kern_ksyms.c revision 1.29 1 1.1 ragge /*
2 1.1 ragge * Copyright (c) 2001, 2003 Anders Magnusson (ragge (at) ludd.luth.se).
3 1.1 ragge * All rights reserved.
4 1.1 ragge *
5 1.1 ragge * Redistribution and use in source and binary forms, with or without
6 1.1 ragge * modification, are permitted provided that the following conditions
7 1.1 ragge * are met:
8 1.1 ragge * 1. Redistributions of source code must retain the above copyright
9 1.1 ragge * notice, this list of conditions and the following disclaimer.
10 1.1 ragge * 2. Redistributions in binary form must reproduce the above copyright
11 1.1 ragge * notice, this list of conditions and the following disclaimer in the
12 1.1 ragge * documentation and/or other materials provided with the distribution.
13 1.1 ragge * 3. The name of the author may not be used to endorse or promote products
14 1.1 ragge * derived from this software without specific prior written permission
15 1.1 ragge *
16 1.1 ragge * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17 1.1 ragge * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 1.1 ragge * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 1.1 ragge * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20 1.1 ragge * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 1.1 ragge * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 1.1 ragge * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 1.1 ragge * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 1.1 ragge * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 1.1 ragge * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 1.1 ragge */
27 1.1 ragge
28 1.1 ragge /*
29 1.1 ragge * Code to deal with in-kernel symbol table management + /dev/ksyms.
30 1.1 ragge *
31 1.1 ragge * For each loaded module the symbol table info is kept track of by a
32 1.1 ragge * struct, placed in a circular list. The first entry is the kernel
33 1.1 ragge * symbol table.
34 1.1 ragge */
35 1.1 ragge
36 1.1 ragge /*
37 1.1 ragge * TODO:
38 1.1 ragge * Change the ugly way of adding new symbols (comes with linker)
39 1.1 ragge * Add kernel locking stuff.
40 1.1 ragge * (Ev) add support for poll.
41 1.1 ragge * (Ev) fix support for mmap.
42 1.1 ragge *
43 1.1 ragge * Export ksyms internal logic for use in post-mortem debuggers?
44 1.1 ragge * Need to move struct symtab to ksyms.h for that.
45 1.1 ragge */
46 1.11 jdolecek
47 1.11 jdolecek #include <sys/cdefs.h>
48 1.29 jmmv __KERNEL_RCSID(0, "$NetBSD: kern_ksyms.c,v 1.29 2006/10/25 13:46:36 jmmv Exp $");
49 1.1 ragge
50 1.1 ragge #ifdef _KERNEL
51 1.1 ragge #include "opt_ddb.h"
52 1.3 ragge #include "opt_ddbparam.h" /* for SYMTAB_SPACE */
53 1.1 ragge #endif
54 1.1 ragge
55 1.1 ragge #include <sys/param.h>
56 1.1 ragge #include <sys/errno.h>
57 1.1 ragge #include <sys/queue.h>
58 1.1 ragge #include <sys/exec.h>
59 1.1 ragge #include <sys/systm.h>
60 1.1 ragge #include <sys/conf.h>
61 1.1 ragge #include <sys/device.h>
62 1.1 ragge #include <sys/malloc.h>
63 1.1 ragge #include <sys/proc.h>
64 1.1 ragge
65 1.1 ragge #include <machine/elf_machdep.h> /* XXX */
66 1.1 ragge #define ELFSIZE ARCH_ELFSIZE
67 1.1 ragge
68 1.1 ragge #include <sys/exec_elf.h>
69 1.1 ragge #include <sys/ksyms.h>
70 1.1 ragge
71 1.1 ragge #include <lib/libkern/libkern.h>
72 1.1 ragge
73 1.1 ragge #ifdef DDB
74 1.1 ragge #include <ddb/db_output.h>
75 1.1 ragge #endif
76 1.1 ragge
77 1.1 ragge #include "ksyms.h"
78 1.1 ragge
79 1.1 ragge static int ksymsinited = 0;
80 1.1 ragge
81 1.1 ragge #if NKSYMS
82 1.1 ragge static void ksyms_hdr_init(caddr_t hdraddr);
83 1.1 ragge static void ksyms_sizes_calc(void);
84 1.1 ragge static int ksyms_isopen;
85 1.5 ragge static int ksyms_maxlen;
86 1.1 ragge #endif
87 1.1 ragge
88 1.1 ragge #ifdef KSYMS_DEBUG
89 1.1 ragge #define FOLLOW_CALLS 1
90 1.1 ragge #define FOLLOW_MORE_CALLS 2
91 1.1 ragge #define FOLLOW_DEVKSYMS 4
92 1.1 ragge static int ksyms_debug;
93 1.1 ragge #endif
94 1.1 ragge
95 1.3 ragge #ifdef SYMTAB_SPACE
96 1.3 ragge #define SYMTAB_FILLER "|This is the symbol table!"
