xref: /netbsd-src/external/gpl3/gdb.old/dist/gdb/solib-dsbt.c (revision cef8759bd76c1b621f8eab8faa6f208faabc2e15)
1 /* Handle TIC6X (DSBT) shared libraries for GDB, the GNU Debugger.
2    Copyright (C) 2010-2017 Free Software Foundation, Inc.
3 
4    This file is part of GDB.
5 
6    This program is free software; you can redistribute it and/or modify
7    it under the terms of the GNU General Public License as published by
8    the Free Software Foundation; either version 3 of the License, or
9    (at your option) any later version.
10 
11    This program is distributed in the hope that it will be useful,
12    but WITHOUT ANY WARRANTY; without even the implied warranty of
13    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
14    GNU General Public License for more details.
15 
16    You should have received a copy of the GNU General Public License
17    along with this program.  If not, see <http://www.gnu.org/licenses/>.  */
18 
19 
20 #include "defs.h"
21 #include "inferior.h"
22 #include "gdbcore.h"
23 #include "solib.h"
24 #include "solist.h"
25 #include "objfiles.h"
26 #include "symtab.h"
27 #include "language.h"
28 #include "command.h"
29 #include "gdbcmd.h"
30 #include "elf-bfd.h"
31 #include "gdb_bfd.h"
32 
33 #define GOT_MODULE_OFFSET 4
34 
35 /* Flag which indicates whether internal debug messages should be printed.  */
36 static unsigned int solib_dsbt_debug = 0;
37 
38 /* TIC6X pointers are four bytes wide.  */
39 enum { TIC6X_PTR_SIZE = 4 };
40 
41 /* Representation of loadmap and related structs for the TIC6X DSBT.  */
42 
43 /* External versions; the size and alignment of the fields should be
44    the same as those on the target.  When loaded, the placement of
45    the bits in each field will be the same as on the target.  */
46 typedef gdb_byte ext_Elf32_Half[2];
47 typedef gdb_byte ext_Elf32_Addr[4];
48 typedef gdb_byte ext_Elf32_Word[4];
49 
50 struct ext_elf32_dsbt_loadseg
51 {
52   /* Core address to which the segment is mapped.  */
53   ext_Elf32_Addr addr;
54   /* VMA recorded in the program header.  */
55   ext_Elf32_Addr p_vaddr;
56   /* Size of this segment in memory.  */
57   ext_Elf32_Word p_memsz;
58 };
59 
60 struct ext_elf32_dsbt_loadmap {
61   /* Protocol version number, must be zero.  */
62   ext_Elf32_Word version;
63   /* A pointer to the DSBT table; the DSBT size and the index of this
64      module.  */
65   ext_Elf32_Word dsbt_table_ptr;
66   ext_Elf32_Word dsbt_size;
67   ext_Elf32_Word dsbt_index;
68   /* Number of segments in this map.  */
69   ext_Elf32_Word nsegs;
70   /* The actual memory map.  */
71   struct ext_elf32_dsbt_loadseg segs[1 /* nsegs, actually */];
72 };
73 
74 /* Internal versions; the types are GDB types and the data in each
75    of the fields is (or will be) decoded from the external struct
76    for ease of consumption.  */
77 struct int_elf32_dsbt_loadseg
78 {
79   /* Core address to which the segment is mapped.  */
80   CORE_ADDR addr;
81   /* VMA recorded in the program header.  */
82   CORE_ADDR p_vaddr;
83   /* Size of this segment in memory.  */
84   long p_memsz;
85 };
86 
87 struct int_elf32_dsbt_loadmap
88 {
89   /* Protocol version number, must be zero.  */
90   int version;
91   CORE_ADDR dsbt_table_ptr;
92   /* A pointer to the DSBT table; the DSBT size and the index of this
93      module.  */
94   int dsbt_size, dsbt_index;
95   /* Number of segments in this map.  */
96   int nsegs;
97   /* The actual memory map.  */
98   struct int_elf32_dsbt_loadseg segs[1 /* nsegs, actually */];
99 };
100 
101 /* External link_map and elf32_dsbt_loadaddr struct definitions.  */
102 
103 typedef gdb_byte ext_ptr[4];
104 
105 struct ext_elf32_dsbt_loadaddr
106 {
107   ext_ptr map;			/* struct elf32_dsbt_loadmap *map; */
108 };
109 
110 struct ext_link_map
111 {
112   struct ext_elf32_dsbt_loadaddr l_addr;
113 
114   /* Absolute file name object was found in.  */
115   ext_ptr l_name;		/* char *l_name; */
116 
117   /* Dynamic section of the shared object.  */
118   ext_ptr l_ld;			/* ElfW(Dyn) *l_ld; */
119 
120   /* Chain of loaded objects.  */
121   ext_ptr l_next, l_prev;	/* struct link_map *l_next, *l_prev; */
122 };
123 
124 /* Link map info to include in an allocated so_list entry */
125 
126 struct lm_info
127 {
128   /* The loadmap, digested into an easier to use form.  */
129   struct int_elf32_dsbt_loadmap *map;
130 };
131 
132 /* Per pspace dsbt specific data.  */
133 
134 struct dsbt_info
135 {
136   /* The load map, got value, etc. are not available from the chain
137      of loaded shared objects.  ``main_executable_lm_info'' provides
138      a way to get at this information so that it doesn't need to be
139      frequently recomputed.  Initialized by dsbt_relocate_main_executable.  */
