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arm-linux-nat.c revision 1.6
      1  1.1  christos /* GNU/Linux on ARM native support.
      2  1.6  christos    Copyright (C) 1999-2016 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 "defs.h"
     20  1.1  christos #include "inferior.h"
     21  1.1  christos #include "gdbcore.h"
     22  1.1  christos #include "regcache.h"
     23  1.1  christos #include "target.h"
     24  1.1  christos #include "linux-nat.h"
     25  1.1  christos #include "target-descriptions.h"
     26  1.1  christos #include "auxv.h"
     27  1.1  christos #include "observer.h"
     28  1.1  christos #include "gdbthread.h"
     29  1.1  christos 
     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  1.5  christos 
     42  1.1  christos /* Prototypes for supply_gregset etc.  */
     43  1.1  christos #include "gregset.h"
     44  1.1  christos 
     45  1.1  christos /* Defines ps_err_e, struct ps_prochandle.  */
     46  1.1  christos #include "gdb_proc_service.h"
     47  1.1  christos 
     48  1.1  christos #ifndef PTRACE_GET_THREAD_AREA
     49  1.1  christos #define PTRACE_GET_THREAD_AREA 22
     50  1.1  christos #endif
     51  1.1  christos 
     52  1.1  christos #ifndef PTRACE_GETWMMXREGS
     53  1.1  christos #define PTRACE_GETWMMXREGS 18
     54  1.1  christos #define PTRACE_SETWMMXREGS 19
     55  1.1  christos #endif
     56  1.1  christos 
     57  1.1  christos #ifndef PTRACE_GETVFPREGS
     58  1.1  christos #define PTRACE_GETVFPREGS 27
     59  1.1  christos #define PTRACE_SETVFPREGS 28
     60  1.1  christos #endif
     61  1.1  christos 
     62  1.1  christos #ifndef PTRACE_GETHBPREGS
     63  1.1  christos #define PTRACE_GETHBPREGS 29
     64  1.1  christos #define PTRACE_SETHBPREGS 30
     65  1.1  christos #endif
     66  1.1  christos 
     67  1.1  christos extern int arm_apcs_32;
     68  1.1  christos 
     69  1.1  christos /* Get the whole floating point state of the process and store it
     70  1.1  christos    into regcache.  */
     71  1.1  christos 
     72  1.1  christos static void
     73  1.1  christos fetch_fpregs (struct regcache *regcache)
     74  1.1  christos {
     75  1.1  christos   int ret, regno, tid;
     76  1.1  christos   gdb_byte fp[ARM_LINUX_SIZEOF_NWFPE];
     77  1.1  christos 
     78  1.1  christos   /* Get the thread id for the ptrace call.  */
     79  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
     80  1.5  christos 
     81  1.1  christos   /* Read the floating point state.  */
     82  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
     83  1.5  christos     {
     84  1.5  christos       struct iovec iov;
     85  1.5  christos 
     86  1.5  christos       iov.iov_base = &fp;
     87  1.5  christos       iov.iov_len = ARM_LINUX_SIZEOF_NWFPE;
     88  1.5  christos 
     89  1.5  christos       ret = ptrace (PTRACE_GETREGSET, tid, NT_FPREGSET, &iov);
     90  1.5  christos     }
     91  1.5  christos   else
     92  1.5  christos     ret = ptrace (PT_GETFPREGS, tid, 0, fp);
     93  1.5  christos 
     94  1.1  christos   if (ret < 0)
     95  1.6  christos     perror_with_name (_("Unable to fetch the floating point registers."));
     96  1.1  christos 
     97  1.1  christos   /* Fetch fpsr.  */
     98  1.1  christos   regcache_raw_supply (regcache, ARM_FPS_REGNUM,
     99  1.1  christos 		       fp + NWFPE_FPSR_OFFSET);
    100  1.1  christos 
    101  1.1  christos   /* Fetch the floating point registers.  */
    102  1.1  christos   for (regno = ARM_F0_REGNUM; regno <= ARM_F7_REGNUM; regno++)
    103  1.1  christos     supply_nwfpe_register (regcache, regno, fp);
    104  1.1  christos }
    105  1.1  christos 
    106  1.1  christos /* Save the whole floating point state of the process using
    107  1.1  christos    the contents from regcache.  */
    108  1.1  christos 
    109  1.1  christos static void
    110  1.1  christos store_fpregs (const struct regcache *regcache)
    111  1.1  christos {
    112  1.1  christos   int ret, regno, tid;
    113  1.1  christos   gdb_byte fp[ARM_LINUX_SIZEOF_NWFPE];
    114  1.1  christos 
    115  1.1  christos   /* Get the thread id for the ptrace call.  */
    116  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
    117  1.5  christos 
    118  1.1  christos   /* Read the floating point state.  */
    119  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    120  1.5  christos     {
    121  1.5  christos       elf_fpregset_t fpregs;
    122  1.5  christos       struct iovec iov;
    123  1.5  christos 
    124  1.5  christos       iov.iov_base = &fpregs;
    125  1.5  christos       iov.iov_len = sizeof (fpregs);
    126  1.5  christos 
    127  1.5  christos       ret = ptrace (PTRACE_GETREGSET, tid, NT_FPREGSET, &iov);
    128  1.5  christos     }
    129  1.5  christos   else
    130  1.5  christos     ret = ptrace (PT_GETFPREGS, tid, 0, fp);
    131  1.5  christos 
    132  1.1  christos   if (ret < 0)
    133  1.6  christos     perror_with_name (_("Unable to fetch the floating point registers."));
    134  1.1  christos 
    135  1.1  christos   /* Store fpsr.  */
    136  1.1  christos   if (REG_VALID == regcache_register_status (regcache, ARM_FPS_REGNUM))
    137  1.1  christos     regcache_raw_collect (regcache, ARM_FPS_REGNUM, fp + NWFPE_FPSR_OFFSET);
    138  1.1  christos 
    139  1.1  christos   /* Store the floating point registers.  */
    140  1.1  christos   for (regno = ARM_F0_REGNUM; regno <= ARM_F7_REGNUM; regno++)
    141  1.1  christos     if (REG_VALID == regcache_register_status (regcache, regno))
    142  1.1  christos       collect_nwfpe_register (regcache, regno, fp);
    143  1.1  christos 
    144  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    145  1.5  christos     {
    146  1.5  christos       struct iovec iov;
    147  1.5  christos 
    148  1.5  christos       iov.iov_base = &fp;
    149  1.5  christos       iov.iov_len = ARM_LINUX_SIZEOF_NWFPE;
    150  1.5  christos 
    151  1.5  christos       ret = ptrace (PTRACE_SETREGSET, tid, NT_FPREGSET, &iov);
    152  1.5  christos     }
    153  1.5  christos   else
    154  1.5  christos     ret = ptrace (PTRACE_SETFPREGS, tid, 0, fp);
    155  1.5  christos 
    156  1.1  christos   if (ret < 0)
    157  1.6  christos     perror_with_name (_("Unable to store floating point registers."));
    158  1.1  christos }
    159  1.1  christos 
    160  1.1  christos /* Fetch all general registers of the process and store into
    161  1.1  christos    regcache.  */
    162  1.1  christos 
    163  1.1  christos static void
    164  1.1  christos fetch_regs (struct regcache *regcache)
    165  1.1  christos {
    166  1.1  christos   int ret, regno, tid;
    167  1.1  christos   elf_gregset_t regs;
    168  1.1  christos 
    169  1.1  christos   /* Get the thread id for the ptrace call.  */
    170  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
    171  1.5  christos 
    172  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    173  1.5  christos     {
    174  1.5  christos       struct iovec iov;
    175  1.5  christos 
    176  1.5  christos       iov.iov_base = &regs;
    177  1.5  christos       iov.iov_len = sizeof (regs);
    178  1.5  christos 
    179  1.5  christos       ret = ptrace (PTRACE_GETREGSET, tid, NT_PRSTATUS, &iov);
    180  1.5  christos     }
    181  1.5  christos   else
    182  1.5  christos     ret = ptrace (PTRACE_GETREGS, tid, 0, &regs);
    183  1.5  christos 
    184  1.1  christos   if (ret < 0)
    185  1.6  christos     perror_with_name (_("Unable to fetch general registers."));
    186  1.5  christos 
    187  1.6  christos   aarch32_gp_regcache_supply (regcache, (uint32_t *) regs, arm_apcs_32);
    188  1.1  christos }
    189  1.1  christos 
    190  1.1  christos static void
    191  1.1  christos store_regs (const struct regcache *regcache)
    192  1.1  christos {
    193  1.1  christos   int ret, regno, tid;
    194  1.1  christos   elf_gregset_t regs;
    195  1.1  christos 
    196  1.1  christos   /* Get the thread id for the ptrace call.  */
    197  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
    198  1.5  christos 
    199  1.1  christos   /* Fetch the general registers.  */
