache, int tid, int regno)
1183 1.1 christos {
1184 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
1185 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1186 1.1 christos int i;
1187 1.1 christos
1188 1.1 christos if (have_ptrace_getsetregs)
1189 1.1 christos if (store_all_gp_regs (regcache, tid, regno))
1190 1.1 christos return;
1191 1.1 christos
1192 1.1 christos /* If we hit this point, it doesn't really matter which
1193 1.1 christos architecture we are using. We just need to store the
1194 1.1 christos registers in the "old-fashioned way". */
1195 1.1 christos for (i = 0; i < ppc_num_gprs; i++)
1196 1.1 christos store_register (regcache, tid, tdep->ppc_gp0_regnum + i);
1197 1.1 christos }
1198 1.1 christos
1199 1.1 christos /* This function actually issues the request to ptrace, telling
1200 1.1 christos it to store all floating-point registers present in the specified
1201 1.1 christos regset.
1202 1.1 christos
1203 1.1 christos If the ptrace request does not exist, this function returns 0
1204 1.1 christos and properly sets the have_ptrace_* flag. If the request fails,
1205 1.1 christos this function calls perror_with_name. Otherwise, if the request
1206 1.1 christos succeeds, then the regcache is stored and 1 is returned. */
1207 1.1 christos static int
1208 1.1 christos store_all_fp_regs (const struct regcache *regcache, int tid, int regno)
1209 1.1 christos {
1210 1.1 christos gdb_fpregset_t fpregs;
1211 1.1 christos
1212 1.1 christos if (ptrace (PTRACE_GETFPREGS, tid, 0, (void *) &fpregs) < 0)
1213 1.1 christos {
1214 1.1 christos if (errno == EIO)
1215 1.1 christos {
1216 1.1 christos have_ptrace_getsetfpregs = 0;
1217 1.1 christos return 0;
1218 1.1 christos }
1219 1.1 christos perror_with_name (_("Couldn't get floating-point registers."));
1220 1.1 christos }
1221 1.1 christos
1222 1.1 christos fill_fpregset (regcache, &fpregs, regno);
1223 1.1 christos
1224 1.1 christos if (ptrace (PTRACE_SETFPREGS, tid, 0, (void *) &fpregs) < 0)
1225 1.1 christos {
1226 1.1 christos if (errno == EIO)
1227 1.1 christos {
1228 1.1 christos have_ptrace_getsetfpregs = 0;
1229 1.1 christos return 0;
1230 1.1 christos }
1231 1.1 christos perror_with_name (_("Couldn't set floating-point registers."));
1232 1.1 christos }
1233 1.1 christos
1234 1.1 christos return 1;
1235 1.1 christos }
1236 1.1 christos
1237 1.1 christos /* This is a wrapper for the store_all_fp_regs function. It is
1238 1.1 christos responsible for verifying if this target has the ptrace request
1239 1.1 christos that can be used to store all floating-point registers at one
1240 1.1 christos shot. If it doesn't, then we should store them using the
1241 1.1 christos old-fashioned way, which is to iterate over the registers and
1242 1.1 christos store them one by one. */
1243 1.1 christos static void
1244 1.1 christos store_fp_regs (const struct regcache *regcache, int tid, int regno)
1245 1.1 christos {
1246 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
1247 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1248 1.1 christos int i;
1249 1.1 christos
1250 1.1 christos if (have_ptrace_getsetfpregs)
1251 1.1 christos if (store_all_fp_regs (regcache, tid, regno))
1252 1.1 christos return;
1253 1.1 christos
1254 1.1 christos /* If we hit this point, it doesn't really matter which
1255 1.1 christos architecture we are using. We just need to store the
1256 1.1 christos registers in the "old-fashioned way". */
1257 1.1 christos for (i = 0; i < ppc_num_fprs; i++)
1258 1.1 christos store_register (regcache, tid, tdep->ppc_fp0_regnum + i);
1259 1.1 christos }
1260 1.1 christos
1261 1.1 christos static void
1262 1.1 christos store_ppc_registers (const struct regcache *regcache, int tid)
1263 1.1 christos {
1264 1.1 christos int i;
1265 1.1 christos struct gdbarch *gdbarch = get_regcache_arch (regcache);
1266 1.1 christos struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1267 1.1 christos
1268 1.1 christos store_gp_regs (regcache, tid, -1);
1269 1.1 christos if (tdep->ppc_fp0_regnum >= 0)
1270 1.1 christos store_fp_regs (regcache, tid, -1);
1271 1.1 christos store_register (regcache, tid, gdbarch_pc_regnum (gdbarch));
1272 1.1 christos if (tdep->ppc_ps_regnum != -1)
1273 1.1 christos store_register (regcache, tid, tdep->ppc_ps_regnum);
1274 1.1 christos if (tdep->ppc_cr_regnum != -1)
1275 1.1 christos store_register (regcache, tid, tdep->ppc_cr_regnum);
1276 1.1 christos if (tdep->ppc_lr_regnum != -1)
1277 1.1 christos store_register (regcache, tid, tdep->ppc_lr_regnum);
1278 1.1 christos if (tdep->ppc_ctr_regnum != -1)
1279 1.1 christos store_register (regcache, tid, tdep->ppc_ctr_regnum);
1280 1.1 christos if (tdep->ppc_xer_regnum != -1)
1281 1.1 christos store_register (regcache, tid, tdep->ppc_xer_regnum);
1282 1.1 christos if (tdep->ppc_mq_regnum != -1)
1283 1.1 christos store_register (regcache, tid, tdep->ppc_mq_regnum);
1284 1.1 christos if (tdep->ppc_fpscr_regnum != -1)
1285 1.1 christos store_register (regcache, tid, tdep->ppc_fpscr_regnum);
1286 1.1 christos if (ppc_linux_trap_reg_p (gdbarch))
1287 1.1 christos {
1288 1.1 christos store_register (regcache, tid, PPC_ORIG_R3_REGNUM);
1289 1.1 christos store_register (regcache, tid, PPC_TRAP_REGNUM);
1290 1.1 christos }
1291 1.1 christos if (have_ptrace_getvrregs)
1292 1.1 christos if (tdep->ppc_vr0_regnum != -1 && tdep->ppc_vrsave_regnum != -1)
1293 1.1 christos store_altivec_registers (regcache, tid);
1294 1.1 christos if (have_ptrace_getsetvsxregs)
1295 1.1 christos if (tdep->ppc_vsr0_upper_regnum != -1)
1296 1.1 christos store_vsx_registers (regcache, tid);
1297 1.1 christos if (tdep->ppc_ev0_upper_regnum >= 0)
1298 1.1 christos store_spe_register (regcache, tid, -1);
1299 1.1 christos }
1300 1.1 christos
1301 1.1 christos /* Fetch the AT_HWCAP entry from the aux vector. */
1302 1.1 christos static unsigned long
1303 1.1 christos ppc_linux_get_hwcap (void)
1304 1.1 christos {
1305 1.1 christos CORE_ADDR field;
1306 1.1 christos
1307 1.1 christos if (target_auxv_search (¤t_target, AT_HWCAP, &field))
1308 1.1 christos return (unsigned long) field;
1309 1.1 christos
1310 1.1 christos return 0;
1311 1.1 christos }
1312 1.1 christos
1313 1.1 christos /* The cached DABR value, to install in new threads.
1314 1.1 christos This variable is used when the PowerPC HWDEBUG ptrace
1315 1.1 christos interface is not available. */
1316 1.1 christos static long saved_dabr_value;
1317 1.1 christos
1318 1.1 christos /* Global structure that will store information about the available
1319 1.1 christos features provided by the PowerPC HWDEBUG ptrace interface. */
1320 1.1 christos static struct ppc_debug_info hwdebug_info;
1321 1.1 christos
1322 1.1 christos /* Global variable that holds the maximum number of slots that the
1323 1.1 christos kernel will use. This is only used when PowerPC HWDEBUG ptrace interface
1324 1.1 christos is available. */
1325 1.1 christos static size_t max_slots_number = 0;
1326 1.1 christos
1327 1.1 christos struct hw_break_tuple
1328 1.1 christos {
1329 1.1 christos long slot;
1330 1.1 christos struct ppc_hw_breakpoint *hw_break;
1331 1.1 christos };
1332 1.1 christos
1333 1.1 christos /* This is an internal VEC created to store information about *points inserted
1334 1.1 christos for each thread. This is used when PowerPC HWDEBUG ptrace interface is
1335 1.1 christos available. */
1336 1.1 christos typedef struct thread_points
1337 1.1 christos {
1338 1.1 christos /* The TID to which this *point relates. */
1339 1.1 christos int tid;
1340 1.1 christos /* Information about the *point, such as its address, type, etc.
