PIC enhancements just checked in (based on work of Paul Kranenburg and Eric
[deliverable/binutils-gdb.git] / bfd / som.c
CommitLineData
d9ad93bc 1/* bfd back-end for HP PA-RISC SOM objects.
dfc1c006 2 Copyright (C) 1990, 1991, 1992, 1993, 1994 Free Software Foundation, Inc.
d9ad93bc
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3
4 Contributed by the Center for Software Science at the
5 University of Utah (pa-gdb-bugs@cs.utah.edu).
6
9e16fcf1 7 This file is part of BFD, the Binary File Descriptor library.
d9ad93bc 8
9e16fcf1
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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.
d9ad93bc 13
9e16fcf1
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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.
d9ad93bc 18
9e16fcf1
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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., 675 Mass Ave, Cambridge, MA 02139, USA. */
d9ad93bc
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22
23#include "bfd.h"
24#include "sysdep.h"
25
6941fd4d 26#if defined (HOST_HPPAHPUX) || defined (HOST_HPPABSD) || defined (HOST_HPPAOSF)
d9ad93bc
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27
28#include "libbfd.h"
29#include "som.h"
30
31#include <stdio.h>
32#include <sys/types.h>
33#include <sys/param.h>
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34#include <signal.h>
35#include <machine/reg.h>
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36#include <sys/file.h>
37#include <errno.h>
38
39/* Magic not defined in standard HP-UX header files until 8.0 */
40
41#ifndef CPU_PA_RISC1_0
42#define CPU_PA_RISC1_0 0x20B
43#endif /* CPU_PA_RISC1_0 */
44
45#ifndef CPU_PA_RISC1_1
46#define CPU_PA_RISC1_1 0x210
47#endif /* CPU_PA_RISC1_1 */
48
49#ifndef _PA_RISC1_0_ID
50#define _PA_RISC1_0_ID CPU_PA_RISC1_0
51#endif /* _PA_RISC1_0_ID */
52
53#ifndef _PA_RISC1_1_ID
54#define _PA_RISC1_1_ID CPU_PA_RISC1_1
55#endif /* _PA_RISC1_1_ID */
56
57#ifndef _PA_RISC_MAXID
58#define _PA_RISC_MAXID 0x2FF
59#endif /* _PA_RISC_MAXID */
60
61#ifndef _PA_RISC_ID
62#define _PA_RISC_ID(__m_num) \
63 (((__m_num) == _PA_RISC1_0_ID) || \
64 ((__m_num) >= _PA_RISC1_1_ID && (__m_num) <= _PA_RISC_MAXID))
65#endif /* _PA_RISC_ID */
66
8117e1ea
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67
68/* HIUX in it's infinite stupidity changed the names for several "well
69 known" constants. Work around such braindamage. Try the HPUX version
70 first, then the HIUX version, and finally provide a default. */
71#ifdef HPUX_AUX_ID
72#define EXEC_AUX_ID HPUX_AUX_ID
73#endif
74
75#if !defined (EXEC_AUX_ID) && defined (HIUX_AUX_ID)
76#define EXEC_AUX_ID HIUX_AUX_ID
77#endif
78
79#ifndef EXEC_AUX_ID
80#define EXEC_AUX_ID 0
81#endif
82
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83/* Size (in chars) of the temporary buffers used during fixup and string
84 table writes. */
85
86#define SOM_TMP_BUFSIZE 8192
87
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88/* Size of the hash table in archives. */
89#define SOM_LST_HASH_SIZE 31
90
91/* Max number of SOMs to be found in an archive. */
92#define SOM_LST_MODULE_LIMIT 1024
9d0dea6f 93
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94/* Generic alignment macro. */
95#define SOM_ALIGN(val, alignment) \
96 (((val) + (alignment) - 1) & ~((alignment) - 1))
97
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98/* SOM allows any one of the four previous relocations to be reused
99 with a "R_PREV_FIXUP" relocation entry. Since R_PREV_FIXUP
100 relocations are always a single byte, using a R_PREV_FIXUP instead
101 of some multi-byte relocation makes object files smaller.
102
103 Note one side effect of using a R_PREV_FIXUP is the relocation that
104 is being repeated moves to the front of the queue. */
105struct reloc_queue
106 {
107 unsigned char *reloc;
108 unsigned int size;
109 } reloc_queue[4];
110
111/* This fully describes the symbol types which may be attached to
112 an EXPORT or IMPORT directive. Only SOM uses this formation
113 (ELF has no need for it). */
114typedef enum
115{
116 SYMBOL_TYPE_UNKNOWN,
117 SYMBOL_TYPE_ABSOLUTE,
118 SYMBOL_TYPE_CODE,
119 SYMBOL_TYPE_DATA,
120 SYMBOL_TYPE_ENTRY,
121 SYMBOL_TYPE_MILLICODE,
122 SYMBOL_TYPE_PLABEL,
123 SYMBOL_TYPE_PRI_PROG,
124 SYMBOL_TYPE_SEC_PROG,
125} pa_symbol_type;
126
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127struct section_to_type
128{
129 char *section;
130 char type;
131};
132
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133/* Assorted symbol information that needs to be derived from the BFD symbol
134 and/or the BFD backend private symbol data. */
135struct som_misc_symbol_info
136{
137 unsigned int symbol_type;
138 unsigned int symbol_scope;
139 unsigned int arg_reloc;
140 unsigned int symbol_info;
141 unsigned int symbol_value;
142};
143
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144/* Forward declarations */
145
146static boolean som_mkobject PARAMS ((bfd *));
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147static const bfd_target * som_object_setup PARAMS ((bfd *,
148 struct header *,
149 struct som_exec_auxhdr *));
9e16fcf1 150static boolean setup_sections PARAMS ((bfd *, struct header *));
2f3508ad 151static const bfd_target * som_object_p PARAMS ((bfd *));
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152static boolean som_write_object_contents PARAMS ((bfd *));
153static boolean som_slurp_string_table PARAMS ((bfd *));
154static unsigned int som_slurp_symbol_table PARAMS ((bfd *));
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155static long som_get_symtab_upper_bound PARAMS ((bfd *));
156static long som_canonicalize_reloc PARAMS ((bfd *, sec_ptr,
157 arelent **, asymbol **));
158static long som_get_reloc_upper_bound PARAMS ((bfd *, sec_ptr));
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159static unsigned int som_set_reloc_info PARAMS ((unsigned char *, unsigned int,
160 arelent *, asection *,
161 asymbol **, boolean));
162static boolean som_slurp_reloc_table PARAMS ((bfd *, asection *,
163 asymbol **, boolean));
326e32d7 164static long som_get_symtab PARAMS ((bfd *, asymbol **));
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165static asymbol * som_make_empty_symbol PARAMS ((bfd *));
166static void som_print_symbol PARAMS ((bfd *, PTR,
167 asymbol *, bfd_print_symbol_type));
168static boolean som_new_section_hook PARAMS ((bfd *, asection *));
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169static boolean som_bfd_copy_private_section_data PARAMS ((bfd *, asection *,
170 bfd *, asection *));
4359a7ef 171static boolean som_bfd_copy_private_bfd_data PARAMS ((bfd *, bfd *));
5b3577cb 172static boolean som_bfd_is_local_label PARAMS ((bfd *, asymbol *));
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173static boolean som_set_section_contents PARAMS ((bfd *, sec_ptr, PTR,
174 file_ptr, bfd_size_type));
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175static boolean som_get_section_contents PARAMS ((bfd *, sec_ptr, PTR,
176 file_ptr, bfd_size_type));
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177static boolean som_set_arch_mach PARAMS ((bfd *, enum bfd_architecture,
178 unsigned long));
179static boolean som_find_nearest_line PARAMS ((bfd *, asection *,
180 asymbol **, bfd_vma,
181 CONST char **,
182 CONST char **,
183 unsigned int *));
184static void som_get_symbol_info PARAMS ((bfd *, asymbol *, symbol_info *));
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185static asection * bfd_section_from_som_symbol PARAMS ((bfd *,
186 struct symbol_dictionary_record *));
9e16fcf1 187static int log2 PARAMS ((unsigned int));
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188static bfd_reloc_status_type hppa_som_reloc PARAMS ((bfd *, arelent *,
189 asymbol *, PTR,
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190 asection *, bfd *,
191 char **));
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192static void som_initialize_reloc_queue PARAMS ((struct reloc_queue *));
193static void som_reloc_queue_insert PARAMS ((unsigned char *, unsigned int,
194 struct reloc_queue *));
195static void som_reloc_queue_fix PARAMS ((struct reloc_queue *, unsigned int));
196static int som_reloc_queue_find PARAMS ((unsigned char *, unsigned int,
197 struct reloc_queue *));
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198static unsigned char * try_prev_fixup PARAMS ((bfd *, int *, unsigned char *,
199 unsigned int,
200 struct reloc_queue *));
201
202static unsigned char * som_reloc_skip PARAMS ((bfd *, unsigned int,
203 unsigned char *, unsigned int *,
204 struct reloc_queue *));
205static unsigned char * som_reloc_addend PARAMS ((bfd *, int, unsigned char *,
206 unsigned int *,
207 struct reloc_queue *));
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208static unsigned char * som_reloc_call PARAMS ((bfd *, unsigned char *,
209 unsigned int *,
210 arelent *, int,
211 struct reloc_queue *));
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212static unsigned long som_count_spaces PARAMS ((bfd *));
213static unsigned long som_count_subspaces PARAMS ((bfd *));
82492ca1 214static int compare_syms PARAMS ((const void *, const void *));
5532fc5a 215static unsigned long som_compute_checksum PARAMS ((bfd *));
0ffa24b9 216static boolean som_prep_headers PARAMS ((bfd *));
2212ff92 217static int som_sizeof_headers PARAMS ((bfd *, boolean));
efc0df7c 218static boolean som_write_headers PARAMS ((bfd *));
713de7ec 219static boolean som_build_and_write_symbol_table PARAMS ((bfd *));
aff97790 220static void som_prep_for_fixups PARAMS ((bfd *, asymbol **, unsigned long));
9d0dea6f 221static boolean som_write_fixups PARAMS ((bfd *, unsigned long, unsigned int *));
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222static boolean som_write_space_strings PARAMS ((bfd *, unsigned long,
223 unsigned int *));
224static boolean som_write_symbol_strings PARAMS ((bfd *, unsigned long,
225 asymbol **, unsigned int,
226 unsigned *));
6eb64408 227static boolean som_begin_writing PARAMS ((bfd *));
91c0bcbb 228static const reloc_howto_type * som_bfd_reloc_type_lookup
82492ca1 229 PARAMS ((bfd *, bfd_reloc_code_real_type));
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230static char som_section_type PARAMS ((const char *));
231static int som_decode_symclass PARAMS ((asymbol *));
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232static boolean som_bfd_count_ar_symbols PARAMS ((bfd *, struct lst_header *,
233 symindex *));
017a52d7 234
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235static boolean som_bfd_fill_in_ar_symbols PARAMS ((bfd *, struct lst_header *,
236 carsym **syms));
237static boolean som_slurp_armap PARAMS ((bfd *));
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238static boolean som_write_armap PARAMS ((bfd *, unsigned int, struct orl *,
239 unsigned int, int));
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240static void som_bfd_derive_misc_symbol_info PARAMS ((bfd *, asymbol *,
241 struct som_misc_symbol_info *));
242static boolean som_bfd_prep_for_ar_write PARAMS ((bfd *, unsigned int *,
243 unsigned int *));
244static unsigned int som_bfd_ar_symbol_hash PARAMS ((asymbol *));
245static boolean som_bfd_ar_write_symbol_stuff PARAMS ((bfd *, unsigned int,
246 unsigned int,
247 struct lst_header));
3b499495 248static CONST char *normalize PARAMS ((CONST char *file));
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249static boolean som_is_space PARAMS ((asection *));
250static boolean som_is_subspace PARAMS ((asection *));
251static boolean som_is_container PARAMS ((asection *, asection *));
b2452d39 252static boolean som_bfd_free_cached_info PARAMS ((bfd *));
6e033f86 253
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JL
254/* Map SOM section names to POSIX/BSD single-character symbol types.
255
256 This table includes all the standard subspaces as defined in the
257 current "PRO ABI for PA-RISC Systems", $UNWIND$ which for
258 some reason was left out, and sections specific to embedded stabs. */
259
260static const struct section_to_type stt[] = {
261 {"$TEXT$", 't'},
262 {"$SHLIB_INFO$", 't'},
263 {"$MILLICODE$", 't'},
264 {"$LIT$", 't'},
265 {"$CODE$", 't'},
266 {"$UNWIND_START$", 't'},
267 {"$UNWIND$", 't'},
268 {"$PRIVATE$", 'd'},
269 {"$PLT$", 'd'},
270 {"$SHLIB_DATA$", 'd'},
271 {"$DATA$", 'd'},
272 {"$SHORTDATA$", 'g'},
273 {"$DLT$", 'd'},
274 {"$GLOBAL$", 'g'},
275 {"$SHORTBSS$", 's'},
276 {"$BSS$", 'b'},
277 {"$GDB_STRINGS$", 'N'},
278 {"$GDB_SYMBOLS$", 'N'},
279 {0, 0}
280};
2212ff92 281
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282/* About the relocation formatting table...
283
284 There are 256 entries in the table, one for each possible
285 relocation opcode available in SOM. We index the table by
286 the relocation opcode. The names and operations are those
287 defined by a.out_800 (4).
288
289 Right now this table is only used to count and perform minimal
290 processing on relocation streams so that they can be internalized
291 into BFD and symbolically printed by utilities. To make actual use
292 of them would be much more difficult, BFD's concept of relocations
293 is far too simple to handle SOM relocations. The basic assumption
294 that a relocation can be completely processed independent of other
295 relocations before an object file is written is invalid for SOM.
296
297 The SOM relocations are meant to be processed as a stream, they
298 specify copying of data from the input section to the output section
299 while possibly modifying the data in some manner. They also can
300 specify that a variable number of zeros or uninitialized data be
301 inserted on in the output segment at the current offset. Some
302 relocations specify that some previous relocation be re-applied at
303 the current location in the input/output sections. And finally a number
304 of relocations have effects on other sections (R_ENTRY, R_EXIT,
305 R_UNWIND_AUX and a variety of others). There isn't even enough room
306 in the BFD relocation data structure to store enough information to
307 perform all the relocations.
308
309 Each entry in the table has three fields.
310
311 The first entry is an index into this "class" of relocations. This
312 index can then be used as a variable within the relocation itself.
313
314 The second field is a format string which actually controls processing
315 of the relocation. It uses a simple postfix machine to do calculations
316 based on variables/constants found in the string and the relocation
317 stream.
318
319 The third field specifys whether or not this relocation may use
320 a constant (V) from the previous R_DATA_OVERRIDE rather than a constant
321 stored in the instruction.
322
323 Variables:
324
325 L = input space byte count
326 D = index into class of relocations
327 M = output space byte count
328 N = statement number (unused?)
329 O = stack operation
330 R = parameter relocation bits
331 S = symbol index
332 U = 64 bits of stack unwind and frame size info (we only keep 32 bits)
333 V = a literal constant (usually used in the next relocation)
334 P = a previous relocation
335
336 Lower case letters (starting with 'b') refer to following
337 bytes in the relocation stream. 'b' is the next 1 byte,
338 c is the next 2 bytes, d is the next 3 bytes, etc...
339 This is the variable part of the relocation entries that
340 makes our life a living hell.
341
342 numerical constants are also used in the format string. Note
343 the constants are represented in decimal.
344
345 '+', "*" and "=" represents the obvious postfix operators.
346 '<' represents a left shift.
347
348 Stack Operations:
349
350 Parameter Relocation Bits:
351
352 Unwind Entries:
353
354 Previous Relocations: The index field represents which in the queue
355 of 4 previous fixups should be re-applied.
356
357 Literal Constants: These are generally used to represent addend
358 parts of relocations when these constants are not stored in the
359 fields of the instructions themselves. For example the instruction
360 addil foo-$global$-0x1234 would use an override for "0x1234" rather
361 than storing it into the addil itself. */
362
363struct fixup_format
364{
365 int D;
366 char *format;
367};
368
369static const struct fixup_format som_fixup_formats[256] =
370{
371 /* R_NO_RELOCATION */
372 0, "LD1+4*=", /* 0x00 */
373 1, "LD1+4*=", /* 0x01 */
374 2, "LD1+4*=", /* 0x02 */
375 3, "LD1+4*=", /* 0x03 */
376 4, "LD1+4*=", /* 0x04 */
377 5, "LD1+4*=", /* 0x05 */
378 6, "LD1+4*=", /* 0x06 */
379 7, "LD1+4*=", /* 0x07 */
380 8, "LD1+4*=", /* 0x08 */
381 9, "LD1+4*=", /* 0x09 */
382 10, "LD1+4*=", /* 0x0a */
383 11, "LD1+4*=", /* 0x0b */
384 12, "LD1+4*=", /* 0x0c */
385 13, "LD1+4*=", /* 0x0d */
386 14, "LD1+4*=", /* 0x0e */
387 15, "LD1+4*=", /* 0x0f */
388 16, "LD1+4*=", /* 0x10 */
389 17, "LD1+4*=", /* 0x11 */
390 18, "LD1+4*=", /* 0x12 */
391 19, "LD1+4*=", /* 0x13 */
392 20, "LD1+4*=", /* 0x14 */
393 21, "LD1+4*=", /* 0x15 */
394 22, "LD1+4*=", /* 0x16 */
395 23, "LD1+4*=", /* 0x17 */
396 0, "LD8<b+1+4*=", /* 0x18 */
397 1, "LD8<b+1+4*=", /* 0x19 */
398 2, "LD8<b+1+4*=", /* 0x1a */
399 3, "LD8<b+1+4*=", /* 0x1b */
400 0, "LD16<c+1+4*=", /* 0x1c */
401 1, "LD16<c+1+4*=", /* 0x1d */
402 2, "LD16<c+1+4*=", /* 0x1e */
403 0, "Ld1+=", /* 0x1f */
404 /* R_ZEROES */
405 0, "Lb1+4*=", /* 0x20 */
406 1, "Ld1+=", /* 0x21 */
407 /* R_UNINIT */
408 0, "Lb1+4*=", /* 0x22 */
409 1, "Ld1+=", /* 0x23 */
410 /* R_RELOCATION */
411 0, "L4=", /* 0x24 */
412 /* R_DATA_ONE_SYMBOL */
413 0, "L4=Sb=", /* 0x25 */
414 1, "L4=Sd=", /* 0x26 */
415 /* R_DATA_PLEBEL */
416 0, "L4=Sb=", /* 0x27 */
417 1, "L4=Sd=", /* 0x28 */
418 /* R_SPACE_REF */
419 0, "L4=", /* 0x29 */
420 /* R_REPEATED_INIT */
421 0, "L4=Mb1+4*=", /* 0x2a */
422 1, "Lb4*=Mb1+L*=", /* 0x2b */
423 2, "Lb4*=Md1+4*=", /* 0x2c */
424 3, "Ld1+=Me1+=", /* 0x2d */
425 /* R_RESERVED */
426 0, "", /* 0x2e */
427 0, "", /* 0x2f */
428 /* R_PCREL_CALL */
429 0, "L4=RD=Sb=", /* 0x30 */
430 1, "L4=RD=Sb=", /* 0x31 */
431 2, "L4=RD=Sb=", /* 0x32 */
432 3, "L4=RD=Sb=", /* 0x33 */
433 4, "L4=RD=Sb=", /* 0x34 */
434 5, "L4=RD=Sb=", /* 0x35 */
435 6, "L4=RD=Sb=", /* 0x36 */
436 7, "L4=RD=Sb=", /* 0x37 */
437 8, "L4=RD=Sb=", /* 0x38 */
438 9, "L4=RD=Sb=", /* 0x39 */
439 0, "L4=RD8<b+=Sb=",/* 0x3a */
440 1, "L4=RD8<b+=Sb=",/* 0x3b */
441 0, "L4=RD8<b+=Sd=",/* 0x3c */
442 1, "L4=RD8<b+=Sd=",/* 0x3d */
443 /* R_RESERVED */
444 0, "", /* 0x3e */
445 0, "", /* 0x3f */
446 /* R_ABS_CALL */
447 0, "L4=RD=Sb=", /* 0x40 */
448 1, "L4=RD=Sb=", /* 0x41 */
449 2, "L4=RD=Sb=", /* 0x42 */
450 3, "L4=RD=Sb=", /* 0x43 */
451 4, "L4=RD=Sb=", /* 0x44 */
452 5, "L4=RD=Sb=", /* 0x45 */
453 6, "L4=RD=Sb=", /* 0x46 */
454 7, "L4=RD=Sb=", /* 0x47 */
455 8, "L4=RD=Sb=", /* 0x48 */
456 9, "L4=RD=Sb=", /* 0x49 */
457 0, "L4=RD8<b+=Sb=",/* 0x4a */
458 1, "L4=RD8<b+=Sb=",/* 0x4b */
459 0, "L4=RD8<b+=Sd=",/* 0x4c */
460 1, "L4=RD8<b+=Sd=",/* 0x4d */
461 /* R_RESERVED */
462 0, "", /* 0x4e */
463 0, "", /* 0x4f */
464 /* R_DP_RELATIVE */
465 0, "L4=SD=", /* 0x50 */
466 1, "L4=SD=", /* 0x51 */
467 2, "L4=SD=", /* 0x52 */
468 3, "L4=SD=", /* 0x53 */
469 4, "L4=SD=", /* 0x54 */
470 5, "L4=SD=", /* 0x55 */
471 6, "L4=SD=", /* 0x56 */
472 7, "L4=SD=", /* 0x57 */
473 8, "L4=SD=", /* 0x58 */
474 9, "L4=SD=", /* 0x59 */
475 10, "L4=SD=", /* 0x5a */
476 11, "L4=SD=", /* 0x5b */
477 12, "L4=SD=", /* 0x5c */
478 13, "L4=SD=", /* 0x5d */
479 14, "L4=SD=", /* 0x5e */
480 15, "L4=SD=", /* 0x5f */
481 16, "L4=SD=", /* 0x60 */
482 17, "L4=SD=", /* 0x61 */
483 18, "L4=SD=", /* 0x62 */
484 19, "L4=SD=", /* 0x63 */
485 20, "L4=SD=", /* 0x64 */
486 21, "L4=SD=", /* 0x65 */
487 22, "L4=SD=", /* 0x66 */
488 23, "L4=SD=", /* 0x67 */
489 24, "L4=SD=", /* 0x68 */
490 25, "L4=SD=", /* 0x69 */
491 26, "L4=SD=", /* 0x6a */
492 27, "L4=SD=", /* 0x6b */
493 28, "L4=SD=", /* 0x6c */
494 29, "L4=SD=", /* 0x6d */
495 30, "L4=SD=", /* 0x6e */
496 31, "L4=SD=", /* 0x6f */
497 32, "L4=Sb=", /* 0x70 */
498 33, "L4=Sd=", /* 0x71 */
499 /* R_RESERVED */
500 0, "", /* 0x72 */
501 0, "", /* 0x73 */
502 0, "", /* 0x74 */
503 0, "", /* 0x75 */
504 0, "", /* 0x76 */
505 0, "", /* 0x77 */
506 /* R_DLT_REL */
507 0, "L4=Sb=", /* 0x78 */
508 1, "L4=Sd=", /* 0x79 */
509 /* R_RESERVED */
510 0, "", /* 0x7a */
511 0, "", /* 0x7b */
512 0, "", /* 0x7c */
513 0, "", /* 0x7d */
514 0, "", /* 0x7e */
515 0, "", /* 0x7f */
516 /* R_CODE_ONE_SYMBOL */
517 0, "L4=SD=", /* 0x80 */
518 1, "L4=SD=", /* 0x81 */
519 2, "L4=SD=", /* 0x82 */
520 3, "L4=SD=", /* 0x83 */
521 4, "L4=SD=", /* 0x84 */
522 5, "L4=SD=", /* 0x85 */
523 6, "L4=SD=", /* 0x86 */
524 7, "L4=SD=", /* 0x87 */
525 8, "L4=SD=", /* 0x88 */
526 9, "L4=SD=", /* 0x89 */
527 10, "L4=SD=", /* 0x8q */
528 11, "L4=SD=", /* 0x8b */
529 12, "L4=SD=", /* 0x8c */
530 13, "L4=SD=", /* 0x8d */
531 14, "L4=SD=", /* 0x8e */
532 15, "L4=SD=", /* 0x8f */
533 16, "L4=SD=", /* 0x90 */
534 17, "L4=SD=", /* 0x91 */
535 18, "L4=SD=", /* 0x92 */
536 19, "L4=SD=", /* 0x93 */
537 20, "L4=SD=", /* 0x94 */
538 21, "L4=SD=", /* 0x95 */
539 22, "L4=SD=", /* 0x96 */
540 23, "L4=SD=", /* 0x97 */
541 24, "L4=SD=", /* 0x98 */
542 25, "L4=SD=", /* 0x99 */
543 26, "L4=SD=", /* 0x9a */
544 27, "L4=SD=", /* 0x9b */
545 28, "L4=SD=", /* 0x9c */
546 29, "L4=SD=", /* 0x9d */
547 30, "L4=SD=", /* 0x9e */
548 31, "L4=SD=", /* 0x9f */
549 32, "L4=Sb=", /* 0xa0 */
550 33, "L4=Sd=", /* 0xa1 */
551 /* R_RESERVED */
552 0, "", /* 0xa2 */
553 0, "", /* 0xa3 */
554 0, "", /* 0xa4 */
555 0, "", /* 0xa5 */
556 0, "", /* 0xa6 */
557 0, "", /* 0xa7 */
558 0, "", /* 0xa8 */
559 0, "", /* 0xa9 */
560 0, "", /* 0xaa */
561 0, "", /* 0xab */
562 0, "", /* 0xac */
563 0, "", /* 0xad */
564 /* R_MILLI_REL */
565 0, "L4=Sb=", /* 0xae */
566 1, "L4=Sd=", /* 0xaf */
567 /* R_CODE_PLABEL */
568 0, "L4=Sb=", /* 0xb0 */
569 1, "L4=Sd=", /* 0xb1 */
570 /* R_BREAKPOINT */
571 0, "L4=", /* 0xb2 */
572 /* R_ENTRY */
573 0, "Ui=", /* 0xb3 */
574 1, "Uf=", /* 0xb4 */
575 /* R_ALT_ENTRY */
576 0, "", /* 0xb5 */
577 /* R_EXIT */
578 0, "", /* 0xb6 */
579 /* R_BEGIN_TRY */
580 0, "", /* 0xb7 */
581 /* R_END_TRY */
582 0, "R0=", /* 0xb8 */
583 1, "Rb4*=", /* 0xb9 */
584 2, "Rd4*=", /* 0xba */
585 /* R_BEGIN_BRTAB */
586 0, "", /* 0xbb */
587 /* R_END_BRTAB */
588 0, "", /* 0xbc */
589 /* R_STATEMENT */
590 0, "Nb=", /* 0xbd */
591 1, "Nc=", /* 0xbe */
592 2, "Nd=", /* 0xbf */
593 /* R_DATA_EXPR */
594 0, "L4=", /* 0xc0 */
595 /* R_CODE_EXPR */
596 0, "L4=", /* 0xc1 */
597 /* R_FSEL */
598 0, "", /* 0xc2 */
599 /* R_LSEL */
600 0, "", /* 0xc3 */
601 /* R_RSEL */
602 0, "", /* 0xc4 */
603 /* R_N_MODE */
604 0, "", /* 0xc5 */
605 /* R_S_MODE */
606 0, "", /* 0xc6 */
607 /* R_D_MODE */
608 0, "", /* 0xc7 */
609 /* R_R_MODE */
610 0, "", /* 0xc8 */
611 /* R_DATA_OVERRIDE */
612 0, "V0=", /* 0xc9 */
613 1, "Vb=", /* 0xca */
614 2, "Vc=", /* 0xcb */
615 3, "Vd=", /* 0xcc */
616 4, "Ve=", /* 0xcd */
617 /* R_TRANSLATED */
618 0, "", /* 0xce */
619 /* R_RESERVED */
620 0, "", /* 0xcf */
621 /* R_COMP1 */
622 0, "Ob=", /* 0xd0 */
623 /* R_COMP2 */
624 0, "Ob=Sd=", /* 0xd1 */
625 /* R_COMP3 */
626 0, "Ob=Ve=", /* 0xd2 */
627 /* R_PREV_FIXUP */
628 0, "P", /* 0xd3 */
629 1, "P", /* 0xd4 */
630 2, "P", /* 0xd5 */
631 3, "P", /* 0xd6 */
632 /* R_RESERVED */
633 0, "", /* 0xd7 */
634 0, "", /* 0xd8 */
635 0, "", /* 0xd9 */
636 0, "", /* 0xda */
637 0, "", /* 0xdb */
638 0, "", /* 0xdc */
639 0, "", /* 0xdd */
640 0, "", /* 0xde */
641 0, "", /* 0xdf */
642 0, "", /* 0xe0 */
643 0, "", /* 0xe1 */
644 0, "", /* 0xe2 */
645 0, "", /* 0xe3 */
646 0, "", /* 0xe4 */
647 0, "", /* 0xe5 */
648 0, "", /* 0xe6 */
649 0, "", /* 0xe7 */
650 0, "", /* 0xe8 */
651 0, "", /* 0xe9 */
652 0, "", /* 0xea */
653 0, "", /* 0xeb */
654 0, "", /* 0xec */
655 0, "", /* 0xed */
656 0, "", /* 0xee */
657 0, "", /* 0xef */
658 0, "", /* 0xf0 */
659 0, "", /* 0xf1 */
660 0, "", /* 0xf2 */
661 0, "", /* 0xf3 */
662 0, "", /* 0xf4 */
663 0, "", /* 0xf5 */
664 0, "", /* 0xf6 */
665 0, "", /* 0xf7 */
666 0, "", /* 0xf8 */
667 0, "", /* 0xf9 */
668 0, "", /* 0xfa */
669 0, "", /* 0xfb */
670 0, "", /* 0xfc */
671 0, "", /* 0xfd */
672 0, "", /* 0xfe */
673 0, "", /* 0xff */
674};
675
676static const int comp1_opcodes[] =
677{
678 0x00,
679 0x40,
680 0x41,
681 0x42,
682 0x43,
683 0x44,
684 0x45,
685 0x46,
686 0x47,
687 0x48,
688 0x49,
689 0x4a,
690 0x4b,
691 0x60,
692 0x80,
693 0xa0,
694 0xc0,
695 -1
696};
697
698static const int comp2_opcodes[] =
699{
700 0x00,
701 0x80,
702 0x82,
703 0xc0,
704 -1
705};
706
707static const int comp3_opcodes[] =
708{
709 0x00,
710 0x02,
711 -1
712};
713
744069b8
JL
714/* These apparently are not in older versions of hpux reloc.h. */
715#ifndef R_DLT_REL
716#define R_DLT_REL 0x78
717#endif
718
719#ifndef R_AUX_UNWIND
720#define R_AUX_UNWIND 0xcf
721#endif
722
723#ifndef R_SEC_STMT
724#define R_SEC_STMT 0xd7
725#endif
726
fcb0c846
JL
727static reloc_howto_type som_hppa_howto_table[] =
728{
729 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
730 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
731 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
732 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
733 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
734 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
735 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
736 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
737 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
738 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
739 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
740 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
741 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
742 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
743 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
744 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
745 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
746 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
747 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
748 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
749 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
750 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
751 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
752 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
753 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
754 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
755 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
756 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
757 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
758 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
759 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
760 {R_NO_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_NO_RELOCATION"},
761 {R_ZEROES, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ZEROES"},
762 {R_ZEROES, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ZEROES"},
763 {R_UNINIT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_UNINIT"},
764 {R_UNINIT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_UNINIT"},
765 {R_RELOCATION, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RELOCATION"},
766 {R_DATA_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_ONE_SYMBOL"},
767 {R_DATA_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_ONE_SYMBOL"},
768 {R_DATA_PLABEL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_PLABEL"},
769 {R_DATA_PLABEL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_PLABEL"},
770 {R_SPACE_REF, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_SPACE_REF"},
771 {R_REPEATED_INIT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "REPEATED_INIT"},
772 {R_REPEATED_INIT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "REPEATED_INIT"},
773 {R_REPEATED_INIT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "REPEATED_INIT"},
774 {R_REPEATED_INIT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "REPEATED_INIT"},
775 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
776 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
777 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
778 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
779 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
780 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
781 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
782 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
783 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
784 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
785 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
786 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
787 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
788 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
789 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
790 {R_PCREL_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PCREL_CALL"},
791 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
792 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
793 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
794 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
795 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
796 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
797 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
798 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
799 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
800 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
801 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
802 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
803 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
804 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
805 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
806 {R_ABS_CALL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ABS_CALL"},
807 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
808 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
809 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
810 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
