Update/correct copyright notices.
[deliverable/binutils-gdb.git] / gdb / config / sparc / tm-sparc.h
1 /* Target machine sub-parameters for SPARC, for GDB, the GNU debugger.
2 This is included by other tm-*.h files to define SPARC cpu-related info.
3 Copyright 1986, 1987, 1989, 1991, 1992, 1993, 1994, 1995, 1996, 1997,
4 1998, 1999, 2000
5 Free Software Foundation, Inc.
6 Contributed by Michael Tiemann (tiemann@mcc.com)
7
8 This file is part of GDB.
9
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
12 the Free Software Foundation; either version 2 of the License, or
13 (at your option) any later version.
14
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
19
20 You should have received a copy of the GNU General Public License
21 along with this program; if not, write to the Free Software
22 Foundation, Inc., 59 Temple Place - Suite 330,
23 Boston, MA 02111-1307, USA. */
24
25 struct type;
26 struct value;
27 struct frame_info;
28
29 /*
30 * The following enums are purely for the convenience of the GDB
31 * developer, when debugging GDB.
32 */
33
34 enum { /* Sparc general registers, for all sparc versions. */
35 G0_REGNUM, G1_REGNUM, G2_REGNUM, G3_REGNUM,
36 G4_REGNUM, G5_REGNUM, G6_REGNUM, G7_REGNUM,
37 O0_REGNUM, O1_REGNUM, O2_REGNUM, O3_REGNUM,
38 O4_REGNUM, O5_REGNUM, O6_REGNUM, O7_REGNUM,
39 L0_REGNUM, L1_REGNUM, L2_REGNUM, L3_REGNUM,
40 L4_REGNUM, L5_REGNUM, L6_REGNUM, L7_REGNUM,
41 I0_REGNUM, I1_REGNUM, I2_REGNUM, I3_REGNUM,
42 I4_REGNUM, I5_REGNUM, I6_REGNUM, I7_REGNUM,
43 FP0_REGNUM /* Floating point register 0 */
44 };
45
46 enum { /* Sparc general registers, alternate names. */
47 R0_REGNUM, R1_REGNUM, R2_REGNUM, R3_REGNUM,
48 R4_REGNUM, R5_REGNUM, R6_REGNUM, R7_REGNUM,
49 R8_REGNUM, R9_REGNUM, R10_REGNUM, R11_REGNUM,
50 R12_REGNUM, R13_REGNUM, R14_REGNUM, R15_REGNUM,
51 R16_REGNUM, R17_REGNUM, R18_REGNUM, R19_REGNUM,
52 R20_REGNUM, R21_REGNUM, R22_REGNUM, R23_REGNUM,
53 R24_REGNUM, R25_REGNUM, R26_REGNUM, R27_REGNUM,
54 R28_REGNUM, R29_REGNUM, R30_REGNUM, R31_REGNUM
55 };
56
57 enum { /* Sparc32 control registers. */
58 PS_REGNUM = 65, /* PC, NPC, and Y are omitted because */
59 WIM_REGNUM = 66, /* they have different values depending on */
60 TBR_REGNUM = 67, /* 32-bit / 64-bit mode. */
61 FPS_REGNUM = 70,
62 CPS_REGNUM = 71
63 };
64
65 /* v9 misc. and priv. regs */
66
67 /* Note: specifying values explicitly for documentation purposes. */
68 enum { /* Sparc64 control registers, excluding Y, PC, and NPC. */
69 CCR_REGNUM = 82, /* Condition Code Register (%xcc,%icc) */
70 FSR_REGNUM = 83, /* Floating Point State */
71 FPRS_REGNUM = 84, /* Floating Point Registers State */
72 ASI_REGNUM = 86, /* Alternate Space Identifier */
73 VER_REGNUM = 87, /* Version register */
74 TICK_REGNUM = 88, /* Tick register */
75 PIL_REGNUM = 89, /* Processor Interrupt Level */
76 PSTATE_REGNUM = 90, /* Processor State */
77 TSTATE_REGNUM = 91, /* Trap State */