1341 1.1 christos
1342 1.1 christos Each element inside this vector corresponds to a hardware
1343 1.1 christos breakpoint or watchpoint in the thread represented by TID. The maximum
1344 1.1 christos size of these vector is MAX_SLOTS_NUMBER. If the hw_break element of
1345 1.1 christos the tuple is NULL, then the position in the vector is free. */
1346 1.1 christos struct hw_break_tuple *hw_breaks;
1347 1.1 christos } *thread_points_p;
1348 1.1 christos DEF_VEC_P (thread_points_p);
1349 1.1 christos
1350 1.1 christos VEC(thread_points_p) *ppc_threads = NULL;
1351 1.1 christos
1352 1.1 christos /* The version of the PowerPC HWDEBUG kernel interface that we will use, if
1353 1.1 christos available. */
1354 1.1 christos #define PPC_DEBUG_CURRENT_VERSION 1
1355 1.1 christos
1356 1.1 christos /* Returns non-zero if we support the PowerPC HWDEBUG ptrace interface. */
1357 1.1 christos static int
1358 1.1 christos have_ptrace_hwdebug_interface (void)
1359 1.1 christos {
1360 1.1 christos static int have_ptrace_hwdebug_interface = -1;
1361 1.1 christos
1362 1.1 christos if (have_ptrace_hwdebug_interface == -1)
1363 1.1 christos {
1364 1.1 christos int tid;
1365 1.1 christos
1366 1.1 christos tid = ptid_get_lwp (inferior_ptid);
1367 1.1 christos if (tid == 0)
1368 1.1 christos tid = ptid_get_pid (inferior_ptid);
1369 1.1 christos
1370 1.1 christos /* Check for kernel support for PowerPC HWDEBUG ptrace interface. */
1371 1.1 christos if (ptrace (PPC_PTRACE_GETHWDBGINFO, tid, 0, &hwdebug_info) >= 0)
1372 1.1 christos {
1373 1.1 christos /* Check whether PowerPC HWDEBUG ptrace interface is functional and
1374 1.1 christos provides any supported feature. */
1375 1.1 christos if (hwdebug_info.features != 0)
1376 1.1 christos {
1377 1.1 christos have_ptrace_hwdebug_interface = 1;
1378 1.1 christos max_slots_number = hwdebug_info.num_instruction_bps
1379 1.1 christos + hwdebug_info.num_data_bps
1380 1.1 christos + hwdebug_info.num_condition_regs;
1381 1.1 christos return have_ptrace_hwdebug_interface;
1382 1.1 christos }
1383 1.1 christos }
1384 1.1 christos /* Old school interface and no PowerPC HWDEBUG ptrace support. */
1385 1.1 christos have_ptrace_hwdebug_interface = 0;
1386 1.1 christos memset (&hwdebug_info, 0, sizeof (struct ppc_debug_info));
1387 1.1 christos }
1388 1.1 christos
1389 1.1 christos return have_ptrace_hwdebug_interface;
1390 1.1 christos }
1391 1.1 christos
1392 1.1 christos static int
1393 1.3 christos ppc_linux_can_use_hw_breakpoint (struct target_ops *self,
1394 1.6 christos enum bptype type, int cnt, int ot)
1395 1.1 christos {
1396 1.1 christos int total_hw_wp, total_hw_bp;
1397 1.1 christos
1398 1.1 christos if (have_ptrace_hwdebug_interface ())
1399 1.1 christos {
1400 1.1 christos /* When PowerPC HWDEBUG ptrace interface is available, the number of
1401 1.1 christos available hardware watchpoints and breakpoints is stored at the
1402 1.1 christos hwdebug_info struct. */
1403 1.1 christos total_hw_bp = hwdebug_info.num_instruction_bps;
1404 1.1 christos total_hw_wp = hwdebug_info.num_data_bps;
1405 1.1 christos }
1406 1.1 christos else
1407 1.1 christos {
1408 1.1 christos /* When we do not have PowerPC HWDEBUG ptrace interface, we should
1409 1.1 christos consider having 1 hardware watchpoint and no hardware breakpoints. */
1410 1.1 christos total_hw_bp = 0;
1411 1.1 christos total_hw_wp = 1;
1412 1.1 christos }
1413 1.1 christos
1414 1.1 christos if (type == bp_hardware_watchpoint || type == bp_read_watchpoint
1415 1.1 christos || type == bp_access_watchpoint || type == bp_watchpoint)
1416 1.1 christos {
1417 1.1 christos if (cnt + ot > total_hw_wp)
1418 1.1 christos return -1;
1419 1.1 christos }
1420 1.1 christos else if (type == bp_hardware_breakpoint)
1421 1.1 christos {
1422 1.3 christos if (total_hw_bp == 0)
1423 1.3 christos {
1424 1.3 christos /* No hardware breakpoint support. */
1425 1.3 christos return 0;
1426 1.3 christos }
1427 1.1 christos if (cnt > total_hw_bp)
1428 1.1 christos return -1;
1429 1.1 christos }
1430 1.1 christos
1431 1.1 christos if (!have_ptrace_hwdebug_interface ())
1432 1.1 christos {
1433 1.1 christos int tid;
1434 1.1 christos ptid_t ptid = inferior_ptid;
1435 1.1 christos
1436 1.1 christos /* We need to know whether ptrace supports PTRACE_SET_DEBUGREG
1437 1.1 christos and whether the target has DABR. If either answer is no, the
1438 1.1 christos ptrace call will return -1. Fail in that case. */
1439 1.1 christos tid = ptid_get_lwp (ptid);
1440 1.1 christos if (tid == 0)
1441 1.1 christos tid = ptid_get_pid (ptid);
1442 1.1 christos
1443 1.1 christos if (ptrace (PTRACE_SET_DEBUGREG, tid, 0, 0) == -1)
1444 1.1 christos return 0;
1445 1.1 christos }
1446 1.1 christos
1447 1.1 christos return 1;
1448 1.1 christos }
1449 1.1 christos
1450 1.1 christos static int
1451 1.3 christos ppc_linux_region_ok_for_hw_watchpoint (struct target_ops *self,
1452 1.3 christos CORE_ADDR addr, int len)
1453 1.1 christos {
1454 1.1 christos /* Handle sub-8-byte quantities. */
1455 1.1 christos if (len <= 0)
1456 1.1 christos return 0;
1457 1.1 christos
1458 1.1 christos /* The PowerPC HWDEBUG ptrace interface tells if there are alignment
1459 1.1 christos restrictions for watchpoints in the processors. In that case, we use that
1460 1.1 christos information to determine the hardcoded watchable region for
1461 1.1 christos watchpoints. */
1462 1.1 christos if (have_ptrace_hwdebug_interface ())
1463 1.1 christos {
1464 1.1 christos int region_size;
1465 1.1 christos /* Embedded DAC-based processors, like the PowerPC 440 have ranged
1466 1.1 christos watchpoints and can watch any access within an arbitrary memory
1467 1.1 christos region. This is useful to watch arrays and structs, for instance. It
1468 1.1 christos takes two hardware watchpoints though. */
1469 1.1 christos if (len > 1
1470 1.1 christos && hwdebug_info.features & PPC_DEBUG_FEATURE_DATA_BP_RANGE
1471 1.1 christos && ppc_linux_get_hwcap () & PPC_FEATURE_BOOKE)
1472 1.1 christos return 2;
1473 1.1 christos /* Check if the processor provides DAWR interface. */
1474 1.1 christos if (hwdebug_info.features & PPC_DEBUG_FEATURE_DATA_BP_DAWR)
1475 1.1 christos /* DAWR interface allows to watch up to 512 byte wide ranges which
1476 1.1 christos can't cross a 512 byte boundary. */
1477 1.1 christos region_size = 512;
1478 1.1 christos else
1479 1.1 christos region_size = hwdebug_info.data_bp_alignment;
1480 1.1 christos /* Server processors provide one hardware watchpoint and addr+len should
1481 1.1 christos fall in the watchable region provided by the ptrace interface. */
1482 1.1 christos if (region_size
1483 1.1 christos && (addr + len > (addr & ~(region_size - 1)) + region_size))
1484 1.1 christos return 0;
1485 1.1 christos }
1486 1.1 christos /* addr+len must fall in the 8 byte watchable region for DABR-based
1487 1.1 christos processors (i.e., server processors). Without the new PowerPC HWDEBUG
1488 1.1 christos ptrace interface, DAC-based processors (i.e., embedded processors) will
1489 1.1 christos use addresses aligned to 4-bytes due to the way the read/write flags are
1490 1.1 christos passed in the old ptrace interface. */
1491 1.1 christos else if (((ppc_linux_get_hwcap () & PPC_FEATURE_BOOKE)
1492 1.1 christos && (addr + len) > (addr & ~3) + 4)
1493 1.1 christos || (addr + len) > (addr & ~7) + 8)
1494 1.1 christos return 0;
1495 1.1 christos
1496 1.1 christos return 1;
1497 1.1 christos }
1498 1.1 christos
1499 1.1 christos /* This function compares two ppc_hw_breakpoint structs field-by-field. */
1500 1.1 christos static int
1501 1.1 christos hwdebug_point_cmp (struct ppc_hw_breakpoint *a, struct ppc_hw_breakpoint *b)
1502 1.1 christos {
1503 1.1 christos return (a->trigger_type == b->trigger_type
1504 1.1 christos && a->addr_mode == b->addr_mode
1505 1.1 christos && a->condition_mode == b->condition_mode
1506 1.1 christos && a->addr == b->addr
1507 1.1 christos && a->addr2 == b->addr2
1508 1.1 christos && a->condition_value == b->condition_value);
1509 1.1 christos }
1510 1.1 christos
1511 1.1 christos /* This function can be used to retrieve a thread_points by the TID of the
1512 1.1 christos related process/thread. If nothing has been found, and ALLOC_NEW is 0,
1513 1.1 christos it returns NULL. If ALLOC_NEW is non-zero, a new thread_points for the
1514 1.1 christos provided TID will be created and returned. */
1515 1.1 christos static struct thread_points *
1516 1.1 christos hwdebug_find_thread_points_by_tid (int tid, int alloc_new)
1517 1.1 christos {