    200  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    201  1.5  christos     {
    202  1.5  christos       struct iovec iov;
    203  1.5  christos 
    204  1.5  christos       iov.iov_base = &regs;
    205  1.5  christos       iov.iov_len = sizeof (regs);
    206  1.5  christos 
    207  1.5  christos       ret = ptrace (PTRACE_GETREGSET, tid, NT_PRSTATUS, &iov);
    208  1.5  christos     }
    209  1.5  christos   else
    210  1.5  christos     ret = ptrace (PTRACE_GETREGS, tid, 0, &regs);
    211  1.5  christos 
    212  1.1  christos   if (ret < 0)
    213  1.6  christos     perror_with_name (_("Unable to fetch general registers."));
    214  1.1  christos 
    215  1.6  christos   aarch32_gp_regcache_collect (regcache, (uint32_t *) regs, arm_apcs_32);
    216  1.1  christos 
    217  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    218  1.5  christos     {
    219  1.5  christos       struct iovec iov;
    220  1.5  christos 
    221  1.5  christos       iov.iov_base = &regs;
    222  1.5  christos       iov.iov_len = sizeof (regs);
    223  1.5  christos 
    224  1.5  christos       ret = ptrace (PTRACE_SETREGSET, tid, NT_PRSTATUS, &iov);
    225  1.5  christos     }
    226  1.5  christos   else
    227  1.5  christos     ret = ptrace (PTRACE_SETREGS, tid, 0, &regs);
    228  1.1  christos 
    229  1.1  christos   if (ret < 0)
    230  1.6  christos     perror_with_name (_("Unable to store general registers."));
    231  1.1  christos }
    232  1.1  christos 
    233  1.1  christos /* Fetch all WMMX registers of the process and store into
    234  1.1  christos    regcache.  */
    235  1.1  christos 
    236  1.1  christos #define IWMMXT_REGS_SIZE (16 * 8 + 6 * 4)
    237  1.1  christos 
    238  1.1  christos static void
    239  1.1  christos fetch_wmmx_regs (struct regcache *regcache)
    240  1.1  christos {
    241  1.1  christos   char regbuf[IWMMXT_REGS_SIZE];
    242  1.1  christos   int ret, regno, tid;
    243  1.1  christos 
    244  1.1  christos   /* Get the thread id for the ptrace call.  */
    245  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
    246  1.1  christos 
    247  1.1  christos   ret = ptrace (PTRACE_GETWMMXREGS, tid, 0, regbuf);
    248  1.1  christos   if (ret < 0)
    249  1.6  christos     perror_with_name (_("Unable to fetch WMMX registers."));
    250  1.1  christos 
    251  1.1  christos   for (regno = 0; regno < 16; regno++)
    252  1.1  christos     regcache_raw_supply (regcache, regno + ARM_WR0_REGNUM,
    253  1.1  christos 			 &regbuf[regno * 8]);
    254  1.1  christos 
    255  1.1  christos   for (regno = 0; regno < 2; regno++)
    256  1.1  christos     regcache_raw_supply (regcache, regno + ARM_WCSSF_REGNUM,
    257  1.1  christos 			 &regbuf[16 * 8 + regno * 4]);
    258  1.1  christos 
    259  1.1  christos   for (regno = 0; regno < 4; regno++)
    260  1.1  christos     regcache_raw_supply (regcache, regno + ARM_WCGR0_REGNUM,
    261  1.1  christos 			 &regbuf[16 * 8 + 2 * 4 + regno * 4]);
    262  1.1  christos }
    263  1.1  christos 
    264  1.1  christos static void
    265  1.1  christos store_wmmx_regs (const struct regcache *regcache)
    266  1.1  christos {
    267  1.1  christos   char regbuf[IWMMXT_REGS_SIZE];
    268  1.1  christos   int ret, regno, tid;
    269  1.1  christos 
    270  1.1  christos   /* Get the thread id for the ptrace call.  */
    271  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
    272  1.1  christos 
    273  1.1  christos   ret = ptrace (PTRACE_GETWMMXREGS, tid, 0, regbuf);
    274  1.1  christos   if (ret < 0)
    275  1.6  christos     perror_with_name (_("Unable to fetch WMMX registers."));
    276  1.1  christos 
    277  1.1  christos   for (regno = 0; regno < 16; regno++)
    278  1.1  christos     if (REG_VALID == regcache_register_status (regcache,
    279  1.1  christos 					       regno + ARM_WR0_REGNUM))
    280  1.1  christos       regcache_raw_collect (regcache, regno + ARM_WR0_REGNUM,
    281  1.1  christos 			    &regbuf[regno * 8]);
    282  1.1  christos 
    283  1.1  christos   for (regno = 0; regno < 2; regno++)
    284  1.1  christos     if (REG_VALID == regcache_register_status (regcache,
    285  1.1  christos 					       regno + ARM_WCSSF_REGNUM))
    286  1.1  christos       regcache_raw_collect (regcache, regno + ARM_WCSSF_REGNUM,
    287  1.1  christos 			    &regbuf[16 * 8 + regno * 4]);
    288  1.1  christos 
    289  1.1  christos   for (regno = 0; regno < 4; regno++)
    290  1.1  christos     if (REG_VALID == regcache_register_status (regcache,
    291  1.1  christos 					       regno + ARM_WCGR0_REGNUM))
    292  1.1  christos       regcache_raw_collect (regcache, regno + ARM_WCGR0_REGNUM,
    293  1.1  christos 			    &regbuf[16 * 8 + 2 * 4 + regno * 4]);
    294  1.1  christos 
    295  1.1  christos   ret = ptrace (PTRACE_SETWMMXREGS, tid, 0, regbuf);
    296  1.1  christos 
    297  1.1  christos   if (ret < 0)
    298  1.6  christos     perror_with_name (_("Unable to store WMMX registers."));
    299  1.1  christos }
    300  1.1  christos 
    301  1.1  christos static void
    302  1.1  christos fetch_vfp_regs (struct regcache *regcache)
    303  1.1  christos {
    304  1.6  christos   gdb_byte regbuf[VFP_REGS_SIZE];
    305  1.1  christos   int ret, regno, tid;
    306  1.5  christos   struct gdbarch *gdbarch = get_regcache_arch (regcache);
    307  1.5  christos   struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
    308  1.1  christos 
    309  1.1  christos   /* Get the thread id for the ptrace call.  */
    310  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
    311  1.1  christos 
    312  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    313  1.5  christos     {
    314  1.5  christos       struct iovec iov;
    315  1.5  christos 
    316  1.5  christos       iov.iov_base = regbuf;
    317  1.5  christos       iov.iov_len = VFP_REGS_SIZE;
    318  1.5  christos       ret = ptrace (PTRACE_GETREGSET, tid, NT_ARM_VFP, &iov);
    319  1.5  christos     }
    320  1.5  christos   else
    321  1.5  christos     ret = ptrace (PTRACE_GETVFPREGS, tid, 0, regbuf);
    322  1.5  christos 
    323  1.1  christos   if (ret < 0)
    324  1.6  christos     perror_with_name (_("Unable to fetch VFP registers."));
    325  1.1  christos 
    326  1.6  christos   aarch32_vfp_regcache_supply (regcache, regbuf,
    327  1.6  christos 			       tdep->vfp_register_count);
    328  1.1  christos }
    329  1.1  christos 
    330  1.1  christos static void
    331  1.1  christos store_vfp_regs (const struct regcache *regcache)
    332  1.1  christos {
    333  1.6  christos   gdb_byte regbuf[VFP_REGS_SIZE];
    334  1.1  christos   int ret, regno, tid;
    335  1.5  christos   struct gdbarch *gdbarch = get_regcache_arch (regcache);
    336  1.5  christos   struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
    337  1.1  christos 
    338  1.1  christos   /* Get the thread id for the ptrace call.  */
    339  1.6  christos   tid = ptid_get_lwp (inferior_ptid);
    340  1.1  christos 
    341  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    342  1.5  christos     {
    343  1.5  christos       struct iovec iov;
    344  1.5  christos 
    345  1.5  christos       iov.iov_base = regbuf;
    346  1.5  christos       iov.iov_len = VFP_REGS_SIZE;
    347  1.5  christos       ret = ptrace (PTRACE_GETREGSET, tid, NT_ARM_VFP, &iov);
    348  1.5  christos     }
    349  1.5  christos   else
    350  1.5  christos     ret = ptrace (PTRACE_GETVFPREGS, tid, 0, regbuf);
    351  1.5  christos 
    352  1.1  christos   if (ret < 0)
    353  1.6  christos     perror_with_name (_("Unable to fetch VFP registers (for update)."));
    354  1.1  christos 
    355  1.6  christos   aarch32_vfp_regcache_collect (regcache, regbuf,
    356  1.6  christos 				tdep->vfp_register_count);
    357  1.1  christos 
    358  1.5  christos   if (have_ptrace_getregset == TRIBOOL_TRUE)
    359  1.5  christos     {
    360  1.5  christos       struct iovec iov;
    361  1.5  christos 
    362  1.5  christos       iov.iov_base = regbuf;
    363  1.5  christos       iov.iov_len = VFP_REGS_SIZE;
    364  1.5  christos       ret = ptrace (PTRACE_SETREGSET, tid, NT_ARM_VFP, &iov);