97 1.3 ragge
98 1.3 ragge char db_symtab[SYMTAB_SPACE] = SYMTAB_FILLER;
99 1.3 ragge int db_symtabsize = SYMTAB_SPACE;
100 1.3 ragge #endif
101 1.1 ragge
102 1.1 ragge /*
103 1.1 ragge * Store the different symbol tables in a double-linked list.
104 1.1 ragge */
105 1.1 ragge struct symtab {
106 1.1 ragge CIRCLEQ_ENTRY(symtab) sd_queue;
107 1.9 jdolecek const char *sd_name; /* Name of this table */
108 1.1 ragge Elf_Sym *sd_symstart; /* Address of symbol table */
109 1.1 ragge caddr_t sd_strstart; /* Adderss of corresponding string table */
110 1.17 cube int sd_usroffset; /* Real address for userspace */
111 1.1 ragge int sd_symsize; /* Size in bytes of symbol table */
112 1.1 ragge int sd_strsize; /* Size of string table */
113 1.1 ragge int *sd_symnmoff; /* Used when calculating the name offset */
114 1.1 ragge };
115 1.1 ragge
116 1.1 ragge static CIRCLEQ_HEAD(, symtab) symtab_queue =
117 1.1 ragge CIRCLEQ_HEAD_INITIALIZER(symtab_queue);
118 1.1 ragge
119 1.1 ragge static struct symtab kernel_symtab;
120 1.1 ragge
121 1.8 ragge #define USE_PTREE
122 1.8 ragge #ifdef USE_PTREE
123 1.8 ragge /*
124 1.8 ragge * Patricia-tree-based lookup structure for the in-kernel global symbols.
125 1.8 ragge * Based on a design by Mikael Sundstrom, msm (at) sm.luth.se.
126 1.8 ragge */
127 1.8 ragge struct ptree {
128 1.8 ragge int16_t bitno;
129 1.8 ragge int16_t lr[2];
130 1.8 ragge } *symb;
131 1.8 ragge static int16_t baseidx;
132 1.8 ragge static int treex = 1;
133 1.8 ragge
134 1.8 ragge #define P_BIT(key, bit) ((key[bit >> 3] >> (bit & 7)) & 1)
135 1.8 ragge #define STRING(idx) kernel_symtab.sd_symstart[idx].st_name + \
136 1.8 ragge kernel_symtab.sd_strstart
137 1.8 ragge
138 1.8 ragge /*
139 1.8 ragge * Walk down the tree until a terminal node is found.
140 1.8 ragge */
141 1.8 ragge static int
142 1.24 christos symbol_traverse(const char *key)
143 1.8 ragge {
144 1.8 ragge int16_t nb, rbit = baseidx;
145 1.8 ragge
146 1.8 ragge while (rbit > 0) {
147 1.8 ragge nb = symb[rbit].bitno;
148 1.8 ragge rbit = symb[rbit].lr[P_BIT(key, nb)];
149 1.8 ragge }
150 1.8 ragge return -rbit;
151 1.8 ragge }
152 1.8 ragge
153 1.8 ragge static int
154 1.8 ragge ptree_add(char *key, int val)
155 1.8 ragge {
156 1.8 ragge int idx;
157 1.15 christos int nix, cix, bit, rbit, sb, lastrbit, svbit = 0, ix;
158 1.8 ragge char *m, *k;
159 1.8 ragge
160 1.8 ragge if (baseidx == 0) {
161 1.8 ragge baseidx = -val;
162 1.8 ragge return 0; /* First element */
163 1.8 ragge }
164 1.8 ragge
165 1.8 ragge /* Get string to match against */
166 1.8 ragge idx = symbol_traverse(key);
167 1.8 ragge
168 1.8 ragge /* Find first mismatching bit */
169 1.8 ragge m = STRING(idx);
170 1.8 ragge k = key;
171 1.8 ragge if (strcmp(m, k) == 0)