1518 1.1 christos int i;
1519 1.1 christos struct thread_points *t;
1520 1.1 christos
1521 1.1 christos for (i = 0; VEC_iterate (thread_points_p, ppc_threads, i, t); i++)
1522 1.1 christos if (t->tid == tid)
1523 1.1 christos return t;
1524 1.1 christos
1525 1.1 christos t = NULL;
1526 1.1 christos
1527 1.1 christos /* Do we need to allocate a new point_item
1528 1.1 christos if the wanted one does not exist? */
1529 1.1 christos if (alloc_new)
1530 1.1 christos {
1531 1.6 christos t = XNEW (struct thread_points);
1532 1.6 christos t->hw_breaks = XCNEWVEC (struct hw_break_tuple, max_slots_number);
1533 1.1 christos t->tid = tid;
1534 1.1 christos VEC_safe_push (thread_points_p, ppc_threads, t);
1535 1.1 christos }
1536 1.1 christos
1537 1.1 christos return t;
1538 1.1 christos }
1539 1.1 christos
1540 1.1 christos /* This function is a generic wrapper that is responsible for inserting a
1541 1.1 christos *point (i.e., calling `ptrace' in order to issue the request to the
1542 1.1 christos kernel) and registering it internally in GDB. */
1543 1.1 christos static void
1544 1.1 christos hwdebug_insert_point (struct ppc_hw_breakpoint *b, int tid)
1545 1.1 christos {
1546 1.1 christos int i;
1547 1.1 christos long slot;
1548 1.6 christos struct ppc_hw_breakpoint *p = XNEW (struct ppc_hw_breakpoint);
1549 1.1 christos struct hw_break_tuple *hw_breaks;
1550 1.1 christos struct cleanup *c = make_cleanup (xfree, p);
1551 1.1 christos struct thread_points *t;
1552 1.1 christos struct hw_break_tuple *tuple;
1553 1.1 christos
1554 1.1 christos memcpy (p, b, sizeof (struct ppc_hw_breakpoint));
1555 1.1 christos
1556 1.1 christos errno = 0;
1557 1.1 christos slot = ptrace (PPC_PTRACE_SETHWDEBUG, tid, 0, p);
1558 1.1 christos if (slot < 0)
1559 1.1 christos perror_with_name (_("Unexpected error setting breakpoint or watchpoint"));
1560 1.1 christos
1561 1.1 christos /* Everything went fine, so we have to register this *point. */
1562 1.1 christos t = hwdebug_find_thread_points_by_tid (tid, 1);
1563 1.1 christos gdb_assert (t != NULL);
1564 1.1 christos hw_breaks = t->hw_breaks;
1565 1.1 christos
1566 1.1 christos /* Find a free element in the hw_breaks vector. */
1567 1.1 christos for (i = 0; i < max_slots_number; i++)
1568 1.1 christos if (hw_breaks[i].hw_break == NULL)
1569 1.1 christos {
1570 1.1 christos hw_breaks[i].slot = slot;
1571 1.1 christos hw_breaks[i].hw_break = p;
1572 1.1 christos break;
1573 1.1 christos }
1574 1.1 christos
1575 1.1 christos gdb_assert (i != max_slots_number);
1576 1.1 christos
1577 1.1 christos discard_cleanups (c);
1578 1.1 christos }
1579 1.1 christos
1580 1.1 christos /* This function is a generic wrapper that is responsible for removing a
1581 1.1 christos *point (i.e., calling `ptrace' in order to issue the request to the
1582 1.1 christos kernel), and unregistering it internally at GDB. */
1583 1.1 christos static void
1584 1.1 christos hwdebug_remove_point (struct ppc_hw_breakpoint *b, int tid)
1585 1.1 christos {
1586 1.1 christos int i;
1587 1.1 christos struct hw_break_tuple *hw_breaks;
1588 1.1 christos struct thread_points *t;
1589 1.1 christos
1590 1.1 christos t = hwdebug_find_thread_points_by_tid (tid, 0);
1591 1.1 christos gdb_assert (t != NULL);
1592 1.1 christos hw_breaks = t->hw_breaks;
1593 1.1 christos
1594 1.1 christos for (i = 0; i < max_slots_number; i++)
1595 1.1 christos if (hw_breaks[i].hw_break && hwdebug_point_cmp (hw_breaks[i].hw_break, b))
1596 1.1 christos break;
1597 1.1 christos
1598 1.1 christos gdb_assert (i != max_slots_number);
1599 1.1 christos
1600 1.1 christos /* We have to ignore ENOENT errors because the kernel implements hardware
1601 1.1 christos breakpoints/watchpoints as "one-shot", that is, they are automatically
1602 1.1 christos deleted when hit. */
1603 1.1 christos errno = 0;
1604 1.1 christos if (ptrace (PPC_PTRACE_DELHWDEBUG, tid, 0, hw_breaks[i].slot) < 0)
1605 1.1 christos if (errno != ENOENT)
1606 1.1 christos perror_with_name (_("Unexpected error deleting "
1607 1.1 christos "breakpoint or watchpoint"));
1608 1.1 christos
1609 1.1 christos xfree (hw_breaks[i].hw_break);
1610 1.1 christos hw_breaks[i].hw_break = NULL;
1611 1.1 christos }
1612 1.1 christos
1613 1.1 christos /* Return the number of registers needed for a ranged breakpoint. */
1614 1.1 christos
1615 1.1 christos static int
1616 1.1 christos ppc_linux_ranged_break_num_registers (struct target_ops *target)
1617 1.1 christos {
1618 1.1 christos return ((have_ptrace_hwdebug_interface ()
1619 1.1 christos && hwdebug_info.features & PPC_DEBUG_FEATURE_INSN_BP_RANGE)?
1620 1.1 christos 2 : -1);
1621 1.1 christos }
1622 1.1 christos
1623 1.1 christos /* Insert the hardware breakpoint described by BP_TGT. Returns 0 for
1624 1.1 christos success, 1 if hardware breakpoints are not supported or -1 for failure. */
1625 1.1 christos
1626 1.1 christos static int
1627 1.3 christos ppc_linux_insert_hw_breakpoint (struct target_ops *self,
1628 1.3 christos struct gdbarch *gdbarch,
1629 1.1 christos struct bp_target_info *bp_tgt)
1630 1.1 christos {
1631 1.1 christos struct lwp_info *lp;
1632 1.1 christos struct ppc_hw_breakpoint p;
1633 1.1 christos
1634 1.1 christos if (!have_ptrace_hwdebug_interface ())
1635 1.1 christos return -1;
1636 1.1 christos
1637 1.1 christos p.version = PPC_DEBUG_CURRENT_VERSION;
1638 1.1 christos p.trigger_type = PPC_BREAKPOINT_TRIGGER_EXECUTE;
1639 1.1 christos p.condition_mode = PPC_BREAKPOINT_CONDITION_NONE;
1640 1.3 christos p.addr = (uint64_t) (bp_tgt->placed_address = bp_tgt->reqstd_address);
1641 1.1 christos p.condition_value = 0;
1642 1.1 christos
1643 1.1 christos if (bp_tgt->length)
1644 1.1 christos {
1645 1.1 christos p.addr_mode = PPC_BREAKPOINT_MODE_RANGE_INCLUSIVE;
1646 1.1 christos
1647 1.1 christos /* The breakpoint will trigger if the address of the instruction is
1648 1.1 christos within the defined range, as follows: p.addr <= address < p.addr2. */
1649 1.1 christos p.addr2 = (uint64_t) bp_tgt->placed_address + bp_tgt->length;
1650 1.1 christos }
1651 1.1 christos else
1652 1.1 christos {
1653 1.1 christos p.addr_mode = PPC_BREAKPOINT_MODE_EXACT;
1654 1.1 christos p.addr2 = 0;
1655 1.1 christos }
1656 1.1 christos
1657 1.1 christos ALL_LWPS (lp)
1658 1.1 christos hwdebug_insert_point (&p, ptid_get_lwp (lp->ptid));
1659 1.1 christos
1660 1.1 christos return 0;
1661 1.1 christos }
1662 1.1 christos
1663 1.1 christos static int
1664 1.3 christos ppc_linux_remove_hw_breakpoint (struct target_ops *self,
1665 1.3 christos struct gdbarch *gdbarch,
1666 1.1 christos struct bp_target_info *bp_tgt)
1667 1.1 christos {
1668 1.1 christos struct lwp_info *lp;
1669 1.1 christos struct ppc_hw_breakpoint p;
1670 1.1 christos
1671 1.1 christos if (!have_ptrace_hwdebug_interface ())
1672 1.1 christos return -1;
1673 1.1 christos
1674 1.1 christos p.version = PPC_DEBUG_CURRENT_VERSION;
1675 1.1 christos p.trigger_type = PPC_BREAKPOINT_TRIGGER_EXECUTE;
1676 1.1 christos p.condition_mode = PPC_BREAKPOINT_CONDITION_NONE;
1677 1.1 christos p.addr = (uint64_t) bp_tgt->placed_address;
1678 1.1 christos p.condition_value = 0;
1679 1.1 christos
1680 1.1 christos if (bp_tgt->length)
1681 1.1 christos {
1682 1.1 christos p.addr_mode = PPC_BREAKPOINT_MODE_RANGE_INCLUSIVE;
1683 1.1 christos
1684 1.1 christos /* The breakpoint will trigger if the address of the instruction is within
1685 1.1 christos the defined range, as follows: p.addr <= address < p.addr2. */
1686 1.1 christos p.addr2 = (uint64_t) bp_tgt->placed_address + bp_tgt->length;
1687 1.1 christos }
1688 1.1 christos else
1689 1.1 christos {
1690 1.1 christos p.addr_mode = PPC_BREAKPOINT_MODE_EXACT;
1691 1.1 christos p.addr2 = 0;
1692 1.1 christos }
1693 1.1 christos
1694 1.1 christos ALL_LWPS (lp)
1695 1.1 christos hwdebug_remove_point (&p, ptid_get_lwp (lp->ptid));
1696 1.1 christos
1697 1.1 christos return 0;
1698 1.1 christos }
1699 1.1 christos
1700 1.1 christos static int
1701 1.6 christos get_trigger_type (enum target_hw_bp_type type)
1702 1.1 christos {
1703 1.1 christos int t;
1704 1.1 christos
1705 1.6 christos if (type == hw_read)
1706 1.1 christos t = PPC_BREAKPOINT_TRIGGER_READ;
1707 1.6 christos else if (type == hw_write)
1708 1.1 christos t = PPC_BREAKPOINT_TRIGGER_WRITE;
1709 1.1 christos else
1710 1.1 christos t = PPC_BREAKPOINT_TRIGGER_READ | PPC_BREAKPOINT_TRIGGER_WRITE;
1711 1.1 christos
1712 1.1 christos return t;
1713 1.1 christos }
1714 1.1 christos
1715 1.1 christos /* Insert a new masked watchpoint at ADDR using the mask MASK.