    365  1.5  christos     }
    366  1.5  christos   else
    367  1.5  christos     ret = ptrace (PTRACE_SETVFPREGS, tid, 0, regbuf);
    368  1.1  christos 
    369  1.1  christos   if (ret < 0)
    370  1.6  christos     perror_with_name (_("Unable to store VFP registers."));
    371  1.1  christos }
    372  1.1  christos 
    373  1.1  christos /* Fetch registers from the child process.  Fetch all registers if
    374  1.1  christos    regno == -1, otherwise fetch all general registers or all floating
    375  1.1  christos    point registers depending upon the value of regno.  */
    376  1.1  christos 
    377  1.1  christos static void
    378  1.1  christos arm_linux_fetch_inferior_registers (struct target_ops *ops,
    379  1.1  christos 				    struct regcache *regcache, int regno)
    380  1.1  christos {
    381  1.5  christos   struct gdbarch *gdbarch = get_regcache_arch (regcache);
    382  1.5  christos   struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
    383  1.5  christos 
    384  1.1  christos   if (-1 == regno)
    385  1.1  christos     {
    386  1.1  christos       fetch_regs (regcache);
    387  1.1  christos       fetch_fpregs (regcache);
    388  1.5  christos       if (tdep->have_wmmx_registers)
    389  1.1  christos 	fetch_wmmx_regs (regcache);
    390  1.5  christos       if (tdep->vfp_register_count > 0)
    391  1.1  christos 	fetch_vfp_regs (regcache);
    392  1.1  christos     }
    393  1.1  christos   else
    394  1.1  christos     {
    395  1.1  christos       if (regno < ARM_F0_REGNUM || regno == ARM_PS_REGNUM)
    396  1.6  christos 	fetch_regs (regcache);
    397  1.1  christos       else if (regno >= ARM_F0_REGNUM && regno <= ARM_FPS_REGNUM)
    398  1.6  christos 	fetch_fpregs (regcache);
    399  1.5  christos       else if (tdep->have_wmmx_registers
    400  1.1  christos 	       && regno >= ARM_WR0_REGNUM && regno <= ARM_WCGR7_REGNUM)
    401  1.1  christos 	fetch_wmmx_regs (regcache);
    402  1.5  christos       else if (tdep->vfp_register_count > 0
    403  1.1  christos 	       && regno >= ARM_D0_REGNUM
    404  1.5  christos 	       && regno <= ARM_D0_REGNUM + tdep->vfp_register_count)
    405  1.1  christos 	fetch_vfp_regs (regcache);
    406  1.1  christos     }
    407  1.1  christos }
    408  1.1  christos 
    409  1.1  christos /* Store registers back into the inferior.  Store all registers if
    410  1.1  christos    regno == -1, otherwise store all general registers or all floating
    411  1.1  christos    point registers depending upon the value of regno.  */
    412  1.1  christos 
    413  1.1  christos static void
    414  1.1  christos arm_linux_store_inferior_registers (struct target_ops *ops,
    415  1.1  christos 				    struct regcache *regcache, int regno)
    416  1.1  christos {
    417  1.5  christos   struct gdbarch *gdbarch = get_regcache_arch (regcache);
    418  1.5  christos   struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
    419  1.5  christos 
    420  1.1  christos   if (-1 == regno)
    421  1.1  christos     {
    422  1.1  christos       store_regs (regcache);
    423  1.1  christos       store_fpregs (regcache);
    424  1.5  christos       if (tdep->have_wmmx_registers)
    425  1.1  christos 	store_wmmx_regs (regcache);
    426  1.5  christos       if (tdep->vfp_register_count > 0)
    427  1.1  christos 	store_vfp_regs (regcache);
    428  1.1  christos     }
    429  1.1  christos   else
    430  1.1  christos     {
    431  1.1  christos       if (regno < ARM_F0_REGNUM || regno == ARM_PS_REGNUM)
    432  1.6  christos 	store_regs (regcache);
    433  1.1  christos       else if ((regno >= ARM_F0_REGNUM) && (regno <= ARM_FPS_REGNUM))
    434  1.6  christos 	store_fpregs (regcache);
    435  1.5  christos       else if (tdep->have_wmmx_registers
    436  1.1  christos 	       && regno >= ARM_WR0_REGNUM && regno <= ARM_WCGR7_REGNUM)
    437  1.1  christos 	store_wmmx_regs (regcache);
    438  1.5  christos       else if (tdep->vfp_register_count > 0
    439  1.1  christos 	       && regno >= ARM_D0_REGNUM
    440  1.5  christos 	       && regno <= ARM_D0_REGNUM + tdep->vfp_register_count)
    441  1.1  christos 	store_vfp_regs (regcache);
    442  1.1  christos     }
    443  1.1  christos }
    444  1.1  christos 
    445  1.1  christos /* Wrapper functions for the standard regset handling, used by
    446  1.1  christos    thread debugging.  */
    447  1.1  christos 
    448  1.1  christos void
    449  1.1  christos fill_gregset (const struct regcache *regcache,
    450  1.1  christos 	      gdb_gregset_t *gregsetp, int regno)
    451  1.1  christos {
    452  1.1  christos   arm_linux_collect_gregset (NULL, regcache, regno, gregsetp, 0);
    453  1.1  christos }
    454  1.1  christos 
    455  1.1  christos void
    456  1.1  christos supply_gregset (struct regcache *regcache, const gdb_gregset_t *gregsetp)
    457  1.1  christos {
    458  1.1  christos   arm_linux_supply_gregset (NULL, regcache, -1, gregsetp, 0);
    459  1.1  christos }
    460  1.1  christos 
    461  1.1  christos void
    462  1.1  christos fill_fpregset (const struct regcache *regcache,
    463  1.1  christos 	       gdb_fpregset_t *fpregsetp, int regno)
    464  1.1  christos {
    465  1.1  christos   arm_linux_collect_nwfpe (NULL, regcache, regno, fpregsetp, 0);
    466  1.1  christos }
    467  1.1  christos 
    468  1.1  christos /* Fill GDB's register array with the floating-point register values
    469  1.1  christos    in *fpregsetp.  */
    470  1.1  christos 
    471  1.1  christos void
    472  1.1  christos supply_fpregset (struct regcache *regcache, const gdb_fpregset_t *fpregsetp)
    473  1.1  christos {
    474  1.1  christos   arm_linux_supply_nwfpe (NULL, regcache, -1, fpregsetp, 0);
    475  1.1  christos }
    476  1.1  christos 
    477  1.1  christos /* Fetch the thread-local storage pointer for libthread_db.  */
    478  1.1  christos 
    479  1.1  christos ps_err_e
    480  1.6  christos ps_get_thread_area (struct ps_prochandle *ph,
    481  1.1  christos                     lwpid_t lwpid, int idx, void **base)
    482  1.1  christos {
    483  1.1  christos   if (ptrace (PTRACE_GET_THREAD_AREA, lwpid, NULL, base) != 0)
    484  1.1  christos     return PS_ERR;
    485  1.1  christos 
    486  1.1  christos   /* IDX is the bias from the thread pointer to the beginning of the
    487  1.1  christos      thread descriptor.  It has to be subtracted due to implementation
    488  1.1  christos      quirks in libthread_db.  */
    489  1.1  christos   *base = (void *) ((char *)*base - idx);
    490  1.1  christos 
    491  1.1  christos   return PS_OK;
    492  1.1  christos }
    493  1.1  christos 
    494  1.1  christos static const struct target_desc *
    495  1.1  christos arm_linux_read_description (struct target_ops *ops)
    496  1.1  christos {
    497  1.1  christos   CORE_ADDR arm_hwcap = 0;
    498  1.5  christos 
    499  1.5  christos   if (have_ptrace_getregset == TRIBOOL_UNKNOWN)
    500  1.5  christos     {
    501  1.5  christos       elf_gregset_t gpregs;
    502  1.5  christos       struct iovec iov;
    503  1.6  christos       int tid = ptid_get_lwp (inferior_ptid);
    504  1.5  christos 
    505  1.5  christos       iov.iov_base = &gpregs;
    506  1.5  christos       iov.iov_len = sizeof (gpregs);
    507  1.5  christos 
    508  1.5  christos       /* Check if PTRACE_GETREGSET works.  */
    509  1.5  christos       if (ptrace (PTRACE_GETREGSET, tid, NT_PRSTATUS, &iov) < 0)
    510  1.5  christos 	have_ptrace_getregset = TRIBOOL_FALSE;
    511  1.5  christos       else
    512  1.5  christos 	have_ptrace_getregset = TRIBOOL_TRUE;
    513  1.5  christos     }
    514  1.1  christos 
    515  1.1  christos   if (target_auxv_search (ops, AT_HWCAP, &arm_hwcap) != 1)
    516  1.1  christos     {
    517  1.3  christos       return ops->beneath->to_read_description (ops->beneath);
    518  1.1  christos     }
    519  1.1  christos 
    520  1.1  christos   if (arm_hwcap & HWCAP_IWMMXT)
    521  1.5  christos     return tdesc_arm_with_iwmmxt;
    522  1.1  christos 
    523  1.1  christos   if (arm_hwcap & HWCAP_VFP)
    524  1.1  christos     {
    525  1.1  christos       int pid;
