coff-alpha.c revision 1.1.1.5 1 /* BFD back-end for ALPHA Extended-Coff files.
2 Copyright (C) 1993-2017 Free Software Foundation, Inc.
3 Modified from coff-mips.c by Steve Chamberlain <sac (at) cygnus.com> and
4 Ian Lance Taylor <ian (at) cygnus.com>.
5
6 This file is part of BFD, the Binary File Descriptor library.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21 MA 02110-1301, USA. */
22
23 #include "sysdep.h"
24 #include "bfd.h"
25 #include "bfdlink.h"
26 #include "libbfd.h"
27 #include "coff/internal.h"
28 #include "coff/sym.h"
29 #include "coff/symconst.h"
30 #include "coff/ecoff.h"
31 #include "coff/alpha.h"
32 #include "aout/ar.h"
33 #include "libcoff.h"
34 #include "libecoff.h"
35
36 /* Prototypes for static functions. */
38
39
40
41 /* ECOFF has COFF sections, but the debugging information is stored in
43 a completely different format. ECOFF targets use some of the
44 swapping routines from coffswap.h, and some of the generic COFF
45 routines in coffgen.c, but, unlike the real COFF targets, do not
46 use coffcode.h itself.
47
48 Get the generic COFF swapping routines, except for the reloc,
49 symbol, and lineno ones. Give them ecoff names. Define some
50 accessor macros for the large sizes used for Alpha ECOFF. */
51
52 #define GET_FILEHDR_SYMPTR H_GET_64
53 #define PUT_FILEHDR_SYMPTR H_PUT_64
54 #define GET_AOUTHDR_TSIZE H_GET_64
55 #define PUT_AOUTHDR_TSIZE H_PUT_64
56 #define GET_AOUTHDR_DSIZE H_GET_64
57 #define PUT_AOUTHDR_DSIZE H_PUT_64
58 #define GET_AOUTHDR_BSIZE H_GET_64
59 #define PUT_AOUTHDR_BSIZE H_PUT_64
60 #define GET_AOUTHDR_ENTRY H_GET_64
61 #define PUT_AOUTHDR_ENTRY H_PUT_64
62 #define GET_AOUTHDR_TEXT_START H_GET_64
63 #define PUT_AOUTHDR_TEXT_START H_PUT_64
64 #define GET_AOUTHDR_DATA_START H_GET_64
65 #define PUT_AOUTHDR_DATA_START H_PUT_64
66 #define GET_SCNHDR_PADDR H_GET_64
67 #define PUT_SCNHDR_PADDR H_PUT_64
68 #define GET_SCNHDR_VADDR H_GET_64
69 #define PUT_SCNHDR_VADDR H_PUT_64
70 #define GET_SCNHDR_SIZE H_GET_64
71 #define PUT_SCNHDR_SIZE H_PUT_64
72 #define GET_SCNHDR_SCNPTR H_GET_64
73 #define PUT_SCNHDR_SCNPTR H_PUT_64
74 #define GET_SCNHDR_RELPTR H_GET_64
75 #define PUT_SCNHDR_RELPTR H_PUT_64
76 #define GET_SCNHDR_LNNOPTR H_GET_64
77 #define PUT_SCNHDR_LNNOPTR H_PUT_64
78
79 #define ALPHAECOFF
80
81 #define NO_COFF_RELOCS
82 #define NO_COFF_SYMBOLS
83 #define NO_COFF_LINENOS
84 #define coff_swap_filehdr_in alpha_ecoff_swap_filehdr_in
85 #define coff_swap_filehdr_out alpha_ecoff_swap_filehdr_out
86 #define coff_swap_aouthdr_in alpha_ecoff_swap_aouthdr_in
87 #define coff_swap_aouthdr_out alpha_ecoff_swap_aouthdr_out
88 #define coff_swap_scnhdr_in alpha_ecoff_swap_scnhdr_in
89 #define coff_swap_scnhdr_out alpha_ecoff_swap_scnhdr_out
90 #include "coffswap.h"
91
92 /* Get the ECOFF swapping routines. */
93 #define ECOFF_64
94 #include "ecoffswap.h"
95
96 /* How to process the various reloc types. */
98
99 static bfd_reloc_status_type
100 reloc_nil (bfd *abfd ATTRIBUTE_UNUSED,
101 arelent *reloc ATTRIBUTE_UNUSED,
102 asymbol *sym ATTRIBUTE_UNUSED,
103 void * data ATTRIBUTE_UNUSED,
104 asection *sec ATTRIBUTE_UNUSED,
105 bfd *output_bfd ATTRIBUTE_UNUSED,
106 char **error_message ATTRIBUTE_UNUSED)
107 {
108 return bfd_reloc_ok;
109 }
110
111 /* In case we're on a 32-bit machine, construct a 64-bit "-1" value
112 from smaller values. Start with zero, widen, *then* decrement. */
113 #define MINUS_ONE (((bfd_vma)0) - 1)
114
115 static reloc_howto_type alpha_howto_table[] =
116 {
117 /* Reloc type 0 is ignored by itself. However, it appears after a
118 GPDISP reloc to identify the location where the low order 16 bits
119 of the gp register are loaded. */
120 HOWTO (ALPHA_R_IGNORE, /* type */
121 0, /* rightshift */
122 0, /* size (0 = byte, 1 = short, 2 = long) */
123 8, /* bitsize */
124 TRUE, /* pc_relative */
125 0, /* bitpos */
126 complain_overflow_dont, /* complain_on_overflow */
127 reloc_nil, /* special_function */
128 "IGNORE", /* name */
129 TRUE, /* partial_inplace */
130 0, /* src_mask */
131 0, /* dst_mask */
132 TRUE), /* pcrel_offset */
133
134 /* A 32 bit reference to a symbol. */
135 HOWTO (ALPHA_R_REFLONG, /* type */
136 0, /* rightshift */
137 2, /* size (0 = byte, 1 = short, 2 = long) */
138 32, /* bitsize */
139 FALSE, /* pc_relative */
140 0, /* bitpos */
141 complain_overflow_bitfield, /* complain_on_overflow */
142 0, /* special_function */
143 "REFLONG", /* name */
144 TRUE, /* partial_inplace */
145 0xffffffff, /* src_mask */
146 0xffffffff, /* dst_mask */
147 FALSE), /* pcrel_offset */
148
149 /* A 64 bit reference to a symbol. */
150 HOWTO (ALPHA_R_REFQUAD, /* type */
151 0, /* rightshift */
152 4, /* size (0 = byte, 1 = short, 2 = long) */
153 64, /* bitsize */
154 FALSE, /* pc_relative */
155 0, /* bitpos */
156 complain_overflow_bitfield, /* complain_on_overflow */
157 0, /* special_function */
158 "REFQUAD", /* name */
159 TRUE, /* partial_inplace */
160 MINUS_ONE, /* src_mask */
161 MINUS_ONE, /* dst_mask */
162 FALSE), /* pcrel_offset */
163
164 /* A 32 bit GP relative offset. This is just like REFLONG except
165 that when the value is used the value of the gp register will be
166 added in. */
167 HOWTO (ALPHA_R_GPREL32, /* type */
168 0, /* rightshift */
169 2, /* size (0 = byte, 1 = short, 2 = long) */
170 32, /* bitsize */
171 FALSE, /* pc_relative */
172 0, /* bitpos */
173 complain_overflow_bitfield, /* complain_on_overflow */
174 0, /* special_function */
175 "GPREL32", /* name */
176 TRUE, /* partial_inplace */
177 0xffffffff, /* src_mask */
178 0xffffffff, /* dst_mask */
179 FALSE), /* pcrel_offset */
180
181 /* Used for an instruction that refers to memory off the GP
182 register. The offset is 16 bits of the 32 bit instruction. This
183 reloc always seems to be against the .lita section. */
184 HOWTO (ALPHA_R_LITERAL, /* type */
185 0, /* rightshift */
186 2, /* size (0 = byte, 1 = short, 2 = long) */
187 16, /* bitsize */
188 FALSE, /* pc_relative */
189 0, /* bitpos */
190 complain_overflow_signed, /* complain_on_overflow */
191 0, /* special_function */
192 "LITERAL", /* name */
193 TRUE, /* partial_inplace */
194 0xffff, /* src_mask */
195 0xffff, /* dst_mask */
196 FALSE), /* pcrel_offset */
197
198 /* This reloc only appears immediately following a LITERAL reloc.