78 TBA_REGNUM = 92, /* Trap Base Address */
79 TL_REGNUM = 93, /* Trap Level */
80 TT_REGNUM = 94, /* Trap Type */
81 TPC_REGNUM = 95, /* Trap pc */
82 TNPC_REGNUM = 96, /* Trap npc */
83 WSTATE_REGNUM = 97, /* Window State */
84 CWP_REGNUM = 98, /* Current Window Pointer */
85 CANSAVE_REGNUM = 99, /* Savable Windows */
86 CANRESTORE_REGNUM = 100, /* Restorable Windows */
87 CLEANWIN_REGNUM = 101, /* Clean Windows */
88 OTHERWIN_REGNUM = 102, /* Other Windows */
89 ASR16_REGNUM = 103, /* Ancillary State Registers */
90 ASR17_REGNUM = 104,
91 ASR18_REGNUM = 105,
92 ASR19_REGNUM = 106,
93 ASR20_REGNUM = 107,
94 ASR21_REGNUM = 108,
95 ASR22_REGNUM = 109,
96 ASR23_REGNUM = 110,
97 ASR24_REGNUM = 111,
98 ASR25_REGNUM = 112,
99 ASR26_REGNUM = 113,
100 ASR27_REGNUM = 114,
101 ASR28_REGNUM = 115,
102 ASR29_REGNUM = 116,
103 ASR30_REGNUM = 117,
104 ASR31_REGNUM = 118,
105 ICC_REGNUM = 119, /* 32 bit condition codes */
106 XCC_REGNUM = 120, /* 64 bit condition codes */
107 FCC0_REGNUM = 121, /* fp cc reg 0 */
108 FCC1_REGNUM = 122, /* fp cc reg 1 */
109 FCC2_REGNUM = 123, /* fp cc reg 2 */
110 FCC3_REGNUM = 124 /* fp cc reg 3 */
111 };
112
113 /*
114 * Make sparc target multi-archable: April 2000
115 */
116
117 #if defined (GDB_MULTI_ARCH) && (GDB_MULTI_ARCH > 0)
118
119 /* Multi-arch definition of TARGET_IS_SPARC64, TARGET_ELF64 */
120 #undef GDB_TARGET_IS_SPARC64
121 #define GDB_TARGET_IS_SPARC64 \
122 (sparc_intreg_size () == 8)
123 #undef TARGET_ELF64
124 #define TARGET_ELF64 \
125 (sparc_intreg_size () == 8)
126 extern int sparc_intreg_size (void);
127 #else
128
129 /* Non-multi-arch: if it isn't defined, define it to zero. */
130 #ifndef GDB_TARGET_IS_SPARC64
131 #define GDB_TARGET_IS_SPARC64 0
132 #endif
133 #ifndef TARGET_ELF64
134 #define TARGET_ELF64 0
135 #endif
136 #endif
137
138 #if !defined (GDB_MULTI_ARCH) || (GDB_MULTI_ARCH == 0)
139 /*
140 * The following defines must go away for MULTI_ARCH
141 */
142
143 /* Initializer for an array of names of registers.
144 There should be NUM_REGS strings in this initializer. */
145
146 #define REGISTER_NAMES \
147 { "g0", "g1", "g2", "g3", "g4", "g5", "g6", "g7", \
148 "o0", "o1", "o2", "o3", "o4", "o5", "sp", "o7", \
149 "l0", "l1", "l2", "l3", "l4", "l5", "l6", "l7", \
150 "i0", "i1", "i2", "i3", "i4", "i5", "fp", "i7", \
151 \
152 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7", \
153 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15", \
154 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23", \
155 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31", \
156 \
157 "y", "psr", "wim", "tbr", "pc", "npc", "fpsr", "cpsr" \
158 }
159
160 #define TARGET_BYTE_ORDER BIG_ENDIAN
161
162 /* Offset from address of function to start of its code.
163 Zero on most machines. */
164
165 #define FUNCTION_START_OFFSET 0
166
167 /* Amount PC must be decremented by after a breakpoint.