    526  1.1  christos       char *buf;
    527  1.1  christos       const struct target_desc * result = NULL;
    528  1.1  christos 
    529  1.1  christos       /* NEON implies VFPv3-D32 or no-VFP unit.  Say that we only support
    530  1.1  christos 	 Neon with VFPv3-D32.  */
    531  1.1  christos       if (arm_hwcap & HWCAP_NEON)
    532  1.5  christos 	result = tdesc_arm_with_neon;
    533  1.1  christos       else if ((arm_hwcap & (HWCAP_VFPv3 | HWCAP_VFPv3D16)) == HWCAP_VFPv3)
    534  1.5  christos 	result = tdesc_arm_with_vfpv3;
    535  1.1  christos       else
    536  1.5  christos 	result = tdesc_arm_with_vfpv2;
    537  1.1  christos 
    538  1.1  christos       /* Now make sure that the kernel supports reading these
    539  1.1  christos 	 registers.  Support was added in 2.6.30.  */
    540  1.1  christos       pid = ptid_get_lwp (inferior_ptid);
    541  1.1  christos       errno = 0;
    542  1.6  christos       buf = (char *) alloca (VFP_REGS_SIZE);
    543  1.1  christos       if (ptrace (PTRACE_GETVFPREGS, pid, 0, buf) < 0
    544  1.1  christos 	  && errno == EIO)
    545  1.1  christos 	result = NULL;
    546  1.1  christos 
    547  1.1  christos       return result;
    548  1.1  christos     }
    549  1.1  christos 
    550  1.3  christos   return ops->beneath->to_read_description (ops->beneath);
    551  1.1  christos }
    552  1.1  christos 
    553  1.1  christos /* Information describing the hardware breakpoint capabilities.  */
    554  1.1  christos struct arm_linux_hwbp_cap
    555  1.1  christos {
    556  1.1  christos   gdb_byte arch;
    557  1.1  christos   gdb_byte max_wp_length;
    558  1.1  christos   gdb_byte wp_count;
    559  1.1  christos   gdb_byte bp_count;
    560  1.1  christos };
    561  1.1  christos 
    562  1.3  christos /* Since we cannot dynamically allocate subfields of arm_linux_process_info,
    563  1.3  christos    assume a maximum number of supported break-/watchpoints.  */
    564  1.3  christos #define MAX_BPTS 16
    565  1.3  christos #define MAX_WPTS 16
    566  1.3  christos 
    567  1.1  christos /* Get hold of the Hardware Breakpoint information for the target we are
    568  1.1  christos    attached to.  Returns NULL if the kernel doesn't support Hardware
    569  1.1  christos    breakpoints at all, or a pointer to the information structure.  */
    570  1.1  christos static const struct arm_linux_hwbp_cap *
    571  1.1  christos arm_linux_get_hwbp_cap (void)
    572  1.1  christos {
    573  1.1  christos   /* The info structure we return.  */
    574  1.1  christos   static struct arm_linux_hwbp_cap info;
    575  1.1  christos 
    576  1.1  christos   /* Is INFO in a good state?  -1 means that no attempt has been made to
    577  1.1  christos      initialize INFO; 0 means an attempt has been made, but it failed; 1
    578  1.1  christos      means INFO is in an initialized state.  */
    579  1.1  christos   static int available = -1;
    580  1.1  christos 
    581  1.1  christos   if (available == -1)
    582  1.1  christos     {
    583  1.1  christos       int tid;
    584  1.1  christos       unsigned int val;
    585  1.1  christos 
    586  1.6  christos       tid = ptid_get_lwp (inferior_ptid);
    587  1.1  christos       if (ptrace (PTRACE_GETHBPREGS, tid, 0, &val) < 0)
    588  1.1  christos 	available = 0;
    589  1.1  christos       else
    590  1.1  christos 	{
    591  1.1  christos 	  info.arch = (gdb_byte)((val >> 24) & 0xff);
    592  1.1  christos 	  info.max_wp_length = (gdb_byte)((val >> 16) & 0xff);
    593  1.1  christos 	  info.wp_count = (gdb_byte)((val >> 8) & 0xff);
    594  1.1  christos 	  info.bp_count = (gdb_byte)(val & 0xff);
    595  1.3  christos 
    596  1.3  christos       if (info.wp_count > MAX_WPTS)
    597  1.3  christos         {
    598  1.3  christos           warning (_("arm-linux-gdb supports %d hardware watchpoints but target \
    599  1.3  christos                       supports %d"), MAX_WPTS, info.wp_count);
    600  1.3  christos           info.wp_count = MAX_WPTS;
    601  1.3  christos         }
    602  1.3  christos 
    603  1.3  christos       if (info.bp_count > MAX_BPTS)
    604  1.3  christos         {
    605  1.3  christos           warning (_("arm-linux-gdb supports %d hardware breakpoints but target \
    606  1.3  christos                       supports %d"), MAX_BPTS, info.bp_count);
    607  1.3  christos           info.bp_count = MAX_BPTS;
    608  1.3  christos         }
    609  1.1  christos 	  available = (info.arch != 0);
    610  1.1  christos 	}
    611  1.1  christos     }
    612  1.1  christos 
    613  1.1  christos   return available == 1 ? &info : NULL;
    614  1.1  christos }
    615  1.1  christos 
    616  1.1  christos /* How many hardware breakpoints are available?  */
    617  1.1  christos static int
    618  1.1  christos arm_linux_get_hw_breakpoint_count (void)
    619  1.1  christos {
    620  1.1  christos   const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
    621  1.1  christos   return cap != NULL ? cap->bp_count : 0;
    622  1.1  christos }
    623  1.1  christos 
    624  1.1  christos /* How many hardware watchpoints are available?  */
    625  1.1  christos static int
    626  1.1  christos arm_linux_get_hw_watchpoint_count (void)
    627  1.1  christos {
    628  1.1  christos   const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
    629  1.1  christos   return cap != NULL ? cap->wp_count : 0;
    630  1.1  christos }
    631  1.1  christos 
    632  1.1  christos /* Have we got a free break-/watch-point available for use?  Returns -1 if
    633  1.1  christos    there is not an appropriate resource available, otherwise returns 1.  */
    634  1.1  christos static int
    635  1.3  christos arm_linux_can_use_hw_breakpoint (struct target_ops *self,
    636  1.6  christos 				 enum bptype type,
    637  1.6  christos 				 int cnt, int ot)
    638  1.1  christos {
    639  1.1  christos   if (type == bp_hardware_watchpoint || type == bp_read_watchpoint
    640  1.1  christos       || type == bp_access_watchpoint || type == bp_watchpoint)
    641  1.1  christos     {
    642  1.5  christos       int count = arm_linux_get_hw_watchpoint_count ();
    643  1.5  christos 
    644  1.5  christos       if (count == 0)
    645  1.5  christos 	return 0;
    646  1.5  christos       else if (cnt + ot > count)
    647  1.1  christos 	return -1;
    648  1.1  christos     }
    649  1.1  christos   else if (type == bp_hardware_breakpoint)
    650  1.1  christos     {
    651  1.5  christos       int count = arm_linux_get_hw_breakpoint_count ();
    652  1.5  christos 
    653  1.5  christos       if (count == 0)
    654  1.5  christos 	return 0;
    655  1.5  christos       else if (cnt > count)
    656  1.1  christos 	return -1;
    657  1.1  christos     }
    658  1.1  christos   else
    659  1.1  christos     gdb_assert (FALSE);
    660  1.1  christos 
    661  1.1  christos   return 1;
    662  1.1  christos }
    663  1.1  christos 
    664  1.1  christos /* Enum describing the different types of ARM hardware break-/watch-points.  */
    665  1.1  christos typedef enum
    666  1.1  christos {
    667  1.1  christos   arm_hwbp_break = 0,
    668  1.1  christos   arm_hwbp_load = 1,
    669  1.1  christos   arm_hwbp_store = 2,
    670  1.1  christos   arm_hwbp_access = 3
    671  1.1  christos } arm_hwbp_type;
    672  1.1  christos 
    673  1.1  christos /* Type describing an ARM Hardware Breakpoint Control register value.  */
    674  1.1  christos typedef unsigned int arm_hwbp_control_t;
    675  1.1  christos 
    676  1.1  christos /* Structure used to keep track of hardware break-/watch-points.  */
    677  1.1  christos struct arm_linux_hw_breakpoint
    678  1.1  christos {
    679  1.1  christos   /* Address to break on, or being watched.  */
    680  1.1  christos   unsigned int address;
    681  1.1  christos   /* Control register for break-/watch- point.  */
    682  1.1  christos   arm_hwbp_control_t control;
    683  1.1  christos };
    684  1.1  christos 
    685  1.3  christos /* Structure containing arrays of per process hardware break-/watchpoints
    686  1.3  christos    for caching address and control information.
