arm-linux-nat.c revision 1.12 1 1.1 christos /* GNU/Linux on ARM native support.
2 1.11 christos Copyright (C) 1999-2024 Free Software Foundation, Inc.
3 1.1 christos
4 1.1 christos This file is part of GDB.
5 1.1 christos
6 1.1 christos This program is free software; you can redistribute it and/or modify
7 1.1 christos it under the terms of the GNU General Public License as published by
8 1.1 christos the Free Software Foundation; either version 3 of the License, or
9 1.1 christos (at your option) any later version.
10 1.1 christos
11 1.1 christos This program is distributed in the hope that it will be useful,
12 1.1 christos but WITHOUT ANY WARRANTY; without even the implied warranty of
13 1.1 christos MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 1.1 christos GNU General Public License for more details.
15 1.1 christos
16 1.1 christos You should have received a copy of the GNU General Public License
17 1.1 christos along with this program. If not, see <http://www.gnu.org/licenses/>. */
18 1.1 christos
19 1.1 christos #include "inferior.h"
20 1.1 christos #include "gdbcore.h"
21 1.1 christos #include "regcache.h"
22 1.1 christos #include "target.h"
23 1.1 christos #include "linux-nat.h"
24 1.1 christos #include "target-descriptions.h"
25 1.1 christos #include "auxv.h"
26 1.8 christos #include "observable.h"
27 1.1 christos #include "gdbthread.h"
28 1.1 christos
29 1.9 christos #include "aarch32-tdep.h"
30 1.1 christos #include "arm-tdep.h"
31 1.1 christos #include "arm-linux-tdep.h"
32 1.6 christos #include "aarch32-linux-nat.h"
33 1.1 christos
34 1.1 christos #include <elf/common.h>
35 1.1 christos #include <sys/user.h>
36 1.6 christos #include "nat/gdb_ptrace.h"
37 1.1 christos #include <sys/utsname.h>
38 1.1 christos #include <sys/procfs.h>
39 1.1 christos
40 1.5 christos #include "nat/linux-ptrace.h"
41 1.9 christos #include "linux-tdep.h"
42 1.5 christos
43 1.1 christos /* Prototypes for supply_gregset etc. */
44 1.1 christos #include "gregset.h"
45 1.1 christos
46 1.1 christos /* Defines ps_err_e, struct ps_prochandle. */
47 1.1 christos #include "gdb_proc_service.h"
48 1.1 christos
49 1.1 christos #ifndef PTRACE_GET_THREAD_AREA
50 1.1 christos #define PTRACE_GET_THREAD_AREA 22
51 1.1 christos #endif
52 1.1 christos
53 1.1 christos #ifndef PTRACE_GETWMMXREGS
54 1.1 christos #define PTRACE_GETWMMXREGS 18
55 1.1 christos #define PTRACE_SETWMMXREGS 19
56 1.1 christos #endif
57 1.1 christos
58 1.1 christos #ifndef PTRACE_GETVFPREGS
59 1.1 christos #define PTRACE_GETVFPREGS 27
60 1.1 christos #define PTRACE_SETVFPREGS 28
61 1.1 christos #endif
62 1.1 christos
63 1.1 christos #ifndef PTRACE_GETHBPREGS
64 1.1 christos #define PTRACE_GETHBPREGS 29
65 1.1 christos #define PTRACE_SETHBPREGS 30
66 1.1 christos #endif
67 1.1 christos
68 1.8 christos class arm_linux_nat_target final : public linux_nat_target
69 1.8 christos {
70 1.8 christos public:
71 1.8 christos /* Add our register access methods. */
72 1.8 christos void fetch_registers (struct regcache *, int) override;
73 1.8 christos void store_registers (struct regcache *, int) override;
74 1.8 christos
75 1.8 christos /* Add our hardware breakpoint and watchpoint implementation. */
76 1.8 christos int can_use_hw_breakpoint (enum bptype, int, int) override;
77 1.8 christos
78 1.8 christos int insert_hw_breakpoint (struct gdbarch *, struct bp_target_info *) override;
79 1.8 christos
80 1.8 christos int remove_hw_breakpoint (struct gdbarch *, struct bp_target_info *) override;
81 1.8 christos
82 1.8 christos int region_ok_for_hw_watchpoint (CORE_ADDR, int) override;
83 1.8 christos
84 1.8 christos int insert_watchpoint (CORE_ADDR, int, enum target_hw_bp_type,
85 1.8 christos struct expression *) override;
86 1.8 christos
87 1.8 christos int remove_watchpoint (CORE_ADDR, int, enum target_hw_bp_type,
88 1.8 christos struct expression *) override;
89 1.8 christos bool stopped_by_watchpoint () override;
90 1.8 christos
91 1.8 christos bool stopped_data_address (CORE_ADDR *) override;
92 1.8 christos
93 1.8 christos bool watchpoint_addr_within_range (CORE_ADDR, CORE_ADDR, int) override;
94 1.8 christos
95 1.8 christos const struct target_desc *read_description () override;
96 1.8 christos
97 1.8 christos /* Override linux_nat_target low methods. */
98 1.8 christos
99 1.8 christos /* Handle thread creation and exit. */
100 1.8 christos void low_new_thread (struct lwp_info *lp) override;
101 1.8 christos void low_delete_thread (struct arch_lwp_info *lp) override;
102 1.8 christos void low_prepare_to_resume (struct lwp_info *lp) override;
103 1.8 christos
104 1.8 christos /* Handle process creation and exit. */
105 1.8 christos void low_new_fork (struct lwp_info *parent, pid_t child_pid) override;
106 1.11 christos void low_init_process (pid_t pid) override;
107 1.8 christos void low_forget_process (pid_t pid) override;
108 1.8 christos };
109 1.8 christos
110 1.8 christos static arm_linux_nat_target the_arm_linux_nat_target;
111 1.8 christos
112 1.1 christos /* Get the whole floating point state of the process and store it
113 1.1 christos into regcache. */
114 1.1 christos
115 1.1 christos static void
116 1.1 christos fetch_fpregs (struct regcache *regcache)
117 1.1 christos {
118 1.1 christos int ret, regno, tid;
119 1.1 christos gdb_byte fp[ARM_LINUX_SIZEOF_NWFPE];
120 1.1 christos
121 1.1 christos /* Get the thread id for the ptrace call. */
122 1.8 christos tid = regcache->ptid ().lwp ();
123 1.5 christos
124 1.1 christos /* Read the floating point state. */
125 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
126 1.5 christos {
127 1.5 christos struct iovec iov;
128 1.5 christos
129 1.5 christos iov.iov_base = &fp;
130 1.5 christos iov.iov_len = ARM_LINUX_SIZEOF_NWFPE;
131 1.5 christos
132 1.5 christos ret = ptrace (PTRACE_GETREGSET, tid, NT_FPREGSET, &iov);
133 1.5 christos }
134 1.5 christos else
135 1.5 christos ret = ptrace (PT_GETFPREGS, tid, 0, fp);
136 1.5 christos
137 1.1 christos if (ret < 0)
138 1.10 christos perror_with_name (_("Unable to fetch the floating point registers"));
139 1.1 christos
140 1.1 christos /* Fetch fpsr. */
141 1.8 christos regcache->raw_supply (ARM_FPS_REGNUM, fp + NWFPE_FPSR_OFFSET);
142 1.1 christos
143 1.1 christos /* Fetch the floating point registers. */
144 1.1 christos for (regno = ARM_F0_REGNUM; regno <= ARM_F7_REGNUM; regno++)
145 1.1 christos supply_nwfpe_register (regcache, regno, fp);
146 1.1 christos }
147 1.1 christos
148 1.1 christos /* Save the whole floating point state of the process using
149 1.1 christos the contents from regcache. */
150 1.1 christos
151 1.1 christos static void
152 1.1 christos store_fpregs (const struct regcache *regcache)
153 1.1 christos {
154 1.1 christos int ret, regno, tid;
155 1.1 christos gdb_byte fp[ARM_LINUX_SIZEOF_NWFPE];
156 1.1 christos
157 1.1 christos /* Get the thread id for the ptrace call. */
158 1.8 christos tid = regcache->ptid ().lwp ();
159 1.5 christos
160 1.1 christos /* Read the floating point state. */
161 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
162 1.5 christos {
163 1.5 christos elf_fpregset_t fpregs;
164 1.5 christos struct iovec iov;
165 1.5 christos
166 1.5 christos iov.iov_base = &fpregs;
167 1.5 christos iov.iov_len = sizeof (fpregs);
168 1.5 christos
169 1.5 christos ret = ptrace (PTRACE_GETREGSET, tid, NT_FPREGSET, &iov);
170 1.5 christos }
171 1.5 christos else
172 1.5 christos ret = ptrace (PT_GETFPREGS, tid, 0, fp);
173 1.5 christos
174 1.1 christos if (ret < 0)
175 1.10 christos perror_with_name (_("Unable to fetch the floating point registers"));
176 1.1 christos