172 1.8 ragge return 1;
173 1.8 ragge
174 1.8 ragge for (cix = 0; *m && *k && *m == *k; m++, k++, cix += 8)
175 1.8 ragge ;
176 1.8 ragge ix = ffs((int)*m ^ (int)*k) - 1;
177 1.8 ragge cix += ix;
178 1.8 ragge
179 1.8 ragge /* Create new node */
180 1.8 ragge nix = treex++;
181 1.8 ragge bit = P_BIT(key, cix);
182 1.8 ragge symb[nix].bitno = cix;
183 1.8 ragge symb[nix].lr[bit] = -val;
184 1.8 ragge
185 1.8 ragge /* Find where to insert node */
186 1.8 ragge rbit = baseidx;
187 1.8 ragge lastrbit = 0;
188 1.8 ragge for (;;) {
189 1.8 ragge if (rbit < 0)
190 1.8 ragge break;
191 1.8 ragge sb = symb[rbit].bitno;
192 1.8 ragge if (sb > cix)
193 1.8 ragge break;
194 1.8 ragge if (sb == cix)
195 1.8 ragge printf("symb[rbit].bitno == cix!!!\n");
196 1.8 ragge lastrbit = rbit;
197 1.8 ragge svbit = P_BIT(key, sb);
198 1.8 ragge rbit = symb[rbit].lr[svbit];
199 1.8 ragge }
200 1.8 ragge
201 1.8 ragge /* Do the actual insertion */
202 1.8 ragge if (lastrbit == 0) {
203 1.8 ragge /* first element */
204 1.8 ragge symb[nix].lr[!bit] = baseidx;
205 1.8 ragge baseidx = nix;
206 1.8 ragge } else {
207 1.8 ragge symb[nix].lr[!bit] = rbit;
208 1.8 ragge symb[lastrbit].lr[svbit] = nix;
209 1.8 ragge }
210 1.8 ragge return 0;
211 1.8 ragge }
212 1.8 ragge
213 1.8 ragge static int
214 1.24 christos ptree_find(const char *key)
215 1.8 ragge {
216 1.8 ragge int idx;
217 1.8 ragge
218 1.8 ragge if (baseidx == 0)
219 1.8 ragge return 0;
220 1.8 ragge idx = symbol_traverse(key);
221 1.8 ragge
222 1.8 ragge if (strcmp(key, STRING(idx)) == 0)
223 1.8 ragge return idx;
224 1.8 ragge return 0;
225 1.8 ragge }
226 1.8 ragge
227 1.8 ragge static void
228 1.8 ragge ptree_gen(char *off, struct symtab *tab)
229 1.8 ragge {
230 1.8 ragge Elf_Sym *sym;
231 1.16 ragge int i, nsym;
232 1.8 ragge
233 1.8 ragge if (off != NULL)
234 1.8 ragge symb = (struct ptree *)ALIGN(off);
235 1.8 ragge else
236 1.8 ragge symb = malloc((tab->sd_symsize/sizeof(Elf_Sym)) *
237 1.8 ragge sizeof(struct ptree), M_DEVBUF, M_WAITOK);
238 1.8 ragge symb--; /* sym index won't be 0 */
239 1.8 ragge
240 1.8 ragge sym = tab->sd_symstart;
241 1.16 ragge if ((nsym = tab->sd_symsize/sizeof(Elf_Sym)) > INT16_MAX) {
242 1.16 ragge printf("Too many symbols for tree, skipping %d symbols\n",
243 1.16 ragge nsym-INT16_MAX);
244 1.16 ragge nsym = INT16_MAX;
245 1.16 ragge }
246 1.16 ragge for (i = 1; i < nsym; i++) {
247 1.8 ragge if (ELF_ST_BIND(sym[i].st_info) != STB_GLOBAL)
248 1.8 ragge continue;
249 1.8 ragge ptree_add(tab->sd_strstart+sym[i].st_name, i);
250 1.8 ragge }
251 1.8 ragge }
252 1.25 thorpej #endif /* USE_PTREE */
253 1.8 ragge
254 1.1 ragge /*
255 1.1 ragge * Finds a certain symbol name in a certain symbol table.
