1 /* Low level Alpha interface, for GDB when running native.
2 Copyright 1993, 1995, 1996, 1998 Free Software Foundation, Inc.
4 This file is part of GDB.
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2 of the License, or
9 (at your option) any later version.
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
24 #include <sys/ptrace.h>
27 # include <alpha/ptrace.h>
29 # include <machine/reg.h>
33 static void fetch_osf_core_registers PARAMS ((char *,
34 unsigned, int, CORE_ADDR));
35 static void fetch_elf_core_registers PARAMS ((char *,
36 unsigned, int, CORE_ADDR));
38 /* Size of elements in jmpbuf */
40 #define JB_ELEMENT_SIZE 8
42 /* The definition for JB_PC in machine/reg.h is wrong.
43 And we can't get at the correct definition in setjmp.h as it is
44 not always available (eg. if _POSIX_SOURCE is defined which is the
45 default). As the defintion is unlikely to change (see comment
46 in <setjmp.h>, define the correct value here. */
51 /* Figure out where the longjmp will land.
52 We expect the first arg to be a pointer to the jmp_buf structure from which
53 we extract the pc (JB_PC) that we will land at. The pc is copied into PC.
54 This routine returns true on success. */
57 get_longjmp_target (pc)
61 char raw_buffer[MAX_REGISTER_RAW_SIZE];
63 jb_addr = read_register(A0_REGNUM);
65 if (target_read_memory(jb_addr + JB_PC * JB_ELEMENT_SIZE, raw_buffer,
69 *pc = extract_address (raw_buffer, sizeof(CORE_ADDR));
73 /* Extract the register values out of the core file and store
74 them where `read_register' will find them.
76 CORE_REG_SECT points to the register values themselves, read into memory.
77 CORE_REG_SIZE is the size of that area.
78 WHICH says which set of registers we are handling (0 = int, 2 = float
79 on machines where they are discontiguous).
80 REG_ADDR is the offset from u.u_ar0 to the register values relative to
81 core_reg_sect. This is used with old-fashioned core files to
82 locate the registers in a large upage-plus-stack ".reg" section.
83 Original upage address X is at location core_reg_sect+x+reg_addr.
87 fetch_osf_core_registers (core_reg_sect, core_reg_size, which, reg_addr)
89 unsigned core_reg_size;
97 /* Table to map a gdb regnum to an index in the core register section.
98 The floating point register values are garbage in OSF/1.2 core files. */
99 static int core_reg_mapping[NUM_REGS] =
101 #define EFL (EF_SIZE / 8)
102 EF_V0, EF_T0, EF_T1, EF_T2, EF_T3, EF_T4, EF_T5, EF_T6,
103 EF_T7, EF_S0, EF_S1, EF_S2, EF_S3, EF_S4, EF_S5, EF_S6,
104 EF_A0, EF_A1, EF_A2, EF_A3, EF_A4, EF_A5, EF_T8, EF_T9,
105 EF_T10, EF_T11, EF_RA, EF_T12, EF_AT, EF_GP, EF_SP, -1,
106 EFL+0, EFL+1, EFL+2, EFL+3, EFL+4, EFL+5, EFL+6, EFL+7,
107 EFL+8, EFL+9, EFL+10, EFL+11, EFL+12, EFL+13, EFL+14, EFL+15,
108 EFL+16, EFL+17, EFL+18, EFL+19, EFL+20, EFL+21, EFL+22, EFL+23,
109 EFL+24, EFL+25, EFL+26, EFL+27, EFL+28, EFL+29, EFL+30, EFL+31,
112 static char zerobuf[MAX_REGISTER_RAW_SIZE] = {0};
114 for (regno = 0; regno < NUM_REGS; regno++)
116 if (CANNOT_FETCH_REGISTER (regno))
118 supply_register (regno, zerobuf);
121 addr = 8 * core_reg_mapping[regno];
122 if (addr < 0 || addr >= core_reg_size)
129 supply_register (regno, core_reg_sect + addr);
134 error ("Register %s not found in core file.", reg_names[bad_reg]);
139 fetch_elf_core_registers (core_reg_sect, core_reg_size, which, reg_addr)
141 unsigned core_reg_size;
145 if (core_reg_size < 32*8)
147 error ("Core file register section too small (%u bytes).", core_reg_size);
153 /* The FPU Registers. */
154 memcpy (®isters[REGISTER_BYTE (FP0_REGNUM)], core_reg_sect, 31*8);
155 memset (®isters[REGISTER_BYTE (FP0_REGNUM+31)], 0, 8);
156 memset (®ister_valid[FP0_REGNUM], 1, 32);
160 /* The General Registers. */
161 memcpy (®isters[REGISTER_BYTE (V0_REGNUM)], core_reg_sect, 31*8);
162 memcpy (®isters[REGISTER_BYTE (PC_REGNUM)], core_reg_sect+31*8, 8);
163 memset (®isters[REGISTER_BYTE (ZERO_REGNUM)], 0, 8);
164 memset (®ister_valid[V0_REGNUM], 1, 32);
165 register_valid[PC_REGNUM] = 1;
170 /* Map gdb internal register number to a ptrace ``address''.
