tc-rl78.c revision 1.10 1 1.1 christos /* tc-rl78.c -- Assembler for the Renesas RL78
2 1.10 christos Copyright (C) 2011-2025 Free Software Foundation, Inc.
3 1.1 christos
4 1.1 christos This file is part of GAS, the GNU Assembler.
5 1.1 christos
6 1.1 christos GAS is free software; you can redistribute it and/or modify
7 1.1 christos it under the terms of the GNU General Public License as published by
8 1.1 christos the Free Software Foundation; either version 3, or (at your option)
9 1.1 christos any later version.
10 1.1 christos
11 1.1 christos GAS is distributed in the hope that it will be useful,
12 1.1 christos but WITHOUT ANY WARRANTY; without even the implied warranty of
13 1.1 christos MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 1.1 christos GNU General Public License for more details.
15 1.1 christos
16 1.1 christos You should have received a copy of the GNU General Public License
17 1.1 christos along with GAS; see the file COPYING. If not, write to the Free
18 1.1 christos Software Foundation, 51 Franklin Street - Fifth Floor, Boston, MA
19 1.1 christos 02110-1301, USA. */
20 1.1 christos
21 1.1 christos #include "as.h"
22 1.1 christos #include "safe-ctype.h"
23 1.1 christos #include "dwarf2dbg.h"
24 1.1 christos #include "elf/common.h"
25 1.1 christos #include "elf/rl78.h"
26 1.1 christos #include "rl78-defs.h"
27 1.1 christos #include "filenames.h"
28 1.1 christos #include "listing.h"
29 1.1 christos #include "sb.h"
30 1.1 christos #include "macro.h"
31 1.1 christos
32 1.1 christos const char comment_chars[] = ";";
33 1.1 christos /* Note that input_file.c hand checks for '#' at the beginning of the
34 1.1 christos first line of the input file. This is because the compiler outputs
35 1.1 christos #NO_APP at the beginning of its output. */
36 1.1 christos const char line_comment_chars[] = "#";
37 1.3 christos /* Use something that isn't going to be needed by any expressions or
38 1.3 christos other syntax. */
39 1.3 christos const char line_separator_chars[] = "@";
40 1.1 christos
41 1.1 christos const char EXP_CHARS[] = "eE";
42 1.1 christos const char FLT_CHARS[] = "dD";
43 1.1 christos
44 1.3 christos /* ELF flags to set in the output file header. */
45 1.3 christos static int elf_flags = 0;
46 1.3 christos
47 1.1 christos /*------------------------------------------------------------------*/
48 1.1 christos
49 1.1 christos char * rl78_lex_start;
50 1.1 christos char * rl78_lex_end;
51 1.1 christos
52 1.1 christos typedef struct rl78_bytesT
53 1.1 christos {
54 1.1 christos char prefix[1];
55 1.1 christos int n_prefix;
56 1.1 christos char base[4];
57 1.1 christos int n_base;
58 1.1 christos char ops[8];
59 1.1 christos int n_ops;
60 1.1 christos struct
61 1.1 christos {
62 1.1 christos expressionS exp;
63 1.1 christos char offset;
64 1.1 christos char nbits;
65 1.1 christos char type; /* RL78REL_*. */
66 1.1 christos int reloc;
67 1.1 christos fixS * fixP;
68 1.1 christos } fixups[2];
69 1.1 christos int n_fixups;
70 1.1 christos struct
71 1.1 christos {
72 1.1 christos char type;
73 1.1 christos char field_pos;
74 1.1 christos char val_ofs;
75 1.1 christos } relax[2];
76 1.1 christos int n_relax;
77 1.1 christos int link_relax;
78 1.1 christos fixS *link_relax_fixP;
79 1.1 christos char times_grown;
80 1.1 christos char times_shrank;
81 1.1 christos } rl78_bytesT;
82 1.1 christos
83 1.1 christos static rl78_bytesT rl78_bytes;
84 1.1 christos
85 1.1 christos void
86 1.3 christos rl78_relax (int type, int pos)
87 1.3 christos {
88 1.3 christos rl78_bytes.relax[rl78_bytes.n_relax].type = type;
89 1.3 christos rl78_bytes.relax[rl78_bytes.n_relax].field_pos = pos;
90 1.3 christos rl78_bytes.relax[rl78_bytes.n_relax].val_ofs = rl78_bytes.n_base + rl78_bytes.n_ops;
91 1.3 christos rl78_bytes.n_relax ++;
92 1.3 christos }
93 1.3 christos
94 1.3 christos void
95 1.1 christos rl78_linkrelax_addr16 (void)
96 1.1 christos {
97 1.1 christos rl78_bytes.link_relax |= RL78_RELAXA_ADDR16;
98 1.1 christos }
99 1.1 christos
100 1.1 christos void
101 1.1 christos rl78_linkrelax_branch (void)
102 1.1 christos {
103 1.5 christos rl78_relax (RL78_RELAX_BRANCH, 0);
104 1.1 christos rl78_bytes.link_relax |= RL78_RELAXA_BRA;
105 1.1 christos }
106 1.1 christos
107 1.1 christos static void
108 1.1 christos rl78_fixup (expressionS exp, int offsetbits, int nbits, int type)
109 1.1 christos {
110 1.1 christos rl78_bytes.fixups[rl78_bytes.n_fixups].exp = exp;
111 1.1 christos rl78_bytes.fixups[rl78_bytes.n_fixups].offset = offsetbits;
112 1.1 christos rl78_bytes.fixups[rl78_bytes.n_fixups].nbits = nbits;
113 1.1 christos rl78_bytes.fixups[rl78_bytes.n_fixups].type = type;
114 1.1 christos rl78_bytes.fixups[rl78_bytes.n_fixups].reloc = exp.X_md;
115 1.1 christos rl78_bytes.n_fixups ++;
116 1.1 christos }
117 1.1 christos
118 1.1 christos #define rl78_field_fixup(exp, offset, nbits, type) \
119 1.1 christos rl78_fixup (exp, offset + 8 * rl78_bytes.n_prefix), nbits, type)
120 1.1 christos
121 1.1 christos #define rl78_op_fixup(exp, offset, nbits, type) \
122 1.1 christos rl78_fixup (exp, offset + 8 * (rl78_bytes.n_prefix + rl78_bytes.n_base), nbits, type)
123 1.1 christos
124 1.1 christos void
125 1.1 christos rl78_prefix (int p)
126 1.1 christos {
127 1.1 christos rl78_bytes.prefix[0] = p;
128 1.1 christos rl78_bytes.n_prefix = 1;
129 1.1 christos }
130 1.1 christos
131 1.1 christos int
132 1.5 christos rl78_has_prefix (void)
133 1.1 christos {
134 1.1 christos return rl78_bytes.n_prefix;
135 1.1 christos }
136 1.1 christos
137 1.1 christos void
138 1.1 christos rl78_base1 (int b1)
139 1.1 christos {
140 1.1 christos rl78_bytes.base[0] = b1;
141 1.1 christos rl78_bytes.n_base = 1;
142 1.1 christos }
143 1.1 christos
144 1.1 christos void
145 1.1 christos rl78_base2 (int b1, int b2)
146 1.1 christos {
147 1.1 christos rl78_bytes.base[0] = b1;
148 1.1 christos rl78_bytes.base[1] = b2;
149 1.1 christos rl78_bytes.n_base = 2;
150 1.1 christos }
151 1.1 christos
152 1.1 christos void
153 1.1 christos rl78_base3 (int b1, int b2, int b3)
154 1.1 christos {
155 1.1 christos rl78_bytes.base[0] = b1;
156 1.1 christos rl78_bytes.base[1] = b2;
157 1.1 christos rl78_bytes.base[2] = b3;
158 1.1 christos rl78_bytes.n_base = 3;
159 1.1 christos }
160 1.1 christos
161 1.1 christos void
162 1.1 christos rl78_base4 (int b1, int b2, int b3, int b4)
163 1.1 christos {
164 1.1 christos rl78_bytes.base[0] = b1;
165 1.1 christos rl78_bytes.base[1] = b2;
166 1.1 christos rl78_bytes.base[2] = b3;
167 1.1 christos rl78_bytes.base[3] = b4;
168 1.1 christos rl78_bytes.n_base = 4;
169 1.1 christos }
170 1.1 christos
171 1.1 christos #define F_PRECISION 2
172 1.1 christos
173 1.1 christos void
174 1.1 christos rl78_op (expressionS exp, int nbytes, int type)
175 1.1 christos {
176 1.1 christos int v = 0;
177 1.1 christos
178 1.1 christos if ((exp.X_op == O_constant || exp.X_op == O_big)
179 1.1 christos && type != RL78REL_PCREL)
180 1.1 christos {
181 1.1 christos if (exp.X_op == O_big && exp.X_add_number <= 0)
