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e2810631 | 1 | /* Target-dependent code for the NEC V850 for GDB, the GNU debugger. |
ac954805 | 2 | Copyright 1996, Free Software Foundation, Inc. |
e2810631 SG |
3 | |
4 | This file is part of GDB. | |
5 | ||
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. | |
10 | ||
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. | |
15 | ||
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. */ | |
19 | ||
e2810631 SG |
20 | #include "defs.h" |
21 | #include "frame.h" | |
22 | #include "inferior.h" | |
23 | #include "obstack.h" | |
24 | #include "target.h" | |
25 | #include "value.h" | |
26 | #include "bfd.h" | |
27 | #include "gdb_string.h" | |
e2810631 | 28 | #include "gdbcore.h" |
23da411a SG |
29 | #include "symfile.h" |
30 | ||
23da411a SG |
31 | /* Info gleaned from scanning a function's prologue. */ |
32 | ||
a638512f SG |
33 | struct pifsr /* Info about one saved reg */ |
34 | { | |
35 | int framereg; /* Frame reg (SP or FP) */ | |
36 | int offset; /* Offset from framereg */ | |
a490f8c1 | 37 | int cur_frameoffset; /* Current frameoffset */ |
a638512f SG |
38 | int reg; /* Saved register number */ |
39 | }; | |
40 | ||
23da411a | 41 | struct prologue_info |
e5a2ac8b | 42 | { |
e5a2ac8b | 43 | int framereg; |
23da411a SG |
44 | int frameoffset; |
45 | int start_function; | |
a638512f | 46 | struct pifsr *pifsrs; |
23da411a | 47 | }; |
e5a2ac8b | 48 | |
dc1b349d MS |
49 | static CORE_ADDR v850_scan_prologue PARAMS ((CORE_ADDR pc, |
50 | struct prologue_info *fs)); | |
23da411a | 51 | \f |
dc1b349d MS |
52 | /* Function: scan_prologue |
53 | Scan the prologue of the function that contains PC, and record what | |
54 | we find in PI. PI->fsr must be zeroed by the called. Returns the | |
55 | pc after the prologue. Note that the addresses saved in pi->fsr | |
56 | are actually just frame relative (negative offsets from the frame | |
57 | pointer). This is because we don't know the actual value of the | |
58 | frame pointer yet. In some circumstances, the frame pointer can't | |
59 | be determined till after we have scanned the prologue. */ | |
23da411a SG |
60 | |
61 | static CORE_ADDR | |
dc1b349d | 62 | v850_scan_prologue (pc, pi) |
23da411a SG |
63 | CORE_ADDR pc; |
64 | struct prologue_info *pi; | |
65 | { | |
66 | CORE_ADDR func_addr, prologue_end, current_pc; | |
a490f8c1 | 67 | struct pifsr *pifsr, *pifsr_tmp; |
23da411a | 68 | int fp_used; |
b71f8719 | 69 | int ep_used; |
a490f8c1 MM |
70 | int reg; |
71 | CORE_ADDR save_pc, save_end; | |
72 | int regsave_func_p; | |
73 | int current_sp_size; | |
0b019fa1 | 74 | int r12_tmp; |
e5a2ac8b SG |
75 | |
76 | /* First, figure out the bounds of the prologue so that we can limit the | |
77 | search to something reasonable. */ | |
78 | ||
23da411a | 79 | if (find_pc_partial_function (pc, NULL, &func_addr, NULL)) |
e5a2ac8b | 80 | { |
23da411a SG |
