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record-full.c revision 1.1.1.2
      1 /* Process record and replay target for GDB, the GNU debugger.
      2 
      3    Copyright (C) 2013-2015 Free Software Foundation, Inc.
      4 
      5    This file is part of GDB.
      6 
      7    This program is free software; you can redistribute it and/or modify
      8    it under the terms of the GNU General Public License as published by
      9    the Free Software Foundation; either version 3 of the License, or
     10    (at your option) any later version.
     11 
     12    This program is distributed in the hope that it will be useful,
     13    but WITHOUT ANY WARRANTY; without even the implied warranty of
     14    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
     15    GNU General Public License for more details.
     16 
     17    You should have received a copy of the GNU General Public License
     18    along with this program.  If not, see <http://www.gnu.org/licenses/>.  */
     19 
     20 #include "defs.h"
     21 #include "gdbcmd.h"
     22 #include "regcache.h"
     23 #include "gdbthread.h"
     24 #include "event-top.h"
     25 #include "completer.h"
     26 #include "arch-utils.h"
     27 #include "gdbcore.h"
     28 #include "exec.h"
     29 #include "record.h"
     30 #include "record-full.h"
     31 #include "elf-bfd.h"
     32 #include "gcore.h"
     33 #include "event-loop.h"
     34 #include "inf-loop.h"
     35 #include "gdb_bfd.h"
     36 #include "observer.h"
     37 #include "infrun.h"
     38 
     39 #include <signal.h>
     40 
     41 /* This module implements "target record-full", also known as "process
     42    record and replay".  This target sits on top of a "normal" target
     43    (a target that "has execution"), and provides a record and replay
     44    functionality, including reverse debugging.
     45 
     46    Target record has two modes: recording, and replaying.
     47 
     48    In record mode, we intercept the to_resume and to_wait methods.
     49    Whenever gdb resumes the target, we run the target in single step
     50    mode, and we build up an execution log in which, for each executed
     51    instruction, we record all changes in memory and register state.
     52    This is invisible to the user, to whom it just looks like an
     53    ordinary debugging session (except for performance degredation).
     54 
     55    In replay mode, instead of actually letting the inferior run as a
     56    process, we simulate its execution by playing back the recorded
     57    execution log.  For each instruction in the log, we simulate the
     58    instruction's side effects by duplicating the changes that it would
     59    have made on memory and registers.  */
     60 
     61 #define DEFAULT_RECORD_FULL_INSN_MAX_NUM	200000
     62 
     63 #define RECORD_FULL_IS_REPLAY \
     64      (record_full_list->next || execution_direction == EXEC_REVERSE)
     65 
     66 #define RECORD_FULL_FILE_MAGIC	netorder32(0x20091016)
     67 
     68 /* These are the core structs of the process record functionality.
     69 
     70    A record_full_entry is a record of the value change of a register
     71    ("record_full_reg") or a part of memory ("record_full_mem").  And each
     72    instruction must have a struct record_full_entry ("record_full_end")
     73    that indicates that this is the last struct record_full_entry of this
     74    instruction.
     75 
     76    Each struct record_full_entry is linked to "record_full_list" by "prev"
     77    and "next" pointers.  */
     78 
     79 struct record_full_mem_entry
     80 {
     81   CORE_ADDR addr;
     82   int len;
     83   /* Set this flag if target memory for this entry
     84      can no longer be accessed.  */
     85   int mem_entry_not_accessible;
     86   union
     87   {
     88     gdb_byte *ptr;
     89     gdb_byte buf[sizeof (gdb_byte *)];
     90   } u;
     91 };
     92 
     93 struct record_full_reg_entry
     94 {
     95   unsigned short num;
     96   unsigned short len;
     97   union
     98   {
     99     gdb_byte *ptr;
    100     gdb_byte buf[2 * sizeof (gdb_byte *)];
    101   } u;
    102 };
    103 
    104 struct record_full_end_entry
    105 {
    106   enum gdb_signal sigval;
    107   ULONGEST insn_num;
    108 };
    109 
    110 enum record_full_type
    111 {
    112   record_full_end = 0,
    113   record_full_reg,
    114   record_full_mem
    115 };
    116 
    117 /* This is the data structure that makes up the execution log.
    118 
    119    The execution log consists of a single linked list of entries
    120    of type "struct record_full_entry".  It is doubly linked so that it
    121    can be traversed in either direction.
    122 
    123    The start of the list is anchored by a struct called
    124    "record_full_first".  The pointer "record_full_list" either points
    125    to the last entry that was added to the list (in record mode), or to
    126    the next entry in the list that will be executed (in replay mode).
    127 
    128    Each list element (struct record_full_entry), in addition to next
    129    and prev pointers, consists of a union of three entry types: mem,
    130    reg, and end.  A field called "type" determines which entry type is
    131    represented by a given list element.
    132 
    133    Each instruction that is added to the execution log is represented
    134    by a variable number of list elements ('entries').  The instruction
    135    will have one "reg" entry for each register that is changed by
    136    executing the instruction (including the PC in every case).  It
    137    will also have one "mem" entry for each memory change.  Finally,
    138    each instruction will have an "end" entry that separates it from
    139    the changes associated with the next instruction.  */
    140 
    141 struct record_full_entry
    142 {
    143   struct record_full_entry *prev;
    144   struct record_full_entry *next;
    145   enum record_full_type type;
    146   union
    147   {
    148     /* reg */
    149     struct record_full_reg_entry reg;
    150     /* mem */
    151     struct record_full_mem_entry mem;
    152     /* end */
    153     struct record_full_end_entry end;
    154   } u;
    155 };
    156 
    157 /* If true, query if PREC cannot record memory
    158    change of next instruction.  */
    159 int record_full_memory_query = 0;
    160 
    161 struct record_full_core_buf_entry
    162 {
    163   struct record_full_core_buf_entry *prev;
    164   struct target_section *p;
    165   bfd_byte *buf;
    166 };
    167 
    168 /* Record buf with core target.  */
    169 static gdb_byte *record_full_core_regbuf = NULL;
    170 static struct target_section *record_full_core_start;
    171 static struct target_section *record_full_core_end;
    172 static struct record_full_core_buf_entry *record_full_core_buf_list = NULL;
    173 
    174 /* The following variables are used for managing the linked list that
    175    represents the execution log.
    176 
    177    record_full_first is the anchor that holds down the beginning of
    178    the list.
    179 
    180    record_full_list serves two functions:
    181      1) In record mode, it anchors the end of the list.
    182      2) In replay mode, it traverses the list and points to
    183         the next instruction that must be emulated.
    184 
    185    record_full_arch_list_head and record_full_arch_list_tail are used
    186    to manage a separate list, which is used to build up the change
    187    elements of the currently executing instruction during record mode.
    188    When this instruction has been completely annotated in the "arch
    189    list", it will be appended to the main execution log.  */
    190 
    191 static struct record_full_entry record_full_first;
    192 static struct record_full_entry *record_full_list = &record_full_first;
    193 static struct record_full_entry *record_full_arch_list_head = NULL;
    194 static struct record_full_entry *record_full_arch_list_tail = NULL;
    195 
    196 /* 1 ask user. 0 auto delete the last struct record_full_entry.  */
    197 static int record_full_stop_at_limit = 1;
    198 /* Maximum allowed number of insns in execution log.  */
    199 static unsigned int record_full_insn_max_num
    200 	= DEFAULT_RECORD_FULL_INSN_MAX_NUM;
    201 /* Actual count of insns presently in execution log.  */
    202 static unsigned int record_full_insn_num = 0;
    203 /* Count of insns logged so far (may be larger
    204    than count of insns presently in execution log).  */
    205 static ULONGEST record_full_insn_count;
    206 
    207 /* The target_ops of process record.  */
    208 static struct target_ops record_full_ops;
    209 static struct target_ops record_full_core_ops;
    210 
    211 /* See record-full.h.  */
    212 
    213 int
    214 record_full_is_used (void)
    215 {
    216   struct target_ops *t;
    217 
    218   t = find_record_target ();
    219   return (t == &record_full_ops
    220 	  || t == &record_full_core_ops);
    221 }
    222 
    223 
    224 /* Command lists for "set/show record full".  */
    225 static struct cmd_list_element *set_record_full_cmdlist;
    226 static struct cmd_list_element *show_record_full_cmdlist;
    227 
    228 /* Command list for "record full".  */
    229 static struct cmd_list_element *record_full_cmdlist;
    230 
    231 static void record_full_goto_insn (struct record_full_entry *entry,
    232 				   enum exec_direction_kind dir);
    233 static void record_full_save (struct target_ops *self,
    234 			      const char *recfilename);
    235 
    236 /* Alloc and free functions for record_full_reg, record_full_mem, and
    237    record_full_end entries.  */
    238 
    239 /* Alloc a record_full_reg record entry.  */
    240 
    241 static inline struct record_full_entry *
    242 record_full_reg_alloc (struct regcache *regcache, int regnum)
    243 {
    244   struct record_full_entry *rec;
    245   struct gdbarch *gdbarch = get_regcache_arch (regcache);
    246 
    247   rec = xcalloc (1, sizeof (struct record_full_entry));
    248   rec->type = record_full_reg;
    249   rec->u.reg.num = regnum;
    250   rec->u.reg.len = register_size (gdbarch, regnum);
    251   if (rec->u.reg.len > sizeof (rec->u.reg.u.buf))
    252     rec->u.reg.u.ptr = (gdb_byte *) xmalloc (rec->u.reg.len);
    253 
    254   return rec;
    255 }
    256 
    257 /* Free a record_full_reg record entry.  */
    258 
    259 static inline void
    260 record_full_reg_release (struct record_full_entry *rec)
    261 {
    262   gdb_assert (rec->type == record_full_reg);
    263   if (rec->u.reg.len > sizeof (rec->u.reg.u.buf))
    264     xfree (rec->u.reg.u.ptr);
    265   xfree (rec);
    266 }
    267 
    268 /* Alloc a record_full_mem record entry.  */
    269 
    270 static inline struct record_full_entry *
    271 record_full_mem_alloc (CORE_ADDR addr, int len)
    272 {
    273   struct record_full_entry *rec;
    274 
    275   rec = xcalloc (1, sizeof (struct record_full_entry));
    276   rec->type = record_full_mem;
    277   rec->u.mem.addr = addr;
    278   rec->u.mem.len = len;
    279   if (rec->u.mem.len > sizeof (rec->u.mem.u.buf))
    280     rec->u.mem.u.ptr = (gdb_byte *) xmalloc (len);
    281 
    282   return rec;
    283 }
    284 
    285 /* Free a record_full_mem record entry.  */
    286 
    287 static inline void
    288 record_full_mem_release (struct record_full_entry *rec)
    289 {
    290   gdb_assert (rec->type == record_full_mem);
    291   if (rec->u.mem.len > sizeof (rec->u.mem.u.buf))
    292     xfree (rec->u.mem.u.ptr);
    293   xfree (rec);
    294 }
    295 
    296 /* Alloc a record_full_end record entry.  */
    297 
    298 static inline struct record_full_entry *
    299 record_full_end_alloc (void)
    300 {
    301   struct record_full_entry *rec;
    302 
    303   rec = xcalloc (1, sizeof (struct record_full_entry));
    304   rec->type = record_full_end;
    305 
    306   return rec;
    307 }
    308 
    309 /* Free a record_full_end record entry.  */
    310 
    311 static inline void
    312 record_full_end_release (struct record_full_entry *rec)
    313 {
    314   xfree (rec);
    315 }
    316 
    317 /* Free one record entry, any type.
    318    Return entry->type, in case caller wants to know.  */
    319 
    320 static inline enum record_full_type
    321 record_full_entry_release (struct record_full_entry *rec)
    322 {
    323   enum record_full_type type = rec->type;
    324 
    325   switch (type) {
    326   case record_full_reg:
    327     record_full_reg_release (rec);
    328     break;
    329   case record_full_mem:
    330     record_full_mem_release (rec);
    331     break;
    332   case record_full_end:
    333     record_full_end_release (rec);
    334     break;
    335   }
    336   return type;
    337 }
    338 
    339 /* Free all record entries in list pointed to by REC.  */
    340 
    341 static void
    342 record_full_list_release (struct record_full_entry *rec)
    343 {
    344   if (!rec)
    345     return;
    346 
    347   while (rec->next)
    348     rec = rec->next;
    349 
    350   while (rec->prev)
    351     {
    352       rec = rec->prev;
    353       record_full_entry_release (rec->next);
    354     }
    355 
    356   if (rec == &record_full_first)
    357     {
    358       record_full_insn_num = 0;
    359       record_full_first.next = NULL;
    360     }
    361   else
    362     record_full_entry_release (rec);
    363 }
    364 
    365 /* Free all record entries forward of the given list position.  */
    366 
    367 static void
    368 record_full_list_release_following (struct record_full_entry *rec)
    369 {
    370   struct record_full_entry *tmp = rec->next;
    371 
    372   rec->next = NULL;
    373   while (tmp)
    374     {
    375       rec = tmp->next;
    376       if (record_full_entry_release (tmp) == record_full_end)
    377 	{
    378 	  record_full_insn_num--;
    379 	  record_full_insn_count--;
    380 	}
    381       tmp = rec;
    382     }
    383 }
    384 
    385 /* Delete the first instruction from the beginning of the log, to make
    386    room for adding a new instruction at the end of the log.