177 1.1 christos /* Store fpsr. */
178 1.8 christos if (REG_VALID == regcache->get_register_status (ARM_FPS_REGNUM))
179 1.8 christos regcache->raw_collect (ARM_FPS_REGNUM, fp + NWFPE_FPSR_OFFSET);
180 1.1 christos
181 1.1 christos /* Store the floating point registers. */
182 1.1 christos for (regno = ARM_F0_REGNUM; regno <= ARM_F7_REGNUM; regno++)
183 1.8 christos if (REG_VALID == regcache->get_register_status (regno))
184 1.1 christos collect_nwfpe_register (regcache, regno, fp);
185 1.1 christos
186 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
187 1.5 christos {
188 1.5 christos struct iovec iov;
189 1.5 christos
190 1.5 christos iov.iov_base = &fp;
191 1.5 christos iov.iov_len = ARM_LINUX_SIZEOF_NWFPE;
192 1.5 christos
193 1.5 christos ret = ptrace (PTRACE_SETREGSET, tid, NT_FPREGSET, &iov);
194 1.5 christos }
195 1.5 christos else
196 1.5 christos ret = ptrace (PTRACE_SETFPREGS, tid, 0, fp);
197 1.5 christos
198 1.1 christos if (ret < 0)
199 1.10 christos perror_with_name (_("Unable to store floating point registers"));
200 1.1 christos }
201 1.1 christos
202 1.1 christos /* Fetch all general registers of the process and store into
203 1.1 christos regcache. */
204 1.1 christos
205 1.1 christos static void
206 1.1 christos fetch_regs (struct regcache *regcache)
207 1.1 christos {
208 1.8 christos int ret, tid;
209 1.1 christos elf_gregset_t regs;
210 1.1 christos
211 1.1 christos /* Get the thread id for the ptrace call. */
212 1.8 christos tid = regcache->ptid ().lwp ();
213 1.5 christos
214 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
215 1.5 christos {
216 1.5 christos struct iovec iov;
217 1.5 christos
218 1.5 christos iov.iov_base = ®s;
219 1.5 christos iov.iov_len = sizeof (regs);
220 1.5 christos
221 1.5 christos ret = ptrace (PTRACE_GETREGSET, tid, NT_PRSTATUS, &iov);
222 1.5 christos }
223 1.5 christos else
224 1.5 christos ret = ptrace (PTRACE_GETREGS, tid, 0, ®s);
225 1.5 christos
226 1.1 christos if (ret < 0)
227 1.10 christos perror_with_name (_("Unable to fetch general registers"));
228 1.5 christos
229 1.6 christos aarch32_gp_regcache_supply (regcache, (uint32_t *) regs, arm_apcs_32);
230 1.1 christos }
231 1.1 christos
232 1.1 christos static void
233 1.1 christos store_regs (const struct regcache *regcache)
234 1.1 christos {
235 1.8 christos int ret, tid;
236 1.1 christos elf_gregset_t regs;
237 1.1 christos
238 1.1 christos /* Get the thread id for the ptrace call. */
239 1.8 christos tid = regcache->ptid ().lwp ();
240 1.5 christos
241 1.1 christos /* Fetch the general registers. */
242 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
243 1.5 christos {
244 1.5 christos struct iovec iov;
245 1.5 christos
246 1.5 christos iov.iov_base = ®s;
247 1.5 christos iov.iov_len = sizeof (regs);
248 1.5 christos
249 1.5 christos ret = ptrace (PTRACE_GETREGSET, tid, NT_PRSTATUS, &iov);
250 1.5 christos }
251 1.5 christos else
252 1.5 christos ret = ptrace (PTRACE_GETREGS, tid, 0, ®s);
253 1.5 christos
254 1.1 christos if (ret < 0)
255 1.10 christos perror_with_name (_("Unable to fetch general registers"));
256 1.1 christos
257 1.6 christos aarch32_gp_regcache_collect (regcache, (uint32_t *) regs, arm_apcs_32);
258 1.1 christos
259 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
260 1.5 christos {
261 1.5 christos struct iovec iov;
262 1.5 christos
263 1.5 christos iov.iov_base = ®s;
264 1.5 christos iov.iov_len = sizeof (regs);
265 1.5 christos
266 1.5 christos ret = ptrace (PTRACE_SETREGSET, tid, NT_PRSTATUS, &iov);
267 1.5 christos }
268 1.5 christos else
269 1.5 christos ret = ptrace (PTRACE_SETREGS, tid, 0, ®s);
270 1.1 christos
271 1.1 christos if (ret < 0)
272 1.10 christos perror_with_name (_("Unable to store general registers"));
273 1.1 christos }
274 1.1 christos
275 1.1 christos /* Fetch all WMMX registers of the process and store into
276 1.1 christos regcache. */
277 1.1 christos
278 1.1 christos static void
279 1.1 christos fetch_wmmx_regs (struct regcache *regcache)
280 1.1 christos {
281 1.1 christos char regbuf[IWMMXT_REGS_SIZE];
282 1.1 christos int ret, regno, tid;
283 1.1 christos
284 1.1 christos /* Get the thread id for the ptrace call. */
285 1.8 christos tid = regcache->ptid ().lwp ();
286 1.1 christos
287 1.1 christos ret = ptrace (PTRACE_GETWMMXREGS, tid, 0, regbuf);
288 1.1 christos if (ret < 0)
289 1.10 christos perror_with_name (_("Unable to fetch WMMX registers"));
290 1.1 christos
291 1.1 christos for (regno = 0; regno < 16; regno++)
292 1.8 christos regcache->raw_supply (regno + ARM_WR0_REGNUM, ®buf[regno * 8]);
293 1.1 christos
294 1.1 christos for (regno = 0; regno < 2; regno++)
295 1.8 christos regcache->raw_supply (regno + ARM_WCSSF_REGNUM,
296 1.8 christos ®buf[16 * 8 + regno * 4]);
297 1.1 christos
298 1.1 christos for (regno = 0; regno < 4; regno++)
299 1.8 christos regcache->raw_supply (regno + ARM_WCGR0_REGNUM,
300 1.8 christos ®buf[16 * 8 + 2 * 4 + regno * 4]);
301 1.1 christos }
302 1.1 christos
303 1.1 christos static void
304 1.1 christos store_wmmx_regs (const struct regcache *regcache)
305 1.1 christos {
306 1.1 christos char regbuf[IWMMXT_REGS_SIZE];
307 1.1 christos int ret, regno, tid;
308 1.1 christos
309 1.1 christos /* Get the thread id for the ptrace call. */
310 1.8 christos tid = regcache->ptid ().lwp ();
311 1.1 christos
312 1.1 christos ret = ptrace (PTRACE_GETWMMXREGS, tid, 0, regbuf);
313 1.1 christos if (ret < 0)
314 1.10 christos perror_with_name (_("Unable to fetch WMMX registers"));
315 1.1 christos
316 1.1 christos for (regno = 0; regno < 16; regno++)
317 1.8 christos if (REG_VALID == regcache->get_register_status (regno + ARM_WR0_REGNUM))
318 1.8 christos regcache->raw_collect (regno + ARM_WR0_REGNUM, ®buf[regno * 8]);
319 1.1 christos
320 1.1 christos for (regno = 0; regno < 2; regno++)
321 1.8 christos if (REG_VALID == regcache->get_register_status (regno + ARM_WCSSF_REGNUM))
322 1.8 christos regcache->raw_collect (regno + ARM_WCSSF_REGNUM,
323 1.8 christos ®buf[16 * 8 + regno * 4]);
324 1.1 christos
325 1.1 christos for (regno = 0; regno < 4; regno++)
326 1.8 christos if (REG_VALID == regcache->get_register_status (regno + ARM_WCGR0_REGNUM))
327 1.8 christos regcache->raw_collect (regno + ARM_WCGR0_REGNUM,
328 1.8 christos ®buf[16 * 8 + 2 * 4 + regno * 4]);
329 1.1 christos
330 1.1 christos ret = ptrace (PTRACE_SETWMMXREGS, tid, 0, regbuf);
331 1.1 christos
332 1.1 christos if (ret < 0)
333 1.10 christos perror_with_name (_("Unable to store WMMX registers"));
334 1.1 christos }
335 1.1 christos
336 1.1 christos static void
337 1.1 christos fetch_vfp_regs (struct regcache *regcache)
338 1.1 christos {
339 1.9 christos gdb_byte regbuf[ARM_VFP3_REGS_SIZE];
340 1.8 christos int ret, tid;
341 1.8 christos struct gdbarch *gdbarch = regcache->arch ();
342 1.10 christos arm_gdbarch_tdep *tdep = gdbarch_tdep<arm_gdbarch_tdep> (gdbarch);
343 1.1 christos
344 1.1 christos /* Get the thread id for the ptrace call. */
345 1.8 christos tid = regcache->ptid ().lwp ();
346 1.1 christos
347 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
348 1.5 christos {
349 1.5 christos struct iovec iov;
350 1.5 christos
351 1.5 christos iov.iov_base = regbuf;
352 1.9 christos iov.iov_len = ARM_VFP3_REGS_SIZE;
353 1.5 christos ret = ptrace (PTRACE_GETREGSET, tid, NT_ARM_VFP, &iov);
354 1.5 christos }
355 1.5 christos else
356 1.5 christos ret = ptrace (PTRACE_GETVFPREGS, tid, 0, regbuf);
357 1.5 christos
358 1.1 christos if (ret < 0)
359 1.10 christos perror_with_name (_("Unable to fetch VFP registers"));
360 1.1 christos
361 1.6 christos aarch32_vfp_regcache_supply (regcache, regbuf,
