* hppa-pinsn.c (print_insn): Improve handling of be and ble
[deliverable/binutils-gdb.git] / gdb / tm-hppa.h
CommitLineData
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1/* Parameters for execution on a Hewlett-Packard PA-RISC machine, running
2 HPUX or BSD.
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3 Copyright 1986, 1987, 1989, 1990, 1991, 1992 Free Software Foundation, Inc.
4
5 Contributed by the Center for Software Science at the
6 University of Utah (pa-gdb-bugs@cs.utah.edu).
7
8This file is part of GDB.
9
10This program is free software; you can redistribute it and/or modify
11it under the terms of the GNU General Public License as published by
12the Free Software Foundation; either version 2 of the License, or
13(at your option) any later version.
14
15This program is distributed in the hope that it will be useful,
16but WITHOUT ANY WARRANTY; without even the implied warranty of
17MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18GNU General Public License for more details.
19
20You should have received a copy of the GNU General Public License
21along with this program; if not, write to the Free Software
22Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
23
24/* Target system byte order. */
25
26#define TARGET_BYTE_ORDER BIG_ENDIAN
27
28/* Get at various relevent fields of an instruction word. */
29
30#define MASK_5 0x1f
31#define MASK_11 0x7ff
32#define MASK_14 0x3fff
33#define MASK_21 0x1fffff
34
35/* This macro gets bit fields using HP's numbering (MSB = 0) */
36
37#define GET_FIELD(X, FROM, TO) \
38 ((X) >> 31 - (TO) & (1 << ((TO) - (FROM) + 1)) - 1)
39
40/* Watch out for NaNs */
41
42#define IEEE_FLOAT
43
44/* Groan */
45
46#define ARGS_GROW_DOWN
47
48/* Define this if the C compiler puts an underscore at the front
49 of external names before giving them to the linker. */
50
51/* #define NAMES_HAVE_UNDERSCORE */
52
53/* Offset from address of function to start of its code.
54 Zero on most machines. */
55
56#define FUNCTION_START_OFFSET 0
57
58/* Advance PC across any function entry prologue instructions
59 to reach some "real" code. */
60
61/* skip (stw rp, -20(0,sp)); copy 4,1; copy sp, 4; stwm 1,framesize(sp)
62 for gcc, or (stw rp, -20(0,sp); stwm 1, framesize(sp) for hcc */
63
64#define SKIP_PROLOGUE(pc) \
65{ if (read_memory_integer ((pc), 4) == 0x6BC23FD9) \
66 { if (read_memory_integer ((pc) + 4, 4) == 0x8040241) \
67 (pc) += 16; \
68 else if ((read_memory_integer (pc + 4, 4) & ~MASK_14) == 0x68810000) \
69 (pc) += 8;} \
70 else if (read_memory_integer ((pc), 4) == 0x8040241) \
71 (pc) += 12; \
72 else if ((read_memory_integer (pc, 4) & ~MASK_14) == 0x68810000) \
73 (pc) += 4;}
74
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75/* If PC is in some function-call trampoline code, return the PC
76 where the function itself actually starts. If not, return NULL. */
77
78#define SKIP_TRAMPOLINE_CODE(pc) skip_trampoline_code (pc)
79
80/* Return non-zero if we are in some sort of a trampoline. */
81
82#define IN_SOLIB_TRAMPOLINE(pc,name) skip_trampoline_code (pc)
83
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84/* Immediately after a function call, return the saved pc.
85 Can't go through the frames for this because on some machines
86 the new frame is not set up until the new function executes
87 some instructions. */
88
89#define SAVED_PC_AFTER_CALL(frame) (read_register (RP_REGNUM) & ~3)
90
91/* Address of end of stack space. Who knows. */
92
93#define STACK_END_ADDR 0x80000000
94
95/* Stack grows upward */
96
97#define INNER_THAN >
98
99
100/* Sequence of bytes for breakpoint instruction. */
101
102/*#define BREAKPOINT {0x00, 0x00, 0x00, 0x00}*/
103#ifdef KERNELDEBUG /* XXX */
104#define BREAKPOINT {0x00, 0x00, 0xa0, 0x00}
105#else
106#define BREAKPOINT {0x00, 0x01, 0x00, 0x04}
107#endif
108
109/* Amount PC must be decremented by after a breakpoint.