168 This is often the number of bytes in BREAKPOINT
169 but not always. */
170
171 #define DECR_PC_AFTER_BREAK 0
172
173 /* Say how long (ordinary) registers are. This is a piece of bogosity
174 used in push_word and a few other places; REGISTER_RAW_SIZE is the
175 real way to know how big a register is. */
176
177 #define REGISTER_SIZE 4
178
179 /* Number of machine registers */
180
181 #define NUM_REGS 72
182
183 #define SP_REGNUM 14 /* Contains address of top of stack, \
184 which is also the bottom of the frame. */
185 #define FP_REGNUM 30 /* Contains address of executing stack frame */
186
187 #define FP0_REGNUM 32 /* Floating point register 0 */
188
189 #define Y_REGNUM 64 /* Temp register for multiplication, etc. */
190
191 #define PC_REGNUM 68 /* Contains program counter */
192
193 #define NPC_REGNUM 69 /* Contains next PC */
194
195
196 /* Total amount of space needed to store our copies of the machine's
197 register state, the array `registers'. On the sparc, `registers'
198 contains the ins and locals, even though they are saved on the
199 stack rather than with the other registers, and this causes hair
200 and confusion in places like pop_frame. It might be better to
201 remove the ins and locals from `registers', make sure that
202 get_saved_register can get them from the stack (even in the
203 innermost frame), and make this the way to access them. For the
204 frame pointer we would do that via TARGET_READ_FP. On the other
205 hand, that is likely to be confusing or worse for flat frames. */
206
207 #define REGISTER_BYTES (32*4+32*4+8*4)
208
209 /* Index within `registers' of the first byte of the space for
210 register N. */
211
212 #define REGISTER_BYTE(N) ((N)*4)
213
214 /* Number of bytes of storage in the actual machine representation for
215 register N. */
216
217 /* On the SPARC, all regs are 4 bytes (except Sparc64, where they're 8). */
218
219 #define REGISTER_RAW_SIZE(N) (4)
220
221 /* Number of bytes of storage in the program's representation
222 for register N. */
223
224 /* On the SPARC, all regs are 4 bytes (except Sparc64, where they're 8). */
225
226 #define REGISTER_VIRTUAL_SIZE(N) (4)
227
228 /* Largest value REGISTER_RAW_SIZE can have. */
229
230 #define MAX_REGISTER_RAW_SIZE 8
231
232 /* Largest value REGISTER_VIRTUAL_SIZE can have. */
233
234 #define MAX_REGISTER_VIRTUAL_SIZE 8
235
236 /* Return the GDB type object for the "standard" data type
237 of data in register N. */
238
239 #define REGISTER_VIRTUAL_TYPE(N) \
240 ((N) < 32 ? builtin_type_int : (N) < 64 ? builtin_type_float : \
241 builtin_type_int)
242
243 /* Sun /bin/cc gets this right as of SunOS 4.1.x. We need to define
244 BELIEVE_PCC_PROMOTION to get this right now that the code which
245 detects gcc2_compiled. is broken. This loses for SunOS 4.0.x and
246 earlier. */
247
248 #define BELIEVE_PCC_PROMOTION 1
249
250 /* Advance PC across any function entry prologue instructions
251 to reach some "real" code. SKIP_PROLOGUE_FRAMELESS_P advances
252 the PC past some of the prologue, but stops as soon as it
253 knows that the function has a frame. Its result is equal
254 to its input PC if the function is frameless, unequal otherwise. */
255
256 #define SKIP_PROLOGUE(PC) sparc_skip_prologue (PC, 0)
257
258 /* Immediately after a function call, return the saved pc.
259 Can't go through the frames for this because on some machines
260 the new frame is not set up until the new function executes
261 some instructions. */
262
263 #define SAVED_PC_AFTER_CALL(FRAME) PC_ADJUST (read_register (RP_REGNUM))
264
265 /* Stack grows downward. */
266
267 #define INNER_THAN(LHS,RHS) ((LHS) < (RHS))
268
269 /* Write into appropriate registers a function return value of type
270 TYPE, given in virtual format. */
271
272 #define STORE_RETURN_VALUE(TYPE, VALBUF) \
273 sparc_store_return_value (TYPE, VALBUF)
274 extern void sparc_store_return_value (struct type *, char *);
275
276 /* Extract from an array REGBUF containing the (raw) register state
277 the address in which a function should return its structure value,