362 1.6 christos tdep->vfp_register_count);
363 1.1 christos }
364 1.1 christos
365 1.1 christos static void
366 1.1 christos store_vfp_regs (const struct regcache *regcache)
367 1.1 christos {
368 1.9 christos gdb_byte regbuf[ARM_VFP3_REGS_SIZE];
369 1.8 christos int ret, tid;
370 1.8 christos struct gdbarch *gdbarch = regcache->arch ();
371 1.10 christos arm_gdbarch_tdep *tdep = gdbarch_tdep<arm_gdbarch_tdep> (gdbarch);
372 1.1 christos
373 1.1 christos /* Get the thread id for the ptrace call. */
374 1.8 christos tid = regcache->ptid ().lwp ();
375 1.1 christos
376 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
377 1.5 christos {
378 1.5 christos struct iovec iov;
379 1.5 christos
380 1.5 christos iov.iov_base = regbuf;
381 1.9 christos iov.iov_len = ARM_VFP3_REGS_SIZE;
382 1.5 christos ret = ptrace (PTRACE_GETREGSET, tid, NT_ARM_VFP, &iov);
383 1.5 christos }
384 1.5 christos else
385 1.5 christos ret = ptrace (PTRACE_GETVFPREGS, tid, 0, regbuf);
386 1.5 christos
387 1.1 christos if (ret < 0)
388 1.10 christos perror_with_name (_("Unable to fetch VFP registers (for update)"));
389 1.1 christos
390 1.6 christos aarch32_vfp_regcache_collect (regcache, regbuf,
391 1.6 christos tdep->vfp_register_count);
392 1.1 christos
393 1.5 christos if (have_ptrace_getregset == TRIBOOL_TRUE)
394 1.5 christos {
395 1.5 christos struct iovec iov;
396 1.5 christos
397 1.5 christos iov.iov_base = regbuf;
398 1.9 christos iov.iov_len = ARM_VFP3_REGS_SIZE;
399 1.5 christos ret = ptrace (PTRACE_SETREGSET, tid, NT_ARM_VFP, &iov);
400 1.5 christos }
401 1.5 christos else
402 1.5 christos ret = ptrace (PTRACE_SETVFPREGS, tid, 0, regbuf);
403 1.1 christos
404 1.1 christos if (ret < 0)
405 1.10 christos perror_with_name (_("Unable to store VFP registers"));
406 1.1 christos }
407 1.1 christos
408 1.1 christos /* Fetch registers from the child process. Fetch all registers if
409 1.1 christos regno == -1, otherwise fetch all general registers or all floating
410 1.1 christos point registers depending upon the value of regno. */
411 1.1 christos
412 1.8 christos void
413 1.8 christos arm_linux_nat_target::fetch_registers (struct regcache *regcache, int regno)
414 1.1 christos {
415 1.8 christos struct gdbarch *gdbarch = regcache->arch ();
416 1.10 christos arm_gdbarch_tdep *tdep = gdbarch_tdep<arm_gdbarch_tdep> (gdbarch);
417 1.5 christos
418 1.1 christos if (-1 == regno)
419 1.1 christos {
420 1.1 christos fetch_regs (regcache);
421 1.5 christos if (tdep->have_wmmx_registers)
422 1.1 christos fetch_wmmx_regs (regcache);
423 1.5 christos if (tdep->vfp_register_count > 0)
424 1.1 christos fetch_vfp_regs (regcache);
425 1.7 christos if (tdep->have_fpa_registers)
426 1.7 christos fetch_fpregs (regcache);
427 1.1 christos }
428 1.7 christos else
429 1.1 christos {
430 1.1 christos if (regno < ARM_F0_REGNUM || regno == ARM_PS_REGNUM)
431 1.6 christos fetch_regs (regcache);
432 1.1 christos else if (regno >= ARM_F0_REGNUM && regno <= ARM_FPS_REGNUM)
433 1.6 christos fetch_fpregs (regcache);
434 1.5 christos else if (tdep->have_wmmx_registers
435 1.1 christos && regno >= ARM_WR0_REGNUM && regno <= ARM_WCGR7_REGNUM)
436 1.1 christos fetch_wmmx_regs (regcache);
437 1.5 christos else if (tdep->vfp_register_count > 0
438 1.1 christos && regno >= ARM_D0_REGNUM
439 1.7 christos && (regno < ARM_D0_REGNUM + tdep->vfp_register_count
440 1.7 christos || regno == ARM_FPSCR_REGNUM))
441 1.1 christos fetch_vfp_regs (regcache);
442 1.1 christos }
443 1.1 christos }
444 1.1 christos
445 1.1 christos /* Store registers back into the inferior. Store all registers if
446 1.1 christos regno == -1, otherwise store all general registers or all floating
447 1.1 christos point registers depending upon the value of regno. */
448 1.1 christos
449 1.8 christos void
450 1.8 christos arm_linux_nat_target::store_registers (struct regcache *regcache, int regno)
451 1.1 christos {
452 1.8 christos struct gdbarch *gdbarch = regcache->arch ();
453 1.10 christos arm_gdbarch_tdep *tdep = gdbarch_tdep<arm_gdbarch_tdep> (gdbarch);
454 1.5 christos
455 1.1 christos if (-1 == regno)
456 1.1 christos {
457 1.1 christos store_regs (regcache);
458 1.5 christos if (tdep->have_wmmx_registers)
459 1.1 christos store_wmmx_regs (regcache);
460 1.5 christos if (tdep->vfp_register_count > 0)
461 1.1 christos store_vfp_regs (regcache);
462 1.7 christos if (tdep->have_fpa_registers)
463 1.7 christos store_fpregs (regcache);
464 1.1 christos }
465 1.1 christos else
466 1.1 christos {
467 1.1 christos if (regno < ARM_F0_REGNUM || regno == ARM_PS_REGNUM)
468 1.6 christos store_regs (regcache);
469 1.1 christos else if ((regno >= ARM_F0_REGNUM) && (regno <= ARM_FPS_REGNUM))
470 1.6 christos store_fpregs (regcache);
471 1.5 christos else if (tdep->have_wmmx_registers
472 1.1 christos && regno >= ARM_WR0_REGNUM && regno <= ARM_WCGR7_REGNUM)
473 1.1 christos store_wmmx_regs (regcache);
474 1.5 christos else if (tdep->vfp_register_count > 0
475 1.1 christos && regno >= ARM_D0_REGNUM
476 1.7 christos && (regno < ARM_D0_REGNUM + tdep->vfp_register_count
477 1.7 christos || regno == ARM_FPSCR_REGNUM))
478 1.1 christos store_vfp_regs (regcache);
479 1.1 christos }
480 1.1 christos }
481 1.1 christos
482 1.1 christos /* Wrapper functions for the standard regset handling, used by
483 1.1 christos thread debugging. */
484 1.1 christos
485 1.1 christos void
486 1.1 christos fill_gregset (const struct regcache *regcache,
487 1.1 christos gdb_gregset_t *gregsetp, int regno)
488 1.1 christos {
489 1.1 christos arm_linux_collect_gregset (NULL, regcache, regno, gregsetp, 0);
490 1.1 christos }
491 1.1 christos
492 1.1 christos void
493 1.1 christos supply_gregset (struct regcache *regcache, const gdb_gregset_t *gregsetp)
494 1.1 christos {
495 1.1 christos arm_linux_supply_gregset (NULL, regcache, -1, gregsetp, 0);
496 1.1 christos }
497 1.1 christos
498 1.1 christos void
499 1.1 christos fill_fpregset (const struct regcache *regcache,
500 1.1 christos gdb_fpregset_t *fpregsetp, int regno)
501 1.1 christos {
502 1.1 christos arm_linux_collect_nwfpe (NULL, regcache, regno, fpregsetp, 0);
503 1.1 christos }
504 1.1 christos
505 1.1 christos /* Fill GDB's register array with the floating-point register values
506 1.1 christos in *fpregsetp. */
507 1.1 christos
508 1.1 christos void
509 1.1 christos supply_fpregset (struct regcache *regcache, const gdb_fpregset_t *fpregsetp)
510 1.1 christos {
511 1.1 christos arm_linux_supply_nwfpe (NULL, regcache, -1, fpregsetp, 0);
512 1.1 christos }
513 1.1 christos
514 1.1 christos /* Fetch the thread-local storage pointer for libthread_db. */
515 1.1 christos
516 1.1 christos ps_err_e
517 1.6 christos ps_get_thread_area (struct ps_prochandle *ph,
518 1.10 christos lwpid_t lwpid, int idx, void **base)
519 1.1 christos {
520 1.1 christos if (ptrace (PTRACE_GET_THREAD_AREA, lwpid, NULL, base) != 0)
521 1.1 christos return PS_ERR;
522 1.1 christos
523 1.1 christos /* IDX is the bias from the thread pointer to the beginning of the
524 1.1 christos thread descriptor. It has to be subtracted due to implementation
525 1.1 christos quirks in libthread_db. */
526 1.1 christos *base = (void *) ((char *)*base - idx);
527 1.1 christos
528 1.1 christos return PS_OK;
529 1.1 christos }
530 1.1 christos
531 1.8 christos const struct target_desc *
532 1.8 christos arm_linux_nat_target::read_description ()
533 1.1 christos {
534 1.11 christos if (inferior_ptid == null_ptid)
535 1.11 christos return this->beneath ()->read_description ();
536 1.11 christos
537 1.10 christos CORE_ADDR arm_hwcap = linux_get_hwcap ();
