mirror of
https://sourceware.org/git/binutils-gdb.git
synced 2024-11-23 18:14:13 +08:00
cc463201c4
With the implemenations in this patch, ARC gdb can handle coredump related matters. The binutils counter part of this patch has already been pushed [1]. v2 [2]: - arc_linux_collect_gregset: Use "reg <= ARC_LAST_REGNUM" instead of "reg < ARC_LAST_REGNUM" for the condition check of the for-loop. - arc-linux-tdep.c: Use "ARC_LAST_REGNUM < ARRAY_SIZE (...)" instead of "ARC_LAST_REGNUM <= ARRAY_SIZE (...)" for the "asserts". - Use "buf + arc_linux_core_reg_offsets[ARC_ERET_REGNUM]" instead of "buf + REG_OFF (6)". - Fix a few typos/indentation. v3 [3]: - Use gdb_assert_not_reached(text) instead of gdb_assert (!text). - Remove unnecessary braces in the for loop. [1] arc: Add support for ARC HS extra registers in core files https://sourceware.org/git/?p=binutils-gdb.git;a=commit;h=2745674244d6aecddcf636475034bdb9c0a6b4a0 [2] First remarks https://sourceware.org/pipermail/gdb-patches/2020-September/171912.html [3] Second remarks https://sourceware.org/pipermail/gdb-patches/2020-October/172302.html gdb/ChangeLog: * arc-linux-tdep.h: New file. * arc-linux-tdep.c (arc_linux_core_reg_offsets, arc_linux_supply_gregset, arc_linux_supply_v2_regset, arc_linux_collect_gregset, arc_linux_collect_v2_regset, arc_linux_gregset, arc_linux_v2_regset, arc_linux_iterate_over_regset_sections, arc_linux_core_read_description): Implement. (arc_linux_init_osabi): Set iterate_over_regset_sections. * arc-tdep.h (ARC_OFFSET_NO_REGISTER): Declare. (arc_gdbarch_features_create): Add. * arc-tdep.c (arc_gdbarch_features_create): Not static anymore.
470 lines
15 KiB
C
470 lines
15 KiB
C
/* Target dependent code for GNU/Linux ARC.
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Copyright 2020 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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/* GDB header files. */
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#include "defs.h"
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#include "linux-tdep.h"
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#include "objfiles.h"
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#include "opcode/arc.h"
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#include "osabi.h"
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#include "solib-svr4.h"
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/* ARC header files. */
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#include "opcodes/arc-dis.h"
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#include "arc-linux-tdep.h"
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#include "arc-tdep.h"
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#include "arch/arc.h"
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#define REGOFF(offset) (offset * ARC_REGISTER_SIZE)
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/* arc_linux_core_reg_offsets[i] is the offset in the .reg section of GDB
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regnum i. Array index is an internal GDB register number, as defined in
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arc-tdep.h:arc_regnum.