199 It identifies a use of the literal. It seems that the linker can
200 use this to eliminate a portion of the .lita section. The symbol
201 index is special: 1 means the literal address is in the base
202 register of a memory format instruction; 2 means the literal
203 address is in the byte offset register of a byte-manipulation
204 instruction; 3 means the literal address is in the target
205 register of a jsr instruction. This does not actually do any
206 relocation. */
207 HOWTO (ALPHA_R_LITUSE, /* type */
208 0, /* rightshift */
209 2, /* size (0 = byte, 1 = short, 2 = long) */
210 32, /* bitsize */
211 FALSE, /* pc_relative */
212 0, /* bitpos */
213 complain_overflow_dont, /* complain_on_overflow */
214 reloc_nil, /* special_function */
215 "LITUSE", /* name */
216 FALSE, /* partial_inplace */
217 0, /* src_mask */
218 0, /* dst_mask */
219 FALSE), /* pcrel_offset */
220
221 /* Load the gp register. This is always used for a ldah instruction
222 which loads the upper 16 bits of the gp register. The next reloc
223 will be an IGNORE reloc which identifies the location of the lda
224 instruction which loads the lower 16 bits. The symbol index of
225 the GPDISP instruction appears to actually be the number of bytes
226 between the ldah and lda instructions. This gives two different
227 ways to determine where the lda instruction is; I don't know why
228 both are used. The value to use for the relocation is the
229 difference between the GP value and the current location; the
230 load will always be done against a register holding the current
231 address. */
232 HOWTO (ALPHA_R_GPDISP, /* type */
233 16, /* rightshift */
234 2, /* size (0 = byte, 1 = short, 2 = long) */
235 16, /* bitsize */
236 TRUE, /* pc_relative */
237 0, /* bitpos */
238 complain_overflow_dont, /* complain_on_overflow */
239 reloc_nil, /* special_function */
240 "GPDISP", /* name */
241 TRUE, /* partial_inplace */
242 0xffff, /* src_mask */
243 0xffff, /* dst_mask */
244 TRUE), /* pcrel_offset */
245
246 /* A 21 bit branch. The native assembler generates these for
247 branches within the text segment, and also fills in the PC
248 relative offset in the instruction. */
249 HOWTO (ALPHA_R_BRADDR, /* type */
250 2, /* rightshift */
251 2, /* size (0 = byte, 1 = short, 2 = long) */
252 21, /* bitsize */
253 TRUE, /* pc_relative */
254 0, /* bitpos */
255 complain_overflow_signed, /* complain_on_overflow */
256 0, /* special_function */
257 "BRADDR", /* name */
258 TRUE, /* partial_inplace */
259 0x1fffff, /* src_mask */
260 0x1fffff, /* dst_mask */
261 FALSE), /* pcrel_offset */
262
263 /* A hint for a jump to a register. */
264 HOWTO (ALPHA_R_HINT, /* type */
265 2, /* rightshift */
266 2, /* size (0 = byte, 1 = short, 2 = long) */
267 14, /* bitsize */
268 TRUE, /* pc_relative */
269 0, /* bitpos */
270 complain_overflow_dont, /* complain_on_overflow */
271 0, /* special_function */
272 "HINT", /* name */
273 TRUE, /* partial_inplace */
274 0x3fff, /* src_mask */
275 0x3fff, /* dst_mask */
276 FALSE), /* pcrel_offset */
277
278 /* 16 bit PC relative offset. */
279 HOWTO (ALPHA_R_SREL16, /* type */
280 0, /* rightshift */
281 1, /* size (0 = byte, 1 = short, 2 = long) */
282 16, /* bitsize */
283 TRUE, /* pc_relative */
284 0, /* bitpos */
285 complain_overflow_signed, /* complain_on_overflow */
286 0, /* special_function */
287 "SREL16", /* name */
288 TRUE, /* partial_inplace */
289 0xffff, /* src_mask */
290 0xffff, /* dst_mask */
291 FALSE), /* pcrel_offset */
292
293 /* 32 bit PC relative offset. */
294 HOWTO (ALPHA_R_SREL32, /* type */
295 0, /* rightshift */
296 2, /* size (0 = byte, 1 = short, 2 = long) */
297 32, /* bitsize */
298 TRUE, /* pc_relative */
299 0, /* bitpos */
300 complain_overflow_signed, /* complain_on_overflow */
301 0, /* special_function */
302 "SREL32", /* name */
303 TRUE, /* partial_inplace */
304 0xffffffff, /* src_mask */
305 0xffffffff, /* dst_mask */
306 FALSE), /* pcrel_offset */
307
308 /* A 64 bit PC relative offset. */
309 HOWTO (ALPHA_R_SREL64, /* type */
310 0, /* rightshift */
311 4, /* size (0 = byte, 1 = short, 2 = long) */
312 64, /* bitsize */
313 TRUE, /* pc_relative */
314 0, /* bitpos */
315 complain_overflow_signed, /* complain_on_overflow */
316 0, /* special_function */
317 "SREL64", /* name */
318 TRUE, /* partial_inplace */
319 MINUS_ONE, /* src_mask */
320 MINUS_ONE, /* dst_mask */
321 FALSE), /* pcrel_offset */
322
323 /* Push a value on the reloc evaluation stack. */
324 HOWTO (ALPHA_R_OP_PUSH, /* type */
325 0, /* rightshift */
326 0, /* size (0 = byte, 1 = short, 2 = long) */
327 0, /* bitsize */
328 FALSE, /* pc_relative */
329 0, /* bitpos */
330 complain_overflow_dont, /* complain_on_overflow */
331 0, /* special_function */
332 "OP_PUSH", /* name */
333 FALSE, /* partial_inplace */
334 0, /* src_mask */
335 0, /* dst_mask */
336 FALSE), /* pcrel_offset */
337
338 /* Store the value from the stack at the given address. Store it in
339 a bitfield of size r_size starting at bit position r_offset. */
340 HOWTO (ALPHA_R_OP_STORE, /* type */
341 0, /* rightshift */
342 4, /* size (0 = byte, 1 = short, 2 = long) */
343 64, /* bitsize */
344 FALSE, /* pc_relative */
345 0, /* bitpos */
346 complain_overflow_dont, /* complain_on_overflow */
347 0, /* special_function */
348 "OP_STORE", /* name */
349 FALSE, /* partial_inplace */
350 0, /* src_mask */
351 MINUS_ONE, /* dst_mask */
352 FALSE), /* pcrel_offset */
353
354 /* Subtract the reloc address from the value on the top of the
355 relocation stack. */
356 HOWTO (ALPHA_R_OP_PSUB, /* type */
357 0, /* rightshift */
358 0, /* size (0 = byte, 1 = short, 2 = long) */
359 0, /* bitsize */
360 FALSE, /* pc_relative */
361 0, /* bitpos */
362 complain_overflow_dont, /* complain_on_overflow */
363 0, /* special_function */
364 "OP_PSUB", /* name */
365 FALSE, /* partial_inplace */
366 0, /* src_mask */
367 0, /* dst_mask */
368 FALSE), /* pcrel_offset */
369
370 /* Shift the value on the top of the relocation stack right by the
371 given value. */
372 HOWTO (ALPHA_R_OP_PRSHIFT, /* type */
373 0, /* rightshift */
374 0, /* size (0 = byte, 1 = short, 2 = long) */
375 0, /* bitsize */
376 FALSE, /* pc_relative */
377 0, /* bitpos */
378 complain_overflow_dont, /* complain_on_overflow */
379 0, /* special_function */
380 "OP_PRSHIFT", /* name */
381 FALSE, /* partial_inplace */
382 0, /* src_mask */
383 0, /* dst_mask */
384 FALSE), /* pcrel_offset */
385
386 /* Adjust the GP value for a new range in the object file. */
387 HOWTO (ALPHA_R_GPVALUE, /* type */
388 0, /* rightshift */
389 0, /* size (0 = byte, 1 = short, 2 = long) */
390 0, /* bitsize */
391 FALSE, /* pc_relative */
392 0, /* bitpos */
393 complain_overflow_dont, /* complain_on_overflow */
394 0, /* special_function */
395 "GPVALUE", /* name */
396 FALSE, /* partial_inplace */
397 0, /* src_mask */
398 0, /* dst_mask */
399 FALSE) /* pcrel_offset */
400 };
401
402 /* Recognize an Alpha ECOFF file. */
404
405 static const bfd_target *
406 alpha_ecoff_object_p (bfd *abfd)
407 {
408 static const bfd_target *ret;
409
410 ret = coff_object_p (abfd);
411
412 if (ret != NULL)
413 {
414 asection *sec;
415
416 /* Alpha ECOFF has a .pdata section. The lnnoptr field of the
417 .pdata section is the number of entries it contains. Each
418 entry takes up 8 bytes. The number of entries is required
419 since the section is aligned to a 16 byte boundary. When we
420 link .pdata sections together, we do not want to include the
421 alignment bytes. We handle this on input by faking the size
422 of the .pdata section to remove the unwanted alignment bytes.
423 On output we will set the lnnoptr field and force the
424 alignment. */
425 sec = bfd_get_section_by_name (abfd, _PDATA);
426 if (sec != (asection *) NULL)
427 {
428 bfd_size_type size;
429
430 size = sec->line_filepos * 8;
431 BFD_ASSERT (size == sec->size
432 || size + 8 == sec->size);
433 if (! bfd_set_section_size (abfd, sec, size))
434 return NULL;
435 }
436 }
437
438 return ret;
439 }
440
441 /* See whether the magic number matches. */
442
443 static bfd_boolean
444 alpha_ecoff_bad_format_hook (bfd *abfd ATTRIBUTE_UNUSED,
445 void * filehdr)
446 {
447 struct internal_filehdr *internal_f = (struct internal_filehdr *) filehdr;
448
449 if (! ALPHA_ECOFF_BADMAG (*internal_f))
450 return TRUE;
451
452 if (ALPHA_ECOFF_COMPRESSEDMAG (*internal_f))
453 _bfd_error_handler
454 (_("%B: Cannot handle compressed Alpha binaries.\n"
455 " Use compiler flags, or objZ, to generate uncompressed binaries."),
456 abfd);
457
458 return FALSE;
459 }
460
461 /* This is a hook called by coff_real_object_p to create any backend
462 specific information. */
463
464 static void *
465 alpha_ecoff_mkobject_hook (bfd *abfd, void * filehdr, void * aouthdr)
466 {
467 void * ecoff;
468
469 ecoff = _bfd_ecoff_mkobject_hook (abfd, filehdr, aouthdr);
470
471 if (ecoff != NULL)
472 {
473 struct internal_filehdr *internal_f = (struct internal_filehdr *) filehdr;
474
475 /* Set additional BFD flags according to the object type from the
476 machine specific file header flags. */
477 switch (internal_f->f_flags & F_ALPHA_OBJECT_TYPE_MASK)
478 {
479 case F_ALPHA_SHARABLE:
480 abfd->flags |= DYNAMIC;
481 break;
482 case F_ALPHA_CALL_SHARED:
483 /* Always executable if using shared libraries as the run time
484 loader might resolve undefined references. */
485 abfd->flags |= (DYNAMIC | EXEC_P);
486 break;
487 }
488 }
489 return ecoff;
490 }
491
492 /* Reloc handling. */
494
495 /* Swap a reloc in. */
496
497 static void
498 alpha_ecoff_swap_reloc_in (bfd *abfd,
499 void * ext_ptr,
500 struct internal_reloc *intern)
501 {
502 const RELOC *ext = (RELOC *) ext_ptr;
503
504 intern->r_vaddr = H_GET_64 (abfd, ext->r_vaddr);
505 intern->r_symndx = H_GET_32 (abfd, ext->r_symndx);
506
507 BFD_ASSERT (bfd_header_little_endian (abfd));
508
509 intern->r_type = ((ext->r_bits[0] & RELOC_BITS0_TYPE_LITTLE)
510 >> RELOC_BITS0_TYPE_SH_LITTLE);
511 intern->r_extern = (ext->r_bits[1] & RELOC_BITS1_EXTERN_LITTLE) != 0;
512 intern->r_offset = ((ext->r_bits[1] & RELOC_BITS1_OFFSET_LITTLE)
513 >> RELOC_BITS1_OFFSET_SH_LITTLE);
514 /* Ignored the reserved bits. */
515 intern->r_size = ((ext->r_bits[3] & RELOC_BITS3_SIZE_LITTLE)
516 >> RELOC_BITS3_SIZE_SH_LITTLE);
517
518 if (intern->r_type == ALPHA_R_LITUSE
519 || intern->r_type == ALPHA_R_GPDISP)
520 {
521 /* Handle the LITUSE and GPDISP relocs specially. Its symndx
522 value is not actually a symbol index, but is instead a
523 special code. We put the code in the r_size field, and
524 clobber the symndx. */
525 if (intern->r_size != 0)
526 abort ();
527 intern->r_size = intern->r_symndx;
528 intern->r_symndx = RELOC_SECTION_NONE;
529 }
530 else if (intern->r_type == ALPHA_R_IGNORE)
531 {
532 /* The IGNORE reloc generally follows a GPDISP reloc, and is
533 against the .lita section. The section is irrelevant. */
534 if (! intern->r_extern &&
535 intern->r_symndx == RELOC_SECTION_ABS)
536 abort ();
537 if (! intern->r_extern && intern->r_symndx == RELOC_SECTION_LITA)
538 intern->r_symndx = RELOC_SECTION_ABS;
539 }
540 }
541
542 /* Swap a reloc out. */
543
544 static void
545 alpha_ecoff_swap_reloc_out (bfd *abfd,
546 const struct internal_reloc *intern,
547 void * dst)
548 {
549 RELOC *ext = (RELOC *) dst;
550 long symndx;
551 unsigned char size;
552
553 /* Undo the hackery done in swap_reloc_in. */
554 if (intern->r_type == ALPHA_R_LITUSE
555 || intern->r_type == ALPHA_R_GPDISP)
556 {
557 symndx = intern->r_size;
558 size = 0;
559 }
560 else if (intern->r_type == ALPHA_R_IGNORE
561 && ! intern->r_extern
562 && intern->r_symndx == RELOC_SECTION_ABS)
563 {
564 symndx = RELOC_SECTION_LITA;
565 size = intern->r_size;
566 }
567 else
568 {
569 symndx = intern->r_symndx;
570 size = intern->r_size;
571 }
572
573 /* XXX FIXME: The maximum symndx value used to be 14 but this
574 fails with object files produced by DEC's C++ compiler.