278 as a CORE_ADDR (or an expression that can be used as one). */
279
280 #define EXTRACT_STRUCT_VALUE_ADDRESS(REGBUF) \
281 sparc_extract_struct_value_address (REGBUF)
282
283 extern CORE_ADDR sparc_extract_struct_value_address (char *);
284
285 /* If the current gcc for for this target does not produce correct
286 debugging information for float parameters, both prototyped and
287 unprototyped, then define this macro. This forces gdb to always
288 assume that floats are passed as doubles and then converted in the
289 callee. */
290
291 #define COERCE_FLOAT_TO_DOUBLE(FORMAL, ACTUAL) (1)
292
293 /* Stack must be aligned on 64-bit boundaries when synthesizing
294 function calls (128-bit for sparc64). */
295
296 #define STACK_ALIGN(ADDR) sparc32_stack_align (ADDR)
297 extern CORE_ADDR sparc32_stack_align (CORE_ADDR addr);
298
299 /* Floating point is IEEE compatible. */
300 #define IEEE_FLOAT (1)
301
302 /* The Sparc returns long doubles on the stack. */
303
304 #define RETURN_VALUE_ON_STACK(TYPE) \
305 (TYPE_CODE(TYPE) == TYPE_CODE_FLT \
306 && TYPE_LENGTH(TYPE) > 8)
307
308 /* When passing a structure to a function, Sun cc passes the address
309 not the structure itself. It (under SunOS4) creates two symbols,
310 which we need to combine to a LOC_REGPARM. Gcc version two (as of
311 1.92) behaves like sun cc. REG_STRUCT_HAS_ADDR is smart enough to
312 distinguish between Sun cc, gcc version 1 and gcc version 2. */
313
314 #define REG_STRUCT_HAS_ADDR(GCC_P, TYPE) \
315 sparc_reg_struct_has_addr (GCC_P, TYPE)
316 extern int sparc_reg_struct_has_addr (int, struct type *);
317
318 #endif /* GDB_MULTI_ARCH */
319
320 #if defined (GDB_MULTI_ARCH) && (GDB_MULTI_ARCH > 0)
321 /*
322 * The following defines should ONLY appear for MULTI_ARCH.
323 */
324
325 /* Multi-arch the nPC and Y registers. */
326 #define Y_REGNUM (sparc_y_regnum ())
327 extern int sparc_npc_regnum (void);
328 extern int sparc_y_regnum (void);
329
330 #endif /* GDB_MULTI_ARCH */
331
332 /* On the Sun 4 under SunOS, the compile will leave a fake insn which
333 encodes the structure size being returned. If we detect such
334 a fake insn, step past it. */
335
336 #define PC_ADJUST(PC) sparc_pc_adjust (PC)
337 extern CORE_ADDR sparc_pc_adjust (CORE_ADDR);
338
339 /* Advance PC across any function entry prologue instructions to reach
340 some "real" code. SKIP_PROLOGUE_FRAMELESS_P advances the PC past
341 some of the prologue, but stops as soon as it knows that the
342 function has a frame. Its result is equal to its input PC if the
343 function is frameless, unequal otherwise. */
344
345 #define SKIP_PROLOGUE_FRAMELESS_P(PC) sparc_skip_prologue (PC, 1)
346 extern CORE_ADDR sparc_skip_prologue (CORE_ADDR, int);
347
348 /* If an argument is declared "register", Sun cc will keep it in a register,
349 never saving it onto the stack. So we better not believe the "p" symbol
350 descriptor stab. */
351
352 #define USE_REGISTER_NOT_ARG
353
354 /* For acc, there's no need to correct LBRAC entries by guessing how
355 they should work. In fact, this is harmful because the LBRAC
356 entries now all appear at the end of the function, not intermixed
357 with the SLINE entries. n_opt_found detects acc for Solaris binaries;
358 function_stab_type detects acc for SunOS4 binaries.
359
360 For binary from SunOS4 /bin/cc, need to correct LBRAC's.
361
362 For gcc, like acc, don't correct. */
363
364 #define SUN_FIXED_LBRAC_BUG \
365 (n_opt_found \
366 || function_stab_type == N_STSYM \
367 || function_stab_type == N_GSYM \
368 || processing_gcc_compilation)
369
370 /* Do variables in the debug stabs occur after the N_LBRAC or before it?
371 acc: after, gcc: before, SunOS4 /bin/cc: before. */
372
373 #define VARIABLES_INSIDE_BLOCK(desc, gcc_p) \
374 (!(gcc_p) \
375 && (n_opt_found \
376 || function_stab_type == N_STSYM \
377 || function_stab_type == N_GSYM))
378
379 /* Sequence of bytes for breakpoint instruction (ta 1). */
380
381 #define BREAKPOINT {0x91, 0xd0, 0x20, 0x01}
382
383 /* Register numbers of various important registers.