140   struct lm_info *main_executable_lm_info;
141 
142   /* Load maps for the main executable and the interpreter.  These are obtained
143      from ptrace.  They are the starting point for getting into the program,
144      and are required to find the solib list with the individual load maps for
145      each module.  */
146   struct int_elf32_dsbt_loadmap *exec_loadmap;
147   struct int_elf32_dsbt_loadmap *interp_loadmap;
148 
149   /* Cached value for lm_base, below.  */
150   CORE_ADDR lm_base_cache;
151 
152   /* Link map address for main module.  */
153   CORE_ADDR main_lm_addr;
154 
155   CORE_ADDR interp_text_sect_low;
156   CORE_ADDR interp_text_sect_high;
157   CORE_ADDR interp_plt_sect_low;
158   CORE_ADDR interp_plt_sect_high;
159 };
160 
161 /* Per-program-space data key.  */
162 static const struct program_space_data *solib_dsbt_pspace_data;
163 
164 static void
165 dsbt_pspace_data_cleanup (struct program_space *pspace, void *arg)
166 {
167   xfree (arg);
168 }
169 
170 /* Get the current dsbt data.  If none is found yet, add it now.  This
171    function always returns a valid object.  */
172 
173 static struct dsbt_info *
174 get_dsbt_info (void)
175 {
176   struct dsbt_info *info;
177 
178   info = (struct dsbt_info *) program_space_data (current_program_space,
179 						  solib_dsbt_pspace_data);
180   if (info != NULL)
181     return info;
182 
183   info = XCNEW (struct dsbt_info);
184   set_program_space_data (current_program_space, solib_dsbt_pspace_data, info);
185 
186   info->lm_base_cache = 0;
187   info->main_lm_addr = 0;
188 
189   return info;
190 }
191 
192 
193 static void
194 dsbt_print_loadmap (struct int_elf32_dsbt_loadmap *map)
195 {
196   int i;
197 
198   if (map == NULL)
199     printf_filtered ("(null)\n");
200   else if (map->version != 0)
201     printf_filtered (_("Unsupported map version: %d\n"), map->version);
202   else
203     {
204       printf_filtered ("version %d\n", map->version);
205 
206       for (i = 0; i < map->nsegs; i++)
207 	printf_filtered ("%s:%s -> %s:%s\n",
208 			 print_core_address (target_gdbarch (),
209 					     map->segs[i].p_vaddr),
210 			 print_core_address (target_gdbarch (),
211 					     map->segs[i].p_vaddr
212 					     + map->segs[i].p_memsz),
213 			 print_core_address (target_gdbarch (), map->segs[i].addr),
214 			 print_core_address (target_gdbarch (), map->segs[i].addr
215 					     + map->segs[i].p_memsz));
216     }
217 }
218 
219 /* Decode int_elf32_dsbt_loadmap from BUF.  */
220 
221 static struct int_elf32_dsbt_loadmap *
222 decode_loadmap (gdb_byte *buf)
223 {
224   enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
225   struct ext_elf32_dsbt_loadmap *ext_ldmbuf;
226   struct int_elf32_dsbt_loadmap *int_ldmbuf;
227 
228   int version, seg, nsegs;
229   int int_ldmbuf_size;
230 
231   ext_ldmbuf = (struct ext_elf32_dsbt_loadmap *) buf;
232 
233   /* Extract the version.  */
234   version = extract_unsigned_integer (ext_ldmbuf->version,
235 				      sizeof ext_ldmbuf->version,
236 				      byte_order);
237   if (version != 0)
238     {
239       /* We only handle version 0.  */
240       return NULL;
241     }
242 
243   /* Extract the number of segments.  */
244   nsegs = extract_unsigned_integer (ext_ldmbuf->nsegs,
245 				    sizeof ext_ldmbuf->nsegs,
246 				    byte_order);
247 
248   if (nsegs <= 0)
249     return NULL;
250 
251   /* Allocate space into which to put information extract from the
252      external loadsegs.  I.e, allocate the internal loadsegs.  */
253   int_ldmbuf_size = (sizeof (struct int_elf32_dsbt_loadmap)
254 		     + (nsegs - 1) * sizeof (struct int_elf32_dsbt_loadseg));
255   int_ldmbuf = (struct int_elf32_dsbt_loadmap *) xmalloc (int_ldmbuf_size);
256 
257   /* Place extracted information in internal structs.  */
258   int_ldmbuf->version = version;
259   int_ldmbuf->nsegs = nsegs;
260   for (seg = 0; seg < nsegs; seg++)
261     {
262       int_ldmbuf->segs[seg].addr
263 	= extract_unsigned_integer (ext_ldmbuf->segs[seg].addr,
264 				    sizeof (ext_ldmbuf->segs[seg].addr),
265 				    byte_order);
266       int_ldmbuf->segs[seg].p_vaddr
267 	= extract_unsigned_integer (ext_ldmbuf->segs[seg].p_vaddr,
268 				    sizeof (ext_ldmbuf->segs[seg].p_vaddr),
269 				    byte_order);
270       int_ldmbuf->segs[seg].p_memsz
271 	= extract_unsigned_integer (ext_ldmbuf->segs[seg].p_memsz,
272 				    sizeof (ext_ldmbuf->segs[seg].p_memsz),
273 				    byte_order);
274     }
275 
276   xfree (ext_ldmbuf);
277   return int_ldmbuf;
278 }
279 
280 
281 static struct dsbt_info *get_dsbt_info (void);
282 
283 /* Interrogate the Linux kernel to find out where the program was loaded.