1716 1.1 christos RW may be hw_read for a read watchpoint, hw_write for a write watchpoint
1717 1.1 christos or hw_access for an access watchpoint. Returns 0 on success and throws
1718 1.1 christos an error on failure. */
1719 1.1 christos
1720 1.1 christos static int
1721 1.1 christos ppc_linux_insert_mask_watchpoint (struct target_ops *ops, CORE_ADDR addr,
1722 1.6 christos CORE_ADDR mask, enum target_hw_bp_type rw)
1723 1.1 christos {
1724 1.1 christos struct lwp_info *lp;
1725 1.1 christos struct ppc_hw_breakpoint p;
1726 1.1 christos
1727 1.1 christos gdb_assert (have_ptrace_hwdebug_interface ());
1728 1.1 christos
1729 1.1 christos p.version = PPC_DEBUG_CURRENT_VERSION;
1730 1.1 christos p.trigger_type = get_trigger_type (rw);
1731 1.1 christos p.addr_mode = PPC_BREAKPOINT_MODE_MASK;
1732 1.1 christos p.condition_mode = PPC_BREAKPOINT_CONDITION_NONE;
1733 1.1 christos p.addr = addr;
1734 1.1 christos p.addr2 = mask;
1735 1.1 christos p.condition_value = 0;
1736 1.1 christos
1737 1.1 christos ALL_LWPS (lp)
1738 1.1 christos hwdebug_insert_point (&p, ptid_get_lwp (lp->ptid));
1739 1.1 christos
1740 1.1 christos return 0;
1741 1.1 christos }
1742 1.1 christos
1743 1.1 christos /* Remove a masked watchpoint at ADDR with the mask MASK.
1744 1.1 christos RW may be hw_read for a read watchpoint, hw_write for a write watchpoint
1745 1.1 christos or hw_access for an access watchpoint. Returns 0 on success and throws
1746 1.1 christos an error on failure. */
1747 1.1 christos
1748 1.1 christos static int
1749 1.1 christos ppc_linux_remove_mask_watchpoint (struct target_ops *ops, CORE_ADDR addr,
1750 1.6 christos CORE_ADDR mask, enum target_hw_bp_type rw)
1751 1.1 christos {
1752 1.1 christos struct lwp_info *lp;
1753 1.1 christos struct ppc_hw_breakpoint p;
1754 1.1 christos
1755 1.1 christos gdb_assert (have_ptrace_hwdebug_interface ());
1756 1.1 christos
1757 1.1 christos p.version = PPC_DEBUG_CURRENT_VERSION;
1758 1.1 christos p.trigger_type = get_trigger_type (rw);
1759 1.1 christos p.addr_mode = PPC_BREAKPOINT_MODE_MASK;
1760 1.1 christos p.condition_mode = PPC_BREAKPOINT_CONDITION_NONE;
1761 1.1 christos p.addr = addr;
1762 1.1 christos p.addr2 = mask;
1763 1.1 christos p.condition_value = 0;
1764 1.1 christos
1765 1.1 christos ALL_LWPS (lp)
1766 1.1 christos hwdebug_remove_point (&p, ptid_get_lwp (lp->ptid));
1767 1.1 christos
1768 1.1 christos return 0;
1769 1.1 christos }
1770 1.1 christos
1771 1.1 christos /* Check whether we have at least one free DVC register. */
1772 1.1 christos static int
1773 1.1 christos can_use_watchpoint_cond_accel (void)
1774 1.1 christos {
1775 1.1 christos struct thread_points *p;
1776 1.1 christos int tid = ptid_get_lwp (inferior_ptid);
1777 1.1 christos int cnt = hwdebug_info.num_condition_regs, i;
1778 1.1 christos CORE_ADDR tmp_value;
1779 1.1 christos
1780 1.1 christos if (!have_ptrace_hwdebug_interface () || cnt == 0)
1781 1.1 christos return 0;
1782 1.1 christos
1783 1.1 christos p = hwdebug_find_thread_points_by_tid (tid, 0);
1784 1.1 christos
1785 1.1 christos if (p)
1786 1.1 christos {
1787 1.1 christos for (i = 0; i < max_slots_number; i++)
1788 1.1 christos if (p->hw_breaks[i].hw_break != NULL
1789 1.1 christos && (p->hw_breaks[i].hw_break->condition_mode
1790 1.1 christos != PPC_BREAKPOINT_CONDITION_NONE))
1791 1.1 christos cnt--;
1792 1.1 christos
1793 1.1 christos /* There are no available slots now. */
1794 1.1 christos if (cnt <= 0)
1795 1.1 christos return 0;
1796 1.1 christos }
1797 1.1 christos
1798 1.1 christos return 1;
1799 1.1 christos }
1800 1.1 christos
1801 1.1 christos /* Calculate the enable bits and the contents of the Data Value Compare
1802 1.1 christos debug register present in BookE processors.
1803 1.1 christos
1804 1.1 christos ADDR is the address to be watched, LEN is the length of watched data
1805 1.1 christos and DATA_VALUE is the value which will trigger the watchpoint.
1806 1.1 christos On exit, CONDITION_MODE will hold the enable bits for the DVC, and
1807 1.1 christos CONDITION_VALUE will hold the value which should be put in the
1808 1.1 christos DVC register. */
1809 1.1 christos static void
1810 1.1 christos calculate_dvc (CORE_ADDR addr, int len, CORE_ADDR data_value,
1811 1.1 christos uint32_t *condition_mode, uint64_t *condition_value)
1812 1.1 christos {
1813 1.1 christos int i, num_byte_enable, align_offset, num_bytes_off_dvc,
1814 1.1 christos rightmost_enabled_byte;
1815 1.1 christos CORE_ADDR addr_end_data, addr_end_dvc;
1816 1.1 christos
1817 1.1 christos /* The DVC register compares bytes within fixed-length windows which
1818 1.1 christos are word-aligned, with length equal to that of the DVC register.
1819 1.1 christos We need to calculate where our watch region is relative to that
1820 1.1 christos window and enable comparison of the bytes which fall within it. */
1821 1.1 christos
1822 1.1 christos align_offset = addr % hwdebug_info.sizeof_condition;
1823 1.1 christos addr_end_data = addr + len;
1824 1.1 christos addr_end_dvc = (addr - align_offset
1825 1.1 christos + hwdebug_info.sizeof_condition);
1826 1.1 christos num_bytes_off_dvc = (addr_end_data > addr_end_dvc)?
1827 1.1 christos addr_end_data - addr_end_dvc : 0;
1828 1.1 christos num_byte_enable = len - num_bytes_off_dvc;
1829 1.1 christos /* Here, bytes are numbered from right to left. */
1830 1.1 christos rightmost_enabled_byte = (addr_end_data < addr_end_dvc)?
1831 1.1 christos addr_end_dvc - addr_end_data : 0;
1832 1.1 christos
1833 1.1 christos *condition_mode = PPC_BREAKPOINT_CONDITION_AND;
1834 1.1 christos for (i = 0; i < num_byte_enable; i++)
1835 1.1 christos *condition_mode
1836 1.1 christos |= PPC_BREAKPOINT_CONDITION_BE (i + rightmost_enabled_byte);
1837 1.1 christos
1838 1.1 christos /* Now we need to match the position within the DVC of the comparison
1839 1.1 christos value with where the watch region is relative to the window
1840 1.1 christos (i.e., the ALIGN_OFFSET). */
1841 1.1 christos
1842 1.1 christos *condition_value = ((uint64_t) data_value >> num_bytes_off_dvc * 8
1843 1.1 christos << rightmost_enabled_byte * 8);
1844 1.1 christos }
1845 1.1 christos
1846 1.1 christos /* Return the number of memory locations that need to be accessed to
1847 1.1 christos evaluate the expression which generated the given value chain.