384 Note that some of these values are "real" register numbers,
385 and correspond to the general registers of the machine,
386 and some are "phony" register numbers which are too large
387 to be actual register numbers as far as the user is concerned
388 but do serve to get the desired values when passed to read_register. */
389
390 #define G0_REGNUM 0 /* %g0 */
391 #define G1_REGNUM 1 /* %g1 */
392 #define O0_REGNUM 8 /* %o0 */
393 #define RP_REGNUM 15 /* Contains return address value, *before* \
394 any windows get switched. */
395 #define O7_REGNUM 15 /* Last local reg not saved on stack frame */
396 #define L0_REGNUM 16 /* First local reg that's saved on stack frame
397 rather than in machine registers */
398 #define I0_REGNUM 24 /* %i0 */
399 #define I7_REGNUM 31 /* Last local reg saved on stack frame */
400 #define PS_REGNUM 65 /* Contains processor status */
401 #define PS_FLAG_CARRY 0x100000 /* Carry bit in PS */
402 #define WIM_REGNUM 66 /* Window Invalid Mask (not really supported) */
403 #define TBR_REGNUM 67 /* Trap Base Register (not really supported) */
404 #define FPS_REGNUM 70 /* Floating point status register */
405 #define CPS_REGNUM 71 /* Coprocessor status register */
406
407 /* Writing to %g0 is a noop (not an error or exception or anything like
408 that, however). */
409
410 #define CANNOT_STORE_REGISTER(regno) ((regno) == G0_REGNUM)
411
412 /*
413 * FRAME_CHAIN and FRAME_INFO definitions, collected here for convenience.
414 */
415
416 #if !defined (GDB_MULTI_ARCH) || (GDB_MULTI_ARCH == 0)
417 /*
418 * The following defines must go away for MULTI_ARCH.
419 */
420
421 /* Describe the pointer in each stack frame to the previous stack frame
422 (its caller). */
423
424 /* FRAME_CHAIN takes a frame's nominal address
425 and produces the frame's chain-pointer. */
426
427 /* In the case of the Sun 4, the frame-chain's nominal address
428 is held in the frame pointer register.
429
430 On the Sun4, the frame (in %fp) is %sp for the previous frame.
431 From the previous frame's %sp, we can find the previous frame's
432 %fp: it is in the save area just above the previous frame's %sp.
433
434 If we are setting up an arbitrary frame, we'll need to know where
435 it ends. Hence the following. This part of the frame cache
436 structure should be checked before it is assumed that this frame's
437 bottom is in the stack pointer.
438
439 If there isn't a frame below this one, the bottom of this frame is
440 in the stack pointer.
441
442 If there is a frame below this one, and the frame pointers are
443 identical, it's a leaf frame and the bottoms are the same also.
444
445 Otherwise the bottom of this frame is the top of the next frame.
446
447 The bottom field is misnamed, since it might imply that memory from
448 bottom to frame contains this frame. That need not be true if
449 stack frames are allocated in different segments (e.g. some on a
450 stack, some on a heap in the data segment).
451
452 GCC 2.6 and later can generate ``flat register window'' code that
453 makes frames by explicitly saving those registers that need to be
454 saved. %i7 is used as the frame pointer, and the frame is laid out
455 so that flat and non-flat calls can be intermixed freely within a
456 program. Unfortunately for GDB, this means it must detect and
457 record the flatness of frames.