    387 
    388    Note -- this function does not modify record_full_insn_num.  */
    389 
    390 static void
    391 record_full_list_release_first (void)
    392 {
    393   struct record_full_entry *tmp;
    394 
    395   if (!record_full_first.next)
    396     return;
    397 
    398   /* Loop until a record_full_end.  */
    399   while (1)
    400     {
    401       /* Cut record_full_first.next out of the linked list.  */
    402       tmp = record_full_first.next;
    403       record_full_first.next = tmp->next;
    404       tmp->next->prev = &record_full_first;
    405 
    406       /* tmp is now isolated, and can be deleted.  */
    407       if (record_full_entry_release (tmp) == record_full_end)
    408 	break;	/* End loop at first record_full_end.  */
    409 
    410       if (!record_full_first.next)
    411 	{
    412 	  gdb_assert (record_full_insn_num == 1);
    413 	  break;	/* End loop when list is empty.  */
    414 	}
    415     }
    416 }
    417 
    418 /* Add a struct record_full_entry to record_full_arch_list.  */
    419 
    420 static void
    421 record_full_arch_list_add (struct record_full_entry *rec)
    422 {
    423   if (record_debug > 1)
    424     fprintf_unfiltered (gdb_stdlog,
    425 			"Process record: record_full_arch_list_add %s.\n",
    426 			host_address_to_string (rec));
    427 
    428   if (record_full_arch_list_tail)
    429     {
    430       record_full_arch_list_tail->next = rec;
    431       rec->prev = record_full_arch_list_tail;
    432       record_full_arch_list_tail = rec;
    433     }
    434   else
    435     {
    436       record_full_arch_list_head = rec;
    437       record_full_arch_list_tail = rec;
    438     }
    439 }
    440 
    441 /* Return the value storage location of a record entry.  */
    442 static inline gdb_byte *
    443 record_full_get_loc (struct record_full_entry *rec)
    444 {
    445   switch (rec->type) {
    446   case record_full_mem:
    447     if (rec->u.mem.len > sizeof (rec->u.mem.u.buf))
    448       return rec->u.mem.u.ptr;
    449     else
    450       return rec->u.mem.u.buf;
    451   case record_full_reg:
    452     if (rec->u.reg.len > sizeof (rec->u.reg.u.buf))
    453       return rec->u.reg.u.ptr;
    454     else
    455       return rec->u.reg.u.buf;
    456   case record_full_end:
    457   default:
    458     gdb_assert_not_reached ("unexpected record_full_entry type");
    459     return NULL;
    460   }
    461 }
    462 
    463 /* Record the value of a register NUM to record_full_arch_list.  */
    464 
    465 int
    466 record_full_arch_list_add_reg (struct regcache *regcache, int regnum)
    467 {
    468   struct record_full_entry *rec;
    469 
    470   if (record_debug > 1)
    471     fprintf_unfiltered (gdb_stdlog,
    472 			"Process record: add register num = %d to "
    473 			"record list.\n",
    474 			regnum);
    475 
    476   rec = record_full_reg_alloc (regcache, regnum);
    477 
    478   regcache_raw_read (regcache, regnum, record_full_get_loc (rec));
    479 
    480   record_full_arch_list_add (rec);
    481 
    482   return 0;
    483 }
    484 
    485 /* Record the value of a region of memory whose address is ADDR and
    486    length is LEN to record_full_arch_list.  */
    487 
    488 int
    489 record_full_arch_list_add_mem (CORE_ADDR addr, int len)
    490 {
    491   struct record_full_entry *rec;
    492 
    493   if (record_debug > 1)
    494     fprintf_unfiltered (gdb_stdlog,
    495 			"Process record: add mem addr = %s len = %d to "
    496 			"record list.\n",
    497 			paddress (target_gdbarch (), addr), len);
    498 
    499   if (!addr)	/* FIXME: Why?  Some arch must permit it...  */
    500     return 0;
    501 
    502   rec = record_full_mem_alloc (addr, len);
    503 
    504   if (record_read_memory (target_gdbarch (), addr,
    505 			  record_full_get_loc (rec), len))
    506     {
    507       record_full_mem_release (rec);
    508       return -1;
    509     }
    510 
    511   record_full_arch_list_add (rec);
    512 
    513   return 0;
    514 }
    515 
    516 /* Add a record_full_end type struct record_full_entry to
    517    record_full_arch_list.  */
    518 
    519 int
    520 record_full_arch_list_add_end (void)
    521 {
    522   struct record_full_entry *rec;
    523 
    524   if (record_debug > 1)
    525     fprintf_unfiltered (gdb_stdlog,
    526 			"Process record: add end to arch list.\n");
    527 
    528   rec = record_full_end_alloc ();
    529   rec->u.end.sigval = GDB_SIGNAL_0;
    530   rec->u.end.insn_num = ++record_full_insn_count;
    531 
    532   record_full_arch_list_add (rec);
    533 
    534   return 0;
    535 }
    536 
    537 static void
    538 record_full_check_insn_num (int set_terminal)
    539 {
    540   if (record_full_insn_num == record_full_insn_max_num)
    541     {
    542       /* Ask user what to do.  */
    543       if (record_full_stop_at_limit)
    544 	{
    545 	  int q;
    546 
    547 	  if (set_terminal)
    548 	    target_terminal_ours ();
    549 	  q = yquery (_("Do you want to auto delete previous execution "
    550 			"log entries when record/replay buffer becomes "
    551 			"full (record full stop-at-limit)?"));
    552 	  if (set_terminal)
    553 	    target_terminal_inferior ();
    554 	  if (q)
    555 	    record_full_stop_at_limit = 0;
    556 	  else
    557 	    error (_("Process record: stopped by user."));
    558 	}
    559     }
    560 }
    561 
    562 static void
    563 record_full_arch_list_cleanups (void *ignore)
    564 {
    565   record_full_list_release (record_full_arch_list_tail);
    566 }
    567 
    568 /* Before inferior step (when GDB record the running message, inferior
    569    only can step), GDB will call this function to record the values to
    570    record_full_list.  This function will call gdbarch_process_record to
    571    record the running message of inferior and set them to
    572    record_full_arch_list, and add it to record_full_list.  */
    573 
    574 static int
    575 record_full_message (struct regcache *regcache, enum gdb_signal signal)
    576 {
    577   int ret;
    578   struct gdbarch *gdbarch = get_regcache_arch (regcache);
    579   struct cleanup *old_cleanups
    580     = make_cleanup (record_full_arch_list_cleanups, 0);
    581 
    582   record_full_arch_list_head = NULL;
    583   record_full_arch_list_tail = NULL;
    584 
    585   /* Check record_full_insn_num.  */
    586   record_full_check_insn_num (1);
    587 
    588   /* If gdb sends a signal value to target_resume,
    589      save it in the 'end' field of the previous instruction.
    590 
    591      Maybe process record should record what really happened,
    592      rather than what gdb pretends has happened.
    593 
    594      So if Linux delivered the signal to the child process during
    595      the record mode, we will record it and deliver it again in
    596      the replay mode.
    597 
    598      If user says "ignore this signal" during the record mode, then
    599      it will be ignored again during the replay mode (no matter if
    600      the user says something different, like "deliver this signal"
    601      during the replay mode).
    602 
    603      User should understand that nothing he does during the replay
    604      mode will change the behavior of the child.  If he tries,
    605      then that is a user error.
    606 
    607      But we should still deliver the signal to gdb during the replay,
    608      if we delivered it during the recording.  Therefore we should
    609      record the signal during record_full_wait, not
    610      record_full_resume.  */
    611   if (record_full_list != &record_full_first)  /* FIXME better way to check */
    612     {
    613       gdb_assert (record_full_list->type == record_full_end);
    614       record_full_list->u.end.sigval = signal;
    615     }
    616 
    617   if (signal == GDB_SIGNAL_0
    618       || !gdbarch_process_record_signal_p (gdbarch))
    619     ret = gdbarch_process_record (gdbarch,
    620 				  regcache,
    621 				  regcache_read_pc (regcache));
    622   else
    623     ret = gdbarch_process_record_signal (gdbarch,
    624 					 regcache,
    625 					 signal);
    626 
    627   if (ret > 0)
    628     error (_("Process record: inferior program stopped."));
    629   if (ret < 0)
    630     error (_("Process record: failed to record execution log."));
    631 
    632   discard_cleanups (old_cleanups);
    633 
    634   record_full_list->next = record_full_arch_list_head;
    635   record_full_arch_list_head->prev = record_full_list;
    636   record_full_list = record_full_arch_list_tail;
    637 
    638   if (record_full_insn_num == record_full_insn_max_num)
    639     record_full_list_release_first ();
    640   else
    641     record_full_insn_num++;
    642 
    643   return 1;
    644 }
    645 
    646 struct record_full_message_args {
    647   struct regcache *regcache;
    648   enum gdb_signal signal;
    649 };
    650 
    651 static int
    652 record_full_message_wrapper (void *args)
    653 {
    654   struct record_full_message_args *record_full_args = args;
    655 
    656   return record_full_message (record_full_args->regcache,
    657 			      record_full_args->signal);
    658 }
    659 
    660 static int
    661 record_full_message_wrapper_safe (struct regcache *regcache,
    662 				  enum gdb_signal signal)
    663 {
    664   struct record_full_message_args args;
    665 
    666   args.regcache = regcache;
    667   args.signal = signal;
    668 
    669   return catch_errors (record_full_message_wrapper, &args, NULL,
    670 		       RETURN_MASK_ALL);
    671 }
    672 
    673 /* Set to 1 if record_full_store_registers and record_full_xfer_partial
    674    doesn't need record.  */
    675 
    676 static int record_full_gdb_operation_disable = 0;
    677 
    678 struct cleanup *
    679 record_full_gdb_operation_disable_set (void)
    680 {
    681   struct cleanup *old_cleanups = NULL;
    682 
    683   old_cleanups =
    684     make_cleanup_restore_integer (&record_full_gdb_operation_disable);
    685   record_full_gdb_operation_disable = 1;
    686 
    687   return old_cleanups;
    688 }
    689 
    690 /* Flag set to TRUE for target_stopped_by_watchpoint.  */
    691 static int record_full_hw_watchpoint = 0;
    692 
    693 /* Execute one instruction from the record log.  Each instruction in
    694    the log will be represented by an arbitrary sequence of register
    695    entries and memory entries, followed by an 'end' entry.  */
    696 
    697 static inline void
    698 record_full_exec_insn (struct regcache *regcache,
    699 		       struct gdbarch *gdbarch,
    700 		       struct record_full_entry *entry)
    701 {
    702   switch (entry->type)
    703     {
    704     case record_full_reg: /* reg */
    705       {
    706         gdb_byte reg[MAX_REGISTER_SIZE];
    707 
    708         if (record_debug > 1)
    709           fprintf_unfiltered (gdb_stdlog,
    710                               "Process record: record_full_reg %s to "
    711                               "inferior num = %d.\n",
    712                               host_address_to_string (entry),
    713                               entry->u.reg.num);
    714 
    715         regcache_cooked_read (regcache, entry->u.reg.num, reg);
    716         regcache_cooked_write (regcache, entry->u.reg.num,
    717 			       record_full_get_loc (entry));
    718         memcpy (record_full_get_loc (entry), reg, entry->u.reg.len);
    719       }
    720       break;
    721 
    722     case record_full_mem: /* mem */
    723       {
    724 	/* Nothing to do if the entry is flagged not_accessible.  */
    725         if (!entry->u.mem.mem_entry_not_accessible)
    726           {
    727             gdb_byte *mem = alloca (entry->u.mem.len);
    728 
    729             if (record_debug > 1)
    730               fprintf_unfiltered (gdb_stdlog,
    731                                   "Process record: record_full_mem %s to "
    732                                   "inferior addr = %s len = %d.\n",
    733                                   host_address_to_string (entry),
    734                                   paddress (gdbarch, entry->u.mem.addr),
    735                                   entry->u.mem.len);
    736 
    737             if (record_read_memory (gdbarch,
    738 				    entry->u.mem.addr, mem, entry->u.mem.len))
    739 	      entry->u.mem.mem_entry_not_accessible = 1;
    740             else
    741               {
    742                 if (target_write_memory (entry->u.mem.addr,
    743 					 record_full_get_loc (entry),
    744 					 entry->u.mem.len))
    745                   {
    746                     entry->u.mem.mem_entry_not_accessible = 1;
    747                     if (record_debug)
    748                       warning (_("Process record: error writing memory at "
    749 				 "addr = %s len = %d."),
    750                                paddress (gdbarch, entry->u.mem.addr),
    751                                entry->u.mem.len);
    752                   }
    753                 else
    754 		  {
    755 		    memcpy (record_full_get_loc (entry), mem,
    756 			    entry->u.mem.len);
    757 
    758 		    /* We've changed memory --- check if a hardware
    759 		       watchpoint should trap.  Note that this
    760 		       presently assumes the target beneath supports
    761 		       continuable watchpoints.  On non-continuable
    762 		       watchpoints target, we'll want to check this
    763 		       _before_ actually doing the memory change, and
    764 		       not doing the change at all if the watchpoint
    765 		       traps.  */
    766 		    if (hardware_watchpoint_inserted_in_range
    767 			(get_regcache_aspace (regcache),
    768 			 entry->u.mem.addr, entry->u.mem.len))
    769 		      record_full_hw_watchpoint = 1;
    770 		  }
    771               }
    772           }
    773       }
    774       break;
    775     }
    776 }
    777 
    778 static void record_full_restore (void);
    779 
    780 /* Asynchronous signal handle registered as event loop source for when
    781    we have pending events ready to be passed to the core.  */
    782 
    783 static struct async_event_handler *record_full_async_inferior_event_token;
    784 
    785 static void