284    There are two load maps; one for the executable and one for the
285    interpreter (only in the case of a dynamically linked executable).  */
286 
287 static void
288 dsbt_get_initial_loadmaps (void)
289 {
290   gdb_byte *buf;
291   struct dsbt_info *info = get_dsbt_info ();
292 
293   if (0 >= target_read_alloc (&current_target, TARGET_OBJECT_FDPIC,
294 			      "exec", &buf))
295     {
296       info->exec_loadmap = NULL;
297       error (_("Error reading DSBT exec loadmap"));
298     }
299   info->exec_loadmap = decode_loadmap (buf);
300   if (solib_dsbt_debug)
301     dsbt_print_loadmap (info->exec_loadmap);
302 
303   if (0 >= target_read_alloc (&current_target, TARGET_OBJECT_FDPIC,
304 			      "interp", &buf))
305     {
306       info->interp_loadmap = NULL;
307       error (_("Error reading DSBT interp loadmap"));
308     }
309   info->interp_loadmap = decode_loadmap (buf);
310   if (solib_dsbt_debug)
311     dsbt_print_loadmap (info->interp_loadmap);
312 }
313 
314 /* Given address LDMADDR, fetch and decode the loadmap at that address.
315    Return NULL if there is a problem reading the target memory or if
316    there doesn't appear to be a loadmap at the given address.  The
317    allocated space (representing the loadmap) returned by this
318    function may be freed via a single call to xfree.  */
319 
320 static struct int_elf32_dsbt_loadmap *
321 fetch_loadmap (CORE_ADDR ldmaddr)
322 {
323   enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
324   struct ext_elf32_dsbt_loadmap ext_ldmbuf_partial;
325   struct ext_elf32_dsbt_loadmap *ext_ldmbuf;
326   struct int_elf32_dsbt_loadmap *int_ldmbuf;
327   int ext_ldmbuf_size, int_ldmbuf_size;
328   int version, seg, nsegs;
329 
330   /* Fetch initial portion of the loadmap.  */
331   if (target_read_memory (ldmaddr, (gdb_byte *) &ext_ldmbuf_partial,
332 			  sizeof ext_ldmbuf_partial))
333     {
334       /* Problem reading the target's memory.  */
335       return NULL;
336     }
337 
338   /* Extract the version.  */
339   version = extract_unsigned_integer (ext_ldmbuf_partial.version,
340 				      sizeof ext_ldmbuf_partial.version,
341 				      byte_order);
342   if (version != 0)
343     {
344       /* We only handle version 0.  */
345       return NULL;
346     }
347 
348   /* Extract the number of segments.  */
349   nsegs = extract_unsigned_integer (ext_ldmbuf_partial.nsegs,
350 				    sizeof ext_ldmbuf_partial.nsegs,
351 				    byte_order);
352 
353   if (nsegs <= 0)
354     return NULL;
355 
356   /* Allocate space for the complete (external) loadmap.  */
357   ext_ldmbuf_size = sizeof (struct ext_elf32_dsbt_loadmap)
358     + (nsegs - 1) * sizeof (struct ext_elf32_dsbt_loadseg);
359   ext_ldmbuf = (struct ext_elf32_dsbt_loadmap *) xmalloc (ext_ldmbuf_size);
360 
361   /* Copy over the portion of the loadmap that's already been read.  */
362   memcpy (ext_ldmbuf, &ext_ldmbuf_partial, sizeof ext_ldmbuf_partial);
363 
364   /* Read the rest of the loadmap from the target.  */
365   if (target_read_memory (ldmaddr + sizeof ext_ldmbuf_partial,
366 			  (gdb_byte *) ext_ldmbuf + sizeof ext_ldmbuf_partial,
367 			  ext_ldmbuf_size - sizeof ext_ldmbuf_partial))
368     {
369       /* Couldn't read rest of the loadmap.  */
370       xfree (ext_ldmbuf);
371       return NULL;
372     }
373 
374   /* Allocate space into which to put information extract from the
375      external loadsegs.  I.e, allocate the internal loadsegs.  */
376   int_ldmbuf_size = sizeof (struct int_elf32_dsbt_loadmap)
377     + (nsegs - 1) * sizeof (struct int_elf32_dsbt_loadseg);
378   int_ldmbuf = (struct int_elf32_dsbt_loadmap *) xmalloc (int_ldmbuf_size);
379 
380   /* Place extracted information in internal structs.  */
381   int_ldmbuf->version = version;
382   int_ldmbuf->nsegs = nsegs;
383   for (seg = 0; seg < nsegs; seg++)
384     {
385       int_ldmbuf->segs[seg].addr
386 	= extract_unsigned_integer (ext_ldmbuf->segs[seg].addr,
387 				    sizeof (ext_ldmbuf->segs[seg].addr),
388 				    byte_order);
389       int_ldmbuf->segs[seg].p_vaddr
390 	= extract_unsigned_integer (ext_ldmbuf->segs[seg].p_vaddr,
391 				    sizeof (ext_ldmbuf->segs[seg].p_vaddr),
392 				    byte_order);
393       int_ldmbuf->segs[seg].p_memsz
394 	= extract_unsigned_integer (ext_ldmbuf->segs[seg].p_memsz,
395 				    sizeof (ext_ldmbuf->segs[seg].p_memsz),
396 				    byte_order);
397     }
398 
399   xfree (ext_ldmbuf);
400   return int_ldmbuf;
401 }
402 
403 static void dsbt_relocate_main_executable (void);
404 static int enable_break (void);
