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[/] [or1k/] [trunk/] [gdb-5.3/] [gdb/] [alpha-nat.c] - Blame information for rev 1181

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1 1181 sfurman
/* Low level Alpha interface, for GDB when running native.
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   Copyright 1993, 1995, 1996, 1998, 1999, 2000, 2001
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   Free Software Foundation, Inc.
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5
   This file is part of GDB.
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7
   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 2 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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17
   You should have received a copy of the GNU General Public License
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   along with this program; if not, write to the Free Software
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   Foundation, Inc., 59 Temple Place - Suite 330,
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   Boston, MA 02111-1307, USA.  */
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#include "defs.h"
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#include "inferior.h"
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#include "gdbcore.h"
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#include "target.h"
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#include "regcache.h"
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#include "alpha-tdep.h"
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#include <sys/ptrace.h>
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#ifdef __linux__
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#include <asm/reg.h>
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#include <alpha/ptrace.h>
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#else
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#include <alpha/coreregs.h>
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#endif
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#include <sys/user.h>
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/* Prototypes for local functions. */
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static void fetch_osf_core_registers (char *, unsigned, int, CORE_ADDR);
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static void fetch_elf_core_registers (char *, unsigned, int, CORE_ADDR);
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/* Extract the register values out of the core file and store
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   them where `read_register' will find them.
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   CORE_REG_SECT points to the register values themselves, read into memory.
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   CORE_REG_SIZE is the size of that area.
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   WHICH says which set of registers we are handling (0 = int, 2 = float
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   on machines where they are discontiguous).
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   REG_ADDR is the offset from u.u_ar0 to the register values relative to
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   core_reg_sect.  This is used with old-fashioned core files to
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   locate the registers in a large upage-plus-stack ".reg" section.
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   Original upage address X is at location core_reg_sect+x+reg_addr.
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 */
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static void
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fetch_osf_core_registers (char *core_reg_sect, unsigned core_reg_size,
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                          int which, CORE_ADDR reg_addr)
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{
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  register int regno;
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  register int addr;
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  int bad_reg = -1;
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  /* Table to map a gdb regnum to an index in the core register
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     section.  The floating point register values are garbage in
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     OSF/1.2 core files.  OSF5 uses different names for the register
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     enum list, need to handle two cases.  The actual values are the
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     same.  */
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  static int core_reg_mapping[ALPHA_NUM_REGS] =
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  {
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#ifdef NCF_REGS
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#define EFL NCF_REGS
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    CF_V0, CF_T0, CF_T1, CF_T2, CF_T3, CF_T4, CF_T5, CF_T6,
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    CF_T7, CF_S0, CF_S1, CF_S2, CF_S3, CF_S4, CF_S5, CF_S6,
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    CF_A0, CF_A1, CF_A2, CF_A3, CF_A4, CF_A5, CF_T8, CF_T9,
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    CF_T10, CF_T11, CF_RA, CF_T12, CF_AT, CF_GP, CF_SP, -1,
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    EFL + 0, EFL + 1, EFL + 2, EFL + 3, EFL + 4, EFL + 5, EFL + 6, EFL + 7,
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    EFL + 8, EFL + 9, EFL + 10, EFL + 11, EFL + 12, EFL + 13, EFL + 14, EFL + 15,
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    EFL + 16, EFL + 17, EFL + 18, EFL + 19, EFL + 20, EFL + 21, EFL + 22, EFL + 23,
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    EFL + 24, EFL + 25, EFL + 26, EFL + 27, EFL + 28, EFL + 29, EFL + 30, EFL + 31,
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    CF_PC, -1
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#else
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#define EFL (EF_SIZE / 8)
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    EF_V0, EF_T0, EF_T1, EF_T2, EF_T3, EF_T4, EF_T5, EF_T6,
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    EF_T7, EF_S0, EF_S1, EF_S2, EF_S3, EF_S4, EF_S5, EF_S6,
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    EF_A0, EF_A1, EF_A2, EF_A3, EF_A4, EF_A5, EF_T8, EF_T9,
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    EF_T10, EF_T11, EF_RA, EF_T12, EF_AT, EF_GP, EF_SP, -1,
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    EFL + 0, EFL + 1, EFL + 2, EFL + 3, EFL + 4, EFL + 5, EFL + 6, EFL + 7,
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    EFL + 8, EFL + 9, EFL + 10, EFL + 11, EFL + 12, EFL + 13, EFL + 14, EFL + 15,
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    EFL + 16, EFL + 17, EFL + 18, EFL + 19, EFL + 20, EFL + 21, EFL + 22, EFL + 23,
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    EFL + 24, EFL + 25, EFL + 26, EFL + 27, EFL + 28, EFL + 29, EFL + 30, EFL + 31,
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    EF_PC, -1
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#endif
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  };
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  static char zerobuf[ALPHA_MAX_REGISTER_RAW_SIZE] =
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  {0};
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  for (regno = 0; regno < NUM_REGS; regno++)
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    {
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      if (CANNOT_FETCH_REGISTER (regno))
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        {
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          supply_register (regno, zerobuf);
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          continue;
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        }
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      addr = 8 * core_reg_mapping[regno];
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      if (addr < 0 || addr >= core_reg_size)
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        {
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          if (bad_reg < 0)
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            bad_reg = regno;
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        }
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      else
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        {
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          supply_register (regno, core_reg_sect + addr);
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        }
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    }
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  if (bad_reg >= 0)
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    {
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      error ("Register %s not found in core file.", REGISTER_NAME (bad_reg));
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    }
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}
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static void
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fetch_elf_core_registers (char *core_reg_sect, unsigned core_reg_size,
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                          int which, CORE_ADDR reg_addr)
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{
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  if (core_reg_size < 32 * 8)
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    {
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      error ("Core file register section too small (%u bytes).", core_reg_size);
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      return;
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    }
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  if (which == 2)
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    {
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      /* The FPU Registers.  */
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      memcpy (&registers[REGISTER_BYTE (FP0_REGNUM)], core_reg_sect, 31 * 8);
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      memset (&registers[REGISTER_BYTE (FP0_REGNUM + 31)], 0, 8);
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      memset (&register_valid[FP0_REGNUM], 1, 32);
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    }
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  else
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    {
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      /* The General Registers.  */
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      memcpy (&registers[REGISTER_BYTE (ALPHA_V0_REGNUM)], core_reg_sect,
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              31 * 8);
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      memcpy (&registers[REGISTER_BYTE (PC_REGNUM)], core_reg_sect + 31 * 8, 8);
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      memset (&registers[REGISTER_BYTE (ALPHA_ZERO_REGNUM)], 0, 8);
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      memset (&register_valid[ALPHA_V0_REGNUM], 1, 32);
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      register_valid[PC_REGNUM] = 1;
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    }
150
}
151
 