811 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
812 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
813 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
814 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
815 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
816 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
817 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
818 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
819 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
820 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
821 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
822 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
823 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
824 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
825 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
826 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
827 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
828 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
829 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
830 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
831 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
832 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
833 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
834 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
835 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
836 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
837 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
838 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
839 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
840 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
841 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
842 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
843 {R_DP_RELATIVE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DP_RELATIVE"},
844 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
845 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
846 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
847 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
848 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
744069b8
JL
849 {R_DLT_REL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DLT_REL"},
850 {R_DLT_REL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DLT_REL"},
fcb0c846
JL
851 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
852 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
853 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
854 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
855 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
856 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
857 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
858 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
859 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
860 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
861 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
862 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
863 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
864 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
865 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
866 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
867 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
868 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
869 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
870 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
871 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
872 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
873 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
874 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
875 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
876 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
877 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
878 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
879 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
880 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
881 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
882 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
883 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
884 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
885 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
886 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
887 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
888 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
889 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
890 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
891 {R_CODE_ONE_SYMBOL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_ONE_SYMBOL"},
892 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
893 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
894 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
895 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
896 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
897 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
898 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
899 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
900 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
901 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
902 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
903 {R_MILLI_REL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_MILLI_REL"},
904 {R_MILLI_REL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_MILLI_REL"},
905 {R_CODE_PLABEL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_PLABEL"},
906 {R_CODE_PLABEL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_PLABEL"},
907 {R_BREAKPOINT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_BREAKPOINT"},
908 {R_ENTRY, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ENTRY"},
909 {R_ENTRY, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ENTRY"},
910 {R_ALT_ENTRY, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_ALT_ENTRY"},
911 {R_EXIT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_EXIT"},
912 {R_BEGIN_TRY, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_BEGIN_TRY"},
913 {R_END_TRY, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_END_TRY"},
914 {R_END_TRY, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_END_TRY"},
017a52d7 915 {R_END_TRY, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_END_TRY"},
fcb0c846
JL
916 {R_BEGIN_BRTAB, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_BEGIN_BRTAB"},
917 {R_END_BRTAB, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_END_BRTAB"},
918 {R_STATEMENT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_STATEMENT"},
919 {R_STATEMENT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_STATEMENT"},
920 {R_STATEMENT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_STATEMENT"},
921 {R_DATA_EXPR, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_EXPR"},
922 {R_CODE_EXPR, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_CODE_EXPR"},
923 {R_FSEL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_FSEL"},
924 {R_LSEL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_LSEL"},
925 {R_RSEL, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RSEL"},
926 {R_N_MODE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_N_MODE"},
927 {R_S_MODE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_S_MODE"},
928 {R_D_MODE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_D_MODE"},
929 {R_R_MODE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_R_MODE"},
930 {R_DATA_OVERRIDE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_OVERRIDE"},
931 {R_DATA_OVERRIDE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_OVERRIDE"},
932 {R_DATA_OVERRIDE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_OVERRIDE"},
933 {R_DATA_OVERRIDE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_OVERRIDE"},
934 {R_DATA_OVERRIDE, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_DATA_OVERRIDE"},
fcb0c846 935 {R_TRANSLATED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_TRANSLATED"},
744069b8 936 {R_AUX_UNWIND, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_AUX_UNWIND"},
fcb0c846
JL
937 {R_COMP1, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_COMP1"},
938 {R_COMP2, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_COMP2"},
939 {R_COMP3, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_COMP3"},
940 {R_PREV_FIXUP, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PREV_FIXUP"},
941 {R_PREV_FIXUP, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PREV_FIXUP"},
942 {R_PREV_FIXUP, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PREV_FIXUP"},
943 {R_PREV_FIXUP, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_PREV_FIXUP"},
744069b8 944 {R_SEC_STMT, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_SEC_STMT"},
fcb0c846
JL
945 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
946 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
947 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
948 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
949 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
950 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
951 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
952 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
953 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
954 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
955 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
956 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
957 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
958 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
959 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
960 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
961 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
962 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
963 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
964 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
965 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
966 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
967 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
968 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
969 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
970 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
971 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
972 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
973 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
974 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
975 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
976 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
977 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
978 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
979 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
980 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
981 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
982 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
983 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"},
984 {R_RESERVED, 0, 0, 32, false, 0, 0, hppa_som_reloc, "R_RESERVED"}};
985
d125665c
JL
986/* Initialize the SOM relocation queue. By definition the queue holds
987 the last four multibyte fixups. */
988
989static void
990som_initialize_reloc_queue (queue)
991 struct reloc_queue *queue;
992{
993 queue[0].reloc = NULL;
994 queue[0].size = 0;
995 queue[1].reloc = NULL;
996 queue[1].size = 0;
997 queue[2].reloc = NULL;
998 queue[2].size = 0;
999 queue[3].reloc = NULL;
1000 queue[3].size = 0;
1001}
1002
1003/* Insert a new relocation into the relocation queue. */
1004
1005static void
1006som_reloc_queue_insert (p, size, queue)
1007 unsigned char *p;
1008 unsigned int size;
1009 struct reloc_queue *queue;
1010{
1011 queue[3].reloc = queue[2].reloc;
1012 queue[3].size = queue[2].size;
1013 queue[2].reloc = queue[1].reloc;
1014 queue[2].size = queue[1].size;
1015 queue[1].reloc = queue[0].reloc;
1016 queue[1].size = queue[0].size;
1017 queue[0].reloc = p;
1018 queue[0].size = size;
1019}
1020
1021/* When an entry in the relocation queue is reused, the entry moves
1022 to the front of the queue. */
1023
1024static void
1025som_reloc_queue_fix (queue, index)
1026 struct reloc_queue *queue;
1027 unsigned int index;
1028{
1029 if (index == 0)
1030 return;
1031
1032 if (index == 1)
1033 {
1034 unsigned char *tmp1 = queue[0].reloc;
1035 unsigned int tmp2 = queue[0].size;
1036 queue[0].reloc = queue[1].reloc;
1037 queue[0].size = queue[1].size;
1038 queue[1].reloc = tmp1;
1039 queue[1].size = tmp2;
1040 return;
1041 }
1042
1043 if (index == 2)
1044 {
1045 unsigned char *tmp1 = queue[0].reloc;
1046 unsigned int tmp2 = queue[0].size;
1047 queue[0].reloc = queue[2].reloc;
1048 queue[0].size = queue[2].size;
1049 queue[2].reloc = queue[1].reloc;
1050 queue[2].size = queue[1].size;
1051 queue[1].reloc = tmp1;
1052 queue[1].size = tmp2;
1053 return;
1054 }
1055
1056 if (index == 3)
1057 {
1058 unsigned char *tmp1 = queue[0].reloc;
1059 unsigned int tmp2 = queue[0].size;
1060 queue[0].reloc = queue[3].reloc;
1061 queue[0].size = queue[3].size;
1062 queue[3].reloc = queue[2].reloc;
1063 queue[3].size = queue[2].size;
1064 queue[2].reloc = queue[1].reloc;
1065 queue[2].size = queue[1].size;
1066 queue[1].reloc = tmp1;
1067 queue[1].size = tmp2;
1068 return;
1069 }
1070 abort();
1071}
1072
1073/* Search for a particular relocation in the relocation queue. */
1074
1075static int
1076som_reloc_queue_find (p, size, queue)
1077 unsigned char *p;
1078 unsigned int size;
1079 struct reloc_queue *queue;
1080{
82492ca1 1081 if (queue[0].reloc && !memcmp (p, queue[0].reloc, size)
d125665c
JL
1082 && size == queue[0].size)
1083 return 0;
82492ca1 1084 if (queue[1].reloc && !memcmp (p, queue[1].reloc, size)
d125665c
JL
1085 && size == queue[1].size)
1086 return 1;
82492ca1 1087 if (queue[2].reloc && !memcmp (p, queue[2].reloc, size)
d125665c
JL
1088 && size == queue[2].size)
1089 return 2;
82492ca1 1090 if (queue[3].reloc && !memcmp (p, queue[3].reloc, size)
d125665c
JL
1091 && size == queue[3].size)
1092 return 3;
1093 return -1;
1094}
54bbfd37
JL
1095
1096static unsigned char *
1097try_prev_fixup (abfd, subspace_reloc_sizep, p, size, queue)
1098 bfd *abfd;
1099 int *subspace_reloc_sizep;
1100 unsigned char *p;
1101 unsigned int size;
1102 struct reloc_queue *queue;
1103{
1104 int queue_index = som_reloc_queue_find (p, size, queue);
1105
1106 if (queue_index != -1)
1107 {
1108 /* Found this in a previous fixup. Undo the fixup we
1109 just built and use R_PREV_FIXUP instead. We saved
1110 a total of size - 1 bytes in the fixup stream. */
1111 bfd_put_8 (abfd, R_PREV_FIXUP + queue_index, p);
1112 p += 1;
1113 *subspace_reloc_sizep += 1;
1114 som_reloc_queue_fix (queue, queue_index);
1115 }
1116 else
1117 {
1118 som_reloc_queue_insert (p, size, queue);
1119 *subspace_reloc_sizep += size;
1120 p += size;
1121 }
1122 return p;
1123}
1124
1125/* Emit the proper R_NO_RELOCATION fixups to map the next SKIP
1126 bytes without any relocation. Update the size of the subspace
1127 relocation stream via SUBSPACE_RELOC_SIZE_P; also return the
1128 current pointer into the relocation stream. */
1129
1130static unsigned char *
1131som_reloc_skip (abfd, skip, p, subspace_reloc_sizep, queue)
1132 bfd *abfd;
1133 unsigned int skip;
1134 unsigned char *p;
1135 unsigned int *subspace_reloc_sizep;
1136 struct reloc_queue *queue;
1137{
1138 /* Use a 4 byte R_NO_RELOCATION entry with a maximal value
1139 then R_PREV_FIXUPs to get the difference down to a
1140 reasonable size. */
1141 if (skip >= 0x1000000)
1142 {
1143 skip -= 0x1000000;
1144 bfd_put_8 (abfd, R_NO_RELOCATION + 31, p);
1145 bfd_put_8 (abfd, 0xff, p + 1);
1146 bfd_put_16 (abfd, 0xffff, p + 2);
1147 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 4, queue);
1148 while (skip >= 0x1000000)
1149 {
1150 skip -= 0x1000000;
1151 bfd_put_8 (abfd, R_PREV_FIXUP, p);
1152 p++;
1153 *subspace_reloc_sizep += 1;
1154 /* No need to adjust queue here since we are repeating the
1155 most recent fixup. */
1156 }
1157 }
1158
1159 /* The difference must be less than 0x1000000. Use one
1160 more R_NO_RELOCATION entry to get to the right difference. */
1161 if ((skip & 3) == 0 && skip <= 0xc0000 && skip > 0)
1162 {
1163 /* Difference can be handled in a simple single-byte
1164 R_NO_RELOCATION entry. */
1165 if (skip <= 0x60)
1166 {
1167 bfd_put_8 (abfd, R_NO_RELOCATION + (skip >> 2) - 1, p);
1168 *subspace_reloc_sizep += 1;
1169 p++;
1170 }
1171 /* Handle it with a two byte R_NO_RELOCATION entry. */
1172 else if (skip <= 0x1000)
1173 {
1174 bfd_put_8 (abfd, R_NO_RELOCATION + 24 + (((skip >> 2) - 1) >> 8), p);
1175 bfd_put_8 (abfd, (skip >> 2) - 1, p + 1);
1176 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 2, queue);
1177 }
1178 /* Handle it with a three byte R_NO_RELOCATION entry. */
1179 else
1180 {
1181 bfd_put_8 (abfd, R_NO_RELOCATION + 28 + (((skip >> 2) - 1) >> 16), p);
1182 bfd_put_16 (abfd, (skip >> 2) - 1, p + 1);
1183 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 3, queue);
1184 }
1185 }
1186 /* Ugh. Punt and use a 4 byte entry. */
1187 else if (skip > 0)
1188 {
1189 bfd_put_8 (abfd, R_NO_RELOCATION + 31, p);
1190 bfd_put_8 (abfd, skip >> 16, p + 1);
1191 bfd_put_16 (abfd, skip, p + 2);
1192 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 4, queue);
1193 }
1194 return p;
1195}
1196
1197/* Emit the proper R_DATA_OVERRIDE fixups to handle a nonzero addend
1198 from a BFD relocation. Update the size of the subspace relocation
1199 stream via SUBSPACE_RELOC_SIZE_P; also return the current pointer
1200 into the relocation stream. */
1201
1202static unsigned char *
1203som_reloc_addend (abfd, addend, p, subspace_reloc_sizep, queue)
1204 bfd *abfd;
1205 int addend;
1206 unsigned char *p;
1207 unsigned int *subspace_reloc_sizep;
1208 struct reloc_queue *queue;
1209{
1210 if ((unsigned)(addend) + 0x80 < 0x100)
1211 {
1212 bfd_put_8 (abfd, R_DATA_OVERRIDE + 1, p);
1213 bfd_put_8 (abfd, addend, p + 1);
1214 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 2, queue);
1215 }
1216 else if ((unsigned) (addend) + 0x8000 < 0x10000)
1217 {
1218 bfd_put_8 (abfd, R_DATA_OVERRIDE + 2, p);
1219 bfd_put_16 (abfd, addend, p + 1);
1220 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 3, queue);
1221 }
1222 else if ((unsigned) (addend) + 0x800000 < 0x1000000)
1223 {
1224 bfd_put_8 (abfd, R_DATA_OVERRIDE + 3, p);
1225 bfd_put_8 (abfd, addend >> 16, p + 1);
1226 bfd_put_16 (abfd, addend, p + 2);
1227 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 4, queue);
1228 }
1229 else
1230 {
1231 bfd_put_8 (abfd, R_DATA_OVERRIDE + 4, p);
1232 bfd_put_32 (abfd, addend, p + 1);
1233 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 5, queue);
1234 }
1235 return p;
1236}
1237
7057b78f
JL
1238/* Handle a single function call relocation. */
1239
1240static unsigned char *
1241som_reloc_call (abfd, p, subspace_reloc_sizep, bfd_reloc, sym_num, queue)
1242 bfd *abfd;
1243 unsigned char *p;
1244 unsigned int *subspace_reloc_sizep;
1245 arelent *bfd_reloc;
1246 int sym_num;
1247 struct reloc_queue *queue;
1248{
1249 int arg_bits = HPPA_R_ARG_RELOC (bfd_reloc->addend);
1250 int rtn_bits = arg_bits & 0x3;
1251 int type, done = 0;
1252
1253 /* You'll never believe all this is necessary to handle relocations
1254 for function calls. Having to compute and pack the argument
1255 relocation bits is the real nightmare.
1256
1257 If you're interested in how this works, just forget it. You really
1258 do not want to know about this braindamage. */
1259
1260 /* First see if this can be done with a "simple" relocation. Simple
1261 relocations have a symbol number < 0x100 and have simple encodings
1262 of argument relocations. */
1263
1264 if (sym_num < 0x100)
1265 {
1266 switch (arg_bits)
1267 {
1268 case 0:
1269 case 1:
1270 type = 0;
1271 break;
1272 case 1 << 8:
1273 case 1 << 8 | 1:
1274 type = 1;
1275 break;
1276 case 1 << 8 | 1 << 6:
1277 case 1 << 8 | 1 << 6 | 1:
1278 type = 2;
1279 break;
1280 case 1 << 8 | 1 << 6 | 1 << 4:
1281 case 1 << 8 | 1 << 6 | 1 << 4 | 1:
1282 type = 3;
1283 break;
1284 case 1 << 8 | 1 << 6 | 1 << 4 | 1 << 2:
1285 case 1 << 8 | 1 << 6 | 1 << 4 | 1 << 2 | 1:
1286 type = 4;
1287 break;
1288 default:
1289 /* Not one of the easy encodings. This will have to be
1290 handled by the more complex code below. */
1291 type = -1;
1292 break;
1293 }
1294 if (type != -1)
1295 {
1296 /* Account for the return value too. */
1297 if (rtn_bits)
1298 type += 5;
1299
1300 /* Emit a 2 byte relocation. Then see if it can be handled
1301 with a relocation which is already in the relocation queue. */
1302 bfd_put_8 (abfd, bfd_reloc->howto->type + type, p);
1303 bfd_put_8 (abfd, sym_num, p + 1);
1304 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 2, queue);
1305 done = 1;
1306 }
1307 }
1308
1309 /* If this could not be handled with a simple relocation, then do a hard
1310 one. Hard relocations occur if the symbol number was too high or if
1311 the encoding of argument relocation bits is too complex. */
1312 if (! done)
1313 {
1314 /* Don't ask about these magic sequences. I took them straight
1315 from gas-1.36 which took them from the a.out man page. */
1316 type = rtn_bits;
1317 if ((arg_bits >> 6 & 0xf) == 0xe)
1318 type += 9 * 40;
1319 else
1320 type += (3 * (arg_bits >> 8 & 3) + (arg_bits >> 6 & 3)) * 40;
1321 if ((arg_bits >> 2 & 0xf) == 0xe)
1322 type += 9 * 4;
1323 else
1324 type += (3 * (arg_bits >> 4 & 3) + (arg_bits >> 2 & 3)) * 4;
1325
1326 /* Output the first two bytes of the relocation. These describe
1327 the length of the relocation and encoding style. */
1328 bfd_put_8 (abfd, bfd_reloc->howto->type + 10
1329 + 2 * (sym_num >= 0x100) + (type >= 0x100),
1330 p);
1331 bfd_put_8 (abfd, type, p + 1);
1332
1333 /* Now output the symbol index and see if this bizarre relocation
1334 just happened to be in the relocation queue. */
1335 if (sym_num < 0x100)
1336 {
1337 bfd_put_8 (abfd, sym_num, p + 2);
1338 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 3, queue);
1339 }
1340 else
1341 {
1342 bfd_put_8 (abfd, sym_num >> 16, p + 2);
1343 bfd_put_16 (abfd, sym_num, p + 3);
1344 p = try_prev_fixup (abfd, subspace_reloc_sizep, p, 5, queue);
1345 }
1346 }
1347 return p;
1348}
1349
1350
9e16fcf1 1351/* Return the logarithm of X, base 2, considering X unsigned.
98ecc945 1352 Abort -1 if X is not a power or two or is zero. */
9e16fcf1
SG
1353
1354static int
1355log2 (x)
1356 unsigned int x;
1357{
1358 int log = 0;
1359
1360 /* Test for 0 or a power of 2. */
1361 if (x == 0 || x != (x & -x))
98ecc945 1362 return -1;
9e16fcf1
SG
1363
1364 while ((x >>= 1) != 0)
1365 log++;
1366 return log;
1367}
1368
fcb0c846 1369static bfd_reloc_status_type
39961154
JL
1370hppa_som_reloc (abfd, reloc_entry, symbol_in, data,
1371 input_section, output_bfd, error_message)
fcb0c846
JL
1372 bfd *abfd;
1373 arelent *reloc_entry;
1374 asymbol *symbol_in;
1375 PTR data;
1376 asection *input_section;
1377 bfd *output_bfd;
39961154 1378 char **error_message;
fcb0c846
JL
1379{
1380 if (output_bfd)
1381 {
1382 reloc_entry->address += input_section->output_offset;
1383 return bfd_reloc_ok;
1384 }
1385 return bfd_reloc_ok;
1386}
32619c58
JL
1387
1388/* Given a generic HPPA relocation type, the instruction format,
7430a991 1389 and a field selector, return one or more appropriate SOM relocations. */
32619c58
JL
1390
1391int **
1392hppa_som_gen_reloc_type (abfd, base_type, format, field)
1393 bfd *abfd;
1394 int base_type;
1395 int format;
44fd6622 1396 enum hppa_reloc_field_selector_type_alt field;
32619c58
JL
1397{
1398 int *final_type, **final_types;
1399
017a52d7 1400 final_types = (int **) bfd_alloc_by_size_t (abfd, sizeof (int *) * 3);
32619c58 1401 final_type = (int *) bfd_alloc_by_size_t (abfd, sizeof (int));
9783e04a
DM
1402 if (!final_types || !final_type)
1403 {
d1ad85a6 1404 bfd_set_error (bfd_error_no_memory);
9783e04a
DM
1405 return NULL;
1406 }
32619c58 1407
017a52d7
JL
1408 /* The field selector may require additional relocations to be
1409 generated. It's impossible to know at this moment if additional
1410 relocations will be needed, so we make them. The code to actually
1411 write the relocation/fixup stream is responsible for removing
1412 any redundant relocations. */
1413 switch (field)
1414 {
1415 case e_fsel:
1416 case e_psel:
1417 case e_lpsel:
1418 case e_rpsel:
a36b6f1d
JL
1419 final_types[0] = final_type;
1420 final_types[1] = NULL;
1421 final_types[2] = NULL;
1422 *final_type = base_type;
1423 break;
1424
017a52d7
JL
1425 case e_tsel:
1426 case e_ltsel:
1427 case e_rtsel:
a36b6f1d 1428 final_types[0] = (int *) bfd_alloc_by_size_t (abfd, sizeof (int));
9783e04a
DM
1429 if (!final_types[0])
1430 {
d1ad85a6 1431 bfd_set_error (bfd_error_no_memory);
9783e04a
DM
1432 return NULL;
1433 }
39961154
JL
1434 if (field == e_tsel)
1435 *final_types[0] = R_FSEL;
1436 else if (field == e_ltsel)
1437 *final_types[0] = R_LSEL;
1438 else
1439 *final_types[0] = R_RSEL;
a36b6f1d 1440 final_types[1] = final_type;
017a52d7
JL
1441 final_types[2] = NULL;
1442 *final_type = base_type;
1443 break;
1444
1445 case e_lssel:
1446 case e_rssel:
1447 final_types[0] = (int *) bfd_alloc_by_size_t (abfd, sizeof (int));
9783e04a
DM
1448 if (!final_types[0])
1449 {
d1ad85a6 1450 bfd_set_error (bfd_error_no_memory);
9783e04a
DM
1451 return NULL;
1452 }
017a52d7
JL
1453 *final_types[0] = R_S_MODE;
1454 final_types[1] = final_type;
1455 final_types[2] = NULL;
1456 *final_type = base_type;
1457 break;
32619c58 1458
017a52d7
JL
1459 case e_lsel:
1460 case e_rsel:
1461 final_types[0] = (int *) bfd_alloc_by_size_t (abfd, sizeof (int));
9783e04a
DM
1462 if (!final_types[0])
1463 {
d1ad85a6 1464 bfd_set_error (bfd_error_no_memory);
9783e04a
DM
1465 return NULL;
1466 }
017a52d7
JL
1467 *final_types[0] = R_N_MODE;
1468 final_types[1] = final_type;
1469 final_types[2] = NULL;
1470 *final_type = base_type;
1471 break;
32619c58 1472
017a52d7
JL
1473 case e_ldsel:
1474 case e_rdsel:
1475 final_types[0] = (int *) bfd_alloc_by_size_t (abfd, sizeof (int));
9783e04a
DM
1476 if (!final_types[0])
1477 {
d1ad85a6 1478 bfd_set_error (bfd_error_no_memory);
9783e04a
DM
1479 return NULL;
1480 }
017a52d7
JL
1481 *final_types[0] = R_D_MODE;
1482 final_types[1] = final_type;
1483 final_types[2] = NULL;
1484 *final_type = base_type;
1485 break;
32619c58 1486
017a52d7
JL
1487 case e_lrsel:
1488 case e_rrsel:
1489 final_types[0] = (int *) bfd_alloc_by_size_t (abfd, sizeof (int));
9783e04a
DM
1490 if (!final_types[0])
1491 {
d1ad85a6 1492 bfd_set_error (bfd_error_no_memory);
9783e04a
DM
1493 return NULL;
1494 }
017a52d7
JL
1495 *final_types[0] = R_R_MODE;
1496 final_types[1] = final_type;
1497 final_types[2] = NULL;
1498 *final_type = base_type;
1499 break;
1500 }
1501
32619c58
JL
1502 switch (base_type)
1503 {
1504 case R_HPPA:
1505 /* PLABELs get their own relocation type. */
1506 if (field == e_psel
1507 || field == e_lpsel
1508 || field == e_rpsel)
a36b6f1d
JL
1509 {
1510 /* A PLABEL relocation that has a size of 32 bits must
1511 be a R_DATA_PLABEL. All others are R_CODE_PLABELs. */
1512 if (format == 32)
1513 *final_type = R_DATA_PLABEL;
1514 else
1515 *final_type = R_CODE_PLABEL;
1516 }
1517 /* PIC stuff. */
1518 else if (field == e_tsel
1519 || field == e_ltsel
1520 || field == e_rtsel)
1521 *final_type = R_DLT_REL;
1522 /* A relocation in the data space is always a full 32bits. */
32619c58
JL
1523 else if (format == 32)
1524 *final_type = R_DATA_ONE_SYMBOL;
1525
1526 break;
1527
1528 case R_HPPA_GOTOFF:
1529 /* More PLABEL special cases. */
1530 if (field == e_psel
1531 || field == e_lpsel
1532 || field == e_rpsel)
1533 *final_type = R_DATA_PLABEL;
1534 break;
1535
1536 case R_HPPA_NONE:
1537 case R_HPPA_ABS_CALL:
1538 case R_HPPA_PCREL_CALL:
32619c58
JL
1539 /* Right now we can default all these. */
1540 break;
1541 }
1542 return final_types;
1543}
1544
1545/* Return the address of the correct entry in the PA SOM relocation
1546 howto table. */
1547
82492ca1 1548/*ARGSUSED*/
91c0bcbb 1549static const reloc_howto_type *
82492ca1
ILT
1550som_bfd_reloc_type_lookup (abfd, code)
1551 bfd *abfd;
32619c58
JL
1552 bfd_reloc_code_real_type code;
1553{
1554 if ((int) code < (int) R_NO_RELOCATION + 255)
1555 {
1556 BFD_ASSERT ((int) som_hppa_howto_table[(int) code].type == (int) code);
1557 return &som_hppa_howto_table[(int) code];
1558 }
1559
1560 return (reloc_howto_type *) 0;
1561}
1562
9e16fcf1
SG
1563/* Perform some initialization for an object. Save results of this
1564 initialization in the BFD. */
d9ad93bc 1565
2f3508ad 1566static const bfd_target *
9e16fcf1 1567som_object_setup (abfd, file_hdrp, aux_hdrp)
d9ad93bc
KR
1568 bfd *abfd;
1569 struct header *file_hdrp;
1570 struct som_exec_auxhdr *aux_hdrp;
1571{
9e16fcf1
SG
1572 /* som_mkobject will set bfd_error if som_mkobject fails. */
1573 if (som_mkobject (abfd) != true)
1574 return 0;
d9ad93bc 1575
9e16fcf1
SG
1576 /* Set BFD flags based on what information is available in the SOM. */
1577 abfd->flags = NO_FLAGS;
9e16fcf1
SG
1578 if (file_hdrp->symbol_total)
1579 abfd->flags |= HAS_LINENO | HAS_DEBUG | HAS_SYMS | HAS_LOCALS;
1580
ec743cef
JL
1581 switch (file_hdrp->a_magic)
1582 {
1583 case DEMAND_MAGIC:
1584 abfd->flags |= (D_PAGED | WP_TEXT | EXEC_P);
1585 break;
1586 case SHARE_MAGIC:
1587 abfd->flags |= (WP_TEXT | EXEC_P);
1588 break;
1589 case EXEC_MAGIC:
1590 abfd->flags |= (EXEC_P);
1591 break;
1592 case RELOC_MAGIC:
1593 abfd->flags |= HAS_RELOC;
1594 break;
65b1ef49
JL
1595#ifdef SHL_MAGIC
1596 case SHL_MAGIC:
1597#endif
1598#ifdef DL_MAGIC
1599 case DL_MAGIC:
1600#endif
1601 abfd->flags |= DYNAMIC;
1602 break;
1603
ec743cef
JL
1604 default:
1605 break;
1606 }
1607
9e16fcf1
SG
1608 bfd_get_start_address (abfd) = aux_hdrp->exec_entry;
1609 bfd_default_set_arch_mach (abfd, bfd_arch_hppa, 0);
d9ad93bc 1610 bfd_get_symcount (abfd) = file_hdrp->symbol_total;
9e16fcf1
SG
1611
1612 /* Initialize the saved symbol table and string table to NULL.