1848 1.1 christos Returns -1 if there's any register access involved, or if there are
1849 1.1 christos other kinds of values which are not acceptable in a condition
1850 1.1 christos expression (e.g., lval_computed or lval_internalvar). */
1851 1.1 christos static int
1852 1.1 christos num_memory_accesses (struct value *v)
1853 1.1 christos {
1854 1.1 christos int found_memory_cnt = 0;
1855 1.1 christos struct value *head = v;
1856 1.1 christos
1857 1.1 christos /* The idea here is that evaluating an expression generates a series
1858 1.1 christos of values, one holding the value of every subexpression. (The
1859 1.1 christos expression a*b+c has five subexpressions: a, b, a*b, c, and
1860 1.1 christos a*b+c.) GDB's values hold almost enough information to establish
1861 1.1 christos the criteria given above --- they identify memory lvalues,
1862 1.1 christos register lvalues, computed values, etcetera. So we can evaluate
1863 1.1 christos the expression, and then scan the chain of values that leaves
1864 1.1 christos behind to determine the memory locations involved in the evaluation
1865 1.1 christos of an expression.
1866 1.1 christos
1867 1.1 christos However, I don't think that the values returned by inferior
1868 1.1 christos function calls are special in any way. So this function may not
1869 1.1 christos notice that an expression contains an inferior function call.
1870 1.1 christos FIXME. */
1871 1.1 christos
1872 1.1 christos for (; v; v = value_next (v))
1873 1.1 christos {
1874 1.1 christos /* Constants and values from the history are fine. */
1875 1.1 christos if (VALUE_LVAL (v) == not_lval || deprecated_value_modifiable (v) == 0)
1876 1.1 christos continue;
1877 1.1 christos else if (VALUE_LVAL (v) == lval_memory)
1878 1.1 christos {
1879 1.1 christos /* A lazy memory lvalue is one that GDB never needed to fetch;
1880 1.1 christos we either just used its address (e.g., `a' in `a.b') or
1881 1.1 christos we never needed it at all (e.g., `a' in `a,b'). */
1882 1.1 christos if (!value_lazy (v))
1883 1.1 christos found_memory_cnt++;
1884 1.1 christos }
1885 1.1 christos /* Other kinds of values are not fine. */
1886 1.1 christos else
1887 1.1 christos return -1;
1888 1.1 christos }
1889 1.1 christos
1890 1.1 christos return found_memory_cnt;
1891 1.1 christos }
1892 1.1 christos
1893 1.1 christos /* Verifies whether the expression COND can be implemented using the
1894 1.1 christos DVC (Data Value Compare) register in BookE processors. The expression
1895 1.1 christos must test the watch value for equality with a constant expression.
1896 1.1 christos If the function returns 1, DATA_VALUE will contain the constant against
1897 1.1 christos which the watch value should be compared and LEN will contain the size
1898 1.1 christos of the constant. */
1899 1.1 christos static int
1900 1.1 christos check_condition (CORE_ADDR watch_addr, struct expression *cond,
1901 1.1 christos CORE_ADDR *data_value, int *len)
1902 1.1 christos {
1903 1.1 christos int pc = 1, num_accesses_left, num_accesses_right;
1904 1.1 christos struct value *left_val, *right_val, *left_chain, *right_chain;
1905 1.1 christos
1906 1.1 christos if (cond->elts[0].opcode != BINOP_EQUAL)
1907 1.1 christos return 0;
1908 1.1 christos
1909 1.1 christos fetch_subexp_value (cond, &pc, &left_val, NULL, &left_chain, 0);
1910 1.1 christos num_accesses_left = num_memory_accesses (left_chain);
1911 1.1 christos
1912 1.1 christos if (left_val == NULL || num_accesses_left < 0)
1913 1.1 christos {
1914 1.1 christos free_value_chain (left_chain);
1915 1.1 christos
1916 1.1 christos return 0;
1917 1.1 christos }
1918 1.1 christos
1919 1.1 christos fetch_subexp_value (cond, &pc, &right_val, NULL, &right_chain, 0);
1920 1.1 christos num_accesses_right = num_memory_accesses (right_chain);
1921 1.1 christos
1922 1.1 christos if (right_val == NULL || num_accesses_right < 0)
1923 1.1 christos {
1924 1.1 christos free_value_chain (left_chain);
1925 1.1 christos free_value_chain (right_chain);
1926 1.1 christos
1927 1.1 christos return 0;
1928 1.1 christos }
1929 1.1 christos
1930 1.1 christos if (num_accesses_left == 1 && num_accesses_right == 0
1931 1.1 christos && VALUE_LVAL (left_val) == lval_memory
1932 1.1 christos && value_address (left_val) == watch_addr)
1933 1.1 christos {
1934 1.1 christos *data_value = value_as_long (right_val);
1935 1.1 christos
1936 1.1 christos /* DATA_VALUE is the constant in RIGHT_VAL, but actually has
1937 1.1 christos the same type as the memory region referenced by LEFT_VAL. */
1938 1.1 christos *len = TYPE_LENGTH (check_typedef (value_type (left_val)));
1939 1.1 christos }
1940 1.1 christos else if (num_accesses_left == 0 && num_accesses_right == 1
1941 1.1 christos && VALUE_LVAL (right_val) == lval_memory
1942 1.1 christos && value_address (right_val) == watch_addr)
1943 1.1 christos {
1944 1.1 christos *data_value = value_as_long (left_val);
1945 1.1 christos
1946 1.1 christos /* DATA_VALUE is the constant in LEFT_VAL, but actually has
1947 1.1 christos the same type as the memory region referenced by RIGHT_VAL. */
1948 1.1 christos *len = TYPE_LENGTH (check_typedef (value_type (right_val)));
1949 1.1 christos }
1950 1.1 christos else
1951 1.1 christos {
1952 1.1 christos free_value_chain (left_chain);
1953 1.1 christos free_value_chain (right_chain);
1954 1.1 christos
1955 1.1 christos return 0;
1956 1.1 christos }
1957 1.1 christos
1958 1.1 christos free_value_chain (left_chain);
1959 1.1 christos free_value_chain (right_chain);
1960 1.1 christos
1961 1.1 christos return 1;
1962 1.1 christos }
1963 1.1 christos
1964 1.1 christos /* Return non-zero if the target is capable of using hardware to evaluate
1965 1.1 christos the condition expression, thus only triggering the watchpoint when it is
1966 1.1 christos true. */
1967 1.1 christos static int
1968 1.3 christos ppc_linux_can_accel_watchpoint_condition (struct target_ops *self,
1969 1.3 christos CORE_ADDR addr, int len, int rw,
1970 1.1 christos struct expression *cond)
1971 1.1 christos {
1972 1.1 christos CORE_ADDR data_value;
1973 1.1 christos
1974 1.1 christos return (have_ptrace_hwdebug_interface ()
1975 1.1 christos && hwdebug_info.num_condition_regs > 0
1976 1.1 christos && check_condition (addr, cond, &data_value, &len));
1977 1.1 christos }
1978 1.1 christos
1979 1.1 christos /* Set up P with the parameters necessary to request a watchpoint covering
1980 1.1 christos LEN bytes starting at ADDR and if possible with condition expression COND
1981 1.1 christos evaluated by hardware. INSERT tells if we are creating a request for
1982 1.1 christos inserting or removing the watchpoint. */
1983 1.1 christos
1984 1.1 christos static void
1985 1.1 christos create_watchpoint_request (struct ppc_hw_breakpoint *p, CORE_ADDR addr,
1986 1.6 christos int len, enum target_hw_bp_type type,
1987 1.6 christos struct expression *cond, int insert)
1988 1.1 christos {
1989 1.1 christos if (len == 1
1990 1.1 christos || !(hwdebug_info.features & PPC_DEBUG_FEATURE_DATA_BP_RANGE))
1991 1.1 christos {
1992 1.1 christos int use_condition;
1993 1.1 christos CORE_ADDR data_value;
1994 1.1 christos
1995 1.1 christos use_condition = (insert? can_use_watchpoint_cond_accel ()
1996 1.1 christos : hwdebug_info.num_condition_regs > 0);
1997 1.1 christos if (cond && use_condition && check_condition (addr, cond,
1998 1.1 christos &data_value, &len))
1999 1.1 christos calculate_dvc (addr, len, data_value, &p->condition_mode,
2000 1.1 christos &p->condition_value);
2001 1.1 christos else
2002 1.1 christos {
2003 1.1 christos p->condition_mode = PPC_BREAKPOINT_CONDITION_NONE;
2004 1.1 christos p->condition_value = 0;
2005 1.1 christos }
2006 1.1 christos
2007 1.1 christos p->addr_mode = PPC_BREAKPOINT_MODE_EXACT;
2008 1.1 christos p->addr2 = 0;
2009 1.1 christos }
2010 1.1 christos else
2011 1.1 christos {
2012 1.1 christos p->addr_mode = PPC_BREAKPOINT_MODE_RANGE_INCLUSIVE;
2013 1.1 christos p->condition_mode = PPC_BREAKPOINT_CONDITION_NONE;
2014 1.1 christos p->condition_value = 0;
2015 1.1 christos
2016 1.1 christos /* The watchpoint will trigger if the address of the memory access is
2017 1.1 christos within the defined range, as follows: p->addr <= address < p->addr2.
