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https://sourceware.org/git/binutils-gdb.git
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1d506c26d9
This commit is the result of the following actions: - Running gdb/copyright.py to update all of the copyright headers to include 2024, - Manually updating a few files the copyright.py script told me to update, these files had copyright headers embedded within the file, - Regenerating gdbsupport/Makefile.in to refresh it's copyright date, - Using grep to find other files that still mentioned 2023. If these files were updated last year from 2022 to 2023 then I've updated them this year to 2024. I'm sure I've probably missed some dates. Feel free to fix them up as you spot them.
244 lines
7.4 KiB
C
244 lines
7.4 KiB
C
/* Native-dependent code for x86 (i386 and x86-64).
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Copyright (C) 2001-2024 Free Software Foundation, Inc.
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This file is part of GDB.
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This program is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 3 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program. If not, see <http://www.gnu.org/licenses/>. */
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#include "defs.h"
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#include "x86-nat.h"
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#include "gdbcmd.h"
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#include "inferior.h"
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#include <unordered_map>
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/* Support for hardware watchpoints and breakpoints using the x86
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debug registers.
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This provides several functions for inserting and removing
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hardware-assisted breakpoints and watchpoints, testing if one or
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more of the watchpoints triggered and at what address, checking
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whether a given region can be watched, etc.
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The functions below implement debug registers sharing by reference
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counts, and allow to watch regions up to 16 bytes long. */
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/* Low-level function vector. */
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struct x86_dr_low_type x86_dr_low;
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/* Hash table storing per-process data. We don't bind this to a
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per-inferior registry because of targets like x86 GNU/Linux that
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need to keep track of processes that aren't bound to any inferior
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(e.g., fork children, checkpoints). */
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static std::unordered_map<pid_t,
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struct x86_debug_reg_state> x86_debug_process_state;
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/* See x86-nat.h. */
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struct x86_debug_reg_state *
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x86_lookup_debug_reg_state (pid_t pid)
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{
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auto it = x86_debug_process_state.find (pid);
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if (it != x86_debug_process_state.end ())
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return &it->second;
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return nullptr;
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}
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/* Get debug registers state for process PID. */
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struct x86_debug_reg_state *
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x86_debug_reg_state (pid_t pid)
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{
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return &x86_debug_process_state[pid];
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}
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/* See declaration in x86-nat.h. */
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void
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x86_forget_process (pid_t pid)
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{
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x86_debug_process_state.erase (pid);
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}
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/* Clear the reference counts and forget everything we knew about the
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debug registers. */
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void
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x86_cleanup_dregs (void)
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{
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/* Starting from scratch has the same effect. */
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x86_forget_process (inferior_ptid.pid ());
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}
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/* Insert a watchpoint to watch a memory region which starts at
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address ADDR and whose length is LEN bytes. Watch memory accesses
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of the type TYPE. Return 0 on success, -1 on failure. */
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int
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x86_insert_watchpoint (CORE_ADDR addr, int len,
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enum target_hw_bp_type type, struct expression *cond)
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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return x86_dr_insert_watchpoint (state, type, addr, len);
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}
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/* Remove a watchpoint that watched the memory region which starts at
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address ADDR, whose length is LEN bytes, and for accesses of the
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type TYPE. Return 0 on success, -1 on failure. */
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int
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x86_remove_watchpoint (CORE_ADDR addr, int len,
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enum target_hw_bp_type type, struct expression *cond)
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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return x86_dr_remove_watchpoint (state, type, addr, len);
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}
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/* Return non-zero if we can watch a memory region that starts at
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address ADDR and whose length is LEN bytes. */
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int
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x86_region_ok_for_hw_watchpoint (CORE_ADDR addr, int len)
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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return x86_dr_region_ok_for_watchpoint (state, addr, len);
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}
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/* If the inferior has some break/watchpoint that triggered, set the
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address associated with that break/watchpoint and return non-zero.
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Otherwise, return zero. */
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int
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x86_stopped_data_address (CORE_ADDR *addr_p)
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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return x86_dr_stopped_data_address (state, addr_p);
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}
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/* Return non-zero if the inferior has some watchpoint that triggered.
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Otherwise return zero. */
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int
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x86_stopped_by_watchpoint ()
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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return x86_dr_stopped_by_watchpoint (state);
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}
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/* Insert a hardware-assisted breakpoint at BP_TGT->reqstd_address.
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Return 0 on success, EBUSY on failure. */
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int
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x86_insert_hw_breakpoint (struct gdbarch *gdbarch, struct bp_target_info *bp_tgt)
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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bp_tgt->placed_address = bp_tgt->reqstd_address;
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return x86_dr_insert_watchpoint (state, hw_execute,
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bp_tgt->placed_address, 1) ? EBUSY : 0;
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}
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/* Remove a hardware-assisted breakpoint at BP_TGT->placed_address.
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Return 0 on success, -1 on failure. */
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int
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x86_remove_hw_breakpoint (struct gdbarch *gdbarch,
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struct bp_target_info *bp_tgt)
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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return x86_dr_remove_watchpoint (state, hw_execute,
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bp_tgt->placed_address, 1);
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}
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/* Returns the number of hardware watchpoints of type TYPE that we can
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set. Value is positive if we can set CNT watchpoints, zero if
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setting watchpoints of type TYPE is not supported, and negative if
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CNT is more than the maximum number of watchpoints of type TYPE
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that we can support. TYPE is one of bp_hardware_watchpoint,
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bp_read_watchpoint, bp_write_watchpoint, or bp_hardware_breakpoint.
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CNT is the number of such watchpoints used so far (including this
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one). OTHERTYPE is non-zero if other types of watchpoints are
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currently enabled.
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We always return 1 here because we don't have enough information
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about possible overlap of addresses that they want to watch. As an
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extreme example, consider the case where all the watchpoints watch
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the same address and the same region length: then we can handle a
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virtually unlimited number of watchpoints, due to debug register
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sharing implemented via reference counts in x86-nat.c. */
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int
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x86_can_use_hw_breakpoint (enum bptype type, int cnt, int othertype)
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{
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return 1;
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}
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/* Return non-zero if the inferior has some breakpoint that triggered.
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Otherwise return zero. */
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int
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x86_stopped_by_hw_breakpoint ()
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{
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struct x86_debug_reg_state *state
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= x86_debug_reg_state (inferior_ptid.pid ());
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return x86_dr_stopped_by_hw_breakpoint (state);
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}
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static void
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add_show_debug_regs_command (void)
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{
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/* A maintenance command to enable printing the internal DRi mirror
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variables. */
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add_setshow_boolean_cmd ("show-debug-regs", class_maintenance,
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&show_debug_regs, _("\
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Set whether to show variables that mirror the x86 debug registers."), _("\
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Show whether to show variables that mirror the x86 debug registers."), _("\
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Use \"on\" to enable, \"off\" to disable.\n\
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If enabled, the debug registers values are shown when GDB inserts\n\
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or removes a hardware breakpoint or watchpoint, and when the inferior\n\
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triggers a breakpoint or watchpoint."),
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NULL,
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NULL,
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&maintenance_set_cmdlist,
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&maintenance_show_cmdlist);
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}
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/* See x86-nat.h. */
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void
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x86_set_debug_register_length (int len)
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{
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/* This function should be called only once for each native target. */
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gdb_assert (x86_dr_low.debug_register_length == 0);
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gdb_assert (len == 4 || len == 8);
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x86_dr_low.debug_register_length = len;
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add_show_debug_regs_command ();
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}
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