1613 Save important offsets and sizes from the SOM header into
1614 the BFD. */
1615 obj_som_stringtab (abfd) = (char *) NULL;
1616 obj_som_symtab (abfd) = (som_symbol_type *) NULL;
1617 obj_som_stringtab_size (abfd) = file_hdrp->symbol_strings_size;
1618 obj_som_sym_filepos (abfd) = file_hdrp->symbol_location;
1619 obj_som_str_filepos (abfd) = file_hdrp->symbol_strings_location;
1620 obj_som_reloc_filepos (abfd) = file_hdrp->fixup_request_location;
d9ad93bc 1621
4359a7ef
JL
1622 obj_som_exec_data (abfd) = (struct som_exec_data *)
1623 bfd_zalloc (abfd, sizeof (struct som_exec_data ));
1624 if (obj_som_exec_data (abfd) == NULL)
1625 {
1626 bfd_set_error (bfd_error_no_memory);
1627 return NULL;
1628 }
1629
1630 obj_som_exec_data (abfd)->system_id = file_hdrp->system_id;
1631 obj_som_exec_data (abfd)->exec_flags = aux_hdrp->exec_flags;
d9ad93bc
KR
1632 return abfd->xvec;
1633}
1634
d9ad93bc
KR
1635/* Convert all of the space and subspace info into BFD sections. Each space
1636 contains a number of subspaces, which in turn describe the mapping between
1637 regions of the exec file, and the address space that the program runs in.
1638 BFD sections which correspond to spaces will overlap the sections for the
1639 associated subspaces. */
1640
9e16fcf1 1641static boolean
d9ad93bc
KR
1642setup_sections (abfd, file_hdr)
1643 bfd *abfd;
1644 struct header *file_hdr;
1645{
1646 char *space_strings;
1647 int space_index;
9e16fcf1 1648 unsigned int total_subspaces = 0;
d9ad93bc
KR
1649
1650 /* First, read in space names */
1651
80425e6c 1652 space_strings = malloc (file_hdr->space_strings_size);
8eb5d4be 1653 if (!space_strings && file_hdr->space_strings_size != 0)
80425e6c
JK
1654 {
1655 bfd_set_error (bfd_error_no_memory);
1656 goto error_return;
1657 }
d9ad93bc
KR
1658
1659 if (bfd_seek (abfd, file_hdr->space_strings_location, SEEK_SET) < 0)
80425e6c 1660 goto error_return;
d9ad93bc
KR
1661 if (bfd_read (space_strings, 1, file_hdr->space_strings_size, abfd)
1662 != file_hdr->space_strings_size)
80425e6c 1663 goto error_return;
d9ad93bc
KR
1664
1665 /* Loop over all of the space dictionaries, building up sections */
d9ad93bc
KR
1666 for (space_index = 0; space_index < file_hdr->space_total; space_index++)
1667 {
1668 struct space_dictionary_record space;
9e16fcf1
SG
1669 struct subspace_dictionary_record subspace, save_subspace;
1670 int subspace_index;
d9ad93bc 1671 asection *space_asect;
ec743cef 1672 char *newname;
d9ad93bc
KR
1673
1674 /* Read the space dictionary element */
1675 if (bfd_seek (abfd, file_hdr->space_location
1676 + space_index * sizeof space, SEEK_SET) < 0)
80425e6c 1677 goto error_return;
d9ad93bc 1678 if (bfd_read (&space, 1, sizeof space, abfd) != sizeof space)
80425e6c 1679 goto error_return;
d9ad93bc
KR
1680
1681 /* Setup the space name string */
1682 space.name.n_name = space.name.n_strx + space_strings;
1683
1684 /* Make a section out of it */
ec743cef
JL
1685 newname = bfd_alloc (abfd, strlen (space.name.n_name) + 1);
1686 if (!newname)
1687 goto error_return;
1688 strcpy (newname, space.name.n_name);
1689
1690 space_asect = bfd_make_section_anyway (abfd, newname);
d9ad93bc 1691 if (!space_asect)
80425e6c 1692 goto error_return;
d9ad93bc 1693
b486fb13
JL
1694 if (space.is_loadable == 0)
1695 space_asect->flags |= SEC_DEBUGGING;
1696
1697 /* Set up all the attributes for the space. */
15766917
JL
1698 if (bfd_som_set_section_attributes (space_asect, space.is_defined,
1699 space.is_private, space.sort_key,
1700 space.space_number) == false)
1701 goto error_return;
b486fb13 1702
d9ad93bc
KR
1703 /* Now, read in the first subspace for this space */
1704 if (bfd_seek (abfd, file_hdr->subspace_location
1705 + space.subspace_index * sizeof subspace,
1706 SEEK_SET) < 0)
80425e6c 1707 goto error_return;
d9ad93bc 1708 if (bfd_read (&subspace, 1, sizeof subspace, abfd) != sizeof subspace)
80425e6c 1709 goto error_return;
d9ad93bc
KR
1710 /* Seek back to the start of the subspaces for loop below */
1711 if (bfd_seek (abfd, file_hdr->subspace_location
1712 + space.subspace_index * sizeof subspace,
1713 SEEK_SET) < 0)
80425e6c 1714 goto error_return;
d9ad93bc
KR
1715
1716 /* Setup the start address and file loc from the first subspace record */
1717 space_asect->vma = subspace.subspace_start;
1718 space_asect->filepos = subspace.file_loc_init_value;
9e16fcf1 1719 space_asect->alignment_power = log2 (subspace.alignment);
98ecc945 1720 if (space_asect->alignment_power == -1)
80425e6c 1721 goto error_return;
9e16fcf1
SG
1722
1723 /* Initialize save_subspace so we can reliably determine if this
1724 loop placed any useful values into it. */
6e033f86 1725 memset (&save_subspace, 0, sizeof (struct subspace_dictionary_record));
d9ad93bc
KR
1726
1727 /* Loop over the rest of the subspaces, building up more sections */
1728 for (subspace_index = 0; subspace_index < space.subspace_quantity;
1729 subspace_index++)
1730 {
1731 asection *subspace_asect;
1732
1733 /* Read in the next subspace */
1734 if (bfd_read (&subspace, 1, sizeof subspace, abfd)
1735 != sizeof subspace)
80425e6c 1736 goto error_return;
d9ad93bc
KR
1737
1738 /* Setup the subspace name string */
1739 subspace.name.n_name = subspace.name.n_strx + space_strings;
1740
ec743cef
JL
1741 newname = bfd_alloc (abfd, strlen (subspace.name.n_name) + 1);
1742 if (!newname)
1743 goto error_return;
1744 strcpy (newname, subspace.name.n_name);
d9ad93bc 1745
ec743cef
JL
1746 /* Make a section out of this subspace */
1747 subspace_asect = bfd_make_section_anyway (abfd, newname);
d9ad93bc 1748 if (!subspace_asect)
80425e6c 1749 goto error_return;
9e16fcf1 1750
b486fb13 1751 /* Store private information about the section. */
15766917
JL
1752 if (bfd_som_set_subsection_attributes (subspace_asect, space_asect,
1753 subspace.access_control_bits,
1754 subspace.sort_key,
1755 subspace.quadrant) == false)
1756 goto error_return;
b486fb13 1757
9e16fcf1 1758 /* Keep an easy mapping between subspaces and sections. */
4359a7ef 1759 subspace_asect->target_index = total_subspaces++;
9e16fcf1
SG
1760
1761 /* Set SEC_READONLY and SEC_CODE/SEC_DATA as specified
1762 by the access_control_bits in the subspace header. */
1763 switch (subspace.access_control_bits >> 4)
1764 {
1765 /* Readonly data. */
1766 case 0x0:
1767 subspace_asect->flags |= SEC_DATA | SEC_READONLY;
1768 break;
1769
1770 /* Normal data. */
1771 case 0x1:
1772 subspace_asect->flags |= SEC_DATA;
1773 break;
1774
1775 /* Readonly code and the gateways.
1776 Gateways have other attributes which do not map
1777 into anything BFD knows about. */
1778 case 0x2:
1779 case 0x4:
1780 case 0x5:
1781 case 0x6:
1782 case 0x7:
1783 subspace_asect->flags |= SEC_CODE | SEC_READONLY;
1784 break;
1785
1786 /* dynamic (writable) code. */
1787 case 0x3:
1788 subspace_asect->flags |= SEC_CODE;
1789 break;
1790 }
1791
1792 if (subspace.dup_common || subspace.is_common)
1793 subspace_asect->flags |= SEC_IS_COMMON;
36456a67 1794 else if (subspace.subspace_length > 0)
9e16fcf1 1795 subspace_asect->flags |= SEC_HAS_CONTENTS;
b486fb13 1796
d9ad93bc
KR
1797 if (subspace.is_loadable)
1798 subspace_asect->flags |= SEC_ALLOC | SEC_LOAD;
b486fb13
JL
1799 else
1800 subspace_asect->flags |= SEC_DEBUGGING;
1801
d9ad93bc
KR
1802 if (subspace.code_only)
1803 subspace_asect->flags |= SEC_CODE;
1804
36456a67
JL
1805 /* Both file_loc_init_value and initialization_length will
1806 be zero for a BSS like subspace. */
1807 if (subspace.file_loc_init_value == 0
1808 && subspace.initialization_length == 0)
1809 subspace_asect->flags &= ~(SEC_DATA | SEC_LOAD);
1810
9e16fcf1
SG
1811 /* This subspace has relocations.
1812 The fixup_request_quantity is a byte count for the number of
1813 entries in the relocation stream; it is not the actual number
1814 of relocations in the subspace. */
1815 if (subspace.fixup_request_quantity != 0)
1816 {
1817 subspace_asect->flags |= SEC_RELOC;
1818 subspace_asect->rel_filepos = subspace.fixup_request_index;
1819 som_section_data (subspace_asect)->reloc_size
1820 = subspace.fixup_request_quantity;
1821 /* We can not determine this yet. When we read in the
1822 relocation table the correct value will be filled in. */
1823 subspace_asect->reloc_count = -1;
1824 }
1825
1826 /* Update save_subspace if appropriate. */
1827 if (subspace.file_loc_init_value > save_subspace.file_loc_init_value)
1828 save_subspace = subspace;
1829
d9ad93bc
KR
1830 subspace_asect->vma = subspace.subspace_start;
1831 subspace_asect->_cooked_size = subspace.subspace_length;
36456a67 1832 subspace_asect->_raw_size = subspace.subspace_length;
d9ad93bc 1833 subspace_asect->filepos = subspace.file_loc_init_value;
98ecc945
JL
1834 subspace_asect->alignment_power = log2 (subspace.alignment);
1835 if (subspace_asect->alignment_power == -1)
80425e6c 1836 goto error_return;
d9ad93bc 1837 }
9e16fcf1
SG
1838
1839 /* Yow! there is no subspace within the space which actually
1840 has initialized information in it; this should never happen
1841 as far as I know. */
1842 if (!save_subspace.file_loc_init_value)
80425e6c 1843 goto error_return;
9e16fcf1 1844
d9ad93bc 1845 /* Setup the sizes for the space section based upon the info in the
9e16fcf1
SG
1846 last subspace of the space. */
1847 space_asect->_cooked_size = save_subspace.subspace_start
1848 - space_asect->vma + save_subspace.subspace_length;
1849 space_asect->_raw_size = save_subspace.file_loc_init_value
1850 - space_asect->filepos + save_subspace.initialization_length;
d9ad93bc 1851 }
80425e6c
JK
1852 if (space_strings != NULL)
1853 free (space_strings);
9e16fcf1 1854 return true;
80425e6c
JK
1855
1856 error_return:
1857 if (space_strings != NULL)
1858 free (space_strings);
1859 return false;
d9ad93bc
KR
1860}
1861
9e16fcf1
SG
1862/* Read in a SOM object and make it into a BFD. */
1863
2f3508ad 1864static const bfd_target *
9e16fcf1 1865som_object_p (abfd)
d9ad93bc
KR
1866 bfd *abfd;
1867{
1868 struct header file_hdr;
1869 struct som_exec_auxhdr aux_hdr;
1870
1871 if (bfd_read ((PTR) & file_hdr, 1, FILE_HDR_SIZE, abfd) != FILE_HDR_SIZE)
9e16fcf1 1872 {
25057836
JL
1873 if (bfd_get_error () != bfd_error_system_call)
1874 bfd_set_error (bfd_error_wrong_format);
9e16fcf1
SG
1875 return 0;
1876 }
d9ad93bc
KR
1877
1878 if (!_PA_RISC_ID (file_hdr.system_id))
1879 {
d1ad85a6 1880 bfd_set_error (bfd_error_wrong_format);
d9ad93bc
KR
1881 return 0;
1882 }
1883
1884 switch (file_hdr.a_magic)
1885 {
9e16fcf1 1886 case RELOC_MAGIC:
d9ad93bc
KR
1887 case EXEC_MAGIC:
1888 case SHARE_MAGIC:
1889 case DEMAND_MAGIC:
1890#ifdef DL_MAGIC
1891 case DL_MAGIC:
1892#endif
1893#ifdef SHL_MAGIC
1894 case SHL_MAGIC:
9e16fcf1
SG
1895#endif
1896#ifdef EXECLIBMAGIC
1897 case EXECLIBMAGIC:
017a52d7
JL
1898#endif
1899#ifdef SHARED_MAGIC_CNX
1900 case SHARED_MAGIC_CNX:
d9ad93bc
KR
1901#endif
1902 break;
1903 default:
d1ad85a6 1904 bfd_set_error (bfd_error_wrong_format);
d9ad93bc
KR
1905 return 0;
1906 }
1907
1908 if (file_hdr.version_id != VERSION_ID
1909 && file_hdr.version_id != NEW_VERSION_ID)
1910 {
d1ad85a6 1911 bfd_set_error (bfd_error_wrong_format);
d9ad93bc
KR
1912 return 0;
1913 }
1914
9e16fcf1
SG
1915 /* If the aux_header_size field in the file header is zero, then this
1916 object is an incomplete executable (a .o file). Do not try to read
1917 a non-existant auxiliary header. */
6e033f86 1918 memset (&aux_hdr, 0, sizeof (struct som_exec_auxhdr));
9e16fcf1
SG
1919 if (file_hdr.aux_header_size != 0)
1920 {
1921 if (bfd_read ((PTR) & aux_hdr, 1, AUX_HDR_SIZE, abfd) != AUX_HDR_SIZE)
1922 {
25057836
JL
1923 if (bfd_get_error () != bfd_error_system_call)
1924 bfd_set_error (bfd_error_wrong_format);
9e16fcf1
SG
1925 return 0;
1926 }
1927 }
d9ad93bc
KR
1928
1929 if (!setup_sections (abfd, &file_hdr))
9e16fcf1
SG
1930 {
1931 /* setup_sections does not bubble up a bfd error code. */
d1ad85a6 1932 bfd_set_error (bfd_error_bad_value);
9e16fcf1
SG
1933 return 0;
1934 }
d9ad93bc 1935
9e16fcf1
SG
1936 /* This appears to be a valid SOM object. Do some initialization. */
1937 return som_object_setup (abfd, &file_hdr, &aux_hdr);
d9ad93bc
KR
1938}
1939
9e16fcf1
SG
1940/* Create a SOM object. */
1941
d9ad93bc 1942static boolean
9e16fcf1 1943som_mkobject (abfd)
d9ad93bc
KR
1944 bfd *abfd;
1945{
9e16fcf1
SG
1946 /* Allocate memory to hold backend information. */
1947 abfd->tdata.som_data = (struct som_data_struct *)
1948 bfd_zalloc (abfd, sizeof (struct som_data_struct));
1949 if (abfd->tdata.som_data == NULL)
9e16fcf1 1950 {
d1ad85a6 1951 bfd_set_error (bfd_error_no_memory);
9e16fcf1
SG
1952 return false;
1953 }
1954 return true;
d9ad93bc
KR
1955}
1956
0ffa24b9
JL
1957/* Initialize some information in the file header. This routine makes
1958 not attempt at doing the right thing for a full executable; it
1959 is only meant to handle relocatable objects. */
1960
1961static boolean
1962som_prep_headers (abfd)
1963 bfd *abfd;
1964{
4359a7ef 1965 struct header *file_hdr;
0ffa24b9
JL
1966 asection *section;
1967
4359a7ef
JL
1968 /* Make and attach a file header to the BFD. */
1969 file_hdr = (struct header *) bfd_zalloc (abfd, sizeof (struct header));
1970 if (file_hdr == NULL)
1971
1972 {
1973 bfd_set_error (bfd_error_no_memory);
1974 return false;
1975 }
1976 obj_som_file_hdr (abfd) = file_hdr;
1977
65b1ef49 1978 if (abfd->flags & (EXEC_P | DYNAMIC))
ec743cef 1979 {
fde543b5
JL
1980
1981 /* Make and attach an exec header to the BFD. */
1982 obj_som_exec_hdr (abfd) = (struct som_exec_auxhdr *)
1983 bfd_zalloc (abfd, sizeof (struct som_exec_auxhdr));
1984 if (obj_som_exec_hdr (abfd) == NULL)
1985 {
1986 bfd_set_error (bfd_error_no_memory);
1987 return false;
1988 }
1989
ec743cef
JL
1990 if (abfd->flags & D_PAGED)
1991 file_hdr->a_magic = DEMAND_MAGIC;
1992 else if (abfd->flags & WP_TEXT)
1993 file_hdr->a_magic = SHARE_MAGIC;
65b1ef49
JL
1994#ifdef SHL_MAGIC
1995 else if (abfd->flags & DYNAMIC)
1996 file_hdr->a_magic = SHL_MAGIC;
1997#endif
ec743cef
JL
1998 else
1999 file_hdr->a_magic = EXEC_MAGIC;
2000 }
0ffa24b9
JL
2001 else
2002 file_hdr->a_magic = RELOC_MAGIC;
2003
2004 /* Only new format SOM is supported. */
2005 file_hdr->version_id = NEW_VERSION_ID;
2006
2007 /* These fields are optional, and embedding timestamps is not always
2008 a wise thing to do, it makes comparing objects during a multi-stage
2009 bootstrap difficult. */
2010 file_hdr->file_time.secs = 0;
2011 file_hdr->file_time.nanosecs = 0;
2012
4359a7ef
JL
2013 file_hdr->entry_space = 0;
2014 file_hdr->entry_subspace = 0;
2015 file_hdr->entry_offset = 0;
0ffa24b9
JL
2016 file_hdr->presumed_dp = 0;
2017
2018 /* Now iterate over the sections translating information from
2019 BFD sections to SOM spaces/subspaces. */
2020
2021 for (section = abfd->sections; section != NULL; section = section->next)
2022 {
2023 /* Ignore anything which has not been marked as a space or
2024 subspace. */
15766917 2025 if (!som_is_space (section) && !som_is_subspace (section))
0ffa24b9 2026 continue;
15766917
JL
2027
2028 if (som_is_space (section))
0ffa24b9 2029 {
15766917
JL
2030 /* Allocate space for the space dictionary. */
2031 som_section_data (section)->space_dict
2032 = (struct space_dictionary_record *)
2033 bfd_zalloc (abfd, sizeof (struct space_dictionary_record));
2034 if (som_section_data (section)->space_dict == NULL)
2035 {
2036 bfd_set_error (bfd_error_no_memory);
2037 return false;
2038 }
0ffa24b9
JL
2039 /* Set space attributes. Note most attributes of SOM spaces
2040 are set based on the subspaces it contains. */
15766917
JL
2041 som_section_data (section)->space_dict->loader_fix_index = -1;
2042 som_section_data (section)->space_dict->init_pointer_index = -1;
2043
2044 /* Set more attributes that were stuffed away in private data. */
2045 som_section_data (section)->space_dict->sort_key =
2046 som_section_data (section)->copy_data->sort_key;
2047 som_section_data (section)->space_dict->is_defined =
2048 som_section_data (section)->copy_data->is_defined;
2049 som_section_data (section)->space_dict->is_private =
2050 som_section_data (section)->copy_data->is_private;
2051 som_section_data (section)->space_dict->space_number =
673aceca 2052 som_section_data (section)->copy_data->space_number;
0ffa24b9
JL
2053 }
2054 else
2055 {
15766917
JL
2056 /* Allocate space for the subspace dictionary. */
2057 som_section_data (section)->subspace_dict
2058 = (struct subspace_dictionary_record *)
2059 bfd_zalloc (abfd, sizeof (struct subspace_dictionary_record));
2060 if (som_section_data (section)->subspace_dict == NULL)
2061 {
2062 bfd_set_error (bfd_error_no_memory);
2063 return false;
2064 }
2065
0ffa24b9
JL
2066 /* Set subspace attributes. Basic stuff is done here, additional
2067 attributes are filled in later as more information becomes
2068 available. */
2069 if (section->flags & SEC_IS_COMMON)
2070 {
15766917
JL
2071 som_section_data (section)->subspace_dict->dup_common = 1;
2072 som_section_data (section)->subspace_dict->is_common = 1;
0ffa24b9
JL
2073 }
2074
2075 if (section->flags & SEC_ALLOC)
15766917 2076 som_section_data (section)->subspace_dict->is_loadable = 1;
0ffa24b9
JL
2077
2078 if (section->flags & SEC_CODE)
15766917 2079 som_section_data (section)->subspace_dict->code_only = 1;
0ffa24b9 2080
15766917 2081 som_section_data (section)->subspace_dict->subspace_start =
0ffa24b9 2082 section->vma;
15766917 2083 som_section_data (section)->subspace_dict->subspace_length =
0ffa24b9 2084 bfd_section_size (abfd, section);
15766917 2085 som_section_data (section)->subspace_dict->initialization_length =
0ffa24b9 2086 bfd_section_size (abfd, section);
15766917 2087 som_section_data (section)->subspace_dict->alignment =
0ffa24b9 2088 1 << section->alignment_power;
15766917
JL
2089
2090 /* Set more attributes that were stuffed away in private data. */
2091 som_section_data (section)->subspace_dict->sort_key =
2092 som_section_data (section)->copy_data->sort_key;
2093 som_section_data (section)->subspace_dict->access_control_bits =
2094 som_section_data (section)->copy_data->access_control_bits;
2095 som_section_data (section)->subspace_dict->quadrant =
2096 som_section_data (section)->copy_data->quadrant;
0ffa24b9
JL
2097 }
2098 }
2099 return true;
2100}
2101
15766917
JL
2102/* Return true if the given section is a SOM space, false otherwise. */
2103
2104static boolean
2105som_is_space (section)
2106 asection *section;
2107{
2108 /* If no copy data is available, then it's neither a space nor a
2109 subspace. */
2110 if (som_section_data (section)->copy_data == NULL)
2111 return false;
2112
2113 /* If the containing space isn't the same as the given section,
2114 then this isn't a space. */
2115 if (som_section_data (section)->copy_data->container != section)
2116 return false;
2117
2118 /* OK. Must be a space. */
2119 return true;
2120}
2121
2122/* Return true if the given section is a SOM subspace, false otherwise. */
2123
2124static boolean
2125som_is_subspace (section)
2126 asection *section;
2127{
2128 /* If no copy data is available, then it's neither a space nor a
2129 subspace. */
2130 if (som_section_data (section)->copy_data == NULL)
2131 return false;
2132
2133 /* If the containing space is the same as the given section,
2134 then this isn't a subspace. */
2135 if (som_section_data (section)->copy_data->container == section)
2136 return false;
2137
2138 /* OK. Must be a subspace. */
2139 return true;
2140}
2141
2142/* Return true if the given space containins the given subspace. It
2143 is safe to assume space really is a space, and subspace really
2144 is a subspace. */
2145
2146static boolean
2147som_is_container (space, subspace)
2148 asection *space, *subspace;
2149{
2150 return som_section_data (subspace)->copy_data->container == space;
2151}
2152
5532fc5a
JL
2153/* Count and return the number of spaces attached to the given BFD. */
2154
2155static unsigned long
2156som_count_spaces (abfd)
2157 bfd *abfd;
2158{
2159 int count = 0;
2160 asection *section;
2161
2162 for (section = abfd->sections; section != NULL; section = section->next)
15766917 2163 count += som_is_space (section);
5532fc5a
JL
2164
2165 return count;
2166}
2167
2168/* Count the number of subspaces attached to the given BFD. */
2169
2170static unsigned long
2171som_count_subspaces (abfd)
2172 bfd *abfd;
2173{
2174 int count = 0;
2175 asection *section;
2176
2177 for (section = abfd->sections; section != NULL; section = section->next)
15766917 2178 count += som_is_subspace (section);
5532fc5a
JL
2179
2180 return count;
2181}
2182
2183/* Return -1, 0, 1 indicating the relative ordering of sym1 and sym2.