81 | struct symtab_and_line sal; |
82 | ||
e5a2ac8b SG |
83 | sal = find_pc_line (func_addr, 0); |
84 | ||
23da411a SG |
85 | if (func_addr == entry_point_address ()) |
86 | pi->start_function = 1; | |
87 | else | |
88 | pi->start_function = 0; | |
89 | ||
a638512f | 90 | #if 0 |
ac954805 | 91 | if (sal.line == 0) |
23da411a | 92 | prologue_end = pc; |
ac954805 SG |
93 | else |
94 | prologue_end = sal.end; | |
a638512f SG |
95 | #else |
96 | prologue_end = pc; | |
97 | #endif | |
e5a2ac8b SG |
98 | } |
99 | else | |
23da411a SG |
100 | { /* We're in the boondocks */ |
101 | func_addr = pc - 100; | |
102 | prologue_end = pc; | |
103 | } | |
e5a2ac8b | 104 | |
23da411a | 105 | prologue_end = min (prologue_end, pc); |
e5a2ac8b SG |
106 | |
107 | /* Now, search the prologue looking for instructions that setup fp, save | |
23da411a SG |
108 | rp, adjust sp and such. We also record the frame offset of any saved |
109 | registers. */ | |
e5a2ac8b | 110 | |
23da411a SG |
111 | pi->frameoffset = 0; |
112 | pi->framereg = SP_REGNUM; | |
113 | fp_used = 0; | |
b71f8719 | 114 | ep_used = 0; |
a638512f | 115 | pifsr = pi->pifsrs; |
a490f8c1 MM |
116 | regsave_func_p = 0; |
117 | save_pc = 0; | |
118 | save_end = 0; | |
0b019fa1 | 119 | r12_tmp = 0; |
a490f8c1 MM |
120 | |
121 | #ifdef DEBUG | |
122 | printf_filtered ("Current_pc = 0x%.8lx, prologue_end = 0x%.8lx\n", | |
123 | (long)func_addr, (long)prologue_end); | |
124 | #endif | |
e5a2ac8b SG |
125 | |
126 | for (current_pc = func_addr; current_pc < prologue_end; current_pc += 2) | |
127 | { | |
128 | int insn; | |
129 | ||
a490f8c1 MM |
130 | #ifdef DEBUG |
131 | printf_filtered ("0x%.8lx ", (long)current_pc); | |
132 | (*tm_print_insn) (current_pc, &tm_print_insn_info); | |
133 | #endif | |
134 | ||
6420594b | 135 | insn = read_memory_unsigned_integer (current_pc, 2); |
e5a2ac8b | 136 | |
a490f8c1 MM |
137 | if ((insn & 0xffc0) == ((10 << 11) | 0x0780) && !regsave_func_p) |
138 | { /* jarl <func>,10 */ | |
139 | long low_disp = read_memory_unsigned_integer (current_pc + 2, 2) & ~ (long) 1; | |
140 | long disp = (((((insn & 0x3f) << 16) + low_disp) | |
141 | & ~ (long) 1) ^ 0x00200000) - 0x00200000; | |
142 | ||
143 | save_pc = current_pc; | |
144 | save_end = prologue_end; | |
145 | regsave_func_p = 1; | |
146 | current_pc += disp - 2; | |
147 | prologue_end = (current_pc | |
148 | + (2 * 3) /* moves to/from ep */ | |
149 | + 4 /* addi <const>,sp,sp */ | |
150 | + 2 /* jmp [r10] */ | |
151 | + (2 * 12) /* sst.w to save r2, r20-r29, r31 */ | |
152 | + 20); /* slop area */ | |
153 | ||
154 | #ifdef DEBUG | |
155 | printf_filtered ("\tfound jarl <func>,r10, disp = %ld, low_disp = %ld, new pc = 0x%.8lx\n", | |
156 | disp, low_disp, (long)current_pc + 2); | |
157 | #endif | |
158 | continue; | |
159 | } | |
160 | else if ((insn & 0xffe0) == 0x0060 && regsave_func_p) | |
161 | { /* jmp after processing register save function */ | |
162 | current_pc = save_pc + 2; | |