182 1.1 christos {
183 1.1 christos LITTLENUM_TYPE w[2];
184 1.1 christos char * ip = rl78_bytes.ops + rl78_bytes.n_ops;
185 1.1 christos
186 1.1 christos gen_to_words (w, F_PRECISION, 8);
187 1.1 christos ip[3] = w[0] >> 8;
188 1.1 christos ip[2] = w[0];
189 1.1 christos ip[1] = w[1] >> 8;
190 1.1 christos ip[0] = w[1];
191 1.1 christos rl78_bytes.n_ops += 4;
192 1.1 christos }
193 1.1 christos else
194 1.1 christos {
195 1.1 christos v = exp.X_add_number;
196 1.1 christos while (nbytes)
197 1.1 christos {
198 1.1 christos rl78_bytes.ops[rl78_bytes.n_ops++] =v & 0xff;
199 1.1 christos v >>= 8;
200 1.1 christos nbytes --;
201 1.1 christos }
202 1.1 christos }
203 1.1 christos }
204 1.1 christos else
205 1.1 christos {
206 1.3 christos if (nbytes > 2
207 1.3 christos && exp.X_md == BFD_RELOC_RL78_CODE)
208 1.3 christos exp.X_md = 0;
209 1.3 christos
210 1.3 christos if (nbytes == 1
211 1.3 christos && (exp.X_md == BFD_RELOC_RL78_LO16
212 1.3 christos || exp.X_md == BFD_RELOC_RL78_HI16))
213 1.3 christos as_bad (_("16-bit relocation used in 8-bit operand"));
214 1.3 christos
215 1.3 christos if (nbytes == 2
216 1.3 christos && exp.X_md == BFD_RELOC_RL78_HI8)
217 1.3 christos as_bad (_("8-bit relocation used in 16-bit operand"));
218 1.3 christos
219 1.1 christos rl78_op_fixup (exp, rl78_bytes.n_ops * 8, nbytes * 8, type);
220 1.1 christos memset (rl78_bytes.ops + rl78_bytes.n_ops, 0, nbytes);
221 1.1 christos rl78_bytes.n_ops += nbytes;
222 1.1 christos }
223 1.1 christos }
224 1.1 christos
225 1.1 christos /* This gets complicated when the field spans bytes, because fields
226 1.1 christos are numbered from the MSB of the first byte as zero, and bits are
227 1.1 christos stored LSB towards the LSB of the byte. Thus, a simple four-bit
228 1.1 christos insertion of 12 at position 4 of 0x00 yields: 0x0b. A three-bit
229 1.1 christos insertion of b'MXL at position 7 is like this:
230 1.1 christos
231 1.1 christos - - - - - - - - - - - - - - - -
232 1.1 christos M X L */
233 1.1 christos
234 1.1 christos void
235 1.1 christos rl78_field (int val, int pos, int sz)
236 1.1 christos {
237 1.1 christos int valm;
238 1.1 christos int bytep, bitp;
239 1.1 christos
240 1.1 christos if (sz > 0)
241 1.1 christos {
242 1.1 christos if (val < 0 || val >= (1 << sz))
243 1.1 christos as_bad (_("Value %d doesn't fit in unsigned %d-bit field"), val, sz);
244 1.1 christos }
245 1.1 christos else
246 1.1 christos {
247 1.1 christos sz = - sz;
248 1.1 christos if (val < -(1 << (sz - 1)) || val >= (1 << (sz - 1)))
249 1.1 christos as_bad (_("Value %d doesn't fit in signed %d-bit field"), val, sz);
250 1.1 christos }
251 1.1 christos
252 1.1 christos /* This code points at 'M' in the above example. */
253 1.1 christos bytep = pos / 8;
254 1.1 christos bitp = pos % 8;
255 1.1 christos
256 1.1 christos while (bitp + sz > 8)
257 1.1 christos {
258 1.1 christos int ssz = 8 - bitp;
259 1.1 christos int svalm;
260 1.1 christos
261 1.1 christos svalm = val >> (sz - ssz);
262 1.1 christos svalm = svalm & ((1 << ssz) - 1);
263 1.1 christos svalm = svalm << (8 - bitp - ssz);
264 1.1 christos gas_assert (bytep < rl78_bytes.n_base);
265 1.1 christos rl78_bytes.base[bytep] |= svalm;
266 1.1 christos
267 1.1 christos bitp = 0;
268 1.1 christos sz -= ssz;
269 1.1 christos bytep ++;
270 1.1 christos }
271 1.1 christos valm = val & ((1 << sz) - 1);
272 1.1 christos valm = valm << (8 - bitp - sz);
273 1.1 christos gas_assert (bytep < rl78_bytes.n_base);
274 1.1 christos rl78_bytes.base[bytep] |= valm;
275 1.1 christos }
276 1.1 christos
277 1.1 christos /*------------------------------------------------------------------*/
278 1.1 christos
279 1.1 christos enum options
280 1.1 christos {
281 1.1 christos OPTION_RELAX = OPTION_MD_BASE,
282 1.5 christos OPTION_NORELAX,
283 1.3 christos OPTION_G10,
284 1.3 christos OPTION_G13,
285 1.3 christos OPTION_G14,
286 1.3 christos OPTION_32BIT_DOUBLES,
287 1.3 christos OPTION_64BIT_DOUBLES,
288 1.1 christos };
289 1.1 christos
290 1.1 christos #define RL78_SHORTOPTS ""
291 1.10 christos const char md_shortopts[] = RL78_SHORTOPTS;
292 1.1 christos
293 1.1 christos /* Assembler options. */
294 1.10 christos const struct option md_longopts[] =
295 1.1 christos {
296 1.1 christos {"relax", no_argument, NULL, OPTION_RELAX},
297 1.5 christos {"norelax", no_argument, NULL, OPTION_NORELAX},
298 1.3 christos {"mg10", no_argument, NULL, OPTION_G10},
299 1.3 christos {"mg13", no_argument, NULL, OPTION_G13},
300 1.3 christos {"mg14", no_argument, NULL, OPTION_G14},
301 1.3 christos {"mrl78", no_argument, NULL, OPTION_G14},
302 1.3 christos {"m32bit-doubles", no_argument, NULL, OPTION_32BIT_DOUBLES},
303 1.3 christos {"m64bit-doubles", no_argument, NULL, OPTION_64BIT_DOUBLES},
304 1.1 christos {NULL, no_argument, NULL, 0}
305 1.1 christos };
306 1.10 christos const size_t md_longopts_size = sizeof (md_longopts);
307 1.1 christos
308 1.1 christos int
309 1.5 christos md_parse_option (int c, const char * arg ATTRIBUTE_UNUSED)
310 1.1 christos {
311 1.1 christos switch (c)
312 1.1 christos {
313 1.1 christos case OPTION_RELAX:
314 1.1 christos linkrelax = 1;
315 1.1 christos return 1;
316 1.5 christos case OPTION_NORELAX:
317 1.5 christos linkrelax = 0;
318 1.5 christos return 1;
319 1.1 christos
320 1.3 christos case OPTION_G10:
321 1.3 christos elf_flags &= ~ E_FLAG_RL78_CPU_MASK;
322 1.3 christos elf_flags |= E_FLAG_RL78_G10;
323 1.3 christos return 1;
324 1.3 christos
325 1.3 christos case OPTION_G13:
326 1.3 christos elf_flags &= ~ E_FLAG_RL78_CPU_MASK;
327 1.3 christos elf_flags |= E_FLAG_RL78_G13;
328 1.3 christos return 1;
329 1.3 christos
330 1.3 christos case OPTION_G14:
331 1.3 christos elf_flags &= ~ E_FLAG_RL78_CPU_MASK;
332 1.3 christos elf_flags |= E_FLAG_RL78_G14;
333 1.3 christos return 1;
334 1.3 christos
335 1.3 christos case OPTION_32BIT_DOUBLES:
336 1.3 christos elf_flags &= ~ E_FLAG_RL78_64BIT_DOUBLES;
337 1.3 christos return 1;
338 1.3 christos
339 1.3 christos case OPTION_64BIT_DOUBLES:
340 1.3 christos elf_flags |= E_FLAG_RL78_64BIT_DOUBLES;
341 1.3 christos return 1;
342 1.1 christos }
343 1.1 christos return 0;
344 1.1 christos }
345 1.1 christos
346 1.3 christos int
347 1.3 christos rl78_isa_g10 (void)
348 1.3 christos {
349 1.3 christos return (elf_flags & E_FLAG_RL78_CPU_MASK) == E_FLAG_RL78_G10;
350 1.3 christos }
351 1.3 christos
352 1.3 christos int
353 1.3 christos rl78_isa_g13 (void)
354 1.3 christos {
355 1.3 christos return (elf_flags & E_FLAG_RL78_CPU_MASK) == E_FLAG_RL78_G13;
356 1.3 christos }
357 1.3 christos
358 1.3 christos int
359 1.3 christos rl78_isa_g14 (void)
360 1.3 christos {
361 1.3 christos return (elf_flags & E_FLAG_RL78_CPU_MASK) == E_FLAG_RL78_G14;
362 1.3 christos }
363 1.3 christos
364 1.1 christos void
365 1.3 christos md_show_usage (FILE * stream)
366 1.1 christos {
367 1.3 christos fprintf (stream, _(" RL78 specific command line options:\n"));
368 1.3 christos fprintf (stream, _(" --mrelax Enable link time relaxation\n"));