2018 1.1 christos
2019 1.1 christos Note that the above sentence just documents how ptrace interprets
2020 1.1 christos its arguments; the watchpoint is set to watch the range defined by
2021 1.1 christos the user _inclusively_, as specified by the user interface. */
2022 1.1 christos p->addr2 = (uint64_t) addr + len;
2023 1.1 christos }
2024 1.1 christos
2025 1.1 christos p->version = PPC_DEBUG_CURRENT_VERSION;
2026 1.6 christos p->trigger_type = get_trigger_type (type);
2027 1.1 christos p->addr = (uint64_t) addr;
2028 1.1 christos }
2029 1.1 christos
2030 1.1 christos static int
2031 1.6 christos ppc_linux_insert_watchpoint (struct target_ops *self, CORE_ADDR addr, int len,
2032 1.6 christos enum target_hw_bp_type type,
2033 1.1 christos struct expression *cond)
2034 1.1 christos {
2035 1.1 christos struct lwp_info *lp;
2036 1.1 christos int ret = -1;
2037 1.1 christos
2038 1.1 christos if (have_ptrace_hwdebug_interface ())
2039 1.1 christos {
2040 1.1 christos struct ppc_hw_breakpoint p;
2041 1.1 christos
2042 1.6 christos create_watchpoint_request (&p, addr, len, type, cond, 1);
2043 1.1 christos
2044 1.1 christos ALL_LWPS (lp)
2045 1.1 christos hwdebug_insert_point (&p, ptid_get_lwp (lp->ptid));
2046 1.1 christos
2047 1.1 christos ret = 0;
2048 1.1 christos }
2049 1.1 christos else
2050 1.1 christos {
2051 1.1 christos long dabr_value;
2052 1.1 christos long read_mode, write_mode;
2053 1.1 christos
2054 1.1 christos if (ppc_linux_get_hwcap () & PPC_FEATURE_BOOKE)
2055 1.1 christos {
2056 1.1 christos /* PowerPC 440 requires only the read/write flags to be passed
2057 1.1 christos to the kernel. */
2058 1.1 christos read_mode = 1;
2059 1.1 christos write_mode = 2;
2060 1.1 christos }
2061 1.1 christos else
2062 1.1 christos {
2063 1.1 christos /* PowerPC 970 and other DABR-based processors are required to pass
2064 1.1 christos the Breakpoint Translation bit together with the flags. */
2065 1.1 christos read_mode = 5;
2066 1.1 christos write_mode = 6;
2067 1.1 christos }
2068 1.1 christos
2069 1.1 christos dabr_value = addr & ~(read_mode | write_mode);
2070 1.6 christos switch (type)
2071 1.1 christos {
2072 1.1 christos case hw_read:
2073 1.1 christos /* Set read and translate bits. */
2074 1.1 christos dabr_value |= read_mode;
2075 1.1 christos break;
2076 1.1 christos case hw_write:
2077 1.1 christos /* Set write and translate bits. */
2078 1.1 christos dabr_value |= write_mode;
2079 1.1 christos break;
2080 1.1 christos case hw_access:
2081 1.1 christos /* Set read, write and translate bits. */
2082 1.1 christos dabr_value |= read_mode | write_mode;
2083 1.1 christos break;
2084 1.1 christos }
2085 1.1 christos
2086 1.1 christos saved_dabr_value = dabr_value;
2087 1.1 christos
2088 1.1 christos ALL_LWPS (lp)
2089 1.1 christos if (ptrace (PTRACE_SET_DEBUGREG, ptid_get_lwp (lp->ptid), 0,
2090 1.1 christos saved_dabr_value) < 0)
2091 1.1 christos return -1;
2092 1.1 christos
2093 1.1 christos ret = 0;
2094 1.1 christos }
2095 1.1 christos
2096 1.1 christos return ret;
2097 1.1 christos }
2098 1.1 christos
2099 1.1 christos static int
2100 1.6 christos ppc_linux_remove_watchpoint (struct target_ops *self, CORE_ADDR addr, int len,
2101 1.6 christos enum target_hw_bp_type type,
2102 1.1 christos struct expression *cond)
2103 1.1 christos {
2104 1.1 christos struct lwp_info *lp;
2105 1.1 christos int ret = -1;
2106 1.1 christos
2107 1.1 christos if (have_ptrace_hwdebug_interface ())
2108 1.1 christos {
2109 1.1 christos struct ppc_hw_breakpoint p;
2110 1.1 christos
2111 1.6 christos create_watchpoint_request (&p, addr, len, type, cond, 0);
2112 1.1 christos
2113 1.1 christos ALL_LWPS (lp)
2114 1.1 christos hwdebug_remove_point (&p, ptid_get_lwp (lp->ptid));
2115 1.1 christos
2116 1.1 christos ret = 0;
2117 1.1 christos }
2118 1.1 christos else
2119 1.1 christos {
2120 1.1 christos saved_dabr_value = 0;
2121 1.1 christos ALL_LWPS (lp)
2122 1.1 christos if (ptrace (PTRACE_SET_DEBUGREG, ptid_get_lwp (lp->ptid), 0,
2123 1.1 christos saved_dabr_value) < 0)
2124 1.1 christos return -1;
2125 1.1 christos
2126 1.1 christos ret = 0;
2127 1.1 christos }
2128 1.1 christos
2129 1.1 christos return ret;
2130 1.1 christos }
2131 1.1 christos
2132 1.1 christos static void
2133 1.1 christos ppc_linux_new_thread (struct lwp_info *lp)
2134 1.1 christos {
2135 1.1 christos int tid = ptid_get_lwp (lp->ptid);
2136 1.1 christos
2137 1.1 christos if (have_ptrace_hwdebug_interface ())
2138 1.1 christos {
2139 1.1 christos int i;
2140 1.1 christos struct thread_points *p;
2141 1.1 christos struct hw_break_tuple *hw_breaks;
2142 1.1 christos
2143 1.1 christos if (VEC_empty (thread_points_p, ppc_threads))
2144 1.1 christos return;
2145 1.1 christos
2146 1.1 christos /* Get a list of breakpoints from any thread. */
2147 1.1 christos p = VEC_last (thread_points_p, ppc_threads);
2148 1.1 christos hw_breaks = p->hw_breaks;
2149 1.1 christos
2150 1.1 christos /* Copy that thread's breakpoints and watchpoints to the new thread. */
2151 1.1 christos for (i = 0; i < max_slots_number; i++)
2152 1.1 christos if (hw_breaks[i].hw_break)
2153 1.1 christos {
2154 1.1 christos /* Older kernels did not make new threads inherit their parent
2155 1.1 christos thread's debug state, so we always clear the slot and replicate
2156 1.1 christos the debug state ourselves, ensuring compatibility with all
2157 1.1 christos kernels. */
2158 1.1 christos
2159 1.1 christos /* The ppc debug resource accounting is done through "slots".
2160 1.1 christos Ask the kernel the deallocate this specific *point's slot. */
2161 1.1 christos ptrace (PPC_PTRACE_DELHWDEBUG, tid, 0, hw_breaks[i].slot);
2162 1.1 christos
2163 1.1 christos hwdebug_insert_point (hw_breaks[i].hw_break, tid);
2164 1.1 christos }
2165 1.1 christos }
2166 1.1 christos else
2167 1.1 christos ptrace (PTRACE_SET_DEBUGREG, tid, 0, saved_dabr_value);
2168 1.1 christos }
2169 1.1 christos
2170 1.1 christos static void
2171 1.1 christos ppc_linux_thread_exit (struct thread_info *tp, int silent)
2172 1.1 christos {
2173 1.1 christos int i;
2174 1.1 christos int tid = ptid_get_lwp (tp->ptid);
2175 1.1 christos struct hw_break_tuple *hw_breaks;
2176 1.1 christos struct thread_points *t = NULL, *p;
2177 1.1 christos
2178 1.1 christos if (!have_ptrace_hwdebug_interface ())
2179 1.1 christos return;
2180 1.1 christos
2181 1.1 christos for (i = 0; VEC_iterate (thread_points_p, ppc_threads, i, p); i++)
2182 1.1 christos if (p->tid == tid)
2183 1.1 christos {
2184 1.1 christos t = p;
2185 1.1 christos break;
2186 1.1 christos }
2187 1.1 christos
2188 1.1 christos if (t == NULL)
2189 1.1 christos return;
2190 1.1 christos
2191 1.1 christos VEC_unordered_remove (thread_points_p, ppc_threads, i);
2192 1.1 christos
2193 1.1 christos hw_breaks = t->hw_breaks;
2194 1.1 christos
2195 1.1 christos for (i = 0; i < max_slots_number; i++)
2196 1.1 christos if (hw_breaks[i].hw_break)
2197 1.1 christos xfree (hw_breaks[i].hw_break);
2198 1.1 christos
2199 1.1 christos xfree (t->hw_breaks);
2200 1.1 christos xfree (t);
2201 1.1 christos }
2202 1.1 christos
2203 1.1 christos static int
2204 1.1 christos ppc_linux_stopped_data_address (struct target_ops *target, CORE_ADDR *addr_p)
2205 1.1 christos {
2206 1.1 christos siginfo_t siginfo;
2207 1.1 christos
2208 1.1 christos if (!linux_nat_get_siginfo (inferior_ptid, &siginfo))
2209 1.1 christos return 0;
2210 1.1 christos
2211 1.1 christos if (siginfo.si_signo != SIGTRAP
2212 1.1 christos || (siginfo.si_code & 0xffff) != 0x0004 /* TRAP_HWBKPT */)
2213 1.1 christos return 0;
2214 1.1 christos
2215 1.1 christos if (have_ptrace_hwdebug_interface ())
2216 1.1 christos {
2217 1.1 christos int i;
2218 1.1 christos struct thread_points *t;
2219 1.1 christos struct hw_break_tuple *hw_breaks;
2220 1.1 christos /* The index (or slot) of the *point is passed in the si_errno field. */
2221 1.1 christos int slot = siginfo.si_errno;
2222 1.1 christos
2223 1.1 christos t = hwdebug_find_thread_points_by_tid (ptid_get_lwp (inferior_ptid), 0);
2224 1.1 christos
2225 1.1 christos /* Find out if this *point is a hardware breakpoint.