163 | prologue_end = save_end; | |
164 | regsave_func_p = 0; | |
165 | #ifdef DEBUG | |
166 | printf_filtered ("\tfound jmp after regsave func"); | |
167 | #endif | |
168 | } | |
169 | else if ((insn & 0x07c0) == 0x0780 /* jarl or jr */ | |
170 | || (insn & 0xffe0) == 0x0060 /* jmp */ | |
171 | || (insn & 0x0780) == 0x0580) /* branch */ | |
172 | { | |
173 | #ifdef DEBUG | |
174 | printf_filtered ("\n"); | |
175 | #endif | |
176 | break; /* Ran into end of prologue */ | |
177 | } | |
178 | ||
179 | else if ((insn & 0xffe0) == ((SP_REGNUM << 11) | 0x0240)) /* add <imm>,sp */ | |
180 | pi->frameoffset += ((insn & 0x1f) ^ 0x10) - 0x10; | |
181 | else if (insn == ((SP_REGNUM << 11) | 0x0600 | SP_REGNUM)) /* addi <imm>,sp,sp */ | |
182 | pi->frameoffset += read_memory_integer (current_pc + 2, 2); | |
183 | else if (insn == ((FP_REGNUM << 11) | 0x0000 | SP_REGNUM)) /* mov sp,fp */ | |
e5a2ac8b | 184 | { |
23da411a SG |
185 | fp_used = 1; |
186 | pi->framereg = FP_REGNUM; | |
187 | } | |
a490f8c1 | 188 | |
0b019fa1 MM |
189 | else if (insn == ((R12_REGNUM << 11) | 0x0640 | R0_REGNUM)) /* movhi hi(const),r0,r12 */ |
190 | r12_tmp = read_memory_integer (current_pc + 2, 2) << 16; | |
191 | else if (insn == ((R12_REGNUM << 11) | 0x0620 | R12_REGNUM)) /* movea lo(const),r12,r12 */ | |
192 | r12_tmp += read_memory_integer (current_pc + 2, 2); | |
193 | else if (insn == ((SP_REGNUM << 11) | 0x01c0 | R12_REGNUM) && r12_tmp) /* add r12,sp */ | |
194 | pi->frameoffset = r12_tmp; | |
a490f8c1 | 195 | else if (insn == ((EP_REGNUM << 11) | 0x0000 | SP_REGNUM)) /* mov sp,ep */ |
b71f8719 | 196 | ep_used = 1; |
a490f8c1 | 197 | else if (insn == ((EP_REGNUM << 11) | 0x0000 | R1_REGNUM)) /* mov r1,ep */ |
b71f8719 | 198 | ep_used = 0; |
0b019fa1 | 199 | else if (((insn & 0x07ff) == (0x0760 | SP_REGNUM) /* st.w <reg>,<offset>[sp] */ |
b71f8719 | 200 | || (fp_used |
0b019fa1 | 201 | && (insn & 0x07ff) == (0x0760 | FP_REGNUM))) /* st.w <reg>,<offset>[fp] */ |
a490f8c1 MM |
202 | && pifsr |
203 | && (((reg = (insn >> 11) & 0x1f) >= SAVE1_START_REGNUM && reg <= SAVE1_END_REGNUM) | |
204 | || (reg >= SAVE2_START_REGNUM && reg <= SAVE2_END_REGNUM) | |
205 | || (reg >= SAVE3_START_REGNUM && reg <= SAVE3_END_REGNUM))) | |
b71f8719 | 206 | { |
a490f8c1 | 207 | pifsr->reg = reg; |
b71f8719 | 208 | pifsr->offset = read_memory_integer (current_pc + 2, 2) & ~1; |
a490f8c1 MM |
209 | pifsr->cur_frameoffset = pi->frameoffset; |
210 | #ifdef DEBUG | |
211 | printf_filtered ("\tSaved register r%d, offset %d", reg, pifsr->offset); | |
212 | #endif | |
b71f8719 MM |
213 | pifsr++; |
214 | } | |
215 | ||
a490f8c1 | 216 | else if (ep_used /* sst.w <reg>,<offset>[ep] */ |
b71f8719 | 217 | && ((insn & 0x0781) == 0x0501) |
a490f8c1 MM |
218 | && pifsr |
219 | && (((reg = (insn >> 11) & 0x1f) >= SAVE1_START_REGNUM && reg <= SAVE1_END_REGNUM) | |
220 | || (reg >= SAVE2_START_REGNUM && reg <= SAVE2_END_REGNUM) | |