575 Where does the value 14 (or 15) come from anyway ? */
576 BFD_ASSERT (intern->r_extern
577 || (intern->r_symndx >= 0 && intern->r_symndx <= 15));
578
579 H_PUT_64 (abfd, intern->r_vaddr, ext->r_vaddr);
580 H_PUT_32 (abfd, symndx, ext->r_symndx);
581
582 BFD_ASSERT (bfd_header_little_endian (abfd));
583
584 ext->r_bits[0] = ((intern->r_type << RELOC_BITS0_TYPE_SH_LITTLE)
585 & RELOC_BITS0_TYPE_LITTLE);
586 ext->r_bits[1] = ((intern->r_extern ? RELOC_BITS1_EXTERN_LITTLE : 0)
587 | ((intern->r_offset << RELOC_BITS1_OFFSET_SH_LITTLE)
588 & RELOC_BITS1_OFFSET_LITTLE));
589 ext->r_bits[2] = 0;
590 ext->r_bits[3] = ((size << RELOC_BITS3_SIZE_SH_LITTLE)
591 & RELOC_BITS3_SIZE_LITTLE);
592 }
593
594 /* Finish canonicalizing a reloc. Part of this is generic to all
595 ECOFF targets, and that part is in ecoff.c. The rest is done in
596 this backend routine. It must fill in the howto field. */
597
598 static void
599 alpha_adjust_reloc_in (bfd *abfd,
600 const struct internal_reloc *intern,
601 arelent *rptr)
602 {
603 if (intern->r_type > ALPHA_R_GPVALUE)
604 {
605 /* xgettext:c-format */
606 _bfd_error_handler
607 (_("%B: unknown/unsupported relocation type %d"),
608 abfd, intern->r_type);
609 bfd_set_error (bfd_error_bad_value);
610 rptr->addend = 0;
611 rptr->howto = NULL;
612 return;
613 }
614
615 switch (intern->r_type)
616 {
617 case ALPHA_R_BRADDR:
618 case ALPHA_R_SREL16:
619 case ALPHA_R_SREL32:
620 case ALPHA_R_SREL64:
621 /* This relocs appear to be fully resolved when they are against
622 internal symbols. Against external symbols, BRADDR at least
623 appears to be resolved against the next instruction. */
624 if (! intern->r_extern)
625 rptr->addend = 0;
626 else
627 rptr->addend = - (intern->r_vaddr + 4);
628 break;
629
630 case ALPHA_R_GPREL32:
631 case ALPHA_R_LITERAL:
632 /* Copy the gp value for this object file into the addend, to
633 ensure that we are not confused by the linker. */
634 if (! intern->r_extern)
635 rptr->addend += ecoff_data (abfd)->gp;
636 break;
637
638 case ALPHA_R_LITUSE:
639 case ALPHA_R_GPDISP:
640 /* The LITUSE and GPDISP relocs do not use a symbol, or an
641 addend, but they do use a special code. Put this code in the
642 addend field. */
643 rptr->addend = intern->r_size;
644 break;
645
646 case ALPHA_R_OP_STORE:
647 /* The STORE reloc needs the size and offset fields. We store
648 them in the addend. */
649 BFD_ASSERT (intern->r_offset <= 256);
650 rptr->addend = (intern->r_offset << 8) + intern->r_size;
651 break;
652
653 case ALPHA_R_OP_PUSH:
654 case ALPHA_R_OP_PSUB:
655 case ALPHA_R_OP_PRSHIFT:
656 /* The PUSH, PSUB and PRSHIFT relocs do not actually use an
657 address. I believe that the address supplied is really an
658 addend. */
659 rptr->addend = intern->r_vaddr;
660 break;
661
662 case ALPHA_R_GPVALUE:
663 /* Set the addend field to the new GP value. */
664 rptr->addend = intern->r_symndx + ecoff_data (abfd)->gp;
665 break;
666
667 case ALPHA_R_IGNORE:
668 /* If the type is ALPHA_R_IGNORE, make sure this is a reference
669 to the absolute section so that the reloc is ignored. For
670 some reason the address of this reloc type is not adjusted by
671 the section vma. We record the gp value for this object file
672 here, for convenience when doing the GPDISP relocation. */
673 rptr->sym_ptr_ptr = bfd_abs_section_ptr->symbol_ptr_ptr;
674 rptr->address = intern->r_vaddr;
675 rptr->addend = ecoff_data (abfd)->gp;
676 break;
677
678 default:
679 break;
680 }
681
682 rptr->howto = &alpha_howto_table[intern->r_type];
683 }
684
685 /* When writing out a reloc we need to pull some values back out of
686 the addend field into the reloc. This is roughly the reverse of
687 alpha_adjust_reloc_in, except that there are several changes we do
688 not need to undo. */
689
690 static void
691 alpha_adjust_reloc_out (bfd *abfd ATTRIBUTE_UNUSED,
692 const arelent *rel,
693 struct internal_reloc *intern)
694 {
695 switch (intern->r_type)
696 {
697 case ALPHA_R_LITUSE:
698 case ALPHA_R_GPDISP:
699 intern->r_size = rel->addend;
700 break;
701
702 case ALPHA_R_OP_STORE:
703 intern->r_size = rel->addend & 0xff;
704 intern->r_offset = (rel->addend >> 8) & 0xff;
705 break;
706
707 case ALPHA_R_OP_PUSH:
708 case ALPHA_R_OP_PSUB:
709 case ALPHA_R_OP_PRSHIFT:
710 intern->r_vaddr = rel->addend;
711 break;
712
713 case ALPHA_R_IGNORE:
714 intern->r_vaddr = rel->address;
715 break;
716
717 default:
718 break;
719 }
720 }
721
722 /* The size of the stack for the relocation evaluator. */
723 #define RELOC_STACKSIZE (10)
724
725 /* Alpha ECOFF relocs have a built in expression evaluator as well as
726 other interdependencies. Rather than use a bunch of special
727 functions and global variables, we use a single routine to do all
728 the relocation for a section. I haven't yet worked out how the
729 assembler is going to handle this. */
730
731 static bfd_byte *
732 alpha_ecoff_get_relocated_section_contents (bfd *abfd,
733 struct bfd_link_info *link_info,
734 struct bfd_link_order *link_order,
735 bfd_byte *data,
736 bfd_boolean relocatable,
737 asymbol **symbols)
738 {
739 bfd *input_bfd = link_order->u.indirect.section->owner;
740 asection *input_section = link_order->u.indirect.section;
741 long reloc_size = bfd_get_reloc_upper_bound (input_bfd, input_section);
742 arelent **reloc_vector = NULL;
743 long reloc_count;
744 bfd *output_bfd = relocatable ? abfd : (bfd *) NULL;
745 bfd_vma gp;
746 bfd_size_type sz;
747 bfd_boolean gp_undefined;
748 bfd_vma stack[RELOC_STACKSIZE];
749 int tos = 0;
750
751 if (reloc_size < 0)
752 goto error_return;
753 reloc_vector = (arelent **) bfd_malloc ((bfd_size_type) reloc_size);
754 if (reloc_vector == NULL && reloc_size != 0)
755 goto error_return;
756
757 sz = input_section->rawsize ? input_section->rawsize : input_section->size;
758 if (! bfd_get_section_contents (input_bfd, input_section, data, 0, sz))
759 goto error_return;
760
761 reloc_count = bfd_canonicalize_reloc (input_bfd, input_section,
762 reloc_vector, symbols);
763 if (reloc_count < 0)
764 goto error_return;
765 if (reloc_count == 0)
766 goto successful_return;
767
768 /* Get the GP value for the output BFD. */
769 gp_undefined = FALSE;
770 gp = _bfd_get_gp_value (abfd);
771 if (gp == 0)
772 {
773 if (relocatable)
774 {
775 asection *sec;
776 bfd_vma lo;
777
778 /* Make up a value. */
779 lo = (bfd_vma) -1;
780 for (sec = abfd->sections; sec != NULL; sec = sec->next)
781 {
782 if (sec->vma < lo
783 && (strcmp (sec->name, ".sbss") == 0
784 || strcmp (sec->name, ".sdata") == 0
785 || strcmp (sec->name, ".lit4") == 0
786 || strcmp (sec->name, ".lit8") == 0
787 || strcmp (sec->name, ".lita") == 0))
788 lo = sec->vma;
789 }
790 gp = lo + 0x8000;
791 _bfd_set_gp_value (abfd, gp);
792 }
793 else
794 {
795 struct bfd_link_hash_entry *h;
796
797 h = bfd_link_hash_lookup (link_info->hash, "_gp", FALSE, FALSE,
798 TRUE);
799 if (h == (struct bfd_link_hash_entry *) NULL
800 || h->type != bfd_link_hash_defined)
801 gp_undefined = TRUE;
802 else
803 {
804 gp = (h->u.def.value
805 + h->u.def.section->output_section->vma
806 + h->u.def.section->output_offset);
807 _bfd_set_gp_value (abfd, gp);
808 }
809 }
810 }
811
812 for (; *reloc_vector != (arelent *) NULL; reloc_vector++)
813 {
814 arelent *rel;
815 bfd_reloc_status_type r;
816 char *err;
817
818 rel = *reloc_vector;
819 r = bfd_reloc_ok;
820 switch (rel->howto->type)
821 {
822 case ALPHA_R_IGNORE:
823 rel->address += input_section->output_offset;
824 break;
825
826 case ALPHA_R_REFLONG:
827 case ALPHA_R_REFQUAD:
828 case ALPHA_R_BRADDR:
829 case ALPHA_R_HINT:
830 case ALPHA_R_SREL16:
831 case ALPHA_R_SREL32:
832 case ALPHA_R_SREL64:
833 if (relocatable
834 && ((*rel->sym_ptr_ptr)->flags & BSF_SECTION_SYM) == 0)
835 {
836 rel->address += input_section->output_offset;
837 break;
838 }
839 r = bfd_perform_relocation (input_bfd, rel, data, input_section,
840 output_bfd, &err);
841 break;
842
843 case ALPHA_R_GPREL32:
844 /* This relocation is used in a switch table. It is a 32
845 bit offset from the current GP value. We must adjust it
846 by the different between the original GP value and the
847 current GP value. The original GP value is stored in the
848 addend. We adjust the addend and let
849 bfd_perform_relocation finish the job. */
850 rel->addend -= gp;
851 r = bfd_perform_relocation (input_bfd, rel, data, input_section,
852 output_bfd, &err);
853 if (r == bfd_reloc_ok && gp_undefined)
854 {
855 r = bfd_reloc_dangerous;
856 err = (char *) _("GP relative relocation used when GP not defined");
857 }
858 break;
859
860 case ALPHA_R_LITERAL:
861 /* This is a reference to a literal value, generally
862 (always?) in the .lita section. This is a 16 bit GP
863 relative relocation. Sometimes the subsequent reloc is a
864 LITUSE reloc, which indicates how this reloc is used.
865 This sometimes permits rewriting the two instructions
866 referred to by the LITERAL and the LITUSE into different
867 instructions which do not refer to .lita. This can save
868 a memory reference, and permits removing a value from
869 .lita thus saving GP relative space.