110 This is often the number of bytes in BREAKPOINT
111 but not always.
112
113 Not on the PA-RISC */
114
115#define DECR_PC_AFTER_BREAK 0
116
117/* return instruction is bv r0(rp) */
118
119#define ABOUT_TO_RETURN(pc) (read_memory_integer (pc, 4) == 0xE840C000)
120
121/* Return 1 if P points to an invalid floating point value. */
122
123#define INVALID_FLOAT(p, len) 0 /* Just a first guess; not checked */
124
125/* Largest integer type */
126#define LONGEST long
127
128/* Name of the builtin type for the LONGEST type above. */
129#define BUILTIN_TYPE_LONGEST builtin_type_long
130
131/* Say how long (ordinary) registers are. */
132
133#define REGISTER_TYPE long
134
135/* Number of machine registers */
136
137#define NUM_REGS 100
138
139/* Initializer for an array of names of registers.
140 There should be NUM_REGS strings in this initializer. */
141
142#define REGISTER_NAMES \
143 {"flags", "r1", "rp", "r3", "r4", "r5", "r6", "r7", "r8", "r9", \
144 "r10", "r11", "r12", "r13", "r14", "r15", "r16", "r17", "r18", "r19", \
145 "r20", "r21", "r22", "arg3", "arg2", "arg1", "arg0", "dp", "ret0", "ret1", \
146 "sp", "r31", "sar", "pcoqh", "pcsqh", "pcoqt", "pcsqt", \
147 "eiem", "iir", "isr", "ior", "ipsw", "goto", "sr4", "sr0", "sr1", "sr2", \
148 "sr3", "sr5", "sr6", "sr7", "cr0", "cr8", "cr9", "ccr", "cr12", "cr13", \
149 "cr24", "cr25", "cr26", "mpsfu_high", "mpsfu_low", "mpsfu_ovflo", "pad", \
150 "fpsr", "fpe1", "fpe2", "fpe3", "fpe4", "fpe5", "fpe6", "fpe7", \
151 "fp4", "fp5", "fp6", "fp7", "fp8", \
152 "fp9", "fp10", "fp11", "fp12", "fp13", "fp14", "fp15", \
153 "fp16", "fp17", "fp18", "fp19", "fp20", "fp21", "fp22", "fp23", \
154 "fp24", "fp25", "fp26", "fp27", "fp28", "fp29", "fp30", "fp31"}
155
156/* Register numbers of various important registers.