369 1.3 christos fprintf (stream, _(" --mg10 Enable support for G10 variant\n"));
370 1.3 christos fprintf (stream, _(" --mg13 Selects the G13 core.\n"));
371 1.3 christos fprintf (stream, _(" --mg14 Selects the G14 core [default]\n"));
372 1.3 christos fprintf (stream, _(" --mrl78 Alias for --mg14\n"));
373 1.3 christos fprintf (stream, _(" --m32bit-doubles [default]\n"));
374 1.3 christos fprintf (stream, _(" --m64bit-doubles Source code uses 64-bit doubles\n"));
375 1.1 christos }
376 1.1 christos
377 1.1 christos static void
378 1.3 christos rl78_float_cons (int ignore ATTRIBUTE_UNUSED)
379 1.3 christos {
380 1.3 christos if (elf_flags & E_FLAG_RL78_64BIT_DOUBLES)
381 1.3 christos return float_cons ('d');
382 1.3 christos return float_cons ('f');
383 1.3 christos }
384 1.3 christos
385 1.1 christos /* The target specific pseudo-ops which we support. */
386 1.1 christos const pseudo_typeS md_pseudo_table[] =
387 1.1 christos {
388 1.3 christos /* Our "standard" pseudos. */
389 1.3 christos { "double", rl78_float_cons, 'd' },
390 1.3 christos { "3byte", cons, 3 },
391 1.3 christos { "int", cons, 4 },
392 1.3 christos { "word", cons, 4 },
393 1.1 christos
394 1.1 christos /* End of list marker. */
395 1.1 christos { NULL, NULL, 0 }
396 1.1 christos };
397 1.1 christos
398 1.3 christos static symbolS * rl78_abs_sym = NULL;
399 1.3 christos
400 1.1 christos void
401 1.1 christos md_begin (void)
402 1.1 christos {
403 1.3 christos rl78_abs_sym = symbol_make ("__rl78_abs__");
404 1.1 christos }
405 1.1 christos
406 1.1 christos void
407 1.1 christos rl78_md_end (void)
408 1.1 christos {
409 1.1 christos }
410 1.1 christos
411 1.3 christos /* Set the ELF specific flags. */
412 1.3 christos void
413 1.3 christos rl78_elf_final_processing (void)
414 1.3 christos {
415 1.3 christos elf_elfheader (stdoutput)->e_flags |= elf_flags;
416 1.3 christos }
417 1.3 christos
418 1.1 christos /* Write a value out to the object file, using the appropriate endianness. */
419 1.1 christos void
420 1.1 christos md_number_to_chars (char * buf, valueT val, int n)
421 1.1 christos {
422 1.1 christos number_to_chars_littleendian (buf, val, n);
423 1.1 christos }
424 1.1 christos
425 1.3 christos static void
426 1.5 christos require_end_of_expr (const char *fname)
427 1.3 christos {
428 1.10 christos while (is_whitespace (* input_line_pointer))
429 1.3 christos input_line_pointer ++;
430 1.3 christos
431 1.10 christos if (is_end_of_stmt (* input_line_pointer)
432 1.10 christos || * input_line_pointer == ','
433 1.3 christos || strchr (comment_chars, * input_line_pointer)
434 1.10 christos || strchr (line_comment_chars, * input_line_pointer))
435 1.3 christos return;
436 1.3 christos
437 1.3 christos as_bad (_("%%%s() must be outermost term in expression"), fname);
438 1.3 christos }
439 1.3 christos
440 1.1 christos static struct
441 1.1 christos {
442 1.5 christos const char * fname;
443 1.1 christos int reloc;
444 1.1 christos }
445 1.1 christos reloc_functions[] =
446 1.1 christos {
447 1.3 christos { "code", BFD_RELOC_RL78_CODE },
448 1.1 christos { "lo16", BFD_RELOC_RL78_LO16 },
449 1.1 christos { "hi16", BFD_RELOC_RL78_HI16 },
450 1.1 christos { "hi8", BFD_RELOC_RL78_HI8 },
451 1.1 christos { 0, 0 }
452 1.1 christos };
453 1.1 christos
454 1.1 christos void
455 1.1 christos md_operand (expressionS * exp ATTRIBUTE_UNUSED)
456 1.1 christos {
457 1.1 christos int reloc = 0;
458 1.1 christos int i;
459 1.1 christos
460 1.1 christos for (i = 0; reloc_functions[i].fname; i++)
461 1.1 christos {
462 1.1 christos int flen = strlen (reloc_functions[i].fname);
463 1.1 christos
464 1.1 christos if (input_line_pointer[0] == '%'
465 1.1 christos && strncasecmp (input_line_pointer + 1, reloc_functions[i].fname, flen) == 0
466 1.1 christos && input_line_pointer[flen + 1] == '(')
467 1.1 christos {
468 1.1 christos reloc = reloc_functions[i].reloc;
469 1.1 christos input_line_pointer += flen + 2;
470 1.1 christos break;
471 1.1 christos }
472 1.1 christos }
473 1.1 christos if (reloc == 0)
474 1.1 christos return;
475 1.1 christos
476 1.1 christos expression (exp);
477 1.1 christos if (* input_line_pointer == ')')
478 1.1 christos input_line_pointer ++;
479 1.1 christos
480 1.1 christos exp->X_md = reloc;
481 1.3 christos
482 1.3 christos require_end_of_expr (reloc_functions[i].fname);
483 1.1 christos }
484 1.1 christos
485 1.1 christos void
486 1.1 christos rl78_frag_init (fragS * fragP)
487 1.1 christos {
488 1.1 christos if (rl78_bytes.n_relax || rl78_bytes.link_relax)
489 1.1 christos {
490 1.5 christos fragP->tc_frag_data = XNEW (rl78_bytesT);
491 1.1 christos memcpy (fragP->tc_frag_data, & rl78_bytes, sizeof (rl78_bytesT));
492 1.1 christos }
493 1.1 christos else
494 1.1 christos fragP->tc_frag_data = 0;
495 1.1 christos }
496 1.1 christos
497 1.1 christos /* When relaxing, we need to output a reloc for any .align directive
498 1.1 christos so that we can retain this alignment as we adjust opcode sizes. */
499 1.1 christos void
500 1.1 christos rl78_handle_align (fragS * frag)
501 1.1 christos {
502 1.1 christos if (linkrelax
503 1.1 christos && (frag->fr_type == rs_align
504 1.1 christos || frag->fr_type == rs_align_code)
505 1.1 christos && frag->fr_address + frag->fr_fix > 0
506 1.1 christos && frag->fr_offset > 0
507 1.1 christos && now_seg != bss_section)
508 1.1 christos {
509 1.1 christos fix_new (frag, frag->fr_fix, 0,
510 1.1 christos &abs_symbol, RL78_RELAXA_ALIGN + frag->fr_offset,
511 1.1 christos 0, BFD_RELOC_RL78_RELAX);
512 1.1 christos /* For the purposes of relaxation, this relocation is attached
513 1.1 christos to the byte *after* the alignment - i.e. the byte that must
514 1.1 christos remain aligned. */
515 1.1 christos fix_new (frag->fr_next, 0, 0,
516 1.1 christos &abs_symbol, RL78_RELAXA_ELIGN + frag->fr_offset,
517 1.1 christos 0, BFD_RELOC_RL78_RELAX);
518 1.1 christos }
519 1.1 christos }
520 1.1 christos
521 1.5 christos const char *
522 1.1 christos md_atof (int type, char * litP, int * sizeP)
523 1.1 christos {
524 1.1 christos return ieee_md_atof (type, litP, sizeP, target_big_endian);
525 1.1 christos }
526 1.1 christos
527 1.1 christos symbolS *
528 1.1 christos md_undefined_symbol (char * name ATTRIBUTE_UNUSED)
529 1.1 christos {
530 1.1 christos return NULL;
531 1.1 christos }
532 1.1 christos
533 1.1 christos #define APPEND(B, N_B) \
534 1.1 christos if (rl78_bytes.N_B) \
535 1.1 christos { \
536 1.1 christos memcpy (bytes + idx, rl78_bytes.B, rl78_bytes.N_B); \
537 1.1 christos idx += rl78_bytes.N_B; \
538 1.1 christos }
539 1.1 christos
540 1.1 christos
541 1.1 christos void
542 1.1 christos md_assemble (char * str)
543 1.1 christos {
544 1.1 christos char * bytes;
545 1.1 christos fragS * frag_then = frag_now;
546 1.1 christos int idx = 0;
547 1.1 christos int i;
548 1.1 christos int rel;
549 1.1 christos expressionS *exp;
550 1.1 christos
551 1.1 christos /*printf("\033[32mASM: %s\033[0m\n", str);*/