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153
/* Map gdb internal register number to a ptrace ``address''.
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   These ``addresses'' are defined in <sys/ptrace.h> */
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#define REGISTER_PTRACE_ADDR(regno) \
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   (regno < FP0_REGNUM ?        GPR_BASE + (regno) \
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  : regno == PC_REGNUM ?        PC      \
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  : regno >= FP0_REGNUM ?       FPR_BASE + ((regno) - FP0_REGNUM) \
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  : 0)
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/* Return the ptrace ``address'' of register REGNO. */
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164
CORE_ADDR
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register_addr (int regno, CORE_ADDR blockend)
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{
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  return REGISTER_PTRACE_ADDR (regno);
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}
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170
int
171
kernel_u_size (void)
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{
173
  return (sizeof (struct user));
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}
175
 
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#if defined(USE_PROC_FS) || defined(HAVE_GREGSET_T)
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#include <sys/procfs.h>
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179
/* Prototypes for supply_gregset etc. */
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#include "gregset.h"
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182
/*
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 * See the comment in m68k-tdep.c regarding the utility of these functions.
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 */
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186
void
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supply_gregset (gdb_gregset_t *gregsetp)
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{
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  register int regi;
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  register long *regp = ALPHA_REGSET_BASE (gregsetp);
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  static char zerobuf[ALPHA_MAX_REGISTER_RAW_SIZE] =
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  {0};
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  for (regi = 0; regi < 31; regi++)
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    supply_register (regi, (char *) (regp + regi));
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  supply_register (PC_REGNUM, (char *) (regp + 31));
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199
  /* Fill inaccessible registers with zero.  */
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  supply_register (ALPHA_ZERO_REGNUM, zerobuf);
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  supply_register (FP_REGNUM, zerobuf);
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}
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void
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fill_gregset (gdb_gregset_t *gregsetp, int regno)
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{
207
  int regi;
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  register long *regp = ALPHA_REGSET_BASE (gregsetp);
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210
  for (regi = 0; regi < 31; regi++)
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    if ((regno == -1) || (regno == regi))
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      *(regp + regi) = *(long *) &registers[REGISTER_BYTE (regi)];
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  if ((regno == -1) || (regno == PC_REGNUM))
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    *(regp + 31) = *(long *) &registers[REGISTER_BYTE (PC_REGNUM)];
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}
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218
/*
219
 * Now we do the same thing for floating-point registers.
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 * Again, see the comments in m68k-tdep.c.
221
 */
222
 
223
void
224
supply_fpregset (gdb_fpregset_t *fpregsetp)
225
{
226
  register int regi;
227
  register long *regp = ALPHA_REGSET_BASE (fpregsetp);
228
 
229
  for (regi = 0; regi < 32; regi++)
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    supply_register (regi + FP0_REGNUM, (char *) (regp + regi));
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}
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233
void
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fill_fpregset (gdb_fpregset_t *fpregsetp, int regno)
235
{
236
  int regi;
237
  register long *regp = ALPHA_REGSET_BASE (fpregsetp);
238
 
239
  for (regi = FP0_REGNUM; regi < FP0_REGNUM + 32; regi++)
240
    {
241
      if ((regno == -1) || (regno == regi))
242
        {
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          *(regp + regi - FP0_REGNUM) =
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            *(long *) &registers[REGISTER_BYTE (regi)];
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        }
246
    }
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}
248
#endif
249
 
250
 
251
/* Register that we are able to handle alpha core file formats. */
252
 
253
static struct core_fns alpha_osf_core_fns =
254
{
255
  /* This really is bfd_target_unknown_flavour.  */
256
 
257
  bfd_target_unknown_flavour,           /* core_flavour */
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  default_check_format,                 /* check_format */
259
  default_core_sniffer,                 /* core_sniffer */
260
  fetch_osf_core_registers,             /* core_read_registers */
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  NULL                                  /* next */
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};
263
 
264
static struct core_fns alpha_elf_core_fns =
265
{
266
  bfd_target_elf_flavour,               /* core_flavour */
267
  default_check_format,                 /* check_format */
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  default_core_sniffer,                 /* core_sniffer */
269
  fetch_elf_core_registers,             /* core_read_registers */
270
  NULL                                  /* next */
271
};
272
 
273
void
274
_initialize_core_alpha (void)
275
{
276
  add_core_fns (&alpha_osf_core_fns);
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  add_core_fns (&alpha_elf_core_fns);
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}

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