    687  1.1  christos 
    688  1.1  christos    The Linux ptrace interface to hardware break-/watch-points presents the
    689  1.1  christos    values in a vector centred around 0 (which is used fo generic information).
    690  1.1  christos    Positive indicies refer to breakpoint addresses/control registers, negative
    691  1.1  christos    indices to watchpoint addresses/control registers.
    692  1.1  christos 
    693  1.1  christos    The Linux vector is indexed as follows:
    694  1.1  christos       -((i << 1) + 2): Control register for watchpoint i.
    695  1.1  christos       -((i << 1) + 1): Address register for watchpoint i.
    696  1.1  christos                     0: Information register.
    697  1.1  christos        ((i << 1) + 1): Address register for breakpoint i.
    698  1.1  christos        ((i << 1) + 2): Control register for breakpoint i.
    699  1.1  christos 
    700  1.1  christos    This structure is used as a per-thread cache of the state stored by the
    701  1.1  christos    kernel, so that we don't need to keep calling into the kernel to find a
    702  1.1  christos    free breakpoint.
    703  1.1  christos 
    704  1.1  christos    We treat break-/watch-points with their enable bit clear as being deleted.
    705  1.1  christos    */
    706  1.3  christos struct arm_linux_debug_reg_state
    707  1.3  christos {
    708  1.3  christos   /* Hardware breakpoints for this process.  */
    709  1.3  christos   struct arm_linux_hw_breakpoint bpts[MAX_BPTS];
    710  1.3  christos   /* Hardware watchpoints for this process.  */
    711  1.3  christos   struct arm_linux_hw_breakpoint wpts[MAX_WPTS];
    712  1.3  christos };
    713  1.3  christos 
    714  1.3  christos /* Per-process arch-specific data we want to keep.  */
    715  1.3  christos struct arm_linux_process_info
    716  1.3  christos {
    717  1.3  christos   /* Linked list.  */
    718  1.3  christos   struct arm_linux_process_info *next;
    719  1.3  christos   /* The process identifier.  */
    720  1.3  christos   pid_t pid;
    721  1.3  christos   /* Hardware break-/watchpoints state information.  */
    722  1.3  christos   struct arm_linux_debug_reg_state state;
    723  1.3  christos 
    724  1.3  christos };
    725  1.3  christos 
    726  1.3  christos /* Per-thread arch-specific data we want to keep.  */
    727  1.3  christos struct arch_lwp_info
    728  1.3  christos {
    729  1.3  christos   /* Non-zero if our copy differs from what's recorded in the thread.  */
    730  1.3  christos   char bpts_changed[MAX_BPTS];
    731  1.3  christos   char wpts_changed[MAX_WPTS];
    732  1.3  christos };
    733  1.3  christos 
    734  1.3  christos static struct arm_linux_process_info *arm_linux_process_list = NULL;
    735  1.3  christos 
    736  1.3  christos /* Find process data for process PID.  */
    737  1.3  christos 
    738  1.3  christos static struct arm_linux_process_info *
    739  1.3  christos arm_linux_find_process_pid (pid_t pid)
    740  1.3  christos {
    741  1.3  christos   struct arm_linux_process_info *proc;
    742  1.3  christos 
    743  1.3  christos   for (proc = arm_linux_process_list; proc; proc = proc->next)
    744  1.3  christos     if (proc->pid == pid)
    745  1.3  christos       return proc;
    746  1.3  christos 
    747  1.3  christos   return NULL;
    748  1.3  christos }
    749  1.3  christos 
    750  1.3  christos /* Add process data for process PID.  Returns newly allocated info
    751  1.3  christos    object.  */
    752  1.3  christos 
    753  1.3  christos static struct arm_linux_process_info *
    754  1.3  christos arm_linux_add_process (pid_t pid)
    755  1.1  christos {
    756  1.3  christos   struct arm_linux_process_info *proc;
    757  1.3  christos 
    758  1.6  christos   proc = XCNEW (struct arm_linux_process_info);
    759  1.3  christos   proc->pid = pid;
    760  1.3  christos 
    761  1.3  christos   proc->next = arm_linux_process_list;
    762  1.3  christos   arm_linux_process_list = proc;
    763  1.3  christos 
    764  1.3  christos   return proc;
    765  1.3  christos }
    766  1.3  christos 
    767  1.3  christos /* Get data specific info for process PID, creating it if necessary.
    768  1.3  christos    Never returns NULL.  */
    769  1.3  christos 
    770  1.3  christos static struct arm_linux_process_info *
    771  1.3  christos arm_linux_process_info_get (pid_t pid)
    772  1.3  christos {
    773  1.3  christos   struct arm_linux_process_info *proc;
    774  1.3  christos 
    775  1.3  christos   proc = arm_linux_find_process_pid (pid);
    776  1.3  christos   if (proc == NULL)
    777  1.3  christos     proc = arm_linux_add_process (pid);
    778  1.3  christos 
    779  1.3  christos   return proc;
    780  1.3  christos }
    781  1.3  christos 
    782  1.3  christos /* Called whenever GDB is no longer debugging process PID.  It deletes
    783  1.3  christos    data structures that keep track of debug register state.  */
    784  1.3  christos 
    785  1.3  christos static void
    786  1.3  christos arm_linux_forget_process (pid_t pid)
    787  1.1  christos {
    788  1.3  christos   struct arm_linux_process_info *proc, **proc_link;
    789  1.3  christos 
    790  1.3  christos   proc = arm_linux_process_list;
    791  1.3  christos   proc_link = &arm_linux_process_list;
    792  1.1  christos 
    793  1.3  christos   while (proc != NULL)
    794  1.3  christos     {
    795  1.3  christos       if (proc->pid == pid)
    796  1.1  christos     {
    797  1.3  christos       *proc_link = proc->next;
    798  1.3  christos 
    799  1.3  christos       xfree (proc);
    800  1.3  christos       return;
    801  1.1  christos     }
    802  1.1  christos 
    803  1.3  christos       proc_link = &proc->next;
    804  1.3  christos       proc = *proc_link;
    805  1.3  christos     }
    806  1.3  christos }
    807  1.1  christos 
    808  1.3  christos /* Get hardware break-/watchpoint state for process PID.  */
    809  1.1  christos 
    810  1.3  christos static struct arm_linux_debug_reg_state *
    811  1.3  christos arm_linux_get_debug_reg_state (pid_t pid)
    812  1.3  christos {
    813  1.3  christos   return &arm_linux_process_info_get (pid)->state;
    814  1.1  christos }
    815  1.1  christos 
    816  1.1  christos /* Initialize an ARM hardware break-/watch-point control register value.
    817  1.1  christos    BYTE_ADDRESS_SELECT is the mask of bytes to trigger on; HWBP_TYPE is the
    818  1.1  christos    type of break-/watch-point; ENABLE indicates whether the point is enabled.