552 1.1 christos
553 1.1 christos dwarf2_emit_insn (0);
554 1.1 christos
555 1.1 christos memset (& rl78_bytes, 0, sizeof (rl78_bytes));
556 1.1 christos
557 1.1 christos rl78_lex_init (str, str + strlen (str));
558 1.1 christos
559 1.1 christos rl78_parse ();
560 1.1 christos
561 1.1 christos /* This simplifies the relaxation code. */
562 1.3 christos if (rl78_bytes.n_relax || rl78_bytes.link_relax)
563 1.1 christos {
564 1.1 christos int olen = rl78_bytes.n_prefix + rl78_bytes.n_base + rl78_bytes.n_ops;
565 1.1 christos /* We do it this way because we want the frag to have the
566 1.3 christos rl78_bytes in it, which we initialize above. The extra bytes
567 1.3 christos are for relaxing. */
568 1.3 christos bytes = frag_more (olen + 3);
569 1.1 christos frag_then = frag_now;
570 1.1 christos frag_variant (rs_machine_dependent,
571 1.1 christos olen /* max_chars */,
572 1.1 christos 0 /* var */,
573 1.1 christos olen /* subtype */,
574 1.1 christos 0 /* symbol */,
575 1.1 christos 0 /* offset */,
576 1.1 christos 0 /* opcode */);
577 1.1 christos frag_then->fr_opcode = bytes;
578 1.1 christos frag_then->fr_fix = olen + (bytes - frag_then->fr_literal);
579 1.1 christos frag_then->fr_subtype = olen;
580 1.1 christos frag_then->fr_var = 0;
581 1.1 christos }
582 1.1 christos else
583 1.1 christos {
584 1.1 christos bytes = frag_more (rl78_bytes.n_prefix + rl78_bytes.n_base + rl78_bytes.n_ops);
585 1.1 christos frag_then = frag_now;
586 1.1 christos }
587 1.1 christos
588 1.1 christos APPEND (prefix, n_prefix);
589 1.1 christos APPEND (base, n_base);
590 1.1 christos APPEND (ops, n_ops);
591 1.1 christos
592 1.1 christos if (rl78_bytes.link_relax)
593 1.1 christos {
594 1.1 christos fixS * f;
595 1.1 christos
596 1.1 christos f = fix_new (frag_then,
597 1.1 christos (char *) bytes - frag_then->fr_literal,
598 1.1 christos 0,
599 1.1 christos abs_section_sym,
600 1.1 christos rl78_bytes.link_relax | rl78_bytes.n_fixups,
601 1.1 christos 0,
602 1.1 christos BFD_RELOC_RL78_RELAX);
603 1.1 christos frag_then->tc_frag_data->link_relax_fixP = f;
604 1.1 christos }
605 1.1 christos
606 1.1 christos for (i = 0; i < rl78_bytes.n_fixups; i ++)
607 1.1 christos {
608 1.1 christos /* index: [nbytes][type] */
609 1.1 christos static int reloc_map[5][4] =
610 1.1 christos {
611 1.1 christos { 0, 0 },
612 1.1 christos { BFD_RELOC_8, BFD_RELOC_8_PCREL },
613 1.1 christos { BFD_RELOC_16, BFD_RELOC_16_PCREL },
614 1.1 christos { BFD_RELOC_24, BFD_RELOC_24_PCREL },
615 1.1 christos { BFD_RELOC_32, BFD_RELOC_32_PCREL },
616 1.1 christos };
617 1.1 christos fixS * f;
618 1.1 christos
619 1.1 christos idx = rl78_bytes.fixups[i].offset / 8;
620 1.1 christos rel = reloc_map [rl78_bytes.fixups[i].nbits / 8][(int) rl78_bytes.fixups[i].type];
621 1.1 christos
622 1.1 christos if (rl78_bytes.fixups[i].reloc)
623 1.1 christos rel = rl78_bytes.fixups[i].reloc;
624 1.1 christos
625 1.1 christos if (frag_then->tc_frag_data)
626 1.1 christos exp = & frag_then->tc_frag_data->fixups[i].exp;
627 1.1 christos else
628 1.1 christos exp = & rl78_bytes.fixups[i].exp;
629 1.1 christos
630 1.1 christos f = fix_new_exp (frag_then,
631 1.1 christos (char *) bytes + idx - frag_then->fr_literal,
632 1.1 christos rl78_bytes.fixups[i].nbits / 8,
633 1.1 christos exp,
634 1.1 christos rl78_bytes.fixups[i].type == RL78REL_PCREL ? 1 : 0,
635 1.1 christos rel);
636 1.1 christos if (frag_then->tc_frag_data)
637 1.1 christos frag_then->tc_frag_data->fixups[i].fixP = f;
638 1.1 christos }
639 1.1 christos }
640 1.1 christos
641 1.1 christos void
642 1.1 christos rl78_cons_fix_new (fragS * frag,
643 1.1 christos int where,
644 1.1 christos int size,
645 1.1 christos expressionS * exp)
646 1.1 christos {
647 1.1 christos bfd_reloc_code_real_type type;
648 1.3 christos fixS *fixP;
649 1.1 christos
650 1.1 christos switch (size)
651 1.1 christos {
652 1.1 christos case 1:
653 1.1 christos type = BFD_RELOC_8;
654 1.1 christos break;
655 1.1 christos case 2:
656 1.1 christos type = BFD_RELOC_16;
657 1.1 christos break;
658 1.1 christos case 3:
659 1.1 christos type = BFD_RELOC_24;
660 1.1 christos break;
661 1.1 christos case 4:
662 1.1 christos type = BFD_RELOC_32;
663 1.1 christos break;
664 1.1 christos default:
665 1.1 christos as_bad (_("unsupported constant size %d\n"), size);
666 1.1 christos return;
667 1.1 christos }
668 1.1 christos
669 1.3 christos switch (exp->X_md)
670 1.3 christos {
671 1.3 christos case BFD_RELOC_RL78_CODE:
672 1.3 christos if (size == 2)
673 1.3 christos type = exp->X_md;
674 1.3 christos break;
675 1.3 christos case BFD_RELOC_RL78_LO16:
676 1.3 christos case BFD_RELOC_RL78_HI16:
677 1.3 christos if (size != 2)
678 1.3 christos {
679 1.3 christos /* Fixups to assembler generated expressions do not use %hi or %lo. */
680 1.3 christos if (frag->fr_file)
681 1.3 christos as_bad (_("%%hi16/%%lo16 only applies to .short or .hword"));
682 1.3 christos }
683 1.3 christos else
684 1.3 christos type = exp->X_md;
685 1.3 christos break;
686 1.3 christos case BFD_RELOC_RL78_HI8:
687 1.3 christos if (size != 1)
688 1.3 christos {
689 1.3 christos /* Fixups to assembler generated expressions do not use %hi or %lo. */
690 1.3 christos if (frag->fr_file)
691 1.3 christos as_bad (_("%%hi8 only applies to .byte"));
692 1.3 christos }
693 1.3 christos else
694 1.3 christos type = exp->X_md;
695 1.3 christos break;
696 1.3 christos default:
697 1.3 christos break;
698 1.3 christos }
699 1.3 christos
700 1.1 christos if (exp->X_op == O_subtract && exp->X_op_symbol)
701 1.1 christos {
702 1.1 christos if (size != 4 && size != 2 && size != 1)
703 1.1 christos as_bad (_("difference of two symbols only supported with .long, .short, or .byte"));
704 1.1 christos else
705 1.1 christos type = BFD_RELOC_RL78_DIFF;
706 1.1 christos }
707 1.1 christos
708 1.10 christos fixP = fix_new_exp (frag, where, size, exp, 0, type);
709 1.3 christos switch (exp->X_md)
710 1.3 christos {
711 1.3 christos /* These are intended to have values larger than the container,
712 1.3 christos since the backend puts only the portion we need in it.
713 1.3 christos However, we don't have a backend-specific reloc for them as
714 1.3 christos they're handled with complex relocations. */
715 1.3 christos case BFD_RELOC_RL78_LO16:
716 1.3 christos case BFD_RELOC_RL78_HI16:
717 1.3 christos case BFD_RELOC_RL78_HI8:
718 1.3 christos fixP->fx_no_overflow = 1;
719 1.3 christos break;
720 1.3 christos default:
721 1.3 christos break;
722 1.3 christos }
723 1.3 christos }
724 1.3 christos
725 1.3 christos
726 1.3 christos /*----------------------------------------------------------------------*/
728 1.3 christos /* To recap: we estimate everything based on md_estimate_size, then
729 1.3 christos adjust based on rl78_relax_frag. When it all settles, we call
730 1.3 christos md_convert frag to update the bytes. The relaxation types and
731 1.3 christos relocations are in fragP->tc_frag_data, which is a copy of that
732 1.3 christos rl78_bytes.