221 | || (reg >= SAVE3_START_REGNUM && reg <= SAVE3_END_REGNUM))) | |
b71f8719 | 222 | { |
a490f8c1 MM |
223 | pifsr->reg = reg; |
224 | pifsr->offset = (insn & 0x007e) << 1; | |
225 | pifsr->cur_frameoffset = pi->frameoffset; | |
226 | #ifdef DEBUG | |
227 | printf_filtered ("\tSaved register r%d, offset %d", reg, pifsr->offset); | |
228 | #endif | |
b71f8719 MM |
229 | pifsr++; |
230 | } | |
6420594b SG |
231 | |
232 | if ((insn & 0x0780) >= 0x0600) /* Four byte instruction? */ | |
233 | current_pc += 2; | |
a490f8c1 MM |
234 | |
235 | #ifdef DEBUG | |
236 | printf_filtered ("\n"); | |
237 | #endif | |
e5a2ac8b SG |
238 | } |
239 | ||
a638512f SG |
240 | if (pifsr) |
241 | pifsr->framereg = 0; /* Tie off last entry */ | |
242 | ||
a490f8c1 MM |
243 | /* Fix up any offsets to the final offset. If a frame pointer was created, use it |
244 | instead of the stack pointer. */ | |
245 | for (pifsr_tmp = pi->pifsrs; pifsr_tmp && pifsr_tmp != pifsr; pifsr_tmp++) | |
246 | { | |
247 | pifsr_tmp->offset -= pi->frameoffset - pifsr_tmp->cur_frameoffset; | |
248 | pifsr_tmp->framereg = pi->framereg; | |
249 | ||
250 | #ifdef DEBUG | |
251 | printf_filtered ("Saved register r%d, offset = %d, framereg = r%d\n", | |
252 | pifsr_tmp->reg, pifsr_tmp->offset, pifsr_tmp->framereg); | |
253 | #endif | |
254 | } | |
255 | ||
256 | #ifdef DEBUG | |
257 | printf_filtered ("Framereg = r%d, frameoffset = %d\n", pi->framereg, pi->frameoffset); | |
258 | #endif | |
259 | ||
23da411a | 260 | return current_pc; |
e5a2ac8b SG |
261 | } |
262 | ||
dc1b349d MS |
263 | /* Function: init_extra_frame_info |
264 | Setup the frame's frame pointer, pc, and frame addresses for saved | |
265 | registers. Most of the work is done in scan_prologue(). | |
e5a2ac8b | 266 | |
23da411a SG |
267 | Note that when we are called for the last frame (currently active frame), |
268 | that fi->pc and fi->frame will already be setup. However, fi->frame will | |
269 | be valid only if this routine uses FP. For previous frames, fi-frame will | |
270 | always be correct (since that is derived from v850_frame_chain ()). | |
271 | ||
272 | We can be called with the PC in the call dummy under two circumstances. | |
273 | First, during normal backtracing, second, while figuring out the frame | |
dc1b349d | 274 | pointer just prior to calling the target function (see run_stack_dummy). */ |
23da411a SG |
275 | |
276 | void | |
277 | v850_init_extra_frame_info (fi) | |
e5a2ac8b | 278 | struct frame_info *fi; |
e5a2ac8b | 279 | { |
23da411a | 280 | struct prologue_info pi; |
a638512f | 281 | struct pifsr pifsrs[NUM_REGS + 1], *pifsr; |
23da411a SG |
282 | int reg; |
283 | ||
284 | if (fi->next) | |
285 | fi->pc = FRAME_SAVED_PC (fi->next); | |
286 | ||
287 | memset (fi->fsr.regs, '\000', sizeof fi->fsr.regs); | |
288 | ||
289 | /* The call dummy doesn't save any registers on the stack, so we can return | |
290 | now. */ | |