    786 record_full_async_inferior_event_handler (gdb_client_data data)
    787 {
    788   inferior_event_handler (INF_REG_EVENT, NULL);
    789 }
    790 
    791 /* Open the process record target.  */
    792 
    793 static void
    794 record_full_core_open_1 (const char *name, int from_tty)
    795 {
    796   struct regcache *regcache = get_current_regcache ();
    797   int regnum = gdbarch_num_regs (get_regcache_arch (regcache));
    798   int i;
    799 
    800   /* Get record_full_core_regbuf.  */
    801   target_fetch_registers (regcache, -1);
    802   record_full_core_regbuf = xmalloc (MAX_REGISTER_SIZE * regnum);
    803   for (i = 0; i < regnum; i ++)
    804     regcache_raw_collect (regcache, i,
    805 			  record_full_core_regbuf + MAX_REGISTER_SIZE * i);
    806 
    807   /* Get record_full_core_start and record_full_core_end.  */
    808   if (build_section_table (core_bfd, &record_full_core_start,
    809 			   &record_full_core_end))
    810     {
    811       xfree (record_full_core_regbuf);
    812       record_full_core_regbuf = NULL;
    813       error (_("\"%s\": Can't find sections: %s"),
    814 	     bfd_get_filename (core_bfd), bfd_errmsg (bfd_get_error ()));
    815     }
    816 
    817   push_target (&record_full_core_ops);
    818   record_full_restore ();
    819 }
    820 
    821 /* "to_open" target method for 'live' processes.  */
    822 
    823 static void
    824 record_full_open_1 (const char *name, int from_tty)
    825 {
    826   if (record_debug)
    827     fprintf_unfiltered (gdb_stdlog, "Process record: record_full_open\n");
    828 
    829   /* check exec */
    830   if (!target_has_execution)
    831     error (_("Process record: the program is not being run."));
    832   if (non_stop)
    833     error (_("Process record target can't debug inferior in non-stop mode "
    834 	     "(non-stop)."));
    835 
    836   if (!gdbarch_process_record_p (target_gdbarch ()))
    837     error (_("Process record: the current architecture doesn't support "
    838 	     "record function."));
    839 
    840   push_target (&record_full_ops);
    841 }
    842 
    843 static void record_full_init_record_breakpoints (void);
    844 
    845 /* "to_open" target method.  Open the process record target.  */
    846 
    847 static void
    848 record_full_open (const char *name, int from_tty)
    849 {
    850   struct target_ops *t;
    851 
    852   if (record_debug)
    853     fprintf_unfiltered (gdb_stdlog, "Process record: record_full_open\n");
    854 
    855   record_preopen ();
    856 
    857   /* Reset */
    858   record_full_insn_num = 0;
    859   record_full_insn_count = 0;
    860   record_full_list = &record_full_first;
    861   record_full_list->next = NULL;
    862 
    863   if (core_bfd)
    864     record_full_core_open_1 (name, from_tty);
    865   else
    866     record_full_open_1 (name, from_tty);
    867 
    868   /* Register extra event sources in the event loop.  */
    869   record_full_async_inferior_event_token
    870     = create_async_event_handler (record_full_async_inferior_event_handler,
    871 				  NULL);
    872 
    873   record_full_init_record_breakpoints ();
    874 
    875   observer_notify_record_changed (current_inferior (),  1);
    876 }
    877 
    878 /* "to_close" target method.  Close the process record target.  */
    879 
    880 static void
    881 record_full_close (struct target_ops *self)
    882 {
    883   struct record_full_core_buf_entry *entry;
    884 
    885   if (record_debug)
    886     fprintf_unfiltered (gdb_stdlog, "Process record: record_full_close\n");
    887 
    888   record_full_list_release (record_full_list);
    889 
    890   /* Release record_full_core_regbuf.  */
    891   if (record_full_core_regbuf)
    892     {
    893       xfree (record_full_core_regbuf);
    894       record_full_core_regbuf = NULL;
    895     }
    896 
    897   /* Release record_full_core_buf_list.  */
    898   if (record_full_core_buf_list)
    899     {
    900       for (entry = record_full_core_buf_list->prev; entry;
    901 	   entry = entry->prev)
    902 	{
    903 	  xfree (record_full_core_buf_list);
    904 	  record_full_core_buf_list = entry;
    905 	}
    906       record_full_core_buf_list = NULL;
    907     }
    908 
    909   if (record_full_async_inferior_event_token)
    910     delete_async_event_handler (&record_full_async_inferior_event_token);
    911 }
    912 
    913 /* "to_async" target method.  */
    914 
    915 static void
    916 record_full_async (struct target_ops *ops,
    917 		   void (*callback) (enum inferior_event_type event_type,
    918 				     void *context),
    919 		   void *context)
    920 {
    921   if (callback != NULL)
    922     mark_async_event_handler (record_full_async_inferior_event_token);
    923   else
    924     clear_async_event_handler (record_full_async_inferior_event_token);
    925 
    926   ops->beneath->to_async (ops->beneath, callback, context);
    927 }
    928 
    929 static int record_full_resume_step = 0;
    930 
    931 /* True if we've been resumed, and so each record_full_wait call should
    932    advance execution.  If this is false, record_full_wait will return a
    933    TARGET_WAITKIND_IGNORE.  */
    934 static int record_full_resumed = 0;
    935 
    936 /* The execution direction of the last resume we got.  This is
    937    necessary for async mode.  Vis (order is not strictly accurate):
    938 
    939    1. user has the global execution direction set to forward
    940    2. user does a reverse-step command
    941    3. record_full_resume is called with global execution direction
    942       temporarily switched to reverse
    943    4. GDB's execution direction is reverted back to forward
    944    5. target record notifies event loop there's an event to handle
    945    6. infrun asks the target which direction was it going, and switches
    946       the global execution direction accordingly (to reverse)
    947    7. infrun polls an event out of the record target, and handles it
    948    8. GDB goes back to the event loop, and goto #4.
    949 */
    950 static enum exec_direction_kind record_full_execution_dir = EXEC_FORWARD;
    951 
    952 /* "to_resume" target method.  Resume the process record target.  */
    953 
    954 static void
    955 record_full_resume (struct target_ops *ops, ptid_t ptid, int step,
    956 		    enum gdb_signal signal)
    957 {
    958   record_full_resume_step = step;
    959   record_full_resumed = 1;
    960   record_full_execution_dir = execution_direction;
    961 
    962   if (!RECORD_FULL_IS_REPLAY)
    963     {
    964       struct gdbarch *gdbarch = target_thread_architecture (ptid);
    965 
    966       record_full_message (get_current_regcache (), signal);
    967 
    968       if (!step)
    969         {
    970           /* This is not hard single step.  */
    971           if (!gdbarch_software_single_step_p (gdbarch))
    972             {
    973               /* This is a normal continue.  */
    974               step = 1;
    975             }
    976           else
    977             {
    978               /* This arch support soft sigle step.  */
    979               if (thread_has_single_step_breakpoints_set (inferior_thread ()))
    980                 {
    981                   /* This is a soft single step.  */
    982                   record_full_resume_step = 1;
    983                 }
    984               else
    985                 {
    986                   /* This is a continue.
    987                      Try to insert a soft single step breakpoint.  */
    988                   if (!gdbarch_software_single_step (gdbarch,
    989                                                      get_current_frame ()))
    990                     {
    991                       /* This system don't want use soft single step.
    992                          Use hard sigle step.  */
    993                       step = 1;
    994                     }
    995                 }
    996             }
    997         }
    998 
    999       /* Make sure the target beneath reports all signals.  */
   1000       target_pass_signals (0, NULL);
   1001 
   1002       ops->beneath->to_resume (ops->beneath, ptid, step, signal);
   1003     }
   1004 
   1005   /* We are about to start executing the inferior (or simulate it),
   1006      let's register it with the event loop.  */
   1007   if (target_can_async_p ())
   1008     target_async (inferior_event_handler, 0);
   1009 }
   1010 
   1011 static int record_full_get_sig = 0;
   1012 
   1013 /* SIGINT signal handler, registered by "to_wait" method.  */
   1014 
   1015 static void
   1016 record_full_sig_handler (int signo)
   1017 {
   1018   if (record_debug)
   1019     fprintf_unfiltered (gdb_stdlog, "Process record: get a signal\n");
   1020 
   1021   /* It will break the running inferior in replay mode.  */
   1022   record_full_resume_step = 1;
   1023 
   1024   /* It will let record_full_wait set inferior status to get the signal
   1025      SIGINT.  */
   1026   record_full_get_sig = 1;
   1027 }
   1028 
   1029 static void
   1030 record_full_wait_cleanups (void *ignore)
   1031 {
   1032   if (execution_direction == EXEC_REVERSE)
   1033     {
   1034       if (record_full_list->next)
   1035 	record_full_list = record_full_list->next;
   1036     }
   1037   else
   1038     record_full_list = record_full_list->prev;
   1039 }
   1040 
   1041 /* "to_wait" target method for process record target.
   1042 
   1043    In record mode, the target is always run in singlestep mode
   1044    (even when gdb says to continue).  The to_wait method intercepts
   1045    the stop events and determines which ones are to be passed on to
   1046    gdb.  Most stop events are just singlestep events that gdb is not
   1047    to know about, so the to_wait method just records them and keeps
   1048    singlestepping.
   1049 
   1050    In replay mode, this function emulates the recorded execution log,
   1051    one instruction at a time (forward or backward), and determines
   1052    where to stop.  */
   1053 
   1054 static ptid_t
   1055 record_full_wait_1 (struct target_ops *ops,
   1056 		    ptid_t ptid, struct target_waitstatus *status,
   1057 		    int options)
   1058 {
   1059   struct cleanup *set_cleanups = record_full_gdb_operation_disable_set ();
   1060 
   1061   if (record_debug)
   1062     fprintf_unfiltered (gdb_stdlog,
   1063 			"Process record: record_full_wait "
   1064 			"record_full_resume_step = %d, "
   1065 			"record_full_resumed = %d, direction=%s\n",
   1066 			record_full_resume_step, record_full_resumed,
   1067 			record_full_execution_dir == EXEC_FORWARD
   1068 			? "forward" : "reverse");
   1069 
   1070   if (!record_full_resumed)
   1071     {
   1072       gdb_assert ((options & TARGET_WNOHANG) != 0);
   1073 
   1074       /* No interesting event.  */
   1075       status->kind = TARGET_WAITKIND_IGNORE;
   1076       return minus_one_ptid;
   1077     }
   1078 
   1079   record_full_get_sig = 0;
   1080   signal (SIGINT, record_full_sig_handler);
   1081 
   1082   if (!RECORD_FULL_IS_REPLAY && ops != &record_full_core_ops)
   1083     {
   1084       if (record_full_resume_step)
   1085 	{
   1086 	  /* This is a single step.  */
   1087 	  return ops->beneath->to_wait (ops->beneath, ptid, status, options);
   1088 	}
   1089       else
   1090 	{
   1091 	  /* This is not a single step.  */
   1092 	  ptid_t ret;
   1093 	  CORE_ADDR tmp_pc;
   1094 	  struct gdbarch *gdbarch = target_thread_architecture (inferior_ptid);
   1095 
   1096 	  while (1)
   1097 	    {
   1098 	      struct thread_info *tp;
   1099 
   1100 	      ret = ops->beneath->to_wait (ops->beneath, ptid, status, options);
   1101 	      if (status->kind == TARGET_WAITKIND_IGNORE)
   1102 		{
   1103 		  if (record_debug)
   1104 		    fprintf_unfiltered (gdb_stdlog,
   1105 					"Process record: record_full_wait "
   1106 					"target beneath not done yet\n");
   1107 		  return ret;
   1108 		}
   1109 
   1110 	      ALL_NON_EXITED_THREADS (tp)
   1111                 delete_single_step_breakpoints (tp);
   1112 
   1113 	      if (record_full_resume_step)
   1114 		return ret;
   1115 
   1116 	      /* Is this a SIGTRAP?  */
   1117 	      if (status->kind == TARGET_WAITKIND_STOPPED
   1118 		  && status->value.sig == GDB_SIGNAL_TRAP)
   1119 		{
   1120 		  struct regcache *regcache;
   1121 		  struct address_space *aspace;
   1122 
   1123 		  /* Yes -- this is likely our single-step finishing,
   1124 		     but check if there's any reason the core would be
   1125 		     interested in the event.  */
   1126 
   1127 		  registers_changed ();
   1128 		  regcache = get_current_regcache ();
   1129 		  tmp_pc = regcache_read_pc (regcache);
   1130 		  aspace = get_regcache_aspace (regcache);
   1131 
   1132 		  if (target_stopped_by_watchpoint ())
   1133 		    {
   1134 		      /* Always interested in watchpoints.  */
   1135 		    }
   1136 		  else if (breakpoint_inserted_here_p (aspace, tmp_pc))
   1137 		    {
   1138 		      /* There is a breakpoint here.  Let the core
   1139 			 handle it.  */
   1140 		      if (software_breakpoint_inserted_here_p (aspace, tmp_pc))
   1141 			{
   1142 			  struct gdbarch *gdbarch
   1143 			    = get_regcache_arch (regcache);
   1144 			  CORE_ADDR decr_pc_after_break
   1145 			    = target_decr_pc_after_break (gdbarch);
   1146 			  if (decr_pc_after_break)
   1147 			    regcache_write_pc (regcache,
   1148 					       tmp_pc + decr_pc_after_break);
   1149 			}
   1150 		    }
   1151 		  else
   1152 		    {
   1153 		      /* This is a single-step trap.  Record the
   1154 		         insn and issue another step.
   1155                          FIXME: this part can be a random SIGTRAP too.
   1156                          But GDB cannot handle it.  */
   1157                       int step = 1;
   1158 
   1159 		      if (!record_full_message_wrapper_safe (regcache,
   1160 							     GDB_SIGNAL_0))
   1161   			{
   1162                            status->kind = TARGET_WAITKIND_STOPPED;
   1163                            status->value.sig = GDB_SIGNAL_0;
   1164                            break;
   1165   			}
   1166 
   1167                       if (gdbarch_software_single_step_p (gdbarch))
   1168 			{
   1169 			  /* Try to insert the software single step breakpoint.