733 1.3 christos
734 1.3 christos Our scheme is as follows: fr_fix has the size of the smallest
735 1.3 christos opcode (like BRA.S). We store the number of total bytes we need in
736 1.3 christos fr_subtype. When we're done relaxing, we use fr_subtype and the
737 1.3 christos existing opcode bytes to figure out what actual opcode we need to
738 1.3 christos put in there. If the fixup isn't resolvable now, we use the
739 1.3 christos maximal size. */
740 1.3 christos
741 1.3 christos #define TRACE_RELAX 0
742 1.3 christos #define tprintf if (TRACE_RELAX) printf
743 1.3 christos
744 1.3 christos
745 1.3 christos typedef enum
746 1.3 christos {
747 1.3 christos OT_other,
748 1.3 christos OT_bt,
749 1.3 christos OT_bt_sfr,
750 1.3 christos OT_bt_es,
751 1.5 christos OT_bc,
752 1.5 christos OT_bh,
753 1.5 christos OT_sk,
754 1.5 christos OT_call,
755 1.3 christos OT_br,
756 1.3 christos } op_type_T;
757 1.3 christos
758 1.3 christos /* We're looking for these types of relaxations:
759 1.3 christos
760 1.3 christos BT 00110001 sbit0cc1 addr---- (cc is 10 (BF) or 01 (BT))
761 1.3 christos B~T 00110001 sbit0cc1 00000011 11101110 pcrel16- -------- (BR $!pcrel20)
762 1.3 christos
763 1.3 christos BT sfr 00110001 sbit0cc0 sfr----- addr----
764 1.3 christos BT ES: 00010001 00101110 sbit0cc1 addr----
765 1.3 christos
766 1.3 christos BC 110111cc addr----
767 1.3 christos B~C 110111cc 00000011 11101110 pcrel16- -------- (BR $!pcrel20)
768 1.3 christos
769 1.3 christos BH 01100001 110c0011 00000011 11101110 pcrel16- -------- (BR $!pcrel20)
770 1.3 christos B~H 01100001 110c0011 00000011 11101110 pcrel16- -------- (BR $!pcrel20)
771 1.3 christos */
772 1.3 christos
773 1.3 christos /* Given the opcode bytes at OP, figure out which opcode it is and
774 1.3 christos return the type of opcode. We use this to re-encode the opcode as
775 1.3 christos a different size later. */
776 1.3 christos
777 1.5 christos static op_type_T
778 1.3 christos rl78_opcode_type (char * ops)
779 1.5 christos {
780 1.5 christos unsigned char *op = (unsigned char *)ops;
781 1.3 christos
782 1.3 christos if (op[0] == 0x31
783 1.3 christos && ((op[1] & 0x0f) == 0x05
784 1.3 christos || (op[1] & 0x0f) == 0x03))
785 1.3 christos return OT_bt;
786 1.3 christos
787 1.3 christos if (op[0] == 0x31
788 1.3 christos && ((op[1] & 0x0f) == 0x04
789 1.3 christos || (op[1] & 0x0f) == 0x02))
790 1.3 christos return OT_bt_sfr;
791 1.3 christos
792 1.3 christos if (op[0] == 0x11
793 1.3 christos && op[1] == 0x31
794 1.3 christos && ((op[2] & 0x0f) == 0x05
795 1.3 christos || (op[2] & 0x0f) == 0x03))
796 1.3 christos return OT_bt_es;
797 1.3 christos
798 1.3 christos if ((op[0] & 0xfc) == 0xdc)
799 1.3 christos return OT_bc;
800 1.3 christos
801 1.3 christos if (op[0] == 0x61
802 1.3 christos && (op[1] & 0xef) == 0xc3)
803 1.3 christos return OT_bh;
804 1.5 christos
805 1.5 christos if (op[0] == 0x61
806 1.5 christos && (op[1] & 0xcf) == 0xc8)
807 1.5 christos return OT_sk;
808 1.5 christos
809 1.5 christos if (op[0] == 0x61
810 1.5 christos && (op[1] & 0xef) == 0xe3)
811 1.5 christos return OT_sk;
812 1.5 christos
813 1.5 christos if (op[0] == 0xfc)
814 1.5 christos return OT_call;
815 1.5 christos
816 1.5 christos if ((op[0] & 0xec) == 0xec)
817 1.5 christos return OT_br;
818 1.3 christos
819 1.3 christos return OT_other;
820 1.3 christos }
821 1.3 christos
822 1.3 christos /* Returns zero if *addrP has the target address. Else returns nonzero
823 1.3 christos if we cannot compute the target address yet. */
824 1.3 christos
825 1.3 christos static int
826 1.3 christos rl78_frag_fix_value (fragS * fragP,
827 1.3 christos segT segment,
828 1.3 christos int which,
829 1.3 christos addressT * addrP,
830 1.3 christos int need_diff,
831 1.3 christos addressT * sym_addr)
832 1.3 christos {
833 1.3 christos addressT addr = 0;
834 1.3 christos rl78_bytesT * b = fragP->tc_frag_data;
835 1.3 christos expressionS * exp = & b->fixups[which].exp;
836 1.3 christos
837 1.3 christos if (need_diff && exp->X_op != O_subtract)
838 1.3 christos return 1;
839 1.3 christos
840 1.3 christos if (exp->X_add_symbol)
841 1.3 christos {
842 1.3 christos if (S_FORCE_RELOC (exp->X_add_symbol, 1))
843 1.3 christos return 1;
844 1.3 christos if (S_GET_SEGMENT (exp->X_add_symbol) != segment)
845 1.3 christos return 1;
846 1.3 christos addr += S_GET_VALUE (exp->X_add_symbol);
847 1.3 christos }
848 1.3 christos
849 1.3 christos if (exp->X_op_symbol)
850 1.3 christos {
851 1.3 christos if (exp->X_op != O_subtract)
852 1.3 christos return 1;
853 1.3 christos if (S_FORCE_RELOC (exp->X_op_symbol, 1))
854 1.3 christos return 1;
855 1.3 christos if (S_GET_SEGMENT (exp->X_op_symbol) != segment)
856 1.3 christos return 1;
857 1.3 christos addr -= S_GET_VALUE (exp->X_op_symbol);
858 1.3 christos }
859 1.3 christos if (sym_addr)
860 1.3 christos * sym_addr = addr;
861 1.3 christos addr += exp->X_add_number;
862 1.3 christos * addrP = addr;
863 1.1 christos return 0;
864 1.1 christos }
865 1.3 christos
866 1.3 christos /* Estimate how big the opcode is after this relax pass. The return
867 1.3 christos value is the difference between fr_fix and the actual size. We
868 1.3 christos compute the total size in rl78_relax_frag and store it in fr_subtype,
869 1.3 christos so we only need to subtract fx_fix and return it. */
870 1.1 christos
871 1.1 christos int
872 1.1 christos md_estimate_size_before_relax (fragS * fragP ATTRIBUTE_UNUSED, segT segment ATTRIBUTE_UNUSED)
873 1.3 christos {
874 1.3 christos int opfixsize;
875 1.3 christos int delta;
876 1.3 christos
877 1.3 christos /* This is the size of the opcode that's accounted for in fr_fix. */
878 1.3 christos opfixsize = fragP->fr_fix - (fragP->fr_opcode - fragP->fr_literal);
879 1.3 christos /* This is the size of the opcode that isn't. */
880 1.3 christos delta = (fragP->fr_subtype - opfixsize);
881 1.3 christos
882 1.3 christos tprintf (" -> opfixsize %d delta %d\n", opfixsize, delta);
883 1.3 christos return delta;
884 1.3 christos }
885 1.3 christos
886 1.3 christos /* Given the new addresses for this relax pass, figure out how big
887 1.3 christos each opcode must be. We store the total number of bytes needed in
888 1.3 christos fr_subtype. The return value is the difference between the size
889 1.3 christos after the last pass and the size after this pass, so we use the old
890 1.3 christos fr_subtype to calculate the difference. */
891 1.3 christos
892 1.3 christos int
893 1.3 christos rl78_relax_frag (segT segment ATTRIBUTE_UNUSED, fragS * fragP, long stretch)
894 1.3 christos {
895 1.3 christos addressT addr0, sym_addr;
896 1.3 christos addressT mypc;
897 1.3 christos int disp;
898 1.3 christos int oldsize = fragP->fr_subtype;
899 1.3 christos int newsize = oldsize;
900 1.3 christos op_type_T optype;
901 1.3 christos int ri;
902 1.3 christos
903 1.3 christos mypc = fragP->fr_address + (fragP->fr_opcode - fragP->fr_literal);
904 1.3 christos
905 1.3 christos /* If we ever get more than one reloc per opcode, this is the one
906 1.3 christos we're relaxing. */
907 1.3 christos ri = 0;
908 1.3 christos
909 1.3 christos optype = rl78_opcode_type (fragP->fr_opcode);
910 1.3 christos /* Try to get the target address. */
911 1.3 christos if (rl78_frag_fix_value (fragP, segment, ri, & addr0,
912 1.3 christos fragP->tc_frag_data->relax[ri].type != RL78_RELAX_BRANCH,
913 1.3 christos & sym_addr))
914 1.5 christos {
915 1.5 christos /* If we don't expect the linker to do relaxing, don't emit
916 1.5 christos expanded opcodes that only the linker will relax. */
917 1.5 christos if (!linkrelax)
918 1.5 christos return newsize - oldsize;
919 1.3 christos
920 1.3 christos /* If we don't, we must use the maximum size for the linker. */
921 1.3 christos switch (fragP->tc_frag_data->relax[ri].type)