405 
406 /* Scan for DYNTAG in .dynamic section of ABFD. If DYNTAG is found 1 is
407    returned and the corresponding PTR is set.  */
408 
409 static int
410 scan_dyntag (int dyntag, bfd *abfd, CORE_ADDR *ptr)
411 {
412   int arch_size, step, sect_size;
413   long dyn_tag;
414   CORE_ADDR dyn_ptr, dyn_addr;
415   gdb_byte *bufend, *bufstart, *buf;
416   Elf32_External_Dyn *x_dynp_32;
417   Elf64_External_Dyn *x_dynp_64;
418   struct bfd_section *sect;
419   struct target_section *target_section;
420 
421   if (abfd == NULL)
422     return 0;
423 
424   if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
425     return 0;
426 
427   arch_size = bfd_get_arch_size (abfd);
428   if (arch_size == -1)
429     return 0;
430 
431   /* Find the start address of the .dynamic section.  */
432   sect = bfd_get_section_by_name (abfd, ".dynamic");
433   if (sect == NULL)
434     return 0;
435 
436   for (target_section = current_target_sections->sections;
437        target_section < current_target_sections->sections_end;
438        target_section++)
439     if (sect == target_section->the_bfd_section)
440       break;
441   if (target_section < current_target_sections->sections_end)
442     dyn_addr = target_section->addr;
443   else
444     {
445       /* ABFD may come from OBJFILE acting only as a symbol file without being
446 	 loaded into the target (see add_symbol_file_command).  This case is
447 	 such fallback to the file VMA address without the possibility of
448 	 having the section relocated to its actual in-memory address.  */
449 
450       dyn_addr = bfd_section_vma (abfd, sect);
451     }
452 
453   /* Read in .dynamic from the BFD.  We will get the actual value
454      from memory later.  */
455   sect_size = bfd_section_size (abfd, sect);
456   buf = bufstart = (gdb_byte *) alloca (sect_size);
457   if (!bfd_get_section_contents (abfd, sect,
458 				 buf, 0, sect_size))
459     return 0;
460 
461   /* Iterate over BUF and scan for DYNTAG.  If found, set PTR and return.  */
462   step = (arch_size == 32) ? sizeof (Elf32_External_Dyn)
463 			   : sizeof (Elf64_External_Dyn);
464   for (bufend = buf + sect_size;
465        buf < bufend;
466        buf += step)
467   {
468     if (arch_size == 32)
469       {
470 	x_dynp_32 = (Elf32_External_Dyn *) buf;
471 	dyn_tag = bfd_h_get_32 (abfd, (bfd_byte *) x_dynp_32->d_tag);
472 	dyn_ptr = bfd_h_get_32 (abfd, (bfd_byte *) x_dynp_32->d_un.d_ptr);
473       }
474     else
475       {
476 	x_dynp_64 = (Elf64_External_Dyn *) buf;
477 	dyn_tag = bfd_h_get_64 (abfd, (bfd_byte *) x_dynp_64->d_tag);
478 	dyn_ptr = bfd_h_get_64 (abfd, (bfd_byte *) x_dynp_64->d_un.d_ptr);
479       }
480      if (dyn_tag == DT_NULL)
481        return 0;
482      if (dyn_tag == dyntag)
483        {
484 	 /* If requested, try to read the runtime value of this .dynamic
485 	    entry.  */
486 	 if (ptr)
487 	   {
488 	     struct type *ptr_type;
489 	     gdb_byte ptr_buf[8];
490 	     CORE_ADDR ptr_addr;
491 
492 	     ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
493 	     ptr_addr = dyn_addr + (buf - bufstart) + arch_size / 8;
494 	     if (target_read_memory (ptr_addr, ptr_buf, arch_size / 8) == 0)
495 	       dyn_ptr = extract_typed_address (ptr_buf, ptr_type);
496 	     *ptr = dyn_ptr;
497 	   }
498 	 return 1;
499        }
500   }
501 
502   return 0;
503 }
504 
505 /* If no open symbol file, attempt to locate and open the main symbol
506    file.
507 
508    If FROM_TTYP dereferences to a non-zero integer, allow messages to
509    be printed.  This parameter is a pointer rather than an int because
510    open_symbol_file_object is called via catch_errors and
511    catch_errors requires a pointer argument. */
512 
513 static int
514 open_symbol_file_object (void *from_ttyp)
515 {
516   /* Unimplemented.  */
517   return 0;
518 }
519 
520 /* Given a loadmap and an address, return the displacement needed
521    to relocate the address.  */
522 
523 static CORE_ADDR
524 displacement_from_map (struct int_elf32_dsbt_loadmap *map,
525 		       CORE_ADDR addr)
526 {
527   int seg;
528 
529   for (seg = 0; seg < map->nsegs; seg++)
530     if (map->segs[seg].p_vaddr <= addr
531 	&& addr < map->segs[seg].p_vaddr + map->segs[seg].p_memsz)
532       return map->segs[seg].addr - map->segs[seg].p_vaddr;
533 
534   return 0;
535 }
536 
537 /* Return the address from which the link map chain may be found.  On
538    DSBT, a pointer to the start of the link map will be located at the
539    word found at base of GOT + GOT_MODULE_OFFSET.