157 Note that some of these values are "real" register numbers,
158 and correspond to the general registers of the machine,
159 and some are "phony" register numbers which are too large
160 to be actual register numbers as far as the user is concerned
161 but do serve to get the desired values when passed to read_register. */
162
9f739abd 163#define FLAGS_REGNUM 0 /* Various status flags */
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164#define RP_REGNUM 2 /* return pointer */
165#define FP_REGNUM 4 /* Contains address of executing stack */
166 /* frame */
167#define SP_REGNUM 30 /* Contains address of top of stack */
168#define SAR_REGNUM 32 /* shift amount register */
169#define IPSW_REGNUM 41 /* processor status word. ? */
170#define PCOQ_HEAD_REGNUM 33 /* instruction offset queue head */
171#define PCSQ_HEAD_REGNUM 34 /* instruction space queue head */
172#define PCOQ_TAIL_REGNUM 35 /* instruction offset queue tail */
173#define PCSQ_TAIL_REGNUM 36 /* instruction space queue tail */
174#define FP0_REGNUM 64 /* floating point reg. 0 */
175#define FP4_REGNUM 72
176
177/* compatibility with the rest of gdb. */
178#define PC_REGNUM PCOQ_HEAD_REGNUM
179#define NPC_REGNUM PCOQ_TAIL_REGNUM
180
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181/* When fetching register values from an inferior or a core file,
182 clean them up using this macro. BUF is a char pointer to
183 the raw value of the register in the registers[] array. */
184
185#define CLEAN_UP_REGISTER_VALUE(regno, buf) \
186 do { \
187 if ((regno) == PCOQ_HEAD_REGNUM || (regno) == PCOQ_TAIL_REGNUM) \
188 (buf)[3] &= ~0x3; \
189 } while (0)
190
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191/* Define DO_REGISTERS_INFO() to do machine-specific formatting
192 of register dumps. */
193
194#define DO_REGISTERS_INFO(_regnum, fp) pa_do_registers_info (_regnum, fp)
195
196/* PA specific macro to see if the current instruction is nullified. */
197#define INSTRUCTION_NULLIFIED ((int)read_register (IPSW_REGNUM) & 0x00200000)
198
199/* Total amount of space needed to store our copies of the machine's
200 register state, the array `registers'. */
201#define REGISTER_BYTES (32 * 4 + 11 * 4 + 8 * 4 + 12 * 4 + 4 + 32 * 8)
202
203/* Index within `registers' of the first byte of the space for
204 register N. */
205
206#define REGISTER_BYTE(N) \
207 ((N) >= FP4_REGNUM ? ((N) - FP4_REGNUM) * 8 + 288 : (N) * 4)
208
209/* Number of bytes of storage in the actual machine representation
210 for register N. On the PA-RISC, all regs are 4 bytes
211 except the floating point regs which are 8 bytes. */
212
213#define REGISTER_RAW_SIZE(N) ((N) < FP4_REGNUM ? 4 : 8)
214
215/* Number of bytes of storage in the program's representation
216 for register N. */
217
218#define REGISTER_VIRTUAL_SIZE(N) REGISTER_RAW_SIZE(N)
219
220/* Largest value REGISTER_RAW_SIZE can have. */
221
222#define MAX_REGISTER_RAW_SIZE 8
223
224/* Largest value REGISTER_VIRTUAL_SIZE can have. */
225
226#define MAX_REGISTER_VIRTUAL_SIZE 8
227
228/* Nonzero if register N requires conversion
229 from raw format to virtual format. */
230
231#define REGISTER_CONVERTIBLE(N) 0
232
233/* Convert data from raw format for register REGNUM
234 to virtual format for register REGNUM. */
235
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236#define REGISTER_CONVERT_TO_VIRTUAL(REGNUM, FROM, TO) \
237{ memcpy ((TO), (FROM), (REGNUM) < FP4_REGNUM ? 4 : 8); }
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238
239/* Convert data from virtual format for register REGNUM
240 to raw format for register REGNUM. */
241
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242#define REGISTER_CONVERT_TO_RAW(REGNUM, FROM, TO) \
243{ memcpy ((TO), (FROM), (REGNUM) < FP4_REGNUM ? 4 : 8); }
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244
245/* Return the GDB type object for the "standard" data type
246 of data in register N. */