922 1.3 christos {
923 1.3 christos case RL78_RELAX_BRANCH:
924 1.3 christos switch (optype)
925 1.3 christos {
926 1.3 christos case OT_bt:
927 1.3 christos newsize = 6;
928 1.3 christos break;
929 1.3 christos case OT_bt_sfr:
930 1.3 christos case OT_bt_es:
931 1.3 christos newsize = 7;
932 1.3 christos break;
933 1.3 christos case OT_bc:
934 1.3 christos newsize = 5;
935 1.3 christos break;
936 1.3 christos case OT_bh:
937 1.3 christos newsize = 6;
938 1.5 christos break;
939 1.5 christos case OT_sk:
940 1.5 christos newsize = 2;
941 1.5 christos break;
942 1.3 christos default:
943 1.3 christos newsize = oldsize;
944 1.3 christos break;
945 1.3 christos }
946 1.3 christos break;
947 1.3 christos
948 1.3 christos }
949 1.3 christos fragP->fr_subtype = newsize;
950 1.3 christos tprintf (" -> new %d old %d delta %d (external)\n", newsize, oldsize, newsize-oldsize);
951 1.3 christos return newsize - oldsize;
952 1.3 christos }
953 1.3 christos
954 1.3 christos if (sym_addr > mypc)
955 1.3 christos addr0 += stretch;
956 1.3 christos
957 1.3 christos switch (fragP->tc_frag_data->relax[ri].type)
958 1.3 christos {
959 1.3 christos case RL78_RELAX_BRANCH:
960 1.3 christos disp = (int) addr0 - (int) mypc;
961 1.3 christos
962 1.3 christos switch (optype)
963 1.3 christos {
964 1.3 christos case OT_bt:
965 1.3 christos if (disp >= -128 && (disp - (oldsize-2)) <= 127)
966 1.3 christos newsize = 3;
967 1.3 christos else
968 1.3 christos newsize = 6;
969 1.3 christos break;
970 1.3 christos case OT_bt_sfr:
971 1.3 christos case OT_bt_es:
972 1.3 christos if (disp >= -128 && (disp - (oldsize-3)) <= 127)
973 1.3 christos newsize = 4;
974 1.3 christos else
975 1.3 christos newsize = 7;
976 1.3 christos break;
977 1.3 christos case OT_bc:
978 1.3 christos if (disp >= -128 && (disp - (oldsize-1)) <= 127)
979 1.3 christos newsize = 2;
980 1.3 christos else
981 1.3 christos newsize = 5;
982 1.3 christos break;
983 1.3 christos case OT_bh:
984 1.3 christos if (disp >= -128 && (disp - (oldsize-2)) <= 127)
985 1.3 christos newsize = 3;
986 1.3 christos else
987 1.3 christos newsize = 6;
988 1.5 christos break;
989 1.5 christos case OT_sk:
990 1.5 christos newsize = 2;
991 1.5 christos break;
992 1.3 christos default:
993 1.3 christos newsize = oldsize;
994 1.3 christos break;
995 1.3 christos }
996 1.3 christos break;
997 1.3 christos }
998 1.3 christos
999 1.3 christos /* This prevents infinite loops in align-heavy sources. */
1000 1.3 christos if (newsize < oldsize)
1001 1.3 christos {
1002 1.3 christos if (fragP->tc_frag_data->times_shrank > 10
1003 1.3 christos && fragP->tc_frag_data->times_grown > 10)
1004 1.3 christos newsize = oldsize;
1005 1.3 christos if (fragP->tc_frag_data->times_shrank < 20)
1006 1.3 christos fragP->tc_frag_data->times_shrank ++;
1007 1.3 christos }
1008 1.3 christos else if (newsize > oldsize)
1009 1.3 christos {
1010 1.3 christos if (fragP->tc_frag_data->times_grown < 20)
1011 1.3 christos fragP->tc_frag_data->times_grown ++;
1012 1.3 christos }
1013 1.3 christos
1014 1.3 christos fragP->fr_subtype = newsize;
1015 1.3 christos tprintf (" -> new %d old %d delta %d\n", newsize, oldsize, newsize-oldsize);
1016 1.1 christos return newsize - oldsize;
1017 1.1 christos }
1018 1.3 christos
1019 1.3 christos /* This lets us test for the opcode type and the desired size in a
1020 1.3 christos switch statement. */
1021 1.3 christos #define OPCODE(type,size) ((type) * 16 + (size))
1022 1.3 christos
1023 1.3 christos /* Given the opcode stored in fr_opcode and the number of bytes we
1024 1.3 christos think we need, encode a new opcode. We stored a pointer to the
1025 1.3 christos fixup for this opcode in the tc_frag_data structure. If we can do
1026 1.3 christos the fixup here, we change the relocation type to "none" (we test
1027 1.3 christos for that in tc_gen_reloc) else we change it to the right type for
1028 1.3 christos the new (biggest) opcode. */
1029 1.3 christos
1030 1.3 christos void
1031 1.3 christos md_convert_frag (bfd * abfd ATTRIBUTE_UNUSED,
1032 1.3 christos segT segment ATTRIBUTE_UNUSED,
1033 1.3 christos fragS * fragP ATTRIBUTE_UNUSED)
1034 1.3 christos {
1035 1.3 christos rl78_bytesT * rl78b = fragP->tc_frag_data;
1036 1.3 christos addressT addr0, mypc;
1037 1.3 christos int disp;
1038 1.3 christos int reloc_type, reloc_adjust;
1039 1.3 christos char * op = fragP->fr_opcode;
1040 1.3 christos int keep_reloc = 0;
1041 1.3 christos int ri;
1042 1.3 christos int fi = (rl78b->n_fixups > 1) ? 1 : 0;
1043 1.3 christos fixS * fix = rl78b->fixups[fi].fixP;
1044 1.3 christos
1045 1.3 christos /* If we ever get more than one reloc per opcode, this is the one
1046 1.3 christos we're relaxing. */
1047 1.3 christos ri = 0;
1048 1.3 christos
1049 1.3 christos /* We used a new frag for this opcode, so the opcode address should
1050 1.3 christos be the frag address. */
1051 1.3 christos mypc = fragP->fr_address + (fragP->fr_opcode - fragP->fr_literal);
1052 1.3 christos tprintf ("\033[32mmypc: 0x%x\033[0m\n", (int)mypc);
1053 1.3 christos
1054 1.3 christos /* Try to get the target address. If we fail here, we just use the
1055 1.3 christos largest format. */
1056 1.3 christos if (rl78_frag_fix_value (fragP, segment, 0, & addr0,
1057 1.3 christos fragP->tc_frag_data->relax[ri].type != RL78_RELAX_BRANCH, 0))
1058 1.3 christos {
1059 1.3 christos /* We don't know the target address. */
1060 1.3 christos keep_reloc = 1;
1061 1.3 christos addr0 = 0;
1062 1.3 christos disp = 0;
1063 1.3 christos tprintf ("unknown addr ? - %x = ?\n", (int)mypc);
1064 1.3 christos }
1065 1.3 christos else
1066 1.3 christos {
1067 1.3 christos /* We know the target address, and it's in addr0. */
1068 1.3 christos disp = (int) addr0 - (int) mypc;
1069 1.3 christos tprintf ("known addr %x - %x = %d\n", (int)addr0, (int)mypc, disp);
1070 1.3 christos }
1071 1.3 christos
1072 1.3 christos if (linkrelax)
1073 1.3 christos keep_reloc = 1;
1074 1.3 christos
1075 1.3 christos reloc_type = BFD_RELOC_NONE;
1076 1.3 christos reloc_adjust = 0;
1077 1.3 christos
1078 1.3 christos switch (fragP->tc_frag_data->relax[ri].type)
1079 1.3 christos {
1080 1.3 christos case RL78_RELAX_BRANCH:
1081 1.3 christos switch (OPCODE (rl78_opcode_type (fragP->fr_opcode), fragP->fr_subtype))
1082 1.3 christos {
1083 1.3 christos
1084 1.3 christos case OPCODE (OT_bt, 3): /* BT A,$ - no change. */
1085 1.3 christos disp -= 3;
1086 1.5 christos op[2] = disp;
1087 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_8_PCREL : BFD_RELOC_NONE;
1088 1.3 christos break;
1089 1.3 christos
1090 1.3 christos case OPCODE (OT_bt, 6): /* BT A,$ - long version. */
1091 1.3 christos disp -= 3;
1092 1.3 christos op[1] ^= 0x06; /* toggle conditional. */
1093 1.3 christos op[2] = 3; /* displacement over long branch. */
1094 1.3 christos disp -= 3;
1095 1.3 christos op[3] = 0xEE; /* BR $!addr20 */
1096 1.3 christos op[4] = disp & 0xff;
1097 1.3 christos op[5] = disp >> 8;
1098 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_16_PCREL : BFD_RELOC_NONE;
1099 1.3 christos reloc_adjust = 2;
1100 1.3 christos break;
1101 1.3 christos
1102 1.3 christos case OPCODE (OT_bt_sfr, 4): /* BT PSW,$ - no change. */
1103 1.3 christos disp -= 4;
1104 1.5 christos op[3] = disp;
1105 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_8_PCREL : BFD_RELOC_NONE;
1106 1.3 christos break;
1107 1.3 christos
1108 1.3 christos case OPCODE (OT_bt_sfr, 7): /* BT PSW,$ - long version. */
1109 1.3 christos disp -= 4;
1110 1.3 christos op[1] ^= 0x06; /* toggle conditional. */
1111 1.3 christos op[3] = 3; /* displacement over long branch. */
1112 1.3 christos disp -= 3;
1113 1.3 christos op[4] = 0xEE; /* BR $!addr20 */
1114 1.3 christos op[5] = disp & 0xff;
1115 1.3 christos op[6] = disp >> 8;
1116 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_16_PCREL : BFD_RELOC_NONE;