dc1b349d | 291 | if (PC_IN_CALL_DUMMY (fi->pc, fi->frame, fi->frame)) |
23da411a | 292 | return; |
ac954805 | 293 | |
a638512f | 294 | pi.pifsrs = pifsrs; |
e5a2ac8b | 295 | |
dc1b349d | 296 | v850_scan_prologue (fi->pc, &pi); |
23da411a | 297 | |
a638512f SG |
298 | if (!fi->next && pi.framereg == SP_REGNUM) |
299 | fi->frame = read_register (pi.framereg) - pi.frameoffset; | |
23da411a | 300 | |
a638512f SG |
301 | for (pifsr = pifsrs; pifsr->framereg; pifsr++) |
302 | { | |
303 | fi->fsr.regs[pifsr->reg] = pifsr->offset + fi->frame; | |
304 | ||
305 | if (pifsr->framereg == SP_REGNUM) | |
306 | fi->fsr.regs[pifsr->reg] += pi.frameoffset; | |
307 | } | |
e5a2ac8b SG |
308 | } |
309 | ||
dc1b349d MS |
310 | /* Function: frame_chain |
311 | Figure out the frame prior to FI. Unfortunately, this involves | |
312 | scanning the prologue of the caller, which will also be done | |
313 | shortly by v850_init_extra_frame_info. For the dummy frame, we | |
314 | just return the stack pointer that was in use at the time the | |
315 | function call was made. */ | |
23da411a | 316 | |
e5a2ac8b SG |
317 | CORE_ADDR |
318 | v850_frame_chain (fi) | |
319 | struct frame_info *fi; | |
320 | { | |
23da411a | 321 | struct prologue_info pi; |
dc1b349d | 322 | CORE_ADDR callers_pc, fp; |
e5a2ac8b SG |
323 | |
324 | /* First, find out who called us */ | |
ac954805 | 325 | callers_pc = FRAME_SAVED_PC (fi); |
dc1b349d MS |
326 | /* If caller is a call-dummy, then our FP bears no relation to his FP! */ |
327 | fp = v850_find_callers_reg (fi, FP_REGNUM); | |
328 | if (PC_IN_CALL_DUMMY(callers_pc, fp, fp)) | |
329 | return fp; /* caller is call-dummy: return oldest value of FP */ | |
ac954805 | 330 | |
dc1b349d MS |
331 | /* Caller is NOT a call-dummy, so everything else should just work. |
332 | Even if THIS frame is a call-dummy! */ | |
a638512f | 333 | pi.pifsrs = NULL; |
e5a2ac8b | 334 | |
dc1b349d | 335 | v850_scan_prologue (callers_pc, &pi); |
e5a2ac8b | 336 | |
23da411a SG |
337 | if (pi.start_function) |
338 | return 0; /* Don't chain beyond the start function */ | |
ac954805 | 339 | |
23da411a SG |
340 | if (pi.framereg == FP_REGNUM) |
341 | return v850_find_callers_reg (fi, pi.framereg); | |
e5a2ac8b | 342 | |
23da411a SG |
343 | return fi->frame - pi.frameoffset; |
344 | } | |
e5a2ac8b | 345 | |
dc1b349d MS |
346 | /* Function: find_callers_reg |
347 | Find REGNUM on the stack. Otherwise, it's in an active register. | |
348 | One thing we might want to do here is to check REGNUM against the | |
349 | clobber mask, and somehow flag it as invalid if it isn't saved on | |
350 | the stack somewhere. This would provide a graceful failure mode | |
351 | when trying to get the value of caller-saves registers for an inner | |
352 | frame. */ | |
e5a2ac8b | 353 | |
23da411a SG |
354 | CORE_ADDR |
355 | v850_find_callers_reg (fi, regnum) | |
356 | struct frame_info *fi; | |
357 | int regnum; | |
358 | { | |