540 
541    The base of GOT may be found in a number of ways.  Assuming that the
542    main executable has already been relocated,
543    1 The easiest way to find this value is to look up the address of
544    _GLOBAL_OFFSET_TABLE_.
545    2 The other way is to look for tag DT_PLTGOT, which contains the virtual
546    address of Global Offset Table.  .*/
547 
548 static CORE_ADDR
549 lm_base (void)
550 {
551   enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
552   struct bound_minimal_symbol got_sym;
553   CORE_ADDR addr;
554   gdb_byte buf[TIC6X_PTR_SIZE];
555   struct dsbt_info *info = get_dsbt_info ();
556 
557   /* One of our assumptions is that the main executable has been relocated.
558      Bail out if this has not happened.  (Note that post_create_inferior
559      in infcmd.c will call solib_add prior to solib_create_inferior_hook.
560      If we allow this to happen, lm_base_cache will be initialized with
561      a bogus value.  */
562   if (info->main_executable_lm_info == 0)
563     return 0;
564 
565   /* If we already have a cached value, return it.  */
566   if (info->lm_base_cache)
567     return info->lm_base_cache;
568 
569   got_sym = lookup_minimal_symbol ("_GLOBAL_OFFSET_TABLE_", NULL,
570 				   symfile_objfile);
571 
572   if (got_sym.minsym != 0)
573     {
574       addr = BMSYMBOL_VALUE_ADDRESS (got_sym);
575       if (solib_dsbt_debug)
576 	fprintf_unfiltered (gdb_stdlog,
577 			    "lm_base: get addr %x by _GLOBAL_OFFSET_TABLE_.\n",
578 			    (unsigned int) addr);
579     }
580   else if (scan_dyntag (DT_PLTGOT, exec_bfd, &addr))
581     {
582       struct int_elf32_dsbt_loadmap *ldm;
583 
584       dsbt_get_initial_loadmaps ();
585       ldm = info->exec_loadmap;
586       addr += displacement_from_map (ldm, addr);
587       if (solib_dsbt_debug)
588 	fprintf_unfiltered (gdb_stdlog,
589 			    "lm_base: get addr %x by DT_PLTGOT.\n",
590 			    (unsigned int) addr);
591     }
592   else
593     {
594       if (solib_dsbt_debug)
595 	fprintf_unfiltered (gdb_stdlog,
596 			    "lm_base: _GLOBAL_OFFSET_TABLE_ not found.\n");
597       return 0;
598     }
599   addr += GOT_MODULE_OFFSET;
600 
601   if (solib_dsbt_debug)
602     fprintf_unfiltered (gdb_stdlog,
603 			"lm_base: _GLOBAL_OFFSET_TABLE_ + %d = %s\n",
604 			GOT_MODULE_OFFSET, hex_string_custom (addr, 8));
605 
606   if (target_read_memory (addr, buf, sizeof buf) != 0)
607     return 0;
608   info->lm_base_cache = extract_unsigned_integer (buf, sizeof buf, byte_order);
609 
610   if (solib_dsbt_debug)
611     fprintf_unfiltered (gdb_stdlog,
612 			"lm_base: lm_base_cache = %s\n",
613 			hex_string_custom (info->lm_base_cache, 8));
614 
615   return info->lm_base_cache;
616 }
617 
618 
619 /* Build a list of `struct so_list' objects describing the shared
620    objects currently loaded in the inferior.  This list does not
621    include an entry for the main executable file.
622 
623    Note that we only gather information directly available from the
624    inferior --- we don't examine any of the shared library files
625    themselves.  The declaration of `struct so_list' says which fields
626    we provide values for.  */
627 
628 static struct so_list *
629 dsbt_current_sos (void)
630 {
631   enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
632   CORE_ADDR lm_addr;
633   struct so_list *sos_head = NULL;
634   struct so_list **sos_next_ptr = &sos_head;
635   struct dsbt_info *info = get_dsbt_info ();
636 
637   /* Make sure that the main executable has been relocated.  This is
638      required in order to find the address of the global offset table,
639      which in turn is used to find the link map info.  (See lm_base
640      for details.)
641 
642      Note that the relocation of the main executable is also performed
643      by solib_create_inferior_hook, however, in the case of core
644      files, this hook is called too late in order to be of benefit to
645      solib_add.  solib_add eventually calls this function,
646      dsbt_current_sos, and also precedes the call to
647      solib_create_inferior_hook.   (See post_create_inferior in
648      infcmd.c.)  */
649   if (info->main_executable_lm_info == 0 && core_bfd != NULL)
650     dsbt_relocate_main_executable ();
651 
652   /* Locate the address of the first link map struct.  */
653   lm_addr = lm_base ();
654 
655   /* We have at least one link map entry.  Fetch the the lot of them,
656      building the solist chain.  */
657   while (lm_addr)
658     {
659       struct ext_link_map lm_buf;
660       ext_Elf32_Word indexword;
661       CORE_ADDR map_addr;
662       int dsbt_index;
663       int ret;
664 
665       if (solib_dsbt_debug)
666 	fprintf_unfiltered (gdb_stdlog,
667 			    "current_sos: reading link_map entry at %s\n",
668 			    hex_string_custom (lm_addr, 8));
669 
670       ret = target_read_memory (lm_addr, (gdb_byte *) &lm_buf, sizeof (lm_buf));
671       if (ret)
672 	{
673 	  warning (_("dsbt_current_sos: Unable to read link map entry."