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From include/uapi/asm/ptrace.h in the ARC Linux sources. */
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/* The layout of this struct is tightly bound to "arc_regnum" enum
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in arc-tdep.h. Any change of order in there, must be reflected
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here as well. */
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static const int arc_linux_core_reg_offsets[] = {
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/* R0 - R12. */
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REGOFF (22), REGOFF (21), REGOFF (20), REGOFF (19),
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REGOFF (18), REGOFF (17), REGOFF (16), REGOFF (15),
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REGOFF (14), REGOFF (13), REGOFF (12), REGOFF (11),
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REGOFF (10),
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/* R13 - R25. */
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REGOFF (37), REGOFF (36), REGOFF (35), REGOFF (34),
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REGOFF (33), REGOFF (32), REGOFF (31), REGOFF (30),
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REGOFF (29), REGOFF (28), REGOFF (27), REGOFF (26),
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REGOFF (25),
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REGOFF (9), /* R26 (GP) */
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REGOFF (8), /* FP */
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REGOFF (23), /* SP */
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ARC_OFFSET_NO_REGISTER, /* ILINK */
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ARC_OFFSET_NO_REGISTER, /* R30 */
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REGOFF (7), /* BLINK */
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/* R32 - R59. */
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER, ARC_OFFSET_NO_REGISTER,
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ARC_OFFSET_NO_REGISTER,
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REGOFF (4), /* LP_COUNT */
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ARC_OFFSET_NO_REGISTER, /* RESERVED */
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ARC_OFFSET_NO_REGISTER, /* LIMM */
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ARC_OFFSET_NO_REGISTER, /* PCL */
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REGOFF (39), /* PC */
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REGOFF (5), /* STATUS32 */
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REGOFF (2), /* LP_START */
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REGOFF (3), /* LP_END */
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REGOFF (1), /* BTA */
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REGOFF (6) /* ERET */
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};
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/* Implement the "cannot_fetch_register" gdbarch method. */
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static int
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arc_linux_cannot_fetch_register (struct gdbarch *gdbarch, int regnum)
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{
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/* Assume that register is readable if it is unknown. */
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switch (regnum)
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{
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case ARC_ILINK_REGNUM:
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case ARC_RESERVED_REGNUM:
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case ARC_LIMM_REGNUM:
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return true;
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case ARC_R30_REGNUM:
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case ARC_R58_REGNUM:
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case ARC_R59_REGNUM:
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return !arc_mach_is_arcv2 (gdbarch);
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}
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return (regnum > ARC_BLINK_REGNUM) && (regnum < ARC_LP_COUNT_REGNUM);
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}
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/* Implement the "cannot_store_register" gdbarch method. */
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static int
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arc_linux_cannot_store_register (struct gdbarch *gdbarch, int regnum)
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{
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/* Assume that register is writable if it is unknown. */
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switch (regnum)
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{
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case ARC_ILINK_REGNUM:
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case ARC_RESERVED_REGNUM:
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case ARC_LIMM_REGNUM:
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case ARC_PCL_REGNUM:
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return true;
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case ARC_R30_REGNUM:
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case ARC_R58_REGNUM:
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case ARC_R59_REGNUM:
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return !arc_mach_is_arcv2 (gdbarch);
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}
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return (regnum > ARC_BLINK_REGNUM) && (regnum < ARC_LP_COUNT_REGNUM);
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}
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/* For ARC Linux, breakpoints use the 16-bit TRAP_S 1 instruction, which
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is 0x3e78 (little endian) or 0x783e (big endian). */
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static const gdb_byte arc_linux_trap_s_be[] = { 0x78, 0x3e };
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static const gdb_byte arc_linux_trap_s_le[] = { 0x3e, 0x78 };
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static const int trap_size = 2; /* Number of bytes to insert "trap". */
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/* Implement the "breakpoint_kind_from_pc" gdbarch method. */
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static int
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arc_linux_breakpoint_kind_from_pc (struct gdbarch *gdbarch, CORE_ADDR *pcptr)
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{
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return trap_size;
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}
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/* Implement the "sw_breakpoint_from_kind" gdbarch method. */
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static const gdb_byte *
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arc_linux_sw_breakpoint_from_kind (struct gdbarch *gdbarch,