1117 1.3 christos reloc_adjust = 2;
1118 1.3 christos break;
1119 1.3 christos
1120 1.3 christos case OPCODE (OT_bt_es, 4): /* BT ES:[HL],$ - no change. */
1121 1.3 christos disp -= 4;
1122 1.5 christos op[3] = disp;
1123 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_8_PCREL : BFD_RELOC_NONE;
1124 1.3 christos break;
1125 1.3 christos
1126 1.3 christos case OPCODE (OT_bt_es, 7): /* BT PSW,$ - long version. */
1127 1.3 christos disp -= 4;
1128 1.3 christos op[2] ^= 0x06; /* toggle conditional. */
1129 1.3 christos op[3] = 3; /* displacement over long branch. */
1130 1.3 christos disp -= 3;
1131 1.3 christos op[4] = 0xEE; /* BR $!addr20 */
1132 1.3 christos op[5] = disp & 0xff;
1133 1.3 christos op[6] = disp >> 8;
1134 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_16_PCREL : BFD_RELOC_NONE;
1135 1.3 christos reloc_adjust = 2;
1136 1.3 christos break;
1137 1.3 christos
1138 1.3 christos case OPCODE (OT_bc, 2): /* BC $ - no change. */
1139 1.3 christos disp -= 2;
1140 1.5 christos op[1] = disp;
1141 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_8_PCREL : BFD_RELOC_NONE;
1142 1.3 christos break;
1143 1.3 christos
1144 1.3 christos case OPCODE (OT_bc, 5): /* BC $ - long version. */
1145 1.3 christos disp -= 2;
1146 1.3 christos op[0] ^= 0x02; /* toggle conditional. */
1147 1.3 christos op[1] = 3;
1148 1.3 christos disp -= 3;
1149 1.3 christos op[2] = 0xEE; /* BR $!addr20 */
1150 1.3 christos op[3] = disp & 0xff;
1151 1.3 christos op[4] = disp >> 8;
1152 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_16_PCREL : BFD_RELOC_NONE;
1153 1.3 christos reloc_adjust = 2;
1154 1.3 christos break;
1155 1.3 christos
1156 1.3 christos case OPCODE (OT_bh, 3): /* BH $ - no change. */
1157 1.3 christos disp -= 3;
1158 1.5 christos op[2] = disp;
1159 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_8_PCREL : BFD_RELOC_NONE;
1160 1.3 christos break;
1161 1.3 christos
1162 1.3 christos case OPCODE (OT_bh, 6): /* BC $ - long version. */
1163 1.3 christos disp -= 3;
1164 1.3 christos op[1] ^= 0x10; /* toggle conditional. */
1165 1.3 christos op[2] = 3;
1166 1.3 christos disp -= 3;
1167 1.3 christos op[3] = 0xEE; /* BR $!addr20 */
1168 1.3 christos op[4] = disp & 0xff;
1169 1.3 christos op[5] = disp >> 8;
1170 1.3 christos reloc_type = keep_reloc ? BFD_RELOC_16_PCREL : BFD_RELOC_NONE;
1171 1.3 christos reloc_adjust = 2;
1172 1.3 christos break;
1173 1.5 christos
1174 1.5 christos case OPCODE (OT_sk, 2): /* SK<cond> - no change */
1175 1.5 christos reloc_type = keep_reloc ? BFD_RELOC_16_PCREL : BFD_RELOC_NONE;
1176 1.5 christos break;
1177 1.3 christos
1178 1.5 christos default:
1179 1.5 christos reloc_type = fix ? fix->fx_r_type : BFD_RELOC_NONE;
1180 1.3 christos break;
1181 1.3 christos }
1182 1.3 christos break;
1183 1.3 christos
1184 1.3 christos default:
1185 1.3 christos if (rl78b->n_fixups)
1186 1.3 christos {
1187 1.3 christos reloc_type = fix->fx_r_type;
1188 1.3 christos reloc_adjust = 0;
1189 1.3 christos }
1190 1.3 christos break;
1191 1.3 christos }
1192 1.3 christos
1193 1.3 christos if (rl78b->n_fixups)
1194 1.3 christos {
1195 1.3 christos
1196 1.3 christos fix->fx_r_type = reloc_type;
1197 1.3 christos fix->fx_where += reloc_adjust;
1198 1.3 christos switch (reloc_type)
1199 1.3 christos {
1200 1.3 christos case BFD_RELOC_NONE:
1201 1.3 christos fix->fx_size = 0;
1202 1.3 christos break;
1203 1.3 christos case BFD_RELOC_8:
1204 1.3 christos fix->fx_size = 1;
1205 1.3 christos break;
1206 1.3 christos case BFD_RELOC_16_PCREL:
1207 1.3 christos fix->fx_size = 2;
1208 1.3 christos break;
1209 1.3 christos }
1210 1.3 christos }
1211 1.3 christos
1212 1.3 christos fragP->fr_fix = fragP->fr_subtype + (fragP->fr_opcode - fragP->fr_literal);
1213 1.3 christos tprintf ("fragP->fr_fix now %ld (%d + (%p - %p)\n", (long) fragP->fr_fix,
1214 1.3 christos fragP->fr_subtype, fragP->fr_opcode, fragP->fr_literal);
1215 1.3 christos fragP->fr_var = 0;
1216 1.3 christos
1217 1.3 christos tprintf ("compare 0x%lx vs 0x%lx - 0x%lx = 0x%lx (%p)\n",
1218 1.3 christos (long)fragP->fr_fix,
1219 1.3 christos (long)fragP->fr_next->fr_address, (long)fragP->fr_address,
1220 1.3 christos (long)(fragP->fr_next->fr_address - fragP->fr_address),
1221 1.3 christos fragP->fr_next);
1222 1.3 christos
1223 1.7 christos if (fragP->fr_next != NULL
1224 1.3 christos && fragP->fr_next->fr_address - fragP->fr_address != fragP->fr_fix)
1225 1.3 christos as_bad (_("bad frag at %p : fix %ld addr %ld %ld \n"), fragP,
1226 1.3 christos (long) fragP->fr_fix,
1227 1.3 christos (long) fragP->fr_address, (long) fragP->fr_next->fr_address);
1228 1.3 christos }
1229 1.3 christos
1230 1.3 christos /* End of relaxation code.
1231 1.3 christos ----------------------------------------------------------------------*/
1232 1.3 christos
1233 1.1 christos
1235 1.1 christos arelent **
1236 1.1 christos tc_gen_reloc (asection * seg ATTRIBUTE_UNUSED, fixS * fixp)
1237 1.1 christos {
1238 1.1 christos static arelent * reloc[8];
1239 1.1 christos int rp;
1240 1.1 christos
1241 1.1 christos if (fixp->fx_r_type == BFD_RELOC_NONE)
1242 1.1 christos {
1243 1.1 christos reloc[0] = NULL;
1244 1.1 christos return reloc;
1245 1.5 christos }
1246 1.5 christos
1247 1.5 christos if (fixp->fx_r_type == BFD_RELOC_RL78_RELAX && !linkrelax)
1248 1.5 christos {
1249 1.5 christos reloc[0] = NULL;
1250 1.5 christos return reloc;
1251 1.1 christos }
1252 1.1 christos
1253 1.1 christos if (fixp->fx_subsy
1254 1.1 christos && S_GET_SEGMENT (fixp->fx_subsy) == absolute_section)
1255 1.1 christos {
1256 1.1 christos fixp->fx_offset -= S_GET_VALUE (fixp->fx_subsy);
1257 1.1 christos fixp->fx_subsy = NULL;
1258 1.10 christos }
1259 1.10 christos
1260 1.10 christos reloc[0] = notes_alloc (sizeof (arelent));
1261 1.10 christos reloc[0]->sym_ptr_ptr = notes_alloc (sizeof (asymbol *));
1262 1.10 christos *reloc[0]->sym_ptr_ptr = symbol_get_bfdsym (fixp->fx_addsy);
1263 1.1 christos reloc[0]->address = fixp->fx_frag->fr_address + fixp->fx_where;
1264 1.1 christos reloc[0]->addend = fixp->fx_offset;
1265 1.1 christos
1266 1.1 christos if (fixp->fx_r_type == BFD_RELOC_RL78_32_OP
1267 1.1 christos && fixp->fx_subsy)
1268 1.1 christos {
1269 1.1 christos fixp->fx_r_type = BFD_RELOC_RL78_DIFF;
1270 1.10 christos }
1271 1.10 christos
1272 1.10 christos #define OPX(REL,SYM,ADD) \
1273 1.10 christos reloc[rp] = notes_alloc (sizeof (arelent)); \
1274 1.10 christos reloc[rp]->sym_ptr_ptr = notes_alloc (sizeof (asymbol *)); \
1275 1.10 christos reloc[rp]->howto = bfd_reloc_type_lookup (stdoutput, REL); \
1276 1.10 christos reloc[rp]->addend = ADD; \
1277 1.1 christos *reloc[rp]->sym_ptr_ptr = SYM; \
1278 1.1 christos reloc[rp]->address = fixp->fx_frag->fr_address + fixp->fx_where; \
1279 1.3 christos reloc[++rp] = NULL
1280 1.3 christos #define OPSYM(SYM) OPX(BFD_RELOC_RL78_SYM, SYM, 0)
1281 1.3 christos
1282 1.3 christos /* FIXME: We cannot do the normal thing for an immediate value reloc,
1283 1.3 christos ie creating a RL78_SYM reloc in the *ABS* section with an offset
1284 1.3 christos equal to the immediate value we want to store. This fails because
1285 1.3 christos the reloc processing in bfd_perform_relocation and bfd_install_relocation
1286 1.3 christos will short circuit such relocs and never pass them on to the special
1287 1.3 christos reloc processing code. So instead we create a RL78_SYM reloc against
1288 1.3 christos the __rl78_abs__ symbol and arrange for the linker scripts to place
1289 1.3 christos this symbol at address 0. */
1290 1.1 christos #define OPIMM(IMM) OPX (BFD_RELOC_RL78_SYM, symbol_get_bfdsym (rl78_abs_sym), IMM)
1291 1.1 christos
1292 1.1 christos #define OP(OP) OPX(BFD_RELOC_RL78_##OP, *reloc[0]->sym_ptr_ptr, 0)
1293 1.1 christos #define SYM0() reloc[0]->howto = bfd_reloc_type_lookup (stdoutput, BFD_RELOC_RL78_SYM)