674 		     "  Shared object chain may be incomplete."));
675 	  break;
676 	}
677 
678       /* Fetch the load map address.  */
679       map_addr = extract_unsigned_integer (lm_buf.l_addr.map,
680 					   sizeof lm_buf.l_addr.map,
681 					   byte_order);
682 
683       ret = target_read_memory (map_addr + 12, (gdb_byte *) &indexword,
684 				sizeof indexword);
685       if (ret)
686 	{
687 	  warning (_("dsbt_current_sos: Unable to read dsbt index."
688 		     "  Shared object chain may be incomplete."));
689 	  break;
690 	}
691       dsbt_index = extract_unsigned_integer (indexword, sizeof indexword,
692 					     byte_order);
693 
694       /* If the DSBT index is zero, then we're looking at the entry
695 	 for the main executable.  By convention, we don't include
696 	 this in the list of shared objects.  */
697       if (dsbt_index != 0)
698 	{
699 	  int errcode;
700 	  char *name_buf;
701 	  struct int_elf32_dsbt_loadmap *loadmap;
702 	  struct so_list *sop;
703 	  CORE_ADDR addr;
704 
705 	  loadmap = fetch_loadmap (map_addr);
706 	  if (loadmap == NULL)
707 	    {
708 	      warning (_("dsbt_current_sos: Unable to fetch load map."
709 			 "  Shared object chain may be incomplete."));
710 	      break;
711 	    }
712 
713 	  sop = XCNEW (struct so_list);
714 	  sop->lm_info = XCNEW (struct lm_info);
715 	  sop->lm_info->map = loadmap;
716 	  /* Fetch the name.  */
717 	  addr = extract_unsigned_integer (lm_buf.l_name,
718 					   sizeof (lm_buf.l_name),
719 					   byte_order);
720 	  target_read_string (addr, &name_buf, SO_NAME_MAX_PATH_SIZE - 1,
721 			      &errcode);
722 
723 	  if (errcode != 0)
724 	    warning (_("Can't read pathname for link map entry: %s."),
725 		     safe_strerror (errcode));
726 	  else
727 	    {
728 	      if (solib_dsbt_debug)
729 		fprintf_unfiltered (gdb_stdlog, "current_sos: name = %s\n",
730 				    name_buf);
731 
732 	      strncpy (sop->so_name, name_buf, SO_NAME_MAX_PATH_SIZE - 1);
733 	      sop->so_name[SO_NAME_MAX_PATH_SIZE - 1] = '\0';
734 	      xfree (name_buf);
735 	      strcpy (sop->so_original_name, sop->so_name);
736 	    }
737 
738 	  *sos_next_ptr = sop;
739 	  sos_next_ptr = &sop->next;
740 	}
741       else
742 	{
743 	  info->main_lm_addr = lm_addr;
744 	}
745 
746       lm_addr = extract_unsigned_integer (lm_buf.l_next,
747 					  sizeof (lm_buf.l_next), byte_order);
748     }
749 
750   return sos_head;
751 }
752 
753 /* Return 1 if PC lies in the dynamic symbol resolution code of the
754    run time loader.  */
755 
756 static int
757 dsbt_in_dynsym_resolve_code (CORE_ADDR pc)
758 {
759   struct dsbt_info *info = get_dsbt_info ();
760 
761   return ((pc >= info->interp_text_sect_low && pc < info->interp_text_sect_high)
762 	  || (pc >= info->interp_plt_sect_low && pc < info->interp_plt_sect_high)
763 	  || in_plt_section (pc));
764 }
765 
766 /* Print a warning about being unable to set the dynamic linker
767    breakpoint.  */
768 
769 static void
770 enable_break_failure_warning (void)
771 {
772   warning (_("Unable to find dynamic linker breakpoint function.\n"
773 	     "GDB will be unable to debug shared library initializers\n"
774 	     "and track explicitly loaded dynamic code."));
775 }
776 
777 /* Helper function for gdb_bfd_lookup_symbol.  */
778 
779 static int
780 cmp_name (const asymbol *sym, const void *data)
781 {
782   return (strcmp (sym->name, (const char *) data) == 0);
783 }
784 
785 /* The dynamic linkers has, as part of its debugger interface, support
786    for arranging for the inferior to hit a breakpoint after mapping in
787    the shared libraries.  This function enables that breakpoint.