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int kind, int *size)
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{
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*size = kind;
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return ((gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
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? arc_linux_trap_s_be
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: arc_linux_trap_s_le);
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}
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/* Implement the "software_single_step" gdbarch method. */
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static std::vector<CORE_ADDR>
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arc_linux_software_single_step (struct regcache *regcache)
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{
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struct gdbarch *gdbarch = regcache->arch ();
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struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
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struct disassemble_info di = arc_disassemble_info (gdbarch);
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/* Read current instruction. */
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struct arc_instruction curr_insn;
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arc_insn_decode (regcache_read_pc (regcache), &di, arc_delayed_print_insn,
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&curr_insn);
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CORE_ADDR next_pc = arc_insn_get_linear_next_pc (curr_insn);
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std::vector<CORE_ADDR> next_pcs;
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/* For instructions with delay slots, the fall thru is not the
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instruction immediately after the current instruction, but the one
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after that. */
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if (curr_insn.has_delay_slot)
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{
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struct arc_instruction next_insn;
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arc_insn_decode (next_pc, &di, arc_delayed_print_insn, &next_insn);
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next_pcs.push_back (arc_insn_get_linear_next_pc (next_insn));
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}
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else
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next_pcs.push_back (next_pc);
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ULONGEST status32;
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regcache_cooked_read_unsigned (regcache, gdbarch_ps_regnum (gdbarch),
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&status32);
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if (curr_insn.is_control_flow)
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{
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CORE_ADDR branch_pc = arc_insn_get_branch_target (curr_insn);
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if (branch_pc != next_pc)
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next_pcs.push_back (branch_pc);
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}
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/* Is current instruction the last in a loop body? */
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else if (tdep->has_hw_loops)
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{
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/* If STATUS32.L is 1, then ZD-loops are disabled. */
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if ((status32 & ARC_STATUS32_L_MASK) == 0)
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{
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ULONGEST lp_end, lp_start, lp_count;
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regcache_cooked_read_unsigned (regcache, ARC_LP_START_REGNUM,
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&lp_start);
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regcache_cooked_read_unsigned (regcache, ARC_LP_END_REGNUM, &lp_end);
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regcache_cooked_read_unsigned (regcache, ARC_LP_COUNT_REGNUM,
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&lp_count);
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if (arc_debug)
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{
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debug_printf ("arc-linux: lp_start = %s, lp_end = %s, "
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"lp_count = %s, next_pc = %s\n",
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paddress (gdbarch, lp_start),
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paddress (gdbarch, lp_end),
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pulongest (lp_count),
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paddress (gdbarch, next_pc));
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}
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if (next_pc == lp_end && lp_count > 1)
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{
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/* The instruction is in effect a jump back to the start of
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the loop. */
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next_pcs.push_back (lp_start);
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}
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}
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}
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/* Is this a delay slot? Then next PC is in BTA register. */
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if ((status32 & ARC_STATUS32_DE_MASK) != 0)
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{
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ULONGEST bta;
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regcache_cooked_read_unsigned (regcache, ARC_BTA_REGNUM, &bta);
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next_pcs.push_back (bta);
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}
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return next_pcs;
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}
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/* Implement the "skip_solib_resolver" gdbarch method.
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See glibc_skip_solib_resolver for details. */
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static CORE_ADDR
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arc_linux_skip_solib_resolver (struct gdbarch *gdbarch, CORE_ADDR pc)
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{
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/* For uClibc 0.9.26+.
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An unresolved PLT entry points to "__dl_linux_resolve", which calls
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"_dl_linux_resolver" to do the resolving and then eventually jumps to
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the function.