538 1.5 christos
539 1.5 christos if (have_ptrace_getregset == TRIBOOL_UNKNOWN)
540 1.5 christos {
541 1.5 christos elf_gregset_t gpregs;
542 1.5 christos struct iovec iov;
543 1.10 christos int tid = inferior_ptid.pid ();
544 1.5 christos
545 1.5 christos iov.iov_base = &gpregs;
546 1.5 christos iov.iov_len = sizeof (gpregs);
547 1.5 christos
548 1.5 christos /* Check if PTRACE_GETREGSET works. */
549 1.5 christos if (ptrace (PTRACE_GETREGSET, tid, NT_PRSTATUS, &iov) < 0)
550 1.5 christos have_ptrace_getregset = TRIBOOL_FALSE;
551 1.5 christos else
552 1.5 christos have_ptrace_getregset = TRIBOOL_TRUE;
553 1.5 christos }
554 1.1 christos
555 1.1 christos if (arm_hwcap & HWCAP_IWMMXT)
556 1.10 christos return arm_read_description (ARM_FP_TYPE_IWMMXT, false);
557 1.1 christos
558 1.1 christos if (arm_hwcap & HWCAP_VFP)
559 1.1 christos {
560 1.9 christos /* Make sure that the kernel supports reading VFP registers. Support was
561 1.9 christos added in 2.6.30. */
562 1.10 christos int pid = inferior_ptid.pid ();
563 1.9 christos errno = 0;
564 1.9 christos char *buf = (char *) alloca (ARM_VFP3_REGS_SIZE);
565 1.9 christos if (ptrace (PTRACE_GETVFPREGS, pid, 0, buf) < 0 && errno == EIO)
566 1.9 christos return nullptr;
567 1.1 christos
568 1.1 christos /* NEON implies VFPv3-D32 or no-VFP unit. Say that we only support
569 1.1 christos Neon with VFPv3-D32. */
570 1.1 christos if (arm_hwcap & HWCAP_NEON)
571 1.11 christos return aarch32_read_description (false);
572 1.1 christos else if ((arm_hwcap & (HWCAP_VFPv3 | HWCAP_VFPv3D16)) == HWCAP_VFPv3)
573 1.10 christos return arm_read_description (ARM_FP_TYPE_VFPV3, false);
574 1.1 christos
575 1.10 christos return arm_read_description (ARM_FP_TYPE_VFPV2, false);
576 1.1 christos }
577 1.1 christos
578 1.8 christos return this->beneath ()->read_description ();
579 1.1 christos }
580 1.1 christos
581 1.1 christos /* Information describing the hardware breakpoint capabilities. */
582 1.1 christos struct arm_linux_hwbp_cap
583 1.1 christos {
584 1.1 christos gdb_byte arch;
585 1.1 christos gdb_byte max_wp_length;
586 1.1 christos gdb_byte wp_count;
587 1.1 christos gdb_byte bp_count;
588 1.1 christos };
589 1.1 christos
590 1.3 christos /* Since we cannot dynamically allocate subfields of arm_linux_process_info,
591 1.3 christos assume a maximum number of supported break-/watchpoints. */
592 1.3 christos #define MAX_BPTS 16
593 1.3 christos #define MAX_WPTS 16
594 1.3 christos
595 1.1 christos /* Get hold of the Hardware Breakpoint information for the target we are
596 1.1 christos attached to. Returns NULL if the kernel doesn't support Hardware
597 1.1 christos breakpoints at all, or a pointer to the information structure. */
598 1.1 christos static const struct arm_linux_hwbp_cap *
599 1.1 christos arm_linux_get_hwbp_cap (void)
600 1.1 christos {
601 1.1 christos /* The info structure we return. */
602 1.1 christos static struct arm_linux_hwbp_cap info;
603 1.1 christos
604 1.1 christos /* Is INFO in a good state? -1 means that no attempt has been made to
605 1.1 christos initialize INFO; 0 means an attempt has been made, but it failed; 1
606 1.1 christos means INFO is in an initialized state. */
607 1.1 christos static int available = -1;
608 1.1 christos
609 1.1 christos if (available == -1)
610 1.1 christos {
611 1.1 christos int tid;
612 1.1 christos unsigned int val;
613 1.1 christos
614 1.8 christos tid = inferior_ptid.lwp ();
615 1.1 christos if (ptrace (PTRACE_GETHBPREGS, tid, 0, &val) < 0)
616 1.1 christos available = 0;
617 1.1 christos else
618 1.1 christos {
619 1.1 christos info.arch = (gdb_byte)((val >> 24) & 0xff);
620 1.1 christos info.max_wp_length = (gdb_byte)((val >> 16) & 0xff);
621 1.1 christos info.wp_count = (gdb_byte)((val >> 8) & 0xff);
622 1.1 christos info.bp_count = (gdb_byte)(val & 0xff);
623 1.3 christos
624 1.3 christos if (info.wp_count > MAX_WPTS)
625 1.10 christos {
626 1.10 christos warning (_("arm-linux-gdb supports %d hardware watchpoints but target \
627 1.10 christos supports %d"), MAX_WPTS, info.wp_count);
628 1.10 christos info.wp_count = MAX_WPTS;
629 1.10 christos }
630 1.3 christos
631 1.3 christos if (info.bp_count > MAX_BPTS)
632 1.10 christos {
633 1.10 christos warning (_("arm-linux-gdb supports %d hardware breakpoints but target \
634 1.10 christos supports %d"), MAX_BPTS, info.bp_count);
635 1.10 christos info.bp_count = MAX_BPTS;
636 1.10 christos }
637 1.1 christos available = (info.arch != 0);
638 1.1 christos }
639 1.1 christos }
640 1.1 christos
641 1.1 christos return available == 1 ? &info : NULL;
642 1.1 christos }
643 1.1 christos
644 1.1 christos /* How many hardware breakpoints are available? */
645 1.1 christos static int
646 1.1 christos arm_linux_get_hw_breakpoint_count (void)
647 1.1 christos {
648 1.1 christos const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
649 1.1 christos return cap != NULL ? cap->bp_count : 0;
650 1.1 christos }
651 1.1 christos
652 1.1 christos /* How many hardware watchpoints are available? */
653 1.1 christos static int
654 1.1 christos arm_linux_get_hw_watchpoint_count (void)
655 1.1 christos {
656 1.1 christos const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
657 1.1 christos return cap != NULL ? cap->wp_count : 0;
658 1.1 christos }
659 1.1 christos
660 1.1 christos /* Have we got a free break-/watch-point available for use? Returns -1 if
661 1.1 christos there is not an appropriate resource available, otherwise returns 1. */
662 1.8 christos int
663 1.8 christos arm_linux_nat_target::can_use_hw_breakpoint (enum bptype type,
664 1.8 christos int cnt, int ot)
665 1.1 christos {
666 1.1 christos if (type == bp_hardware_watchpoint || type == bp_read_watchpoint
667 1.1 christos || type == bp_access_watchpoint || type == bp_watchpoint)
668 1.1 christos {
669 1.5 christos int count = arm_linux_get_hw_watchpoint_count ();
670 1.5 christos
671 1.5 christos if (count == 0)
672 1.5 christos return 0;
673 1.5 christos else if (cnt + ot > count)
674 1.1 christos return -1;
675 1.1 christos }
676 1.1 christos else if (type == bp_hardware_breakpoint)
677 1.1 christos {
678 1.5 christos int count = arm_linux_get_hw_breakpoint_count ();
679 1.5 christos
680 1.5 christos if (count == 0)
681 1.5 christos return 0;
682 1.5 christos else if (cnt > count)
683 1.1 christos return -1;
684 1.1 christos }
685 1.1 christos else
686 1.9 christos gdb_assert_not_reached ("unknown breakpoint type");
687 1.1 christos
688 1.1 christos return 1;
689 1.1 christos }
690 1.1 christos
691 1.1 christos /* Enum describing the different types of ARM hardware break-/watch-points. */
692 1.1 christos typedef enum
693 1.1 christos {
694 1.1 christos arm_hwbp_break = 0,
695 1.1 christos arm_hwbp_load = 1,
696 1.1 christos arm_hwbp_store = 2,
697 1.1 christos arm_hwbp_access = 3
698 1.1 christos } arm_hwbp_type;
699 1.1 christos
700 1.1 christos /* Type describing an ARM Hardware Breakpoint Control register value. */
701 1.1 christos typedef unsigned int arm_hwbp_control_t;
702 1.1 christos
703 1.1 christos /* Structure used to keep track of hardware break-/watch-points. */
704 1.1 christos struct arm_linux_hw_breakpoint
705 1.1 christos {
706 1.1 christos /* Address to break on, or being watched. */
707 1.1 christos unsigned int address;
708 1.1 christos /* Control register for break-/watch- point. */
709 1.1 christos arm_hwbp_control_t control;
710 1.1 christos };
711 1.1 christos
712 1.3 christos /* Structure containing arrays of per process hardware break-/watchpoints
713 1.3 christos for caching address and control information.