788 
789    On the TIC6X, using the shared library (DSBT), GDB can try to place
790    a breakpoint on '_dl_debug_state' to monitor the shared library
791    event.  */
792 
793 static int
794 enable_break (void)
795 {
796   asection *interp_sect;
797   struct dsbt_info *info;
798 
799   if (exec_bfd == NULL)
800     return 0;
801 
802   if (!target_has_execution)
803     return 0;
804 
805   info = get_dsbt_info ();
806 
807   info->interp_text_sect_low = 0;
808   info->interp_text_sect_high = 0;
809   info->interp_plt_sect_low = 0;
810   info->interp_plt_sect_high = 0;
811 
812   /* Find the .interp section; if not found, warn the user and drop
813      into the old breakpoint at symbol code.  */
814   interp_sect = bfd_get_section_by_name (exec_bfd, ".interp");
815   if (interp_sect)
816     {
817       unsigned int interp_sect_size;
818       char *buf;
819       CORE_ADDR addr;
820       struct int_elf32_dsbt_loadmap *ldm;
821       int ret;
822 
823       /* Read the contents of the .interp section into a local buffer;
824 	 the contents specify the dynamic linker this program uses.  */
825       interp_sect_size = bfd_section_size (exec_bfd, interp_sect);
826       buf = (char *) alloca (interp_sect_size);
827       bfd_get_section_contents (exec_bfd, interp_sect,
828 				buf, 0, interp_sect_size);
829 
830       /* Now we need to figure out where the dynamic linker was
831 	 loaded so that we can load its symbols and place a breakpoint
832 	 in the dynamic linker itself.  */
833 
834       gdb_bfd_ref_ptr tmp_bfd;
835       TRY
836 	{
837 	  tmp_bfd = solib_bfd_open (buf);
838 	}
839       CATCH (ex, RETURN_MASK_ALL)
840 	{
841 	}
842       END_CATCH
843 
844       if (tmp_bfd == NULL)
845 	{
846 	  enable_break_failure_warning ();
847 	  return 0;
848 	}
849 
850       dsbt_get_initial_loadmaps ();
851       ldm = info->interp_loadmap;
852 
853       /* Record the relocated start and end address of the dynamic linker
854 	 text and plt section for dsbt_in_dynsym_resolve_code.  */
855       interp_sect = bfd_get_section_by_name (tmp_bfd.get (), ".text");
856       if (interp_sect)
857 	{
858 	  info->interp_text_sect_low
859 	    = bfd_section_vma (tmp_bfd.get (), interp_sect);
860 	  info->interp_text_sect_low
861 	    += displacement_from_map (ldm, info->interp_text_sect_low);
862 	  info->interp_text_sect_high
863 	    = info->interp_text_sect_low
864 	    + bfd_section_size (tmp_bfd.get (), interp_sect);
865 	}
866       interp_sect = bfd_get_section_by_name (tmp_bfd.get (), ".plt");
867       if (interp_sect)
868 	{
869 	  info->interp_plt_sect_low =
870 	    bfd_section_vma (tmp_bfd.get (), interp_sect);
871 	  info->interp_plt_sect_low
872 	    += displacement_from_map (ldm, info->interp_plt_sect_low);
873 	  info->interp_plt_sect_high =
874 	    info->interp_plt_sect_low + bfd_section_size (tmp_bfd.get (),
875 							  interp_sect);
876 	}
877 
878       addr = gdb_bfd_lookup_symbol (tmp_bfd.get (), cmp_name,
879 				    "_dl_debug_state");
880       if (addr != 0)
881 	{
882 	  if (solib_dsbt_debug)
883 	    fprintf_unfiltered (gdb_stdlog,
884 				"enable_break: _dl_debug_state (prior to relocation) = %s\n",
885 				hex_string_custom (addr, 8));
886 	  addr += displacement_from_map (ldm, addr);
887 
888 	  if (solib_dsbt_debug)
889 	    fprintf_unfiltered (gdb_stdlog,
890 				"enable_break: _dl_debug_state (after relocation) = %s\n",
891 				hex_string_custom (addr, 8));
892 
893 	  /* Now (finally!) create the solib breakpoint.  */
894 	  create_solib_event_breakpoint (target_gdbarch (), addr);
895 
896 	  ret = 1;
897 	}
898       else
899 	{
900 	  if (solib_dsbt_debug)
901 	    fprintf_unfiltered (gdb_stdlog,
902 				"enable_break: _dl_debug_state is not found\n");
903 	  ret = 0;
904 	}
905 
906       /* We're done with the loadmap.  */
907       xfree (ldm);
908 
909       return ret;
910     }
911 
912   /* Tell the user we couldn't set a dynamic linker breakpoint.  */
913   enable_break_failure_warning ();
914 
915   /* Failure return.  */
916   return 0;
917 }
918 
919 static void
920 dsbt_relocate_main_executable (void)
921 {
922   struct int_elf32_dsbt_loadmap *ldm;
923   struct cleanup *old_chain;
924   struct section_offsets *new_offsets;
925   int changed;
926   struct obj_section *osect;
927   struct dsbt_info *info = get_dsbt_info ();
928 
929   dsbt_get_initial_loadmaps ();
930   ldm = info->exec_loadmap;
931 
932   xfree (info->main_executable_lm_info);
933   info->main_executable_lm_info = XCNEW (struct lm_info);
934   info->main_executable_lm_info->map = ldm;
935 
936   new_offsets = XCNEWVEC (struct section_offsets,
937 			  symfile_objfile->num_sections);
938   old_chain = make_cleanup (xfree, new_offsets);
939   changed = 0;
940 
941   ALL_OBJFILE_OSECTIONS (symfile_objfile, osect)
942     {
943       CORE_ADDR orig_addr, addr, offset;
944       int osect_idx;
945       int seg;
946 
947       osect_idx = osect - symfile_objfile->sections;
948 
949       /* Current address of section.  */
950       addr = obj_section_addr (osect);
951       /* Offset from where this section started.  */
952       offset = ANOFFSET (symfile_objfile->section_offsets, osect_idx);
953       /* Original address prior to any past relocations.  */
954       orig_addr = addr - offset;
955 
956       for (seg = 0; seg < ldm->nsegs; seg++)
957 	{
958 	  if (ldm->segs[seg].p_vaddr <= orig_addr
959 	      && orig_addr < ldm->segs[seg].p_vaddr + ldm->segs[seg].p_memsz)
960 	    {
961 	      new_offsets->offsets[osect_idx]
962 		= ldm->segs[seg].addr - ldm->segs[seg].p_vaddr;
963 
964 	      if (new_offsets->offsets[osect_idx] != offset)
965 		changed = 1;
966 	      break;
967 	    }
968 	}
969     }
970 
971   if (changed)
972     objfile_relocate (symfile_objfile, new_offsets);
973 
974   do_cleanups (old_chain);
975 
976   /* Now that symfile_objfile has been relocated, we can compute the
977      GOT value and stash it away.  */
978 }
979 
980 /* When gdb starts up the inferior, it nurses it along (through the
981    shell) until it is ready to execute it's first instruction.  At this
982    point, this function gets called via solib_create_inferior_hook.
