1 /* BFD back-end for Renesas H8/300 COFF binaries.
2 Copyright 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999,
4 Free Software Foundation, Inc.
5 Written by Steve Chamberlain, <sac@cygnus.com>.
7 This file is part of BFD, the Binary File Descriptor library.
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 2 of the License, or
12 (at your option) any later version.
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
19 You should have received a copy of the GNU General Public License
20 along with this program; if not, write to the Free Software
21 Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
28 #include "coff/h8300.h"
29 #include "coff/internal.h"
31 #include "libiberty.h"
33 #define COFF_DEFAULT_SECTION_ALIGNMENT_POWER (1)
35 /* We derive a hash table from the basic BFD hash table to
36 hold entries in the function vector. Aside from the
37 info stored by the basic hash table, we need the offset
38 of a particular entry within the hash table as well as
39 the offset where we'll add the next entry. */
41 struct funcvec_hash_entry
43 /* The basic hash table entry. */
44 struct bfd_hash_entry root
;
46 /* The offset within the vectors section where
51 struct funcvec_hash_table
53 /* The basic hash table. */
54 struct bfd_hash_table root
;
58 /* Offset at which we'll add the next entry. */
62 static struct bfd_hash_entry
*
64 PARAMS ((struct bfd_hash_entry
*, struct bfd_hash_table
*, const char *));
67 funcvec_hash_table_init
68 PARAMS ((struct funcvec_hash_table
*, bfd
*,
69 struct bfd_hash_entry
*(*) (struct bfd_hash_entry
*,
70 struct bfd_hash_table
*,
73 static bfd_reloc_status_type special
74 PARAMS ((bfd
*, arelent
*, asymbol
*, PTR
, asection
*, bfd
*, char **));
75 static int select_reloc
76 PARAMS ((reloc_howto_type
*));
77 static void rtype2howto
78 PARAMS ((arelent
*, struct internal_reloc
*));
79 static void reloc_processing
80 PARAMS ((arelent
*, struct internal_reloc
*, asymbol
**, bfd
*, asection
*));
81 static bfd_boolean h8300_symbol_address_p
82 PARAMS ((bfd
*, asection
*, bfd_vma
));
83 static int h8300_reloc16_estimate
84 PARAMS ((bfd
*, asection
*, arelent
*, unsigned int,
85 struct bfd_link_info
*));
86 static void h8300_reloc16_extra_cases
87 PARAMS ((bfd
*, struct bfd_link_info
*, struct bfd_link_order
*, arelent
*,
88 bfd_byte
*, unsigned int *, unsigned int *));
89 static bfd_boolean h8300_bfd_link_add_symbols
90 PARAMS ((bfd
*, struct bfd_link_info
*));
92 /* To lookup a value in the function vector hash table. */
93 #define funcvec_hash_lookup(table, string, create, copy) \
94 ((struct funcvec_hash_entry *) \
95 bfd_hash_lookup (&(table)->root, (string), (create), (copy)))
97 /* The derived h8300 COFF linker table. Note it's derived from
98 the generic linker hash table, not the COFF backend linker hash
99 table! We use this to attach additional data structures we
100 need while linking on the h8300. */
101 struct h8300_coff_link_hash_table
{
102 /* The main hash table. */
103 struct generic_link_hash_table root
;
105 /* Section for the vectors table. This gets attached to a
106 random input bfd, we keep it here for easy access. */
107 asection
*vectors_sec
;
109 /* Hash table of the functions we need to enter into the function
111 struct funcvec_hash_table
*funcvec_hash_table
;
114 static struct bfd_link_hash_table
*h8300_coff_link_hash_table_create
117 /* Get the H8/300 COFF linker hash table from a link_info structure. */
119 #define h8300_coff_hash_table(p) \
120 ((struct h8300_coff_link_hash_table *) ((coff_hash_table (p))))
122 /* Initialize fields within a funcvec hash table entry. Called whenever
123 a new entry is added to the funcvec hash table. */
125 static struct bfd_hash_entry
*
126 funcvec_hash_newfunc (entry
, gen_table
, string
)
127 struct bfd_hash_entry
*entry
;
128 struct bfd_hash_table
*gen_table
;
131 struct funcvec_hash_entry
*ret
;
132 struct funcvec_hash_table
*table
;
134 ret
= (struct funcvec_hash_entry
*) entry
;
135 table
= (struct funcvec_hash_table
*) gen_table
;
137 /* Allocate the structure if it has not already been allocated by a
140 ret
= ((struct funcvec_hash_entry
*)
141 bfd_hash_allocate (gen_table
,
142 sizeof (struct funcvec_hash_entry
)));
146 /* Call the allocation method of the superclass. */
147 ret
= ((struct funcvec_hash_entry
*)
148 bfd_hash_newfunc ((struct bfd_hash_entry
*) ret
, gen_table
, string
));
153 /* Note where this entry will reside in the function vector table. */
154 ret
->offset
= table
->offset
;
156 /* Bump the offset at which we store entries in the function
157 vector. We'd like to bump up the size of the vectors section,
158 but it's not easily available here. */
159 if (bfd_get_mach (table
->abfd
) == bfd_mach_h8300
)
161 else if (bfd_get_mach (table
->abfd
) == bfd_mach_h8300h
162 || bfd_get_mach (table
->abfd
) == bfd_mach_h8300s
)
167 /* Everything went OK. */
168 return (struct bfd_hash_entry
*) ret
;
171 /* Initialize the function vector hash table. */
174 funcvec_hash_table_init (table
, abfd
, newfunc
)
175 struct funcvec_hash_table
*table
;
177 struct bfd_hash_entry
*(*newfunc
)
178 PARAMS ((struct bfd_hash_entry
*, struct bfd_hash_table
*,
181 /* Initialize our local fields, then call the generic initialization
185 return (bfd_hash_table_init (&table
->root
, newfunc
));
188 /* Create the derived linker hash table. We use a derived hash table
189 basically to hold "static" information during an H8/300 coff link
190 without using static variables. */
192 static struct bfd_link_hash_table
*
193 h8300_coff_link_hash_table_create (abfd
)
196 struct h8300_coff_link_hash_table
*ret
;
197 bfd_size_type amt
= sizeof (struct h8300_coff_link_hash_table
);
199 ret
= (struct h8300_coff_link_hash_table
*) bfd_malloc (amt
);
202 if (!_bfd_link_hash_table_init (&ret
->root
.root
, abfd
,
203 _bfd_generic_link_hash_newfunc
))
209 /* Initialize our data. */
210 ret
->vectors_sec
= NULL
;
211 ret
->funcvec_hash_table
= NULL
;
213 /* OK. Everything's initialized, return the base pointer. */
214 return &ret
->root
.root
;
217 /* Special handling for H8/300 relocs.