2184
2185 We desire symbols to be ordered starting with the symbol with the
2186 highest relocation count down to the symbol with the lowest relocation
2187 count. Doing so compacts the relocation stream. */
2188
2189static int
82492ca1
ILT
2190compare_syms (arg1, arg2)
2191 const PTR arg1;
2192 const PTR arg2;
5532fc5a
JL
2193
2194{
82492ca1
ILT
2195 asymbol **sym1 = (asymbol **) arg1;
2196 asymbol **sym2 = (asymbol **) arg2;
5532fc5a
JL
2197 unsigned int count1, count2;
2198
2199 /* Get relocation count for each symbol. Note that the count
2200 is stored in the udata pointer for section symbols! */
2201 if ((*sym1)->flags & BSF_SECTION_SYM)
2202 count1 = (int)(*sym1)->udata;
2203 else
50c5c4ad 2204 count1 = som_symbol_data (*sym1)->reloc_count;
5532fc5a
JL
2205
2206 if ((*sym2)->flags & BSF_SECTION_SYM)
2207 count2 = (int)(*sym2)->udata;
2208 else
50c5c4ad 2209 count2 = som_symbol_data (*sym2)->reloc_count;
5532fc5a
JL
2210
2211 /* Return the appropriate value. */
2212 if (count1 < count2)
2213 return 1;
2214 else if (count1 > count2)
2215 return -1;
2216 return 0;
2217}
2218
aff97790
JL
2219/* Perform various work in preparation for emitting the fixup stream. */
2220
2221static void
2222som_prep_for_fixups (abfd, syms, num_syms)
2223 bfd *abfd;
2224 asymbol **syms;
2225 unsigned long num_syms;
2226{
2227 int i;
2228 asection *section;
2229
2230 /* Most SOM relocations involving a symbol have a length which is
2231 dependent on the index of the symbol. So symbols which are
2232 used often in relocations should have a small index. */
2233
2234 /* First initialize the counters for each symbol. */
2235 for (i = 0; i < num_syms; i++)
2236 {
2237 /* Handle a section symbol; these have no pointers back to the
2238 SOM symbol info. So we just use the pointer field (udata)
8eb5d4be
JK
2239 to hold the relocation count. */
2240 if (som_symbol_data (syms[i]) == NULL
2241 || syms[i]->flags & BSF_SECTION_SYM)
aff97790
JL
2242 {
2243 syms[i]->flags |= BSF_SECTION_SYM;
aff97790
JL
2244 syms[i]->udata = (PTR) 0;
2245 }
2246 else
50c5c4ad 2247 som_symbol_data (syms[i])->reloc_count = 0;
aff97790
JL
2248 }
2249
2250 /* Now that the counters are initialized, make a weighted count
2251 of how often a given symbol is used in a relocation. */
2252 for (section = abfd->sections; section != NULL; section = section->next)
2253 {
2254 int i;
2255
2256 /* Does this section have any relocations? */
2257 if (section->reloc_count <= 0)
2258 continue;
2259
2260 /* Walk through each relocation for this section. */
2261 for (i = 1; i < section->reloc_count; i++)
2262 {
2263 arelent *reloc = section->orelocation[i];
2264 int scale;
2265
baef2065
JL
2266 /* A relocation against a symbol in the *ABS* section really
2267 does not have a symbol. Likewise if the symbol isn't associated
2268 with any section. */
2269 if (reloc->sym_ptr_ptr == NULL
fde543b5 2270 || bfd_is_abs_section ((*reloc->sym_ptr_ptr)->section))
aff97790
JL
2271 continue;
2272
2273 /* Scaling to encourage symbols involved in R_DP_RELATIVE
2274 and R_CODE_ONE_SYMBOL relocations to come first. These
2275 two relocations have single byte versions if the symbol
2276 index is very small. */
2277 if (reloc->howto->type == R_DP_RELATIVE
2278 || reloc->howto->type == R_CODE_ONE_SYMBOL)
2279 scale = 2;
2280 else
2281 scale = 1;
2282
2283 /* Handle section symbols by ramming the count in the udata
2284 field. It will not be used and the count is very important
2285 for these symbols. */
2286 if ((*reloc->sym_ptr_ptr)->flags & BSF_SECTION_SYM)
2287 {
2288 (*reloc->sym_ptr_ptr)->udata =
2289 (PTR) ((int) (*reloc->sym_ptr_ptr)->udata + scale);
2290 continue;
2291 }
2292
2293 /* A normal symbol. Increment the count. */
50c5c4ad 2294 som_symbol_data (*reloc->sym_ptr_ptr)->reloc_count += scale;
aff97790
JL
2295 }
2296 }
29f1ccee 2297
aff97790
JL
2298 /* Now sort the symbols. */
2299 qsort (syms, num_syms, sizeof (asymbol *), compare_syms);
2300
2301 /* Compute the symbol indexes, they will be needed by the relocation
2302 code. */
2303 for (i = 0; i < num_syms; i++)
2304 {
2305 /* A section symbol. Again, there is no pointer to backend symbol
2306 information, so we reuse (abuse) the udata field again. */
2307 if (syms[i]->flags & BSF_SECTION_SYM)
2308 syms[i]->udata = (PTR) i;
2309 else
50c5c4ad 2310 som_symbol_data (syms[i])->index = i;
aff97790
JL
2311 }
2312}
2313
9d0dea6f
JL
2314static boolean
2315som_write_fixups (abfd, current_offset, total_reloc_sizep)
2316 bfd *abfd;
2317 unsigned long current_offset;
2318 unsigned int *total_reloc_sizep;
2319{
2320 unsigned int i, j;
80425e6c
JK
2321 /* Chunk of memory that we can use as buffer space, then throw
2322 away. */
2323 unsigned char tmp_space[SOM_TMP_BUFSIZE];
2324 unsigned char *p;
9d0dea6f
JL
2325 unsigned int total_reloc_size = 0;
2326 unsigned int subspace_reloc_size = 0;
2327 unsigned int num_spaces = obj_som_file_hdr (abfd)->space_total;
2328 asection *section = abfd->sections;
2329
6e033f86 2330 memset (tmp_space, 0, SOM_TMP_BUFSIZE);
9d0dea6f
JL
2331 p = tmp_space;
2332
2333 /* All the fixups for a particular subspace are emitted in a single
2334 stream. All the subspaces for a particular space are emitted
2335 as a single stream.
2336
2337 So, to get all the locations correct one must iterate through all the
2338 spaces, for each space iterate through its subspaces and output a
2339 fixups stream. */
2340 for (i = 0; i < num_spaces; i++)
2341 {
2342 asection *subsection;
2343
2344 /* Find a space. */
15766917 2345 while (!som_is_space (section))
9d0dea6f
JL
2346 section = section->next;
2347
2348 /* Now iterate through each of its subspaces. */
2349 for (subsection = abfd->sections;
2350 subsection != NULL;
2351 subsection = subsection->next)
2352 {
017a52d7 2353 int reloc_offset, current_rounding_mode;
9d0dea6f
JL
2354
2355 /* Find a subspace of this space. */
15766917
JL
2356 if (!som_is_subspace (subsection)
2357 || !som_is_container (section, subsection))
9d0dea6f
JL
2358 continue;
2359
41194a4a
JL
2360 /* If this subspace does not have real data, then we are
2361 finised with it. */
2362 if ((subsection->flags & (SEC_LOAD | SEC_DEBUGGING)) == 0)
9d0dea6f 2363 {
15766917 2364 som_section_data (subsection)->subspace_dict->fixup_request_index
9d0dea6f
JL
2365 = -1;
2366 continue;
2367 }
2368
2369 /* This subspace has some relocations. Put the relocation stream
2370 index into the subspace record. */
15766917 2371 som_section_data (subsection)->subspace_dict->fixup_request_index
9d0dea6f
JL
2372 = total_reloc_size;
2373
2374 /* To make life easier start over with a clean slate for
2375 each subspace. Seek to the start of the relocation stream
2376 for this subspace in preparation for writing out its fixup
2377 stream. */
25057836
JL
2378 if (bfd_seek (abfd, current_offset + total_reloc_size, SEEK_SET) < 0)
2379 return false;
9d0dea6f
JL
2380
2381 /* Buffer space has already been allocated. Just perform some
2382 initialization here. */
2383 p = tmp_space;
2384 subspace_reloc_size = 0;
2385 reloc_offset = 0;
2386 som_initialize_reloc_queue (reloc_queue);
017a52d7 2387 current_rounding_mode = R_N_MODE;
9d0dea6f
JL
2388
2389 /* Translate each BFD relocation into one or more SOM
2390 relocations. */
2391 for (j = 0; j < subsection->reloc_count; j++)
2392 {
2393 arelent *bfd_reloc = subsection->orelocation[j];
2394 unsigned int skip;
2395 int sym_num;
2396
2397 /* Get the symbol number. Remember it's stored in a
2398 special place for section symbols. */
2399 if ((*bfd_reloc->sym_ptr_ptr)->flags & BSF_SECTION_SYM)
2400 sym_num = (int) (*bfd_reloc->sym_ptr_ptr)->udata;
2401 else
50c5c4ad 2402 sym_num = som_symbol_data (*bfd_reloc->sym_ptr_ptr)->index;
9d0dea6f
JL
2403
2404 /* If there is not enough room for the next couple relocations,
2405 then dump the current buffer contents now. Also reinitialize
2406 the relocation queue.
2407
7430a991
JL
2408 No single BFD relocation could ever translate into more
2409 than 100 bytes of SOM relocations (20bytes is probably the
2410 upper limit, but leave lots of space for growth). */
9d0dea6f
JL
2411 if (p - tmp_space + 100 > SOM_TMP_BUFSIZE)
2412 {
2413 if (bfd_write ((PTR) tmp_space, p - tmp_space, 1, abfd)
2414 != p - tmp_space)
25057836
JL
2415 return false;
2416
9d0dea6f
JL
2417 p = tmp_space;
2418 som_initialize_reloc_queue (reloc_queue);
2419 }
2420
2421 /* Emit R_NO_RELOCATION fixups to map any bytes which were
2422 skipped. */
2423 skip = bfd_reloc->address - reloc_offset;
2424 p = som_reloc_skip (abfd, skip, p,
2425 &subspace_reloc_size, reloc_queue);
2426
2427 /* Update reloc_offset for the next iteration.
2428
017a52d7
JL
2429 Many relocations do not consume input bytes. They
2430 are markers, or set state necessary to perform some
2431 later relocation. */
2432 switch (bfd_reloc->howto->type)
2433 {
2434 /* This only needs to handle relocations that may be
2435 made by hppa_som_gen_reloc. */
2436 case R_ENTRY:
2437 case R_EXIT:
2438 case R_N_MODE:
2439 case R_S_MODE:
2440 case R_D_MODE:
2441 case R_R_MODE:
a36b6f1d
JL
2442 case R_FSEL:
2443 case R_LSEL:
2444 case R_RSEL:
017a52d7
JL
2445 reloc_offset = bfd_reloc->address;
2446 break;
9d0dea6f 2447
017a52d7
JL
2448 default:
2449 reloc_offset = bfd_reloc->address + 4;
2450 break;
2451 }
9d0dea6f
JL
2452
2453 /* Now the actual relocation we care about. */
2454 switch (bfd_reloc->howto->type)
2455 {
2456 case R_PCREL_CALL:
2457 case R_ABS_CALL:
2458 p = som_reloc_call (abfd, p, &subspace_reloc_size,
2459 bfd_reloc, sym_num, reloc_queue);
2460 break;
2461
2462 case R_CODE_ONE_SYMBOL:
2463 case R_DP_RELATIVE:
2464 /* Account for any addend. */
2465 if (bfd_reloc->addend)
2466 p = som_reloc_addend (abfd, bfd_reloc->addend, p,
2467 &subspace_reloc_size, reloc_queue);
2468
2469 if (sym_num < 0x20)
2470 {
2471 bfd_put_8 (abfd, bfd_reloc->howto->type + sym_num, p);
2472 subspace_reloc_size += 1;
2473 p += 1;
2474 }
2475 else if (sym_num < 0x100)
2476 {
2477 bfd_put_8 (abfd, bfd_reloc->howto->type + 32, p);
2478 bfd_put_8 (abfd, sym_num, p + 1);
2479 p = try_prev_fixup (abfd, &subspace_reloc_size, p,
2480 2, reloc_queue);
2481 }
2482 else if (sym_num < 0x10000000)
2483 {
2484 bfd_put_8 (abfd, bfd_reloc->howto->type + 33, p);
2485 bfd_put_8 (abfd, sym_num >> 16, p + 1);
2486 bfd_put_16 (abfd, sym_num, p + 2);
2487 p = try_prev_fixup (abfd, &subspace_reloc_size,
2488 p, 4, reloc_queue);
2489 }
2490 else
2491 abort ();
2492 break;
2493
2494 case R_DATA_ONE_SYMBOL:
2495 case R_DATA_PLABEL:
2496 case R_CODE_PLABEL:
a36b6f1d 2497 case R_DLT_REL:
9d0dea6f
JL
2498 /* Account for any addend. */
2499 if (bfd_reloc->addend)
2500 p = som_reloc_addend (abfd, bfd_reloc->addend, p,
2501 &subspace_reloc_size, reloc_queue);
2502
2503 if (sym_num < 0x100)
2504 {
2505 bfd_put_8 (abfd, bfd_reloc->howto->type, p);
2506 bfd_put_8 (abfd, sym_num, p + 1);
2507 p = try_prev_fixup (abfd, &subspace_reloc_size, p,
2508 2, reloc_queue);
2509 }
2510 else if (sym_num < 0x10000000)
2511 {
2512 bfd_put_8 (abfd, bfd_reloc->howto->type + 1, p);
2513 bfd_put_8 (abfd, sym_num >> 16, p + 1);
2514 bfd_put_16 (abfd, sym_num, p + 2);
2515 p = try_prev_fixup (abfd, &subspace_reloc_size,
2516 p, 4, reloc_queue);
2517 }
2518 else
2519 abort ();
2520 break;
2521
2522 case R_ENTRY:
2523 {
b905bde1
JL
2524 int *descp = (int *)
2525 som_symbol_data (*bfd_reloc->sym_ptr_ptr)->unwind;
9d0dea6f 2526 bfd_put_8 (abfd, R_ENTRY, p);
b905bde1
JL
2527
2528 /* FIXME: We should set the sym_ptr for the R_ENTRY
2529 reloc to point to the appropriate function symbol,
2530 and attach unwind bits to the function symbol as
2531 we canonicalize the relocs. Doing so would ensure
2532 descp would always point to something useful. */
2533 if (descp)
2534 {
2535 bfd_put_32 (abfd, descp[0], p + 1);
2536 bfd_put_32 (abfd, descp[1], p + 5);
2537 }
2538 else
2539 {
2540 bfd_put_32 (abfd, 0, p + 1);
2541 bfd_put_32 (abfd, 0, p + 5);
2542 }
9d0dea6f
JL
2543 p = try_prev_fixup (abfd, &subspace_reloc_size,
2544 p, 9, reloc_queue);
2545 break;
2546 }
2547
2548 case R_EXIT:
2549 bfd_put_8 (abfd, R_EXIT, p);
2550 subspace_reloc_size += 1;
2551 p += 1;
2552 break;
2553
017a52d7
JL
2554 case R_N_MODE:
2555 case R_S_MODE:
2556 case R_D_MODE:
2557 case R_R_MODE:
2558 /* If this relocation requests the current rounding
2559 mode, then it is redundant. */
2560 if (bfd_reloc->howto->type != current_rounding_mode)
2561 {
2562 bfd_put_8 (abfd, bfd_reloc->howto->type, p);
2563 subspace_reloc_size += 1;
2564 p += 1;
2565 current_rounding_mode = bfd_reloc->howto->type;
2566 }
2567 break;
2568
a36b6f1d
JL
2569 case R_FSEL:
2570 case R_LSEL:
2571 case R_RSEL:
2572 bfd_put_8 (abfd, bfd_reloc->howto->type, p);
2573 subspace_reloc_size += 1;
2574 p += 1;
2575 break;
2576
9d0dea6f
JL
2577 /* Put a "R_RESERVED" relocation in the stream if
2578 we hit something we do not understand. The linker
2579 will complain loudly if this ever happens. */
2580 default:
2581 bfd_put_8 (abfd, 0xff, p);
2582 subspace_reloc_size += 1;
2583 p += 1;
017a52d7 2584 break;
9d0dea6f
JL
2585 }
2586 }
2587
2588 /* Last BFD relocation for a subspace has been processed.
2589 Map the rest of the subspace with R_NO_RELOCATION fixups. */
2590 p = som_reloc_skip (abfd, bfd_section_size (abfd, subsection)
2591 - reloc_offset,
2592 p, &subspace_reloc_size, reloc_queue);
2593
2594 /* Scribble out the relocations. */
2595 if (bfd_write ((PTR) tmp_space, p - tmp_space, 1, abfd)
2596 != p - tmp_space)
25057836 2597 return false;
9d0dea6f
JL
2598 p = tmp_space;
2599
2600 total_reloc_size += subspace_reloc_size;
15766917 2601 som_section_data (subsection)->subspace_dict->fixup_request_quantity
9d0dea6f
JL
2602 = subspace_reloc_size;
2603 }
2604 section = section->next;
2605 }
2606 *total_reloc_sizep = total_reloc_size;
2607 return true;
2608}
2609
0b35f7ec
JL
2610/* Write out the space/subspace string table. */
2611
2612static boolean
2613som_write_space_strings (abfd, current_offset, string_sizep)
2614 bfd *abfd;
2615 unsigned long current_offset;
2616 unsigned int *string_sizep;
2617{
80425e6c
JK
2618 /* Chunk of memory that we can use as buffer space, then throw
2619 away. */
2620 unsigned char tmp_space[SOM_TMP_BUFSIZE];
2621 unsigned char *p;
0b35f7ec
JL
2622 unsigned int strings_size = 0;
2623 asection *section;
2624
6e033f86 2625 memset (tmp_space, 0, SOM_TMP_BUFSIZE);
0b35f7ec
JL
2626 p = tmp_space;
2627
2628 /* Seek to the start of the space strings in preparation for writing
2629 them out. */
25057836
JL
2630 if (bfd_seek (abfd, current_offset, SEEK_SET) < 0)
2631 return false;
0b35f7ec
JL
2632
2633 /* Walk through all the spaces and subspaces (order is not important)
2634 building up and writing string table entries for their names. */
2635 for (section = abfd->sections; section != NULL; section = section->next)
2636 {
2637 int length;
2638
2639 /* Only work with space/subspaces; avoid any other sections
2640 which might have been made (.text for example). */
15766917 2641 if (!som_is_space (section) && !som_is_subspace (section))
0b35f7ec
JL
2642 continue;
2643
2644 /* Get the length of the space/subspace name. */
2645 length = strlen (section->name);
2646
2647 /* If there is not enough room for the next entry, then dump the
2648 current buffer contents now. Each entry will take 4 bytes to
2649 hold the string length + the string itself + null terminator. */
2650 if (p - tmp_space + 5 + length > SOM_TMP_BUFSIZE)
2651 {
80425e6c 2652 if (bfd_write ((PTR) &tmp_space[0], p - tmp_space, 1, abfd)
0b35f7ec 2653 != p - tmp_space)
25057836 2654 return false;
0b35f7ec
JL
2655 /* Reset to beginning of the buffer space. */
2656 p = tmp_space;
2657 }
2658
2659 /* First element in a string table entry is the length of the
2660 string. Alignment issues are already handled. */
2661 bfd_put_32 (abfd, length, p);
2662 p += 4;
2663 strings_size += 4;
2664
2665 /* Record the index in the space/subspace records. */
15766917
JL
2666 if (som_is_space (section))
2667 som_section_data (section)->space_dict->name.n_strx = strings_size;
0b35f7ec 2668 else
15766917 2669 som_section_data (section)->subspace_dict->name.n_strx = strings_size;
0b35f7ec
JL
2670
2671 /* Next comes the string itself + a null terminator. */
2672 strcpy (p, section->name);
2673 p += length + 1;
2674 strings_size += length + 1;
2675
2676 /* Always align up to the next word boundary. */
2677 while (strings_size % 4)
2678 {
2679 bfd_put_8 (abfd, 0, p);
2680 p++;
2681 strings_size++;
2682 }
2683 }
2684
2685 /* Done with the space/subspace strings. Write out any information
2686 contained in a partial block. */
80425e6c 2687 if (bfd_write ((PTR) &tmp_space[0], p - tmp_space, 1, abfd) != p - tmp_space)
25057836 2688 return false;
0b35f7ec
JL
2689 *string_sizep = strings_size;
2690 return true;
2691}
2692
2693/* Write out the symbol string table. */
2694
2695static boolean
2696som_write_symbol_strings (abfd, current_offset, syms, num_syms, string_sizep)
2697 bfd *abfd;
2698 unsigned long current_offset;
2699 asymbol **syms;
2700 unsigned int num_syms;
2701 unsigned int *string_sizep;
2702{
2703 unsigned int i;
80425e6c
JK
2704
2705 /* Chunk of memory that we can use as buffer space, then throw
2706 away. */
2707 unsigned char tmp_space[SOM_TMP_BUFSIZE];
2708 unsigned char *p;
0b35f7ec
JL
2709 unsigned int strings_size = 0;
2710
6e033f86 2711 memset (tmp_space, 0, SOM_TMP_BUFSIZE);
0b35f7ec
JL
2712 p = tmp_space;
2713
2714 /* Seek to the start of the space strings in preparation for writing
2715 them out. */
25057836
JL
2716 if (bfd_seek (abfd, current_offset, SEEK_SET) < 0)
2717 return false;
0b35f7ec
JL
2718
2719 for (i = 0; i < num_syms; i++)
2720 {
2721 int length = strlen (syms[i]->name);
2722
2723 /* If there is not enough room for the next entry, then dump the
2724 current buffer contents now. */
2725 if (p - tmp_space + 5 + length > SOM_TMP_BUFSIZE)
2726 {
80425e6c 2727 if (bfd_write ((PTR) &tmp_space[0], p - tmp_space, 1, abfd)
0b35f7ec 2728 != p - tmp_space)
25057836 2729 return false;
0b35f7ec
JL
2730 /* Reset to beginning of the buffer space. */
2731 p = tmp_space;
2732 }
2733
2734 /* First element in a string table entry is the length of the
2735 string. This must always be 4 byte aligned. This is also
2736 an appropriate time to fill in the string index field in the
2737 symbol table entry. */
2738 bfd_put_32 (abfd, length, p);
2739 strings_size += 4;
2740 p += 4;
2741
2742 /* Next comes the string itself + a null terminator. */
2743 strcpy (p, syms[i]->name);
2744
2745 /* ACK. FIXME. */
2746 syms[i]->name = (char *)strings_size;
2747 p += length + 1;
2748 strings_size += length + 1;
2749
2750 /* Always align up to the next word boundary. */
2751 while (strings_size % 4)
2752 {
2753 bfd_put_8 (abfd, 0, p);
2754 strings_size++;
2755 p++;
2756 }
2757 }
2758
2759 /* Scribble out any partial block. */
80425e6c 2760 if (bfd_write ((PTR) &tmp_space[0], p - tmp_space, 1, abfd) != p - tmp_space)
25057836 2761 return false;
0b35f7ec
JL
2762
2763 *string_sizep = strings_size;
2764 return true;
2765}
2766
6eb64408
JL
2767/* Compute variable information to be placed in the SOM headers,
2768 space/subspace dictionaries, relocation streams, etc. Begin
2769 writing parts of the object file. */
2770
2771static boolean
2772som_begin_writing (abfd)
2773 bfd *abfd;
2774{
2775 unsigned long current_offset = 0;
2776 int strings_size = 0;
2777 unsigned int total_reloc_size = 0;
2778 unsigned long num_spaces, num_subspaces, num_syms, i;
2779 asection *section;
2780 asymbol **syms = bfd_get_outsymbols (abfd);
2781 unsigned int total_subspaces = 0;
fde543b5 2782 struct som_exec_auxhdr *exec_header;
6eb64408
JL
2783
2784 /* The file header will always be first in an object file,
2785 everything else can be in random locations. To keep things
2786 "simple" BFD will lay out the object file in the manner suggested
2787 by the PRO ABI for PA-RISC Systems. */
2788
2789 /* Before any output can really begin offsets for all the major
2790 portions of the object file must be computed. So, starting
2791 with the initial file header compute (and sometimes write)
2792 each portion of the object file. */
2793
2794 /* Make room for the file header, it's contents are not complete
2795 yet, so it can not be written at this time. */
2796 current_offset += sizeof (struct header);
2797
2798 /* Any auxiliary headers will follow the file header. Right now
f6c2300b 2799 we support only the copyright and version headers. */
6eb64408
JL
2800 obj_som_file_hdr (abfd)->aux_header_location = current_offset;
2801 obj_som_file_hdr (abfd)->aux_header_size = 0;
65b1ef49 2802 if (abfd->flags & (EXEC_P | DYNAMIC))
8eb5d4be
JK
2803 {
2804 /* Parts of the exec header will be filled in later, so
08b3c4f9
JL
2805 delay writing the header itself. Fill in the defaults,
2806 and write it later. */
fde543b5
JL
2807 current_offset += sizeof (struct som_exec_auxhdr);
2808 obj_som_file_hdr (abfd)->aux_header_size
2809 += sizeof (struct som_exec_auxhdr);
2810 exec_header = obj_som_exec_hdr (abfd);
2811 exec_header->som_auxhdr.type = EXEC_AUX_ID;
2812 exec_header->som_auxhdr.length = 40;
8eb5d4be 2813 }
f6c2300b
JL
2814 if (obj_som_version_hdr (abfd) != NULL)
2815 {
2816 unsigned int len;
2817
25057836
JL
2818 if (bfd_seek (abfd, current_offset, SEEK_SET) < 0)
2819 return false;
f6c2300b
JL
2820
2821 /* Write the aux_id structure and the string length. */
2822 len = sizeof (struct aux_id) + sizeof (unsigned int);
2823 obj_som_file_hdr (abfd)->aux_header_size += len;
2824 current_offset += len;
2825 if (bfd_write ((PTR) obj_som_version_hdr (abfd), len, 1, abfd) != len)
25057836 2826 return false;
f6c2300b
JL
2827
2828 /* Write the version string. */
39961154 2829 len = obj_som_version_hdr (abfd)->header_id.length - sizeof (int);
f6c2300b
JL
2830 obj_som_file_hdr (abfd)->aux_header_size += len;
2831 current_offset += len;
2832 if (bfd_write ((PTR) obj_som_version_hdr (abfd)->user_string,
2833 len, 1, abfd) != len)
25057836 2834 return false;
f6c2300b 2835 }
6eb64408 2836
f6c2300b
JL
2837 if (obj_som_copyright_hdr (abfd) != NULL)
2838 {
2839 unsigned int len;
2840
25057836
JL
2841 if (bfd_seek (abfd, current_offset, SEEK_SET) < 0)
2842 return false;
f6c2300b
JL
2843
2844 /* Write the aux_id structure and the string length. */
2845 len = sizeof (struct aux_id) + sizeof (unsigned int);
2846 obj_som_file_hdr (abfd)->aux_header_size += len;
2847 current_offset += len;
2848 if (bfd_write ((PTR) obj_som_copyright_hdr (abfd), len, 1, abfd) != len)
25057836 2849 return false;
f6c2300b
JL
2850
2851 /* Write the copyright string. */
39961154 2852 len = obj_som_copyright_hdr (abfd)->header_id.length - sizeof (int);
f6c2300b
JL
2853 obj_som_file_hdr (abfd)->aux_header_size += len;
2854 current_offset += len;
2855 if (bfd_write ((PTR) obj_som_copyright_hdr (abfd)->copyright,
2856 len, 1, abfd) != len)
25057836 2857 return false;
f6c2300b
JL
2858 }
2859
2860 /* Next comes the initialization pointers; we have no initialization
2861 pointers, so current offset does not change. */
6eb64408
JL
2862 obj_som_file_hdr (abfd)->init_array_location = current_offset;
2863 obj_som_file_hdr (abfd)->init_array_total = 0;
2864
2865 /* Next are the space records. These are fixed length records.
2866
2867 Count the number of spaces to determine how much room is needed
2868 in the object file for the space records.
2869
2870 The names of the spaces are stored in a separate string table,
2871 and the index for each space into the string table is computed
2872 below. Therefore, it is not possible to write the space headers
2873 at this time. */
2874 num_spaces = som_count_spaces (abfd);
2875 obj_som_file_hdr (abfd)->space_location = current_offset;
2876 obj_som_file_hdr (abfd)->space_total = num_spaces;
2877 current_offset += num_spaces * sizeof (struct space_dictionary_record);
2878
2879 /* Next are the subspace records. These are fixed length records.
2880
2881 Count the number of subspaes to determine how much room is needed
2882 in the object file for the subspace records.