256 1.1 ragge */
257 1.1 ragge static Elf_Sym *
258 1.24 christos findsym(const char *name, struct symtab *table)
259 1.1 ragge {
260 1.1 ragge Elf_Sym *start = table->sd_symstart;
261 1.1 ragge int i, sz = table->sd_symsize/sizeof(Elf_Sym);
262 1.1 ragge char *np;
263 1.22 cube caddr_t realstart = table->sd_strstart - table->sd_usroffset;
264 1.1 ragge
265 1.8 ragge #ifdef USE_PTREE
266 1.8 ragge if (table == &kernel_symtab && (i = ptree_find(name)) != 0)
267 1.8 ragge return &start[i];
268 1.8 ragge #endif
269 1.8 ragge
270 1.1 ragge for (i = 0; i < sz; i++) {
271 1.17 cube np = realstart + start[i].st_name;
272 1.1 ragge if (name[0] == np[0] && name[1] == np[1] &&
273 1.1 ragge strcmp(name, np) == 0)
274 1.1 ragge return &start[i];
275 1.1 ragge }
276 1.1 ragge return NULL;
277 1.1 ragge }
278 1.1 ragge
279 1.1 ragge /*
280 1.1 ragge * The "attach" is in reality done in ksyms_init().
281 1.1 ragge */
282 1.1 ragge void ksymsattach(int);
283 1.1 ragge void
284 1.28 christos ksymsattach(int arg __unused)
285 1.1 ragge {
286 1.8 ragge
287 1.8 ragge #ifdef USE_PTREE
288 1.8 ragge if (baseidx == 0)
289 1.8 ragge ptree_gen(0, &kernel_symtab);
290 1.8 ragge #endif
291 1.8 ragge
292 1.1 ragge }
293 1.1 ragge
294 1.1 ragge /*
295 1.29 jmmv * Add a symbol table.
296 1.29 jmmv * This is intended for use when the symbol table and its corresponding
297 1.29 jmmv * string table are easily available. If they are embedded in an ELF
298 1.29 jmmv * image, use addsymtab_elf() instead.
299 1.29 jmmv *
300 1.29 jmmv * name - Symbol's table name.
301 1.29 jmmv * symstart, symsize - Address and size of the symbol table.
302 1.29 jmmv * strstart, strsize - Address and size of the string table.
303 1.29 jmmv * tab - Symbol table to be updated with this information.
304 1.29 jmmv * newstart - Address to which the symbol table has to be copied during
305 1.29 jmmv * shrinking. If NULL, it is not moved.
306 1.1 ragge */
307 1.1 ragge static void
308 1.29 jmmv addsymtab(const char *name,
309 1.29 jmmv caddr_t symstart, size_t symsize,
310 1.29 jmmv caddr_t strstart, size_t strsize,
311 1.29 jmmv struct symtab *tab,
312 1.29 jmmv caddr_t newstart)
313 1.1 ragge {
314 1.8 ragge caddr_t send;
315 1.8 ragge Elf_Sym *sym, *nsym;
316 1.29 jmmv int i, n, g;
317 1.8 ragge char *str;
318 1.1 ragge
319 1.29 jmmv if (newstart == NULL)
320 1.29 jmmv newstart = symstart;
321 1.29 jmmv KASSERT(newstart <= symstart && symstart <= strstart);
322 1.29 jmmv
323 1.29 jmmv tab->sd_symstart = (Elf_Sym *)symstart;
324 1.29 jmmv tab->sd_symsize = symsize;
325 1.29 jmmv tab->sd_strstart = strstart;
326 1.29 jmmv tab->sd_strsize = strsize;
327 1.1 ragge tab->sd_name = name;
328 1.8 ragge send = tab->sd_strstart + tab->sd_strsize;
329 1.8 ragge
330 1.8 ragge #ifdef KSYMS_DEBUG
331 1.29 jmmv printf("newstart %p sym %p symsz %d str %p strsz %d send %p\n",
332 1.29 jmmv newstart, symstart, symsize, strstart, strsize, send);
333 1.8 ragge #endif
334 1.1 ragge
335 1.8 ragge /*
336 1.8 ragge * Pack symbol table by removing all file name references
337 1.8 ragge * and overwrite the elf header.
338 1.8 ragge */
339 1.8 ragge sym = tab->sd_symstart;
340 1.29 jmmv nsym = (Elf_Sym *)newstart;
341 1.8 ragge str = tab->sd_strstart;
342 1.8 ragge for (g = i = n = 0; i < tab->sd_symsize/sizeof(Elf_Sym); i++) {
343 1.8 ragge if (i == 0) {
344 1.8 ragge nsym[n++] = sym[i];
345 1.8 ragge continue;
346 1.8 ragge }
347 1.8 ragge /*
348 1.8 ragge * Remove useless symbols.