458
459 Since the prologue in a flat frame also tells us where fp and pc
460 have been stashed (the frame is of variable size, so their location
461 is not fixed), it's convenient to record them in the frame info. */
462
463 #define EXTRA_FRAME_INFO \
464 CORE_ADDR bottom; \
465 int in_prologue; \
466 int flat; \
467 /* Following fields only relevant for flat frames. */ \
468 CORE_ADDR pc_addr; \
469 CORE_ADDR fp_addr; \
470 /* Add this to ->frame to get the value of the stack pointer at the */ \
471 /* time of the register saves. */ \
472 int sp_offset;
473
474 /* We need to override GET_SAVED_REGISTER so that we can deal with the way
475 outs change into ins in different frames. HAVE_REGISTER_WINDOWS can't
476 deal with this case and also handle flat frames at the same time. */
477
478 void sparc_get_saved_register (char *raw_buffer,
479 int *optimized,
480 CORE_ADDR * addrp,
481 struct frame_info *frame,
482 int regnum, enum lval_type *lvalp);
483
484 #define GET_SAVED_REGISTER(RAW_BUFFER, OPTIMIZED, ADDRP, FRAME, REGNUM, LVAL) \
485 sparc_get_saved_register (RAW_BUFFER, OPTIMIZED, ADDRP, \
486 FRAME, REGNUM, LVAL)
487
488 #define FRAME_INIT_SAVED_REGS(FP) /*no-op */
489
490 #define INIT_EXTRA_FRAME_INFO(FROMLEAF, FCI) \
491 sparc_init_extra_frame_info (FROMLEAF, FCI)
492 extern void sparc_init_extra_frame_info (int, struct frame_info *);
493
494 #define FRAME_CHAIN(THISFRAME) (sparc_frame_chain (THISFRAME))
495 extern CORE_ADDR sparc_frame_chain (struct frame_info *);
496
497 /* A macro that tells us whether the function invocation represented
498 by FI does not have a frame on the stack associated with it. If it
499 does not, FRAMELESS is set to 1, else 0. */
500
501 #define FRAMELESS_FUNCTION_INVOCATION(FI) \
502 frameless_look_for_prologue (FI)
503
504 /* Where is the PC for a specific frame */
505
506 #define FRAME_SAVED_PC(FRAME) sparc_frame_saved_pc (FRAME)
507 extern CORE_ADDR sparc_frame_saved_pc (struct frame_info *);
508
509 /* If the argument is on the stack, it will be here. */
510 #define FRAME_ARGS_ADDRESS(FI) ((FI)->frame)
511
512 #define FRAME_LOCALS_ADDRESS(FI) ((FI)->frame)
513
514 /* Set VAL to the number of args passed to frame described by FI.
515 Can set VAL to -1, meaning no way to tell. */
516
517 /* We can't tell how many args there are
518 now that the C compiler delays popping them. */
519 #define FRAME_NUM_ARGS(FI) (-1)
520
521 /* Return number of bytes at start of arglist that are not really args. */
522
523 #define FRAME_ARGS_SKIP 68
524
525 #endif /* GDB_MULTI_ARCH */
526
527 #define PRINT_EXTRA_FRAME_INFO(FI) \
528 sparc_print_extra_frame_info (FI)
529 extern void sparc_print_extra_frame_info (struct frame_info *);
530
531 /* INIT_EXTRA_FRAME_INFO needs the PC to detect flat frames. */
532
533 #define INIT_FRAME_PC(FROMLEAF, PREV) /* nothing */
534 #define INIT_FRAME_PC_FIRST(FROMLEAF, PREV) \
535 (PREV)->pc = ((FROMLEAF) ? SAVED_PC_AFTER_CALL ((PREV)->next) : \
536 (PREV)->next ? FRAME_SAVED_PC ((PREV)->next) : read_pc ());
537
538 /* Define other aspects of the stack frame. */
539
540 /* The location of I0 w.r.t SP. This is actually dependent on how the
541 system's window overflow/underflow routines are written. Most
542 vendors save the L regs followed by the I regs (at the higher
543 address). Some vendors get it wrong. */
544
545 #define FRAME_SAVED_L0 0
546 #define FRAME_SAVED_I0 (8 * REGISTER_RAW_SIZE (L0_REGNUM))
547
548 #define FRAME_STRUCT_ARGS_ADDRESS(FI) ((FI)->frame)
549
550 /* Things needed for making the inferior call functions. */
551 /*
552 * First of all, let me give my opinion of what the DUMMY_FRAME
553 * actually looks like.
554 *
555 * | |
556 * | |
557 * + - - - - - - - - - - - - - - - - +<-- fp (level 0)
558 * | |
559 * | |
560 * | |
561 * | |
562 * | Frame of innermost program |
563 * | function |
564 * | |
565 * | |
566 * | |
567 * | |
568 * | |
569 * |---------------------------------|<-- sp (level 0), fp (c)
570 * | |
571 * DUMMY | fp0-31 |
572 * | |
573 * | ------ |<-- fp - 0x80
574 * FRAME | g0-7 |<-- fp - 0xa0
575 * | i0-7 |<-- fp - 0xc0
576 * | other |<-- fp - 0xe0
577 * | ? |
578 * | ? |
579 * |---------------------------------|<-- sp' = fp - 0x140
580 * | |
581 * xcution start | |
582 * sp' + 0x94 -->| CALL_DUMMY (x code) |
583 * | |
584 * | |
585 * |---------------------------------|<-- sp'' = fp - 0x200
586 * | align sp to 8 byte boundary |
587 * | ==> args to fn <== |
588 * Room for | |
589 * i & l's + agg | CALL_DUMMY_STACK_ADJUST = 0x0x44|
590 * |---------------------------------|<-- final sp (variable)
591 * | |
592 * | Where function called will |
593 * | build frame. |
594 * | |
595 * | |
596 *
597 * I understand everything in this picture except what the space
598 * between fp - 0xe0 and fp - 0x140 is used for. Oh, and I don't
599 * understand why there's a large chunk of CALL_DUMMY that never gets
600 * executed (its function is superceeded by PUSH_DUMMY_FRAME; they
601 * are designed to do the same thing).