218 We only come here for pcrel stuff and return normally if not an -r link.
219 When doing -r, we can't do any arithmetic for the pcrel stuff, because
220 the code in reloc.c assumes that we can manipulate the targets of
221 the pcrel branches. This isn't so, since the H8/300 can do relaxing,
222 which means that the gap after the instruction may not be enough to
223 contain the offset required for the branch, so we have to use only
224 the addend until the final link. */
226 static bfd_reloc_status_type
227 special (abfd
, reloc_entry
, symbol
, data
, input_section
, output_bfd
,
229 bfd
*abfd ATTRIBUTE_UNUSED
;
230 arelent
*reloc_entry ATTRIBUTE_UNUSED
;
231 asymbol
*symbol ATTRIBUTE_UNUSED
;
232 PTR data ATTRIBUTE_UNUSED
;
233 asection
*input_section ATTRIBUTE_UNUSED
;
235 char **error_message ATTRIBUTE_UNUSED
;
237 if (output_bfd
== (bfd
*) NULL
)
238 return bfd_reloc_continue
;
240 /* Adjust the reloc address to that in the output section. */
241 reloc_entry
->address
+= input_section
->output_offset
;
245 static reloc_howto_type howto_table
[] = {
246 HOWTO (R_RELBYTE
, 0, 0, 8, FALSE
, 0, complain_overflow_bitfield
, special
, "8", FALSE
, 0x000000ff, 0x000000ff, FALSE
),
247 HOWTO (R_RELWORD
, 0, 1, 16, FALSE
, 0, complain_overflow_bitfield
, special
, "16", FALSE
, 0x0000ffff, 0x0000ffff, FALSE
),
248 HOWTO (R_RELLONG
, 0, 2, 32, FALSE
, 0, complain_overflow_bitfield
, special
, "32", FALSE
, 0xffffffff, 0xffffffff, FALSE
),
249 HOWTO (R_PCRBYTE
, 0, 0, 8, TRUE
, 0, complain_overflow_signed
, special
, "DISP8", FALSE
, 0x000000ff, 0x000000ff, TRUE
),
250 HOWTO (R_PCRWORD
, 0, 1, 16, TRUE
, 0, complain_overflow_signed
, special
, "DISP16", FALSE
, 0x0000ffff, 0x0000ffff, TRUE
),
251 HOWTO (R_PCRLONG
, 0, 2, 32, TRUE
, 0, complain_overflow_signed
, special
, "DISP32", FALSE
, 0xffffffff, 0xffffffff, TRUE
),
252 HOWTO (R_MOV16B1
, 0, 1, 16, FALSE
, 0, complain_overflow_bitfield
, special
, "relaxable mov.b:16", FALSE
, 0x0000ffff, 0x0000ffff, FALSE
),
253 HOWTO (R_MOV16B2
, 0, 1, 8, FALSE
, 0, complain_overflow_bitfield
, special
, "relaxed mov.b:16", FALSE
, 0x000000ff, 0x000000ff, FALSE
),
254 HOWTO (R_JMP1
, 0, 1, 16, FALSE
, 0, complain_overflow_bitfield
, special
, "16/pcrel", FALSE
, 0x0000ffff, 0x0000ffff, FALSE
),
255 HOWTO (R_JMP2
, 0, 0, 8, FALSE
, 0, complain_overflow_bitfield
, special
, "pcrecl/16", FALSE
, 0x000000ff, 0x000000ff, FALSE
),
256 HOWTO (R_JMPL1
, 0, 2, 32, FALSE
, 0, complain_overflow_bitfield
, special
, "24/pcrell", FALSE
, 0x00ffffff, 0x00ffffff, FALSE
),
257 HOWTO (R_JMPL2
, 0, 0, 8, FALSE
, 0, complain_overflow_bitfield
, special
, "pc8/24", FALSE
, 0x000000ff, 0x000000ff, FALSE
),
258 HOWTO (R_MOV24B1
, 0, 1, 32, FALSE
, 0, complain_overflow_bitfield
, special
, "relaxable mov.b:24", FALSE
, 0xffffffff, 0xffffffff, FALSE
),
259 HOWTO (R_MOV24B2
, 0, 1, 8, FALSE
, 0, complain_overflow_bitfield
, special
, "relaxed mov.b:24", FALSE
, 0x0000ffff, 0x0000ffff, FALSE
),
261 /* An indirect reference to a function. This causes the function's address
262 to be added to the function vector in lo-mem and puts the address of
263 the function vector's entry in the jsr instruction. */
264 HOWTO (R_MEM_INDIRECT
, 0, 0, 8, FALSE
, 0, complain_overflow_bitfield
, special
, "8/indirect", FALSE
, 0x000000ff, 0x000000ff, FALSE
),
266 /* Internal reloc for relaxing. This is created when a 16bit pc-relative
267 branch is turned into an 8bit pc-relative branch. */
268 HOWTO (R_PCRWORD_B
, 0, 0, 8, TRUE
, 0, complain_overflow_bitfield
, special
, "relaxed bCC:16", FALSE