870
871 We do not these optimizations. To do them we would need
872 to arrange to link the .lita section first, so that by
873 the time we got here we would know the final values to
874 use. This would not be particularly difficult, but it is
875 not currently implemented. */
876
877 {
878 unsigned long insn;
879
880 /* I believe that the LITERAL reloc will only apply to a
881 ldq or ldl instruction, so check my assumption. */
882 insn = bfd_get_32 (input_bfd, data + rel->address);
883 BFD_ASSERT (((insn >> 26) & 0x3f) == 0x29
884 || ((insn >> 26) & 0x3f) == 0x28);
885
886 rel->addend -= gp;
887 r = bfd_perform_relocation (input_bfd, rel, data, input_section,
888 output_bfd, &err);
889 if (r == bfd_reloc_ok && gp_undefined)
890 {
891 r = bfd_reloc_dangerous;
892 err =
893 (char *) _("GP relative relocation used when GP not defined");
894 }
895 }
896 break;
897
898 case ALPHA_R_LITUSE:
899 /* See ALPHA_R_LITERAL above for the uses of this reloc. It
900 does not cause anything to happen, itself. */
901 rel->address += input_section->output_offset;
902 break;
903
904 case ALPHA_R_GPDISP:
905 /* This marks the ldah of an ldah/lda pair which loads the
906 gp register with the difference of the gp value and the
907 current location. The second of the pair is r_size bytes
908 ahead; it used to be marked with an ALPHA_R_IGNORE reloc,
909 but that no longer happens in OSF/1 3.2. */
910 {
911 unsigned long insn1, insn2;
912 bfd_vma addend;
913
914 /* Get the two instructions. */
915 insn1 = bfd_get_32 (input_bfd, data + rel->address);
916 insn2 = bfd_get_32 (input_bfd, data + rel->address + rel->addend);
917
918 BFD_ASSERT (((insn1 >> 26) & 0x3f) == 0x09); /* ldah */
919 BFD_ASSERT (((insn2 >> 26) & 0x3f) == 0x08); /* lda */
920
921 /* Get the existing addend. We must account for the sign
922 extension done by lda and ldah. */
923 addend = ((insn1 & 0xffff) << 16) + (insn2 & 0xffff);
924 if (insn1 & 0x8000)
925 {
926 addend -= 0x80000000;
927 addend -= 0x80000000;
928 }
929 if (insn2 & 0x8000)
930 addend -= 0x10000;
931
932 /* The existing addend includes the different between the
933 gp of the input BFD and the address in the input BFD.
934 Subtract this out. */
935 addend -= (ecoff_data (input_bfd)->gp
936 - (input_section->vma + rel->address));
937
938 /* Now add in the final gp value, and subtract out the
939 final address. */
940 addend += (gp
941 - (input_section->output_section->vma
942 + input_section->output_offset
943 + rel->address));
944
945 /* Change the instructions, accounting for the sign
946 extension, and write them out. */
947 if (addend & 0x8000)
948 addend += 0x10000;
949 insn1 = (insn1 & 0xffff0000) | ((addend >> 16) & 0xffff);
950 insn2 = (insn2 & 0xffff0000) | (addend & 0xffff);
951
952 bfd_put_32 (input_bfd, (bfd_vma) insn1, data + rel->address);
953 bfd_put_32 (input_bfd, (bfd_vma) insn2,
954 data + rel->address + rel->addend);
955
956 rel->address += input_section->output_offset;
957 }
958 break;
959
960 case ALPHA_R_OP_PUSH:
961 /* Push a value on the reloc evaluation stack. */
962 {
963 asymbol *symbol;
964 bfd_vma relocation;
965
966 if (relocatable)
967 {
968 rel->address += input_section->output_offset;
969 break;
970 }
971
972 /* Figure out the relocation of this symbol. */
973 symbol = *rel->sym_ptr_ptr;
974
975 if (bfd_is_und_section (symbol->section))
976 r = bfd_reloc_undefined;
977
978 if (bfd_is_com_section (symbol->section))
979 relocation = 0;
980 else
981 relocation = symbol->value;
982 relocation += symbol->section->output_section->vma;
983 relocation += symbol->section->output_offset;
984 relocation += rel->addend;
985
986 if (tos >= RELOC_STACKSIZE)
987 abort ();
988
989 stack[tos++] = relocation;
990 }
991 break;
992
993 case ALPHA_R_OP_STORE:
994 /* Store a value from the reloc stack into a bitfield. */
995 {
996 bfd_vma val;
997 int offset, size;
998
999 if (relocatable)
1000 {
1001 rel->address += input_section->output_offset;
1002 break;
1003 }
1004
1005 if (tos == 0)
1006 abort ();
1007
1008 /* The offset and size for this reloc are encoded into the
1009 addend field by alpha_adjust_reloc_in. */
1010 offset = (rel->addend >> 8) & 0xff;
1011 size = rel->addend & 0xff;
1012
1013 val = bfd_get_64 (abfd, data + rel->address);
1014 val &=~ (((1 << size) - 1) << offset);
1015 val |= (stack[--tos] & ((1 << size) - 1)) << offset;
1016 bfd_put_64 (abfd, val, data + rel->address);
1017 }
1018 break;
1019
1020 case ALPHA_R_OP_PSUB:
1021 /* Subtract a value from the top of the stack. */
1022 {
1023 asymbol *symbol;
1024 bfd_vma relocation;
1025
1026 if (relocatable)
1027 {
1028 rel->address += input_section->output_offset;
1029 break;
1030 }
1031
1032 /* Figure out the relocation of this symbol. */
1033 symbol = *rel->sym_ptr_ptr;
1034
1035 if (bfd_is_und_section (symbol->section))
1036 r = bfd_reloc_undefined;
1037
1038 if (bfd_is_com_section (symbol->section))
1039 relocation = 0;
1040 else
1041 relocation = symbol->value;
1042 relocation += symbol->section->output_section->vma;
1043 relocation += symbol->section->output_offset;
1044 relocation += rel->addend;
1045
1046 if (tos == 0)
1047 abort ();
1048
1049 stack[tos - 1] -= relocation;
1050 }
1051 break;
1052
1053 case ALPHA_R_OP_PRSHIFT:
1054 /* Shift the value on the top of the stack. */
1055 {
1056 asymbol *symbol;
1057 bfd_vma relocation;
1058
1059 if (relocatable)
1060 {
1061 rel->address += input_section->output_offset;
1062 break;
1063 }
1064
1065 /* Figure out the relocation of this symbol. */
1066 symbol = *rel->sym_ptr_ptr;
1067
1068 if (bfd_is_und_section (symbol->section))
1069 r = bfd_reloc_undefined;
1070
1071 if (bfd_is_com_section (symbol->section))
1072 relocation = 0;
1073 else
1074 relocation = symbol->value;
1075 relocation += symbol->section->output_section->vma;
1076 relocation += symbol->section->output_offset;
1077 relocation += rel->addend;
1078
1079 if (tos == 0)
1080 abort ();
1081
1082 stack[tos - 1] >>= relocation;
1083 }
1084 break;
1085
1086 case ALPHA_R_GPVALUE:
1087 /* I really don't know if this does the right thing. */
1088 gp = rel->addend;
1089 gp_undefined = FALSE;
1090 break;
1091
1092 default:
1093 abort ();
1094 }
1095
1096 if (relocatable)
1097 {
1098 asection *os = input_section->output_section;
1099
1100 /* A partial link, so keep the relocs. */
1101 os->orelocation[os->reloc_count] = rel;
1102 os->reloc_count++;
1103 }
1104
1105 if (r != bfd_reloc_ok)
1106 {
1107 switch (r)
1108 {
1109 case bfd_reloc_undefined:
1110 (*link_info->callbacks->undefined_symbol)
1111 (link_info, bfd_asymbol_name (*rel->sym_ptr_ptr),
1112 input_bfd, input_section, rel->address, TRUE);
1113 break;
1114 case bfd_reloc_dangerous:
1115 (*link_info->callbacks->reloc_dangerous)
1116 (link_info, err, input_bfd, input_section, rel->address);
1117 break;
1118 case bfd_reloc_overflow:
1119 (*link_info->callbacks->reloc_overflow)
1120 (link_info, NULL, bfd_asymbol_name (*rel->sym_ptr_ptr),
1121 rel->howto->name, rel->addend, input_bfd,
1122 input_section, rel->address);
1123 break;
1124 case bfd_reloc_outofrange:
1125 default:
1126 abort ();
1127 break;
1128 }
1129 }
1130 }
1131
1132 if (tos != 0)
1133 abort ();
1134
1135 successful_return:
1136 if (reloc_vector != NULL)
1137 free (reloc_vector);
1138 return data;
1139
1140 error_return:
1141 if (reloc_vector != NULL)
1142 free (reloc_vector);
1143 return NULL;
1144 }
1145
1146 /* Get the howto structure for a generic reloc type. */
1147
1148 static reloc_howto_type *
1149 alpha_bfd_reloc_type_lookup (bfd *abfd ATTRIBUTE_UNUSED,
1150 bfd_reloc_code_real_type code)
1151 {
1152 int alpha_type;
1153
1154 switch (code)
1155 {
1156 case BFD_RELOC_32:
1157 alpha_type = ALPHA_R_REFLONG;
1158 break;
1159 case BFD_RELOC_64:
1160 case BFD_RELOC_CTOR:
1161 alpha_type = ALPHA_R_REFQUAD;
1162 break;
1163 case BFD_RELOC_GPREL32:
1164 alpha_type = ALPHA_R_GPREL32;
1165 break;
1166 case BFD_RELOC_ALPHA_LITERAL:
1167 alpha_type = ALPHA_R_LITERAL;
1168 break;
1169 case BFD_RELOC_ALPHA_LITUSE:
1170 alpha_type = ALPHA_R_LITUSE;
1171 break;
1172 case BFD_RELOC_ALPHA_GPDISP_HI16:
1173 alpha_type = ALPHA_R_GPDISP;
1174 break;
1175 case BFD_RELOC_ALPHA_GPDISP_LO16:
1176 alpha_type = ALPHA_R_IGNORE;
1177 break;
1178 case BFD_RELOC_23_PCREL_S2:
1179 alpha_type = ALPHA_R_BRADDR;
1180 break;
1181 case BFD_RELOC_ALPHA_HINT:
1182 alpha_type = ALPHA_R_HINT;
1183 break;
1184 case BFD_RELOC_16_PCREL:
1185 alpha_type = ALPHA_R_SREL16;
1186 break;
1187 case BFD_RELOC_32_PCREL:
1188 alpha_type = ALPHA_R_SREL32;
1189 break;
1190 case BFD_RELOC_64_PCREL:
1191 alpha_type = ALPHA_R_SREL64;
1192 break;
1193 default:
1194 return (reloc_howto_type *) NULL;
1195 }
1196
1197 return &alpha_howto_table[alpha_type];
1198 }
1199
1200 static reloc_howto_type *
1201 alpha_bfd_reloc_name_lookup (bfd *abfd ATTRIBUTE_UNUSED,
1202 const char *r_name)
1203 {
1204 unsigned int i;
1205
1206 for (i = 0;
1207 i < sizeof (alpha_howto_table) / sizeof (alpha_howto_table[0]);
1208 i++)
1209 if (alpha_howto_table[i].name != NULL
1210 && strcasecmp (alpha_howto_table[i].name, r_name) == 0)
1211 return &alpha_howto_table[i];
1212
1213 return NULL;
1214 }
1215
1216 /* A helper routine for alpha_relocate_section which converts an
1218 external reloc when generating relocatable output. Returns the
1219 relocation amount. */
1220
1221 static bfd_vma
1222 alpha_convert_external_reloc (bfd *output_bfd ATTRIBUTE_UNUSED,
1223 struct bfd_link_info *info,
1224 bfd *input_bfd,
1225 struct external_reloc *ext_rel,
1226 struct ecoff_link_hash_entry *h)
1227 {
1228 unsigned long r_symndx;
1229 bfd_vma relocation;
1230
1231 BFD_ASSERT (bfd_link_relocatable (info));
1232
1233 if (h->root.type == bfd_link_hash_defined
1234 || h->root.type == bfd_link_hash_defweak)
1235 {
1236 asection *hsec;
1237 const char *name;
1238
1239 /* This symbol is defined in the output. Convert the reloc from
1240 being against the symbol to being against the section. */
1241
1242 /* Clear the r_extern bit. */
1243 ext_rel->r_bits[1] &=~ RELOC_BITS1_EXTERN_LITTLE;
1244
1245 /* Compute a new r_symndx value. */
1246 hsec = h->root.u.def.section;
1247 name = bfd_get_section_name (output_bfd, hsec->output_section);