2883
2884 A variety if fields in the subspace record are still unknown at
2885 this time (index into string table, fixup stream location/size, etc). */
2886 num_subspaces = som_count_subspaces (abfd);
2887 obj_som_file_hdr (abfd)->subspace_location = current_offset;
2888 obj_som_file_hdr (abfd)->subspace_total = num_subspaces;
2889 current_offset += num_subspaces * sizeof (struct subspace_dictionary_record);
2890
2891 /* Next is the string table for the space/subspace names. We will
2892 build and write the string table on the fly. At the same time
2893 we will fill in the space/subspace name index fields. */
2894
2895 /* The string table needs to be aligned on a word boundary. */
2896 if (current_offset % 4)
2897 current_offset += (4 - (current_offset % 4));
2898
2899 /* Mark the offset of the space/subspace string table in the
2900 file header. */
2901 obj_som_file_hdr (abfd)->space_strings_location = current_offset;
2902
2903 /* Scribble out the space strings. */
2904 if (som_write_space_strings (abfd, current_offset, &strings_size) == false)
2905 return false;
2906
2907 /* Record total string table size in the header and update the
2908 current offset. */
2909 obj_som_file_hdr (abfd)->space_strings_size = strings_size;
2910 current_offset += strings_size;
2911
2912 /* Next is the symbol table. These are fixed length records.
2913
2914 Count the number of symbols to determine how much room is needed
2915 in the object file for the symbol table.
2916
2917 The names of the symbols are stored in a separate string table,
2918 and the index for each symbol name into the string table is computed
2919 below. Therefore, it is not possible to write the symobl table
2920 at this time. */
2921 num_syms = bfd_get_symcount (abfd);
2922 obj_som_file_hdr (abfd)->symbol_location = current_offset;
2923 obj_som_file_hdr (abfd)->symbol_total = num_syms;
2924 current_offset += num_syms * sizeof (struct symbol_dictionary_record);
2925
2926 /* Do prep work before handling fixups. */
2927 som_prep_for_fixups (abfd, syms, num_syms);
2928
2929 /* Next comes the fixup stream which starts on a word boundary. */
2930 if (current_offset % 4)
2931 current_offset += (4 - (current_offset % 4));
2932 obj_som_file_hdr (abfd)->fixup_request_location = current_offset;
2933
2934 /* Write the fixups and update fields in subspace headers which
2935 relate to the fixup stream. */
2936 if (som_write_fixups (abfd, current_offset, &total_reloc_size) == false)
2937 return false;
2938
2939 /* Record the total size of the fixup stream in the file header. */
2940 obj_som_file_hdr (abfd)->fixup_request_total = total_reloc_size;
2941 current_offset += total_reloc_size;
2942
2943 /* Next are the symbol strings.
2944 Align them to a word boundary. */
2945 if (current_offset % 4)
2946 current_offset += (4 - (current_offset % 4));
2947 obj_som_file_hdr (abfd)->symbol_strings_location = current_offset;
2948
2949 /* Scribble out the symbol strings. */
2950 if (som_write_symbol_strings (abfd, current_offset, syms,
2951 num_syms, &strings_size)
2952 == false)
2953 return false;
2954
2955 /* Record total string table size in header and update the
2956 current offset. */
2957 obj_som_file_hdr (abfd)->symbol_strings_size = strings_size;
2958 current_offset += strings_size;
2959
2960 /* Next is the compiler records. We do not use these. */
2961 obj_som_file_hdr (abfd)->compiler_location = current_offset;
2962 obj_som_file_hdr (abfd)->compiler_total = 0;
2963
08b3c4f9
JL
2964 /* Now compute the file positions for the loadable subspaces, taking
2965 care to make sure everything stays properly aligned. */
6eb64408
JL
2966
2967 section = abfd->sections;
2968 for (i = 0; i < num_spaces; i++)
2969 {
2970 asection *subsection;
08b3c4f9 2971 int first_subspace;
06e6eb0e 2972 unsigned int subspace_offset = 0;
6eb64408
JL
2973
2974 /* Find a space. */
15766917 2975 while (!som_is_space (section))
6eb64408
JL
2976 section = section->next;
2977
08b3c4f9 2978 first_subspace = 1;
6eb64408
JL
2979 /* Now look for all its subspaces. */
2980 for (subsection = abfd->sections;
2981 subsection != NULL;
2982 subsection = subsection->next)
2983 {
08b3c4f9 2984
15766917
JL
2985 if (!som_is_subspace (subsection)
2986 || !som_is_container (section, subsection)
6eb64408
JL
2987 || (subsection->flags & SEC_ALLOC) == 0)
2988 continue;
2989
08b3c4f9
JL
2990 /* If this is the first subspace in the space, and we are
2991 building an executable, then take care to make sure all
2992 the alignments are correct and update the exec header. */
2993 if (first_subspace
65b1ef49 2994 && (abfd->flags & (EXEC_P | DYNAMIC)))
08b3c4f9
JL
2995 {
2996 /* Demand paged executables have each space aligned to a
2997 page boundary. Sharable executables (write-protected
2998 text) have just the private (aka data & bss) space aligned
142f59f4
JL
2999 to a page boundary. Ugh. Not true for HPUX.
3000
3001 The HPUX kernel requires the text to always be page aligned
3002 within the file regardless of the executable's type. */
65b1ef49 3003 if (abfd->flags & (D_PAGED | DYNAMIC)
142f59f4 3004 || (subsection->flags & SEC_CODE)
08b3c4f9
JL
3005 || ((abfd->flags & WP_TEXT)
3006 && (subsection->flags & SEC_DATA)))
3007 current_offset = SOM_ALIGN (current_offset, PA_PAGESIZE);
3008
3009 /* Update the exec header. */
fde543b5 3010 if (subsection->flags & SEC_CODE && exec_header->exec_tfile == 0)
08b3c4f9 3011 {
fde543b5
JL
3012 exec_header->exec_tmem = section->vma;
3013 exec_header->exec_tfile = current_offset;
08b3c4f9 3014 }
fde543b5 3015 if (subsection->flags & SEC_DATA && exec_header->exec_dfile == 0)
08b3c4f9 3016 {
fde543b5
JL
3017 exec_header->exec_dmem = section->vma;
3018 exec_header->exec_dfile = current_offset;
08b3c4f9
JL
3019 }
3020
06e6eb0e
JL
3021 /* Keep track of exactly where we are within a particular
3022 space. This is necessary as the braindamaged HPUX
3023 loader will create holes between subspaces *and*
3024 subspace alignments are *NOT* preserved. What a crock. */
3025 subspace_offset = subsection->vma;
3026
08b3c4f9
JL
3027 /* Only do this for the first subspace within each space. */
3028 first_subspace = 0;
3029 }
65b1ef49 3030 else if (abfd->flags & (EXEC_P | DYNAMIC))
00806436 3031 {
06e6eb0e
JL
3032 /* The braindamaged HPUX loader may have created a hole
3033 between two subspaces. It is *not* sufficient to use
3034 the alignment specifications within the subspaces to
3035 account for these holes -- I've run into at least one
3036 case where the loader left one code subspace unaligned
3037 in a final executable.
3038
3039 To combat this we keep a current offset within each space,
3040 and use the subspace vma fields to detect and preserve
3041 holes. What a crock!
3042
3043 ps. This is not necessary for unloadable space/subspaces. */
3044 current_offset += subsection->vma - subspace_offset;
00806436 3045 if (subsection->flags & SEC_CODE)
fde543b5 3046 exec_header->exec_tsize += subsection->vma - subspace_offset;
00806436 3047 else
fde543b5 3048 exec_header->exec_dsize += subsection->vma - subspace_offset;
06e6eb0e 3049 subspace_offset += subsection->vma - subspace_offset;
00806436 3050 }
08b3c4f9 3051
06e6eb0e 3052
4359a7ef 3053 subsection->target_index = total_subspaces++;
6eb64408
JL
3054 /* This is real data to be loaded from the file. */
3055 if (subsection->flags & SEC_LOAD)
3056 {
08b3c4f9 3057 /* Update the size of the code & data. */
65b1ef49 3058 if (abfd->flags & (EXEC_P | DYNAMIC)
08b3c4f9 3059 && subsection->flags & SEC_CODE)
fde543b5 3060 exec_header->exec_tsize += subsection->_cooked_size;
65b1ef49 3061 else if (abfd->flags & (EXEC_P | DYNAMIC)
08b3c4f9 3062 && subsection->flags & SEC_DATA)
fde543b5 3063 exec_header->exec_dsize += subsection->_cooked_size;
15766917 3064 som_section_data (subsection)->subspace_dict->file_loc_init_value
6eb64408 3065 = current_offset;
06e6eb0e 3066 subsection->filepos = current_offset;
6eb64408 3067 current_offset += bfd_section_size (abfd, subsection);
06e6eb0e 3068 subspace_offset += bfd_section_size (abfd, subsection);
6eb64408
JL
3069 }
3070 /* Looks like uninitialized data. */
3071 else
3072 {
08b3c4f9 3073 /* Update the size of the bss section. */
65b1ef49 3074 if (abfd->flags & (EXEC_P | DYNAMIC))
fde543b5 3075 exec_header->exec_bsize += subsection->_cooked_size;
08b3c4f9 3076
15766917 3077 som_section_data (subsection)->subspace_dict->file_loc_init_value
6eb64408 3078 = 0;
15766917 3079 som_section_data (subsection)->subspace_dict->
6eb64408
JL
3080 initialization_length = 0;
3081 }
3082 }
3083 /* Goto the next section. */
3084 section = section->next;
3085 }
3086
08b3c4f9
JL
3087 /* Finally compute the file positions for unloadable subspaces.
3088 If building an executable, start the unloadable stuff on its
3089 own page. */
3090
65b1ef49 3091 if (abfd->flags & (EXEC_P | DYNAMIC))
08b3c4f9 3092 current_offset = SOM_ALIGN (current_offset, PA_PAGESIZE);
6eb64408
JL
3093
3094 obj_som_file_hdr (abfd)->unloadable_sp_location = current_offset;
3095 section = abfd->sections;
3096 for (i = 0; i < num_spaces; i++)
3097 {
3098 asection *subsection;
3099
3100 /* Find a space. */
15766917 3101 while (!som_is_space (section))
6eb64408
JL
3102 section = section->next;
3103
65b1ef49 3104 if (abfd->flags & (EXEC_P | DYNAMIC))
517a6af6 3105 current_offset = SOM_ALIGN (current_offset, PA_PAGESIZE);
08b3c4f9 3106
6eb64408
JL
3107 /* Now look for all its subspaces. */
3108 for (subsection = abfd->sections;
3109 subsection != NULL;
3110 subsection = subsection->next)
3111 {
3112
15766917
JL
3113 if (!som_is_subspace (subsection)
3114 || !som_is_container (section, subsection)
6eb64408
JL
3115 || (subsection->flags & SEC_ALLOC) != 0)
3116 continue;
3117
4359a7ef 3118 subsection->target_index = total_subspaces;
6eb64408
JL
3119 /* This is real data to be loaded from the file. */
3120 if ((subsection->flags & SEC_LOAD) == 0)
3121 {
15766917 3122 som_section_data (subsection)->subspace_dict->file_loc_init_value
6eb64408 3123 = current_offset;
06e6eb0e 3124 subsection->filepos = current_offset;
6eb64408
JL
3125 current_offset += bfd_section_size (abfd, subsection);
3126 }
3127 /* Looks like uninitialized data. */
3128 else
3129 {
15766917 3130 som_section_data (subsection)->subspace_dict->file_loc_init_value
6eb64408 3131 = 0;
15766917 3132 som_section_data (subsection)->subspace_dict->
6eb64408
JL
3133 initialization_length = bfd_section_size (abfd, subsection);
3134 }
3135 }
3136 /* Goto the next section. */
3137 section = section->next;
3138 }
3139
08b3c4f9
JL
3140 /* If building an executable, then make sure to seek to and write
3141 one byte at the end of the file to make sure any necessary
3142 zeros are filled in. Ugh. */
65b1ef49 3143 if (abfd->flags & (EXEC_P | DYNAMIC))
08b3c4f9 3144 current_offset = SOM_ALIGN (current_offset, PA_PAGESIZE);
9d7f682f 3145 if (bfd_seek (abfd, current_offset - 1, SEEK_SET) < 0)
25057836 3146 return false;
08b3c4f9 3147 if (bfd_write ((PTR) "", 1, 1, abfd) != 1)
25057836 3148 return false;
08b3c4f9 3149
6eb64408
JL
3150 obj_som_file_hdr (abfd)->unloadable_sp_size
3151 = current_offset - obj_som_file_hdr (abfd)->unloadable_sp_location;
3152
3153 /* Loader fixups are not supported in any way shape or form. */
3154 obj_som_file_hdr (abfd)->loader_fixup_location = 0;
3155 obj_som_file_hdr (abfd)->loader_fixup_total = 0;
3156
3157 /* Done. Store the total size of the SOM. */
3158 obj_som_file_hdr (abfd)->som_length = current_offset;
08b3c4f9 3159
6eb64408
JL
3160 return true;
3161}
3162
efc0df7c
JL
3163/* Finally, scribble out the various headers to the disk. */
3164
3165static boolean
3166som_write_headers (abfd)
3167 bfd *abfd;
3168{
3169 int num_spaces = som_count_spaces (abfd);
3170 int i;
3171 int subspace_index = 0;
3172 file_ptr location;
3173 asection *section;
3174
3175 /* Subspaces are written first so that we can set up information
3176 about them in their containing spaces as the subspace is written. */
3177
3178 /* Seek to the start of the subspace dictionary records. */
3179 location = obj_som_file_hdr (abfd)->subspace_location;
25057836
JL
3180 if (bfd_seek (abfd, location, SEEK_SET) < 0)
3181 return false;
3182
efc0df7c
JL
3183 section = abfd->sections;
3184 /* Now for each loadable space write out records for its subspaces. */
3185 for (i = 0; i < num_spaces; i++)
3186 {
3187 asection *subsection;
3188
3189 /* Find a space. */
15766917 3190 while (!som_is_space (section))
efc0df7c
JL
3191 section = section->next;
3192
3193 /* Now look for all its subspaces. */
3194 for (subsection = abfd->sections;
3195 subsection != NULL;
3196 subsection = subsection->next)
3197 {
3198
3199 /* Skip any section which does not correspond to a space
3200 or subspace. Or does not have SEC_ALLOC set (and therefore
3201 has no real bits on the disk). */
15766917
JL
3202 if (!som_is_subspace (subsection)
3203 || !som_is_container (section, subsection)
efc0df7c
JL
3204 || (subsection->flags & SEC_ALLOC) == 0)
3205 continue;
3206
3207 /* If this is the first subspace for this space, then save
3208 the index of the subspace in its containing space. Also
3209 set "is_loadable" in the containing space. */
3210
15766917 3211 if (som_section_data (section)->space_dict->subspace_quantity == 0)
efc0df7c 3212 {
15766917
JL
3213 som_section_data (section)->space_dict->is_loadable = 1;
3214 som_section_data (section)->space_dict->subspace_index
efc0df7c
JL
3215 = subspace_index;
3216 }
3217
3218 /* Increment the number of subspaces seen and the number of
3219 subspaces contained within the current space. */
3220 subspace_index++;
15766917 3221 som_section_data (section)->space_dict->subspace_quantity++;
efc0df7c
JL
3222
3223 /* Mark the index of the current space within the subspace's
3224 dictionary record. */
15766917 3225 som_section_data (subsection)->subspace_dict->space_index = i;
efc0df7c
JL
3226
3227 /* Dump the current subspace header. */
15766917 3228 if (bfd_write ((PTR) som_section_data (subsection)->subspace_dict,
efc0df7c
JL
3229 sizeof (struct subspace_dictionary_record), 1, abfd)
3230 != sizeof (struct subspace_dictionary_record))
25057836 3231 return false;
efc0df7c
JL
3232 }
3233 /* Goto the next section. */
3234 section = section->next;
3235 }
3236
3237 /* Now repeat the process for unloadable subspaces. */
3238 section = abfd->sections;
3239 /* Now for each space write out records for its subspaces. */
3240 for (i = 0; i < num_spaces; i++)
3241 {
3242 asection *subsection;
3243
3244 /* Find a space. */
15766917 3245 while (!som_is_space (section))
efc0df7c
JL
3246 section = section->next;
3247
3248 /* Now look for all its subspaces. */
3249 for (subsection = abfd->sections;
3250 subsection != NULL;
3251 subsection = subsection->next)
3252 {
3253
3254 /* Skip any section which does not correspond to a space or
3255 subspace, or which SEC_ALLOC set (and therefore handled
c2e1207b 3256 in the loadable spaces/subspaces code above). */
efc0df7c 3257
15766917
JL
3258 if (!som_is_subspace (subsection)
3259 || !som_is_container (section, subsection)
efc0df7c
JL
3260 || (subsection->flags & SEC_ALLOC) != 0)
3261 continue;
3262
3263 /* If this is the first subspace for this space, then save
3264 the index of the subspace in its containing space. Clear
3265 "is_loadable". */
3266
15766917 3267 if (som_section_data (section)->space_dict->subspace_quantity == 0)
efc0df7c 3268 {
15766917
JL
3269 som_section_data (section)->space_dict->is_loadable = 0;
3270 som_section_data (section)->space_dict->subspace_index
efc0df7c
JL
3271 = subspace_index;
3272 }
3273
3274 /* Increment the number of subspaces seen and the number of
3275 subspaces contained within the current space. */
15766917 3276 som_section_data (section)->space_dict->subspace_quantity++;
efc0df7c
JL
3277 subspace_index++;
3278
3279 /* Mark the index of the current space within the subspace's
3280 dictionary record. */
15766917 3281 som_section_data (subsection)->subspace_dict->space_index = i;
efc0df7c
JL
3282
3283 /* Dump this subspace header. */
15766917 3284 if (bfd_write ((PTR) som_section_data (subsection)->subspace_dict,
efc0df7c
JL
3285 sizeof (struct subspace_dictionary_record), 1, abfd)
3286 != sizeof (struct subspace_dictionary_record))
25057836 3287 return false;
efc0df7c
JL
3288 }
3289 /* Goto the next section. */
3290 section = section->next;
3291 }
3292
3293 /* All the subspace dictiondary records are written, and all the
3294 fields are set up in the space dictionary records.
3295
3296 Seek to the right location and start writing the space
3297 dictionary records. */
3298 location = obj_som_file_hdr (abfd)->space_location;
25057836
JL
3299 if (bfd_seek (abfd, location, SEEK_SET) < 0)
3300 return false;
efc0df7c
JL
3301
3302 section = abfd->sections;
3303 for (i = 0; i < num_spaces; i++)
3304 {
3305
3306 /* Find a space. */
15766917 3307 while (!som_is_space (section))
efc0df7c
JL
3308 section = section->next;
3309
3310 /* Dump its header */
15766917 3311 if (bfd_write ((PTR) som_section_data (section)->space_dict,
efc0df7c
JL
3312 sizeof (struct space_dictionary_record), 1, abfd)
3313 != sizeof (struct space_dictionary_record))
25057836 3314 return false;
efc0df7c
JL
3315
3316 /* Goto the next section. */
3317 section = section->next;
3318 }
3319
ada45a2a
JL
3320 /* FIXME. This should really be conditional based on whether or not
3321 PA1.1 instructions/registers have been used.
3322
3323 Setting of the system_id has to happen very late now that copying of
3324 BFD private data happens *after* section contents are set. */
3325 if (abfd->flags & (EXEC_P | DYNAMIC))
3326 obj_som_file_hdr(abfd)->system_id = obj_som_exec_data (abfd)->system_id;
3327 else
3328 obj_som_file_hdr(abfd)->system_id = CPU_PA_RISC1_0;
3329
8117e1ea
JL
3330 /* Compute the checksum for the file header just before writing
3331 the header to disk. */
3332 obj_som_file_hdr (abfd)->checksum = som_compute_checksum (abfd);
3333
efc0df7c
JL
3334 /* Only thing left to do is write out the file header. It is always
3335 at location zero. Seek there and write it. */
25057836
JL
3336 if (bfd_seek (abfd, (file_ptr) 0, SEEK_SET) < 0)
3337 return false;
efc0df7c
JL
3338 if (bfd_write ((PTR) obj_som_file_hdr (abfd),
3339 sizeof (struct header), 1, abfd)
3340 != sizeof (struct header))
25057836 3341 return false;
fde543b5
JL
3342
3343 /* Now write the exec header. */
3344 if (abfd->flags & (EXEC_P | DYNAMIC))
3345 {
3346 long tmp;
3347 struct som_exec_auxhdr *exec_header;
3348
3349 exec_header = obj_som_exec_hdr (abfd);
3350 exec_header->exec_entry = bfd_get_start_address (abfd);
3351 exec_header->exec_flags = obj_som_exec_data (abfd)->exec_flags;
3352
3353 /* Oh joys. Ram some of the BSS data into the DATA section
3354 to be compatable with how the hp linker makes objects
3355 (saves memory space). */
3356 tmp = exec_header->exec_dsize;
3357 tmp = SOM_ALIGN (tmp, PA_PAGESIZE);
3358 exec_header->exec_bsize -= (tmp - exec_header->exec_dsize);
3359 if (exec_header->exec_bsize < 0)
3360 exec_header->exec_bsize = 0;
3361 exec_header->exec_dsize = tmp;
3362
3363 if (bfd_seek (abfd, obj_som_file_hdr (abfd)->aux_header_location,
3364 SEEK_SET) < 0)
3365 return false;
3366
3367 if (bfd_write ((PTR) exec_header, AUX_HDR_SIZE, 1, abfd)
3368 != AUX_HDR_SIZE)
3369 return false;
3370 }
efc0df7c
JL
3371 return true;
3372}
3373
980bac64
JL
3374/* Compute and return the checksum for a SOM file header. */
3375
5532fc5a
JL
3376static unsigned long
3377som_compute_checksum (abfd)
3378 bfd *abfd;
3379{
3380 unsigned long checksum, count, i;
3381 unsigned long *buffer = (unsigned long *) obj_som_file_hdr (abfd);
3382
3383 checksum = 0;
3384 count = sizeof (struct header) / sizeof (unsigned long);
3385 for (i = 0; i < count; i++)
3386 checksum ^= *(buffer + i);
3387
3388 return checksum;
3389}
3390
6e033f86
JL
3391static void
3392som_bfd_derive_misc_symbol_info (abfd, sym, info)
3393 bfd *abfd;
3394 asymbol *sym;
3395 struct som_misc_symbol_info *info;
3396{
3397 /* Initialize. */
3398 memset (info, 0, sizeof (struct som_misc_symbol_info));
3399
3400 /* The HP SOM linker requires detailed type information about
3401 all symbols (including undefined symbols!). Unfortunately,
3402 the type specified in an import/export statement does not
3403 always match what the linker wants. Severe braindamage. */
3404
3405 /* Section symbols will not have a SOM symbol type assigned to
3406 them yet. Assign all section symbols type ST_DATA. */
3407 if (sym->flags & BSF_SECTION_SYM)
3408 info->symbol_type = ST_DATA;
3409 else
3410 {
3411 /* Common symbols must have scope SS_UNSAT and type
3412 ST_STORAGE or the linker will choke. */
fde543b5 3413 if (bfd_is_com_section (sym->section))
6e033f86
JL
3414 {
3415 info->symbol_scope = SS_UNSAT;
3416 info->symbol_type = ST_STORAGE;
3417 }
3418
3419 /* It is possible to have a symbol without an associated
3420 type. This happens if the user imported the symbol
3421 without a type and the symbol was never defined
3422 locally. If BSF_FUNCTION is set for this symbol, then
3423 assign it type ST_CODE (the HP linker requires undefined
3424 external functions to have type ST_CODE rather than ST_ENTRY). */
95bc714e
JL
3425 else if ((som_symbol_data (sym)->som_type == SYMBOL_TYPE_UNKNOWN
3426 || som_symbol_data (sym)->som_type == SYMBOL_TYPE_CODE)
fde543b5 3427 && bfd_is_und_section (sym->section)
6e033f86
JL
3428 && sym->flags & BSF_FUNCTION)
3429 info->symbol_type = ST_CODE;
3430
3431 /* Handle function symbols which were defined in this file.
3432 They should have type ST_ENTRY. Also retrieve the argument
3433 relocation bits from the SOM backend information. */
3434 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_ENTRY
3435 || (som_symbol_data (sym)->som_type == SYMBOL_TYPE_CODE
3436 && (sym->flags & BSF_FUNCTION))
3437 || (som_symbol_data (sym)->som_type == SYMBOL_TYPE_UNKNOWN
3438 && (sym->flags & BSF_FUNCTION)))
3439 {
3440 info->symbol_type = ST_ENTRY;
3441 info->arg_reloc = som_symbol_data (sym)->tc_data.hppa_arg_reloc;
3442 }
3443
95bc714e
JL
3444 /* If the type is unknown at this point, it should be ST_DATA or
3445 ST_CODE (function/ST_ENTRY symbols were handled as special
3446 cases above). */
6e033f86 3447 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_UNKNOWN)
95bc714e
JL
3448 {
3449 if (sym->section->flags & SEC_CODE)
3450 info->symbol_type = ST_CODE;
3451 else
3452 info->symbol_type = ST_DATA;
3453 }
6e033f86
JL
3454
3455 /* From now on it's a very simple mapping. */
3456 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_ABSOLUTE)
3457 info->symbol_type = ST_ABSOLUTE;
3458 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_CODE)
3459 info->symbol_type = ST_CODE;
3460 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_DATA)
3461 info->symbol_type = ST_DATA;
3462 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_MILLICODE)
3463 info->symbol_type = ST_MILLICODE;
3464 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_PLABEL)
3465 info->symbol_type = ST_PLABEL;
3466 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_PRI_PROG)
3467 info->symbol_type = ST_PRI_PROG;
3468 else if (som_symbol_data (sym)->som_type == SYMBOL_TYPE_SEC_PROG)
3469 info->symbol_type = ST_SEC_PROG;
3470 }
3471
3472 /* Now handle the symbol's scope. Exported data which is not
3473 in the common section has scope SS_UNIVERSAL. Note scope
3474 of common symbols was handled earlier! */
fde543b5 3475 if (sym->flags & BSF_EXPORT && ! bfd_is_com_section (sym->section))
6e033f86
JL
3476 info->symbol_scope = SS_UNIVERSAL;
3477 /* Any undefined symbol at this point has a scope SS_UNSAT. */
fde543b5 3478 else if (bfd_is_und_section (sym->section))
6e033f86
JL
3479 info->symbol_scope = SS_UNSAT;
3480 /* Anything else which is not in the common section has scope
3481 SS_LOCAL. */
fde543b5 3482 else if (! bfd_is_com_section (sym->section))
6e033f86
JL
3483 info->symbol_scope = SS_LOCAL;
3484
3485 /* Now set the symbol_info field. It has no real meaning
3486 for undefined or common symbols, but the HP linker will
3487 choke if it's not set to some "reasonable" value. We
3488 use zero as a reasonable value. */
fde543b5
JL
3489 if (bfd_is_com_section (sym->section)
3490 || bfd_is_und_section (sym->section)
3491 || bfd_is_abs_section (sym->section))
6e033f86
JL
3492 info->symbol_info = 0;
3493 /* For all other symbols, the symbol_info field contains the
3494 subspace index of the space this symbol is contained in. */
3495 else
4359a7ef 3496 info->symbol_info = sym->section->target_index;
6e033f86
JL
3497
3498 /* Set the symbol's value. */
3499 info->symbol_value = sym->value + sym->section->vma;
3500}
3501
713de7ec
JL
3502/* Build and write, in one big chunk, the entire symbol table for
3503 this BFD. */
3504
3505static boolean
3506som_build_and_write_symbol_table (abfd)
3507 bfd *abfd;
3508{
3509 unsigned int num_syms = bfd_get_symcount (abfd);
3510 file_ptr symtab_location = obj_som_file_hdr (abfd)->symbol_location;
3511 asymbol **bfd_syms = bfd_get_outsymbols (abfd);
80425e6c 3512 struct symbol_dictionary_record *som_symtab = NULL;
713de7ec
JL
3513 int i, symtab_size;
3514
3515 /* Compute total symbol table size and allocate a chunk of memory
3516 to hold the symbol table as we build it. */
3517 symtab_size = num_syms * sizeof (struct symbol_dictionary_record);
80425e6c 3518 som_symtab = (struct symbol_dictionary_record *) malloc (symtab_size);
8eb5d4be 3519 if (som_symtab == NULL && symtab_size != 0)
80425e6c
JK
3520 {
3521 bfd_set_error (bfd_error_no_memory);
3522 goto error_return;
3523 }
6e033f86 3524 memset (som_symtab, 0, symtab_size);
713de7ec
JL
3525
3526 /* Walk over each symbol. */
3527 for (i = 0; i < num_syms; i++)
3528 {
6e033f86
JL
3529 struct som_misc_symbol_info info;
3530
713de7ec
JL
3531 /* This is really an index into the symbol strings table.