    819  1.1  christos    */
    820  1.1  christos static arm_hwbp_control_t
    821  1.1  christos arm_hwbp_control_initialize (unsigned byte_address_select,
    822  1.1  christos 			     arm_hwbp_type hwbp_type,
    823  1.1  christos 			     int enable)
    824  1.1  christos {
    825  1.1  christos   gdb_assert ((byte_address_select & ~0xffU) == 0);
    826  1.1  christos   gdb_assert (hwbp_type != arm_hwbp_break
    827  1.1  christos 	      || ((byte_address_select & 0xfU) != 0));
    828  1.1  christos 
    829  1.1  christos   return (byte_address_select << 5) | (hwbp_type << 3) | (3 << 1) | enable;
    830  1.1  christos }
    831  1.1  christos 
    832  1.1  christos /* Does the breakpoint control value CONTROL have the enable bit set?  */
    833  1.1  christos static int
    834  1.1  christos arm_hwbp_control_is_enabled (arm_hwbp_control_t control)
    835  1.1  christos {
    836  1.1  christos   return control & 0x1;
    837  1.1  christos }
    838  1.1  christos 
    839  1.1  christos /* Change a breakpoint control word so that it is in the disabled state.  */
    840  1.1  christos static arm_hwbp_control_t
    841  1.1  christos arm_hwbp_control_disable (arm_hwbp_control_t control)
    842  1.1  christos {
    843  1.1  christos   return control & ~0x1;
    844  1.1  christos }
    845  1.1  christos 
    846  1.1  christos /* Initialise the hardware breakpoint structure P.  The breakpoint will be
    847  1.1  christos    enabled, and will point to the placed address of BP_TGT.  */
    848  1.1  christos static void
    849  1.1  christos arm_linux_hw_breakpoint_initialize (struct gdbarch *gdbarch,
    850  1.1  christos 				    struct bp_target_info *bp_tgt,
    851  1.1  christos 				    struct arm_linux_hw_breakpoint *p)
    852  1.1  christos {
    853  1.1  christos   unsigned mask;
    854  1.3  christos   CORE_ADDR address = bp_tgt->placed_address = bp_tgt->reqstd_address;
    855  1.1  christos 
    856  1.1  christos   /* We have to create a mask for the control register which says which bits
    857  1.1  christos      of the word pointed to by address to break on.  */
    858  1.1  christos   if (arm_pc_is_thumb (gdbarch, address))
    859  1.1  christos     {
    860  1.1  christos       mask = 0x3;
    861  1.1  christos       address &= ~1;
    862  1.1  christos     }
    863  1.1  christos   else
    864  1.1  christos     {
    865  1.1  christos       mask = 0xf;
    866  1.1  christos       address &= ~3;
    867  1.1  christos     }
    868  1.1  christos 
    869  1.1  christos   p->address = (unsigned int) address;
    870  1.1  christos   p->control = arm_hwbp_control_initialize (mask, arm_hwbp_break, 1);
    871  1.1  christos }
    872  1.1  christos 
    873  1.6  christos /* Get the ARM hardware breakpoint type from the TYPE value we're
    874  1.6  christos    given when asked to set a watchpoint.  */
    875  1.1  christos static arm_hwbp_type
    876  1.6  christos arm_linux_get_hwbp_type (enum target_hw_bp_type type)
    877  1.1  christos {
    878  1.6  christos   if (type == hw_read)
    879  1.1  christos     return arm_hwbp_load;
    880  1.6  christos   else if (type == hw_write)
    881  1.1  christos     return arm_hwbp_store;
    882  1.1  christos   else
    883  1.1  christos     return arm_hwbp_access;
    884  1.1  christos }
    885  1.1  christos 
    886  1.1  christos /* Initialize the hardware breakpoint structure P for a watchpoint at ADDR
    887  1.1  christos    to LEN.  The type of watchpoint is given in RW.  */
    888  1.1  christos static void
    889  1.6  christos arm_linux_hw_watchpoint_initialize (CORE_ADDR addr, int len,
    890  1.6  christos 				    enum target_hw_bp_type type,
    891  1.1  christos 				    struct arm_linux_hw_breakpoint *p)
    892  1.1  christos {
    893  1.1  christos   const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
    894  1.1  christos   unsigned mask;
    895  1.1  christos 
    896  1.1  christos   gdb_assert (cap != NULL);
    897  1.1  christos   gdb_assert (cap->max_wp_length != 0);
    898  1.1  christos 
    899  1.1  christos   mask = (1 << len) - 1;
    900  1.1  christos 
    901  1.1  christos   p->address = (unsigned int) addr;
    902  1.1  christos   p->control = arm_hwbp_control_initialize (mask,
    903  1.6  christos 					    arm_linux_get_hwbp_type (type), 1);
    904  1.1  christos }
    905  1.1  christos 
    906  1.1  christos /* Are two break-/watch-points equal?  */
    907  1.1  christos static int
    908  1.1  christos arm_linux_hw_breakpoint_equal (const struct arm_linux_hw_breakpoint *p1,
    909  1.1  christos 			       const struct arm_linux_hw_breakpoint *p2)
    910  1.1  christos {
    911  1.1  christos   return p1->address == p2->address && p1->control == p2->control;
    912  1.1  christos }
    913  1.1  christos 
    914  1.3  christos /* Callback to mark a watch-/breakpoint to be updated in all threads of
    915  1.3  christos    the current process.  */
    916  1.3  christos 
    917  1.3  christos struct update_registers_data
    918  1.3  christos {
    919  1.3  christos   int watch;
    920  1.3  christos   int index;
    921  1.3  christos };
    922  1.3  christos 
    923  1.3  christos static int
    924  1.3  christos update_registers_callback (struct lwp_info *lwp, void *arg)
    925  1.3  christos {
    926  1.3  christos   struct update_registers_data *data = (struct update_registers_data *) arg;
    927  1.3  christos 
    928  1.3  christos   if (lwp->arch_private == NULL)
    929  1.3  christos     lwp->arch_private = XCNEW (struct arch_lwp_info);
    930  1.3  christos 
    931  1.3  christos   /* The actual update is done later just before resuming the lwp,
    932  1.3  christos      we just mark that the registers need updating.  */
    933  1.3  christos   if (data->watch)
    934  1.3  christos     lwp->arch_private->wpts_changed[data->index] = 1;
    935  1.3  christos   else
    936  1.3  christos     lwp->arch_private->bpts_changed[data->index] = 1;
    937  1.3  christos 
    938  1.3  christos   /* If the lwp isn't stopped, force it to momentarily pause, so
    939  1.3  christos      we can update its breakpoint registers.  */
    940  1.3  christos   if (!lwp->stopped)
    941  1.3  christos     linux_stop_lwp (lwp);
    942  1.3  christos 
    943  1.3  christos   return 0;
    944  1.3  christos }
    945  1.3  christos 
    946  1.1  christos /* Insert the hardware breakpoint (WATCHPOINT = 0) or watchpoint (WATCHPOINT
    947  1.1  christos    =1) BPT for thread TID.  */
    948  1.1  christos static void
    949  1.1  christos arm_linux_insert_hw_breakpoint1 (const struct arm_linux_hw_breakpoint* bpt,
    950  1.3  christos                                  int watchpoint)
    951  1.1  christos {
    952  1.3  christos   int pid;
    953  1.3  christos   ptid_t pid_ptid;
    954  1.1  christos   gdb_byte count, i;
    955  1.1  christos   struct arm_linux_hw_breakpoint* bpts;
    956  1.3  christos   struct update_registers_data data;
    957  1.1  christos 
    958  1.3  christos   pid = ptid_get_pid (inferior_ptid);
    959  1.3  christos   pid_ptid = pid_to_ptid (pid);
    960  1.1  christos 
    961  1.1  christos   if (watchpoint)
    962  1.1  christos     {
    963  1.1  christos       count = arm_linux_get_hw_watchpoint_count ();
    964  1.3  christos       bpts = arm_linux_get_debug_reg_state (pid)->wpts;
    965  1.1  christos     }
    966  1.1  christos   else
    967  1.1  christos     {
    968  1.1  christos       count = arm_linux_get_hw_breakpoint_count ();
    969  1.3  christos       bpts = arm_linux_get_debug_reg_state (pid)->bpts;
    970  1.1  christos     }
    971  1.1  christos 
    972  1.1  christos   for (i = 0; i < count; ++i)
    973  1.1  christos     if (!arm_hwbp_control_is_enabled (bpts[i].control))
    974  1.1  christos       {
    975  1.3  christos         data.watch = watchpoint;
    976  1.3  christos         data.index = i;
    977  1.3  christos         bpts[i] = *bpt;
    978  1.3  christos         iterate_over_lwps (pid_ptid, update_registers_callback, &data);
    979  1.3  christos         break;
    980  1.1  christos       }
    981  1.1  christos 
    982  1.1  christos   gdb_assert (i != count);
    983  1.1  christos }
    984  1.1  christos 
    985  1.1  christos /* Remove the hardware breakpoint (WATCHPOINT = 0) or watchpoint
    986  1.1  christos    (WATCHPOINT = 1) BPT for thread TID.  */
    987  1.1  christos static void
    988  1.1  christos arm_linux_remove_hw_breakpoint1 (const struct arm_linux_hw_breakpoint *bpt,
    989  1.3  christos                                  int watchpoint)
    990  1.1  christos {
    991  1.3  christos   int pid;
    992  1.1  christos   gdb_byte count, i;
    993  1.3  christos   ptid_t pid_ptid;
    994  1.3  christos   struct arm_linux_hw_breakpoint* bpts;
    995  1.3  christos   struct update_registers_data data;
    996  1.1  christos 
    997  1.3  christos   pid = ptid_get_pid (inferior_ptid);