1248
1249 r_symndx = (unsigned long) -1;
1250 switch (name[1])
1251 {
1252 case 'A':
1253 if (strcmp (name, "*ABS*") == 0)
1254 r_symndx = RELOC_SECTION_ABS;
1255 break;
1256 case 'b':
1257 if (strcmp (name, ".bss") == 0)
1258 r_symndx = RELOC_SECTION_BSS;
1259 break;
1260 case 'd':
1261 if (strcmp (name, ".data") == 0)
1262 r_symndx = RELOC_SECTION_DATA;
1263 break;
1264 case 'f':
1265 if (strcmp (name, ".fini") == 0)
1266 r_symndx = RELOC_SECTION_FINI;
1267 break;
1268 case 'i':
1269 if (strcmp (name, ".init") == 0)
1270 r_symndx = RELOC_SECTION_INIT;
1271 break;
1272 case 'l':
1273 if (strcmp (name, ".lita") == 0)
1274 r_symndx = RELOC_SECTION_LITA;
1275 else if (strcmp (name, ".lit8") == 0)
1276 r_symndx = RELOC_SECTION_LIT8;
1277 else if (strcmp (name, ".lit4") == 0)
1278 r_symndx = RELOC_SECTION_LIT4;
1279 break;
1280 case 'p':
1281 if (strcmp (name, ".pdata") == 0)
1282 r_symndx = RELOC_SECTION_PDATA;
1283 break;
1284 case 'r':
1285 if (strcmp (name, ".rdata") == 0)
1286 r_symndx = RELOC_SECTION_RDATA;
1287 else if (strcmp (name, ".rconst") == 0)
1288 r_symndx = RELOC_SECTION_RCONST;
1289 break;
1290 case 's':
1291 if (strcmp (name, ".sdata") == 0)
1292 r_symndx = RELOC_SECTION_SDATA;
1293 else if (strcmp (name, ".sbss") == 0)
1294 r_symndx = RELOC_SECTION_SBSS;
1295 break;
1296 case 't':
1297 if (strcmp (name, ".text") == 0)
1298 r_symndx = RELOC_SECTION_TEXT;
1299 break;
1300 case 'x':
1301 if (strcmp (name, ".xdata") == 0)
1302 r_symndx = RELOC_SECTION_XDATA;
1303 break;
1304 }
1305
1306 if (r_symndx == (unsigned long) -1)
1307 abort ();
1308
1309 /* Add the section VMA and the symbol value. */
1310 relocation = (h->root.u.def.value
1311 + hsec->output_section->vma
1312 + hsec->output_offset);
1313 }
1314 else
1315 {
1316 /* Change the symndx value to the right one for
1317 the output BFD. */
1318 r_symndx = h->indx;
1319 if (r_symndx == (unsigned long) -1)
1320 {
1321 /* Caller must give an error. */
1322 r_symndx = 0;
1323 }
1324 relocation = 0;
1325 }
1326
1327 /* Write out the new r_symndx value. */
1328 H_PUT_32 (input_bfd, r_symndx, ext_rel->r_symndx);
1329
1330 return relocation;
1331 }
1332
1333 /* Relocate a section while linking an Alpha ECOFF file. This is
1334 quite similar to get_relocated_section_contents. Perhaps they
1335 could be combined somehow. */
1336
1337 static bfd_boolean
1338 alpha_relocate_section (bfd *output_bfd,
1339 struct bfd_link_info *info,
1340 bfd *input_bfd,
1341 asection *input_section,
1342 bfd_byte *contents,
1343 void * external_relocs)
1344 {
1345 asection **symndx_to_section, *lita_sec;
1346 struct ecoff_link_hash_entry **sym_hashes;
1347 bfd_vma gp;
1348 bfd_boolean gp_undefined;
1349 bfd_vma stack[RELOC_STACKSIZE];
1350 int tos = 0;
1351 struct external_reloc *ext_rel;
1352 struct external_reloc *ext_rel_end;
1353 bfd_size_type amt;
1354
1355 /* We keep a table mapping the symndx found in an internal reloc to
1356 the appropriate section. This is faster than looking up the
1357 section by name each time. */
1358 symndx_to_section = ecoff_data (input_bfd)->symndx_to_section;
1359 if (symndx_to_section == (asection **) NULL)
1360 {
1361 amt = NUM_RELOC_SECTIONS * sizeof (asection *);
1362 symndx_to_section = (asection **) bfd_alloc (input_bfd, amt);
1363 if (!symndx_to_section)
1364 return FALSE;
1365
1366 symndx_to_section[RELOC_SECTION_NONE] = NULL;
1367 symndx_to_section[RELOC_SECTION_TEXT] =
1368 bfd_get_section_by_name (input_bfd, ".text");
1369 symndx_to_section[RELOC_SECTION_RDATA] =
1370 bfd_get_section_by_name (input_bfd, ".rdata");
1371 symndx_to_section[RELOC_SECTION_DATA] =
1372 bfd_get_section_by_name (input_bfd, ".data");
1373 symndx_to_section[RELOC_SECTION_SDATA] =
1374 bfd_get_section_by_name (input_bfd, ".sdata");
1375 symndx_to_section[RELOC_SECTION_SBSS] =
1376 bfd_get_section_by_name (input_bfd, ".sbss");
1377 symndx_to_section[RELOC_SECTION_BSS] =
1378 bfd_get_section_by_name (input_bfd, ".bss");
1379 symndx_to_section[RELOC_SECTION_INIT] =
1380 bfd_get_section_by_name (input_bfd, ".init");
1381 symndx_to_section[RELOC_SECTION_LIT8] =
1382 bfd_get_section_by_name (input_bfd, ".lit8");
1383 symndx_to_section[RELOC_SECTION_LIT4] =
1384 bfd_get_section_by_name (input_bfd, ".lit4");
1385 symndx_to_section[RELOC_SECTION_XDATA] =
1386 bfd_get_section_by_name (input_bfd, ".xdata");
1387 symndx_to_section[RELOC_SECTION_PDATA] =
1388 bfd_get_section_by_name (input_bfd, ".pdata");
1389 symndx_to_section[RELOC_SECTION_FINI] =
1390 bfd_get_section_by_name (input_bfd, ".fini");
1391 symndx_to_section[RELOC_SECTION_LITA] =
1392 bfd_get_section_by_name (input_bfd, ".lita");
1393 symndx_to_section[RELOC_SECTION_ABS] = bfd_abs_section_ptr;
1394 symndx_to_section[RELOC_SECTION_RCONST] =
1395 bfd_get_section_by_name (input_bfd, ".rconst");
1396
1397 ecoff_data (input_bfd)->symndx_to_section = symndx_to_section;
1398 }
1399
1400 sym_hashes = ecoff_data (input_bfd)->sym_hashes;
1401
1402 /* On the Alpha, the .lita section must be addressable by the global
1403 pointer. To support large programs, we need to allow multiple
1404 global pointers. This works as long as each input .lita section
1405 is <64KB big. This implies that when producing relocatable
1406 output, the .lita section is limited to 64KB. . */
1407
1408 lita_sec = symndx_to_section[RELOC_SECTION_LITA];
1409 gp = _bfd_get_gp_value (output_bfd);
1410 if (! bfd_link_relocatable (info) && lita_sec != NULL)
1411 {
1412 struct ecoff_section_tdata *lita_sec_data;
1413
1414 /* Make sure we have a section data structure to which we can
1415 hang on to the gp value we pick for the section. */
1416 lita_sec_data = ecoff_section_data (input_bfd, lita_sec);
1417 if (lita_sec_data == NULL)
1418 {
1419 amt = sizeof (struct ecoff_section_tdata);
1420 lita_sec_data = ((struct ecoff_section_tdata *)
1421 bfd_zalloc (input_bfd, amt));
1422 lita_sec->used_by_bfd = lita_sec_data;
1423 }
1424
1425 if (lita_sec_data->gp != 0)
1426 {
1427 /* If we already assigned a gp to this section, we better
1428 stick with that value. */
1429 gp = lita_sec_data->gp;
1430 }
1431 else
1432 {
1433 bfd_vma lita_vma;
1434 bfd_size_type lita_size;
1435
1436 lita_vma = lita_sec->output_offset + lita_sec->output_section->vma;
1437 lita_size = lita_sec->size;
1438
1439 if (gp == 0
1440 || lita_vma < gp - 0x8000
1441 || lita_vma + lita_size >= gp + 0x8000)
1442 {
1443 /* Either gp hasn't been set at all or the current gp
1444 cannot address this .lita section. In both cases we
1445 reset the gp to point into the "middle" of the
1446 current input .lita section. */
1447 if (gp && !ecoff_data (output_bfd)->issued_multiple_gp_warning)
1448 {
1449 (*info->callbacks->warning) (info,
1450 _("using multiple gp values"),
1451 (char *) NULL, output_bfd,
1452 (asection *) NULL, (bfd_vma) 0);
1453 ecoff_data (output_bfd)->issued_multiple_gp_warning = TRUE;
1454 }
1455 if (lita_vma < gp - 0x8000)
1456 gp = lita_vma + lita_size - 0x8000;
1457 else
1458 gp = lita_vma + 0x8000;
1459
1460 }
1461
1462 lita_sec_data->gp = gp;
1463 }
1464
1465 _bfd_set_gp_value (output_bfd, gp);
1466 }
1467
1468 gp_undefined = (gp == 0);
1469
1470 BFD_ASSERT (bfd_header_little_endian (output_bfd));
1471 BFD_ASSERT (bfd_header_little_endian (input_bfd));
1472
1473 ext_rel = (struct external_reloc *) external_relocs;
1474 ext_rel_end = ext_rel + input_section->reloc_count;
1475 for (; ext_rel < ext_rel_end; ext_rel++)
1476 {
1477 bfd_vma r_vaddr;
1478 unsigned long r_symndx;
1479 int r_type;
1480 int r_extern;
1481 int r_offset;
1482 int r_size;
1483 bfd_boolean relocatep;
1484 bfd_boolean adjust_addrp;
1485 bfd_boolean gp_usedp;
1486 bfd_vma addend;
1487
1488 r_vaddr = H_GET_64 (input_bfd, ext_rel->r_vaddr);
1489 r_symndx = H_GET_32 (input_bfd, ext_rel->r_symndx);
1490
1491 r_type = ((ext_rel->r_bits[0] & RELOC_BITS0_TYPE_LITTLE)
1492 >> RELOC_BITS0_TYPE_SH_LITTLE);
1493 r_extern = (ext_rel->r_bits[1] & RELOC_BITS1_EXTERN_LITTLE) != 0;
1494 r_offset = ((ext_rel->r_bits[1] & RELOC_BITS1_OFFSET_LITTLE)
1495 >> RELOC_BITS1_OFFSET_SH_LITTLE);
1496 /* Ignored the reserved bits. */
1497 r_size = ((ext_rel->r_bits[3] & RELOC_BITS3_SIZE_LITTLE)
1498 >> RELOC_BITS3_SIZE_SH_LITTLE);
1499
1500 relocatep = FALSE;
1501 adjust_addrp = TRUE;
1502 gp_usedp = FALSE;
1503 addend = 0;
1504
1505 switch (r_type)
1506 {
1507 case ALPHA_R_GPRELHIGH:
1508 _bfd_error_handler
1509 (_("%B: unsupported relocation: ALPHA_R_GPRELHIGH"),
1510 input_bfd);
1511 bfd_set_error (bfd_error_bad_value);
1512 continue;
1513
1514 case ALPHA_R_GPRELLOW:
1515 _bfd_error_handler
1516 (_("%B: unsupported relocation: ALPHA_R_GPRELLOW"),
1517 input_bfd);
1518 bfd_set_error (bfd_error_bad_value);
1519 continue;
1520
1521 default:
1522 _bfd_error_handler
1523 /* xgettext:c-format */
1524 (_("%B: unknown relocation type %d"),
1525 input_bfd, (int) r_type);
1526 bfd_set_error (bfd_error_bad_value);
1527 continue;
1528
1529 case ALPHA_R_IGNORE:
1530 /* This reloc appears after a GPDISP reloc. On earlier
1531 versions of OSF/1, It marked the position of the second
1532 instruction to be altered by the GPDISP reloc, but it is
1533 not otherwise used for anything. For some reason, the
1534 address of the relocation does not appear to include the
1535 section VMA, unlike the other relocation types. */
1536 if (bfd_link_relocatable (info))
1537 H_PUT_64 (input_bfd, input_section->output_offset + r_vaddr,
1538 ext_rel->r_vaddr);
1539 adjust_addrp = FALSE;
1540 break;
1541
1542 case ALPHA_R_REFLONG:
1543 case ALPHA_R_REFQUAD:
1544 case ALPHA_R_HINT:
1545 relocatep = TRUE;
1546 break;
1547
1548 case ALPHA_R_BRADDR:
1549 case ALPHA_R_SREL16:
1550 case ALPHA_R_SREL32:
1551 case ALPHA_R_SREL64:
1552 if (r_extern)
1553 addend += - (r_vaddr + 4);
1554 relocatep = TRUE;
1555 break;
1556
1557 case ALPHA_R_GPREL32:
1558 /* This relocation is used in a switch table. It is a 32
1559 bit offset from the current GP value. We must adjust it
1560 by the different between the original GP value and the
1561 current GP value. */
1562 relocatep = TRUE;
1563 addend = ecoff_data (input_bfd)->gp - gp;
1564 gp_usedp = TRUE;
1565 break;
1566
1567 case ALPHA_R_LITERAL:
1568 /* This is a reference to a literal value, generally
1569 (always?) in the .lita section. This is a 16 bit GP
1570 relative relocation. Sometimes the subsequent reloc is a
1571 LITUSE reloc, which indicates how this reloc is used.
1572 This sometimes permits rewriting the two instructions
1573 referred to by the LITERAL and the LITUSE into different
1574 instructions which do not refer to .lita. This can save
1575 a memory reference, and permits removing a value from
1576 .lita thus saving GP relative space.
1577
1578 We do not these optimizations. To do them we would need
1579 to arrange to link the .lita section first, so that by
1580 the time we got here we would know the final values to
1581 use. This would not be particularly difficult, but it is
1582 not currently implemented. */
1583
1584 /* I believe that the LITERAL reloc will only apply to a ldq
1585 or ldl instruction, so check my assumption. */
1586 {
1587 unsigned long insn;
1588
1589 insn = bfd_get_32 (input_bfd,
1590 contents + r_vaddr - input_section->vma);
1591 BFD_ASSERT (((insn >> 26) & 0x3f) == 0x29
1592 || ((insn >> 26) & 0x3f) == 0x28);
1593 }
1594
1595 relocatep = TRUE;
1596 addend = ecoff_data (input_bfd)->gp - gp;
1597 gp_usedp = TRUE;
1598 break;
1599
1600 case ALPHA_R_LITUSE:
1601 /* See ALPHA_R_LITERAL above for the uses of this reloc. It
1602 does not cause anything to happen, itself. */
1603 break;
1604
1605 case ALPHA_R_GPDISP:
1606 /* This marks the ldah of an ldah/lda pair which loads the
1607 gp register with the difference of the gp value and the
1608 current location. The second of the pair is r_symndx
1609 bytes ahead. It used to be marked with an ALPHA_R_IGNORE
1610 reloc, but OSF/1 3.2 no longer does that. */
1611 {
1612 unsigned long insn1, insn2;
1613
1614 /* Get the two instructions. */
1615 insn1 = bfd_get_32 (input_bfd,
1616 contents + r_vaddr - input_section->vma);
1617 insn2 = bfd_get_32 (input_bfd,
1618 (contents
1619 + r_vaddr
1620 - input_section->vma
1621 + r_symndx));
1622
1623 BFD_ASSERT (((insn1 >> 26) & 0x3f) == 0x09); /* ldah */
1624 BFD_ASSERT (((insn2 >> 26) & 0x3f) == 0x08); /* lda */
1625
1626 /* Get the existing addend. We must account for the sign
1627 extension done by lda and ldah. */
1628 addend = ((insn1 & 0xffff) << 16) + (insn2 & 0xffff);
1629 if (insn1 & 0x8000)
1630 {
1631 /* This is addend -= 0x100000000 without causing an
1632 integer overflow on a 32 bit host. */
1633 addend -= 0x80000000;
1634 addend -= 0x80000000;
1635 }
1636 if (insn2 & 0x8000)
1637 addend -= 0x10000;
1638
1639 /* The existing addend includes the difference between the
1640 gp of the input BFD and the address in the input BFD.
1641 We want to change this to the difference between the
1642 final GP and the final address. */
1643 addend += (gp
1644 - ecoff_data (input_bfd)->gp
1645 + input_section->vma
1646 - (input_section->output_section->vma
1647 + input_section->output_offset));
1648
1649 /* Change the instructions, accounting for the sign
1650 extension, and write them out. */
1651 if (addend & 0x8000)
1652 addend += 0x10000;
1653 insn1 = (insn1 & 0xffff0000) | ((addend >> 16) & 0xffff);
1654 insn2 = (insn2 & 0xffff0000) | (addend & 0xffff);
1655
1656 bfd_put_32 (input_bfd, (bfd_vma) insn1,
1657 contents + r_vaddr - input_section->vma);
1658 bfd_put_32 (input_bfd, (bfd_vma) insn2,
1659 contents + r_vaddr - input_section->vma + r_symndx);
1660
1661 gp_usedp = TRUE;
1662 }
1663 break;
1664
1665 case ALPHA_R_OP_PUSH:
1666 case ALPHA_R_OP_PSUB:
1667 case ALPHA_R_OP_PRSHIFT:
1668 /* Manipulate values on the reloc evaluation stack. The
1669 r_vaddr field is not an address in input_section, it is
1670 the current value (including any addend) of the object
1671 being used. */
1672 if (! r_extern)
1673 {
1674 asection *s;
1675
1676 s = symndx_to_section[r_symndx];
1677 if (s == (asection *) NULL)
1678 abort ();
1679 addend = s->output_section->vma + s->output_offset - s->vma;
1680 }
1681 else
1682 {
1683 struct ecoff_link_hash_entry *h;
1684
1685 h = sym_hashes[r_symndx];
1686 if (h == (struct ecoff_link_hash_entry *) NULL)
1687 abort ();
1688
1689 if (! bfd_link_relocatable (info))
1690 {
1691 if (h->root.type == bfd_link_hash_defined
1692 || h->root.type == bfd_link_hash_defweak)
1693 addend = (h->root.u.def.value
1694 + h->root.u.def.section->output_section->vma
1695 + h->root.u.def.section->output_offset);
1696 else
1697 {
1698 /* Note that we pass the address as 0, since we
1699 do not have a meaningful number for the
1700 location within the section that is being
1701 relocated. */
1702 (*info->callbacks->undefined_symbol)
1703 (info, h->root.root.string, input_bfd,
1704 input_section, (bfd_vma) 0, TRUE);
1705 addend = 0;
1706 }
1707 }
1708 else
1709 {
1710 if (h->root.type != bfd_link_hash_defined
1711 && h->root.type != bfd_link_hash_defweak
1712 && h->indx == -1)
1713 {
1714 /* This symbol is not being written out. Pass
1715 the address as 0, as with undefined_symbol,
1716 above. */
1717 (*info->callbacks->unattached_reloc)
1718 (info, h->root.root.string,
1719 input_bfd, input_section, (bfd_vma) 0);
1720 }
1721
1722 addend = alpha_convert_external_reloc (output_bfd, info,
1723 input_bfd,
1724 ext_rel, h);
1725 }
1726 }
1727
1728 addend += r_vaddr;
1729
1730 if (bfd_link_relocatable (info))
1731 {
1732 /* Adjust r_vaddr by the addend. */
1733 H_PUT_64 (input_bfd, addend, ext_rel->r_vaddr);
1734 }
1735 else
1736 {
1737 switch (r_type)
1738 {
1739 case ALPHA_R_OP_PUSH:
1740 if (tos >= RELOC_STACKSIZE)
1741 abort ();
1742 stack[tos++] = addend;
1743 break;
1744
1745 case ALPHA_R_OP_PSUB:
1746 if (tos == 0)
1747 abort ();
1748 stack[tos - 1] -= addend;
1749 break;
1750
1751 case ALPHA_R_OP_PRSHIFT:
1752 if (tos == 0)
1753 abort ();
1754 stack[tos - 1] >>= addend;
1755 break;
1756 }
1757 }
1758
1759 adjust_addrp = FALSE;
1760 break;
1761
1762 case ALPHA_R_OP_STORE:
1763 /* Store a value from the reloc stack into a bitfield. If
1764 we are generating relocatable output, all we do is
1765 adjust the address of the reloc. */
1766 if (! bfd_link_relocatable (info))
1767 {
1768 bfd_vma mask;
1769 bfd_vma val;
1770
1771 if (tos == 0)
1772 abort ();
1773
1774 /* Get the relocation mask. The separate steps and the
1775 casts to bfd_vma are attempts to avoid a bug in the
1776 Alpha OSF 1.3 C compiler. See reloc.c for more
1777 details. */
1778 mask = 1;
1779 mask <<= (bfd_vma) r_size;
1780 mask -= 1;
1781
1782 /* FIXME: I don't know what kind of overflow checking,
1783 if any, should be done here. */
1784 val = bfd_get_64 (input_bfd,
1785 contents + r_vaddr - input_section->vma);
1786 val &=~ mask << (bfd_vma) r_offset;
1787 val |= (stack[--tos] & mask) << (bfd_vma) r_offset;
1788 bfd_put_64 (input_bfd, val,
1789 contents + r_vaddr - input_section->vma);
1790 }
1791 break;
1792
1793 case ALPHA_R_GPVALUE:
1794 /* I really don't know if this does the right thing. */
1795 gp = ecoff_data (input_bfd)->gp + r_symndx;
1796 gp_undefined = FALSE;
1797 break;
1798 }
1799
1800 if (relocatep)
1801 {
1802 reloc_howto_type *howto;
1803 struct ecoff_link_hash_entry *h = NULL;
1804 asection *s = NULL;
1805 bfd_vma relocation;
1806 bfd_reloc_status_type r;
1807
1808 /* Perform a relocation. */
1809
1810 howto = &alpha_howto_table[r_type];
1811
1812 if (r_extern)
1813 {
1814 h = sym_hashes[r_symndx];
1815 /* If h is NULL, that means that there is a reloc
1816 against an external symbol which we thought was just
1817 a debugging symbol. This should not happen. */
1818 if (h == (struct ecoff_link_hash_entry *) NULL)
1819 abort ();
1820 }
1821 else
1822 {
1823 if (r_symndx >= NUM_RELOC_SECTIONS)
1824 s = NULL;
1825 else
1826 s = symndx_to_section[r_symndx];
1827
1828 if (s == (asection *) NULL)
1829 abort ();
1830 }
1831
1832 if (bfd_link_relocatable (info))
1833 {
1834 /* We are generating relocatable output, and must
1835 convert the existing reloc. */
1836 if (r_extern)
1837 {
1838 if (h->root.type != bfd_link_hash_defined
1839 && h->root.type != bfd_link_hash_defweak
1840 && h->indx == -1)
1841 {
1842 /* This symbol is not being written out. */
1843 (*info->callbacks->unattached_reloc)
1844 (info, h->root.root.string, input_bfd,
1845 input_section, r_vaddr - input_section->vma);
1846 }
1847
1848 relocation = alpha_convert_external_reloc (output_bfd,
1849 info,
1850 input_bfd,
1851 ext_rel,
1852 h);
1853 }
1854 else
1855 {
1856 /* This is a relocation against a section. Adjust
1857 the value by the amount the section moved. */
1858 relocation = (s->output_section->vma
1859 + s->output_offset
1860 - s->vma);
1861 }
1862
1863 /* If this is PC relative, the existing object file
1864 appears to already have the reloc worked out. We
1865 must subtract out the old value and add in the new
1866 one. */
1867 if (howto->pc_relative)
1868 relocation -= (input_section->output_section->vma
1869 + input_section->output_offset
1870 - input_section->vma);
1871
1872 /* Put in any addend. */
1873 relocation += addend;
1874
1875 /* Adjust the contents. */
1876 r = _bfd_relocate_contents (howto, input_bfd, relocation,
1877 (contents
1878 + r_vaddr