2226 1.1 christos If so, we should return 0. */
2227 1.1 christos if (t)
2228 1.1 christos {
2229 1.1 christos hw_breaks = t->hw_breaks;
2230 1.1 christos for (i = 0; i < max_slots_number; i++)
2231 1.1 christos if (hw_breaks[i].hw_break && hw_breaks[i].slot == slot
2232 1.1 christos && hw_breaks[i].hw_break->trigger_type
2233 1.1 christos == PPC_BREAKPOINT_TRIGGER_EXECUTE)
2234 1.1 christos return 0;
2235 1.1 christos }
2236 1.1 christos }
2237 1.1 christos
2238 1.1 christos *addr_p = (CORE_ADDR) (uintptr_t) siginfo.si_addr;
2239 1.1 christos return 1;
2240 1.1 christos }
2241 1.1 christos
2242 1.1 christos static int
2243 1.3 christos ppc_linux_stopped_by_watchpoint (struct target_ops *ops)
2244 1.1 christos {
2245 1.1 christos CORE_ADDR addr;
2246 1.3 christos return ppc_linux_stopped_data_address (ops, &addr);
2247 1.1 christos }
2248 1.1 christos
2249 1.1 christos static int
2250 1.1 christos ppc_linux_watchpoint_addr_within_range (struct target_ops *target,
2251 1.1 christos CORE_ADDR addr,
2252 1.1 christos CORE_ADDR start, int length)
2253 1.1 christos {
2254 1.1 christos int mask;
2255 1.1 christos
2256 1.1 christos if (have_ptrace_hwdebug_interface ()
2257 1.1 christos && ppc_linux_get_hwcap () & PPC_FEATURE_BOOKE)
2258 1.1 christos return start <= addr && start + length >= addr;
2259 1.1 christos else if (ppc_linux_get_hwcap () & PPC_FEATURE_BOOKE)
2260 1.1 christos mask = 3;
2261 1.1 christos else
2262 1.1 christos mask = 7;
2263 1.1 christos
2264 1.1 christos addr &= ~mask;
2265 1.1 christos
2266 1.1 christos /* Check whether [start, start+length-1] intersects [addr, addr+mask]. */
2267 1.1 christos return start <= addr + mask && start + length - 1 >= addr;
2268 1.1 christos }
2269 1.1 christos
2270 1.1 christos /* Return the number of registers needed for a masked hardware watchpoint. */
2271 1.1 christos
2272 1.1 christos static int
2273 1.1 christos ppc_linux_masked_watch_num_registers (struct target_ops *target,
2274 1.1 christos CORE_ADDR addr, CORE_ADDR mask)
2275 1.1 christos {
2276 1.1 christos if (!have_ptrace_hwdebug_interface ()
2277 1.1 christos || (hwdebug_info.features & PPC_DEBUG_FEATURE_DATA_BP_MASK) == 0)
2278 1.1 christos return -1;
2279 1.1 christos else if ((mask & 0xC0000000) != 0xC0000000)
2280 1.1 christos {
2281 1.1 christos warning (_("The given mask covers kernel address space "
2282 1.1 christos "and cannot be used.\n"));
2283 1.1 christos
2284 1.1 christos return -2;
2285 1.1 christos }
2286 1.1 christos else
2287 1.1 christos return 2;
2288 1.1 christos }
2289 1.1 christos
2290 1.1 christos static void
2291 1.1 christos ppc_linux_store_inferior_registers (struct target_ops *ops,
2292 1.1 christos struct regcache *regcache, int regno)
2293 1.1 christos {
2294 1.1 christos /* Overload thread id onto process id. */
2295 1.1 christos int tid = ptid_get_lwp (inferior_ptid);
2296 1.1 christos
2297 1.1 christos /* No thread id, just use process id. */
2298 1.1 christos if (tid == 0)
2299 1.1 christos tid = ptid_get_pid (inferior_ptid);
2300 1.1 christos
2301 1.1 christos if (regno >= 0)
2302 1.1 christos store_register (regcache, tid, regno);
2303 1.1 christos else
2304 1.1 christos store_ppc_registers (regcache, tid);
2305 1.1 christos }
2306 1.1 christos
2307 1.1 christos /* Functions for transferring registers between a gregset_t or fpregset_t
2308 1.1 christos (see sys/ucontext.h) and gdb's regcache. The word size is that used
2309 1.1 christos by the ptrace interface, not the current program's ABI. Eg. if a
2310 1.1 christos powerpc64-linux gdb is being used to debug a powerpc32-linux app, we
2311 1.1 christos read or write 64-bit gregsets. This is to suit the host libthread_db. */
2312 1.1 christos
2313 1.1 christos void
2314 1.1 christos supply_gregset (struct regcache *regcache, const gdb_gregset_t *gregsetp)
2315 1.1 christos {
2316 1.1 christos const struct regset *regset = ppc_linux_gregset (sizeof (long));
2317 1.1 christos
2318 1.1 christos ppc_supply_gregset (regset, regcache, -1, gregsetp, sizeof (*gregsetp));
2319 1.1 christos }
2320 1.1 christos
2321 1.1 christos void
2322 1.1 christos fill_gregset (const struct regcache *regcache,
2323 1.1 christos gdb_gregset_t *gregsetp, int regno)
2324 1.1 christos {
2325 1.1 christos const struct regset *regset = ppc_linux_gregset (sizeof (long));
2326 1.1 christos
2327 1.1 christos if (regno == -1)
2328 1.1 christos memset (gregsetp, 0, sizeof (*gregsetp));
2329 1.1 christos ppc_collect_gregset (regset, regcache, regno, gregsetp, sizeof (*gregsetp));
2330 1.1 christos }
2331 1.1 christos
2332 1.1 christos void
2333 1.1 christos supply_fpregset (struct regcache *regcache, const gdb_fpregset_t * fpregsetp)
2334 1.1 christos {
2335 1.1 christos const struct regset *regset = ppc_linux_fpregset ();
2336 1.1 christos
2337 1.1 christos ppc_supply_fpregset (regset, regcache, -1,
2338 1.1 christos fpregsetp, sizeof (*fpregsetp));
2339 1.1 christos }
2340 1.1 christos
2341 1.1 christos void
2342 1.1 christos fill_fpregset (const struct regcache *regcache,
2343 1.1 christos gdb_fpregset_t *fpregsetp, int regno)
2344 1.1 christos {
2345 1.1 christos const struct regset *regset = ppc_linux_fpregset ();
2346 1.1 christos
2347 1.1 christos ppc_collect_fpregset (regset, regcache, regno,
2348 1.1 christos fpregsetp, sizeof (*fpregsetp));
2349 1.1 christos }
2350 1.1 christos
2351 1.1 christos static int
2352 1.1 christos ppc_linux_target_wordsize (void)
2353 1.1 christos {
2354 1.1 christos int wordsize = 4;
2355 1.1 christos
2356 1.1 christos /* Check for 64-bit inferior process. This is the case when the host is
2357 1.1 christos 64-bit, and in addition the top bit of the MSR register is set. */
2358 1.1 christos #ifdef __powerpc64__
2359 1.1 christos long msr;
2360 1.1 christos
2361 1.1 christos int tid = ptid_get_lwp (inferior_ptid);
2362 1.1 christos if (tid == 0)
2363 1.1 christos tid = ptid_get_pid (inferior_ptid);
2364 1.1 christos
2365 1.1 christos errno = 0;
2366 1.1 christos msr = (long) ptrace (PTRACE_PEEKUSER, tid, PT_MSR * 8, 0);
2367 1.5 christos if (errno == 0 && ppc64_64bit_inferior_p (msr))
2368 1.1 christos wordsize = 8;
2369 1.1 christos #endif
2370 1.1 christos
2371 1.1 christos return wordsize;
2372 1.1 christos }
2373 1.1 christos
2374 1.1 christos static int
2375 1.1 christos ppc_linux_auxv_parse (struct target_ops *ops, gdb_byte **readptr,
2376 1.1 christos gdb_byte *endptr, CORE_ADDR *typep, CORE_ADDR *valp)
2377 1.1 christos {
2378 1.1 christos int sizeof_auxv_field = ppc_linux_target_wordsize ();
2379 1.1 christos enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
2380 1.1 christos gdb_byte *ptr = *readptr;
2381 1.1 christos
2382 1.1 christos if (endptr == ptr)
2383 1.1 christos return 0;
2384 1.1 christos
2385 1.1 christos if (endptr - ptr < sizeof_auxv_field * 2)
2386 1.1 christos return -1;
2387 1.1 christos
2388 1.1 christos *typep = extract_unsigned_integer (ptr, sizeof_auxv_field, byte_order);
2389 1.1 christos ptr += sizeof_auxv_field;
2390 1.1 christos *valp = extract_unsigned_integer (ptr, sizeof_auxv_field, byte_order);
2391 1.1 christos ptr += sizeof_auxv_field;
2392 1.1 christos
2393 1.1 christos *readptr = ptr;
2394 1.1 christos return 1;
2395 1.1 christos }
2396 1.1 christos
2397 1.1 christos static const struct target_desc *
2398 1.1 christos ppc_linux_read_description (struct target_ops *ops)
2399 1.1 christos {
2400 1.1 christos int altivec = 0;
2401 1.1 christos int vsx = 0;
2402 1.1 christos int isa205 = 0;
2403 1.1 christos int cell = 0;
2404 1.1 christos
2405 1.1 christos int tid = ptid_get_lwp (inferior_ptid);
2406 1.1 christos if (tid == 0)
2407 1.1 christos tid = ptid_get_pid (inferior_ptid);
2408 1.1 christos
2409 1.1 christos if (have_ptrace_getsetevrregs)
2410 1.1 christos {
2411 1.1 christos struct gdb_evrregset_t evrregset;
2412 1.1 christos
2413 1.1 christos if (ptrace (PTRACE_GETEVRREGS, tid, 0, &evrregset) >= 0)
2414 1.1 christos return tdesc_powerpc_e500l;
2415 1.1 christos
2416 1.1 christos /* EIO means that the PTRACE_GETEVRREGS request isn't supported.