23da411a | 359 | for (; fi; fi = fi->next) |
dc1b349d MS |
360 | if (PC_IN_CALL_DUMMY (fi->pc, fi->frame, fi->frame)) |
361 | return generic_read_register_dummy (fi->pc, fi->frame, regnum); | |
23da411a | 362 | else if (fi->fsr.regs[regnum] != 0) |
dc1b349d MS |
363 | return read_memory_unsigned_integer (fi->fsr.regs[regnum], |
364 | REGISTER_RAW_SIZE(regnum)); | |
e5a2ac8b | 365 | |
23da411a | 366 | return read_register (regnum); |
e5a2ac8b SG |
367 | } |
368 | ||
dc1b349d MS |
369 | /* Function: skip_prologue |
370 | Return the address of the first code past the prologue of the function. */ | |
371 | ||
e5a2ac8b SG |
372 | CORE_ADDR |
373 | v850_skip_prologue (pc) | |
374 | CORE_ADDR pc; | |
375 | { | |
376 | CORE_ADDR func_addr, func_end; | |
377 | ||
378 | /* See what the symbol table says */ | |
379 | ||
380 | if (find_pc_partial_function (pc, NULL, &func_addr, &func_end)) | |
381 | { | |
382 | struct symtab_and_line sal; | |
383 | ||
384 | sal = find_pc_line (func_addr, 0); | |
385 | ||
ac954805 | 386 | if (sal.line != 0 && sal.end < func_end) |
e5a2ac8b SG |
387 | return sal.end; |
388 | else | |
ac954805 SG |
389 | /* Either there's no line info, or the line after the prologue is after |
390 | the end of the function. In this case, there probably isn't a | |
391 | prologue. */ | |
e5a2ac8b SG |
392 | return pc; |
393 | } | |
394 | ||
395 | /* We can't find the start of this function, so there's nothing we can do. */ | |
396 | return pc; | |
397 | } | |
398 | ||
dc1b349d MS |
399 | /* Function: pop_frame |
400 | This routine gets called when either the user uses the `return' | |
401 | command, or the call dummy breakpoint gets hit. */ | |
ac954805 SG |
402 | |
403 | void | |
e5a2ac8b SG |
404 | v850_pop_frame (frame) |
405 | struct frame_info *frame; | |
406 | { | |
407 | int regnum; | |
408 | ||
dc1b349d MS |
409 | if (PC_IN_CALL_DUMMY(frame->pc, frame->frame, frame->frame)) |
410 | generic_pop_dummy_frame (); | |
23da411a SG |
411 | else |
412 | { | |
413 | write_register (PC_REGNUM, FRAME_SAVED_PC (frame)); | |
ac954805 | 414 | |
23da411a SG |
415 | for (regnum = 0; regnum < NUM_REGS; regnum++) |
416 | if (frame->fsr.regs[regnum] != 0) | |
417 | write_register (regnum, | |
dc1b349d MS |
418 | read_memory_unsigned_integer (frame->fsr.regs[regnum], |
419 | REGISTER_RAW_SIZE(regnum))); | |
e5a2ac8b | 420 | |
23da411a SG |
421 | write_register (SP_REGNUM, FRAME_FP (frame)); |
422 | } | |
e5a2ac8b | 423 | |
e5a2ac8b | 424 | flush_cached_frames (); |
e5a2ac8b | 425 | } |
ac954805 | 426 | |
dc1b349d MS |
427 | /* Function: push_arguments |
428 | Setup arguments and RP for a call to the target. First four args | |
429 | go in R6->R9, subsequent args go into sp + 16 -> sp + ... Structs | |
430 | are passed by reference. 64 bit quantities (doubles and long | |
431 | longs) may be split between the regs and the stack. When calling a | |