247
248#define REGISTER_VIRTUAL_TYPE(N) \
249 ((N) < FP4_REGNUM ? builtin_type_int : builtin_type_double)
250
251/* Store the address of the place in which to copy the structure the
252 subroutine will return. This is called from call_function. */
253
254#define STORE_STRUCT_RETURN(ADDR, SP) {write_register (28, (ADDR)); }
255
256/* Extract from an array REGBUF containing the (raw) register state
257 a function return value of type TYPE, and copy that, in virtual format,
258 into VALBUF. */
259
260#define EXTRACT_RETURN_VALUE(TYPE,REGBUF,VALBUF) \
261 bcopy ((REGBUF) + REGISTER_BYTE(TYPE_LENGTH(TYPE) > 4 ? \
262 FP4_REGNUM :28), VALBUF, TYPE_LENGTH (TYPE))
263
264/* Write into appropriate registers a function return value
265 of type TYPE, given in virtual format. */
266
267#define STORE_RETURN_VALUE(TYPE,VALBUF) \
268 write_register_bytes (TYPE_LENGTH(TYPE) > 4 ? FP4_REGNUM :28, \
269 VALBUF, TYPE_LENGTH (TYPE))
270
271/* Extract from an array REGBUF containing the (raw) register state
272 the address in which a function should return its structure value,
273 as a CORE_ADDR (or an expression that can be used as one). */
274
275#define EXTRACT_STRUCT_VALUE_ADDRESS(REGBUF) (*(int *)((REGBUF) + 28))
276
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277/*
278 * This macro defines the register numbers (from REGISTER_NAMES) that
279 * are effectively unavailable to the user through ptrace(). It allows
280 * us to include the whole register set in REGISTER_NAMES (inorder to
281 * better support remote debugging). If it is used in
282 * fetch/store_inferior_registers() gdb will not complain about I/O errors
283 * on fetching these registers. If all registers in REGISTER_NAMES
284 * are available, then return false (0).
285 */
286
287#define CANNOT_STORE_REGISTER(regno) \
288 ((regno) == 0) || \
289 ((regno) == PCSQ_HEAD_REGNUM) || \
290 ((regno) >= PCSQ_TAIL_REGNUM && (regno) < IPSW_REGNUM) || \
291 ((regno) > IPSW_REGNUM && (regno) < FP4_REGNUM)
292
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293/* This is a piece of magic that is given a register number REGNO
294 and as BLOCKEND the address in the system of the end of the user structure
295 and stores in ADDR the address in the kernel or core dump
296 of that register. */
297
298
299/* Describe the pointer in each stack frame to the previous stack frame
300 (its caller). */
301
302/* FRAME_CHAIN takes a frame's nominal address
303 and produces the frame's chain-pointer.
304
305 FRAME_CHAIN_COMBINE takes the chain pointer and the frame's nominal address
306 and produces the nominal address of the caller frame.
307
308 However, if FRAME_CHAIN_VALID returns zero,
309 it means the given frame is the outermost one and has no caller.
310 In that case, FRAME_CHAIN_COMBINE is not used. */
311
312/* In the case of the PA-RISC, the frame's nominal address
313 is the address of a 4-byte word containing the calling frame's
314 address (previous FP). */
315
316#define FRAME_CHAIN(thisframe) \
01d1590b 317 (!inside_entry_file ((thisframe)->pc) ? \
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318 read_memory_integer ((thisframe)->frame, 4) :\
319 0)
320
321#define FRAME_CHAIN_VALID(chain, thisframe) \
322 frame_chain_valid (chain, thisframe)
323
324#define FRAME_CHAIN_COMBINE(chain, thisframe) (chain)
325
326/* Define other aspects of the stack frame. */
327
328/* A macro that tells us whether the function invocation represented
329 by FI does not have a frame on the stack associated with it. If it
330 does not, FRAMELESS is set to 1, else 0. */
331#define FRAMELESS_FUNCTION_INVOCATION(FI, FRAMELESS) \
332 (FRAMELESS) = frameless_look_for_prologue(FI)
333
334#define FRAME_SAVED_PC(FRAME) frame_saved_pc (FRAME)
335
336#define FRAME_ARGS_ADDRESS(fi) ((fi)->frame)
337
338#define FRAME_LOCALS_ADDRESS(fi) ((fi)->frame)
339/* Set VAL to the number of args passed to frame described by FI.