, 0x000000ff, 0x000000ff, FALSE
),
270 HOWTO (R_MOVL1
, 0, 2, 32, FALSE
, 0, complain_overflow_bitfield
,special
, "32/24 relaxable move", FALSE
, 0xffffffff, 0xffffffff, FALSE
),
272 HOWTO (R_MOVL2
, 0, 1, 16, FALSE
, 0, complain_overflow_bitfield
, special
, "32/24 relaxed move", FALSE
, 0x0000ffff, 0x0000ffff, FALSE
),
274 HOWTO (R_BCC_INV
, 0, 0, 8, TRUE
, 0, complain_overflow_signed
, special
, "DISP8 inverted", FALSE
, 0x000000ff, 0x000000ff, TRUE
),
276 HOWTO (R_JMP_DEL
, 0, 0, 8, TRUE
, 0, complain_overflow_signed
, special
, "Deleted jump", FALSE
, 0x000000ff, 0x000000ff, TRUE
),
279 /* Turn a howto into a reloc number. */
281 #define SELECT_RELOC(x,howto) \
282 { x.r_type = select_reloc (howto); }
284 #define BADMAG(x) (H8300BADMAG (x) && H8300HBADMAG (x) && H8300SBADMAG (x) \
285 && H8300HNBADMAG(x) && H8300SNBADMAG(x))
286 #define H8300 1 /* Customize coffcode.h */
287 #define __A_MAGIC_SET__
289 /* Code to swap in the reloc. */
290 #define SWAP_IN_RELOC_OFFSET H_GET_32
291 #define SWAP_OUT_RELOC_OFFSET H_PUT_32
292 #define SWAP_OUT_RELOC_EXTRA(abfd, src, dst) \
293 dst->r_stuff[0] = 'S'; \
294 dst->r_stuff[1] = 'C';
298 reloc_howto_type
*howto
;
303 /* Code to turn a r_type into a howto ptr, uses the above howto table. */
306 rtype2howto (internal
, dst
)
308 struct internal_reloc
*dst
;
313 internal
->howto
= howto_table
+ 0;
316 internal
->howto
= howto_table
+ 1;
319 internal
->howto
= howto_table
+ 2;
322 internal
->howto
= howto_table
+ 3;
325 internal
->howto
= howto_table
+ 4;
328 internal
->howto
= howto_table
+ 5;
331 internal
->howto
= howto_table
+ 6;
334 internal
->howto
= howto_table
+ 7;
337 internal
->howto
= howto_table
+ 8;
340 internal
->howto
= howto_table
+ 9;
343 internal
->howto
= howto_table
+ 10;
346 internal
->howto
= howto_table
+ 11;
349 internal
->howto
= howto_table
+ 12;
352 internal
->howto
= howto_table
+ 13;
355 internal
->howto
= howto_table
+ 14;
358 internal
->howto
= howto_table
+ 15;
361 internal
->howto
= howto_table
+ 16;
364 internal
->howto
= howto_table
+ 17;
367 internal
->howto
= howto_table
+ 18;
370 internal
->howto
= howto_table
+ 19;
378 #define RTYPE2HOWTO(internal, relocentry) rtype2howto (internal, relocentry)
380 /* Perform any necessary magic to the addend in a reloc entry. */
382 #define CALC_ADDEND(abfd, symbol, ext_reloc, cache_ptr) \
383 cache_ptr->addend = ext_reloc.r_offset;
385 #define RELOC_PROCESSING(relent,reloc,symbols,abfd,section) \
386 reloc_processing (relent, reloc, symbols, abfd, section)
389 reloc_processing (relent
, reloc
, symbols
, abfd
, section
)
391 struct internal_reloc
*reloc
;
396 relent
->address
= reloc
->r_vaddr
;
397 rtype2howto (relent
, reloc
);
399 if (((int) reloc
->r_symndx
) > 0)
400 relent
->sym_ptr_ptr
= symbols
+ obj_convert (abfd
)[reloc
->r_symndx
];
402 relent
->sym_ptr_ptr
= bfd_abs_section_ptr
->symbol_ptr_ptr
;
404 relent
->addend
= reloc
->r_offset
;
406 relent
->address
-= section
->vma
;
413 h8300_symbol_address_p (abfd
, input_section
, address
)
415 asection
*input_section
;
420 s
= _bfd_generic_link_get_symbols (abfd
);
421 BFD_ASSERT (s
!= (asymbol
**) NULL
);
423 /* Search all the symbols for one in INPUT_SECTION with
429 if (p
->section
== input_section
430 && (input_section
->output_section
->vma
431 + input_section
->output_offset
432 + p
->value
) == address
)
439 /* If RELOC represents a relaxable instruction/reloc, change it into
440 the relaxed reloc, notify the linker that symbol addresses
441 have changed (bfd_perform_slip) and return how much the current
442 section has shrunk by.