432 | function that returns a struct, a pointer to the struct is passed | |
433 | in as a secret first argument (always in R6). | |
ac954805 | 434 | |
dc1b349d MS |
435 | Stack space for the args has NOT been allocated: that job is up to us. |
436 | */ | |
ac954805 SG |
437 | |
438 | CORE_ADDR | |
439 | v850_push_arguments (nargs, args, sp, struct_return, struct_addr) | |
440 | int nargs; | |
441 | value_ptr *args; | |
442 | CORE_ADDR sp; | |
443 | unsigned char struct_return; | |
444 | CORE_ADDR struct_addr; | |
445 | { | |
446 | int argreg; | |
447 | int argnum; | |
dc1b349d MS |
448 | int len = 0; |
449 | int stack_offset; | |
ac954805 | 450 | |
dc1b349d MS |
451 | /* First, just for safety, make sure stack is aligned */ |
452 | sp &= ~3; | |
453 | ||
454 | /* Now make space on the stack for the args. */ | |
455 | for (argnum = 0; argnum < nargs; argnum++) | |
456 | len += ((TYPE_LENGTH(VALUE_TYPE(args[argnum])) + 3) & ~3); | |
457 | sp -= len; /* possibly over-allocating, but it works... */ | |
458 | /* (you might think we could allocate 16 bytes */ | |
459 | /* less, but the ABI seems to use it all! ) */ | |
687f4e23 | 460 | argreg = ARG0_REGNUM; |
ac954805 | 461 | |
dc1b349d | 462 | /* the struct_return pointer occupies the first parameter-passing reg */ |
ac954805 | 463 | if (struct_return) |
ac954805 | 464 | write_register (argreg++, struct_addr); |
ac954805 | 465 | |
dc1b349d MS |
466 | stack_offset = 16; |
467 | /* The offset onto the stack at which we will start copying parameters | |
468 | (after the registers are used up) begins at 16 rather than at zero. | |
469 | I don't really know why, that's just the way it seems to work. */ | |
470 | ||
471 | /* Now load as many as possible of the first arguments into | |
472 | registers, and push the rest onto the stack. There are 16 bytes | |
473 | in four registers available. Loop thru args from first to last. */ | |
ac954805 SG |
474 | for (argnum = 0; argnum < nargs; argnum++) |
475 | { | |
476 | int len; | |
477 | char *val; | |
dc1b349d | 478 | char valbuf[REGISTER_RAW_SIZE(ARG0_REGNUM)]; |
ac954805 SG |
479 | |
480 | if (TYPE_CODE (VALUE_TYPE (*args)) == TYPE_CODE_STRUCT | |
481 | && TYPE_LENGTH (VALUE_TYPE (*args)) > 8) | |
482 | { | |
483 | store_address (valbuf, 4, VALUE_ADDRESS (*args)); | |
484 | len = 4; | |
485 | val = valbuf; | |
486 | } | |
487 | else | |
488 | { | |
489 | len = TYPE_LENGTH (VALUE_TYPE (*args)); | |
490 | val = (char *)VALUE_CONTENTS (*args); | |
491 | } | |
492 | ||
493 | while (len > 0) | |
687f4e23 | 494 | if (argreg <= ARGLAST_REGNUM) |
ac954805 SG |
495 | { |
496 | CORE_ADDR regval; | |
497 | ||
498 | regval = extract_address (val, REGISTER_RAW_SIZE (argreg)); | |
499 | write_register (argreg, regval); | |
500 | ||
501 | len -= REGISTER_RAW_SIZE (argreg); | |
502 | val += REGISTER_RAW_SIZE (argreg); | |
503 | argreg++; | |
504 | } | |
505 | else | |
506 | { | |
dc1b349d | 507 | write_memory (sp + stack_offset, val, 4); |