   1170 			     If insert success, set step to 0.  */
   1171 			  set_executing (inferior_ptid, 0);
   1172 			  reinit_frame_cache ();
   1173 			  if (gdbarch_software_single_step (gdbarch,
   1174                                                             get_current_frame ()))
   1175 			    step = 0;
   1176 			  set_executing (inferior_ptid, 1);
   1177 			}
   1178 
   1179 		      if (record_debug)
   1180 			fprintf_unfiltered (gdb_stdlog,
   1181 					    "Process record: record_full_wait "
   1182 					    "issuing one more step in the "
   1183 					    "target beneath\n");
   1184 		      ops->beneath->to_resume (ops->beneath, ptid, step,
   1185 					       GDB_SIGNAL_0);
   1186 		      continue;
   1187 		    }
   1188 		}
   1189 
   1190 	      /* The inferior is broken by a breakpoint or a signal.  */
   1191 	      break;
   1192 	    }
   1193 
   1194 	  return ret;
   1195 	}
   1196     }
   1197   else
   1198     {
   1199       struct regcache *regcache = get_current_regcache ();
   1200       struct gdbarch *gdbarch = get_regcache_arch (regcache);
   1201       struct address_space *aspace = get_regcache_aspace (regcache);
   1202       int continue_flag = 1;
   1203       int first_record_full_end = 1;
   1204       struct cleanup *old_cleanups
   1205 	= make_cleanup (record_full_wait_cleanups, 0);
   1206       CORE_ADDR tmp_pc;
   1207 
   1208       record_full_hw_watchpoint = 0;
   1209       status->kind = TARGET_WAITKIND_STOPPED;
   1210 
   1211       /* Check breakpoint when forward execute.  */
   1212       if (execution_direction == EXEC_FORWARD)
   1213 	{
   1214 	  tmp_pc = regcache_read_pc (regcache);
   1215 	  if (breakpoint_inserted_here_p (aspace, tmp_pc))
   1216 	    {
   1217 	      int decr_pc_after_break = target_decr_pc_after_break (gdbarch);
   1218 
   1219 	      if (record_debug)
   1220 		fprintf_unfiltered (gdb_stdlog,
   1221 				    "Process record: break at %s.\n",
   1222 				    paddress (gdbarch, tmp_pc));
   1223 
   1224 	      if (decr_pc_after_break
   1225 		  && !record_full_resume_step
   1226 		  && software_breakpoint_inserted_here_p (aspace, tmp_pc))
   1227 		regcache_write_pc (regcache,
   1228 				   tmp_pc + decr_pc_after_break);
   1229 	      goto replay_out;
   1230 	    }
   1231 	}
   1232 
   1233       /* If GDB is in terminal_inferior mode, it will not get the signal.
   1234          And in GDB replay mode, GDB doesn't need to be in terminal_inferior
   1235          mode, because inferior will not executed.
   1236          Then set it to terminal_ours to make GDB get the signal.  */
   1237       target_terminal_ours ();
   1238 
   1239       /* In EXEC_FORWARD mode, record_full_list points to the tail of prev
   1240          instruction.  */
   1241       if (execution_direction == EXEC_FORWARD && record_full_list->next)
   1242 	record_full_list = record_full_list->next;
   1243 
   1244       /* Loop over the record_full_list, looking for the next place to
   1245 	 stop.  */
   1246       do
   1247 	{
   1248 	  /* Check for beginning and end of log.  */
   1249 	  if (execution_direction == EXEC_REVERSE
   1250 	      && record_full_list == &record_full_first)
   1251 	    {
   1252 	      /* Hit beginning of record log in reverse.  */
   1253 	      status->kind = TARGET_WAITKIND_NO_HISTORY;
   1254 	      break;
   1255 	    }
   1256 	  if (execution_direction != EXEC_REVERSE && !record_full_list->next)
   1257 	    {
   1258 	      /* Hit end of record log going forward.  */
   1259 	      status->kind = TARGET_WAITKIND_NO_HISTORY;
   1260 	      break;
   1261 	    }
   1262 
   1263           record_full_exec_insn (regcache, gdbarch, record_full_list);
   1264 
   1265 	  if (record_full_list->type == record_full_end)
   1266 	    {
   1267 	      if (record_debug > 1)
   1268 		fprintf_unfiltered (gdb_stdlog,
   1269 				    "Process record: record_full_end %s to "
   1270 				    "inferior.\n",
   1271 				    host_address_to_string (record_full_list));
   1272 
   1273 	      if (first_record_full_end && execution_direction == EXEC_REVERSE)
   1274 		{
   1275 		  /* When reverse excute, the first record_full_end is the
   1276 		     part of current instruction.  */
   1277 		  first_record_full_end = 0;
   1278 		}
   1279 	      else
   1280 		{
   1281 		  /* In EXEC_REVERSE mode, this is the record_full_end of prev
   1282 		     instruction.
   1283 		     In EXEC_FORWARD mode, this is the record_full_end of
   1284 		     current instruction.  */
   1285 		  /* step */
   1286 		  if (record_full_resume_step)
   1287 		    {
   1288 		      if (record_debug > 1)
   1289 			fprintf_unfiltered (gdb_stdlog,
   1290 					    "Process record: step.\n");
   1291 		      continue_flag = 0;
   1292 		    }
   1293 
   1294 		  /* check breakpoint */
   1295 		  tmp_pc = regcache_read_pc (regcache);
   1296 		  if (breakpoint_inserted_here_p (aspace, tmp_pc))
   1297 		    {
   1298 		      int decr_pc_after_break
   1299 			= target_decr_pc_after_break (gdbarch);
   1300 
   1301 		      if (record_debug)
   1302 			fprintf_unfiltered (gdb_stdlog,
   1303 					    "Process record: break "
   1304 					    "at %s.\n",
   1305 					    paddress (gdbarch, tmp_pc));
   1306 		      if (decr_pc_after_break
   1307 			  && execution_direction == EXEC_FORWARD
   1308 			  && !record_full_resume_step
   1309 			  && software_breakpoint_inserted_here_p (aspace,
   1310 								  tmp_pc))
   1311 			regcache_write_pc (regcache,
   1312 					   tmp_pc + decr_pc_after_break);
   1313 		      continue_flag = 0;
   1314 		    }
   1315 
   1316 		  if (record_full_hw_watchpoint)
   1317 		    {
   1318 		      if (record_debug)
   1319 			fprintf_unfiltered (gdb_stdlog,
   1320 					    "Process record: hit hw "
   1321 					    "watchpoint.\n");
   1322 		      continue_flag = 0;
   1323 		    }
   1324 		  /* Check target signal */
   1325 		  if (record_full_list->u.end.sigval != GDB_SIGNAL_0)
   1326 		    /* FIXME: better way to check */
   1327 		    continue_flag = 0;
   1328 		}
   1329 	    }
   1330 
   1331 	  if (continue_flag)
   1332 	    {
   1333 	      if (execution_direction == EXEC_REVERSE)
   1334 		{
   1335 		  if (record_full_list->prev)
   1336 		    record_full_list = record_full_list->prev;
   1337 		}
   1338 	      else
   1339 		{
   1340 		  if (record_full_list->next)
   1341 		    record_full_list = record_full_list->next;
   1342 		}
   1343 	    }
   1344 	}
   1345       while (continue_flag);
   1346 
   1347 replay_out:
   1348       if (record_full_get_sig)
   1349 	status->value.sig = GDB_SIGNAL_INT;
   1350       else if (record_full_list->u.end.sigval != GDB_SIGNAL_0)
   1351 	/* FIXME: better way to check */
   1352 	status->value.sig = record_full_list->u.end.sigval;
   1353       else
   1354 	status->value.sig = GDB_SIGNAL_TRAP;
   1355 
   1356       discard_cleanups (old_cleanups);
   1357     }
   1358 
   1359   signal (SIGINT, handle_sigint);
   1360 
   1361   do_cleanups (set_cleanups);
   1362   return inferior_ptid;
   1363 }
   1364 
   1365 static ptid_t
   1366 record_full_wait (struct target_ops *ops,
   1367 		  ptid_t ptid, struct target_waitstatus *status,
   1368 		  int options)
   1369 {
   1370   ptid_t return_ptid;
   1371 
   1372   return_ptid = record_full_wait_1 (ops, ptid, status, options);
   1373   if (status->kind != TARGET_WAITKIND_IGNORE)
   1374     {
   1375       /* We're reporting a stop.  Make sure any spurious
   1376 	 target_wait(WNOHANG) doesn't advance the target until the
   1377 	 core wants us resumed again.  */
   1378       record_full_resumed = 0;
   1379     }
   1380   return return_ptid;
   1381 }
   1382 
   1383 static int
   1384 record_full_stopped_by_watchpoint (struct target_ops *ops)
   1385 {
   1386   if (RECORD_FULL_IS_REPLAY)
   1387     return record_full_hw_watchpoint;
   1388   else
   1389     return ops->beneath->to_stopped_by_watchpoint (ops->beneath);
   1390 }
   1391 
   1392 static int
   1393 record_full_stopped_data_address (struct target_ops *ops, CORE_ADDR *addr_p)
   1394 {
   1395   if (RECORD_FULL_IS_REPLAY)
   1396     return 0;
   1397   else
   1398     return ops->beneath->to_stopped_data_address (ops->beneath, addr_p);
   1399 }
   1400 
   1401 /* Record registers change (by user or by GDB) to list as an instruction.  */
   1402 
   1403 static void
   1404 record_full_registers_change (struct regcache *regcache, int regnum)
   1405 {
   1406   /* Check record_full_insn_num.  */
   1407   record_full_check_insn_num (0);
   1408 
   1409   record_full_arch_list_head = NULL;
   1410   record_full_arch_list_tail = NULL;
   1411 
   1412   if (regnum < 0)
   1413     {
   1414       int i;
   1415 
   1416       for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
   1417 	{
   1418 	  if (record_full_arch_list_add_reg (regcache, i))
   1419 	    {
   1420 	      record_full_list_release (record_full_arch_list_tail);
   1421 	      error (_("Process record: failed to record execution log."));
   1422 	    }
   1423 	}
   1424     }
   1425   else
   1426     {
   1427       if (record_full_arch_list_add_reg (regcache, regnum))
   1428 	{
   1429 	  record_full_list_release (record_full_arch_list_tail);
   1430 	  error (_("Process record: failed to record execution log."));
   1431 	}
   1432     }
   1433   if (record_full_arch_list_add_end ())
   1434     {
   1435       record_full_list_release (record_full_arch_list_tail);
   1436       error (_("Process record: failed to record execution log."));
   1437     }
   1438   record_full_list->next = record_full_arch_list_head;
   1439   record_full_arch_list_head->prev = record_full_list;
   1440   record_full_list = record_full_arch_list_tail;
   1441 
   1442   if (record_full_insn_num == record_full_insn_max_num)
   1443     record_full_list_release_first ();
   1444   else
   1445     record_full_insn_num++;
   1446 }
   1447 
   1448 /* "to_store_registers" method for process record target.  */
   1449 
   1450 static void
   1451 record_full_store_registers (struct target_ops *ops,
   1452 			     struct regcache *regcache,
   1453 			     int regno)
   1454 {
   1455   if (!record_full_gdb_operation_disable)
   1456     {
   1457       if (RECORD_FULL_IS_REPLAY)
   1458 	{
   1459 	  int n;
   1460 
   1461 	  /* Let user choose if he wants to write register or not.  */
   1462 	  if (regno < 0)
   1463 	    n =
   1464 	      query (_("Because GDB is in replay mode, changing the "
   1465 		       "value of a register will make the execution "
   1466 		       "log unusable from this point onward.  "
   1467 		       "Change all registers?"));
   1468 	  else
   1469 	    n =
   1470 	      query (_("Because GDB is in replay mode, changing the value "
   1471 		       "of a register will make the execution log unusable "
   1472 		       "from this point onward.  Change register %s?"),
   1473 		      gdbarch_register_name (get_regcache_arch (regcache),
   1474 					       regno));
   1475 
   1476 	  if (!n)
   1477 	    {
   1478 	      /* Invalidate the value of regcache that was set in function
   1479 	         "regcache_raw_write".  */
   1480 	      if (regno < 0)
   1481 		{
   1482 		  int i;
   1483 
   1484 		  for (i = 0;
   1485 		       i < gdbarch_num_regs (get_regcache_arch (regcache));
   1486 		       i++)
   1487 		    regcache_invalidate (regcache, i);
   1488 		}
   1489 	      else
   1490 		regcache_invalidate (regcache, regno);
   1491 
   1492 	      error (_("Process record canceled the operation."));
   1493 	    }
   1494 
   1495 	  /* Destroy the record from here forward.  */
   1496 	  record_full_list_release_following (record_full_list);
   1497 	}
   1498 
   1499       record_full_registers_change (regcache, regno);
   1500     }
   1501   ops->beneath->to_store_registers (ops->beneath, regcache, regno);