444 FIXME: Much of this code has knowledge of the ordering of entries
445 in the howto table. This needs to be fixed. */
448 h8300_reloc16_estimate (abfd
, input_section
, reloc
, shrink
, link_info
)
450 asection
*input_section
;
453 struct bfd_link_info
*link_info
;
458 static asection
*last_input_section
= NULL
;
459 static arelent
*last_reloc
= NULL
;
461 /* The address of the thing to be relocated will have moved back by
462 the size of the shrink - but we don't change reloc->address here,
463 since we need it to know where the relocation lives in the source
465 bfd_vma address
= reloc
->address
- shrink
;
467 if (input_section
!= last_input_section
)
470 /* Only examine the relocs which might be relaxable. */
471 switch (reloc
->howto
->type
)
473 /* This is the 16/24 bit absolute branch which could become an 8 bit
474 pc-relative branch. */
477 /* Get the address of the target of this branch. */
478 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
480 /* Get the address of the next instruction (not the reloc). */
481 dot
= (input_section
->output_section
->vma
482 + input_section
->output_offset
+ address
);
484 /* Adjust for R_JMP1 vs R_JMPL1. */
485 dot
+= (reloc
->howto
->type
== R_JMP1
? 1 : 2);
487 /* Compute the distance from this insn to the branch target. */
490 /* If the distance is within -128..+128 inclusive, then we can relax
491 this jump. +128 is valid since the target will move two bytes
492 closer if we do relax this branch. */
493 if ((int) gap
>= -128 && (int) gap
<= 128)
497 if (!bfd_get_section_contents (abfd
, input_section
, & code
,
500 code
= bfd_get_8 (abfd
, & code
);
502 /* It's possible we may be able to eliminate this branch entirely;
503 if the previous instruction is a branch around this instruction,
504 and there's no label at this instruction, then we can reverse
505 the condition on the previous branch and eliminate this jump.
512 This saves 4 bytes instead of two, and should be relatively
515 Only perform this optimisation for jumps (code 0x5a) not
516 subroutine calls, as otherwise it could transform:
529 which changes the call (jsr) into a branch (bne). */
533 && last_reloc
->howto
->type
== R_PCRBYTE
)
536 last_value
= bfd_coff_reloc16_get_value (last_reloc
, link_info
,
539 if (last_value
== dot
+ 2
540 && last_reloc
->address
+ 1 == reloc
->address
541 && !h8300_symbol_address_p (abfd
, input_section
, dot
- 2))
543 reloc
->howto
= howto_table
+ 19;
544 last_reloc
->howto
= howto_table
+ 18;
545 last_reloc
->sym_ptr_ptr
= reloc
->sym_ptr_ptr
;
546 last_reloc
->addend
= reloc
->addend
;
548 bfd_perform_slip (abfd
, 4, input_section
, address
);
553 /* Change the reloc type. */
554 reloc
->howto
= reloc
->howto
+ 1;
556 /* This shrinks this section by two bytes. */
558 bfd_perform_slip (abfd
, 2, input_section
, address
);
562 /* This is the 16 bit pc-relative branch which could become an 8 bit
563 pc-relative branch. */
565 /* Get the address of the target of this branch, add one to the value
566 because the addend field in PCrel jumps is off by -1. */
567 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
) + 1;
569 /* Get the address of the next instruction if we were to relax. */
570 dot
= input_section
->output_section
->vma
+
571 input_section
->output_offset
+ address
;
573 /* Compute the distance from this insn to the branch target. */
576 /* If the distance is within -128..+128 inclusive, then we can relax
577 this jump. +128 is valid since the target will move two bytes
578 closer if we do relax this branch. */
579 if ((int) gap
>= -128 && (int) gap
<= 128)
581 /* Change the reloc type. */
582 reloc
->howto
= howto_table
+ 15;
584 /* This shrinks this section by two bytes. */
586 bfd_perform_slip (abfd
, 2, input_section
, address
);
590 /* This is a 16 bit absolute address in a mov.b insn, which can
591 become an 8 bit absolute address if it's in the right range. */
593 /* Get the address of the data referenced by this mov.b insn. */
594 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
596 /* The address is in 0xff00..0xffff inclusive on the h8300 or
597 0xffff00..0xffffff inclusive on the h8300h, then we can
599 if ((bfd_get_mach (abfd
) == bfd_mach_h8300
602 || ((bfd_get_mach (abfd
) == bfd_mach_h8300h
603 || bfd_get_mach (abfd
) == bfd_mach_h8300s
)
605 && value
<= 0xffffff))
607 /* Change the reloc type. */
608 reloc
->howto
= reloc
->howto
+ 1;
610 /* This shrinks this section by two bytes. */
612 bfd_perform_slip (abfd
, 2, input_section
, address
);
616 /* Similarly for a 24 bit absolute address in a mov.b. Note that
617 if we can't relax this into an 8 bit absolute, we'll fall through
618 and try to relax it into a 16bit absolute. */
620 /* Get the address of the data referenced by this mov.b insn. */
621 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