602 *
603 * PUSH_DUMMY_FRAME saves the registers above sp' and pushes the
604 * register file stack down one.
605 *
606 * call_function then writes CALL_DUMMY, pushes the args onto the
607 * stack, and adjusts the stack pointer.
608 *
609 * run_stack_dummy then starts execution (in the middle of
610 * CALL_DUMMY, as directed by call_function).
611 */
612
613 #ifndef CALL_DUMMY
614 /* This sequence of words is the instructions
615
616 00: bc 10 00 01 mov %g1, %fp
617 04: 9d e3 80 00 save %sp, %g0, %sp
618 08: bc 10 00 02 mov %g2, %fp
619 0c: be 10 00 03 mov %g3, %i7
620 10: da 03 a0 58 ld [ %sp + 0x58 ], %o5
621 14: d8 03 a0 54 ld [ %sp + 0x54 ], %o4
622 18: d6 03 a0 50 ld [ %sp + 0x50 ], %o3
623 1c: d4 03 a0 4c ld [ %sp + 0x4c ], %o2
624 20: d2 03 a0 48 ld [ %sp + 0x48 ], %o1
625 24: 40 00 00 00 call <fun>
626 28: d0 03 a0 44 ld [ %sp + 0x44 ], %o0
627 2c: 01 00 00 00 nop
628 30: 91 d0 20 01 ta 1
629 34: 01 00 00 00 nop
630
631 NOTES:
632 * the first four instructions are necessary only on the simulator.
633 * this is a multiple of 8 (not only 4) bytes.
634 * the `call' insn is a relative, not an absolute call.
635 * the `nop' at the end is needed to keep the trap from
636 clobbering things (if NPC pointed to garbage instead).
637 */
638
639 #if !defined (GDB_MULTI_ARCH) || (GDB_MULTI_ARCH == 0)
640 /*
641 * The following defines must go away for MULTI_ARCH.
642 */
643
644 #define CALL_DUMMY { 0xbc100001, 0x9de38000, 0xbc100002, 0xbe100003, \
645 0xda03a058, 0xd803a054, 0xd603a050, 0xd403a04c, \
646 0xd203a048, 0x40000000, 0xd003a044, 0x01000000, \
647 0x91d02001, 0x01000000 }
648
649
650 /* Size of the call dummy in bytes. */
651
652 #define CALL_DUMMY_LENGTH 0x38
653
654 /* Offset within call dummy of first instruction to execute. */
655
656 #define CALL_DUMMY_START_OFFSET 0
657
658 /* Offset within CALL_DUMMY of the 'call' instruction. */
659
660 #define CALL_DUMMY_CALL_OFFSET (CALL_DUMMY_START_OFFSET + 0x24)
661
662 /* Offset within CALL_DUMMY of the 'ta 1' trap instruction. */
663
664 #define CALL_DUMMY_BREAKPOINT_OFFSET (CALL_DUMMY_START_OFFSET + 0x30)
665
666 #define CALL_DUMMY_STACK_ADJUST 68
667
668 /* Call dummy method (eg. on stack, at entry point, etc.) */
669
670 #define CALL_DUMMY_LOCATION ON_STACK
671
672 /* Method for detecting dummy frames. */
673
674 #define PC_IN_CALL_DUMMY(PC, SP, FRAME_ADDRESS) \
675 pc_in_call_dummy_on_stack (PC, SP, FRAME_ADDRESS)
676
677 #endif /* GDB_MULTI_ARCH */
678
679 #endif /* CALL_DUMMY */
680
681 #if !defined (GDB_MULTI_ARCH) || (GDB_MULTI_ARCH == 0)
682 /*
683 * The following defines must go away for MULTI_ARCH.