   1502 }
   1503 
   1504 /* "to_xfer_partial" method.  Behavior is conditional on
   1505    RECORD_FULL_IS_REPLAY.
   1506    In replay mode, we cannot write memory unles we are willing to
   1507    invalidate the record/replay log from this point forward.  */
   1508 
   1509 static enum target_xfer_status
   1510 record_full_xfer_partial (struct target_ops *ops, enum target_object object,
   1511 			  const char *annex, gdb_byte *readbuf,
   1512 			  const gdb_byte *writebuf, ULONGEST offset,
   1513 			  ULONGEST len, ULONGEST *xfered_len)
   1514 {
   1515   if (!record_full_gdb_operation_disable
   1516       && (object == TARGET_OBJECT_MEMORY
   1517 	  || object == TARGET_OBJECT_RAW_MEMORY) && writebuf)
   1518     {
   1519       if (RECORD_FULL_IS_REPLAY)
   1520 	{
   1521 	  /* Let user choose if he wants to write memory or not.  */
   1522 	  if (!query (_("Because GDB is in replay mode, writing to memory "
   1523 		        "will make the execution log unusable from this "
   1524 		        "point onward.  Write memory at address %s?"),
   1525 		       paddress (target_gdbarch (), offset)))
   1526 	    error (_("Process record canceled the operation."));
   1527 
   1528 	  /* Destroy the record from here forward.  */
   1529 	  record_full_list_release_following (record_full_list);
   1530 	}
   1531 
   1532       /* Check record_full_insn_num */
   1533       record_full_check_insn_num (0);
   1534 
   1535       /* Record registers change to list as an instruction.  */
   1536       record_full_arch_list_head = NULL;
   1537       record_full_arch_list_tail = NULL;
   1538       if (record_full_arch_list_add_mem (offset, len))
   1539 	{
   1540 	  record_full_list_release (record_full_arch_list_tail);
   1541 	  if (record_debug)
   1542 	    fprintf_unfiltered (gdb_stdlog,
   1543 				"Process record: failed to record "
   1544 				"execution log.");
   1545 	  return TARGET_XFER_E_IO;
   1546 	}
   1547       if (record_full_arch_list_add_end ())
   1548 	{
   1549 	  record_full_list_release (record_full_arch_list_tail);
   1550 	  if (record_debug)
   1551 	    fprintf_unfiltered (gdb_stdlog,
   1552 				"Process record: failed to record "
   1553 				"execution log.");
   1554 	  return TARGET_XFER_E_IO;
   1555 	}
   1556       record_full_list->next = record_full_arch_list_head;
   1557       record_full_arch_list_head->prev = record_full_list;
   1558       record_full_list = record_full_arch_list_tail;
   1559 
   1560       if (record_full_insn_num == record_full_insn_max_num)
   1561 	record_full_list_release_first ();
   1562       else
   1563 	record_full_insn_num++;
   1564     }
   1565 
   1566   return ops->beneath->to_xfer_partial (ops->beneath, object, annex,
   1567 					readbuf, writebuf, offset,
   1568 					len, xfered_len);
   1569 }
   1570 
   1571 /* This structure represents a breakpoint inserted while the record
   1572    target is active.  We use this to know when to install/remove
   1573    breakpoints in/from the target beneath.  For example, a breakpoint
   1574    may be inserted while recording, but removed when not replaying nor
   1575    recording.  In that case, the breakpoint had not been inserted on
   1576    the target beneath, so we should not try to remove it there.  */
   1577 
   1578 struct record_full_breakpoint
   1579 {
   1580   /* The address and address space the breakpoint was set at.  */
   1581   struct address_space *address_space;
   1582   CORE_ADDR addr;
   1583 
   1584   /* True when the breakpoint has been also installed in the target
   1585      beneath.  This will be false for breakpoints set during replay or
   1586      when recording.  */
   1587   int in_target_beneath;
   1588 };
   1589 
   1590 typedef struct record_full_breakpoint *record_full_breakpoint_p;
   1591 DEF_VEC_P(record_full_breakpoint_p);
   1592 
   1593 /* The list of breakpoints inserted while the record target is
   1594    active.  */
   1595 VEC(record_full_breakpoint_p) *record_full_breakpoints = NULL;
   1596 
   1597 static void
   1598 record_full_sync_record_breakpoints (struct bp_location *loc, void *data)
   1599 {
   1600   if (loc->loc_type != bp_loc_software_breakpoint)
   1601       return;
   1602 
   1603   if (loc->inserted)
   1604     {
   1605       struct record_full_breakpoint *bp = XNEW (struct record_full_breakpoint);
   1606 
   1607       bp->addr = loc->target_info.placed_address;
   1608       bp->address_space = loc->target_info.placed_address_space;
   1609 
   1610       bp->in_target_beneath = 1;
   1611 
   1612       VEC_safe_push (record_full_breakpoint_p, record_full_breakpoints, bp);
   1613     }
   1614 }
   1615 
   1616 /* Sync existing breakpoints to record_full_breakpoints.  */
   1617 
   1618 static void
   1619 record_full_init_record_breakpoints (void)
   1620 {
   1621   VEC_free (record_full_breakpoint_p, record_full_breakpoints);
   1622 
   1623   iterate_over_bp_locations (record_full_sync_record_breakpoints);
   1624 }
   1625 
   1626 /* Behavior is conditional on RECORD_FULL_IS_REPLAY.  We will not actually
   1627    insert or remove breakpoints in the real target when replaying, nor
   1628    when recording.  */
   1629 
   1630 static int
   1631 record_full_insert_breakpoint (struct target_ops *ops,
   1632 			       struct gdbarch *gdbarch,
   1633 			       struct bp_target_info *bp_tgt)
   1634 {
   1635   struct record_full_breakpoint *bp;
   1636   int in_target_beneath = 0;
   1637 
   1638   if (!RECORD_FULL_IS_REPLAY)
   1639     {
   1640       /* When recording, we currently always single-step, so we don't
   1641 	 really need to install regular breakpoints in the inferior.
   1642 	 However, we do have to insert software single-step
   1643 	 breakpoints, in case the target can't hardware step.  To keep
   1644 	 things single, we always insert.  */
   1645       struct cleanup *old_cleanups;
   1646       int ret;
   1647 
   1648       old_cleanups = record_full_gdb_operation_disable_set ();
   1649       ret = ops->beneath->to_insert_breakpoint (ops->beneath, gdbarch, bp_tgt);
   1650       do_cleanups (old_cleanups);
   1651 
   1652       if (ret != 0)
   1653 	return ret;
   1654 
   1655       in_target_beneath = 1;
   1656     }
   1657 
   1658   bp = XNEW (struct record_full_breakpoint);
   1659   bp->addr = bp_tgt->placed_address;
   1660   bp->address_space = bp_tgt->placed_address_space;
   1661   bp->in_target_beneath = in_target_beneath;
   1662   VEC_safe_push (record_full_breakpoint_p, record_full_breakpoints, bp);
   1663   return 0;
   1664 }
   1665 
   1666 /* "to_remove_breakpoint" method for process record target.  */
   1667 
   1668 static int
   1669 record_full_remove_breakpoint (struct target_ops *ops,
   1670 			       struct gdbarch *gdbarch,
   1671 			       struct bp_target_info *bp_tgt)
   1672 {
   1673   struct record_full_breakpoint *bp;
   1674   int ix;
   1675 
   1676   for (ix = 0;
   1677        VEC_iterate (record_full_breakpoint_p,
   1678 		    record_full_breakpoints, ix, bp);
   1679        ++ix)
   1680     {
   1681       if (bp->addr == bp_tgt->placed_address
   1682 	  && bp->address_space == bp_tgt->placed_address_space)
   1683 	{
   1684 	  if (bp->in_target_beneath)
   1685 	    {
   1686 	      struct cleanup *old_cleanups;
   1687 	      int ret;
   1688 
   1689 	      old_cleanups = record_full_gdb_operation_disable_set ();
   1690 	      ret = ops->beneath->to_remove_breakpoint (ops->beneath, gdbarch,
   1691 							bp_tgt);
   1692 	      do_cleanups (old_cleanups);
   1693 
   1694 	      if (ret != 0)
   1695 		return ret;
   1696 	    }
   1697 
   1698 	  VEC_unordered_remove (record_full_breakpoint_p,
   1699 				record_full_breakpoints, ix);
   1700 	  return 0;
   1701 	}
   1702     }
   1703 
   1704   gdb_assert_not_reached ("removing unknown breakpoint");
   1705 }
   1706 
   1707 /* "to_can_execute_reverse" method for process record target.  */
   1708 
   1709 static int
   1710 record_full_can_execute_reverse (struct target_ops *self)
   1711 {
   1712   return 1;
   1713 }
   1714 
   1715 /* "to_get_bookmark" method for process record and prec over core.  */
   1716 
   1717 static gdb_byte *
   1718 record_full_get_bookmark (struct target_ops *self, const char *args,
   1719 			  int from_tty)
   1720 {
   1721   char *ret = NULL;
   1722 
   1723   /* Return stringified form of instruction count.  */
   1724   if (record_full_list && record_full_list->type == record_full_end)
   1725     ret = xstrdup (pulongest (record_full_list->u.end.insn_num));
   1726 
   1727   if (record_debug)
   1728     {
   1729       if (ret)
   1730 	fprintf_unfiltered (gdb_stdlog,
   1731 			    "record_full_get_bookmark returns %s\n", ret);
   1732       else
   1733 	fprintf_unfiltered (gdb_stdlog,
   1734 			    "record_full_get_bookmark returns NULL\n");
   1735     }
   1736   return (gdb_byte *) ret;
   1737 }
   1738 
   1739 /* "to_goto_bookmark" method for process record and prec over core.  */
   1740 
   1741 static void
   1742 record_full_goto_bookmark (struct target_ops *self,
   1743 			   const gdb_byte *raw_bookmark, int from_tty)
   1744 {
   1745   const char *bookmark = (const char *) raw_bookmark;
   1746   struct cleanup *cleanup = make_cleanup (null_cleanup, NULL);
   1747 
   1748   if (record_debug)
   1749     fprintf_unfiltered (gdb_stdlog,
   1750 			"record_full_goto_bookmark receives %s\n", bookmark);
   1751 
   1752   if (bookmark[0] == '\'' || bookmark[0] == '\"')
   1753     {
   1754       char *copy;
   1755 
   1756       if (bookmark[strlen (bookmark) - 1] != bookmark[0])
   1757 	error (_("Unbalanced quotes: %s"), bookmark);
   1758 
   1759 
   1760       copy = savestring (bookmark + 1, strlen (bookmark) - 2);
   1761       make_cleanup (xfree, copy);
   1762       bookmark = copy;
   1763     }
   1764 
   1765   record_goto (bookmark);
   1766 
   1767   do_cleanups (cleanup);
   1768 }
   1769 
   1770 static enum exec_direction_kind
   1771 record_full_execution_direction (struct target_ops *self)
   1772 {
   1773   return record_full_execution_dir;
   1774 }
   1775 
   1776 static void
   1777 record_full_info (struct target_ops *self)
   1778 {
   1779   struct record_full_entry *p;
   1780 
   1781   if (RECORD_FULL_IS_REPLAY)
   1782     printf_filtered (_("Replay mode:\n"));
   1783   else
   1784     printf_filtered (_("Record mode:\n"));
   1785 
   1786   /* Find entry for first actual instruction in the log.  */
   1787   for (p = record_full_first.next;
   1788        p != NULL && p->type != record_full_end;
   1789        p = p->next)
   1790     ;
   1791 
   1792   /* Do we have a log at all?  */
   1793   if (p != NULL && p->type == record_full_end)
   1794     {
   1795       /* Display instruction number for first instruction in the log.  */
   1796       printf_filtered (_("Lowest recorded instruction number is %s.\n"),
   1797 		       pulongest (p->u.end.insn_num));
   1798 
   1799       /* If in replay mode, display where we are in the log.  */
   1800       if (RECORD_FULL_IS_REPLAY)
   1801 	printf_filtered (_("Current instruction number is %s.\n"),
   1802 			 pulongest (record_full_list->u.end.insn_num));
   1803 
   1804       /* Display instruction number for last instruction in the log.  */
   1805       printf_filtered (_("Highest recorded instruction number is %s.\n"),
   1806 		       pulongest (record_full_insn_count));
   1807 
   1808       /* Display log count.  */
   1809       printf_filtered (_("Log contains %u instructions.\n"),
   1810 		       record_full_insn_num);
   1811     }
   1812   else
   1813     printf_filtered (_("No instructions have been logged.\n"));
   1814 
   1815   /* Display max log size.  */
   1816   printf_filtered (_("Max logged instructions is %u.\n"),
   1817 		   record_full_insn_max_num);
   1818 }
   1819 
   1820 /* The "to_record_delete" target method.  */
   1821 
   1822 static void
   1823 record_full_delete (struct target_ops *self)
   1824 {
   1825   record_full_list_release_following (record_full_list);
   1826 }
   1827 
   1828 /* The "to_record_is_replaying" target method.  */
   1829 
   1830 static int
   1831 record_full_is_replaying (struct target_ops *self)
   1832 {
   1833   return RECORD_FULL_IS_REPLAY;
   1834 }
   1835 
   1836 /* Go to a specific entry.  */
   1837 
   1838 static void
   1839 record_full_goto_entry (struct record_full_entry *p)
   1840 {
   1841   if (p == NULL)
   1842     error (_("Target insn not found."));
   1843   else if (p == record_full_list)
   1844     error (_("Already at target insn."));
   1845   else if (p->u.end.insn_num > record_full_list->u.end.insn_num)
   1846     {
   1847       printf_filtered (_("Go forward to insn number %s\n"),
   1848 		       pulongest (p->u.end.insn_num));
   1849       record_full_goto_insn (p, EXEC_FORWARD);
   1850     }
   1851   else
   1852     {
   1853       printf_filtered (_("Go backward to insn number %s\n"),
   1854 		       pulongest (p->u.end.insn_num));
   1855       record_full_goto_insn (p, EXEC_REVERSE);
   1856     }
   1857 
   1858   registers_changed ();
   1859   reinit_frame_cache ();
   1860   print_stack_frame (get_selected_frame (NULL), 1, SRC_AND_LOC, 1);
   1861 }
   1862 