ac954805 SG |
508 | |
509 | len -= 4; | |
510 | val += 4; | |
dc1b349d | 511 | stack_offset += 4; |
ac954805 SG |
512 | } |
513 | args++; | |
514 | } | |
dc1b349d MS |
515 | return sp; |
516 | } | |
ac954805 | 517 | |
dc1b349d MS |
518 | /* Function: push_return_address (pc) |
519 | Set up the return address for the inferior function call. | |
520 | Needed for targets where we don't actually execute a JSR/BSR instruction */ | |
521 | ||
dc1b349d MS |
522 | CORE_ADDR |
523 | v850_push_return_address (pc, sp) | |
524 | CORE_ADDR pc; | |
525 | CORE_ADDR sp; | |
526 | { | |
409f64ae | 527 | write_register (RP_REGNUM, CALL_DUMMY_ADDRESS ()); |
ac954805 SG |
528 | return sp; |
529 | } | |
dc1b349d MS |
530 | |
531 | /* Function: frame_saved_pc | |
532 | Find the caller of this frame. We do this by seeing if RP_REGNUM | |
533 | is saved in the stack anywhere, otherwise we get it from the | |
534 | registers. If the inner frame is a dummy frame, return its PC | |
535 | instead of RP, because that's where "caller" of the dummy-frame | |
536 | will be found. */ | |
537 | ||
538 | CORE_ADDR | |
539 | v850_frame_saved_pc (fi) | |
540 | struct frame_info *fi; | |
541 | { | |
542 | if (PC_IN_CALL_DUMMY(fi->pc, fi->frame, fi->frame)) | |
543 | return generic_read_register_dummy(fi->pc, fi->frame, PC_REGNUM); | |
544 | else | |
545 | return v850_find_callers_reg (fi, RP_REGNUM); | |
546 | } | |
547 | ||
548 | void | |
549 | get_saved_register (raw_buffer, optimized, addrp, frame, regnum, lval) | |
550 | char *raw_buffer; | |
551 | int *optimized; | |
552 | CORE_ADDR *addrp; | |
553 | struct frame_info *frame; | |
554 | int regnum; | |
555 | enum lval_type *lval; | |
556 | { | |
557 | generic_get_saved_register (raw_buffer, optimized, addrp, | |
558 | frame, regnum, lval); | |
559 | } | |
560 | ||
561 | ||
562 | /* Function: fix_call_dummy | |
563 | Pokes the callee function's address into the CALL_DUMMY assembly stub. | |
564 | Assumes that the CALL_DUMMY looks like this: | |
565 | jarl <offset24>, r31 | |
566 | trap | |
567 | */ | |
568 | ||
569 | int | |
570 | v850_fix_call_dummy (dummy, sp, fun, nargs, args, type, gcc_p) | |
571 | char *dummy; | |
572 | CORE_ADDR sp; | |
573 | CORE_ADDR fun; | |
574 | int nargs; | |
575 | value_ptr *args; | |
576 | struct type *type; | |
577 | int gcc_p; | |
578 | { | |
579 | long offset24; | |
dc1b349d | 580 | |
409f64ae | 581 | offset24 = (long) fun - (long) entry_point_address (); |
dc1b349d MS |
582 | offset24 &= 0x3fffff; |
583 | offset24 |= 0xff800000; /* jarl <offset24>, r31 */ | |
584 | ||
585 | store_unsigned_integer ((unsigned int *)&dummy[2], 2, offset24 & 0xffff); | |
586 | store_unsigned_integer ((unsigned int *)&dummy[0], 2, offset24 >> 16); | |
587 | return 0; | |
588 | } | |
589 | ||
e2810631 | 590 | void |
dc1b349d | 591 | _initialize_v850_tdep () |
e2810631 SG |
592 | { |
593 | tm_print_insn = print_insn_v850; | |
594 | } |