340 Can set VAL to -1, meaning no way to tell. */
341
342/* We can't tell how many args there are
343 now that the C compiler delays popping them. */
344#define FRAME_NUM_ARGS(val,fi) (val = -1)
345
346/* Return number of bytes at start of arglist that are not really args. */
347
348#define FRAME_ARGS_SKIP 0
349
350/* Put here the code to store, into a struct frame_saved_regs,
351 the addresses of the saved registers of frame described by FRAME_INFO.
352 This includes special registers such as pc and fp saved in special
353 ways in the stack frame. sp is even more special:
354 the address we return for it IS the sp for the next frame. */
355
356/* Deal with dummy functions later. */
357
358#define STW_P(INSN) (((INSN) & 0xfc000000) == 0x68000000)
359#define ADDIL_P(INSN) (((INSN) & 0xfc000000) == 0x28000000)
360#define LDO_P(INSN) (((INSN) & 0xfc00c000) == 0x34000000)
361
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362#define FRAME_FIND_SAVED_REGS(frame_info, frame_saved_regs) \
363{ register int regnum; \
364 register CORE_ADDR next_addr; \
365 register CORE_ADDR pc; \
366 unsigned this_insn; \
367 unsigned address; \
368 \
369 bzero (&frame_saved_regs, sizeof frame_saved_regs); \
9f739abd
SG
370 if ((frame_info->pc >= (frame_info)->frame \
371 && (frame_info)->pc <= ((frame_info)->frame + CALL_DUMMY_LENGTH \
372 + 32 * 4 + (NUM_REGS - FP0_REGNUM) * 8 \
373 + 6 * 4))) \
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374 find_dummy_frame_regs ((frame_info), &(frame_saved_regs)); \
375 else \
376 { pc = get_pc_function_start ((frame_info)->pc); \
377 if (read_memory_integer (pc, 4) == 0x6BC23FD9) \
378 { (frame_saved_regs).regs[RP_REGNUM] = (frame_info)->frame - 20;\
379 pc = pc + 4; \
380 } \
381 if (read_memory_integer (pc, 4) != 0x8040241) goto lose; \
382 pc += 8; /* skip "copy 4,1; copy 30, 4" */ \
383 /* skip either "stw 1,0(4);addil L'fsize,30;ldo R'fsize(1),30" \
384 or "stwm 1,fsize(30)" */ \
385 if ((read_memory_integer (pc, 4) & ~MASK_14) == 0x68810000) \
386 pc += 12; \
387 else \
388 pc += 4; \
389 while (1) \
390 { this_insn = read_memory_integer(pc, 4); \
391 if (STW_P (this_insn)) /* stw */ \
392 { regnum = GET_FIELD (this_insn, 11, 15); \
393 if (!regnum) goto lose; \
394 (frame_saved_regs).regs[regnum] = (frame_info)->frame + \
395 extract_14 (this_insn); \
396 pc += 4; \
397 } \
398 else if (ADDIL_P (this_insn)) /* addil */ \
399 { int next_insn; \
400 next_insn = read_memory_integer(pc + 4, 4); \
401 if (STW_P (next_insn)) /* stw */ \
402 { regnum = GET_FIELD (this_insn, 6, 10); \
403 if (!regnum) goto lose; \
404 (frame_saved_regs).regs[regnum] = (frame_info)->frame +\
405 (extract_21 (this_insn) << 11) + extract_14 (next_insn);\
406 pc += 8; \
407 } \
408 else \
409 break; \
410 } \
411 else \
412 { pc += 4; \
413 break; \
414 } \
415 } \
416 this_insn = read_memory_integer (pc, 4); \
417 if (LDO_P (this_insn)) \
418 { next_addr = (frame_info)->frame + extract_14 (this_insn); \
419 pc += 4; \
420 } \
421 else if (ADDIL_P (this_insn)) \
422 { next_addr = (frame_info)->frame + (extract_21 (this_insn) << 11)\
423 + extract_14 (read_memory_integer (pc + 4, 4)); \
424 pc += 8; \
425 } \
426 while (1) \
427 { this_insn = read_memory_integer (pc, 4); \
428 if ((this_insn & 0xfc001fe0) == 0x2c001220) /* fstds,ma */ \