714 1.1 christos
715 1.1 christos The Linux ptrace interface to hardware break-/watch-points presents the
716 1.1 christos values in a vector centred around 0 (which is used fo generic information).
717 1.1 christos Positive indicies refer to breakpoint addresses/control registers, negative
718 1.1 christos indices to watchpoint addresses/control registers.
719 1.1 christos
720 1.1 christos The Linux vector is indexed as follows:
721 1.1 christos -((i << 1) + 2): Control register for watchpoint i.
722 1.1 christos -((i << 1) + 1): Address register for watchpoint i.
723 1.10 christos 0: Information register.
724 1.1 christos ((i << 1) + 1): Address register for breakpoint i.
725 1.1 christos ((i << 1) + 2): Control register for breakpoint i.
726 1.1 christos
727 1.1 christos This structure is used as a per-thread cache of the state stored by the
728 1.1 christos kernel, so that we don't need to keep calling into the kernel to find a
729 1.1 christos free breakpoint.
730 1.1 christos
731 1.1 christos We treat break-/watch-points with their enable bit clear as being deleted.
732 1.1 christos */
733 1.3 christos struct arm_linux_debug_reg_state
734 1.3 christos {
735 1.3 christos /* Hardware breakpoints for this process. */
736 1.3 christos struct arm_linux_hw_breakpoint bpts[MAX_BPTS];
737 1.3 christos /* Hardware watchpoints for this process. */
738 1.3 christos struct arm_linux_hw_breakpoint wpts[MAX_WPTS];
739 1.3 christos };
740 1.3 christos
741 1.3 christos /* Per-process arch-specific data we want to keep. */
742 1.3 christos struct arm_linux_process_info
743 1.3 christos {
744 1.3 christos /* Linked list. */
745 1.3 christos struct arm_linux_process_info *next;
746 1.3 christos /* The process identifier. */
747 1.3 christos pid_t pid;
748 1.3 christos /* Hardware break-/watchpoints state information. */
749 1.3 christos struct arm_linux_debug_reg_state state;
750 1.3 christos
751 1.3 christos };
752 1.3 christos
753 1.3 christos /* Per-thread arch-specific data we want to keep. */
754 1.3 christos struct arch_lwp_info
755 1.3 christos {
756 1.3 christos /* Non-zero if our copy differs from what's recorded in the thread. */
757 1.3 christos char bpts_changed[MAX_BPTS];
758 1.3 christos char wpts_changed[MAX_WPTS];
759 1.3 christos };
760 1.3 christos
761 1.3 christos static struct arm_linux_process_info *arm_linux_process_list = NULL;
762 1.3 christos
763 1.3 christos /* Find process data for process PID. */
764 1.3 christos
765 1.3 christos static struct arm_linux_process_info *
766 1.3 christos arm_linux_find_process_pid (pid_t pid)
767 1.3 christos {
768 1.3 christos struct arm_linux_process_info *proc;
769 1.3 christos
770 1.3 christos for (proc = arm_linux_process_list; proc; proc = proc->next)
771 1.3 christos if (proc->pid == pid)
772 1.3 christos return proc;
773 1.3 christos
774 1.3 christos return NULL;
775 1.3 christos }
776 1.3 christos
777 1.3 christos /* Add process data for process PID. Returns newly allocated info
778 1.3 christos object. */
779 1.3 christos
780 1.3 christos static struct arm_linux_process_info *
781 1.3 christos arm_linux_add_process (pid_t pid)
782 1.1 christos {
783 1.3 christos struct arm_linux_process_info *proc;
784 1.3 christos
785 1.6 christos proc = XCNEW (struct arm_linux_process_info);
786 1.3 christos proc->pid = pid;
787 1.3 christos
788 1.3 christos proc->next = arm_linux_process_list;
789 1.3 christos arm_linux_process_list = proc;
790 1.3 christos
791 1.3 christos return proc;
792 1.3 christos }
793 1.3 christos
794 1.3 christos /* Get data specific info for process PID, creating it if necessary.
795 1.3 christos Never returns NULL. */
796 1.3 christos
797 1.3 christos static struct arm_linux_process_info *
798 1.3 christos arm_linux_process_info_get (pid_t pid)
799 1.3 christos {
800 1.3 christos struct arm_linux_process_info *proc;
801 1.3 christos
802 1.3 christos proc = arm_linux_find_process_pid (pid);
803 1.3 christos if (proc == NULL)
804 1.3 christos proc = arm_linux_add_process (pid);
805 1.3 christos
806 1.3 christos return proc;
807 1.3 christos }
808 1.3 christos
809 1.11 christos /* Implement the "low_init_process" target_ops method. */
810 1.11 christos
811 1.11 christos void
812 1.11 christos arm_linux_nat_target::low_init_process (pid_t pid)
813 1.11 christos {
814 1.11 christos /* Set the hardware debug register capacity. This requires the process to be
815 1.11 christos ptrace-stopped, otherwise detection will fail and software watchpoints will
816 1.11 christos be used instead of hardware. If we allow this to be done lazily, we
817 1.11 christos cannot guarantee that it's called when the process is ptrace-stopped, so
818 1.11 christos do it now. */
819 1.11 christos arm_linux_get_hwbp_cap ();
820 1.11 christos }
821 1.11 christos
822 1.3 christos /* Called whenever GDB is no longer debugging process PID. It deletes
823 1.3 christos data structures that keep track of debug register state. */
824 1.3 christos
825 1.8 christos void
826 1.8 christos arm_linux_nat_target::low_forget_process (pid_t pid)
827 1.1 christos {
828 1.3 christos struct arm_linux_process_info *proc, **proc_link;
829 1.3 christos
830 1.3 christos proc = arm_linux_process_list;
831 1.3 christos proc_link = &arm_linux_process_list;
832 1.1 christos
833 1.3 christos while (proc != NULL)
834 1.3 christos {
835 1.3 christos if (proc->pid == pid)
836 1.1 christos {
837 1.3 christos *proc_link = proc->next;
838 1.3 christos
839 1.3 christos xfree (proc);
840 1.3 christos return;
841 1.1 christos }
842 1.1 christos
843 1.3 christos proc_link = &proc->next;
844 1.3 christos proc = *proc_link;
845 1.3 christos }
846 1.3 christos }
847 1.1 christos
848 1.3 christos /* Get hardware break-/watchpoint state for process PID. */
849 1.1 christos
850 1.3 christos static struct arm_linux_debug_reg_state *
851 1.3 christos arm_linux_get_debug_reg_state (pid_t pid)
852 1.3 christos {
853 1.3 christos return &arm_linux_process_info_get (pid)->state;
854 1.1 christos }
855 1.1 christos
856 1.1 christos /* Initialize an ARM hardware break-/watch-point control register value.
857 1.1 christos BYTE_ADDRESS_SELECT is the mask of bytes to trigger on; HWBP_TYPE is the
858 1.1 christos type of break-/watch-point; ENABLE indicates whether the point is enabled.