623 /* The address is in 0xffff00..0xffffff inclusive on the h8300h,
624 then we can relax this mov.b */
625 if ((bfd_get_mach (abfd
) == bfd_mach_h8300h
626 || bfd_get_mach (abfd
) == bfd_mach_h8300s
)
628 && value
<= 0xffffff)
630 /* Change the reloc type. */
631 reloc
->howto
= reloc
->howto
+ 1;
633 /* This shrinks this section by four bytes. */
635 bfd_perform_slip (abfd
, 4, input_section
, address
);
637 /* Done with this reloc. */
641 /* FALLTHROUGH and try to turn the 32/24 bit reloc into a 16 bit
644 /* This is a 24/32 bit absolute address in a mov insn, which can
645 become an 16 bit absolute address if it's in the right range. */
647 /* Get the address of the data referenced by this mov insn. */
648 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
650 /* If this address is in 0x0000..0x7fff inclusive or
651 0xff8000..0xffffff inclusive, then it can be relaxed. */
652 if (value
<= 0x7fff || value
>= 0xff8000)
654 /* Change the reloc type. */
655 reloc
->howto
= howto_table
+ 17;
657 /* This shrinks this section by two bytes. */
659 bfd_perform_slip (abfd
, 2, input_section
, address
);
663 /* No other reloc types represent relaxing opportunities. */
669 last_input_section
= input_section
;
673 /* Handle relocations for the H8/300, including relocs for relaxed
676 FIXME: Not all relocations check for overflow! */
679 h8300_reloc16_extra_cases (abfd
, link_info
, link_order
, reloc
, data
, src_ptr
,
682 struct bfd_link_info
*link_info
;
683 struct bfd_link_order
*link_order
;
686 unsigned int *src_ptr
;
687 unsigned int *dst_ptr
;
689 unsigned int src_address
= *src_ptr
;
690 unsigned int dst_address
= *dst_ptr
;
691 asection
*input_section
= link_order
->u
.indirect
.section
;
696 switch (reloc
->howto
->type
)
698 /* Generic 8bit pc-relative relocation. */
700 /* Get the address of the target of this branch. */
701 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
703 dot
= (link_order
->offset
705 + link_order
->u
.indirect
.section
->output_section
->vma
);
710 if (gap
< -128 || gap
> 126)
712 if (! ((*link_info
->callbacks
->reloc_overflow
)
713 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
714 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
715 input_section
, reloc
->address
)))
719 /* Everything looks OK. Apply the relocation and update the
720 src/dst address appropriately. */
721 bfd_put_8 (abfd
, gap
, data
+ dst_address
);
728 /* Generic 16bit pc-relative relocation. */
730 /* Get the address of the target of this branch. */
731 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
733 /* Get the address of the instruction (not the reloc). */
734 dot
= (link_order
->offset
736 + link_order
->u
.indirect
.section
->output_section
->vma
+ 1);
741 if (gap
> 32766 || gap
< -32768)
743 if (! ((*link_info
->callbacks
->reloc_overflow
)
744 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
745 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
746 input_section
, reloc
->address
)))
750 /* Everything looks OK. Apply the relocation and update the
751 src/dst address appropriately. */
752 bfd_put_16 (abfd
, (bfd_vma
) gap
, data
+ dst_address
);
759 /* Generic 8bit absolute relocation. */
761 /* Get the address of the object referenced by this insn. */
762 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
766 || (value
>= 0x0000ff00 && value
<= 0x0000ffff)
767 || (value
>= 0x00ffff00 && value
<= 0x00ffffff)
768 || (value
>= 0xffffff00 && value
<= 0xffffffff))
770 /* Everything looks OK. Apply the relocation and update the
771 src/dst address appropriately. */
772 bfd_put_8 (abfd
, value
& 0xff, data
+ dst_address
);
778 if (! ((*link_info
->callbacks
->reloc_overflow
)
779 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
780 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
781 input_section
, reloc
->address
)))
788 /* Various simple 16bit absolute relocations. */
792 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
793 bfd_put_16 (abfd
, value
, data
+ dst_address
);
798 /* Various simple 24/32bit absolute relocations. */
802 /* Get the address of the target of this branch. */
803 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
804 bfd_put_32 (abfd
, value
, data
+ dst_address
);
809 /* Another 24/32bit absolute relocation. */
811 /* Get the address of the target of this branch. */
812 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
814 value
= ((value
& 0x00ffffff)
815 | (bfd_get_32 (abfd
, data
+ src_address
) & 0xff000000));
816 bfd_put_32 (abfd
, value
, data
+ dst_address
);
821 /* A 16bit abolute relocation that was formerlly a 24/32bit
822 absolute relocation. */
824 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
827 if (value
<= 0x7fff || value
>= 0xff8000)
829 /* Insert the 16bit value into the proper location. */
830 bfd_put_16 (abfd
, value
, data
+ dst_address
);