   1863 /* The "to_goto_record_begin" target method.  */
   1864 
   1865 static void
   1866 record_full_goto_begin (struct target_ops *self)
   1867 {
   1868   struct record_full_entry *p = NULL;
   1869 
   1870   for (p = &record_full_first; p != NULL; p = p->next)
   1871     if (p->type == record_full_end)
   1872       break;
   1873 
   1874   record_full_goto_entry (p);
   1875 }
   1876 
   1877 /* The "to_goto_record_end" target method.  */
   1878 
   1879 static void
   1880 record_full_goto_end (struct target_ops *self)
   1881 {
   1882   struct record_full_entry *p = NULL;
   1883 
   1884   for (p = record_full_list; p->next != NULL; p = p->next)
   1885     ;
   1886   for (; p!= NULL; p = p->prev)
   1887     if (p->type == record_full_end)
   1888       break;
   1889 
   1890   record_full_goto_entry (p);
   1891 }
   1892 
   1893 /* The "to_goto_record" target method.  */
   1894 
   1895 static void
   1896 record_full_goto (struct target_ops *self, ULONGEST target_insn)
   1897 {
   1898   struct record_full_entry *p = NULL;
   1899 
   1900   for (p = &record_full_first; p != NULL; p = p->next)
   1901     if (p->type == record_full_end && p->u.end.insn_num == target_insn)
   1902       break;
   1903 
   1904   record_full_goto_entry (p);
   1905 }
   1906 
   1907 static void
   1908 init_record_full_ops (void)
   1909 {
   1910   record_full_ops.to_shortname = "record-full";
   1911   record_full_ops.to_longname = "Process record and replay target";
   1912   record_full_ops.to_doc =
   1913     "Log program while executing and replay execution from log.";
   1914   record_full_ops.to_open = record_full_open;
   1915   record_full_ops.to_close = record_full_close;
   1916   record_full_ops.to_async = record_full_async;
   1917   record_full_ops.to_resume = record_full_resume;
   1918   record_full_ops.to_wait = record_full_wait;
   1919   record_full_ops.to_disconnect = record_disconnect;
   1920   record_full_ops.to_detach = record_detach;
   1921   record_full_ops.to_mourn_inferior = record_mourn_inferior;
   1922   record_full_ops.to_kill = record_kill;
   1923   record_full_ops.to_store_registers = record_full_store_registers;
   1924   record_full_ops.to_xfer_partial = record_full_xfer_partial;
   1925   record_full_ops.to_insert_breakpoint = record_full_insert_breakpoint;
   1926   record_full_ops.to_remove_breakpoint = record_full_remove_breakpoint;
   1927   record_full_ops.to_stopped_by_watchpoint = record_full_stopped_by_watchpoint;
   1928   record_full_ops.to_stopped_data_address = record_full_stopped_data_address;
   1929   record_full_ops.to_can_execute_reverse = record_full_can_execute_reverse;
   1930   record_full_ops.to_stratum = record_stratum;
   1931   /* Add bookmark target methods.  */
   1932   record_full_ops.to_get_bookmark = record_full_get_bookmark;
   1933   record_full_ops.to_goto_bookmark = record_full_goto_bookmark;
   1934   record_full_ops.to_execution_direction = record_full_execution_direction;
   1935   record_full_ops.to_info_record = record_full_info;
   1936   record_full_ops.to_save_record = record_full_save;
   1937   record_full_ops.to_delete_record = record_full_delete;
   1938   record_full_ops.to_record_is_replaying = record_full_is_replaying;
   1939   record_full_ops.to_goto_record_begin = record_full_goto_begin;
   1940   record_full_ops.to_goto_record_end = record_full_goto_end;
   1941   record_full_ops.to_goto_record = record_full_goto;
   1942   record_full_ops.to_magic = OPS_MAGIC;
   1943 }
   1944 
   1945 /* "to_resume" method for prec over corefile.  */
   1946 
   1947 static void
   1948 record_full_core_resume (struct target_ops *ops, ptid_t ptid, int step,
   1949 			 enum gdb_signal signal)
   1950 {
   1951   record_full_resume_step = step;
   1952   record_full_resumed = 1;
   1953   record_full_execution_dir = execution_direction;
   1954 
   1955   /* We are about to start executing the inferior (or simulate it),
   1956      let's register it with the event loop.  */
   1957   if (target_can_async_p ())
   1958     target_async (inferior_event_handler, 0);
   1959 }
   1960 
   1961 /* "to_kill" method for prec over corefile.  */
   1962 
   1963 static void
   1964 record_full_core_kill (struct target_ops *ops)
   1965 {
   1966   if (record_debug)
   1967     fprintf_unfiltered (gdb_stdlog, "Process record: record_full_core_kill\n");
   1968 
   1969   unpush_target (&record_full_core_ops);
   1970 }
   1971 
   1972 /* "to_fetch_registers" method for prec over corefile.  */
   1973 
   1974 static void
   1975 record_full_core_fetch_registers (struct target_ops *ops,
   1976 				  struct regcache *regcache,
   1977 				  int regno)
   1978 {
   1979   if (regno < 0)
   1980     {
   1981       int num = gdbarch_num_regs (get_regcache_arch (regcache));
   1982       int i;
   1983 
   1984       for (i = 0; i < num; i ++)
   1985         regcache_raw_supply (regcache, i,
   1986                              record_full_core_regbuf + MAX_REGISTER_SIZE * i);
   1987     }
   1988   else
   1989     regcache_raw_supply (regcache, regno,
   1990                          record_full_core_regbuf + MAX_REGISTER_SIZE * regno);
   1991 }
   1992 
   1993 /* "to_prepare_to_store" method for prec over corefile.  */
   1994 
   1995 static void
   1996 record_full_core_prepare_to_store (struct target_ops *self,
   1997 				   struct regcache *regcache)
   1998 {
   1999 }
   2000 
   2001 /* "to_store_registers" method for prec over corefile.  */
   2002 
   2003 static void
   2004 record_full_core_store_registers (struct target_ops *ops,
   2005                              struct regcache *regcache,
   2006                              int regno)
   2007 {
   2008   if (record_full_gdb_operation_disable)
   2009     regcache_raw_collect (regcache, regno,
   2010                           record_full_core_regbuf + MAX_REGISTER_SIZE * regno);
   2011   else
   2012     error (_("You can't do that without a process to debug."));
   2013 }
   2014 
   2015 /* "to_xfer_partial" method for prec over corefile.  */
   2016 
   2017 static enum target_xfer_status
   2018 record_full_core_xfer_partial (struct target_ops *ops,
   2019 			       enum target_object object,
   2020 			       const char *annex, gdb_byte *readbuf,
   2021 			       const gdb_byte *writebuf, ULONGEST offset,
   2022 			       ULONGEST len, ULONGEST *xfered_len)
   2023 {
   2024   if (object == TARGET_OBJECT_MEMORY)
   2025     {
   2026       if (record_full_gdb_operation_disable || !writebuf)
   2027 	{
   2028 	  struct target_section *p;
   2029 
   2030 	  for (p = record_full_core_start; p < record_full_core_end; p++)
   2031 	    {
   2032 	      if (offset >= p->addr)
   2033 		{
   2034 		  struct record_full_core_buf_entry *entry;
   2035 		  ULONGEST sec_offset;
   2036 
   2037 		  if (offset >= p->endaddr)
   2038 		    continue;
   2039 
   2040 		  if (offset + len > p->endaddr)
   2041 		    len = p->endaddr - offset;
   2042 
   2043 		  sec_offset = offset - p->addr;
   2044 
   2045 		  /* Read readbuf or write writebuf p, offset, len.  */
   2046 		  /* Check flags.  */
   2047 		  if (p->the_bfd_section->flags & SEC_CONSTRUCTOR
   2048 		      || (p->the_bfd_section->flags & SEC_HAS_CONTENTS) == 0)
   2049 		    {
   2050 		      if (readbuf)
   2051 			memset (readbuf, 0, len);
   2052 
   2053 		      *xfered_len = len;
   2054 		      return TARGET_XFER_OK;
   2055 		    }
   2056 		  /* Get record_full_core_buf_entry.  */
   2057 		  for (entry = record_full_core_buf_list; entry;
   2058 		       entry = entry->prev)
   2059 		    if (entry->p == p)
   2060 		      break;
   2061 		  if (writebuf)
   2062 		    {
   2063 		      if (!entry)
   2064 			{
   2065 			  /* Add a new entry.  */
   2066 			  entry = (struct record_full_core_buf_entry *)
   2067 			    xmalloc
   2068 			    (sizeof (struct record_full_core_buf_entry));
   2069 			  entry->p = p;
   2070 			  if (!bfd_malloc_and_get_section
   2071 			        (p->the_bfd_section->owner,
   2072 				 p->the_bfd_section,
   2073 				 &entry->buf))
   2074 			    {
   2075 			      xfree (entry);
   2076 			      return TARGET_XFER_EOF;
   2077 			    }
   2078 			  entry->prev = record_full_core_buf_list;
   2079 			  record_full_core_buf_list = entry;
   2080 			}
   2081 
   2082 		      memcpy (entry->buf + sec_offset, writebuf,
   2083 			      (size_t) len);
   2084 		    }
   2085 		  else
   2086 		    {
   2087 		      if (!entry)
   2088 			return ops->beneath->to_xfer_partial (ops->beneath,
   2089 							      object, annex,
   2090 							      readbuf, writebuf,
   2091 							      offset, len,
   2092 							      xfered_len);
   2093 
   2094 		      memcpy (readbuf, entry->buf + sec_offset,
   2095 			      (size_t) len);
   2096 		    }
   2097 
   2098 		  *xfered_len = len;
   2099 		  return TARGET_XFER_OK;
   2100 		}
   2101 	    }
   2102 
   2103 	  return TARGET_XFER_E_IO;
   2104 	}
   2105       else
   2106 	error (_("You can't do that without a process to debug."));
   2107     }
   2108 
   2109   return ops->beneath->to_xfer_partial (ops->beneath, object, annex,
   2110 					readbuf, writebuf, offset, len,
   2111 					xfered_len);
   2112 }
   2113 
   2114 /* "to_insert_breakpoint" method for prec over corefile.  */
   2115 
   2116 static int
   2117 record_full_core_insert_breakpoint (struct target_ops *ops,
   2118 				    struct gdbarch *gdbarch,
   2119 				    struct bp_target_info *bp_tgt)
   2120 {
   2121   return 0;
   2122 }
   2123 
   2124 /* "to_remove_breakpoint" method for prec over corefile.  */
   2125 
   2126 static int
   2127 record_full_core_remove_breakpoint (struct target_ops *ops,
   2128 				    struct gdbarch *gdbarch,
   2129 				    struct bp_target_info *bp_tgt)
   2130 {
   2131   return 0;
   2132 }
   2133 
   2134 /* "to_has_execution" method for prec over corefile.  */
   2135 
   2136 static int
   2137 record_full_core_has_execution (struct target_ops *ops, ptid_t the_ptid)
   2138 {
   2139   return 1;
   2140 }
   2141 
   2142 static void
   2143 init_record_full_core_ops (void)
   2144 {
   2145   record_full_core_ops.to_shortname = "record-core";
   2146   record_full_core_ops.to_longname = "Process record and replay target";
   2147   record_full_core_ops.to_doc =
   2148     "Log program while executing and replay execution from log.";
   2149   record_full_core_ops.to_open = record_full_open;
   2150   record_full_core_ops.to_close = record_full_close;
   2151   record_full_core_ops.to_async = record_full_async;
   2152   record_full_core_ops.to_resume = record_full_core_resume;
   2153   record_full_core_ops.to_wait = record_full_wait;
   2154   record_full_core_ops.to_kill = record_full_core_kill;
   2155   record_full_core_ops.to_fetch_registers = record_full_core_fetch_registers;
   2156   record_full_core_ops.to_prepare_to_store = record_full_core_prepare_to_store;
   2157   record_full_core_ops.to_store_registers = record_full_core_store_registers;
   2158   record_full_core_ops.to_xfer_partial = record_full_core_xfer_partial;
   2159   record_full_core_ops.to_insert_breakpoint
   2160     = record_full_core_insert_breakpoint;
   2161   record_full_core_ops.to_remove_breakpoint
   2162     = record_full_core_remove_breakpoint;
   2163   record_full_core_ops.to_stopped_by_watchpoint
   2164     = record_full_stopped_by_watchpoint;
   2165   record_full_core_ops.to_stopped_data_address
   2166     = record_full_stopped_data_address;
   2167   record_full_core_ops.to_can_execute_reverse
   2168     = record_full_can_execute_reverse;
   2169   record_full_core_ops.to_has_execution = record_full_core_has_execution;
   2170   record_full_core_ops.to_stratum = record_stratum;
   2171   /* Add bookmark target methods.  */
   2172   record_full_core_ops.to_get_bookmark = record_full_get_bookmark;
   2173   record_full_core_ops.to_goto_bookmark = record_full_goto_bookmark;
   2174   record_full_core_ops.to_execution_direction
   2175     = record_full_execution_direction;
   2176   record_full_core_ops.to_info_record = record_full_info;
   2177   record_full_core_ops.to_delete_record = record_full_delete;
   2178   record_full_core_ops.to_record_is_replaying = record_full_is_replaying;
   2179   record_full_core_ops.to_goto_record_begin = record_full_goto_begin;
   2180   record_full_core_ops.to_goto_record_end = record_full_goto_end;
   2181   record_full_core_ops.to_goto_record = record_full_goto;
   2182   record_full_core_ops.to_magic = OPS_MAGIC;
   2183 }
   2184 
   2185 /* Record log save-file format
   2186    Version 1 (never released)
   2187 
   2188    Header:
   2189      4 bytes: magic number htonl(0x20090829).
   2190        NOTE: be sure to change whenever this file format changes!
   2191 
   2192    Records:
   2193      record_full_end:
   2194        1 byte:  record type (record_full_end, see enum record_full_type).
   2195      record_full_reg:
   2196        1 byte:  record type (record_full_reg, see enum record_full_type).
   2197        8 bytes: register id (network byte order).
   2198        MAX_REGISTER_SIZE bytes: register value.
   2199      record_full_mem:
   2200        1 byte:  record type (record_full_mem, see enum record_full_type).
   2201        8 bytes: memory length (network byte order).