859 1.1 christos */
860 1.1 christos static arm_hwbp_control_t
861 1.1 christos arm_hwbp_control_initialize (unsigned byte_address_select,
862 1.1 christos arm_hwbp_type hwbp_type,
863 1.1 christos int enable)
864 1.1 christos {
865 1.1 christos gdb_assert ((byte_address_select & ~0xffU) == 0);
866 1.1 christos gdb_assert (hwbp_type != arm_hwbp_break
867 1.1 christos || ((byte_address_select & 0xfU) != 0));
868 1.1 christos
869 1.1 christos return (byte_address_select << 5) | (hwbp_type << 3) | (3 << 1) | enable;
870 1.1 christos }
871 1.1 christos
872 1.1 christos /* Does the breakpoint control value CONTROL have the enable bit set? */
873 1.1 christos static int
874 1.1 christos arm_hwbp_control_is_enabled (arm_hwbp_control_t control)
875 1.1 christos {
876 1.1 christos return control & 0x1;
877 1.1 christos }
878 1.1 christos
879 1.12 christos /* Is the breakpoint control value CONTROL initialized? */
880 1.12 christos
881 1.12 christos static int
882 1.12 christos arm_hwbp_control_is_initialized (arm_hwbp_control_t control)
883 1.12 christos {
884 1.12 christos return control != 0;
885 1.12 christos }
886 1.12 christos
887 1.1 christos /* Change a breakpoint control word so that it is in the disabled state. */
888 1.1 christos static arm_hwbp_control_t
889 1.1 christos arm_hwbp_control_disable (arm_hwbp_control_t control)
890 1.1 christos {
891 1.1 christos return control & ~0x1;
892 1.1 christos }
893 1.1 christos
894 1.1 christos /* Initialise the hardware breakpoint structure P. The breakpoint will be
895 1.1 christos enabled, and will point to the placed address of BP_TGT. */
896 1.1 christos static void
897 1.1 christos arm_linux_hw_breakpoint_initialize (struct gdbarch *gdbarch,
898 1.1 christos struct bp_target_info *bp_tgt,
899 1.1 christos struct arm_linux_hw_breakpoint *p)
900 1.1 christos {
901 1.1 christos unsigned mask;
902 1.3 christos CORE_ADDR address = bp_tgt->placed_address = bp_tgt->reqstd_address;
903 1.1 christos
904 1.1 christos /* We have to create a mask for the control register which says which bits
905 1.1 christos of the word pointed to by address to break on. */
906 1.1 christos if (arm_pc_is_thumb (gdbarch, address))
907 1.1 christos {
908 1.1 christos mask = 0x3;
909 1.1 christos address &= ~1;
910 1.1 christos }
911 1.1 christos else
912 1.1 christos {
913 1.1 christos mask = 0xf;
914 1.1 christos address &= ~3;
915 1.1 christos }
916 1.1 christos
917 1.1 christos p->address = (unsigned int) address;
918 1.1 christos p->control = arm_hwbp_control_initialize (mask, arm_hwbp_break, 1);
919 1.1 christos }
920 1.1 christos
921 1.6 christos /* Get the ARM hardware breakpoint type from the TYPE value we're
922 1.6 christos given when asked to set a watchpoint. */
923 1.1 christos static arm_hwbp_type
924 1.6 christos arm_linux_get_hwbp_type (enum target_hw_bp_type type)
925 1.1 christos {
926 1.6 christos if (type == hw_read)
927 1.1 christos return arm_hwbp_load;
928 1.6 christos else if (type == hw_write)
929 1.1 christos return arm_hwbp_store;
930 1.1 christos else
931 1.1 christos return arm_hwbp_access;
932 1.1 christos }
933 1.1 christos
934 1.1 christos /* Initialize the hardware breakpoint structure P for a watchpoint at ADDR
935 1.1 christos to LEN. The type of watchpoint is given in RW. */
936 1.1 christos static void
937 1.6 christos arm_linux_hw_watchpoint_initialize (CORE_ADDR addr, int len,
938 1.6 christos enum target_hw_bp_type type,
939 1.1 christos struct arm_linux_hw_breakpoint *p)
940 1.1 christos {
941 1.1 christos const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
942 1.1 christos unsigned mask;
943 1.1 christos
944 1.1 christos gdb_assert (cap != NULL);
945 1.1 christos gdb_assert (cap->max_wp_length != 0);
946 1.1 christos
947 1.1 christos mask = (1 << len) - 1;
948 1.1 christos
949 1.1 christos p->address = (unsigned int) addr;
950 1.1 christos p->control = arm_hwbp_control_initialize (mask,
951 1.6 christos arm_linux_get_hwbp_type (type), 1);
952 1.1 christos }
953 1.1 christos
954 1.1 christos /* Are two break-/watch-points equal? */
955 1.1 christos static int
956 1.1 christos arm_linux_hw_breakpoint_equal (const struct arm_linux_hw_breakpoint *p1,
957 1.1 christos const struct arm_linux_hw_breakpoint *p2)
958 1.1 christos {
959 1.1 christos return p1->address == p2->address && p1->control == p2->control;
960 1.1 christos }
961 1.1 christos
962 1.3 christos /* Callback to mark a watch-/breakpoint to be updated in all threads of
963 1.3 christos the current process. */
964 1.3 christos
965 1.3 christos static int
966 1.9 christos update_registers_callback (struct lwp_info *lwp, int watch, int index)
967 1.3 christos {
968 1.3 christos if (lwp->arch_private == NULL)
969 1.3 christos lwp->arch_private = XCNEW (struct arch_lwp_info);
970 1.3 christos
971 1.3 christos /* The actual update is done later just before resuming the lwp,
972 1.3 christos we just mark that the registers need updating. */
973 1.9 christos if (watch)
974 1.9 christos lwp->arch_private->wpts_changed[index] = 1;
975 1.3 christos else
976 1.9 christos lwp->arch_private->bpts_changed[index] = 1;
977 1.3 christos
978 1.3 christos /* If the lwp isn't stopped, force it to momentarily pause, so
979 1.3 christos we can update its breakpoint registers. */
980 1.3 christos if (!lwp->stopped)
981 1.3 christos linux_stop_lwp (lwp);
982 1.3 christos
983 1.3 christos return 0;
984 1.3 christos }
985 1.3 christos
986 1.1 christos /* Insert the hardware breakpoint (WATCHPOINT = 0) or watchpoint (WATCHPOINT
987 1.1 christos =1) BPT for thread TID. */
988 1.1 christos static void
989 1.1 christos arm_linux_insert_hw_breakpoint1 (const struct arm_linux_hw_breakpoint* bpt,
990 1.10 christos int watchpoint)
991 1.1 christos {
992 1.3 christos int pid;
993 1.3 christos ptid_t pid_ptid;
994 1.1 christos gdb_byte count, i;
995 1.1 christos struct arm_linux_hw_breakpoint* bpts;
996 1.1 christos
997 1.8 christos pid = inferior_ptid.pid ();
998 1.8 christos pid_ptid = ptid_t (pid);
999 1.1 christos
1000 1.1 christos if (watchpoint)
1001 1.1 christos {
1002 1.1 christos count = arm_linux_get_hw_watchpoint_count ();
1003 1.3 christos bpts = arm_linux_get_debug_reg_state (pid)->wpts;
1004 1.1 christos }
1005 1.1 christos else
1006 1.1 christos {
1007 1.1 christos count = arm_linux_get_hw_breakpoint_count ();
1008 1.3 christos bpts = arm_linux_get_debug_reg_state (pid)->bpts;
1009 1.1 christos }
1010 1.1 christos
1011 1.1 christos for (i = 0; i < count; ++i)
1012 1.1 christos if (!arm_hwbp_control_is_enabled (bpts[i].control))
1013 1.1 christos {
1014 1.10 christos bpts[i] = *bpt;
1015 1.10 christos iterate_over_lwps (pid_ptid,
1016 1.9 christos [=] (struct lwp_info *info)
1017 1.9 christos {
1018 1.9 christos return update_registers_callback (info, watchpoint,
1019 1.9 christos i);
1020 1.9 christos });
1021 1.10 christos break;
1022 1.1 christos }
1023 1.1 christos
1024 1.1 christos gdb_assert (i != count);
1025 1.1 christos }
1026 1.1 christos
1027 1.1 christos /* Remove the hardware breakpoint (WATCHPOINT = 0) or watchpoint
1028 1.1 christos (WATCHPOINT = 1) BPT for thread TID. */
1029 1.1 christos static void
1030 1.1 christos arm_linux_remove_hw_breakpoint1 (const struct arm_linux_hw_breakpoint *bpt,
1031 1.10 christos int watchpoint)
1032 1.1 christos {
1033 1.3 christos int pid;
1034 1.1 christos gdb_byte count, i;
1035 1.3 christos ptid_t pid_ptid;
1036 1.3 christos struct arm_linux_hw_breakpoint* bpts;
1037 1.1 christos
1038 1.8 christos pid = inferior_ptid.pid ();
1039 1.8 christos pid_ptid = ptid_t (pid);
1040 1.1 christos
1041 1.1 christos if (watchpoint)
1042 1.1 christos {
1043 1.1 christos count = arm_linux_get_hw_watchpoint_count ();
1044 1.3 christos bpts = arm_linux_get_debug_reg_state (pid)->wpts;
1045 1.1 christos }
1046 1.1 christos else
1047 1.1 christos {
1048 1.1 christos count = arm_linux_get_hw_breakpoint_count ();
1049 1.3 christos bpts = arm_linux_get_debug_reg_state (pid)->bpts;
1050 1.1 christos }
1051 1.1 christos
1052 1.1 christos for (i = 0; i < count; ++i)
1053 1.1 christos if (arm_linux_hw_breakpoint_equal (bpt, bpts + i))
1054 1.1 christos {
1055 1.10 christos bpts[i].control = arm_hwbp_control_disable (bpts[i].control);
1056 1.9 christos iterate_over_lwps (pid_ptid,
1057 1.9 christos [=] (struct lwp_info *info)
1058 1.9 christos {
1059 1.9 christos return update_registers_callback (info, watchpoint,
1060 1.9 christos i);
1061 1.9 christos });
1062 1.10 christos break;
1063 1.1 christos }
1064 1.1 christos
1065 1.1 christos gdb_assert (i != count);