171 These ``addresses'' are defined in <sys/ptrace.h> */
173 #define REGISTER_PTRACE_ADDR(regno) \
174 (regno < FP0_REGNUM ? GPR_BASE + (regno) \
175 : regno == PC_REGNUM ? PC \
176 : regno >= FP0_REGNUM ? FPR_BASE + ((regno) - FP0_REGNUM) \
179 /* Return the ptrace ``address'' of register REGNO. */
182 register_addr (regno, blockend)
186 return REGISTER_PTRACE_ADDR (regno);
192 return (sizeof (struct user));
195 #if defined(USE_PROC_FS) || defined(HAVE_GREGSET_T)
196 #include <sys/procfs.h>
199 * See the comment in m68k-tdep.c regarding the utility of these functions.
203 supply_gregset (gregsetp)
207 register long *regp = ALPHA_REGSET_BASE (gregsetp);
208 static char zerobuf[MAX_REGISTER_RAW_SIZE] = {0};
210 for (regi = 0; regi < 31; regi++)
211 supply_register (regi, (char *)(regp + regi));
213 supply_register (PC_REGNUM, (char *)(regp + 31));
215 /* Fill inaccessible registers with zero. */
216 supply_register (ZERO_REGNUM, zerobuf);
217 supply_register (FP_REGNUM, zerobuf);
221 fill_gregset (gregsetp, regno)
226 register long *regp = ALPHA_REGSET_BASE (gregsetp);
228 for (regi = 0; regi < 31; regi++)
229 if ((regno == -1) || (regno == regi))
230 *(regp + regi) = *(long *) ®isters[REGISTER_BYTE (regi)];
232 if ((regno == -1) || (regno == PC_REGNUM))
233 *(regp + 31) = *(long *) ®isters[REGISTER_BYTE (PC_REGNUM)];
237 * Now we do the same thing for floating-point registers.
238 * Again, see the comments in m68k-tdep.c.
242 supply_fpregset (fpregsetp)
243 fpregset_t *fpregsetp;
246 register long *regp = ALPHA_REGSET_BASE (fpregsetp);
248 for (regi = 0; regi < 32; regi++)
249 supply_register (regi + FP0_REGNUM, (char *)(regp + regi));
253 fill_fpregset (fpregsetp, regno)
254 fpregset_t *fpregsetp;
258 register long *regp = ALPHA_REGSET_BASE (fpregsetp);
260 for (regi = FP0_REGNUM; regi < FP0_REGNUM + 32; regi++)
262 if ((regno == -1) || (regno == regi))
264 *(regp + regi - FP0_REGNUM) =
265 *(long *) ®isters[REGISTER_BYTE (regi)];
272 /* Register that we are able to handle alpha core file formats. */
274 static struct core_fns alpha_osf_core_fns =
276 /* This really is bfd_target_unknown_flavour. */
278 bfd_target_unknown_flavour,
279 fetch_osf_core_registers,
283 static struct core_fns alpha_elf_core_fns =
285 bfd_target_elf_flavour,
286 fetch_elf_core_registers,
291 _initialize_core_alpha ()
293 add_core_fns (&alpha_osf_core_fns);
294 add_core_fns (&alpha_elf_core_fns);