3532 By the time we get here, the index has already been
3533 computed and stored into the name field in the BFD symbol. */
3534 som_symtab[i].name.n_strx = (int) bfd_syms[i]->name;
3535
6e033f86
JL
3536 /* Derive SOM information from the BFD symbol. */
3537 som_bfd_derive_misc_symbol_info (abfd, bfd_syms[i], &info);
713de7ec 3538
6e033f86
JL
3539 /* Now use it. */
3540 som_symtab[i].symbol_type = info.symbol_type;
3541 som_symtab[i].symbol_scope = info.symbol_scope;
3542 som_symtab[i].arg_reloc = info.arg_reloc;
3543 som_symtab[i].symbol_info = info.symbol_info;
3544 som_symtab[i].symbol_value = info.symbol_value;
713de7ec
JL
3545 }
3546
6e033f86 3547 /* Everything is ready, seek to the right location and
713de7ec
JL
3548 scribble out the symbol table. */
3549 if (bfd_seek (abfd, symtab_location, SEEK_SET) != 0)
25057836 3550 return false;
713de7ec
JL
3551
3552 if (bfd_write ((PTR) som_symtab, symtab_size, 1, abfd) != symtab_size)
25057836 3553 goto error_return;
80425e6c
JK
3554
3555 if (som_symtab != NULL)
3556 free (som_symtab);
3557 return true;
3558 error_return:
3559 if (som_symtab != NULL)
3560 free (som_symtab);
3561 return false;
713de7ec
JL
3562}
3563
980bac64
JL
3564/* Write an object in SOM format. */
3565
3566static boolean
9e16fcf1 3567som_write_object_contents (abfd)
d9ad93bc
KR
3568 bfd *abfd;
3569{
980bac64
JL
3570 if (abfd->output_has_begun == false)
3571 {
3572 /* Set up fixed parts of the file, space, and subspace headers.
3573 Notify the world that output has begun. */
3574 som_prep_headers (abfd);
3575 abfd->output_has_begun = true;
980bac64
JL
3576 /* Start writing the object file. This include all the string
3577 tables, fixup streams, and other portions of the object file. */
3578 som_begin_writing (abfd);
980bac64
JL
3579 }
3580
3581 /* Now that the symbol table information is complete, build and
3582 write the symbol table. */
3583 if (som_build_and_write_symbol_table (abfd) == false)
3584 return false;
3585
980bac64 3586 return (som_write_headers (abfd));
d9ad93bc 3587}
980bac64
JL
3588
3589\f
9e16fcf1 3590/* Read and save the string table associated with the given BFD. */
d9ad93bc 3591
9e16fcf1
SG
3592static boolean
3593som_slurp_string_table (abfd)
d9ad93bc
KR
3594 bfd *abfd;
3595{
9e16fcf1
SG
3596 char *stringtab;
3597
3598 /* Use the saved version if its available. */
3599 if (obj_som_stringtab (abfd) != NULL)
3600 return true;
3601
1f46bba3
JL
3602 /* I don't think this can currently happen, and I'm not sure it should
3603 really be an error, but it's better than getting unpredictable results
3604 from the host's malloc when passed a size of zero. */
3605 if (obj_som_stringtab_size (abfd) == 0)
3606 {
3607 bfd_set_error (bfd_error_no_symbols);
3608 return false;
3609 }
3610
9e16fcf1 3611 /* Allocate and read in the string table. */
1f46bba3 3612 stringtab = malloc (obj_som_stringtab_size (abfd));
9e16fcf1
SG
3613 if (stringtab == NULL)
3614 {
d1ad85a6 3615 bfd_set_error (bfd_error_no_memory);
9e16fcf1
SG
3616 return false;
3617 }
3618
3619 if (bfd_seek (abfd, obj_som_str_filepos (abfd), SEEK_SET) < 0)
25057836 3620 return false;
9e16fcf1
SG
3621
3622 if (bfd_read (stringtab, obj_som_stringtab_size (abfd), 1, abfd)
3623 != obj_som_stringtab_size (abfd))
25057836 3624 return false;
9e16fcf1
SG
3625
3626 /* Save our results and return success. */
3627 obj_som_stringtab (abfd) = stringtab;
3628 return true;
d9ad93bc
KR
3629}
3630
9e16fcf1
SG
3631/* Return the amount of data (in bytes) required to hold the symbol
3632 table for this object. */
3633
326e32d7 3634static long
9e16fcf1 3635som_get_symtab_upper_bound (abfd)
d9ad93bc 3636 bfd *abfd;
d9ad93bc 3637{
9e16fcf1 3638 if (!som_slurp_symbol_table (abfd))
326e32d7 3639 return -1;
9e16fcf1 3640
d6439785 3641 return (bfd_get_symcount (abfd) + 1) * (sizeof (asymbol *));
d9ad93bc
KR
3642}
3643
9e16fcf1
SG
3644/* Convert from a SOM subspace index to a BFD section. */
3645
3646static asection *
c05d2d43 3647bfd_section_from_som_symbol (abfd, symbol)
9e16fcf1 3648 bfd *abfd;
c05d2d43 3649 struct symbol_dictionary_record *symbol;
9e16fcf1
SG
3650{
3651 asection *section;
3652
c2e1207b
JL
3653 /* The meaning of the symbol_info field changes for functions
3654 within executables. So only use the quick symbol_info mapping for
3655 incomplete objects and non-function symbols in executables. */
65b1ef49 3656 if ((abfd->flags & (EXEC_P | DYNAMIC)) == 0
c2e1207b
JL
3657 || (symbol->symbol_type != ST_ENTRY
3658 && symbol->symbol_type != ST_PRI_PROG
3659 && symbol->symbol_type != ST_SEC_PROG
3660 && symbol->symbol_type != ST_MILLICODE))
c05d2d43
JL
3661 {
3662 unsigned int index = symbol->symbol_info;
3663 for (section = abfd->sections; section != NULL; section = section->next)
3664 if (section->target_index == index)
3665 return section;
9e16fcf1 3666
c05d2d43
JL
3667 /* Should never happen. */
3668 abort();
3669 }
3670 else
3671 {
3672 unsigned int value = symbol->symbol_value;
c05d2d43
JL
3673
3674 /* For executables we will have to use the symbol's address and
3675 find out what section would contain that address. Yuk. */
3676 for (section = abfd->sections; section; section = section->next)
3677 {
3678 if (value >= section->vma
3679 && value <= section->vma + section->_cooked_size)
3680 return section;
3681 }
3682
3683 /* Should never happen. */
3684 abort ();
3685 }
9e16fcf1
SG
3686}
3687
3688/* Read and save the symbol table associated with the given BFD. */
3689
d9ad93bc 3690static unsigned int
9e16fcf1 3691som_slurp_symbol_table (abfd)
d9ad93bc 3692 bfd *abfd;
d9ad93bc 3693{
9e16fcf1
SG
3694 int symbol_count = bfd_get_symcount (abfd);
3695 int symsize = sizeof (struct symbol_dictionary_record);
3696 char *stringtab;
80425e6c 3697 struct symbol_dictionary_record *buf = NULL, *bufp, *endbufp;
9e16fcf1
SG
3698 som_symbol_type *sym, *symbase;
3699
3700 /* Return saved value if it exists. */
3701 if (obj_som_symtab (abfd) != NULL)
80425e6c 3702 goto successful_return;
9e16fcf1 3703
24a1f6a0 3704 /* Special case. This is *not* an error. */
9e16fcf1 3705 if (symbol_count == 0)
80425e6c 3706 goto successful_return;
9e16fcf1
SG
3707
3708 if (!som_slurp_string_table (abfd))
80425e6c 3709 goto error_return;
9e16fcf1
SG
3710
3711 stringtab = obj_som_stringtab (abfd);
3712
3713 symbase = (som_symbol_type *)
1f46bba3 3714 malloc (symbol_count * sizeof (som_symbol_type));
9e16fcf1
SG
3715 if (symbase == NULL)
3716 {
d1ad85a6 3717 bfd_set_error (bfd_error_no_memory);
80425e6c 3718 goto error_return;
9e16fcf1
SG
3719 }
3720
3721 /* Read in the external SOM representation. */
80425e6c 3722 buf = malloc (symbol_count * symsize);
8eb5d4be 3723 if (buf == NULL && symbol_count * symsize != 0)
9e16fcf1 3724 {
d1ad85a6 3725 bfd_set_error (bfd_error_no_memory);
80425e6c 3726 goto error_return;
9e16fcf1
SG
3727 }
3728 if (bfd_seek (abfd, obj_som_sym_filepos (abfd), SEEK_SET) < 0)
25057836 3729 goto error_return;
9e16fcf1
SG
3730 if (bfd_read (buf, symbol_count * symsize, 1, abfd)
3731 != symbol_count * symsize)
25057836 3732 goto error_return;
9e16fcf1
SG
3733
3734 /* Iterate over all the symbols and internalize them. */
3735 endbufp = buf + symbol_count;
3736 for (bufp = buf, sym = symbase; bufp < endbufp; ++bufp)
3737 {
3738
3739 /* I don't think we care about these. */
3740 if (bufp->symbol_type == ST_SYM_EXT
3741 || bufp->symbol_type == ST_ARG_EXT)
3742 continue;
3743
6e033f86
JL
3744 /* Set some private data we care about. */
3745 if (bufp->symbol_type == ST_NULL)
3746 som_symbol_data (sym)->som_type = SYMBOL_TYPE_UNKNOWN;
3747 else if (bufp->symbol_type == ST_ABSOLUTE)
3748 som_symbol_data (sym)->som_type = SYMBOL_TYPE_ABSOLUTE;
3749 else if (bufp->symbol_type == ST_DATA)
3750 som_symbol_data (sym)->som_type = SYMBOL_TYPE_DATA;
3751 else if (bufp->symbol_type == ST_CODE)
3752 som_symbol_data (sym)->som_type = SYMBOL_TYPE_CODE;
3753 else if (bufp->symbol_type == ST_PRI_PROG)
3754 som_symbol_data (sym)->som_type = SYMBOL_TYPE_PRI_PROG;
3755 else if (bufp->symbol_type == ST_SEC_PROG)
3756 som_symbol_data (sym)->som_type = SYMBOL_TYPE_SEC_PROG;
3757 else if (bufp->symbol_type == ST_ENTRY)
3758 som_symbol_data (sym)->som_type = SYMBOL_TYPE_ENTRY;
3759 else if (bufp->symbol_type == ST_MILLICODE)
3760 som_symbol_data (sym)->som_type = SYMBOL_TYPE_MILLICODE;
3761 else if (bufp->symbol_type == ST_PLABEL)
3762 som_symbol_data (sym)->som_type = SYMBOL_TYPE_PLABEL;
3763 else
3764 som_symbol_data (sym)->som_type = SYMBOL_TYPE_UNKNOWN;
3765 som_symbol_data (sym)->tc_data.hppa_arg_reloc = bufp->arg_reloc;
3766
9e16fcf1
SG
3767 /* Some reasonable defaults. */
3768 sym->symbol.the_bfd = abfd;
3769 sym->symbol.name = bufp->name.n_strx + stringtab;
3770 sym->symbol.value = bufp->symbol_value;
3771 sym->symbol.section = 0;
3772 sym->symbol.flags = 0;
3773
3774 switch (bufp->symbol_type)
3775 {
3776 case ST_ENTRY:
36456a67
JL
3777 case ST_PRI_PROG:
3778 case ST_SEC_PROG:
3779 case ST_MILLICODE:
9e16fcf1
SG
3780 sym->symbol.flags |= BSF_FUNCTION;
3781 sym->symbol.value &= ~0x3;
3782 break;
3783
9e16fcf1 3784 case ST_STUB:
9e16fcf1
SG
3785 case ST_CODE:
3786 sym->symbol.value &= ~0x3;
95bc714e
JL
3787 /* If the symbol's scope is ST_UNSAT, then these are
3788 undefined function symbols. */
3789 if (bufp->symbol_scope == SS_UNSAT)
3790 sym->symbol.flags |= BSF_FUNCTION;
3791
9e16fcf1
SG
3792
3793 default:
3794 break;
3795 }
3796
3797 /* Handle scoping and section information. */
3798 switch (bufp->symbol_scope)
3799 {
3800 /* symbol_info field is undefined for SS_EXTERNAL and SS_UNSAT symbols,
3801 so the section associated with this symbol can't be known. */
3802 case SS_EXTERNAL:
017a52d7 3803 if (bufp->symbol_type != ST_STORAGE)
fde543b5 3804 sym->symbol.section = bfd_und_section_ptr;
017a52d7 3805 else
fde543b5 3806 sym->symbol.section = bfd_com_section_ptr;
9e16fcf1
SG
3807 sym->symbol.flags |= (BSF_EXPORT | BSF_GLOBAL);
3808 break;
3809
baef2065
JL
3810 case SS_UNSAT:
3811 if (bufp->symbol_type != ST_STORAGE)
fde543b5 3812 sym->symbol.section = bfd_und_section_ptr;
baef2065 3813 else
fde543b5 3814 sym->symbol.section = bfd_com_section_ptr;
baef2065
JL
3815 break;
3816
9e16fcf1
SG
3817 case SS_UNIVERSAL:
3818 sym->symbol.flags |= (BSF_EXPORT | BSF_GLOBAL);
c05d2d43 3819 sym->symbol.section = bfd_section_from_som_symbol (abfd, bufp);
9e16fcf1
SG
3820 sym->symbol.value -= sym->symbol.section->vma;
3821 break;
3822
3823#if 0
3824 /* SS_GLOBAL and SS_LOCAL are two names for the same thing.
3825 Sound dumb? It is. */
3826 case SS_GLOBAL:
3827#endif
3828 case SS_LOCAL:
3829 sym->symbol.flags |= BSF_LOCAL;
c05d2d43 3830 sym->symbol.section = bfd_section_from_som_symbol (abfd, bufp);
9e16fcf1
SG
3831 sym->symbol.value -= sym->symbol.section->vma;
3832 break;
3833 }
3834
baef2065 3835 /* Mark section symbols and symbols used by the debugger. */
8eb5d4be
JK
3836 if (sym->symbol.name[0] == '$'
3837 && sym->symbol.name[strlen (sym->symbol.name) - 1] == '$')
baef2065 3838 sym->symbol.flags |= BSF_SECTION_SYM;
8eb5d4be
JK
3839 else if (!strncmp (sym->symbol.name, "L$0\002", 4))
3840 {
3841 sym->symbol.flags |= BSF_SECTION_SYM;
3842 sym->symbol.name = sym->symbol.section->name;
3843 }
3844 else if (!strncmp (sym->symbol.name, "L$0\001", 4))
9e16fcf1
SG
3845 sym->symbol.flags |= BSF_DEBUGGING;
3846
3847 /* Note increment at bottom of loop, since we skip some symbols
3848 we can not include it as part of the for statement. */
3849 sym++;
3850 }
3851
3852 /* Save our results and return success. */
3853 obj_som_symtab (abfd) = symbase;
80425e6c
JK
3854 successful_return:
3855 if (buf != NULL)
3856 free (buf);
9e16fcf1 3857 return (true);
80425e6c
JK
3858
3859 error_return:
3860 if (buf != NULL)
3861 free (buf);
3862 return false;
d9ad93bc
KR
3863}
3864
9e16fcf1
SG
3865/* Canonicalize a SOM symbol table. Return the number of entries
3866 in the symbol table. */
d9ad93bc 3867
326e32d7 3868static long
9e16fcf1 3869som_get_symtab (abfd, location)
d9ad93bc
KR
3870 bfd *abfd;
3871 asymbol **location;
3872{
9e16fcf1
SG
3873 int i;
3874 som_symbol_type *symbase;
3875
3876 if (!som_slurp_symbol_table (abfd))
326e32d7 3877 return -1;
9e16fcf1
SG
3878
3879 i = bfd_get_symcount (abfd);
3880 symbase = obj_som_symtab (abfd);
3881
3882 for (; i > 0; i--, location++, symbase++)
3883 *location = &symbase->symbol;
3884
3885 /* Final null pointer. */
3886 *location = 0;
3887 return (bfd_get_symcount (abfd));
d9ad93bc
KR
3888}
3889
9e16fcf1
SG
3890/* Make a SOM symbol. There is nothing special to do here. */
3891
d9ad93bc 3892static asymbol *
9e16fcf1 3893som_make_empty_symbol (abfd)
d9ad93bc
KR
3894 bfd *abfd;
3895{
9e16fcf1
SG
3896 som_symbol_type *new =
3897 (som_symbol_type *) bfd_zalloc (abfd, sizeof (som_symbol_type));
3898 if (new == NULL)
3899 {
d1ad85a6 3900 bfd_set_error (bfd_error_no_memory);
9e16fcf1
SG
3901 return 0;
3902 }
d9ad93bc
KR
3903 new->symbol.the_bfd = abfd;
3904
3905 return &new->symbol;
3906}
3907
9e16fcf1
SG
3908/* Print symbol information. */
3909
d9ad93bc 3910static void
9e16fcf1 3911som_print_symbol (ignore_abfd, afile, symbol, how)
d9ad93bc
KR
3912 bfd *ignore_abfd;
3913 PTR afile;
3914 asymbol *symbol;
3915 bfd_print_symbol_type how;
3916{
9e16fcf1
SG
3917 FILE *file = (FILE *) afile;
3918 switch (how)
3919 {
3920 case bfd_print_symbol_name:
3921 fprintf (file, "%s", symbol->name);
3922 break;
3923 case bfd_print_symbol_more:
3924 fprintf (file, "som ");
3925 fprintf_vma (file, symbol->value);
3926 fprintf (file, " %lx", (long) symbol->flags);
3927 break;
3928 case bfd_print_symbol_all:
3929 {
3930 CONST char *section_name;
3931 section_name = symbol->section ? symbol->section->name : "(*none*)";
3932 bfd_print_symbol_vandf ((PTR) file, symbol);
3933 fprintf (file, " %s\t%s", section_name, symbol->name);
3934 break;
3935 }
3936 }
3937}
3938
5b3577cb
JL
3939static boolean
3940som_bfd_is_local_label (abfd, sym)
3941 bfd *abfd;
3942 asymbol *sym;
3943{
3944 return (sym->name[0] == 'L' && sym->name[1] == '$');
3945}
3946
36456a67
JL
3947/* Count or process variable-length SOM fixup records.
3948
3949 To avoid code duplication we use this code both to compute the number
3950 of relocations requested by a stream, and to internalize the stream.
3951
3952 When computing the number of relocations requested by a stream the
3953 variables rptr, section, and symbols have no meaning.
3954
3955 Return the number of relocations requested by the fixup stream. When
3956 not just counting
3957
3958 This needs at least two or three more passes to get it cleaned up. */
3959
3960static unsigned int
3961som_set_reloc_info (fixup, end, internal_relocs, section, symbols, just_count)
3962 unsigned char *fixup;
3963 unsigned int end;
3964 arelent *internal_relocs;
3965 asection *section;
3966 asymbol **symbols;
3967 boolean just_count;
3968{
3969 unsigned int op, varname;
3970 unsigned char *end_fixups = &fixup[end];
3971 const struct fixup_format *fp;
3972 char *cp;
3973 unsigned char *save_fixup;
3974 int variables[26], stack[20], c, v, count, prev_fixup, *sp;
3975 const int *subop;
3976 arelent *rptr= internal_relocs;
95bc714e 3977 unsigned int offset = 0;
36456a67
JL
3978
3979#define var(c) variables[(c) - 'A']
3980#define push(v) (*sp++ = (v))
3981#define pop() (*--sp)
3982#define emptystack() (sp == stack)
3983
3984 som_initialize_reloc_queue (reloc_queue);
6e033f86
JL
3985 memset (variables, 0, sizeof (variables));
3986 memset (stack, 0, sizeof (stack));
36456a67
JL
3987 count = 0;
3988 prev_fixup = 0;
3989 sp = stack;
3990
3991 while (fixup < end_fixups)
3992 {
3993
3994 /* Save pointer to the start of this fixup. We'll use
3995 it later to determine if it is necessary to put this fixup
3996 on the queue. */
3997 save_fixup = fixup;
3998
3999 /* Get the fixup code and its associated format. */
4000 op = *fixup++;
4001 fp = &som_fixup_formats[op];
4002
4003 /* Handle a request for a previous fixup. */
4004 if (*fp->format == 'P')
4005 {
4006 /* Get pointer to the beginning of the prev fixup, move
4007 the repeated fixup to the head of the queue. */
4008 fixup = reloc_queue[fp->D].reloc;
4009 som_reloc_queue_fix (reloc_queue, fp->D);
4010 prev_fixup = 1;
4011
4012 /* Get the fixup code and its associated format. */
4013 op = *fixup++;
4014 fp = &som_fixup_formats[op];
4015 }
4016
88bbe402
JL
4017 /* If this fixup will be passed to BFD, set some reasonable defaults. */
4018 if (! just_count
4019 && som_hppa_howto_table[op].type != R_NO_RELOCATION
4020 && som_hppa_howto_table[op].type != R_DATA_OVERRIDE)
36456a67
JL
4021 {
4022 rptr->address = offset;
4023 rptr->howto = &som_hppa_howto_table[op];
4024 rptr->addend = 0;
fde543b5 4025 rptr->sym_ptr_ptr = bfd_abs_section_ptr->symbol_ptr_ptr;
36456a67
JL
4026 }
4027
4028 /* Set default input length to 0. Get the opcode class index
4029 into D. */
4030 var ('L') = 0;
4031 var ('D') = fp->D;
4032
4033 /* Get the opcode format. */
4034 cp = fp->format;
4035
4036 /* Process the format string. Parsing happens in two phases,
4037 parse RHS, then assign to LHS. Repeat until no more
4038 characters in the format string. */
4039 while (*cp)
4040 {
4041 /* The variable this pass is going to compute a value for. */
4042 varname = *cp++;
4043
4044 /* Start processing RHS. Continue until a NULL or '=' is found. */
4045 do
4046 {
4047 c = *cp++;
4048
4049 /* If this is a variable, push it on the stack. */
4050 if (isupper (c))
4051 push (var (c));
4052
4053 /* If this is a lower case letter, then it represents
4054 additional data from the fixup stream to be pushed onto
4055 the stack. */
4056 else if (islower (c))
4057 {
4058 for (v = 0; c > 'a'; --c)
4059 v = (v << 8) | *fixup++;
4060 push (v);
4061 }
4062
4063 /* A decimal constant. Push it on the stack. */
4064 else if (isdigit (c))
4065 {
4066 v = c - '0';
4067 while (isdigit (*cp))
4068 v = (v * 10) + (*cp++ - '0');
4069 push (v);
4070 }
4071 else
4072
4073 /* An operator. Pop two two values from the stack and
4074 use them as operands to the given operation. Push
4075 the result of the operation back on the stack. */
4076 switch (c)
4077 {
4078 case '+':
4079 v = pop ();
4080 v += pop ();
4081 push (v);
4082 break;
4083 case '*':
4084 v = pop ();
4085 v *= pop ();
4086 push (v);
4087 break;
4088 case '<':
4089 v = pop ();
4090 v = pop () << v;
4091 push (v);
4092 break;
4093 default:
4094 abort ();
4095 }
4096 }
4097 while (*cp && *cp != '=');
4098
4099 /* Move over the equal operator. */
4100 cp++;
4101
4102 /* Pop the RHS off the stack. */
4103 c = pop ();
4104
4105 /* Perform the assignment. */
4106 var (varname) = c;
4107
4108 /* Handle side effects. and special 'O' stack cases. */
4109 switch (varname)
4110 {
4111 /* Consume some bytes from the input space. */
4112 case 'L':
4113 offset += c;
4114 break;
4115 /* A symbol to use in the relocation. Make a note
4116 of this if we are not just counting. */
4117 case 'S':
4118 if (! just_count)
4119 rptr->sym_ptr_ptr = &symbols[c];
4120 break;
4121 /* Handle the linker expression stack. */
4122 case 'O':
4123 switch (op)
4124 {
4125 case R_COMP1:
4126 subop = comp1_opcodes;
4127 break;
4128 case R_COMP2:
4129 subop = comp2_opcodes;
4130 break;
4131 case R_COMP3:
4132 subop = comp3_opcodes;
4133 break;
4134 default:
4135 abort ();
4136 }
4137 while (*subop <= (unsigned char) c)
4138 ++subop;
4139 --subop;
4140 break;
4141 default:
4142 break;
4143 }
4144 }
4145
4146 /* If we used a previous fixup, clean up after it. */
4147 if (prev_fixup)
4148 {
4149 fixup = save_fixup + 1;
4150 prev_fixup = 0;
4151 }
4152 /* Queue it. */
4153 else if (fixup > save_fixup + 1)
4154 som_reloc_queue_insert (save_fixup, fixup - save_fixup, reloc_queue);
4155
4156 /* We do not pass R_DATA_OVERRIDE or R_NO_RELOCATION
4157 fixups to BFD. */
4158 if (som_hppa_howto_table[op].type != R_DATA_OVERRIDE
4159 && som_hppa_howto_table[op].type != R_NO_RELOCATION)
4160 {
4161 /* Done with a single reloction. Loop back to the top. */
4162 if (! just_count)
4163 {
4164 rptr->addend = var ('V');
4165 rptr++;
4166 }
4167 count++;
4168 /* Now that we've handled a "full" relocation, reset
4169 some state. */
6e033f86
JL
4170 memset (variables, 0, sizeof (variables));
4171 memset (stack, 0, sizeof (stack));
36456a67
JL
4172 }
4173 }
4174 return count;
4175
4176#undef var
4177#undef push
4178#undef pop
4179#undef emptystack
4180}
4181
4182/* Read in the relocs (aka fixups in SOM terms) for a section.
4183
4184 som_get_reloc_upper_bound calls this routine with JUST_COUNT
4185 set to true to indicate it only needs a count of the number
4186 of actual relocations. */
4187
4188static boolean
4189som_slurp_reloc_table (abfd, section, symbols, just_count)
4190 bfd *abfd;
4191 asection *section;
4192 asymbol **symbols;
4193 boolean just_count;
4194{
4195 char *external_relocs;
4196 unsigned int fixup_stream_size;
4197 arelent *internal_relocs;
4198 unsigned int num_relocs;
4199
4200 fixup_stream_size = som_section_data (section)->reloc_size;
4201 /* If there were no relocations, then there is nothing to do. */
4202 if (section->reloc_count == 0)
4203 return true;
4204
4205 /* If reloc_count is -1, then the relocation stream has not been
4206 parsed. We must do so now to know how many relocations exist. */
4207 if (section->reloc_count == -1)
4208 {
1f46bba3 4209 external_relocs = (char *) malloc (fixup_stream_size);
36456a67
JL
4210 if (external_relocs == (char *) NULL)
4211 {
d1ad85a6 4212 bfd_set_error (bfd_error_no_memory);
36456a67
JL
4213 return false;
4214 }
4215 /* Read in the external forms. */
4216 if (bfd_seek (abfd,
4217 obj_som_reloc_filepos (abfd) + section->rel_filepos,
4218 SEEK_SET)
4219 != 0)
25057836 4220 return false;
36456a67
JL
4221 if (bfd_read (external_relocs, 1, fixup_stream_size, abfd)
4222 != fixup_stream_size)
25057836
JL
4223 return false;
4224
36456a67
JL
4225 /* Let callers know how many relocations found.