684 */
685
686 /* Insert the specified number of args and function address
687 into a call sequence of the above form stored at DUMMYNAME. */
688
689 #define FIX_CALL_DUMMY(DUMMYNAME, PC, FUN, NARGS, ARGS, TYPE, GCC_P) \
690 sparc_fix_call_dummy (DUMMYNAME, PC, FUN, TYPE, GCC_P)
691 void sparc_fix_call_dummy (char *dummy, CORE_ADDR pc, CORE_ADDR fun,
692 struct type *value_type, int using_gcc);
693
694 /* Arguments smaller than an int must be promoted to ints when
695 synthesizing function calls. */
696
697 /* Push an empty stack frame, to record the current PC, etc. */
698
699 #define PUSH_DUMMY_FRAME sparc_push_dummy_frame ()
700 #define POP_FRAME sparc_pop_frame ()
701
702 void sparc_push_dummy_frame (void);
703 void sparc_pop_frame (void);
704
705 #define PUSH_ARGUMENTS(NARGS, ARGS, SP, STRUCT_RETURN, STRUCT_ADDR) \
706 sparc32_push_arguments (NARGS, ARGS, SP, STRUCT_RETURN, STRUCT_ADDR)
707
708 extern CORE_ADDR
709 sparc32_push_arguments (int, struct value **, CORE_ADDR, int, CORE_ADDR);
710
711 /* Store the address of the place in which to copy the structure the
712 subroutine will return. This is called from call_function_by_hand.
713 The ultimate mystery is, tho, what is the value "16"? */
714
715 #define STORE_STRUCT_RETURN(ADDR, SP) \
716 { char val[4]; \
717 store_unsigned_integer (val, 4, (ADDR)); \
718 write_memory ((SP)+(16*4), val, 4); }
719
720 /* Default definition of USE_STRUCT_CONVENTION. */
721
722 #ifndef USE_STRUCT_CONVENTION
723 #define USE_STRUCT_CONVENTION(GCC_P, TYPE) \
724 generic_use_struct_convention (GCC_P, TYPE)
725 #endif
726
727 /* Extract from an array REGBUF containing the (raw) register state a
728 function return value of type TYPE, and copy that, in virtual
729 format, into VALBUF. */
730
731 #define EXTRACT_RETURN_VALUE(TYPE, REGBUF, VALBUF) \
732 sparc32_extract_return_value (TYPE, REGBUF, VALBUF)
733 extern void sparc32_extract_return_value (struct type *, char[], char *);
734
735 #endif /* GDB_MULTI_ARCH */
736
737 \f
738 /* Sparc has no reliable single step ptrace call */
739
740 #define SOFTWARE_SINGLE_STEP_P 1
741 extern void sparc_software_single_step (unsigned int, int);
742 #define SOFTWARE_SINGLE_STEP(sig,bp_p) sparc_software_single_step (sig,bp_p)
743
744 /* We need more arguments in a frame specification for the
745 "frame" or "info frame" command. */
746
747 #define SETUP_ARBITRARY_FRAME(argc, argv) setup_arbitrary_frame (argc, argv)
748 extern struct frame_info *setup_arbitrary_frame (int, CORE_ADDR *);
749
750 /* To print every pair of float registers as a double, we use this hook.
751 We also print the condition code registers in a readable format
752 (FIXME: can expand this to all control regs). */
753
754 #undef PRINT_REGISTER_HOOK
755 #define PRINT_REGISTER_HOOK(regno) \
756 sparc_print_register_hook (regno)
757 extern void sparc_print_register_hook (int regno);
758
759 /* Optimization for storing registers to the inferior. The hook
760 DO_DEFERRED_STORES
761 actually executes any deferred stores. It is called any time
762 we are going to proceed the child, or read its registers.
763 The hook CLEAR_DEFERRED_STORES is called when we want to throw
764 away the inferior process, e.g. when it dies or we kill it.
765 FIXME, this does not handle remote debugging cleanly. */
766
767 extern int deferred_stores;
768 #define DO_DEFERRED_STORES \
769 if (deferred_stores) \
770 target_store_registers (-2);
771 #define CLEAR_DEFERRED_STORES \
772 deferred_stores = 0;
773
774 /* Select the sparc disassembler */
775
776 #define TM_PRINT_INSN_MACH bfd_mach_sparc
777
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