832 /* Fix the opcode. For all the move insns, we simply
833 need to turn off bit 0x20 in the previous byte. */
834 data
[dst_address
- 1] &= ~0x20;
840 if (! ((*link_info
->callbacks
->reloc_overflow
)
841 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
842 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
843 input_section
, reloc
->address
)))
848 /* A 16bit absolute branch that is now an 8-bit pc-relative branch. */
850 /* Get the address of the target of this branch. */
851 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
853 /* Get the address of the next instruction. */
854 dot
= (link_order
->offset
856 + link_order
->u
.indirect
.section
->output_section
->vma
+ 1);
861 if (gap
< -128 || gap
> 126)
863 if (! ((*link_info
->callbacks
->reloc_overflow
)
864 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
865 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
866 input_section
, reloc
->address
)))
870 /* Now fix the instruction itself. */
871 switch (data
[dst_address
- 1])
875 bfd_put_8 (abfd
, 0x55, data
+ dst_address
- 1);
879 bfd_put_8 (abfd
, 0x40, data
+ dst_address
- 1);
886 /* Write out the 8bit value. */
887 bfd_put_8 (abfd
, gap
, data
+ dst_address
);
894 /* A 16bit pc-relative branch that is now an 8-bit pc-relative branch. */
896 /* Get the address of the target of this branch. */
897 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
899 /* Get the address of the instruction (not the reloc). */
900 dot
= (link_order
->offset
902 + link_order
->u
.indirect
.section
->output_section
->vma
- 1);
907 if (gap
< -128 || gap
> 126)
909 if (! ((*link_info
->callbacks
->reloc_overflow
)
910 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
911 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
912 input_section
, reloc
->address
)))
916 /* Now fix the instruction. */
917 switch (data
[dst_address
- 2])
920 /* bCC:16 -> bCC:8 */
921 /* Get the condition code from the original insn. */
922 tmp
= data
[dst_address
- 1];
926 /* Now or in the high nibble of the opcode. */
930 bfd_put_8 (abfd
, tmp
, data
+ dst_address
- 2);
934 /* bsr:16 -> bsr:8 */
935 bfd_put_8 (abfd
, 0x55, data
+ dst_address
- 2);
942 /* Output the target. */
943 bfd_put_8 (abfd
, gap
, data
+ dst_address
- 1);
945 /* We don't advance dst_address -- the 8bit reloc is applied at
946 dst_address - 1, so the next insn should begin at dst_address. */
951 /* Similarly for a 24bit absolute that is now 8 bits. */
953 /* Get the address of the target of this branch. */
954 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
956 /* Get the address of the instruction (not the reloc). */
957 dot
= (link_order
->offset
959 + link_order
->u
.indirect
.section
->output_section
->vma
+ 2);
963 /* Fix the instruction. */
964 switch (data
[src_address
])
968 bfd_put_8 (abfd
, 0x55, data
+ dst_address
);
972 bfd_put_8 (abfd
, 0x40, data
+ dst_address
);
978 bfd_put_8 (abfd
, gap
, data
+ dst_address
+ 1);
984 /* A 16bit absolute mov.b that is now an 8bit absolute mov.b. */
986 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
989 if (data
[dst_address
- 2] != 0x6a)
992 /* Fix up the opcode. */
993 switch (data
[src_address
- 1] & 0xf0)
996 data
[dst_address
- 2] = (data
[src_address
- 1] & 0xf) | 0x20;
999 data
[dst_address
- 2] = (data
[src_address
- 1] & 0xf) | 0x30;
1005 bfd_put_8 (abfd
, value
& 0xff, data
+ dst_address
- 1);
1009 /* Similarly for a 24bit mov.b */
1011 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
1014 if (data
[dst_address
- 2] != 0x6a)
1017 /* Fix up the opcode. */
1018 switch (data
[src_address
- 1] & 0xf0)
1021 data
[dst_address
- 2] = (data
[src_address
- 1] & 0xf) | 0x20;
1024 data
[dst_address
- 2] = (data
[src_address
- 1] & 0xf) | 0x30;
1030 bfd_put_8 (abfd
, value
& 0xff, data
+ dst_address
- 1);
1035 /* Get the address of the target of this branch. */
1036 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
1038 dot
= (link_order
->offset
1040 + link_order
->u
.indirect
.section
->output_section
->vma
) + 1;
1045 if (gap
< -128 || gap
> 126)
1047 if (! ((*link_info
->callbacks
->reloc_overflow
)
1048 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
1049 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
1050 input_section
, reloc
->address
)))
1054 /* Everything looks OK. Fix the condition in the instruction, apply
1055 the relocation, and update the src/dst address appropriately. */
1057 bfd_put_8 (abfd
, bfd_get_8 (abfd
, data
+ dst_address
- 1) ^ 1,
1058 data
+ dst_address
- 1);
1059 bfd_put_8 (abfd
, gap
, data
+ dst_address
);
1070 /* An 8bit memory indirect instruction (jmp/jsr).
1072 There's several things that need to be done to handle
1075 If this is a reloc against the absolute symbol, then
1076 we should handle it just R_RELBYTE. Likewise if it's
1077 for a symbol with a value ge 0 and le 0xff.