4226 also save the relocation stream as we will
4227 need it again. */
4228 section->reloc_count = som_set_reloc_info (external_relocs,
4229 fixup_stream_size,
4230 NULL, NULL, NULL, true);
4231
4232 som_section_data (section)->reloc_stream = external_relocs;
4233 }
4234
4235 /* If the caller only wanted a count, then return now. */
4236 if (just_count)
4237 return true;
4238
4239 num_relocs = section->reloc_count;
4240 external_relocs = som_section_data (section)->reloc_stream;
4241 /* Return saved information about the relocations if it is available. */
4242 if (section->relocation != (arelent *) NULL)
4243 return true;
4244
1f46bba3 4245 internal_relocs = (arelent *) malloc (num_relocs * sizeof (arelent));
36456a67
JL
4246 if (internal_relocs == (arelent *) NULL)
4247 {
d1ad85a6 4248 bfd_set_error (bfd_error_no_memory);
36456a67
JL
4249 return false;
4250 }
4251
4252 /* Process and internalize the relocations. */
4253 som_set_reloc_info (external_relocs, fixup_stream_size,
4254 internal_relocs, section, symbols, false);
4255
4256 /* Save our results and return success. */
4257 section->relocation = internal_relocs;
4258 return (true);
4259}
4260
4261/* Return the number of bytes required to store the relocation
4262 information associated with the given section. */
4263
326e32d7 4264static long
9e16fcf1
SG
4265som_get_reloc_upper_bound (abfd, asect)
4266 bfd *abfd;
4267 sec_ptr asect;
4268{
36456a67
JL
4269 /* If section has relocations, then read in the relocation stream
4270 and parse it to determine how many relocations exist. */
4271 if (asect->flags & SEC_RELOC)
4272 {
326e32d7
ILT
4273 if (! som_slurp_reloc_table (abfd, asect, NULL, true))
4274 return false;
4275 return (asect->reloc_count + 1) * sizeof (arelent);
36456a67 4276 }
326e32d7 4277 /* There are no relocations. */
36456a67 4278 return 0;
d9ad93bc
KR
4279}
4280
36456a67
JL
4281/* Convert relocations from SOM (external) form into BFD internal
4282 form. Return the number of relocations. */
4283
326e32d7 4284static long
9e16fcf1
SG
4285som_canonicalize_reloc (abfd, section, relptr, symbols)
4286 bfd *abfd;
4287 sec_ptr section;
4288 arelent **relptr;
4289 asymbol **symbols;
4290{
36456a67
JL
4291 arelent *tblptr;
4292 int count;
4293
4294 if (som_slurp_reloc_table (abfd, section, symbols, false) == false)
326e32d7 4295 return -1;
36456a67
JL
4296
4297 count = section->reloc_count;
4298 tblptr = section->relocation;
36456a67
JL
4299
4300 while (count--)
4301 *relptr++ = tblptr++;
4302
4303 *relptr = (arelent *) NULL;
4304 return section->reloc_count;
9e16fcf1
SG
4305}
4306
2f3508ad 4307extern const bfd_target som_vec;
9e16fcf1
SG
4308
4309/* A hook to set up object file dependent section information. */
4310
d9ad93bc 4311static boolean
9e16fcf1 4312som_new_section_hook (abfd, newsect)
d9ad93bc
KR
4313 bfd *abfd;
4314 asection *newsect;
4315{
9783e04a
DM
4316 newsect->used_by_bfd =
4317 (PTR) bfd_zalloc (abfd, sizeof (struct som_section_data_struct));
4318 if (!newsect->used_by_bfd)
4319 {
d1ad85a6 4320 bfd_set_error (bfd_error_no_memory);
9783e04a
DM
4321 return false;
4322 }
d9ad93bc
KR
4323 newsect->alignment_power = 3;
4324
4325 /* We allow more than three sections internally */
4326 return true;
4327}
4328
5b3577cb
JL
4329/* Copy any private info we understand from the input section
4330 to the output section. */
4331static boolean
4332som_bfd_copy_private_section_data (ibfd, isection, obfd, osection)
4333 bfd *ibfd;
4334 asection *isection;
4335 bfd *obfd;
4336 asection *osection;
4337{
4338 /* One day we may try to grok other private data. */
4339 if (ibfd->xvec->flavour != bfd_target_som_flavour
15766917
JL
4340 || obfd->xvec->flavour != bfd_target_som_flavour
4341 || (!som_is_space (isection) && !som_is_subspace (isection)))
5b3577cb
JL
4342 return false;
4343
15766917
JL
4344 som_section_data (osection)->copy_data
4345 = (struct som_copyable_section_data_struct *)
4346 bfd_zalloc (obfd, sizeof (struct som_copyable_section_data_struct));
4347 if (som_section_data (osection)->copy_data == NULL)
4348 {
4349 bfd_set_error (bfd_error_no_memory);
4350 return false;
4351 }
4352
4353 memcpy (som_section_data (osection)->copy_data,
4354 som_section_data (isection)->copy_data,
4355 sizeof (struct som_copyable_section_data_struct));
5b3577cb
JL
4356
4357 /* Reparent if necessary. */
15766917
JL
4358 if (som_section_data (osection)->copy_data->container)
4359 som_section_data (osection)->copy_data->container =
4360 som_section_data (osection)->copy_data->container->output_section;
4359a7ef
JL
4361
4362 return true;
5b3577cb 4363}
4359a7ef
JL
4364
4365/* Copy any private info we understand from the input bfd
4366 to the output bfd. */
4367
4368static boolean
4369som_bfd_copy_private_bfd_data (ibfd, obfd)
4370 bfd *ibfd, *obfd;
4371{
4372 /* One day we may try to grok other private data. */
4373 if (ibfd->xvec->flavour != bfd_target_som_flavour
4374 || obfd->xvec->flavour != bfd_target_som_flavour)
4375 return false;
4376
4377 /* Allocate some memory to hold the data we need. */
4378 obj_som_exec_data (obfd) = (struct som_exec_data *)
4379 bfd_zalloc (obfd, sizeof (struct som_exec_data));
4380 if (obj_som_exec_data (obfd) == NULL)
4381 {
4382 bfd_set_error (bfd_error_no_memory);
4383 return false;
4384 }
4385
4386 /* Now copy the data. */
4387 memcpy (obj_som_exec_data (obfd), obj_som_exec_data (ibfd),
4388 sizeof (struct som_exec_data));
4389
4390 return true;
4391}
4392
40249bfb
JL
4393/* Set backend info for sections which can not be described
4394 in the BFD data structures. */
4395
15766917 4396boolean
40249bfb
JL
4397bfd_som_set_section_attributes (section, defined, private, sort_key, spnum)
4398 asection *section;
6941fd4d
JL
4399 int defined;
4400 int private;
44fd6622 4401 unsigned int sort_key;
40249bfb
JL
4402 int spnum;
4403{
15766917
JL
4404 /* Allocate memory to hold the magic information. */
4405 if (som_section_data (section)->copy_data == NULL)
4406 {
4407 som_section_data (section)->copy_data
4408 = (struct som_copyable_section_data_struct *)
4409 bfd_zalloc (section->owner,
4410 sizeof (struct som_copyable_section_data_struct));
4411 if (som_section_data (section)->copy_data == NULL)
4412 {
4413 bfd_set_error (bfd_error_no_memory);
4414 return false;
4415 }
4416 }
4417 som_section_data (section)->copy_data->sort_key = sort_key;
4418 som_section_data (section)->copy_data->is_defined = defined;
4419 som_section_data (section)->copy_data->is_private = private;
4420 som_section_data (section)->copy_data->container = section;
673aceca 4421 som_section_data (section)->copy_data->space_number = spnum;
15766917 4422 return true;
40249bfb
JL
4423}
4424
4425/* Set backend info for subsections which can not be described
4426 in the BFD data structures. */
4427
15766917 4428boolean
40249bfb
JL
4429bfd_som_set_subsection_attributes (section, container, access,
4430 sort_key, quadrant)
4431 asection *section;
4432 asection *container;
4433 int access;
6941fd4d 4434 unsigned int sort_key;
40249bfb
JL
4435 int quadrant;
4436{
15766917
JL
4437 /* Allocate memory to hold the magic information. */
4438 if (som_section_data (section)->copy_data == NULL)
4439 {
4440 som_section_data (section)->copy_data
4441 = (struct som_copyable_section_data_struct *)
4442 bfd_zalloc (section->owner,
4443 sizeof (struct som_copyable_section_data_struct));
4444 if (som_section_data (section)->copy_data == NULL)
4445 {
4446 bfd_set_error (bfd_error_no_memory);
4447 return false;
4448 }
4449 }
4450 som_section_data (section)->copy_data->sort_key = sort_key;
4451 som_section_data (section)->copy_data->access_control_bits = access;
4452 som_section_data (section)->copy_data->quadrant = quadrant;
4453 som_section_data (section)->copy_data->container = container;
4454 return true;
40249bfb
JL
4455}
4456
4457/* Set the full SOM symbol type. SOM needs far more symbol information
4458 than any other object file format I'm aware of. It is mandatory
4459 to be able to know if a symbol is an entry point, millicode, data,
4460 code, absolute, storage request, or procedure label. If you get
4461 the symbol type wrong your program will not link. */
4462
4463void
4464bfd_som_set_symbol_type (symbol, type)
4465 asymbol *symbol;
4466 unsigned int type;
4467{
50c5c4ad 4468 som_symbol_data (symbol)->som_type = type;
40249bfb
JL
4469}
4470
4471/* Attach 64bits of unwind information to a symbol (which hopefully
4472 is a function of some kind!). It would be better to keep this
4473 in the R_ENTRY relocation, but there is not enough space. */
4474
4475void
4476bfd_som_attach_unwind_info (symbol, unwind_desc)
4477 asymbol *symbol;
4478 char *unwind_desc;
4479{
50c5c4ad 4480 som_symbol_data (symbol)->unwind = unwind_desc;
40249bfb
JL
4481}
4482
f6c2300b
JL
4483/* Attach an auxiliary header to the BFD backend so that it may be
4484 written into the object file. */
44fd6622 4485boolean
f6c2300b
JL
4486bfd_som_attach_aux_hdr (abfd, type, string)
4487 bfd *abfd;
4488 int type;
4489 char *string;
4490{
4491 if (type == VERSION_AUX_ID)
4492 {
4493 int len = strlen (string);
39961154 4494 int pad = 0;
f6c2300b
JL
4495
4496 if (len % 4)
39961154 4497 pad = (4 - (len % 4));
a62dd44f
JL
4498 obj_som_version_hdr (abfd) = (struct user_string_aux_hdr *)
4499 bfd_zalloc (abfd, sizeof (struct aux_id)
9783e04a
DM
4500 + sizeof (unsigned int) + len + pad);
4501 if (!obj_som_version_hdr (abfd))
4502 {
d1ad85a6 4503 bfd_set_error (bfd_error_no_memory);
44fd6622 4504 return false;
9783e04a 4505 }
f6c2300b 4506 obj_som_version_hdr (abfd)->header_id.type = VERSION_AUX_ID;
39961154
JL
4507 obj_som_version_hdr (abfd)->header_id.length = len + pad;
4508 obj_som_version_hdr (abfd)->header_id.length += sizeof (int);
f6c2300b 4509 obj_som_version_hdr (abfd)->string_length = len;
39961154 4510 strncpy (obj_som_version_hdr (abfd)->user_string, string, len);
f6c2300b
JL
4511 }
4512 else if (type == COPYRIGHT_AUX_ID)
4513 {
4514 int len = strlen (string);
39961154 4515 int pad = 0;
f6c2300b
JL
4516
4517 if (len % 4)
39961154 4518 pad = (4 - (len % 4));
a62dd44f
JL
4519 obj_som_copyright_hdr (abfd) = (struct copyright_aux_hdr *)
4520 bfd_zalloc (abfd, sizeof (struct aux_id)
4521 + sizeof (unsigned int) + len + pad);
9783e04a
DM
4522 if (!obj_som_copyright_hdr (abfd))
4523 {
25057836 4524 bfd_set_error (bfd_error_no_memory);
44fd6622 4525 return false;
9783e04a 4526 }
f6c2300b 4527 obj_som_copyright_hdr (abfd)->header_id.type = COPYRIGHT_AUX_ID;
39961154
JL
4528 obj_som_copyright_hdr (abfd)->header_id.length = len + pad;
4529 obj_som_copyright_hdr (abfd)->header_id.length += sizeof (int);
f6c2300b
JL
4530 obj_som_copyright_hdr (abfd)->string_length = len;
4531 strcpy (obj_som_copyright_hdr (abfd)->copyright, string);
4532 }
44fd6622 4533 return true;
f6c2300b
JL
4534}
4535
f977e865
JL
4536static boolean
4537som_get_section_contents (abfd, section, location, offset, count)
4538 bfd *abfd;
4539 sec_ptr section;
4540 PTR location;
4541 file_ptr offset;
4542 bfd_size_type count;
4543{
4544 if (count == 0 || ((section->flags & (SEC_LOAD | SEC_DEBUGGING)) == 0))
4545 return true;
4546 if ((bfd_size_type)(offset+count) > section->_raw_size
4547 || bfd_seek (abfd, (file_ptr)(section->filepos + offset), SEEK_SET) == -1
4548 || bfd_read (location, (bfd_size_type)1, count, abfd) != count)
4549 return (false); /* on error */
4550 return (true);
4551}
4552
d9ad93bc 4553static boolean
9e16fcf1 4554som_set_section_contents (abfd, section, location, offset, count)
d9ad93bc
KR
4555 bfd *abfd;
4556 sec_ptr section;
4557 PTR location;
4558 file_ptr offset;
4559 bfd_size_type count;
4560{
980bac64
JL
4561 if (abfd->output_has_begun == false)
4562 {
4563 /* Set up fixed parts of the file, space, and subspace headers.
4564 Notify the world that output has begun. */
4565 som_prep_headers (abfd);
4566 abfd->output_has_begun = true;
980bac64
JL
4567 /* Start writing the object file. This include all the string
4568 tables, fixup streams, and other portions of the object file. */
4569 som_begin_writing (abfd);
980bac64
JL
4570 }
4571
4572 /* Only write subspaces which have "real" contents (eg. the contents
4573 are not generated at run time by the OS). */
15766917 4574 if (!som_is_subspace (section)
980bac64
JL
4575 || ((section->flags & (SEC_LOAD | SEC_DEBUGGING)) == 0))
4576 return true;
4577
4578 /* Seek to the proper offset within the object file and write the
4579 data. */
15766917 4580 offset += som_section_data (section)->subspace_dict->file_loc_init_value;
980bac64 4581 if (bfd_seek (abfd, offset, SEEK_SET) == -1)
25057836 4582 return false;
980bac64
JL
4583
4584 if (bfd_write ((PTR) location, 1, count, abfd) != count)
25057836 4585 return false;
980bac64 4586 return true;
d9ad93bc
KR
4587}
4588
4589static boolean
9e16fcf1 4590som_set_arch_mach (abfd, arch, machine)
d9ad93bc
KR
4591 bfd *abfd;
4592 enum bfd_architecture arch;
4593 unsigned long machine;
4594{
2212ff92 4595 /* Allow any architecture to be supported by the SOM backend */
d9ad93bc
KR
4596 return bfd_default_set_arch_mach (abfd, arch, machine);
4597}
4598
4599static boolean
9e16fcf1 4600som_find_nearest_line (abfd, section, symbols, offset, filename_ptr,
d9ad93bc
KR
4601 functionname_ptr, line_ptr)
4602 bfd *abfd;
4603 asection *section;
4604 asymbol **symbols;
4605 bfd_vma offset;
4606 CONST char **filename_ptr;
4607 CONST char **functionname_ptr;
4608 unsigned int *line_ptr;
4609{
9e16fcf1 4610 fprintf (stderr, "som_find_nearest_line unimplemented\n");
d9ad93bc
KR
4611 fflush (stderr);
4612 abort ();
4613 return (false);
4614}
4615
4616static int
9e16fcf1 4617som_sizeof_headers (abfd, reloc)
d9ad93bc
KR
4618 bfd *abfd;
4619 boolean reloc;
4620{
9e16fcf1 4621 fprintf (stderr, "som_sizeof_headers unimplemented\n");
d9ad93bc
KR
4622 fflush (stderr);
4623 abort ();
4624 return (0);
4625}
4626
017a52d7
JL
4627/* Return the single-character symbol type corresponding to
4628 SOM section S, or '?' for an unknown SOM section. */
4629
4630static char
4631som_section_type (s)
4632 const char *s;
4633{
4634 const struct section_to_type *t;
4635
4636 for (t = &stt[0]; t->section; t++)
4637 if (!strcmp (s, t->section))
4638 return t->type;
4639 return '?';
4640}
4641
4642static int
4643som_decode_symclass (symbol)
4644 asymbol *symbol;
4645{
4646 char c;
4647
4648 if (bfd_is_com_section (symbol->section))
4649 return 'C';
fde543b5 4650 if (bfd_is_und_section (symbol->section))
017a52d7 4651 return 'U';
fde543b5 4652 if (bfd_is_ind_section (symbol->section))
017a52d7
JL
4653 return 'I';
4654 if (!(symbol->flags & (BSF_GLOBAL|BSF_LOCAL)))
4655 return '?';
4656
fde543b5 4657 if (bfd_is_abs_section (symbol->section))
017a52d7
JL
4658 c = 'a';
4659 else if (symbol->section)
4660 c = som_section_type (symbol->section->name);
4661 else
4662 return '?';
4663 if (symbol->flags & BSF_GLOBAL)
4664 c = toupper (c);
4665 return c;
4666}
4667
d9ad93bc
KR
4668/* Return information about SOM symbol SYMBOL in RET. */
4669
4670static void
9e16fcf1 4671som_get_symbol_info (ignore_abfd, symbol, ret)
017a52d7 4672 bfd *ignore_abfd;
d9ad93bc
KR
4673 asymbol *symbol;
4674 symbol_info *ret;
4675{
017a52d7
JL
4676 ret->type = som_decode_symclass (symbol);
4677 if (ret->type != 'U')
4678 ret->value = symbol->value+symbol->section->vma;
4679 else
4680 ret->value = 0;
4681 ret->name = symbol->name;
d9ad93bc
KR
4682}
4683
3c37f9ca
JL
4684/* Count the number of symbols in the archive symbol table. Necessary
4685 so that we can allocate space for all the carsyms at once. */
4686
4687static boolean
4688som_bfd_count_ar_symbols (abfd, lst_header, count)
4689 bfd *abfd;
4690 struct lst_header *lst_header;
4691 symindex *count;
4692{
4693 unsigned int i;
4c9db344 4694 unsigned int *hash_table = NULL;
3c37f9ca
JL
4695 file_ptr lst_filepos = bfd_tell (abfd) - sizeof (struct lst_header);
4696
80425e6c
JK
4697 hash_table =
4698 (unsigned int *) malloc (lst_header->hash_size * sizeof (unsigned int));
8eb5d4be 4699 if (hash_table == NULL && lst_header->hash_size != 0)
80425e6c
JK
4700 {
4701 bfd_set_error (bfd_error_no_memory);
4702 goto error_return;
4703 }
4704
3c37f9ca
JL
4705 /* Don't forget to initialize the counter! */
4706 *count = 0;
4707
4708 /* Read in the hash table. The has table is an array of 32bit file offsets
4709 which point to the hash chains. */
4710 if (bfd_read ((PTR) hash_table, lst_header->hash_size, 4, abfd)
4711 != lst_header->hash_size * 4)
25057836 4712 goto error_return;
3c37f9ca
JL
4713
4714 /* Walk each chain counting the number of symbols found on that particular
4715 chain. */
4716 for (i = 0; i < lst_header->hash_size; i++)
4717 {
4718 struct lst_symbol_record lst_symbol;
4719
4720 /* An empty chain has zero as it's file offset. */
4721 if (hash_table[i] == 0)
4722 continue;
4723
4724 /* Seek to the first symbol in this hash chain. */
4725 if (bfd_seek (abfd, lst_filepos + hash_table[i], SEEK_SET) < 0)
25057836 4726 goto error_return;
3c37f9ca
JL
4727
4728 /* Read in this symbol and update the counter. */
4729 if (bfd_read ((PTR) & lst_symbol, 1, sizeof (lst_symbol), abfd)
4730 != sizeof (lst_symbol))
25057836
JL
4731 goto error_return;
4732
3c37f9ca
JL
4733 (*count)++;
4734
4735 /* Now iterate through the rest of the symbols on this chain. */
4736 while (lst_symbol.next_entry)
4737 {
4738
4739 /* Seek to the next symbol. */
4740 if (bfd_seek (abfd, lst_filepos + lst_symbol.next_entry, SEEK_SET)
4741 < 0)
25057836 4742 goto error_return;
3c37f9ca
JL
4743
4744 /* Read the symbol in and update the counter. */
4745 if (bfd_read ((PTR) & lst_symbol, 1, sizeof (lst_symbol), abfd)
4746 != sizeof (lst_symbol))
25057836
JL
4747 goto error_return;
4748
3c37f9ca
JL
4749 (*count)++;
4750 }
4751 }
80425e6c
JK
4752 if (hash_table != NULL)
4753 free (hash_table);
3c37f9ca 4754 return true;
80425e6c
JK
4755
4756 error_return:
4757 if (hash_table != NULL)
4758 free (hash_table);
4759 return false;
3c37f9ca
JL
4760}
4761
4762/* Fill in the canonical archive symbols (SYMS) from the archive described
4763 by ABFD and LST_HEADER. */
4764
4765static boolean
4766som_bfd_fill_in_ar_symbols (abfd, lst_header, syms)
4767 bfd *abfd;
4768 struct lst_header *lst_header;
4769 carsym **syms;
4770{
4771 unsigned int i, len;
4772 carsym *set = syms[0];
80425e6c
JK
4773 unsigned int *hash_table = NULL;
4774 struct som_entry *som_dict = NULL;
3c37f9ca
JL
4775 file_ptr lst_filepos = bfd_tell (abfd) - sizeof (struct lst_header);
4776
80425e6c
JK
4777 hash_table =
4778 (unsigned int *) malloc (lst_header->hash_size * sizeof (unsigned int));
8eb5d4be 4779 if (hash_table == NULL && lst_header->hash_size != 0)
80425e6c
JK
4780 {
4781 bfd_set_error (bfd_error_no_memory);
4782 goto error_return;
4783 }
4784
4785 som_dict =
4786 (struct som_entry *) malloc (lst_header->module_count
4787 * sizeof (struct som_entry));
8eb5d4be 4788 if (som_dict == NULL && lst_header->module_count != 0)
80425e6c
JK
4789 {
4790 bfd_set_error (bfd_error_no_memory);
4791 goto error_return;
4792 }
4793
3c37f9ca
JL
4794 /* Read in the hash table. The has table is an array of 32bit file offsets
4795 which point to the hash chains. */
4796 if (bfd_read ((PTR) hash_table, lst_header->hash_size, 4, abfd)
4797 != lst_header->hash_size * 4)
25057836 4798 goto error_return;
3c37f9ca
JL
4799
4800 /* Seek to and read in the SOM dictionary. We will need this to fill
4801 in the carsym's filepos field. */
4802 if (bfd_seek (abfd, lst_filepos + lst_header->dir_loc, SEEK_SET) < 0)
25057836 4803 goto error_return;
3c37f9ca
JL
4804
4805 if (bfd_read ((PTR) som_dict, lst_header->module_count,
4806 sizeof (struct som_entry), abfd)
4807 != lst_header->module_count * sizeof (struct som_entry))
25057836 4808 goto error_return;
3c37f9ca
JL
4809
4810 /* Walk each chain filling in the carsyms as we go along. */
4811 for (i = 0; i < lst_header->hash_size; i++)
4812 {
4813 struct lst_symbol_record lst_symbol;
4814
4815 /* An empty chain has zero as it's file offset. */
4816 if (hash_table[i] == 0)
4817 continue;
4818
4819 /* Seek to and read the first symbol on the chain. */
4820 if (bfd_seek (abfd, lst_filepos + hash_table[i], SEEK_SET) < 0)
25057836 4821 goto error_return;
3c37f9ca
JL
4822
4823 if (bfd_read ((PTR) & lst_symbol, 1, sizeof (lst_symbol), abfd)
4824 != sizeof (lst_symbol))
25057836 4825 goto error_return;
3c37f9ca
JL
4826
4827 /* Get the name of the symbol, first get the length which is stored
4828 as a 32bit integer just before the symbol.
4829
4830 One might ask why we don't just read in the entire string table
4831 and index into it. Well, according to the SOM ABI the string
4832 index can point *anywhere* in the archive to save space, so just
4833 using the string table would not be safe. */
4834 if (bfd_seek (abfd, lst_filepos + lst_header->string_loc
4835 + lst_symbol.name.n_strx - 4, SEEK_SET) < 0)
25057836 4836 goto error_return;
3c37f9ca
JL
4837
4838 if (bfd_read (&len, 1, 4, abfd) != 4)
25057836 4839 goto error_return;
3c37f9ca
JL
4840
4841 /* Allocate space for the name and null terminate it too. */
4842 set->name = bfd_zalloc (abfd, len + 1);
4843 if (!set->name)
4844 {
d1ad85a6 4845 bfd_set_error (bfd_error_no_memory);
80425e6c 4846 goto error_return;
3c37f9ca
JL
4847 }
4848 if (bfd_read (set->name, 1, len, abfd) != len)
25057836
JL
4849 goto error_return;
4850
3c37f9ca
JL
4851 set->name[len] = 0;
4852
4853 /* Fill in the file offset. Note that the "location" field points
4854 to the SOM itself, not the ar_hdr in front of it. */
4855 set->file_offset = som_dict[lst_symbol.som_index].location
4856 - sizeof (struct ar_hdr);
4857
4858 /* Go to the next symbol. */
4859 set++;
4860
4861 /* Iterate through the rest of the chain. */
4862 while (lst_symbol.next_entry)
4863 {
4864 /* Seek to the next symbol and read it in. */
25057836
JL
4865 if (bfd_seek (abfd, lst_filepos + lst_symbol.next_entry, SEEK_SET) <0)
4866 goto error_return;
3c37f9ca
JL
4867
4868 if (bfd_read ((PTR) & lst_symbol, 1, sizeof (lst_symbol), abfd)
4869 != sizeof (lst_symbol))
25057836 4870 goto error_return;
3c37f9ca
JL
4871
4872 /* Seek to the name length & string and read them in. */
4873 if (bfd_seek (abfd, lst_filepos + lst_header->string_loc
4874 + lst_symbol.name.n_strx - 4, SEEK_SET) < 0)
25057836 4875 goto error_return;
3c37f9ca
JL
4876
4877 if (bfd_read (&len, 1, 4, abfd) != 4)
25057836 4878 goto error_return;
3c37f9ca
JL
4879
4880 /* Allocate space for the name and null terminate it too. */
4881 set->name = bfd_zalloc (abfd, len + 1);
4882 if (!set->name)
4883 {
d1ad85a6 4884 bfd_set_error (bfd_error_no_memory);
80425e6c 4885 goto error_return;
3c37f9ca 4886 }
25057836 4887
3c37f9ca 4888 if (bfd_read (set->name, 1, len, abfd) != len)
25057836 4889 goto error_return;
3c37f9ca
JL
4890 set->name[len] = 0;
4891
4892 /* Fill in the file offset. Note that the "location" field points
4893 to the SOM itself, not the ar_hdr in front of it. */
4894 set->file_offset = som_dict[lst_symbol.som_index].location
4895 - sizeof (struct ar_hdr);
4896
4897 /* Go on to the next symbol. */
4898 set++;
4899 }
4900 }
4901 /* If we haven't died by now, then we successfully read the entire
4902 archive symbol table. */
80425e6c
JK
4903 if (hash_table != NULL)
4904 free (hash_table);
4905 if (som_dict != NULL)
4906 free (som_dict);
3c37f9ca 4907 return true;
80425e6c
JK
4908
4909 error_return:
4910 if (hash_table != NULL)
4911 free (hash_table);
4912 if (som_dict != NULL)
4913 free (som_dict);
4914 return false;
3c37f9ca
JL
4915}
4916
4917/* Read in the LST from the archive. */
4918static boolean
4919som_slurp_armap (abfd)
4920 bfd *abfd;
4921{
4922 struct lst_header lst_header;
4923 struct ar_hdr ar_header;
4924 unsigned int parsed_size;
4925 struct artdata *ardata = bfd_ardata (abfd);
4926 char nextname[17];
4927 int i = bfd_read ((PTR) nextname, 1, 16, abfd);
4928
4929 /* Special cases. */
4930 if (i == 0)
4931 return true;
4932 if (i != 16)
4933 return false;
4934
4935 if (bfd_seek (abfd, (file_ptr) - 16, SEEK_CUR) < 0)
25057836 4936 return false;
3c37f9ca
JL
4937
4938 /* For archives without .o files there is no symbol table. */
4939 if (strncmp (nextname, "/ ", 16))
4940 {
4941 bfd_has_map (abfd) = false;
4942 return true;
4943 }
4944
4945 /* Read in and sanity check the archive header. */
4946 if (bfd_read ((PTR) &ar_header, 1, sizeof (struct ar_hdr), abfd)
4947 != sizeof (struct ar_hdr))
25057836 4948 return false;
3c37f9ca
JL
4949
4950 if (strncmp (ar_header.ar_fmag, ARFMAG, 2))
4951 {
d1ad85a6 4952 bfd_set_error (bfd_error_malformed_archive);
ec743cef 4953 return false;
3c37f9ca
JL
4954 }
4955
4956 /* How big is the archive symbol table entry? */
4957 errno = 0;
4958 parsed_size = strtol (ar_header.ar_size, NULL, 10);
4959 if (errno != 0)
4960 {
d1ad85a6 4961 bfd_set_error (bfd_error_malformed_archive);
ec743cef 4962 return false;
3c37f9ca
JL
4963 }
4964
4965 /* Save off the file offset of the first real user data. */
4966 ardata->first_file_filepos = bfd_tell (abfd) + parsed_size;
4967
4968 /* Read in the library symbol table. We'll make heavy use of this
4969 in just a minute. */
4970 if (bfd_read ((PTR) & lst_header, 1, sizeof (struct lst_header), abfd)
4971 != sizeof (struct lst_header))
25057836 4972 return false;
3c37f9ca
JL
4973
4974 /* Sanity check. */
4975 if (lst_header.a_magic != LIBMAGIC)
4976 {
d1ad85a6 4977 bfd_set_error (bfd_error_malformed_archive);
ec743cef 4978 return false;
3c37f9ca
JL
4979 }
4980
4981 /* Count the number of symbols in the library symbol table. */
4982 if (som_bfd_count_ar_symbols (abfd, &lst_header, &ardata->symdef_count)
4983 == false)
4984 return false;
4985
4986 /* Get back to the start of the library symbol table. */
4987 if (bfd_seek (abfd, ardata->first_file_filepos - parsed_size
4988 + sizeof (struct lst_header), SEEK_SET) < 0)
25057836 4989 return false;
3c37f9ca
JL
4990
4991 /* Initializae the cache and allocate space for the library symbols. */
4992 ardata->cache = 0;
4993 ardata->symdefs = (carsym *) bfd_alloc (abfd,
4994 (ardata->symdef_count
4995 * sizeof (carsym)));
4996 if (!ardata->symdefs)
4997 {
d1ad85a6 4998 bfd_set_error (bfd_error_no_memory);
3c37f9ca
JL
4999 return false;
5000 }
5001
5002 /* Now fill in the canonical archive symbols. */
5003 if (som_bfd_fill_in_ar_symbols (abfd, &lst_header, &ardata->symdefs)
5004 == false)
5005 return false;
5006
3b499495
JL
5007 /* Seek back to the "first" file in the archive. Note the "first"
5008 file may be the extended name table. */
5009 if (bfd_seek (abfd, ardata->first_file_filepos, SEEK_SET) < 0)
25057836 5010 return false;
3b499495 5011
3c37f9ca
JL
5012 /* Notify the generic archive code that we have a symbol map. */
5013 bfd_has_map (abfd) = true;
5014 return true;
5015}
5016
6e033f86
JL
5017/* Begin preparing to write a SOM library symbol table.