1066 1.1 christos }
1067 1.1 christos
1068 1.1 christos /* Insert a Hardware breakpoint. */
1069 1.8 christos int
1070 1.8 christos arm_linux_nat_target::insert_hw_breakpoint (struct gdbarch *gdbarch,
1071 1.8 christos struct bp_target_info *bp_tgt)
1072 1.1 christos {
1073 1.1 christos struct arm_linux_hw_breakpoint p;
1074 1.1 christos
1075 1.1 christos if (arm_linux_get_hw_breakpoint_count () == 0)
1076 1.1 christos return -1;
1077 1.1 christos
1078 1.1 christos arm_linux_hw_breakpoint_initialize (gdbarch, bp_tgt, &p);
1079 1.3 christos
1080 1.3 christos arm_linux_insert_hw_breakpoint1 (&p, 0);
1081 1.1 christos
1082 1.1 christos return 0;
1083 1.1 christos }
1084 1.1 christos
1085 1.1 christos /* Remove a hardware breakpoint. */
1086 1.8 christos int
1087 1.8 christos arm_linux_nat_target::remove_hw_breakpoint (struct gdbarch *gdbarch,
1088 1.8 christos struct bp_target_info *bp_tgt)
1089 1.1 christos {
1090 1.1 christos struct arm_linux_hw_breakpoint p;
1091 1.1 christos
1092 1.1 christos if (arm_linux_get_hw_breakpoint_count () == 0)
1093 1.1 christos return -1;
1094 1.1 christos
1095 1.1 christos arm_linux_hw_breakpoint_initialize (gdbarch, bp_tgt, &p);
1096 1.3 christos
1097 1.3 christos arm_linux_remove_hw_breakpoint1 (&p, 0);
1098 1.1 christos
1099 1.1 christos return 0;
1100 1.1 christos }
1101 1.1 christos
1102 1.1 christos /* Are we able to use a hardware watchpoint for the LEN bytes starting at
1103 1.1 christos ADDR? */
1104 1.8 christos int
1105 1.8 christos arm_linux_nat_target::region_ok_for_hw_watchpoint (CORE_ADDR addr, int len)
1106 1.1 christos {
1107 1.1 christos const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
1108 1.1 christos CORE_ADDR max_wp_length, aligned_addr;
1109 1.1 christos
1110 1.1 christos /* Can not set watchpoints for zero or negative lengths. */
1111 1.1 christos if (len <= 0)
1112 1.1 christos return 0;
1113 1.1 christos
1114 1.1 christos /* Need to be able to use the ptrace interface. */
1115 1.1 christos if (cap == NULL || cap->wp_count == 0)
1116 1.1 christos return 0;
1117 1.1 christos
1118 1.1 christos /* Test that the range [ADDR, ADDR + LEN) fits into the largest address
1119 1.1 christos range covered by a watchpoint. */
1120 1.1 christos max_wp_length = (CORE_ADDR)cap->max_wp_length;
1121 1.1 christos aligned_addr = addr & ~(max_wp_length - 1);
1122 1.1 christos
1123 1.1 christos if (aligned_addr + max_wp_length < addr + len)
1124 1.1 christos return 0;
1125 1.1 christos
1126 1.1 christos /* The current ptrace interface can only handle watchpoints that are a
1127 1.1 christos power of 2. */
1128 1.1 christos if ((len & (len - 1)) != 0)
1129 1.1 christos return 0;
1130 1.1 christos
1131 1.1 christos /* All tests passed so we must be able to set a watchpoint. */
1132 1.1 christos return 1;
1133 1.1 christos }
1134 1.1 christos
1135 1.1 christos /* Insert a Hardware breakpoint. */
1136 1.8 christos int
1137 1.8 christos arm_linux_nat_target::insert_watchpoint (CORE_ADDR addr, int len,
1138 1.8 christos enum target_hw_bp_type rw,
1139 1.8 christos struct expression *cond)
1140 1.1 christos {
1141 1.1 christos struct arm_linux_hw_breakpoint p;
1142 1.1 christos
1143 1.1 christos if (arm_linux_get_hw_watchpoint_count () == 0)
1144 1.1 christos return -1;
1145 1.1 christos
1146 1.1 christos arm_linux_hw_watchpoint_initialize (addr, len, rw, &p);
1147 1.3 christos
1148 1.3 christos arm_linux_insert_hw_breakpoint1 (&p, 1);
1149 1.1 christos
1150 1.1 christos return 0;
1151 1.1 christos }
1152 1.1 christos
1153 1.1 christos /* Remove a hardware breakpoint. */
1154 1.8 christos int
1155 1.8 christos arm_linux_nat_target::remove_watchpoint (CORE_ADDR addr,
1156 1.8 christos int len, enum target_hw_bp_type rw,
1157 1.8 christos struct expression *cond)
1158 1.1 christos {
1159 1.1 christos struct arm_linux_hw_breakpoint p;
1160 1.1 christos
1161 1.1 christos if (arm_linux_get_hw_watchpoint_count () == 0)
1162 1.1 christos return -1;
1163 1.1 christos
1164 1.1 christos arm_linux_hw_watchpoint_initialize (addr, len, rw, &p);
1165 1.3 christos
1166 1.3 christos arm_linux_remove_hw_breakpoint1 (&p, 1);
1167 1.1 christos
1168 1.1 christos return 0;
1169 1.1 christos }
1170 1.1 christos
1171 1.1 christos /* What was the data address the target was stopped on accessing. */
1172 1.8 christos bool
1173 1.8 christos arm_linux_nat_target::stopped_data_address (CORE_ADDR *addr_p)
1174 1.1 christos {
1175 1.1 christos siginfo_t siginfo;
1176 1.1 christos int slot;
1177 1.1 christos
1178 1.1 christos if (!linux_nat_get_siginfo (inferior_ptid, &siginfo))
1179 1.8 christos return false;
1180 1.1 christos
1181 1.1 christos /* This must be a hardware breakpoint. */
1182 1.1 christos if (siginfo.si_signo != SIGTRAP
1183 1.1 christos || (siginfo.si_code & 0xffff) != 0x0004 /* TRAP_HWBKPT */)
1184 1.8 christos return false;
1185 1.1 christos
1186 1.1 christos /* We must be able to set hardware watchpoints. */
1187 1.1 christos if (arm_linux_get_hw_watchpoint_count () == 0)
1188 1.1 christos return 0;
1189 1.1 christos
1190 1.1 christos slot = siginfo.si_errno;
1191 1.1 christos
1192 1.1 christos /* If we are in a positive slot then we're looking at a breakpoint and not
1193 1.1 christos a watchpoint. */
1194 1.1 christos if (slot >= 0)
1195 1.8 christos return false;
1196 1.1 christos
1197 1.1 christos *addr_p = (CORE_ADDR) (uintptr_t) siginfo.si_addr;
1198 1.8 christos return true;
1199 1.1 christos }
1200 1.1 christos
1201 1.1 christos /* Has the target been stopped by hitting a watchpoint? */
1202 1.8 christos bool
1203 1.8 christos arm_linux_nat_target::stopped_by_watchpoint ()
1204 1.1 christos {
1205 1.1 christos CORE_ADDR addr;
1206 1.8 christos return stopped_data_address (&addr);
1207 1.1 christos }
1208 1.1 christos
1209 1.8 christos bool
1210 1.8 christos arm_linux_nat_target::watchpoint_addr_within_range (CORE_ADDR addr,
1211 1.8 christos CORE_ADDR start,
1212 1.8 christos int length)
1213 1.1 christos {
1214 1.1 christos return start <= addr && start + length - 1 >= addr;
1215 1.1 christos }
1216 1.1 christos
1217 1.1 christos /* Handle thread creation. We need to copy the breakpoints and watchpoints
1218 1.1 christos in the parent thread to the child thread. */
1219 1.8 christos void
1220 1.8 christos arm_linux_nat_target::low_new_thread (struct lwp_info *lp)
1221 1.1 christos {
1222 1.3 christos int i;
1223 1.3 christos struct arch_lwp_info *info = XCNEW (struct arch_lwp_info);
1224 1.1 christos
1225 1.3 christos /* Mark that all the hardware breakpoint/watchpoint register pairs
1226 1.3 christos for this thread need to be initialized. */
1227 1.3 christos
1228 1.3 christos for (i = 0; i < MAX_BPTS; i++)
1229 1.1 christos {
1230 1.3 christos info->bpts_changed[i] = 1;
1231 1.3 christos info->wpts_changed[i] = 1;
1232 1.3 christos }
1233 1.1 christos
1234 1.3 christos lp->arch_private = info;
1235 1.3 christos }
1236 1.1 christos
1237 1.8 christos /* Function to call when a thread is being deleted. */
1238 1.8 christos
1239 1.8 christos void
1240 1.8 christos arm_linux_nat_target::low_delete_thread (struct arch_lwp_info *arch_lwp)
1241 1.8 christos {
1242 1.8 christos xfree (arch_lwp);
1243 1.8 christos }
1244 1.8 christos
1245 1.12 christos /* For PID, set the address register of hardware breakpoint pair I to
1246 1.12 christos ADDRESS. */
1247 1.12 christos
1248 1.12 christos static void
1249 1.12 christos sethbpregs_hwbp_address (int pid, int i, unsigned int address)
1250 1.12 christos {
1251 1.12 christos PTRACE_TYPE_ARG3 address_reg = (PTRACE_TYPE_ARG3) ((i << 1) + 1);
1252 1.12 christos
1253 1.12 christos errno = 0;
1254 1.12 christos
1255 1.12 christos if (ptrace (PTRACE_SETHBPREGS, pid, address_reg, &address) < 0)
1256 1.12 christos perror_with_name (_("Unexpected error updating breakpoint address"));
1257 1.12 christos }
1258 1.12 christos
1259 1.12 christos /* For PID, set the control register of hardware breakpoint pair I to
1260 1.12 christos CONTROL. */
1261 1.12 christos
1262 1.12 christos static void
1263 1.12 christos sethbpregs_hwbp_control (int pid, int i, arm_hwbp_control_t control)
1264 1.12 christos {
1265 1.12 christos PTRACE_TYPE_ARG3 control_reg = (PTRACE_TYPE_ARG3) ((i << 1) + 2);
1266 1.12 christos
1267 1.12 christos errno = 0;
1268 1.12 christos
1269 1.12 christos if (ptrace (PTRACE_SETHBPREGS, pid, control_reg, &control) < 0)
1270 1.12 christos perror_with_name (_("Unexpected error setting breakpoint control"));
1271 1.12 christos }
1272 1.12 christos
1273 1.3 christos /* Called when resuming a thread.