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So we look for the symbol `_dl_linux_resolver', and if we are there,
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gdb sets a breakpoint at the return address, and continues. */
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struct bound_minimal_symbol resolver
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= lookup_minimal_symbol ("_dl_linux_resolver", NULL, NULL);
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if (arc_debug)
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{
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if (resolver.minsym != nullptr)
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{
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CORE_ADDR res_addr = BMSYMBOL_VALUE_ADDRESS (resolver);
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debug_printf ("arc-linux: skip_solib_resolver (): "
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"pc = %s, resolver at %s\n",
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print_core_address (gdbarch, pc),
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print_core_address (gdbarch, res_addr));
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}
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else
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{
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debug_printf ("arc-linux: skip_solib_resolver (): "
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"pc = %s, no resolver found\n",
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print_core_address (gdbarch, pc));
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}
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}
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if (resolver.minsym != nullptr && BMSYMBOL_VALUE_ADDRESS (resolver) == pc)
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{
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/* Find the return address. */
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return frame_unwind_caller_pc (get_current_frame ());
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}
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else
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{
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/* No breakpoint required. */
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return 0;
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}
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}
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void
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arc_linux_supply_gregset (const struct regset *regset,
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struct regcache *regcache,
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int regnum, const void *gregs, size_t size)
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{
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gdb_static_assert (ARC_LAST_REGNUM
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< ARRAY_SIZE (arc_linux_core_reg_offsets));
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const bfd_byte *buf = (const bfd_byte *) gregs;
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for (int reg = 0; reg <= ARC_LAST_REGNUM; reg++)
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if (arc_linux_core_reg_offsets[reg] != ARC_OFFSET_NO_REGISTER)
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regcache->raw_supply (reg, buf + arc_linux_core_reg_offsets[reg]);
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}
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void
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arc_linux_supply_v2_regset (const struct regset *regset,
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struct regcache *regcache, int regnum,
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const void *v2_regs, size_t size)
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{
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const bfd_byte *buf = (const bfd_byte *) v2_regs;
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/* user_regs_arcv2 is defined in linux arch/arc/include/uapi/asm/ptrace.h. */
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regcache->raw_supply (ARC_R30_REGNUM, buf);
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regcache->raw_supply (ARC_R58_REGNUM, buf + REGOFF (1));
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regcache->raw_supply (ARC_R59_REGNUM, buf + REGOFF (2));
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}
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/* Populate BUF with register REGNUM from the REGCACHE. */
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static void
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collect_register (const struct regcache *regcache, struct gdbarch *gdbarch,
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int regnum, gdb_byte *buf)
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{
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/* Skip non-existing registers. */
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if ((arc_linux_core_reg_offsets[regnum] == ARC_OFFSET_NO_REGISTER))
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return;
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/* The address where the execution has stopped is in pseudo-register
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STOP_PC. However, when kernel code is returning from the exception,
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it uses the value from ERET register. Since, TRAP_S (the breakpoint
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instruction) commits, the ERET points to the next instruction. In
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other words: ERET != STOP_PC. To jump back from the kernel code to
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the correct address, ERET must be overwritten by GDB's STOP_PC. Else,
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the program will continue at the address after the current instruction.
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*/
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if (regnum == gdbarch_pc_regnum (gdbarch))
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regnum = ARC_ERET_REGNUM;
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regcache->raw_collect (regnum, buf + arc_linux_core_reg_offsets[regnum]);
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}
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void
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arc_linux_collect_gregset (const struct regset *regset,
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const struct regcache *regcache,
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int regnum, void *gregs, size_t size)
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{
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gdb_static_assert (ARC_LAST_REGNUM
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< ARRAY_SIZE (arc_linux_core_reg_offsets));
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gdb_byte *buf = (gdb_byte *) gregs;
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struct gdbarch *gdbarch = regcache->arch ();