5018
5019 As part of the prep work we need to determine the number of symbols
5020 and the size of the associated string section. */
5021
5022static boolean
5023som_bfd_prep_for_ar_write (abfd, num_syms, stringsize)
5024 bfd *abfd;
5025 unsigned int *num_syms, *stringsize;
5026{
5027 bfd *curr_bfd = abfd->archive_head;
5028
5029 /* Some initialization. */
5030 *num_syms = 0;
5031 *stringsize = 0;
5032
5033 /* Iterate over each BFD within this archive. */
5034 while (curr_bfd != NULL)
5035 {
5036 unsigned int curr_count, i;
c6cdb69a 5037 som_symbol_type *sym;
6e033f86 5038
9d7f682f
JL
5039 /* Don't bother for non-SOM objects. */
5040 if (curr_bfd->format != bfd_object
5041 || curr_bfd->xvec->flavour != bfd_target_som_flavour)
5042 {
5043 curr_bfd = curr_bfd->next;
5044 continue;
5045 }
5046
6e033f86
JL
5047 /* Make sure the symbol table has been read, then snag a pointer
5048 to it. It's a little slimey to grab the symbols via obj_som_symtab,
5049 but doing so avoids allocating lots of extra memory. */
5050 if (som_slurp_symbol_table (curr_bfd) == false)
5051 return false;
5052
c6cdb69a 5053 sym = obj_som_symtab (curr_bfd);
6e033f86
JL
5054 curr_count = bfd_get_symcount (curr_bfd);
5055
5056 /* Examine each symbol to determine if it belongs in the
5057 library symbol table. */
5058 for (i = 0; i < curr_count; i++, sym++)
5059 {
5060 struct som_misc_symbol_info info;
5061
5062 /* Derive SOM information from the BFD symbol. */
c6cdb69a 5063 som_bfd_derive_misc_symbol_info (curr_bfd, &sym->symbol, &info);
6e033f86
JL
5064
5065 /* Should we include this symbol? */
5066 if (info.symbol_type == ST_NULL
5067 || info.symbol_type == ST_SYM_EXT
5068 || info.symbol_type == ST_ARG_EXT)
5069 continue;
5070
5071 /* Only global symbols and unsatisfied commons. */
5072 if (info.symbol_scope != SS_UNIVERSAL
5073 && info.symbol_type != ST_STORAGE)
5074 continue;
5075
5076 /* Do no include undefined symbols. */
fde543b5 5077 if (bfd_is_und_section (sym->symbol.section))
6e033f86
JL
5078 continue;
5079
5080 /* Bump the various counters, being careful to honor
5081 alignment considerations in the string table. */
5082 (*num_syms)++;
c6cdb69a 5083 *stringsize = *stringsize + strlen (sym->symbol.name) + 5;
6e033f86
JL
5084 while (*stringsize % 4)
5085 (*stringsize)++;
5086 }
5087
5088 curr_bfd = curr_bfd->next;
5089 }
5090 return true;
5091}
5092
5093/* Hash a symbol name based on the hashing algorithm presented in the
5094 SOM ABI. */
5095static unsigned int
5096som_bfd_ar_symbol_hash (symbol)
5097 asymbol *symbol;
5098{
5099 unsigned int len = strlen (symbol->name);
5100
5101 /* Names with length 1 are special. */
5102 if (len == 1)
5103 return 0x1000100 | (symbol->name[0] << 16) | symbol->name[0];
5104
5105 return ((len & 0x7f) << 24) | (symbol->name[1] << 16)
5106 | (symbol->name[len-2] << 8) | symbol->name[len-1];
5107}
5108
3b499495
JL
5109static CONST char *
5110normalize (file)
5111 CONST char *file;
5112{
5113 CONST char *filename = strrchr (file, '/');
5114
5115 if (filename != NULL)
5116 filename++;
5117 else
5118 filename = file;
5119 return filename;
5120}
5121
6e033f86
JL
5122/* Do the bulk of the work required to write the SOM library
5123 symbol table. */
5124
5125static boolean
5126som_bfd_ar_write_symbol_stuff (abfd, nsyms, string_size, lst)
5127 bfd *abfd;
5128 unsigned int nsyms, string_size;
5129 struct lst_header lst;
5130{
5131 file_ptr lst_filepos;
80425e6c
JK
5132 char *strings = NULL, *p;
5133 struct lst_symbol_record *lst_syms = NULL, *curr_lst_sym;
3b499495 5134 bfd *curr_bfd;
80425e6c
JK
5135 unsigned int *hash_table = NULL;
5136 struct som_entry *som_dict = NULL;
5137 struct lst_symbol_record **last_hash_entry = NULL;
3b499495
JL
5138 unsigned int curr_som_offset, som_index, extended_name_length = 0;
5139 unsigned int maxname = abfd->xvec->ar_max_namelen;
80425e6c
JK
5140
5141 hash_table =
5142 (unsigned int *) malloc (lst.hash_size * sizeof (unsigned int));
8eb5d4be 5143 if (hash_table == NULL && lst.hash_size != 0)
80425e6c
JK
5144 {
5145 bfd_set_error (bfd_error_no_memory);
5146 goto error_return;
5147 }
5148 som_dict =
5149 (struct som_entry *) malloc (lst.module_count
2ab0b7f3 5150 * sizeof (struct som_entry));
8eb5d4be 5151 if (som_dict == NULL && lst.module_count != 0)
80425e6c
JK
5152 {
5153 bfd_set_error (bfd_error_no_memory);
5154 goto error_return;
5155 }
5156
5157 last_hash_entry =
2ab0b7f3 5158 ((struct lst_symbol_record **)
80425e6c 5159 malloc (lst.hash_size * sizeof (struct lst_symbol_record *)));
8eb5d4be 5160 if (last_hash_entry == NULL && lst.hash_size != 0)
80425e6c
JK
5161 {
5162 bfd_set_error (bfd_error_no_memory);
5163 goto error_return;
5164 }
6e033f86
JL
5165
5166 /* Lots of fields are file positions relative to the start
5167 of the lst record. So save its location. */
5168 lst_filepos = bfd_tell (abfd) - sizeof (struct lst_header);
5169
5170 /* Some initialization. */
5171 memset (hash_table, 0, 4 * lst.hash_size);
5172 memset (som_dict, 0, lst.module_count * sizeof (struct som_entry));
5173 memset (last_hash_entry, 0,
5174 lst.hash_size * sizeof (struct lst_symbol_record *));
5175
5176 /* Symbols have som_index fields, so we have to keep track of the
5177 index of each SOM in the archive.
5178
5179 The SOM dictionary has (among other things) the absolute file
5180 position for the SOM which a particular dictionary entry
5181 describes. We have to compute that information as we iterate
5182 through the SOMs/symbols. */
5183 som_index = 0;
5184 curr_som_offset = 8 + 2 * sizeof (struct ar_hdr) + lst.file_end;
5185
3b499495
JL
5186 /* Yow! We have to know the size of the extended name table
5187 too. */
5188 for (curr_bfd = abfd->archive_head;
5189 curr_bfd != NULL;
5190 curr_bfd = curr_bfd->next)
5191 {
5192 CONST char *normal = normalize (curr_bfd->filename);
5193 unsigned int thislen;
5194
5195 if (!normal)
5196 {
5197 bfd_set_error (bfd_error_no_memory);
5198 return false;
5199 }
5200 thislen = strlen (normal);
5201 if (thislen > maxname)
5202 extended_name_length += thislen + 1;
5203 }
5204
5205 /* Make room for the archive header and the contents of the
5206 extended string table. */
5207 if (extended_name_length)
5208 curr_som_offset += extended_name_length + sizeof (struct ar_hdr);
5209
5210 /* Make sure we're properly aligned. */
5211 curr_som_offset = (curr_som_offset + 0x1) & ~0x1;
5212
6e033f86 5213 /* FIXME should be done with buffers just like everything else... */
80425e6c 5214 lst_syms = malloc (nsyms * sizeof (struct lst_symbol_record));
8eb5d4be 5215 if (lst_syms == NULL && nsyms != 0)
80425e6c
JK
5216 {
5217 bfd_set_error (bfd_error_no_memory);
5218 goto error_return;
5219 }
5220 strings = malloc (string_size);
8eb5d4be 5221 if (strings == NULL && string_size != 0)
80425e6c
JK
5222 {
5223 bfd_set_error (bfd_error_no_memory);
5224 goto error_return;
5225 }
5226
6e033f86
JL
5227 p = strings;
5228 curr_lst_sym = lst_syms;
5229
3b499495 5230 curr_bfd = abfd->archive_head;
6e033f86
JL
5231 while (curr_bfd != NULL)
5232 {
5233 unsigned int curr_count, i;
c6cdb69a 5234 som_symbol_type *sym;
6e033f86 5235
9d7f682f
JL
5236 /* Don't bother for non-SOM objects. */
5237 if (curr_bfd->format != bfd_object
5238 || curr_bfd->xvec->flavour != bfd_target_som_flavour)
5239 {
5240 curr_bfd = curr_bfd->next;
5241 continue;
5242 }
5243
6e033f86
JL
5244 /* Make sure the symbol table has been read, then snag a pointer
5245 to it. It's a little slimey to grab the symbols via obj_som_symtab,
5246 but doing so avoids allocating lots of extra memory. */
5247 if (som_slurp_symbol_table (curr_bfd) == false)
80425e6c 5248 goto error_return;
6e033f86 5249
c6cdb69a 5250 sym = obj_som_symtab (curr_bfd);
6e033f86
JL
5251 curr_count = bfd_get_symcount (curr_bfd);
5252
5253 for (i = 0; i < curr_count; i++, sym++)
5254 {
5255 struct som_misc_symbol_info info;
5256
5257 /* Derive SOM information from the BFD symbol. */
c6cdb69a 5258 som_bfd_derive_misc_symbol_info (curr_bfd, &sym->symbol, &info);
6e033f86
JL
5259
5260 /* Should we include this symbol? */
5261 if (info.symbol_type == ST_NULL
5262 || info.symbol_type == ST_SYM_EXT
5263 || info.symbol_type == ST_ARG_EXT)
5264 continue;
5265
5266 /* Only global symbols and unsatisfied commons. */
5267 if (info.symbol_scope != SS_UNIVERSAL
5268 && info.symbol_type != ST_STORAGE)
5269 continue;
5270
5271 /* Do no include undefined symbols. */
fde543b5 5272 if (bfd_is_und_section (sym->symbol.section))
6e033f86
JL
5273 continue;
5274
5275 /* If this is the first symbol from this SOM, then update
5276 the SOM dictionary too. */
5277 if (som_dict[som_index].location == 0)
5278 {
5279 som_dict[som_index].location = curr_som_offset;
5280 som_dict[som_index].length = arelt_size (curr_bfd);
5281 }
5282
5283 /* Fill in the lst symbol record. */
5284 curr_lst_sym->hidden = 0;
5285 curr_lst_sym->secondary_def = 0;
5286 curr_lst_sym->symbol_type = info.symbol_type;
5287 curr_lst_sym->symbol_scope = info.symbol_scope;
5288 curr_lst_sym->check_level = 0;
5289 curr_lst_sym->must_qualify = 0;
5290 curr_lst_sym->initially_frozen = 0;
5291 curr_lst_sym->memory_resident = 0;
fde543b5 5292 curr_lst_sym->is_common = bfd_is_com_section (sym->symbol.section);
6e033f86
JL
5293 curr_lst_sym->dup_common = 0;
5294 curr_lst_sym->xleast = 0;
5295 curr_lst_sym->arg_reloc = info.arg_reloc;
5296 curr_lst_sym->name.n_strx = p - strings + 4;
5297 curr_lst_sym->qualifier_name.n_strx = 0;
5298 curr_lst_sym->symbol_info = info.symbol_info;
5299 curr_lst_sym->symbol_value = info.symbol_value;
5300 curr_lst_sym->symbol_descriptor = 0;
5301 curr_lst_sym->reserved = 0;
5302 curr_lst_sym->som_index = som_index;
c6cdb69a 5303 curr_lst_sym->symbol_key = som_bfd_ar_symbol_hash (&sym->symbol);
6e033f86
JL
5304 curr_lst_sym->next_entry = 0;
5305
5306 /* Insert into the hash table. */
5307 if (hash_table[curr_lst_sym->symbol_key % lst.hash_size])
5308 {
5309 struct lst_symbol_record *tmp;
5310
5311 /* There is already something at the head of this hash chain,
5312 so tack this symbol onto the end of the chain. */
5313 tmp = last_hash_entry[curr_lst_sym->symbol_key % lst.hash_size];
5314 tmp->next_entry
5315 = (curr_lst_sym - lst_syms) * sizeof (struct lst_symbol_record)
5316 + lst.hash_size * 4
5317 + lst.module_count * sizeof (struct som_entry)
5318 + sizeof (struct lst_header);
5319 }
5320 else
5321 {
5322 /* First entry in this hash chain. */
5323 hash_table[curr_lst_sym->symbol_key % lst.hash_size]
5324 = (curr_lst_sym - lst_syms) * sizeof (struct lst_symbol_record)
5325 + lst.hash_size * 4
5326 + lst.module_count * sizeof (struct som_entry)
5327 + sizeof (struct lst_header);
5328 }
5329
5330 /* Keep track of the last symbol we added to this chain so we can
5331 easily update its next_entry pointer. */
5332 last_hash_entry[curr_lst_sym->symbol_key % lst.hash_size]
5333 = curr_lst_sym;
5334
5335
5336 /* Update the string table. */
c6cdb69a 5337 bfd_put_32 (abfd, strlen (sym->symbol.name), p);
6e033f86 5338 p += 4;
c6cdb69a
JL
5339 strcpy (p, sym->symbol.name);
5340 p += strlen (sym->symbol.name) + 1;
6e033f86
JL
5341 while ((int)p % 4)
5342 {
5343 bfd_put_8 (abfd, 0, p);
5344 p++;
5345 }
5346
5347 /* Head to the next symbol. */
5348 curr_lst_sym++;
5349 }
5350
5351 /* Keep track of where each SOM will finally reside; then look
5352 at the next BFD. */
5353 curr_som_offset += arelt_size (curr_bfd) + sizeof (struct ar_hdr);
5354 curr_bfd = curr_bfd->next;
5355 som_index++;
5356 }
5357
5358 /* Now scribble out the hash table. */
5359 if (bfd_write ((PTR) hash_table, lst.hash_size, 4, abfd)
5360 != lst.hash_size * 4)
25057836 5361 goto error_return;
6e033f86
JL
5362
5363 /* Then the SOM dictionary. */
5364 if (bfd_write ((PTR) som_dict, lst.module_count,
5365 sizeof (struct som_entry), abfd)
5366 != lst.module_count * sizeof (struct som_entry))
25057836 5367 goto error_return;
6e033f86
JL
5368
5369 /* The library symbols. */
5370 if (bfd_write ((PTR) lst_syms, nsyms, sizeof (struct lst_symbol_record), abfd)
5371 != nsyms * sizeof (struct lst_symbol_record))
25057836 5372 goto error_return;
6e033f86
JL
5373
5374 /* And finally the strings. */
5375 if (bfd_write ((PTR) strings, string_size, 1, abfd) != string_size)
25057836 5376 goto error_return;
6e033f86 5377
80425e6c
JK
5378 if (hash_table != NULL)
5379 free (hash_table);
5380 if (som_dict != NULL)
5381 free (som_dict);
5382 if (last_hash_entry != NULL)
5383 free (last_hash_entry);
5384 if (lst_syms != NULL)
5385 free (lst_syms);
5386 if (strings != NULL)
5387 free (strings);
6e033f86 5388 return true;
80425e6c
JK
5389
5390 error_return:
5391 if (hash_table != NULL)
5392 free (hash_table);
5393 if (som_dict != NULL)
5394 free (som_dict);
5395 if (last_hash_entry != NULL)
5396 free (last_hash_entry);
5397 if (lst_syms != NULL)
5398 free (lst_syms);
5399 if (strings != NULL)
5400 free (strings);
5401
5402 return false;
6e033f86
JL
5403}
5404
5405/* Write out the LST for the archive.
5406
5407 You'll never believe this is really how armaps are handled in SOM... */
5408
82492ca1 5409/*ARGSUSED*/
3c37f9ca 5410static boolean
82492ca1 5411som_write_armap (abfd, elength, map, orl_count, stridx)
3c37f9ca 5412 bfd *abfd;
82492ca1
ILT
5413 unsigned int elength;
5414 struct orl *map;
5415 unsigned int orl_count;
5416 int stridx;
3c37f9ca 5417{
6e033f86
JL
5418 bfd *curr_bfd;
5419 struct stat statbuf;
5420 unsigned int i, lst_size, nsyms, stringsize;
5421 struct ar_hdr hdr;
5422 struct lst_header lst;
5423 int *p;
5424
5425 /* We'll use this for the archive's date and mode later. */
5426 if (stat (abfd->filename, &statbuf) != 0)
5427 {
d1ad85a6 5428 bfd_set_error (bfd_error_system_call);
6e033f86
JL
5429 return false;
5430 }
5431 /* Fudge factor. */
5432 bfd_ardata (abfd)->armap_timestamp = statbuf.st_mtime + 60;
5433
5434 /* Account for the lst header first. */
5435 lst_size = sizeof (struct lst_header);
5436
5437 /* Start building the LST header. */
8117e1ea 5438 lst.system_id = CPU_PA_RISC1_0;
6e033f86
JL
5439 lst.a_magic = LIBMAGIC;
5440 lst.version_id = VERSION_ID;
5441 lst.file_time.secs = 0;
5442 lst.file_time.nanosecs = 0;
5443
5444 lst.hash_loc = lst_size;
5445 lst.hash_size = SOM_LST_HASH_SIZE;
5446
5447 /* Hash table is a SOM_LST_HASH_SIZE 32bit offsets. */
5448 lst_size += 4 * SOM_LST_HASH_SIZE;
5449
5450 /* We need to count the number of SOMs in this archive. */
5451 curr_bfd = abfd->archive_head;
5452 lst.module_count = 0;
5453 while (curr_bfd != NULL)
5454 {
9d7f682f
JL
5455 /* Only true SOM objects count. */
5456 if (curr_bfd->format == bfd_object
5457 && curr_bfd->xvec->flavour == bfd_target_som_flavour)
5458 lst.module_count++;
6e033f86
JL
5459 curr_bfd = curr_bfd->next;
5460 }
5461 lst.module_limit = lst.module_count;
5462 lst.dir_loc = lst_size;
5463 lst_size += sizeof (struct som_entry) * lst.module_count;
5464
5465 /* We don't support import/export tables, auxiliary headers,
5466 or free lists yet. Make the linker work a little harder
5467 to make our life easier. */
5468
5469 lst.export_loc = 0;
5470 lst.export_count = 0;
5471 lst.import_loc = 0;
5472 lst.aux_loc = 0;
5473 lst.aux_size = 0;
5474
5475 /* Count how many symbols we will have on the hash chains and the
5476 size of the associated string table. */
5477 if (som_bfd_prep_for_ar_write (abfd, &nsyms, &stringsize) == false)
5478 return false;
5479
5480 lst_size += sizeof (struct lst_symbol_record) * nsyms;
5481
5482 /* For the string table. One day we might actually use this info
5483 to avoid small seeks/reads when reading archives. */
5484 lst.string_loc = lst_size;
5485 lst.string_size = stringsize;
5486 lst_size += stringsize;
5487
5488 /* SOM ABI says this must be zero. */
5489 lst.free_list = 0;
6e033f86
JL
5490 lst.file_end = lst_size;
5491
5492 /* Compute the checksum. Must happen after the entire lst header
5493 has filled in. */
5494 p = (int *)&lst;
3b499495 5495 lst.checksum = 0;
6e033f86
JL
5496 for (i = 0; i < sizeof (struct lst_header)/sizeof (int) - 1; i++)
5497 lst.checksum ^= *p++;
5498
5499 sprintf (hdr.ar_name, "/ ");
5500 sprintf (hdr.ar_date, "%ld", bfd_ardata (abfd)->armap_timestamp);
82492ca1
ILT
5501 sprintf (hdr.ar_uid, "%ld", (long) getuid ());
5502 sprintf (hdr.ar_gid, "%ld", (long) getgid ());
6e033f86
JL
5503 sprintf (hdr.ar_mode, "%-8o", (unsigned int) statbuf.st_mode);
5504 sprintf (hdr.ar_size, "%-10d", (int) lst_size);
5505 hdr.ar_fmag[0] = '`';
5506 hdr.ar_fmag[1] = '\012';
5507
5508 /* Turn any nulls into spaces. */
5509 for (i = 0; i < sizeof (struct ar_hdr); i++)
5510 if (((char *) (&hdr))[i] == '\0')
5511 (((char *) (&hdr))[i]) = ' ';
5512
5513 /* Scribble out the ar header. */
5514 if (bfd_write ((PTR) &hdr, 1, sizeof (struct ar_hdr), abfd)
5515 != sizeof (struct ar_hdr))
25057836 5516 return false;
6e033f86
JL
5517
5518 /* Now scribble out the lst header. */
5519 if (bfd_write ((PTR) &lst, 1, sizeof (struct lst_header), abfd)
5520 != sizeof (struct lst_header))
25057836 5521 return false;
6e033f86
JL
5522
5523 /* Build and write the armap. */
5524 if (som_bfd_ar_write_symbol_stuff (abfd, nsyms, stringsize, lst) == false)
5525 return false;
5526
5527 /* Done. */
5528 return true;
3c37f9ca
JL
5529}
5530
1f46bba3
JL
5531/* Free all information we have cached for this BFD. We can always
5532 read it again later if we need it. */
5533
5534static boolean
5535som_bfd_free_cached_info (abfd)
5536 bfd *abfd;
5537{
5538 asection *o;
5539
b2452d39
JL
5540 if (bfd_get_format (abfd) != bfd_object)
5541 return true;
5542
1f46bba3
JL
5543#define FREE(x) if (x != NULL) { free (x); x = NULL; }
5544 /* Free the native string and symbol tables. */
5545 FREE (obj_som_symtab (abfd));
5546 FREE (obj_som_stringtab (abfd));
5547 for (o = abfd->sections; o != (asection *) NULL; o = o->next)
5548 {
5549 /* Free the native relocations. */
5550 o->reloc_count = -1;
5551 FREE (som_section_data (o)->reloc_stream);
5552 /* Free the generic relocations. */
5553 FREE (o->relocation);
5554 }
5555#undef FREE
5556
5557 return true;
5558}
5559
d9ad93bc
KR
5560/* End of miscellaneous support functions. */
5561
6812b607 5562#define som_close_and_cleanup som_bfd_free_cached_info
d9ad93bc 5563
3c37f9ca
JL
5564#define som_openr_next_archived_file bfd_generic_openr_next_archived_file
5565#define som_generic_stat_arch_elt bfd_generic_stat_arch_elt
5566#define som_truncate_arname bfd_bsd_truncate_arname
3b499495 5567#define som_slurp_extended_name_table _bfd_slurp_extended_name_table
b905bde1 5568#define som_update_armap_timestamp bfd_true
d9ad93bc 5569
6812b607
ILT
5570#define som_get_lineno _bfd_nosymbols_get_lineno
5571#define som_bfd_make_debug_symbol _bfd_nosymbols_bfd_make_debug_symbol
d9ad93bc 5572
9e16fcf1 5573#define som_bfd_get_relocated_section_contents \
d9ad93bc 5574 bfd_generic_get_relocated_section_contents
9e16fcf1 5575#define som_bfd_relax_section bfd_generic_relax_section
39961154
JL
5576#define som_bfd_link_hash_table_create _bfd_generic_link_hash_table_create
5577#define som_bfd_link_add_symbols _bfd_generic_link_add_symbols
5578#define som_bfd_final_link _bfd_generic_final_link
d9ad93bc 5579
2f3508ad 5580const bfd_target som_vec =
d9ad93bc 5581{
9e16fcf1
SG
5582 "som", /* name */
5583 bfd_target_som_flavour,
d9ad93bc
KR
5584 true, /* target byte order */
5585 true, /* target headers byte order */
5586 (HAS_RELOC | EXEC_P | /* object flags */
5587 HAS_LINENO | HAS_DEBUG |
65b1ef49 5588 HAS_SYMS | HAS_LOCALS | WP_TEXT | D_PAGED | DYNAMIC),
d9ad93bc 5589 (SEC_CODE | SEC_DATA | SEC_ROM | SEC_HAS_CONTENTS
9e16fcf1 5590 | SEC_ALLOC | SEC_LOAD | SEC_RELOC), /* section flags */
d9ad93bc
KR
5591
5592/* leading_symbol_char: is the first char of a user symbol
9e16fcf1 5593 predictable, and if so what is it */
d9ad93bc 5594 0,
6e033f86 5595 '/', /* ar_pad_char */
3b499495 5596 14, /* ar_max_namelen */
d9ad93bc 5597 3, /* minimum alignment */
9e16fcf1
SG
5598 bfd_getb64, bfd_getb_signed_64, bfd_putb64,
5599 bfd_getb32, bfd_getb_signed_32, bfd_putb32,
5600 bfd_getb16, bfd_getb_signed_16, bfd_putb16, /* data */
5601 bfd_getb64, bfd_getb_signed_64, bfd_putb64,
5602 bfd_getb32, bfd_getb_signed_32, bfd_putb32,
5603 bfd_getb16, bfd_getb_signed_16, bfd_putb16, /* hdrs */
d9ad93bc 5604 {_bfd_dummy_target,
9e16fcf1 5605 som_object_p, /* bfd_check_format */
d9ad93bc
KR
5606 bfd_generic_archive_p,
5607 _bfd_dummy_target
5608 },
5609 {
5610 bfd_false,
9e16fcf1 5611 som_mkobject,
d9ad93bc
KR
5612 _bfd_generic_mkarchive,
5613 bfd_false
5614 },
5615 {
5616 bfd_false,
9e16fcf1 5617 som_write_object_contents,
d9ad93bc
KR
5618 _bfd_write_archive_contents,
5619 bfd_false,
5620 },
9e16fcf1 5621#undef som
6812b607
ILT
5622
5623 BFD_JUMP_TABLE_GENERIC (som),
5624 BFD_JUMP_TABLE_COPY (som),
5625 BFD_JUMP_TABLE_CORE (_bfd_nocore),
5626 BFD_JUMP_TABLE_ARCHIVE (som),
5627 BFD_JUMP_TABLE_SYMBOLS (som),
5628 BFD_JUMP_TABLE_RELOCS (som),
5629 BFD_JUMP_TABLE_WRITE (som),
5630 BFD_JUMP_TABLE_LINK (som),
dfc1c006 5631 BFD_JUMP_TABLE_DYNAMIC (_bfd_nodynamic),
6812b607 5632
d9ad93bc
KR
5633 (PTR) 0
5634};
5635
6941fd4d 5636#endif /* HOST_HPPAHPUX || HOST_HPPABSD || HOST_HPPAOSF */
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