1274 1.3 christos The hardware debug registers are updated when there is any change. */
1275 1.1 christos
1276 1.8 christos void
1277 1.8 christos arm_linux_nat_target::low_prepare_to_resume (struct lwp_info *lwp)
1278 1.1 christos {
1279 1.3 christos int pid, i;
1280 1.3 christos struct arm_linux_hw_breakpoint *bpts, *wpts;
1281 1.3 christos struct arch_lwp_info *arm_lwp_info = lwp->arch_private;
1282 1.3 christos
1283 1.8 christos pid = lwp->ptid.lwp ();
1284 1.8 christos bpts = arm_linux_get_debug_reg_state (lwp->ptid.pid ())->bpts;
1285 1.8 christos wpts = arm_linux_get_debug_reg_state (lwp->ptid.pid ())->wpts;
1286 1.3 christos
1287 1.3 christos /* NULL means this is the main thread still going through the shell,
1288 1.3 christos or, no watchpoint has been set yet. In that case, there's
1289 1.3 christos nothing to do. */
1290 1.3 christos if (arm_lwp_info == NULL)
1291 1.3 christos return;
1292 1.3 christos
1293 1.3 christos for (i = 0; i < arm_linux_get_hw_breakpoint_count (); i++)
1294 1.3 christos if (arm_lwp_info->bpts_changed[i])
1295 1.3 christos {
1296 1.12 christos unsigned int address = bpts[i].address;
1297 1.12 christos arm_hwbp_control_t control = bpts[i].control;
1298 1.10 christos
1299 1.12 christos if (!arm_hwbp_control_is_initialized (control))
1300 1.12 christos {
1301 1.12 christos /* Nothing to do. */
1302 1.12 christos }
1303 1.12 christos else if (!arm_hwbp_control_is_enabled (control))
1304 1.12 christos {
1305 1.12 christos /* Disable hardware breakpoint, just write the control
1306 1.12 christos register. */
1307 1.12 christos sethbpregs_hwbp_control (pid, i, control);
1308 1.12 christos }
1309 1.12 christos else
1310 1.12 christos {
1311 1.12 christos /* We used to do here simply:
1312 1.12 christos 1. address_reg = address
1313 1.12 christos 2. control_reg = control
1314 1.12 christos but the write to address_reg can fail for thumb2 instructions if
1315 1.12 christos the address is not 4-byte aligned.
1316 1.12 christos
1317 1.12 christos It's not clear whether this is a kernel bug or not, partly
1318 1.12 christos because PTRACE_SETHBPREGS is undocumented.
1319 1.12 christos
1320 1.12 christos The context is that we're using two ptrace calls to set the two
1321 1.12 christos halves of a register pair. For each ptrace call, the kernel must
1322 1.12 christos check the arguments, and return -1 and set errno appropriately if
1323 1.12 christos something is wrong. One of the aspects that needs validation is
1324 1.12 christos whether, in terms of hw_breakpoint_arch_parse, the breakpoint
1325 1.12 christos address matches the breakpoint length. This aspect can only be
1326 1.12 christos checked by looking in both registers, which only makes sense
1327 1.12 christos once a pair is written in full.
1328 1.12 christos
1329 1.12 christos The problem is that the kernel checks this aspect after each
1330 1.12 christos ptrace call, and consequently for the first call it may be
1331 1.12 christos checking this aspect using a default or previous value for the
1332 1.12 christos part of the pair not written by the call. A possible fix for
1333 1.12 christos this would be to only check this aspect when writing the
1334 1.12 christos control reg.
1335 1.12 christos
1336 1.12 christos Work around this by first using an inoffensive address, which is
1337 1.12 christos guaranteed to hit the offset == 0 case in
1338 1.12 christos hw_breakpoint_arch_parse. */
1339 1.12 christos unsigned int aligned_address = address & ~0x7U;
1340 1.12 christos if (aligned_address != address)
1341 1.12 christos {
1342 1.12 christos sethbpregs_hwbp_address (pid, i, aligned_address);
1343 1.12 christos sethbpregs_hwbp_control (pid, i, control);
1344 1.12 christos }
1345 1.12 christos sethbpregs_hwbp_address (pid, i, address);
1346 1.12 christos sethbpregs_hwbp_control (pid, i, control);
1347 1.12 christos }
1348 1.3 christos
1349 1.10 christos arm_lwp_info->bpts_changed[i] = 0;
1350 1.3 christos }
1351 1.1 christos
1352 1.3 christos for (i = 0; i < arm_linux_get_hw_watchpoint_count (); i++)
1353 1.3 christos if (arm_lwp_info->wpts_changed[i])
1354 1.3 christos {
1355 1.10 christos errno = 0;
1356 1.10 christos if (arm_hwbp_control_is_enabled (wpts[i].control))
1357 1.10 christos if (ptrace (PTRACE_SETHBPREGS, pid,
1358 1.10 christos (PTRACE_TYPE_ARG3) -((i << 1) + 1), &wpts[i].address) < 0)
1359 1.10 christos perror_with_name (_("Unexpected error setting watchpoint"));
1360 1.10 christos
1361 1.10 christos if (wpts[i].control != 0)
1362 1.10 christos if (ptrace (PTRACE_SETHBPREGS, pid,
1363 1.10 christos (PTRACE_TYPE_ARG3) -((i << 1) + 2), &wpts[i].control) < 0)
1364 1.10 christos perror_with_name (_("Unexpected error setting watchpoint"));
1365 1.1 christos
1366 1.10 christos arm_lwp_info->wpts_changed[i] = 0;
1367 1.3 christos }
1368 1.3 christos }
1369 1.1 christos
1370 1.3 christos /* linux_nat_new_fork hook. */
1371 1.1 christos
1372 1.8 christos void
1373 1.8 christos arm_linux_nat_target::low_new_fork (struct lwp_info *parent, pid_t child_pid)
1374 1.3 christos {
1375 1.3 christos pid_t parent_pid;
1376 1.3 christos struct arm_linux_debug_reg_state *parent_state;
1377 1.3 christos struct arm_linux_debug_reg_state *child_state;
1378 1.3 christos
1379 1.3 christos /* NULL means no watchpoint has ever been set in the parent. In
1380 1.3 christos that case, there's nothing to do. */
1381 1.3 christos if (parent->arch_private == NULL)
1382 1.3 christos return;
1383 1.1 christos
1384 1.3 christos /* GDB core assumes the child inherits the watchpoints/hw
1385 1.3 christos breakpoints of the parent, and will remove them all from the
1386 1.3 christos forked off process. Copy the debug registers mirrors into the
1387 1.3 christos new process so that all breakpoints and watchpoints can be
1388 1.3 christos removed together. */
1389 1.3 christos
1390 1.8 christos parent_pid = parent->ptid.pid ();
1391 1.3 christos parent_state = arm_linux_get_debug_reg_state (parent_pid);
1392 1.3 christos child_state = arm_linux_get_debug_reg_state (child_pid);
1393 1.3 christos *child_state = *parent_state;
1394 1.1 christos }
1395 1.1 christos
1396 1.9 christos void _initialize_arm_linux_nat ();
1397 1.1 christos void
1398 1.9 christos _initialize_arm_linux_nat ()
1399 1.1 christos {
1400 1.1 christos /* Register the target. */
1401 1.8 christos linux_target = &the_arm_linux_nat_target;
1402 1.8 christos add_inf_child_target (&the_arm_linux_nat_target);
1403 1.1 christos }
1404