2417 1.1 christos Anything else needs to be reported. */
2418 1.1 christos else if (errno != EIO)
2419 1.1 christos perror_with_name (_("Unable to fetch SPE registers"));
2420 1.1 christos }
2421 1.1 christos
2422 1.6 christos if (have_ptrace_getsetvsxregs
2423 1.6 christos && (ppc_linux_get_hwcap () & PPC_FEATURE_HAS_VSX))
2424 1.1 christos {
2425 1.1 christos gdb_vsxregset_t vsxregset;
2426 1.1 christos
2427 1.1 christos if (ptrace (PTRACE_GETVSXREGS, tid, 0, &vsxregset) >= 0)
2428 1.1 christos vsx = 1;
2429 1.1 christos
2430 1.1 christos /* EIO means that the PTRACE_GETVSXREGS request isn't supported.
2431 1.1 christos Anything else needs to be reported. */
2432 1.1 christos else if (errno != EIO)
2433 1.1 christos perror_with_name (_("Unable to fetch VSX registers"));
2434 1.1 christos }
2435 1.1 christos
2436 1.6 christos if (have_ptrace_getvrregs
2437 1.6 christos && (ppc_linux_get_hwcap () & PPC_FEATURE_HAS_ALTIVEC))
2438 1.1 christos {
2439 1.1 christos gdb_vrregset_t vrregset;
2440 1.1 christos
2441 1.1 christos if (ptrace (PTRACE_GETVRREGS, tid, 0, &vrregset) >= 0)
2442 1.1 christos altivec = 1;
2443 1.1 christos
2444 1.1 christos /* EIO means that the PTRACE_GETVRREGS request isn't supported.
2445 1.1 christos Anything else needs to be reported. */
2446 1.1 christos else if (errno != EIO)
2447 1.1 christos perror_with_name (_("Unable to fetch AltiVec registers"));
2448 1.1 christos }
2449 1.1 christos
2450 1.1 christos /* Power ISA 2.05 (implemented by Power 6 and newer processors) increases
2451 1.1 christos the FPSCR from 32 bits to 64 bits. Even though Power 7 supports this
2452 1.1 christos ISA version, it doesn't have PPC_FEATURE_ARCH_2_05 set, only
2453 1.1 christos PPC_FEATURE_ARCH_2_06. Since for now the only bits used in the higher
2454 1.1 christos half of the register are for Decimal Floating Point, we check if that
2455 1.1 christos feature is available to decide the size of the FPSCR. */
2456 1.1 christos if (ppc_linux_get_hwcap () & PPC_FEATURE_HAS_DFP)
2457 1.1 christos isa205 = 1;
2458 1.1 christos
2459 1.1 christos if (ppc_linux_get_hwcap () & PPC_FEATURE_CELL)
2460 1.1 christos cell = 1;
2461 1.1 christos
2462 1.1 christos if (ppc_linux_target_wordsize () == 8)
2463 1.1 christos {
2464 1.1 christos if (cell)
2465 1.1 christos return tdesc_powerpc_cell64l;
2466 1.1 christos else if (vsx)
2467 1.1 christos return isa205? tdesc_powerpc_isa205_vsx64l : tdesc_powerpc_vsx64l;
2468 1.1 christos else if (altivec)
2469 1.1 christos return isa205
2470 1.1 christos ? tdesc_powerpc_isa205_altivec64l : tdesc_powerpc_altivec64l;
2471 1.1 christos
2472 1.1 christos return isa205? tdesc_powerpc_isa205_64l : tdesc_powerpc_64l;
2473 1.1 christos }
2474 1.1 christos
2475 1.1 christos if (cell)
2476 1.1 christos return tdesc_powerpc_cell32l;
2477 1.1 christos else if (vsx)
2478 1.1 christos return isa205? tdesc_powerpc_isa205_vsx32l : tdesc_powerpc_vsx32l;
2479 1.1 christos else if (altivec)
2480 1.1 christos return isa205? tdesc_powerpc_isa205_altivec32l : tdesc_powerpc_altivec32l;
2481 1.1 christos
2482 1.1 christos return isa205? tdesc_powerpc_isa205_32l : tdesc_powerpc_32l;
2483 1.1 christos }
2484 1.1 christos
2485 1.1 christos void _initialize_ppc_linux_nat (void);
2486 1.1 christos
2487 1.1 christos void
2488 1.1 christos _initialize_ppc_linux_nat (void)
2489 1.1 christos {
2490 1.1 christos struct target_ops *t;
2491 1.1 christos
2492 1.1 christos /* Fill in the generic GNU/Linux methods. */
2493 1.1 christos t = linux_target ();
2494 1.1 christos
2495 1.1 christos /* Add our register access methods. */
2496 1.1 christos t->to_fetch_registers = ppc_linux_fetch_inferior_registers;
2497 1.1 christos t->to_store_registers = ppc_linux_store_inferior_registers;
2498 1.1 christos
2499 1.1 christos /* Add our breakpoint/watchpoint methods. */
2500 1.1 christos t->to_can_use_hw_breakpoint = ppc_linux_can_use_hw_breakpoint;
2501 1.1 christos t->to_insert_hw_breakpoint = ppc_linux_insert_hw_breakpoint;
2502 1.1 christos t->to_remove_hw_breakpoint = ppc_linux_remove_hw_breakpoint;
2503 1.1 christos t->to_region_ok_for_hw_watchpoint = ppc_linux_region_ok_for_hw_watchpoint;
2504 1.1 christos t->to_insert_watchpoint = ppc_linux_insert_watchpoint;
2505 1.1 christos t->to_remove_watchpoint = ppc_linux_remove_watchpoint;
2506 1.1 christos t->to_insert_mask_watchpoint = ppc_linux_insert_mask_watchpoint;
2507 1.1 christos t->to_remove_mask_watchpoint = ppc_linux_remove_mask_watchpoint;
2508 1.1 christos t->to_stopped_by_watchpoint = ppc_linux_stopped_by_watchpoint;
2509 1.1 christos t->to_stopped_data_address = ppc_linux_stopped_data_address;
2510 1.1 christos t->to_watchpoint_addr_within_range = ppc_linux_watchpoint_addr_within_range;
2511 1.1 christos t->to_can_accel_watchpoint_condition
2512 1.1 christos = ppc_linux_can_accel_watchpoint_condition;
2513 1.1 christos t->to_masked_watch_num_registers = ppc_linux_masked_watch_num_registers;
2514 1.1 christos t->to_ranged_break_num_registers = ppc_linux_ranged_break_num_registers;
2515 1.1 christos
2516 1.1 christos t->to_read_description = ppc_linux_read_description;
2517 1.1 christos t->to_auxv_parse = ppc_linux_auxv_parse;
2518 1.1 christos
2519 1.1 christos observer_attach_thread_exit (ppc_linux_thread_exit);
2520 1.1 christos
2521 1.1 christos /* Register the target. */
2522 1.1 christos linux_nat_add_target (t);
2523 1.1 christos linux_nat_set_new_thread (t, ppc_linux_new_thread);
2524 1.1 christos }
2525