1294 1.1 christos
1295 1.1 christos rp = 1;
1296 1.1 christos
1297 1.1 christos /* Certain BFD relocations cannot be translated directly into
1298 1.1 christos a single (non-Red Hat) RL78 relocation, but instead need
1299 1.1 christos multiple RL78 relocations - handle them here. */
1300 1.1 christos switch (fixp->fx_r_type)
1301 1.1 christos {
1302 1.1 christos case BFD_RELOC_RL78_DIFF:
1303 1.1 christos SYM0 ();
1304 1.1 christos OPSYM (symbol_get_bfdsym (fixp->fx_subsy));
1305 1.1 christos OP(OP_SUBTRACT);
1306 1.1 christos
1307 1.1 christos switch (fixp->fx_size)
1308 1.1 christos {
1309 1.1 christos case 1:
1310 1.1 christos OP(ABS8);
1311 1.1 christos break;
1312 1.1 christos case 2:
1313 1.1 christos OP (ABS16);
1314 1.1 christos break;
1315 1.1 christos case 4:
1316 1.1 christos OP (ABS32);
1317 1.1 christos break;
1318 1.1 christos }
1319 1.1 christos break;
1320 1.1 christos
1321 1.1 christos case BFD_RELOC_RL78_NEG32:
1322 1.1 christos SYM0 ();
1323 1.1 christos OP (OP_NEG);
1324 1.1 christos OP (ABS32);
1325 1.3 christos break;
1326 1.3 christos
1327 1.3 christos case BFD_RELOC_RL78_CODE:
1328 1.3 christos reloc[0]->howto = bfd_reloc_type_lookup (stdoutput, BFD_RELOC_RL78_16U);
1329 1.3 christos reloc[1] = NULL;
1330 1.1 christos break;
1331 1.1 christos
1332 1.1 christos case BFD_RELOC_RL78_LO16:
1333 1.1 christos SYM0 ();
1334 1.1 christos OPIMM (0xffff);
1335 1.1 christos OP (OP_AND);
1336 1.1 christos OP (ABS16);
1337 1.1 christos break;
1338 1.1 christos
1339 1.1 christos case BFD_RELOC_RL78_HI16:
1340 1.1 christos SYM0 ();
1341 1.1 christos OPIMM (16);
1342 1.1 christos OP (OP_SHRA);
1343 1.1 christos OP (ABS16);
1344 1.1 christos break;
1345 1.1 christos
1346 1.1 christos case BFD_RELOC_RL78_HI8:
1347 1.1 christos SYM0 ();
1348 1.1 christos OPIMM (16);
1349 1.1 christos OP (OP_SHRA);
1350 1.1 christos OPIMM (0xff);
1351 1.1 christos OP (OP_AND);
1352 1.1 christos OP (ABS8);
1353 1.1 christos break;
1354 1.1 christos
1355 1.1 christos default:
1356 1.1 christos reloc[0]->howto = bfd_reloc_type_lookup (stdoutput, fixp->fx_r_type);
1357 1.1 christos reloc[1] = NULL;
1358 1.1 christos break;
1359 1.1 christos }
1360 1.1 christos
1361 1.1 christos return reloc;
1362 1.1 christos }
1363 1.1 christos
1364 1.1 christos int
1365 1.1 christos rl78_validate_fix_sub (struct fix * f)
1366 1.1 christos {
1367 1.1 christos /* We permit the subtraction of two symbols in a few cases. */
1368 1.1 christos /* mov #sym1-sym2, R3 */
1369 1.1 christos if (f->fx_r_type == BFD_RELOC_RL78_32_OP)
1370 1.1 christos return 1;
1371 1.1 christos /* .long sym1-sym2 */
1372 1.1 christos if (f->fx_r_type == BFD_RELOC_RL78_DIFF
1373 1.1 christos && ! f->fx_pcrel
1374 1.1 christos && (f->fx_size == 4 || f->fx_size == 2 || f->fx_size == 1))
1375 1.1 christos return 1;
1376 1.1 christos return 0;
1377 1.1 christos }
1378 1.1 christos
1379 1.1 christos long
1380 1.1 christos md_pcrel_from_section (fixS * fixP, segT sec)
1381 1.1 christos {
1382 1.1 christos long rv;
1383 1.1 christos
1384 1.1 christos if (fixP->fx_addsy != NULL
1385 1.1 christos && (! S_IS_DEFINED (fixP->fx_addsy)
1386 1.1 christos || S_GET_SEGMENT (fixP->fx_addsy) != sec))
1387 1.1 christos /* The symbol is undefined (or is defined but not in this section).
1388 1.1 christos Let the linker figure it out. */
1389 1.1 christos return 0;
1390 1.1 christos
1391 1.1 christos rv = fixP->fx_frag->fr_address + fixP->fx_where;
1392 1.1 christos switch (fixP->fx_r_type)
1393 1.1 christos {
1394 1.1 christos case BFD_RELOC_8_PCREL:
1395 1.1 christos rv += 1;
1396 1.1 christos break;
1397 1.1 christos case BFD_RELOC_16_PCREL:
1398 1.1 christos rv += 2;
1399 1.1 christos break;
1400 1.1 christos default:
1401 1.1 christos break;
1402 1.1 christos }
1403 1.1 christos return rv;
1404 1.1 christos }
1405 1.1 christos
1406 1.1 christos void
1407 1.1 christos md_apply_fix (struct fix * f ATTRIBUTE_UNUSED,
1408 1.1 christos valueT * t ATTRIBUTE_UNUSED,
1409 1.1 christos segT s ATTRIBUTE_UNUSED)
1410 1.1 christos {
1411 1.1 christos char * op;
1412 1.5 christos unsigned long val;
1413 1.5 christos
1414 1.5 christos /* We always defer overflow checks for these to the linker, as it
1415 1.5 christos needs to do PLT stuff. */
1416 1.5 christos if (f->fx_r_type == BFD_RELOC_RL78_CODE)
1417 1.1 christos f->fx_no_overflow = 1;
1418 1.1 christos
1419 1.1 christos if (f->fx_addsy && S_FORCE_RELOC (f->fx_addsy, 1))
1420 1.1 christos return;
1421 1.1 christos if (f->fx_subsy && S_FORCE_RELOC (f->fx_subsy, 1))
1422 1.1 christos return;
1423 1.10 christos
1424 1.1 christos op = f->fx_frag->fr_literal + f->fx_where;
1425 1.5 christos val = *t;
1426 1.5 christos
1427 1.5 christos if (f->fx_addsy == NULL)
1428 1.1 christos f->fx_done = 1;
1429 1.1 christos
1430 1.1 christos switch (f->fx_r_type)
1431 1.1 christos {
1432 1.1 christos case BFD_RELOC_NONE:
1433 1.1 christos break;
1434 1.5 christos
1435 1.1 christos case BFD_RELOC_RL78_RELAX:
1436 1.1 christos f->fx_done = 0;
1437 1.3 christos break;
1438 1.3 christos
1439 1.3 christos case BFD_RELOC_8_PCREL:
1440 1.3 christos if ((long)val < -128 || (long)val > 127)
1441 1.3 christos as_bad_where (f->fx_file, f->fx_line,
1442 1.3 christos _("value of %ld too large for 8-bit branch"),
1443 1.1 christos val);
1444 1.3 christos /* Fall through. */
1445 1.1 christos case BFD_RELOC_8:
1446 1.1 christos case BFD_RELOC_RL78_SADDR: /* We need to store the 8 LSB, but this works. */
1447 1.1 christos op[0] = val;
1448 1.3 christos break;
1449 1.3 christos
1450 1.3 christos case BFD_RELOC_16_PCREL:
1451 1.3 christos if ((long)val < -32768 || (long)val > 32767)
1452 1.3 christos as_bad_where (f->fx_file, f->fx_line,
1453 1.3 christos _("value of %ld too large for 16-bit branch"),
1454 1.1 christos val);
1455 1.3 christos /* Fall through. */
1456 1.1 christos case BFD_RELOC_16:
1457 1.1 christos case BFD_RELOC_RL78_CODE:
1458 1.1 christos op[0] = val;
1459 1.1 christos op[1] = val >> 8;
1460 1.1 christos break;
1461 1.1 christos
1462 1.1 christos case BFD_RELOC_24:
1463 1.1 christos op[0] = val;
1464 1.1 christos op[1] = val >> 8;
1465 1.1 christos op[2] = val >> 16;
1466 1.1 christos break;
1467 1.1 christos
1468 1.1 christos case BFD_RELOC_32:
1469 1.1 christos op[0] = val;
1470 1.1 christos op[1] = val >> 8;
1471 1.1 christos op[2] = val >> 16;
1472 1.1 christos op[3] = val >> 24;
1473 1.3 christos break;
1474 1.3 christos
1475 1.3 christos case BFD_RELOC_RL78_DIFF:
1476 1.3 christos op[0] = val;
1477 1.3 christos if (f->fx_size > 1)
1478 1.3 christos op[1] = val >> 8;
1479 1.3 christos if (f->fx_size > 2)
1480 1.3 christos op[2] = val >> 16;
1481 1.3 christos if (f->fx_size > 3)
1482 1.3 christos op[3] = val >> 24;
1483 1.3 christos break;
1484 1.3 christos
1485 1.3 christos case BFD_RELOC_RL78_HI8:
1486 1.3 christos val = val >> 16;
1487 1.3 christos op[0] = val;
1488 1.3 christos break;
1489 1.3 christos
1490 1.3 christos case BFD_RELOC_RL78_HI16:
1491 1.3 christos val = val >> 16;
1492 1.3 christos op[0] = val;
1493 1.3 christos op[1] = val >> 8;
1494 1.3 christos break;
1495 1.3 christos
1496 1.3 christos case BFD_RELOC_RL78_LO16:
1497 1.3 christos op[0] = val;
1498 1.3 christos op[1] = val >> 8;
1499 1.1 christos break;
1500 1.1 christos
1501 1.1 christos default:
1502 1.1 christos as_bad (_("Unknown reloc in md_apply_fix: %s"),
1503 1.1 christos bfd_get_reloc_code_name (f->fx_r_type));
1504 1.1 christos break;
1505 1.1 christos }
1506 1.1 christos
1507 1.1 christos }
1508 1.1 christos
1509 1.1 christos valueT
1510 1.7 christos md_section_align (segT segment, valueT size)
1511 1.10 christos {
1512 1.1 christos int align = bfd_section_alignment (segment);
1513 return (size + ((valueT) 1 << align) - 1) & -((valueT) 1 << align);
1514 }
1515