1079 Otherwise it's a jump/call through the function vector,
1080 and the linker is expected to set up the function vector
1081 and put the right value into the jump/call instruction. */
1082 case R_MEM_INDIRECT
:
1084 /* We need to find the symbol so we can determine it's
1085 address in the function vector table. */
1088 struct funcvec_hash_table
*ftab
;
1089 struct funcvec_hash_entry
*h
;
1090 struct h8300_coff_link_hash_table
*htab
;
1091 asection
*vectors_sec
;
1093 if (link_info
->hash
->creator
!= abfd
->xvec
)
1095 (*_bfd_error_handler
)
1096 (_("cannot handle R_MEM_INDIRECT reloc when using %s output"),
1097 link_info
->hash
->creator
->name
);
1099 /* What else can we do? This function doesn't allow return
1100 of an error, and we don't want to call abort as that
1101 indicates an internal error. */
1102 #ifndef EXIT_FAILURE
1103 #define EXIT_FAILURE 1
1105 xexit (EXIT_FAILURE
);
1107 htab
= h8300_coff_hash_table (link_info
);
1108 vectors_sec
= htab
->vectors_sec
;
1110 /* First see if this is a reloc against the absolute symbol
1111 or against a symbol with a nonnegative value <= 0xff. */
1112 symbol
= *(reloc
->sym_ptr_ptr
);
1113 value
= bfd_coff_reloc16_get_value (reloc
, link_info
, input_section
);
1114 if (symbol
== bfd_abs_section_ptr
->symbol
1117 /* This should be handled in a manner very similar to
1118 R_RELBYTES. If the value is in range, then just slam
1119 the value into the right location. Else trigger a
1120 reloc overflow callback. */
1123 bfd_put_8 (abfd
, value
, data
+ dst_address
);
1129 if (! ((*link_info
->callbacks
->reloc_overflow
)
1130 (link_info
, bfd_asymbol_name (*reloc
->sym_ptr_ptr
),
1131 reloc
->howto
->name
, reloc
->addend
, input_section
->owner
,
1132 input_section
, reloc
->address
)))
1138 /* This is a jump/call through a function vector, and we're
1139 expected to create the function vector ourselves.
1141 First look up this symbol in the linker hash table -- we need
1142 the derived linker symbol which holds this symbol's index
1143 in the function vector. */
1144 name
= symbol
->name
;
1145 if (symbol
->flags
& BSF_LOCAL
)
1147 char *new_name
= bfd_malloc ((bfd_size_type
) strlen (name
) + 9);
1148 if (new_name
== NULL
)
1151 strcpy (new_name
, name
);
1152 sprintf (new_name
+ strlen (name
), "_%08x",
1153 (int) symbol
->section
);
1157 ftab
= htab
->funcvec_hash_table
;
1158 h
= funcvec_hash_lookup (ftab
, name
, FALSE
, FALSE
);
1160 /* This shouldn't ever happen. If it does that means we've got
1161 data corruption of some kind. Aborting seems like a reasonable
1162 thing to do here. */
1163 if (h
== NULL
|| vectors_sec
== NULL
)
1166 /* Place the address of the function vector entry into the
1169 vectors_sec
->output_offset
+ h
->offset
,
1170 data
+ dst_address
);
1175 /* Now create an entry in the function vector itself. */
1176 if (bfd_get_mach (input_section
->owner
) == bfd_mach_h8300
)
1178 bfd_coff_reloc16_get_value (reloc
,
1181 vectors_sec
->contents
+ h
->offset
);
1182 else if (bfd_get_mach (input_section
->owner
) == bfd_mach_h8300h
1183 || bfd_get_mach (input_section
->owner
) == bfd_mach_h8300s
)
1185 bfd_coff_reloc16_get_value (reloc
,
1188 vectors_sec
->contents
+ h
->offset
);
1192 /* Gross. We've already written the contents of the vector section
1193 before we get here... So we write it again with the new data. */
1194 bfd_set_section_contents (vectors_sec
->output_section
->owner
,
1195 vectors_sec
->output_section
,
1196 vectors_sec
->contents
,
1197 (file_ptr
) vectors_sec
->output_offset
,
1198 vectors_sec
->_raw_size
);
1208 *src_ptr
= src_address
;
1209 *dst_ptr
= dst_address
;
1212 /* Routine for the h8300 linker.
1214 This routine is necessary to handle the special R_MEM_INDIRECT
1215 relocs on the h8300. It's responsible for generating a vectors
1216 section and attaching it to an input bfd as well as sizing
1217 the vectors section. It also creates our vectors hash table.