1879 - input_section->vma));
1880 }
1881 else
1882 {
1883 /* We are producing a final executable. */
1884 if (r_extern)
1885 {
1886 /* This is a reloc against a symbol. */
1887 if (h->root.type == bfd_link_hash_defined
1888 || h->root.type == bfd_link_hash_defweak)
1889 {
1890 asection *hsec;
1891
1892 hsec = h->root.u.def.section;
1893 relocation = (h->root.u.def.value
1894 + hsec->output_section->vma
1895 + hsec->output_offset);
1896 }
1897 else
1898 {
1899 (*info->callbacks->undefined_symbol)
1900 (info, h->root.root.string, input_bfd, input_section,
1901 r_vaddr - input_section->vma, TRUE);
1902 relocation = 0;
1903 }
1904 }
1905 else
1906 {
1907 /* This is a reloc against a section. */
1908 relocation = (s->output_section->vma
1909 + s->output_offset
1910 - s->vma);
1911
1912 /* Adjust a PC relative relocation by removing the
1913 reference to the original source section. */
1914 if (howto->pc_relative)
1915 relocation += input_section->vma;
1916 }
1917
1918 r = _bfd_final_link_relocate (howto,
1919 input_bfd,
1920 input_section,
1921 contents,
1922 r_vaddr - input_section->vma,
1923 relocation,
1924 addend);
1925 }
1926
1927 if (r != bfd_reloc_ok)
1928 {
1929 switch (r)
1930 {
1931 default:
1932 case bfd_reloc_outofrange:
1933 abort ();
1934 case bfd_reloc_overflow:
1935 {
1936 const char *name;
1937
1938 if (r_extern)
1939 name = sym_hashes[r_symndx]->root.root.string;
1940 else
1941 name = bfd_section_name (input_bfd,
1942 symndx_to_section[r_symndx]);
1943 (*info->callbacks->reloc_overflow)
1944 (info, NULL, name, alpha_howto_table[r_type].name,
1945 (bfd_vma) 0, input_bfd, input_section,
1946 r_vaddr - input_section->vma);
1947 }
1948 break;
1949 }
1950 }
1951 }
1952
1953 if (bfd_link_relocatable (info) && adjust_addrp)
1954 {
1955 /* Change the address of the relocation. */
1956 H_PUT_64 (input_bfd,
1957 (input_section->output_section->vma
1958 + input_section->output_offset
1959 - input_section->vma
1960 + r_vaddr),
1961 ext_rel->r_vaddr);
1962 }
1963
1964 if (gp_usedp && gp_undefined)
1965 {
1966 (*info->callbacks->reloc_dangerous)
1967 (info, _("GP relative relocation used when GP not defined"),
1968 input_bfd, input_section, r_vaddr - input_section->vma);
1969 /* Only give the error once per link. */
1970 gp = 4;
1971 _bfd_set_gp_value (output_bfd, gp);
1972 gp_undefined = FALSE;
1973 }
1974 }
1975
1976 if (tos != 0)
1977 abort ();
1978
1979 return TRUE;
1980 }
1981
1982 /* Do final adjustments to the filehdr and the aouthdr. This routine
1984 sets the dynamic bits in the file header. */
1985
1986 static bfd_boolean
1987 alpha_adjust_headers (bfd *abfd,
1988 struct internal_filehdr *fhdr,
1989 struct internal_aouthdr *ahdr ATTRIBUTE_UNUSED)
1990 {
1991 if ((abfd->flags & (DYNAMIC | EXEC_P)) == (DYNAMIC | EXEC_P))
1992 fhdr->f_flags |= F_ALPHA_CALL_SHARED;
1993 else if ((abfd->flags & DYNAMIC) != 0)
1994 fhdr->f_flags |= F_ALPHA_SHARABLE;
1995 return TRUE;
1996 }
1997
1998 /* Archive handling. In OSF/1 (or Digital Unix) v3.2, Digital
2000 introduced archive packing, in which the elements in an archive are
2001 optionally compressed using a simple dictionary scheme. We know
2002 how to read such archives, but we don't write them. */
2003
2004 #define alpha_ecoff_slurp_armap _bfd_ecoff_slurp_armap
2005 #define alpha_ecoff_slurp_extended_name_table \
2006 _bfd_ecoff_slurp_extended_name_table
2007 #define alpha_ecoff_construct_extended_name_table \
2008 _bfd_ecoff_construct_extended_name_table
2009 #define alpha_ecoff_truncate_arname _bfd_ecoff_truncate_arname
2010 #define alpha_ecoff_write_armap _bfd_ecoff_write_armap
2011 #define alpha_ecoff_write_ar_hdr _bfd_generic_write_ar_hdr
2012 #define alpha_ecoff_generic_stat_arch_elt _bfd_ecoff_generic_stat_arch_elt
2013 #define alpha_ecoff_update_armap_timestamp _bfd_ecoff_update_armap_timestamp
2014
2015 /* A compressed file uses this instead of ARFMAG. */
2016
2017 #define ARFZMAG "Z\012"
2018
2019 /* Read an archive header. This is like the standard routine, but it
2020 also accepts ARFZMAG. */
2021
2022 static void *
2023 alpha_ecoff_read_ar_hdr (bfd *abfd)
2024 {
2025 struct areltdata *ret;
2026 struct ar_hdr *h;
2027
2028 ret = (struct areltdata *) _bfd_generic_read_ar_hdr_mag (abfd, ARFZMAG);
2029 if (ret == NULL)
2030 return NULL;
2031
2032 h = (struct ar_hdr *) ret->arch_header;
2033 if (strncmp (h->ar_fmag, ARFZMAG, 2) == 0)
2034 {
2035 bfd_byte ab[8];
2036
2037 /* This is a compressed file. We must set the size correctly.
2038 The size is the eight bytes after the dummy file header. */
2039 if (bfd_seek (abfd, (file_ptr) FILHSZ, SEEK_CUR) != 0
2040 || bfd_bread (ab, (bfd_size_type) 8, abfd) != 8
2041 || bfd_seek (abfd, (file_ptr) (- (FILHSZ + 8)), SEEK_CUR) != 0)
2042 return NULL;
2043
2044 ret->parsed_size = H_GET_64 (abfd, ab);
2045 }
2046
2047 return ret;
2048 }
2049
2050 /* Get an archive element at a specified file position. This is where
2051 we uncompress the archive element if necessary. */
2052
2053 static bfd *
2054 alpha_ecoff_get_elt_at_filepos (bfd *archive, file_ptr filepos)
2055 {
2056 bfd *nbfd = NULL;
2057 struct areltdata *tdata;
2058 struct ar_hdr *hdr;
2059 bfd_byte ab[8];
2060 bfd_size_type size;
2061 bfd_byte *buf, *p;
2062 struct bfd_in_memory *bim;
2063
2064 buf = NULL;
2065 nbfd = _bfd_get_elt_at_filepos (archive, filepos);
2066 if (nbfd == NULL)
2067 goto error_return;
2068
2069 if ((nbfd->flags & BFD_IN_MEMORY) != 0)
2070 {
2071 /* We have already expanded this BFD. */
2072 return nbfd;
2073 }
2074
2075 tdata = (struct areltdata *) nbfd->arelt_data;
2076 hdr = (struct ar_hdr *) tdata->arch_header;
2077 if (strncmp (hdr->ar_fmag, ARFZMAG, 2) != 0)
2078 return nbfd;
2079
2080 /* We must uncompress this element. We do this by copying it into a
2081 memory buffer, and making bfd_bread and bfd_seek use that buffer.
2082 This can use a lot of memory, but it's simpler than getting a
2083 temporary file, making that work with the file descriptor caching
2084 code, and making sure that it is deleted at all appropriate
2085 times. It can be changed if it ever becomes important. */
2086
2087 /* The compressed file starts with a dummy ECOFF file header. */
2088 if (bfd_seek (nbfd, (file_ptr) FILHSZ, SEEK_SET) != 0)
2089 goto error_return;
2090
2091 /* The next eight bytes are the real file size. */
2092 if (bfd_bread (ab, (bfd_size_type) 8, nbfd) != 8)
2093 goto error_return;
2094 size = H_GET_64 (nbfd, ab);
2095
2096 if (size != 0)
2097 {
2098 bfd_size_type left;
2099 bfd_byte dict[4096];
2100 unsigned int h;
2101 bfd_byte b;
2102
2103 buf = (bfd_byte *) bfd_malloc (size);
2104 if (buf == NULL)
2105 goto error_return;
2106 p = buf;
2107
2108 left = size;
2109
2110 /* I don't know what the next eight bytes are for. */
2111 if (bfd_bread (ab, (bfd_size_type) 8, nbfd) != 8)
2112 goto error_return;
2113
2114 /* This is the uncompression algorithm. It's a simple
2115 dictionary based scheme in which each character is predicted
2116 by a hash of the previous three characters. A control byte
2117 indicates whether the character is predicted or whether it
2118 appears in the input stream; each control byte manages the
2119 next eight bytes in the output stream. */
2120 memset (dict, 0, sizeof dict);
2121 h = 0;
2122 while (bfd_bread (&b, (bfd_size_type) 1, nbfd) == 1)
2123 {
2124 unsigned int i;
2125
2126 for (i = 0; i < 8; i++, b >>= 1)
2127 {
2128 bfd_byte n;
2129
2130 if ((b & 1) == 0)
2131 n = dict[h];
2132 else
2133 {
2134 if (! bfd_bread (&n, (bfd_size_type) 1, nbfd))
2135 goto error_return;
2136 dict[h] = n;
2137 }
2138
2139 *p++ = n;
2140
2141 --left;
2142 if (left == 0)
2143 break;
2144
2145 h <<= 4;
2146 h ^= n;
2147 h &= sizeof dict - 1;
2148 }
2149
2150 if (left == 0)
2151 break;
2152 }
2153 }
2154
2155 /* Now the uncompressed file contents are in buf. */
2156 bim = ((struct bfd_in_memory *)
2157 bfd_malloc ((bfd_size_type) sizeof (struct bfd_in_memory)));
2158 if (bim == NULL)
2159 goto error_return;
2160 bim->size = size;
2161 bim->buffer = buf;
2162
2163 nbfd->mtime_set = TRUE;
2164 nbfd->mtime = strtol (hdr->ar_date, (char **) NULL, 10);
2165
2166 nbfd->flags |= BFD_IN_MEMORY;
2167 nbfd->iostream = bim;
2168 nbfd->iovec = &_bfd_memory_iovec;
2169 nbfd->origin = 0;
2170 BFD_ASSERT (! nbfd->cacheable);
2171
2172 return nbfd;
2173
2174 error_return:
2175 if (buf != NULL)
2176 free (buf);
2177 if (nbfd != NULL)
2178 bfd_close (nbfd);
2179 return NULL;
2180 }
2181
2182 /* Open the next archived file. */
2183
2184 static bfd *
2185 alpha_ecoff_openr_next_archived_file (bfd *archive, bfd *last_file)
2186 {
2187 ufile_ptr filestart;
2188
2189 if (last_file == NULL)
2190 filestart = bfd_ardata (archive)->first_file_filepos;
2191 else
2192 {
2193 struct areltdata *t;
2194 struct ar_hdr *h;
2195 bfd_size_type size;
2196
2197 /* We can't use arelt_size here, because that uses parsed_size,
2198 which is the uncompressed size. We need the compressed size. */
2199 t = (struct areltdata *) last_file->arelt_data;
2200 h = (struct ar_hdr *) t->arch_header;
2201 size = strtol (h->ar_size, (char **) NULL, 10);
2202
2203 /* Pad to an even boundary...