    998  1.3  christos   pid_ptid = pid_to_ptid (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_linux_hw_breakpoint_equal (bpt, bpts + i))
   1013  1.1  christos       {
   1014  1.3  christos         data.watch = watchpoint;
   1015  1.3  christos         data.index = i;
   1016  1.3  christos         bpts[i].control = arm_hwbp_control_disable (bpts[i].control);
   1017  1.3  christos         iterate_over_lwps (pid_ptid, update_registers_callback, &data);
   1018  1.3  christos         break;
   1019  1.1  christos       }
   1020  1.1  christos 
   1021  1.1  christos   gdb_assert (i != count);
   1022  1.1  christos }
   1023  1.1  christos 
   1024  1.1  christos /* Insert a Hardware breakpoint.  */
   1025  1.1  christos static int
   1026  1.3  christos arm_linux_insert_hw_breakpoint (struct target_ops *self,
   1027  1.3  christos 				struct gdbarch *gdbarch,
   1028  1.1  christos 				struct bp_target_info *bp_tgt)
   1029  1.1  christos {
   1030  1.1  christos   struct lwp_info *lp;
   1031  1.1  christos   struct arm_linux_hw_breakpoint p;
   1032  1.1  christos 
   1033  1.1  christos   if (arm_linux_get_hw_breakpoint_count () == 0)
   1034  1.1  christos     return -1;
   1035  1.1  christos 
   1036  1.1  christos   arm_linux_hw_breakpoint_initialize (gdbarch, bp_tgt, &p);
   1037  1.3  christos 
   1038  1.3  christos   arm_linux_insert_hw_breakpoint1 (&p, 0);
   1039  1.1  christos 
   1040  1.1  christos   return 0;
   1041  1.1  christos }
   1042  1.1  christos 
   1043  1.1  christos /* Remove a hardware breakpoint.  */
   1044  1.1  christos static int
   1045  1.3  christos arm_linux_remove_hw_breakpoint (struct target_ops *self,
   1046  1.3  christos 				struct gdbarch *gdbarch,
   1047  1.1  christos 				struct bp_target_info *bp_tgt)
   1048  1.1  christos {
   1049  1.1  christos   struct lwp_info *lp;
   1050  1.1  christos   struct arm_linux_hw_breakpoint p;
   1051  1.1  christos 
   1052  1.1  christos   if (arm_linux_get_hw_breakpoint_count () == 0)
   1053  1.1  christos     return -1;
   1054  1.1  christos 
   1055  1.1  christos   arm_linux_hw_breakpoint_initialize (gdbarch, bp_tgt, &p);
   1056  1.3  christos 
   1057  1.3  christos   arm_linux_remove_hw_breakpoint1 (&p, 0);
   1058  1.1  christos 
   1059  1.1  christos   return 0;
   1060  1.1  christos }
   1061  1.1  christos 
   1062  1.1  christos /* Are we able to use a hardware watchpoint for the LEN bytes starting at
   1063  1.1  christos    ADDR?  */
   1064  1.1  christos static int
   1065  1.3  christos arm_linux_region_ok_for_hw_watchpoint (struct target_ops *self,
   1066  1.3  christos 				       CORE_ADDR addr, int len)
   1067  1.1  christos {
   1068  1.1  christos   const struct arm_linux_hwbp_cap *cap = arm_linux_get_hwbp_cap ();
   1069  1.1  christos   CORE_ADDR max_wp_length, aligned_addr;
   1070  1.1  christos 
   1071  1.1  christos   /* Can not set watchpoints for zero or negative lengths.  */
   1072  1.1  christos   if (len <= 0)
   1073  1.1  christos     return 0;
   1074  1.1  christos 
   1075  1.1  christos   /* Need to be able to use the ptrace interface.  */
   1076  1.1  christos   if (cap == NULL || cap->wp_count == 0)
   1077  1.1  christos     return 0;
   1078  1.1  christos 
   1079  1.1  christos   /* Test that the range [ADDR, ADDR + LEN) fits into the largest address
   1080  1.1  christos      range covered by a watchpoint.  */
   1081  1.1  christos   max_wp_length = (CORE_ADDR)cap->max_wp_length;
   1082  1.1  christos   aligned_addr = addr & ~(max_wp_length - 1);
   1083  1.1  christos 
   1084  1.1  christos   if (aligned_addr + max_wp_length < addr + len)
   1085  1.1  christos     return 0;
   1086  1.1  christos 
   1087  1.1  christos   /* The current ptrace interface can only handle watchpoints that are a
   1088  1.1  christos      power of 2.  */
   1089  1.1  christos   if ((len & (len - 1)) != 0)
   1090  1.1  christos     return 0;
   1091  1.1  christos 
   1092  1.1  christos   /* All tests passed so we must be able to set a watchpoint.  */
   1093  1.1  christos   return 1;
   1094  1.1  christos }
   1095  1.1  christos 
   1096  1.1  christos /* Insert a Hardware breakpoint.  */
   1097  1.1  christos static int
   1098  1.3  christos arm_linux_insert_watchpoint (struct target_ops *self,
   1099  1.6  christos 			     CORE_ADDR addr, int len,
   1100  1.6  christos 			     enum target_hw_bp_type rw,
   1101  1.1  christos 			     struct expression *cond)
   1102  1.1  christos {
   1103  1.1  christos   struct lwp_info *lp;
   1104  1.1  christos   struct arm_linux_hw_breakpoint p;
   1105  1.1  christos 
   1106  1.1  christos   if (arm_linux_get_hw_watchpoint_count () == 0)
   1107  1.1  christos     return -1;
   1108  1.1  christos 
   1109  1.1  christos   arm_linux_hw_watchpoint_initialize (addr, len, rw, &p);
   1110  1.3  christos 
   1111  1.3  christos   arm_linux_insert_hw_breakpoint1 (&p, 1);
   1112  1.1  christos 
   1113  1.1  christos   return 0;
   1114  1.1  christos }
   1115  1.1  christos 
   1116  1.1  christos /* Remove a hardware breakpoint.  */
   1117  1.1  christos static int
   1118  1.6  christos arm_linux_remove_watchpoint (struct target_ops *self, CORE_ADDR addr,
   1119  1.6  christos 			     int len, enum target_hw_bp_type rw,
   1120  1.1  christos 			     struct expression *cond)
   1121  1.1  christos {
   1122  1.1  christos   struct lwp_info *lp;
   1123  1.1  christos   struct arm_linux_hw_breakpoint p;
   1124  1.1  christos 
   1125  1.1  christos   if (arm_linux_get_hw_watchpoint_count () == 0)
   1126  1.1  christos     return -1;
   1127  1.1  christos 
   1128  1.1  christos   arm_linux_hw_watchpoint_initialize (addr, len, rw, &p);
   1129  1.3  christos 
   1130  1.3  christos   arm_linux_remove_hw_breakpoint1 (&p, 1);
   1131  1.1  christos 
   1132  1.1  christos   return 0;
   1133  1.1  christos }
   1134  1.1  christos 
   1135  1.1  christos /* What was the data address the target was stopped on accessing.  */
   1136  1.1  christos static int
   1137  1.1  christos arm_linux_stopped_data_address (struct target_ops *target, CORE_ADDR *addr_p)
   1138  1.1  christos {
   1139  1.1  christos   siginfo_t siginfo;
   1140  1.1  christos   int slot;
   1141  1.1  christos 
   1142  1.1  christos   if (!linux_nat_get_siginfo (inferior_ptid, &siginfo))
   1143  1.1  christos     return 0;
   1144  1.1  christos 
   1145  1.1  christos   /* This must be a hardware breakpoint.  */
   1146  1.1  christos   if (siginfo.si_signo != SIGTRAP
   1147  1.1  christos       || (siginfo.si_code & 0xffff) != 0x0004 /* TRAP_HWBKPT */)
   1148  1.1  christos     return 0;
   1149  1.1  christos 
   1150  1.1  christos   /* We must be able to set hardware watchpoints.  */
   1151  1.1  christos   if (arm_linux_get_hw_watchpoint_count () == 0)
   1152  1.1  christos     return 0;
   1153  1.1  christos 
   1154  1.1  christos   slot = siginfo.si_errno;
   1155  1.1  christos 
   1156  1.1  christos   /* If we are in a positive slot then we're looking at a breakpoint and not
   1157  1.1  christos      a watchpoint.  */
   1158  1.1  christos   if (slot >= 0)
   1159  1.1  christos     return 0;
   1160  1.1  christos 
   1161  1.1  christos   *addr_p = (CORE_ADDR) (uintptr_t) siginfo.si_addr;
   1162  1.1  christos   return 1;
   1163  1.1  christos }
   1164  1.1  christos 
   1165  1.1  christos /* Has the target been stopped by hitting a watchpoint?  */
   1166  1.1  christos static int
   1167  1.3  christos arm_linux_stopped_by_watchpoint (struct target_ops *ops)
   1168  1.1  christos {
   1169  1.1  christos   CORE_ADDR addr;
   1170  1.3  christos   return arm_linux_stopped_data_address (ops, &addr);
   1171  1.1  christos }
   1172  1.1  christos 
   1173  1.1  christos static int
   1174  1.1  christos arm_linux_watchpoint_addr_within_range (struct target_ops *target,
   1175  1.1  christos 					CORE_ADDR addr,
   1176  1.1  christos 					CORE_ADDR start, int length)
   1177  1.1  christos {
   1178  1.1  christos   return start <= addr && start + length - 1 >= addr;
   1179  1.1  christos }
   1180  1.1  christos 
   1181  1.1  christos /* Handle thread creation.  We need to copy the breakpoints and watchpoints
   1182  1.1  christos    in the parent thread to the child thread.  */
   1183  1.1  christos static void
   1184  1.1  christos arm_linux_new_thread (struct lwp_info *lp)
   1185  1.1  christos {
   1186  1.3  christos   int i;
   1187  1.3  christos   struct arch_lwp_info *info = XCNEW (struct arch_lwp_info);
   1188  1.1  christos 
   1189  1.3  christos   /* Mark that all the hardware breakpoint/watchpoint register pairs
   1190  1.3  christos      for this thread need to be initialized.  */
   1191  1.3  christos 
   1192  1.3  christos   for (i = 0; i < MAX_BPTS; i++)
   1193  1.1  christos     {
   1194  1.3  christos       info->bpts_changed[i] = 1;
   1195  1.3  christos       info->wpts_changed[i] = 1;
   1196  1.3  christos     }
   1197  1.1  christos 
   1198  1.3  christos   lp->arch_private = info;
   1199  1.3  christos }
   1200  1.1  christos 
   1201  1.3  christos /* Called when resuming a thread.