429 { regnum = GET_FIELD (this_insn, 27, 31); \
430 (frame_saved_regs).regs[regnum + FP0_REGNUM] = next_addr; \
431 next_addr += 8; \
9f739abd 432 pc += 4; \
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JG
433 } \
434 else \
435 break; \
436 } \
437 lose: \
438 (frame_saved_regs).regs[FP_REGNUM] = (frame_info)->frame; \
439 (frame_saved_regs).regs[SP_REGNUM] = (frame_info)->frame -4; \
440 }}
441\f
442/* Things needed for making the inferior call functions. */
443
444/* Push an empty stack frame, to record the current PC, etc. */
445
9f739abd 446#define PUSH_DUMMY_FRAME push_dummy_frame ()
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447
448/* Discard from the stack the innermost frame,
449 restoring all saved registers. */
9f739abd 450#define POP_FRAME hp_pop_frame ()
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451
452/* This sequence of words is the instructions
453
454; Call stack frame has already been built by gdb. Since we could be calling
455; a varargs function, and we do not have the benefit of a stub to put things in
456; the right place, we load the first 4 word of arguments into both the general
457; and fp registers.
458call_dummy
459 ldw -36(sp), arg0
460 ldw -40(sp), arg1
461 ldw -44(sp), arg2
462 ldw -48(sp), arg3
463 ldo -36(sp), r1
464 fldws 0(0, r1), fr4
465 fldds -4(0, r1), fr5
466 fldws -8(0, r1), fr6
467 fldds -12(0, r1), fr7
468 ldil 0, r22 ; target will be placed here.
469 ldo 0(r22), r22
470 ldsid (0,r22), r3
471 ldil 0, r1 ; _sr4export will be placed here.
472 ldo 0(r1), r1
9f739abd
SG
473 ldsid (0,r1), r19
474 combt,=,n r3, r19, text_space ; If target is in data space, do a
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475 ble 0(sr5, r22) ; "normal" procedure call
476 copy r31, r2
477 break 4, 8
9f739abd
SG
478 mtsp r21, sr0
479 ble,n 0(sr0, r22)
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480text_space ; Otherwise, go through _sr4export,
481 ble (sr4, r1) ; which will return back here.
482 stw 31,-24(r30)
483 break 4, 8
9f739abd
SG
484 mtsp r21, sr0
485 ble,n 0(sr0, r22)
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486
487 The dummy decides if the target is in text space or data space. If
488 it's in data space, there's no problem because the target can
489 return back to the dummy. However, if the target is in text space,
490 the dummy calls the secret, undocumented routine _sr4export, which
491 calls a function in text space and can return to any space. Instead
492 of including fake instructions to represent saved registers, we
493 know that the frame is associated with the call dummy and treat it
494 specially. */
495
9f739abd
SG
496#define CALL_DUMMY {0x4BDA3FB9, 0x4BD93FB1, 0x4BD83FA9, 0x4BD73FA1,\
497 0x37C13FB9, 0x24201004, 0x2C391005, 0x24311006,\
498 0x2C291007, 0x22C00000, 0x36D60000, 0x02C010A3,\
499 0x20200000, 0x34210000, 0x002010b3, 0x82632022,\
500 0xe6c06000, 0x081f0242, 0x00010004, 0x00151820,\
501 0xe6c00002, 0xe4202000, 0x6bdf3fd1, 0x00010004,\
502 0x00151820, 0xe6c00002}
5140562f 503
9f739abd 504#define CALL_DUMMY_LENGTH 104
5140562f 505#define CALL_DUMMY_START_OFFSET 0
9f739abd
SG
506
507/*
508 * Insert the specified number of args and function address
509 * into a call sequence of the above form stored at DUMMYNAME.