2204 Note that last_file->origin can be odd in the case of
2205 BSD-4.4-style element with a long odd size. */
2206 filestart = last_file->proxy_origin + size;
2207 filestart += filestart % 2;
2208 if (filestart < last_file->proxy_origin)
2209 {
2210 /* Prevent looping. See PR19256. */
2211 bfd_set_error (bfd_error_malformed_archive);
2212 return NULL;
2213 }
2214 }
2215
2216 return alpha_ecoff_get_elt_at_filepos (archive, filestart);
2217 }
2218
2219 /* Open the archive file given an index into the armap. */
2220
2221 static bfd *
2222 alpha_ecoff_get_elt_at_index (bfd *abfd, symindex sym_index)
2223 {
2224 carsym *entry;
2225
2226 entry = bfd_ardata (abfd)->symdefs + sym_index;
2227 return alpha_ecoff_get_elt_at_filepos (abfd, entry->file_offset);
2228 }
2229
2230 /* This is the ECOFF backend structure. The backend field of the
2232 target vector points to this. */
2233
2234 static const struct ecoff_backend_data alpha_ecoff_backend_data =
2235 {
2236 /* COFF backend structure. */
2237 {
2238 (void (*) (bfd *,void *,int,int,int,int,void *)) bfd_void, /* aux_in */
2239 (void (*) (bfd *,void *,void *)) bfd_void, /* sym_in */
2240 (void (*) (bfd *,void *,void *)) bfd_void, /* lineno_in */
2241 (unsigned (*) (bfd *,void *,int,int,int,int,void *)) bfd_void,/*aux_out*/
2242 (unsigned (*) (bfd *,void *,void *)) bfd_void, /* sym_out */
2243 (unsigned (*) (bfd *,void *,void *)) bfd_void, /* lineno_out */
2244 (unsigned (*) (bfd *,void *,void *)) bfd_void, /* reloc_out */
2245 alpha_ecoff_swap_filehdr_out, alpha_ecoff_swap_aouthdr_out,
2246 alpha_ecoff_swap_scnhdr_out,
2247 FILHSZ, AOUTSZ, SCNHSZ, 0, 0, 0, 0, FILNMLEN, TRUE,
2248 ECOFF_NO_LONG_SECTION_NAMES, 4, FALSE, 2, 32768,
2249 alpha_ecoff_swap_filehdr_in, alpha_ecoff_swap_aouthdr_in,
2250 alpha_ecoff_swap_scnhdr_in, NULL,
2251 alpha_ecoff_bad_format_hook, _bfd_ecoff_set_arch_mach_hook,
2252 alpha_ecoff_mkobject_hook, _bfd_ecoff_styp_to_sec_flags,
2253 _bfd_ecoff_set_alignment_hook, _bfd_ecoff_slurp_symbol_table,
2254 NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL,
2255 NULL, NULL, NULL, NULL
2256 },
2257 /* Supported architecture. */
2258 bfd_arch_alpha,
2259 /* Initial portion of armap string. */
2260 "________64",
2261 /* The page boundary used to align sections in a demand-paged
2262 executable file. E.g., 0x1000. */
2263 0x2000,
2264 /* TRUE if the .rdata section is part of the text segment, as on the
2265 Alpha. FALSE if .rdata is part of the data segment, as on the
2266 MIPS. */
2267 TRUE,
2268 /* Bitsize of constructor entries. */
2269 64,
2270 /* Reloc to use for constructor entries. */
2271 &alpha_howto_table[ALPHA_R_REFQUAD],
2272 {
2273 /* Symbol table magic number. */
2274 magicSym2,
2275 /* Alignment of debugging information. E.g., 4. */
2276 8,
2277 /* Sizes of external symbolic information. */
2278 sizeof (struct hdr_ext),
2279 sizeof (struct dnr_ext),
2280 sizeof (struct pdr_ext),
2281 sizeof (struct sym_ext),
2282 sizeof (struct opt_ext),
2283 sizeof (struct fdr_ext),
2284 sizeof (struct rfd_ext),
2285 sizeof (struct ext_ext),
2286 /* Functions to swap in external symbolic data. */
2287 ecoff_swap_hdr_in,
2288 ecoff_swap_dnr_in,
2289 ecoff_swap_pdr_in,
2290 ecoff_swap_sym_in,
2291 ecoff_swap_opt_in,
2292 ecoff_swap_fdr_in,
2293 ecoff_swap_rfd_in,
2294 ecoff_swap_ext_in,
2295 _bfd_ecoff_swap_tir_in,
2296 _bfd_ecoff_swap_rndx_in,
2297 /* Functions to swap out external symbolic data. */
2298 ecoff_swap_hdr_out,
2299 ecoff_swap_dnr_out,
2300 ecoff_swap_pdr_out,
2301 ecoff_swap_sym_out,
2302 ecoff_swap_opt_out,
2303 ecoff_swap_fdr_out,
2304 ecoff_swap_rfd_out,
2305 ecoff_swap_ext_out,
2306 _bfd_ecoff_swap_tir_out,
2307 _bfd_ecoff_swap_rndx_out,
2308 /* Function to read in symbolic data. */
2309 _bfd_ecoff_slurp_symbolic_info
2310 },
2311 /* External reloc size. */
2312 RELSZ,
2313 /* Reloc swapping functions. */
2314 alpha_ecoff_swap_reloc_in,
2315 alpha_ecoff_swap_reloc_out,
2316 /* Backend reloc tweaking. */
2317 alpha_adjust_reloc_in,
2318 alpha_adjust_reloc_out,
2319 /* Relocate section contents while linking. */
2320 alpha_relocate_section,
2321 /* Do final adjustments to filehdr and aouthdr. */
2322 alpha_adjust_headers,
2323 /* Read an element from an archive at a given file position. */
2324 alpha_ecoff_get_elt_at_filepos
2325 };
2326
2327 /* Looking up a reloc type is Alpha specific. */
2328 #define _bfd_ecoff_bfd_reloc_type_lookup alpha_bfd_reloc_type_lookup
2329 #define _bfd_ecoff_bfd_reloc_name_lookup \
2330 alpha_bfd_reloc_name_lookup
2331
2332 /* So is getting relocated section contents. */
2333 #define _bfd_ecoff_bfd_get_relocated_section_contents \
2334 alpha_ecoff_get_relocated_section_contents
2335
2336 /* Handling file windows is generic. */
2337 #define _bfd_ecoff_get_section_contents_in_window \
2338 _bfd_generic_get_section_contents_in_window
2339
2340 /* Input section flag lookup is generic. */
2341 #define _bfd_ecoff_bfd_lookup_section_flags bfd_generic_lookup_section_flags
2342
2343 /* Relaxing sections is generic. */
2344 #define _bfd_ecoff_bfd_relax_section bfd_generic_relax_section
2345 #define _bfd_ecoff_bfd_gc_sections bfd_generic_gc_sections
2346 #define _bfd_ecoff_bfd_merge_sections bfd_generic_merge_sections
2347 #define _bfd_ecoff_bfd_is_group_section bfd_generic_is_group_section
2348 #define _bfd_ecoff_bfd_discard_group bfd_generic_discard_group
2349 #define _bfd_ecoff_section_already_linked \
2350 _bfd_coff_section_already_linked
2351 #define _bfd_ecoff_bfd_define_common_symbol bfd_generic_define_common_symbol
2352 #define _bfd_ecoff_bfd_link_check_relocs _bfd_generic_link_check_relocs
2353
2354 const bfd_target alpha_ecoff_le_vec =
2355 {
2356 "ecoff-littlealpha", /* name */
2357 bfd_target_ecoff_flavour,
2358 BFD_ENDIAN_LITTLE, /* data byte order is little */
2359 BFD_ENDIAN_LITTLE, /* header byte order is little */
2360
2361 (HAS_RELOC | EXEC_P | /* object flags */
2362 HAS_LINENO | HAS_DEBUG |
2363 HAS_SYMS | HAS_LOCALS | DYNAMIC | WP_TEXT | D_PAGED),
2364
2365 (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_CODE | SEC_DATA),
2366 0, /* leading underscore */
2367 ' ', /* ar_pad_char */
2368 15, /* ar_max_namelen */
2369 0, /* match priority. */
2370 bfd_getl64, bfd_getl_signed_64, bfd_putl64,
2371 bfd_getl32, bfd_getl_signed_32, bfd_putl32,
2372 bfd_getl16, bfd_getl_signed_16, bfd_putl16, /* data */
2373 bfd_getl64, bfd_getl_signed_64, bfd_putl64,
2374 bfd_getl32, bfd_getl_signed_32, bfd_putl32,
2375 bfd_getl16, bfd_getl_signed_16, bfd_putl16, /* hdrs */
2376
2377 {_bfd_dummy_target, alpha_ecoff_object_p, /* bfd_check_format */
2378 bfd_generic_archive_p, _bfd_dummy_target},
2379 {bfd_false, _bfd_ecoff_mkobject, /* bfd_set_format */
2380 _bfd_generic_mkarchive, bfd_false},
2381 {bfd_false, _bfd_ecoff_write_object_contents, /* bfd_write_contents */
2382 _bfd_write_archive_contents, bfd_false},
2383
2384 BFD_JUMP_TABLE_GENERIC (_bfd_ecoff),
2385 BFD_JUMP_TABLE_COPY (_bfd_ecoff),
2386 BFD_JUMP_TABLE_CORE (_bfd_nocore),
2387 BFD_JUMP_TABLE_ARCHIVE (alpha_ecoff),
2388 BFD_JUMP_TABLE_SYMBOLS (_bfd_ecoff),
2389 BFD_JUMP_TABLE_RELOCS (_bfd_ecoff),
2390 BFD_JUMP_TABLE_WRITE (_bfd_ecoff),
2391 BFD_JUMP_TABLE_LINK (_bfd_ecoff),
2392 BFD_JUMP_TABLE_DYNAMIC (_bfd_nodynamic),
2393
2394 NULL,
2395
2396 & alpha_ecoff_backend_data
2397 };
2398