   2202        8 bytes: memory address (network byte order).
   2203        n bytes: memory value (n == memory length).
   2204 
   2205    Version 2
   2206      4 bytes: magic number netorder32(0x20091016).
   2207        NOTE: be sure to change whenever this file format changes!
   2208 
   2209    Records:
   2210      record_full_end:
   2211        1 byte:  record type (record_full_end, see enum record_full_type).
   2212        4 bytes: signal
   2213        4 bytes: instruction count
   2214      record_full_reg:
   2215        1 byte:  record type (record_full_reg, see enum record_full_type).
   2216        4 bytes: register id (network byte order).
   2217        n bytes: register value (n == actual register size).
   2218                 (eg. 4 bytes for x86 general registers).
   2219      record_full_mem:
   2220        1 byte:  record type (record_full_mem, see enum record_full_type).
   2221        4 bytes: memory length (network byte order).
   2222        8 bytes: memory address (network byte order).
   2223        n bytes: memory value (n == memory length).
   2224 
   2225 */
   2226 
   2227 /* bfdcore_read -- read bytes from a core file section.  */
   2228 
   2229 static inline void
   2230 bfdcore_read (bfd *obfd, asection *osec, void *buf, int len, int *offset)
   2231 {
   2232   int ret = bfd_get_section_contents (obfd, osec, buf, *offset, len);
   2233 
   2234   if (ret)
   2235     *offset += len;
   2236   else
   2237     error (_("Failed to read %d bytes from core file %s ('%s')."),
   2238 	   len, bfd_get_filename (obfd),
   2239 	   bfd_errmsg (bfd_get_error ()));
   2240 }
   2241 
   2242 static inline uint64_t
   2243 netorder64 (uint64_t input)
   2244 {
   2245   uint64_t ret;
   2246 
   2247   store_unsigned_integer ((gdb_byte *) &ret, sizeof (ret),
   2248 			  BFD_ENDIAN_BIG, input);
   2249   return ret;
   2250 }
   2251 
   2252 static inline uint32_t
   2253 netorder32 (uint32_t input)
   2254 {
   2255   uint32_t ret;
   2256 
   2257   store_unsigned_integer ((gdb_byte *) &ret, sizeof (ret),
   2258 			  BFD_ENDIAN_BIG, input);
   2259   return ret;
   2260 }
   2261 
   2262 static inline uint16_t
   2263 netorder16 (uint16_t input)
   2264 {
   2265   uint16_t ret;
   2266 
   2267   store_unsigned_integer ((gdb_byte *) &ret, sizeof (ret),
   2268 			  BFD_ENDIAN_BIG, input);
   2269   return ret;
   2270 }
   2271 
   2272 /* Restore the execution log from a core_bfd file.  */
   2273 static void
   2274 record_full_restore (void)
   2275 {
   2276   uint32_t magic;
   2277   struct cleanup *old_cleanups;
   2278   struct record_full_entry *rec;
   2279   asection *osec;
   2280   uint32_t osec_size;
   2281   int bfd_offset = 0;
   2282   struct regcache *regcache;
   2283 
   2284   /* We restore the execution log from the open core bfd,
   2285      if there is one.  */
   2286   if (core_bfd == NULL)
   2287     return;
   2288 
   2289   /* "record_full_restore" can only be called when record list is empty.  */
   2290   gdb_assert (record_full_first.next == NULL);
   2291 
   2292   if (record_debug)
   2293     fprintf_unfiltered (gdb_stdlog, "Restoring recording from core file.\n");
   2294 
   2295   /* Now need to find our special note section.  */
   2296   osec = bfd_get_section_by_name (core_bfd, "null0");
   2297   if (record_debug)
   2298     fprintf_unfiltered (gdb_stdlog, "Find precord section %s.\n",
   2299 			osec ? "succeeded" : "failed");
   2300   if (osec == NULL)
   2301     return;
   2302   osec_size = bfd_section_size (core_bfd, osec);
   2303   if (record_debug)
   2304     fprintf_unfiltered (gdb_stdlog, "%s", bfd_section_name (core_bfd, osec));
   2305 
   2306   /* Check the magic code.  */
   2307   bfdcore_read (core_bfd, osec, &magic, sizeof (magic), &bfd_offset);
   2308   if (magic != RECORD_FULL_FILE_MAGIC)
   2309     error (_("Version mis-match or file format error in core file %s."),
   2310 	   bfd_get_filename (core_bfd));
   2311   if (record_debug)
   2312     fprintf_unfiltered (gdb_stdlog,
   2313 			"  Reading 4-byte magic cookie "
   2314 			"RECORD_FULL_FILE_MAGIC (0x%s)\n",
   2315 			phex_nz (netorder32 (magic), 4));
   2316 
   2317   /* Restore the entries in recfd into record_full_arch_list_head and
   2318      record_full_arch_list_tail.  */
   2319   record_full_arch_list_head = NULL;
   2320   record_full_arch_list_tail = NULL;
   2321   record_full_insn_num = 0;
   2322   old_cleanups = make_cleanup (record_full_arch_list_cleanups, 0);
   2323   regcache = get_current_regcache ();
   2324 
   2325   while (1)
   2326     {
   2327       uint8_t rectype;
   2328       uint32_t regnum, len, signal, count;
   2329       uint64_t addr;
   2330 
   2331       /* We are finished when offset reaches osec_size.  */
   2332       if (bfd_offset >= osec_size)
   2333 	break;
   2334       bfdcore_read (core_bfd, osec, &rectype, sizeof (rectype), &bfd_offset);
   2335 
   2336       switch (rectype)
   2337         {
   2338         case record_full_reg: /* reg */
   2339           /* Get register number to regnum.  */
   2340           bfdcore_read (core_bfd, osec, &regnum,
   2341 			sizeof (regnum), &bfd_offset);
   2342 	  regnum = netorder32 (regnum);
   2343 
   2344           rec = record_full_reg_alloc (regcache, regnum);
   2345 
   2346           /* Get val.  */
   2347           bfdcore_read (core_bfd, osec, record_full_get_loc (rec),
   2348 			rec->u.reg.len, &bfd_offset);
   2349 
   2350 	  if (record_debug)
   2351 	    fprintf_unfiltered (gdb_stdlog,
   2352 				"  Reading register %d (1 "
   2353 				"plus %lu plus %d bytes)\n",
   2354 				rec->u.reg.num,
   2355 				(unsigned long) sizeof (regnum),
   2356 				rec->u.reg.len);
   2357           break;
   2358 
   2359         case record_full_mem: /* mem */
   2360           /* Get len.  */
   2361           bfdcore_read (core_bfd, osec, &len,
   2362 			sizeof (len), &bfd_offset);
   2363 	  len = netorder32 (len);
   2364 
   2365           /* Get addr.  */
   2366           bfdcore_read (core_bfd, osec, &addr,
   2367 			sizeof (addr), &bfd_offset);
   2368 	  addr = netorder64 (addr);
   2369 
   2370           rec = record_full_mem_alloc (addr, len);
   2371 
   2372           /* Get val.  */
   2373           bfdcore_read (core_bfd, osec, record_full_get_loc (rec),
   2374 			rec->u.mem.len, &bfd_offset);
   2375 
   2376 	  if (record_debug)
   2377 	    fprintf_unfiltered (gdb_stdlog,
   2378 				"  Reading memory %s (1 plus "
   2379 				"%lu plus %lu plus %d bytes)\n",
   2380 				paddress (get_current_arch (),
   2381 					  rec->u.mem.addr),
   2382 				(unsigned long) sizeof (addr),
   2383 				(unsigned long) sizeof (len),
   2384 				rec->u.mem.len);
   2385           break;
   2386 
   2387         case record_full_end: /* end */
   2388           rec = record_full_end_alloc ();
   2389           record_full_insn_num ++;
   2390 
   2391 	  /* Get signal value.  */
   2392 	  bfdcore_read (core_bfd, osec, &signal,
   2393 			sizeof (signal), &bfd_offset);
   2394 	  signal = netorder32 (signal);
   2395 	  rec->u.end.sigval = signal;
   2396 
   2397 	  /* Get insn count.  */
   2398 	  bfdcore_read (core_bfd, osec, &count,
   2399 			sizeof (count), &bfd_offset);
   2400 	  count = netorder32 (count);
   2401 	  rec->u.end.insn_num = count;
   2402 	  record_full_insn_count = count + 1;
   2403 	  if (record_debug)
   2404 	    fprintf_unfiltered (gdb_stdlog,
   2405 				"  Reading record_full_end (1 + "
   2406 				"%lu + %lu bytes), offset == %s\n",
   2407 				(unsigned long) sizeof (signal),
   2408 				(unsigned long) sizeof (count),
   2409 				paddress (get_current_arch (),
   2410 					  bfd_offset));
   2411           break;
   2412 
   2413         default:
   2414           error (_("Bad entry type in core file %s."),
   2415 		 bfd_get_filename (core_bfd));
   2416           break;
   2417         }
   2418 
   2419       /* Add rec to record arch list.  */
   2420       record_full_arch_list_add (rec);
   2421     }
   2422 
   2423   discard_cleanups (old_cleanups);
   2424 
   2425   /* Add record_full_arch_list_head to the end of record list.  */
   2426   record_full_first.next = record_full_arch_list_head;
   2427   record_full_arch_list_head->prev = &record_full_first;
   2428   record_full_arch_list_tail->next = NULL;
   2429   record_full_list = &record_full_first;
   2430 
   2431   /* Update record_full_insn_max_num.  */
   2432   if (record_full_insn_num > record_full_insn_max_num)
   2433     {
   2434       record_full_insn_max_num = record_full_insn_num;
   2435       warning (_("Auto increase record/replay buffer limit to %u."),
   2436                record_full_insn_max_num);
   2437     }
   2438 
   2439   /* Succeeded.  */
   2440   printf_filtered (_("Restored records from core file %s.\n"),
   2441 		   bfd_get_filename (core_bfd));
   2442 
   2443   print_stack_frame (get_selected_frame (NULL), 1, SRC_AND_LOC, 1);
   2444 }
   2445 
   2446 /* bfdcore_write -- write bytes into a core file section.  */
   2447 
   2448 static inline void
   2449 bfdcore_write (bfd *obfd, asection *osec, void *buf, int len, int *offset)
   2450 {
   2451   int ret = bfd_set_section_contents (obfd, osec, buf, *offset, len);
   2452 
   2453   if (ret)
   2454     *offset += len;
   2455   else
   2456     error (_("Failed to write %d bytes to core file %s ('%s')."),
   2457 	   len, bfd_get_filename (obfd),
   2458 	   bfd_errmsg (bfd_get_error ()));
   2459 }
   2460 
   2461 /* Restore the execution log from a file.  We use a modified elf
   2462    corefile format, with an extra section for our data.  */
   2463 
   2464 static void
   2465 cmd_record_full_restore (char *args, int from_tty)
   2466 {
   2467   core_file_command (args, from_tty);
   2468   record_full_open (args, from_tty);
   2469 }
   2470 
   2471 static void
   2472 record_full_save_cleanups (void *data)
   2473 {
   2474   bfd *obfd = data;
   2475   char *pathname = xstrdup (bfd_get_filename (obfd));
   2476 
   2477   gdb_bfd_unref (obfd);
   2478   unlink (pathname);
   2479   xfree (pathname);
   2480 }
   2481 
   2482 /* Save the execution log to a file.  We use a modified elf corefile
   2483    format, with an extra section for our data.  */
   2484 
   2485 static void
   2486 record_full_save (struct target_ops *self, const char *recfilename)
   2487 {
   2488   struct record_full_entry *cur_record_full_list;
   2489   uint32_t magic;
   2490   struct regcache *regcache;
   2491   struct gdbarch *gdbarch;
   2492   struct cleanup *old_cleanups;
   2493   struct cleanup *set_cleanups;
   2494   bfd *obfd;
   2495   int save_size = 0;
   2496   asection *osec = NULL;
   2497   int bfd_offset = 0;
   2498 
   2499   /* Open the save file.  */
   2500   if (record_debug)
   2501     fprintf_unfiltered (gdb_stdlog, "Saving execution log to core file '%s'\n",
   2502 			recfilename);
   2503 
   2504   /* Open the output file.  */
   2505   obfd = create_gcore_bfd (recfilename);
   2506   old_cleanups = make_cleanup (record_full_save_cleanups, obfd);
   2507 
   2508   /* Save the current record entry to "cur_record_full_list".  */
   2509   cur_record_full_list = record_full_list;
   2510 
   2511   /* Get the values of regcache and gdbarch.  */
   2512   regcache = get_current_regcache ();
   2513   gdbarch = get_regcache_arch (regcache);
   2514 
   2515   /* Disable the GDB operation record.  */
   2516   set_cleanups = record_full_gdb_operation_disable_set ();
   2517 
   2518   /* Reverse execute to the begin of record list.  */
   2519   while (1)
   2520     {
   2521       /* Check for beginning and end of log.  */
   2522       if (record_full_list == &record_full_first)
   2523         break;
   2524 
   2525       record_full_exec_insn (regcache, gdbarch, record_full_list);
   2526 
   2527       if (record_full_list->prev)
   2528         record_full_list = record_full_list->prev;
   2529     }
   2530 
   2531   /* Compute the size needed for the extra bfd section.  */
   2532   save_size = 4;	/* magic cookie */
   2533   for (record_full_list = record_full_first.next; record_full_list;
   2534        record_full_list = record_full_list->next)
   2535     switch (record_full_list->type)
   2536       {
   2537       case record_full_end:
   2538 	save_size += 1 + 4 + 4;
   2539 	break;
   2540       case record_full_reg:
   2541 	save_size += 1 + 4 + record_full_list->u.reg.len;
   2542 	break;
   2543       case record_full_mem:
   2544 	save_size += 1 + 4 + 8 + record_full_list->u.mem.len;
   2545 	break;
   2546       }
   2547 
   2548   /* Make the new bfd section.  */
   2549   osec = bfd_make_section_anyway_with_flags (obfd, "precord",