510 *
511 * On the hppa we need to call the stack dummy through $$dyncall.
512 * Therefore our version of FIX_CALL_DUMMY takes an extra argument,
513 * real_pc, which is the location where gdb should start up the
514 * inferior to do the function call.
515 */
516
517#define FIX_CALL_DUMMY(dummyname, pc, real_pc, fun, nargs, args, type, gcc_p) \
518{ \
519 CORE_ADDR dyncall_addr = 0, sr4export_addr = 0; \
520 \
521 if (!dyncall_addr) \
522 { \
5140562f 523 struct minimal_symbol *msymbol; \
9f739abd
SG
524 msymbol = lookup_minimal_symbol ("$$dyncall", (struct objfile *) NULL);\
525 if (msymbol == NULL) \
526 error ("Can't find an address for $$dyncall trampoline"); \
527 else \
528 dyncall_addr = msymbol -> address; \
5140562f 529 msymbol = lookup_minimal_symbol ("_sr4export", (struct objfile *) NULL);\
9f739abd
SG
530 if (msymbol == NULL) \
531 error ("Can't find an address for _sr4export trampoline"); \
532 else \
533 sr4export_addr = msymbol -> address; \
534 } \
535 dummyname[9] = deposit_21 (fun >> 11, dummyname[9]); \
536 dummyname[10] = deposit_14 (fun & MASK_11, dummyname[10]); \
537 dummyname[12] = deposit_21 (sr4export_addr >> 11, \
538 dummyname[12]); \
539 dummyname[13] = deposit_14 (sr4export_addr & MASK_11, \
540 dummyname[13]); \
541 write_register (22, pc); \
542 real_pc = dyncall_addr; \
5140562f
JG
543}
544
e0ba1d14
JG
545#define PUSH_ARGUMENTS(nargs, args, sp, struct_return, struct_addr) \
546 sp = hp_push_arguments(nargs, args, sp, struct_return, struct_addr)
547
e0ba1d14
JG
548/* Symbol files have two symbol tables. Rather than do this right,
549 like the ELF symbol reading code, massive hackery was added
550 to dbxread.c and partial-stab.h. This flag turns on that
551 hackery, which should all go away FIXME FIXME FIXME FIXME now. */
552
553#define GDB_TARGET_IS_HPPA
9f739abd
SG
554
555/*
556 * Unwind table and descriptor.
557 */
558
559struct unwind_table_entry {
560 unsigned int region_start;
561 unsigned int region_end;
562
563 unsigned int Cannot_unwind : 1;
564 unsigned int Millicode : 1;
565 unsigned int Millicode_save_sr0 : 1;
566 unsigned int Region_description : 2;
567 unsigned int reserverd1 : 1;
568 unsigned int Entry_SR : 1;
569 unsigned int Entry_FR : 4; /* number saved */
570 unsigned int Entry_GR : 5; /* number saved */
571 unsigned int Args_stored : 1;
572 unsigned int Variable_Frame : 1;
573 unsigned int Separate_Package_Body : 1;
574 unsigned int Frame_Extension_Millicode:1;
575 unsigned int Stack_Overflow_Check : 1;
576 unsigned int Two_Instruction_SP_Increment:1;
577 unsigned int Ada_Region : 1;
578 unsigned int reserved2 : 4;
579 unsigned int Save_SP : 1;
580 unsigned int Save_RP : 1;
581 unsigned int Save_MRP_in_frame : 1;
582 unsigned int extn_ptr_defined : 1;
583 unsigned int Cleanup_defined : 1;
584
585 unsigned int MPE_XL_interrupt_marker: 1;
586 unsigned int HP_UX_interrupt_marker: 1;
587 unsigned int Large_frame : 1;
588 unsigned int reserved4 : 2;
589 unsigned int Total_frame_size : 27;
590};
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