   1202  1.3  christos    The hardware debug registers are updated when there is any change.  */
   1203  1.1  christos 
   1204  1.1  christos static void
   1205  1.3  christos arm_linux_prepare_to_resume (struct lwp_info *lwp)
   1206  1.1  christos {
   1207  1.3  christos   int pid, i;
   1208  1.3  christos   struct arm_linux_hw_breakpoint *bpts, *wpts;
   1209  1.3  christos   struct arch_lwp_info *arm_lwp_info = lwp->arch_private;
   1210  1.3  christos 
   1211  1.3  christos   pid = ptid_get_lwp (lwp->ptid);
   1212  1.3  christos   bpts = arm_linux_get_debug_reg_state (ptid_get_pid (lwp->ptid))->bpts;
   1213  1.3  christos   wpts = arm_linux_get_debug_reg_state (ptid_get_pid (lwp->ptid))->wpts;
   1214  1.3  christos 
   1215  1.3  christos   /* NULL means this is the main thread still going through the shell,
   1216  1.3  christos      or, no watchpoint has been set yet.  In that case, there's
   1217  1.3  christos      nothing to do.  */
   1218  1.3  christos   if (arm_lwp_info == NULL)
   1219  1.3  christos     return;
   1220  1.3  christos 
   1221  1.3  christos   for (i = 0; i < arm_linux_get_hw_breakpoint_count (); i++)
   1222  1.3  christos     if (arm_lwp_info->bpts_changed[i])
   1223  1.3  christos       {
   1224  1.3  christos         errno = 0;
   1225  1.3  christos         if (arm_hwbp_control_is_enabled (bpts[i].control))
   1226  1.3  christos           if (ptrace (PTRACE_SETHBPREGS, pid,
   1227  1.3  christos               (PTRACE_TYPE_ARG3) ((i << 1) + 1), &bpts[i].address) < 0)
   1228  1.3  christos             perror_with_name (_("Unexpected error setting breakpoint"));
   1229  1.3  christos 
   1230  1.3  christos         if (bpts[i].control != 0)
   1231  1.3  christos           if (ptrace (PTRACE_SETHBPREGS, pid,
   1232  1.3  christos               (PTRACE_TYPE_ARG3) ((i << 1) + 2), &bpts[i].control) < 0)
   1233  1.3  christos             perror_with_name (_("Unexpected error setting breakpoint"));
   1234  1.3  christos 
   1235  1.3  christos         arm_lwp_info->bpts_changed[i] = 0;
   1236  1.3  christos       }
   1237  1.1  christos 
   1238  1.3  christos   for (i = 0; i < arm_linux_get_hw_watchpoint_count (); i++)
   1239  1.3  christos     if (arm_lwp_info->wpts_changed[i])
   1240  1.3  christos       {
   1241  1.3  christos         errno = 0;
   1242  1.3  christos         if (arm_hwbp_control_is_enabled (wpts[i].control))
   1243  1.3  christos           if (ptrace (PTRACE_SETHBPREGS, pid,
   1244  1.3  christos               (PTRACE_TYPE_ARG3) -((i << 1) + 1), &wpts[i].address) < 0)
   1245  1.3  christos             perror_with_name (_("Unexpected error setting watchpoint"));
   1246  1.3  christos 
   1247  1.3  christos         if (wpts[i].control != 0)
   1248  1.3  christos           if (ptrace (PTRACE_SETHBPREGS, pid,
   1249  1.3  christos               (PTRACE_TYPE_ARG3) -((i << 1) + 2), &wpts[i].control) < 0)
   1250  1.3  christos             perror_with_name (_("Unexpected error setting watchpoint"));
   1251  1.1  christos 
   1252  1.3  christos         arm_lwp_info->wpts_changed[i] = 0;
   1253  1.3  christos       }
   1254  1.3  christos }
   1255  1.1  christos 
   1256  1.3  christos /* linux_nat_new_fork hook.  */
   1257  1.1  christos 
   1258  1.3  christos static void
   1259  1.3  christos arm_linux_new_fork (struct lwp_info *parent, pid_t child_pid)
   1260  1.3  christos {
   1261  1.3  christos   pid_t parent_pid;
   1262  1.3  christos   struct arm_linux_debug_reg_state *parent_state;
   1263  1.3  christos   struct arm_linux_debug_reg_state *child_state;
   1264  1.3  christos 
   1265  1.3  christos   /* NULL means no watchpoint has ever been set in the parent.  In
   1266  1.3  christos      that case, there's nothing to do.  */
   1267  1.3  christos   if (parent->arch_private == NULL)
   1268  1.3  christos     return;
   1269  1.1  christos 
   1270  1.3  christos   /* GDB core assumes the child inherits the watchpoints/hw
   1271  1.3  christos      breakpoints of the parent, and will remove them all from the
   1272  1.3  christos      forked off process.  Copy the debug registers mirrors into the
   1273  1.3  christos      new process so that all breakpoints and watchpoints can be
   1274  1.3  christos      removed together.  */
   1275  1.3  christos 
   1276  1.3  christos   parent_pid = ptid_get_pid (parent->ptid);
   1277  1.3  christos   parent_state = arm_linux_get_debug_reg_state (parent_pid);
   1278  1.3  christos   child_state = arm_linux_get_debug_reg_state (child_pid);
   1279  1.3  christos   *child_state = *parent_state;
   1280  1.1  christos }
   1281  1.1  christos 
   1282  1.1  christos void _initialize_arm_linux_nat (void);
   1283  1.1  christos 
   1284  1.1  christos void
   1285  1.1  christos _initialize_arm_linux_nat (void)
   1286  1.1  christos {
   1287  1.1  christos   struct target_ops *t;
   1288  1.1  christos 
   1289  1.1  christos   /* Fill in the generic GNU/Linux methods.  */
   1290  1.1  christos   t = linux_target ();
   1291  1.1  christos 
   1292  1.1  christos   /* Add our register access methods.  */
   1293  1.1  christos   t->to_fetch_registers = arm_linux_fetch_inferior_registers;
   1294  1.1  christos   t->to_store_registers = arm_linux_store_inferior_registers;
   1295  1.1  christos 
   1296  1.1  christos   /* Add our hardware breakpoint and watchpoint implementation.  */
   1297  1.1  christos   t->to_can_use_hw_breakpoint = arm_linux_can_use_hw_breakpoint;
   1298  1.1  christos   t->to_insert_hw_breakpoint = arm_linux_insert_hw_breakpoint;
   1299  1.1  christos   t->to_remove_hw_breakpoint = arm_linux_remove_hw_breakpoint;
   1300  1.1  christos   t->to_region_ok_for_hw_watchpoint = arm_linux_region_ok_for_hw_watchpoint;
   1301  1.1  christos   t->to_insert_watchpoint = arm_linux_insert_watchpoint;
   1302  1.1  christos   t->to_remove_watchpoint = arm_linux_remove_watchpoint;
   1303  1.1  christos   t->to_stopped_by_watchpoint = arm_linux_stopped_by_watchpoint;
   1304  1.1  christos   t->to_stopped_data_address = arm_linux_stopped_data_address;
   1305  1.1  christos   t->to_watchpoint_addr_within_range = arm_linux_watchpoint_addr_within_range;
   1306  1.1  christos 
   1307  1.1  christos   t->to_read_description = arm_linux_read_description;
   1308  1.1  christos 
   1309  1.1  christos   /* Register the target.  */
   1310  1.1  christos   linux_nat_add_target (t);
   1311  1.1  christos 
   1312  1.3  christos   /* Handle thread creation and exit.  */
   1313  1.1  christos   linux_nat_set_new_thread (t, arm_linux_new_thread);
   1314  1.3  christos   linux_nat_set_prepare_to_resume (t, arm_linux_prepare_to_resume);
   1315  1.3  christos 
   1316  1.3  christos   /* Handle process creation and exit.  */
   1317  1.3  christos   linux_nat_set_new_fork (t, arm_linux_new_fork);
   1318  1.3  christos   linux_nat_set_forget_process (t, arm_linux_forget_process);
   1319  1.1  christos }
   1320