   2550                                              SEC_HAS_CONTENTS
   2551                                              | SEC_READONLY);
   2552   if (osec == NULL)
   2553     error (_("Failed to create 'precord' section for corefile %s: %s"),
   2554 	   recfilename,
   2555            bfd_errmsg (bfd_get_error ()));
   2556   bfd_set_section_size (obfd, osec, save_size);
   2557   bfd_set_section_vma (obfd, osec, 0);
   2558   bfd_set_section_alignment (obfd, osec, 0);
   2559   bfd_section_lma (obfd, osec) = 0;
   2560 
   2561   /* Save corefile state.  */
   2562   write_gcore_file (obfd);
   2563 
   2564   /* Write out the record log.  */
   2565   /* Write the magic code.  */
   2566   magic = RECORD_FULL_FILE_MAGIC;
   2567   if (record_debug)
   2568     fprintf_unfiltered (gdb_stdlog,
   2569 			"  Writing 4-byte magic cookie "
   2570 			"RECORD_FULL_FILE_MAGIC (0x%s)\n",
   2571 		      phex_nz (magic, 4));
   2572   bfdcore_write (obfd, osec, &magic, sizeof (magic), &bfd_offset);
   2573 
   2574   /* Save the entries to recfd and forward execute to the end of
   2575      record list.  */
   2576   record_full_list = &record_full_first;
   2577   while (1)
   2578     {
   2579       /* Save entry.  */
   2580       if (record_full_list != &record_full_first)
   2581         {
   2582 	  uint8_t type;
   2583 	  uint32_t regnum, len, signal, count;
   2584           uint64_t addr;
   2585 
   2586 	  type = record_full_list->type;
   2587           bfdcore_write (obfd, osec, &type, sizeof (type), &bfd_offset);
   2588 
   2589           switch (record_full_list->type)
   2590             {
   2591             case record_full_reg: /* reg */
   2592 	      if (record_debug)
   2593 		fprintf_unfiltered (gdb_stdlog,
   2594 				    "  Writing register %d (1 "
   2595 				    "plus %lu plus %d bytes)\n",
   2596 				    record_full_list->u.reg.num,
   2597 				    (unsigned long) sizeof (regnum),
   2598 				    record_full_list->u.reg.len);
   2599 
   2600               /* Write regnum.  */
   2601               regnum = netorder32 (record_full_list->u.reg.num);
   2602               bfdcore_write (obfd, osec, &regnum,
   2603 			     sizeof (regnum), &bfd_offset);
   2604 
   2605               /* Write regval.  */
   2606               bfdcore_write (obfd, osec,
   2607 			     record_full_get_loc (record_full_list),
   2608 			     record_full_list->u.reg.len, &bfd_offset);
   2609               break;
   2610 
   2611             case record_full_mem: /* mem */
   2612 	      if (record_debug)
   2613 		fprintf_unfiltered (gdb_stdlog,
   2614 				    "  Writing memory %s (1 plus "
   2615 				    "%lu plus %lu plus %d bytes)\n",
   2616 				    paddress (gdbarch,
   2617 					      record_full_list->u.mem.addr),
   2618 				    (unsigned long) sizeof (addr),
   2619 				    (unsigned long) sizeof (len),
   2620 				    record_full_list->u.mem.len);
   2621 
   2622 	      /* Write memlen.  */
   2623 	      len = netorder32 (record_full_list->u.mem.len);
   2624 	      bfdcore_write (obfd, osec, &len, sizeof (len), &bfd_offset);
   2625 
   2626 	      /* Write memaddr.  */
   2627 	      addr = netorder64 (record_full_list->u.mem.addr);
   2628 	      bfdcore_write (obfd, osec, &addr,
   2629 			     sizeof (addr), &bfd_offset);
   2630 
   2631 	      /* Write memval.  */
   2632 	      bfdcore_write (obfd, osec,
   2633 			     record_full_get_loc (record_full_list),
   2634 			     record_full_list->u.mem.len, &bfd_offset);
   2635               break;
   2636 
   2637               case record_full_end:
   2638 		if (record_debug)
   2639 		  fprintf_unfiltered (gdb_stdlog,
   2640 				      "  Writing record_full_end (1 + "
   2641 				      "%lu + %lu bytes)\n",
   2642 				      (unsigned long) sizeof (signal),
   2643 				      (unsigned long) sizeof (count));
   2644 		/* Write signal value.  */
   2645 		signal = netorder32 (record_full_list->u.end.sigval);
   2646 		bfdcore_write (obfd, osec, &signal,
   2647 			       sizeof (signal), &bfd_offset);
   2648 
   2649 		/* Write insn count.  */
   2650 		count = netorder32 (record_full_list->u.end.insn_num);
   2651 		bfdcore_write (obfd, osec, &count,
   2652 			       sizeof (count), &bfd_offset);
   2653                 break;
   2654             }
   2655         }
   2656 
   2657       /* Execute entry.  */
   2658       record_full_exec_insn (regcache, gdbarch, record_full_list);
   2659 
   2660       if (record_full_list->next)
   2661         record_full_list = record_full_list->next;
   2662       else
   2663         break;
   2664     }
   2665 
   2666   /* Reverse execute to cur_record_full_list.  */
   2667   while (1)
   2668     {
   2669       /* Check for beginning and end of log.  */
   2670       if (record_full_list == cur_record_full_list)
   2671         break;
   2672 
   2673       record_full_exec_insn (regcache, gdbarch, record_full_list);
   2674 
   2675       if (record_full_list->prev)
   2676         record_full_list = record_full_list->prev;
   2677     }
   2678 
   2679   do_cleanups (set_cleanups);
   2680   gdb_bfd_unref (obfd);
   2681   discard_cleanups (old_cleanups);
   2682 
   2683   /* Succeeded.  */
   2684   printf_filtered (_("Saved core file %s with execution log.\n"),
   2685 		   recfilename);
   2686 }
   2687 
   2688 /* record_full_goto_insn -- rewind the record log (forward or backward,
   2689    depending on DIR) to the given entry, changing the program state
   2690    correspondingly.  */
   2691 
   2692 static void
   2693 record_full_goto_insn (struct record_full_entry *entry,
   2694 		       enum exec_direction_kind dir)
   2695 {
   2696   struct cleanup *set_cleanups = record_full_gdb_operation_disable_set ();
   2697   struct regcache *regcache = get_current_regcache ();
   2698   struct gdbarch *gdbarch = get_regcache_arch (regcache);
   2699 
   2700   /* Assume everything is valid: we will hit the entry,
   2701      and we will not hit the end of the recording.  */
   2702 
   2703   if (dir == EXEC_FORWARD)
   2704     record_full_list = record_full_list->next;
   2705 
   2706   do
   2707     {
   2708       record_full_exec_insn (regcache, gdbarch, record_full_list);
   2709       if (dir == EXEC_REVERSE)
   2710 	record_full_list = record_full_list->prev;
   2711       else
   2712 	record_full_list = record_full_list->next;
   2713     } while (record_full_list != entry);
   2714   do_cleanups (set_cleanups);
   2715 }
   2716 
   2717 /* Alias for "target record-full".  */
   2718 
   2719 static void
   2720 cmd_record_full_start (char *args, int from_tty)
   2721 {
   2722   execute_command ("target record-full", from_tty);
   2723 }
   2724 
   2725 static void
   2726 set_record_full_insn_max_num (char *args, int from_tty,
   2727 			      struct cmd_list_element *c)
   2728 {
   2729   if (record_full_insn_num > record_full_insn_max_num)
   2730     {
   2731       /* Count down record_full_insn_num while releasing records from list.  */
   2732       while (record_full_insn_num > record_full_insn_max_num)
   2733        {
   2734          record_full_list_release_first ();
   2735          record_full_insn_num--;
   2736        }
   2737     }
   2738 }
   2739 
   2740 /* The "set record full" command.  */
   2741 
   2742 static void
   2743 set_record_full_command (char *args, int from_tty)
   2744 {
   2745   printf_unfiltered (_("\"set record full\" must be followed "
   2746 		       "by an apporpriate subcommand.\n"));
   2747   help_list (set_record_full_cmdlist, "set record full ", all_commands,
   2748 	     gdb_stdout);
   2749 }
   2750 
   2751 /* The "show record full" command.  */
   2752 
   2753 static void
   2754 show_record_full_command (char *args, int from_tty)
   2755 {
   2756   cmd_show_list (show_record_full_cmdlist, from_tty, "");
   2757 }
   2758 
   2759 /* Provide a prototype to silence -Wmissing-prototypes.  */
   2760 extern initialize_file_ftype _initialize_record_full;
   2761 
   2762 void
   2763 _initialize_record_full (void)
   2764 {
   2765   struct cmd_list_element *c;
   2766 
   2767   /* Init record_full_first.  */
   2768   record_full_first.prev = NULL;
   2769   record_full_first.next = NULL;
   2770   record_full_first.type = record_full_end;
   2771 
   2772   init_record_full_ops ();
   2773   add_target (&record_full_ops);
   2774   add_deprecated_target_alias (&record_full_ops, "record");
   2775   init_record_full_core_ops ();
   2776   add_target (&record_full_core_ops);
   2777 
   2778   add_prefix_cmd ("full", class_obscure, cmd_record_full_start,
   2779 		  _("Start full execution recording."), &record_full_cmdlist,
   2780 		  "record full ", 0, &record_cmdlist);
   2781 
   2782   c = add_cmd ("restore", class_obscure, cmd_record_full_restore,
   2783 	       _("Restore the execution log from a file.\n\
   2784 Argument is filename.  File must be created with 'record save'."),
   2785 	       &record_full_cmdlist);
   2786   set_cmd_completer (c, filename_completer);
   2787 
   2788   /* Deprecate the old version without "full" prefix.  */
   2789   c = add_alias_cmd ("restore", "full restore", class_obscure, 1,
   2790 		     &record_cmdlist);
   2791   set_cmd_completer (c, filename_completer);
   2792   deprecate_cmd (c, "record full restore");
   2793 
   2794   add_prefix_cmd ("full", class_support, set_record_full_command,
   2795 		  _("Set record options"), &set_record_full_cmdlist,
   2796 		  "set record full ", 0, &set_record_cmdlist);
   2797 
   2798   add_prefix_cmd ("full", class_support, show_record_full_command,
   2799 		  _("Show record options"), &show_record_full_cmdlist,
   2800 		  "show record full ", 0, &show_record_cmdlist);
   2801 
   2802   /* Record instructions number limit command.  */
   2803   add_setshow_boolean_cmd ("stop-at-limit", no_class,
   2804 			   &record_full_stop_at_limit, _("\
   2805 Set whether record/replay stops when record/replay buffer becomes full."), _("\
   2806 Show whether record/replay stops when record/replay buffer becomes full."),
   2807 			   _("Default is ON.\n\
   2808 When ON, if the record/replay buffer becomes full, ask user what to do.\n\
   2809 When OFF, if the record/replay buffer becomes full,\n\
   2810 delete the oldest recorded instruction to make room for each new one."),
   2811 			   NULL, NULL,
   2812 			   &set_record_full_cmdlist, &show_record_full_cmdlist);
   2813 
   2814   c = add_alias_cmd ("stop-at-limit", "full stop-at-limit", no_class, 1,
   2815 		     &set_record_cmdlist);
   2816   deprecate_cmd (c, "set record full stop-at-limit");
   2817 
   2818   c = add_alias_cmd ("stop-at-limit", "full stop-at-limit", no_class, 1,
   2819 		     &show_record_cmdlist);
   2820   deprecate_cmd (c, "show record full stop-at-limit");
   2821 
   2822   add_setshow_uinteger_cmd ("insn-number-max", no_class,
   2823 			    &record_full_insn_max_num,
   2824 			    _("Set record/replay buffer limit."),
   2825 			    _("Show record/replay buffer limit."), _("\
   2826 Set the maximum number of instructions to be stored in the\n\
   2827 record/replay buffer.  A value of either \"unlimited\" or zero means no\n\
   2828 limit.  Default is 200000."),
   2829 			    set_record_full_insn_max_num,
   2830 			    NULL, &set_record_full_cmdlist,
   2831 			    &show_record_full_cmdlist);
   2832 
   2833   c = add_alias_cmd ("insn-number-max", "full insn-number-max", no_class, 1,
   2834 		     &set_record_cmdlist);
   2835   deprecate_cmd (c, "set record full insn-number-max");
   2836 
   2837   c = add_alias_cmd ("insn-number-max", "full insn-number-max", no_class, 1,
   2838 		     &show_record_cmdlist);
   2839   deprecate_cmd (c, "show record full insn-number-max");
   2840 
   2841   add_setshow_boolean_cmd ("memory-query", no_class,
   2842 			   &record_full_memory_query, _("\
   2843 Set whether query if PREC cannot record memory change of next instruction."),
   2844                            _("\
   2845 Show whether query if PREC cannot record memory change of next instruction."),
   2846                            _("\
   2847 Default is OFF.\n\
   2848 When ON, query if PREC cannot record memory change of next instruction."),
   2849 			   NULL, NULL,
   2850 			   &set_record_full_cmdlist,
   2851 			   &show_record_full_cmdlist);
   2852 
   2853   c = add_alias_cmd ("memory-query", "full memory-query", no_class, 1,
   2854 		     &set_record_cmdlist);
   2855   deprecate_cmd (c, "set record full memory-query");
   2856 
   2857   c = add_alias_cmd ("memory-query", "full memory-query", no_class, 1,
   2858 		     &show_record_cmdlist);
   2859   deprecate_cmd (c, "show record full memory-query");
   2860 }
   2861