983 
984    For the DSBT shared library, the main executable needs to be relocated.
985    The shared library breakpoints also need to be enabled.  */
986 
987 static void
988 dsbt_solib_create_inferior_hook (int from_tty)
989 {
990   /* Relocate main executable.  */
991   dsbt_relocate_main_executable ();
992 
993   /* Enable shared library breakpoints.  */
994   if (!enable_break ())
995     {
996       warning (_("shared library handler failed to enable breakpoint"));
997       return;
998     }
999 }
1000 
1001 static void
1002 dsbt_clear_solib (void)
1003 {
1004   struct dsbt_info *info = get_dsbt_info ();
1005 
1006   info->lm_base_cache = 0;
1007   info->main_lm_addr = 0;
1008   if (info->main_executable_lm_info != 0)
1009     {
1010       xfree (info->main_executable_lm_info->map);
1011       xfree (info->main_executable_lm_info);
1012       info->main_executable_lm_info = 0;
1013     }
1014 }
1015 
1016 static void
1017 dsbt_free_so (struct so_list *so)
1018 {
1019   xfree (so->lm_info->map);
1020   xfree (so->lm_info);
1021 }
1022 
1023 static void
1024 dsbt_relocate_section_addresses (struct so_list *so,
1025 				 struct target_section *sec)
1026 {
1027   int seg;
1028   struct int_elf32_dsbt_loadmap *map;
1029 
1030   map = so->lm_info->map;
1031 
1032   for (seg = 0; seg < map->nsegs; seg++)
1033     {
1034       if (map->segs[seg].p_vaddr <= sec->addr
1035 	  && sec->addr < map->segs[seg].p_vaddr + map->segs[seg].p_memsz)
1036 	{
1037 	  CORE_ADDR displ = map->segs[seg].addr - map->segs[seg].p_vaddr;
1038 
1039 	  sec->addr += displ;
1040 	  sec->endaddr += displ;
1041 	  break;
1042 	}
1043     }
1044 }
1045 static void
1046 show_dsbt_debug (struct ui_file *file, int from_tty,
1047 		 struct cmd_list_element *c, const char *value)
1048 {
1049   fprintf_filtered (file, _("solib-dsbt debugging is %s.\n"), value);
1050 }
1051 
1052 struct target_so_ops dsbt_so_ops;
1053 
1054 /* Provide a prototype to silence -Wmissing-prototypes.  */
1055 extern initialize_file_ftype _initialize_dsbt_solib;
1056 
1057 void
1058 _initialize_dsbt_solib (void)
1059 {
1060   solib_dsbt_pspace_data
1061     = register_program_space_data_with_cleanup (NULL, dsbt_pspace_data_cleanup);
1062 
1063   dsbt_so_ops.relocate_section_addresses = dsbt_relocate_section_addresses;
1064   dsbt_so_ops.free_so = dsbt_free_so;
1065   dsbt_so_ops.clear_solib = dsbt_clear_solib;
1066   dsbt_so_ops.solib_create_inferior_hook = dsbt_solib_create_inferior_hook;
1067   dsbt_so_ops.current_sos = dsbt_current_sos;
1068   dsbt_so_ops.open_symbol_file_object = open_symbol_file_object;
1069   dsbt_so_ops.in_dynsym_resolve_code = dsbt_in_dynsym_resolve_code;
1070   dsbt_so_ops.bfd_open = solib_bfd_open;
1071 
1072   /* Debug this file's internals.  */
1073   add_setshow_zuinteger_cmd ("solib-dsbt", class_maintenance,
1074 			     &solib_dsbt_debug, _("\
1075 Set internal debugging of shared library code for DSBT ELF."), _("\
1076 Show internal debugging of shared library code for DSBT ELF."), _("\
1077 When non-zero, DSBT solib specific internal debugging is enabled."),
1078 			     NULL,
1079 			     show_dsbt_debug,
1080 			     &setdebuglist, &showdebuglist);
1081 }
1082