1219 It uses the generic linker routines to actually add the symbols.
1220 from this BFD to the bfd linker hash table. It may add a few
1221 selected static symbols to the bfd linker hash table. */
1224 h8300_bfd_link_add_symbols (abfd
, info
)
1226 struct bfd_link_info
*info
;
1229 struct funcvec_hash_table
*funcvec_hash_table
;
1231 struct h8300_coff_link_hash_table
*htab
;
1233 /* Add the symbols using the generic code. */
1234 _bfd_generic_link_add_symbols (abfd
, info
);
1236 if (info
->hash
->creator
!= abfd
->xvec
)
1239 htab
= h8300_coff_hash_table (info
);
1241 /* If we haven't created a vectors section, do so now. */
1242 if (!htab
->vectors_sec
)
1246 /* Make sure the appropriate flags are set, including SEC_IN_MEMORY. */
1247 flags
= (SEC_ALLOC
| SEC_LOAD
1248 | SEC_HAS_CONTENTS
| SEC_IN_MEMORY
| SEC_READONLY
);
1249 htab
->vectors_sec
= bfd_make_section (abfd
, ".vectors");
1251 /* If the section wasn't created, or we couldn't set the flags,
1252 quit quickly now, rather than dying a painful death later. */
1253 if (!htab
->vectors_sec
1254 || !bfd_set_section_flags (abfd
, htab
->vectors_sec
, flags
))
1257 /* Also create the vector hash table. */
1258 amt
= sizeof (struct funcvec_hash_table
);
1259 funcvec_hash_table
= (struct funcvec_hash_table
*) bfd_alloc (abfd
, amt
);
1261 if (!funcvec_hash_table
)
1264 /* And initialize the funcvec hash table. */
1265 if (!funcvec_hash_table_init (funcvec_hash_table
, abfd
,
1266 funcvec_hash_newfunc
))
1268 bfd_release (abfd
, funcvec_hash_table
);
1272 /* Store away a pointer to the funcvec hash table. */
1273 htab
->funcvec_hash_table
= funcvec_hash_table
;
1276 /* Load up the function vector hash table. */
1277 funcvec_hash_table
= htab
->funcvec_hash_table
;
1279 /* Now scan the relocs for all the sections in this bfd; create
1280 additional space in the .vectors section as needed. */
1281 for (sec
= abfd
->sections
; sec
; sec
= sec
->next
)
1283 long reloc_size
, reloc_count
, i
;
1287 /* Suck in the relocs, symbols & canonicalize them. */
1288 reloc_size
= bfd_get_reloc_upper_bound (abfd
, sec
);
1289 if (reloc_size
<= 0)
1292 relocs
= (arelent
**) bfd_malloc ((bfd_size_type
) reloc_size
);
1296 /* The symbols should have been read in by _bfd_generic link_add_symbols
1297 call abovec, so we can cheat and use the pointer to them that was
1298 saved in the above call. */
1299 symbols
= _bfd_generic_link_get_symbols(abfd
);
1300 reloc_count
= bfd_canonicalize_reloc (abfd
, sec
, relocs
, symbols
);
1301 if (reloc_count
<= 0)
1307 /* Now walk through all the relocations in this section. */
1308 for (i
= 0; i
< reloc_count
; i
++)
1310 arelent
*reloc
= relocs
[i
];
1311 asymbol
*symbol
= *(reloc
->sym_ptr_ptr
);
1314 /* We've got an indirect reloc. See if we need to add it
1315 to the function vector table. At this point, we have
1316 to add a new entry for each unique symbol referenced
1317 by an R_MEM_INDIRECT relocation except for a reloc
1318 against the absolute section symbol. */
1319 if (reloc
->howto
->type
== R_MEM_INDIRECT
1320 && symbol
!= bfd_abs_section_ptr
->symbol
)
1323 struct funcvec_hash_table
*ftab
;
1324 struct funcvec_hash_entry
*h
;
1326 name
= symbol
->name
;
1327 if (symbol
->flags
& BSF_LOCAL
)
1331 new_name
= bfd_malloc ((bfd_size_type
) strlen (name
) + 9);
1332 if (new_name
== NULL
)
1335 strcpy (new_name
, name
);
1336 sprintf (new_name
+ strlen (name
), "_%08x",
1337 (int) symbol
->section
);
1341 /* Look this symbol up in the function vector hash table. */
1342 ftab
= htab
->funcvec_hash_table
;
1343 h
= funcvec_hash_lookup (ftab
, name
, FALSE
, FALSE
);
1345 /* If this symbol isn't already in the hash table, add
1346 it and bump up the size of the hash table. */
1349 h
= funcvec_hash_lookup (ftab
, name
, TRUE
, TRUE
);
1356 /* Bump the size of the vectors section. Each vector
1357 takes 2 bytes on the h8300 and 4 bytes on the h8300h. */
1358 if (bfd_get_mach (abfd
) == bfd_mach_h8300
)
1359 htab
->vectors_sec
->_raw_size
+= 2;
1360 else if (bfd_get_mach (abfd
) == bfd_mach_h8300h
1361 || bfd_get_mach (abfd
) == bfd_mach_h8300s
)
1362 htab
->vectors_sec
->_raw_size
+= 4;
1367 /* We're done with the relocations, release them. */
1371 /* Now actually allocate some space for the function vector. It's
1372 wasteful to do this more than once, but this is easier. */
1373 sec
= htab
->vectors_sec
;
1374 if (sec
->_raw_size
!= 0)
1376 /* Free the old contents. */
1378 free (sec
->contents
);
1380 /* Allocate new contents. */
1381 sec
->contents
= bfd_malloc (sec
->_raw_size
);
1387 #define coff_reloc16_extra_cases h8300_reloc16_extra_cases
1388 #define coff_reloc16_estimate h8300_reloc16_estimate
1389 #define coff_bfd_link_add_symbols h8300_bfd_link_add_symbols
1390 #define coff_bfd_link_hash_table_create h8300_coff_link_hash_table_create
1392 #define COFF_LONG_FILENAMES
1393 #include "coffcode.h"
1395 #undef coff_bfd_get_relocated_section_contents
1396 #undef coff_bfd_relax_section
1397 #define coff_bfd_get_relocated_section_contents \
1398 bfd_coff_reloc16_get_relocated_section_contents
1399 #define coff_bfd_relax_section bfd_coff_reloc16_relax_section
1401 CREATE_BIG_COFF_TARGET_VEC (h8300coff_vec
, "coff-h8300", BFD_IS_RELAXABLE
, 0, '_', NULL
, COFF_SWAP_TABLE
)