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/* regnum == -1 means writing all the registers. */
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if (regnum == -1)
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for (int reg = 0; reg <= ARC_LAST_REGNUM; reg++)
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collect_register (regcache, gdbarch, reg, buf);
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else if (regnum <= ARC_LAST_REGNUM)
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collect_register (regcache, gdbarch, regnum, buf);
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else
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gdb_assert_not_reached ("Invalid regnum in arc_linux_collect_gregset.");
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}
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void
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arc_linux_collect_v2_regset (const struct regset *regset,
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const struct regcache *regcache, int regnum,
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void *v2_regs, size_t size)
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{
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bfd_byte *buf = (bfd_byte *) v2_regs;
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regcache->raw_collect (ARC_R30_REGNUM, buf);
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regcache->raw_collect (ARC_R58_REGNUM, buf + REGOFF (1));
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regcache->raw_collect (ARC_R59_REGNUM, buf + REGOFF (2));
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}
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/* Linux regset definitions. */
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static const struct regset arc_linux_gregset = {
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arc_linux_core_reg_offsets,
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arc_linux_supply_gregset,
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arc_linux_collect_gregset,
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};
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static const struct regset arc_linux_v2_regset = {
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NULL,
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arc_linux_supply_v2_regset,
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arc_linux_collect_v2_regset,
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};
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/* Implement the `iterate_over_regset_sections` gdbarch method. */
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static void
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arc_linux_iterate_over_regset_sections (struct gdbarch *gdbarch,
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iterate_over_regset_sections_cb *cb,
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void *cb_data,
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const struct regcache *regcache)
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{
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/* There are 40 registers in Linux user_regs_struct, although some of
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them are now just a mere paddings, kept to maintain binary
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compatibility with older tools. */
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const int sizeof_gregset = 40 * ARC_REGISTER_SIZE;
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cb (".reg", sizeof_gregset, sizeof_gregset, &arc_linux_gregset, NULL,
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cb_data);
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cb (".reg-arc-v2", ARC_LINUX_SIZEOF_V2_REGSET, ARC_LINUX_SIZEOF_V2_REGSET,
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&arc_linux_v2_regset, NULL, cb_data);
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}
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/* Implement the `core_read_description` gdbarch method. */
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static const struct target_desc *
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arc_linux_core_read_description (struct gdbarch *gdbarch,
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struct target_ops *target,
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bfd *abfd)
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{
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arc_arch_features features
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= arc_arch_features_create (abfd,
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gdbarch_bfd_arch_info (gdbarch)->mach);
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return arc_lookup_target_description (features);
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}
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/* Initialization specific to Linux environment. */
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static void
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arc_linux_init_osabi (struct gdbarch_info info, struct gdbarch *gdbarch)
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{
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struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
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if (arc_debug)
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debug_printf ("arc-linux: GNU/Linux OS/ABI initialization.\n");
|
|
|
|
/* If we are using Linux, we have in uClibc
|
|
(libc/sysdeps/linux/arc/bits/setjmp.h):
|
|
|
|
typedef int __jmp_buf[13+1+1+1]; //r13-r25, fp, sp, blink
|
|
|
|
Where "blink" is a stored PC of a caller function.
|
|
*/
|
|
tdep->jb_pc = 15;
|
|
|
|
linux_init_abi (info, gdbarch);
|
|
|
|
/* Set up target dependent GDB architecture entries. */
|
|
set_gdbarch_cannot_fetch_register (gdbarch, arc_linux_cannot_fetch_register);
|
|
set_gdbarch_cannot_store_register (gdbarch, arc_linux_cannot_store_register);
|
|
set_gdbarch_breakpoint_kind_from_pc (gdbarch,
|
|
arc_linux_breakpoint_kind_from_pc);
|
|
set_gdbarch_sw_breakpoint_from_kind (gdbarch,
|
|
arc_linux_sw_breakpoint_from_kind);
|
|
set_gdbarch_fetch_tls_load_module_address (gdbarch,
|
|
svr4_fetch_objfile_link_map);
|
|
set_gdbarch_software_single_step (gdbarch, arc_linux_software_single_step);
|
|
set_gdbarch_skip_trampoline_code (gdbarch, find_solib_trampoline_target);
|
|
set_gdbarch_skip_solib_resolver (gdbarch, arc_linux_skip_solib_resolver);
|
|
set_gdbarch_iterate_over_regset_sections
|
|
(gdbarch, arc_linux_iterate_over_regset_sections);
|
|
set_gdbarch_core_read_description (gdbarch, arc_linux_core_read_description);
|
|
|
|
/* GNU/Linux uses SVR4-style shared libraries, with 32-bit ints, longs
|
|
and pointers (ILP32). */
|
|
set_solib_svr4_fetch_link_map_offsets (gdbarch,
|
|
svr4_ilp32_fetch_link_map_offsets);
|
|
}
|
|
|
|
/* Suppress warning from -Wmissing-prototypes. */
|
|
extern initialize_file_ftype _initialize_arc_linux_tdep;
|
|
|
|
void
|
|
_initialize_arc_linux_tdep ()
|
|
{
|
|
gdbarch_register_osabi (bfd_arch_arc, 0, GDB_OSABI_LINUX,
|
|
arc_linux_init_osabi);
|
|
}
|