349 1.8 ragge * Should actually remove all typeless symbols.
350 1.8 ragge */
351 1.5 ragge if (sym[i].st_name == 0)
352 1.8 ragge continue; /* Skip nameless entries */
353 1.8 ragge if (ELF_ST_TYPE(sym[i].st_info) == STT_FILE)
354 1.8 ragge continue; /* Skip filenames */
355 1.8 ragge if (ELF_ST_TYPE(sym[i].st_info) == STT_NOTYPE &&
356 1.8 ragge sym[i].st_value == 0 &&
357 1.8 ragge strcmp(str + sym[i].st_name, "*ABS*") == 0)
358 1.8 ragge continue; /* XXX */
359 1.8 ragge if (ELF_ST_TYPE(sym[i].st_info) == STT_NOTYPE &&
360 1.8 ragge strcmp(str + sym[i].st_name, "gcc2_compiled.") == 0)
361 1.8 ragge continue; /* XXX */
362 1.8 ragge
363 1.8 ragge #ifndef DDB
364 1.8 ragge /* Only need global symbols */
365 1.8 ragge if (ELF_ST_BIND(sym[i].st_info) != STB_GLOBAL)
366 1.5 ragge continue;
367 1.8 ragge #endif
368 1.8 ragge
369 1.8 ragge /* Save symbol. Set it as an absolute offset */
370 1.8 ragge nsym[n] = sym[i];
371 1.8 ragge nsym[n].st_shndx = SHN_ABS;
372 1.8 ragge if (ELF_ST_BIND(nsym[n].st_info) == STB_GLOBAL)
373 1.8 ragge g++;
374 1.6 tron #if NKSYMS
375 1.29 jmmv {
376 1.29 jmmv int j;
377 1.29 jmmv j = strlen(nsym[n].st_name + tab->sd_strstart) + 1;
378 1.29 jmmv if (j > ksyms_maxlen)
379 1.29 jmmv ksyms_maxlen = j;
380 1.29 jmmv }
381 1.6 tron #endif
382 1.8 ragge n++;
383 1.8 ragge
384 1.5 ragge }
385 1.8 ragge tab->sd_symstart = nsym;
386 1.8 ragge tab->sd_symsize = n * sizeof(Elf_Sym);
387 1.8 ragge
388 1.8 ragge #ifdef notyet
389 1.8 ragge /*
390 1.8 ragge * Remove left-over strings.
391 1.8 ragge */
392 1.8 ragge sym = tab->sd_symstart;
393 1.8 ragge str = (caddr_t)tab->sd_symstart + tab->sd_symsize;
394 1.8 ragge str[0] = 0;
395 1.8 ragge n = 1;
396 1.8 ragge for (i = 1; i < tab->sd_symsize/sizeof(Elf_Sym); i++) {
397 1.10 itojun strcpy(str + n, tab->sd_strstart + sym[i].st_name);
398 1.8 ragge sym[i].st_name = n;
399 1.8 ragge n += strlen(str+n) + 1;
400 1.8 ragge }
401 1.8 ragge tab->sd_strstart = str;
402 1.8 ragge tab->sd_strsize = n;
403 1.8 ragge
404 1.8 ragge #ifdef KSYMS_DEBUG
405 1.8 ragge printf("str %p strsz %d send %p\n", str, n, send);
406 1.8 ragge #endif
407 1.8 ragge #endif
408 1.1 ragge
409 1.1 ragge CIRCLEQ_INSERT_HEAD(&symtab_queue, tab, sd_queue);
410 1.8 ragge
411 1.8 ragge #ifdef notyet
412 1.8 ragge #ifdef USE_PTREE
413 1.8 ragge /* Try to use the freed space, if possible */
414 1.8 ragge if (send - str - n > g * sizeof(struct ptree))
415 1.8 ragge ptree_gen(str + n, tab);
416 1.8 ragge #endif
417 1.8 ragge #endif
418 1.1 ragge }
419 1.1 ragge
420 1.1 ragge /*
421 1.29 jmmv * Add a symbol table named name.
422 1.29 jmmv * This is intended for use when the kernel loader enters the table.
423 1.29 jmmv */
424 1.29 jmmv static void
425 1.29 jmmv addsymtab_elf(const char *name, Elf_Ehdr *ehdr, struct symtab *tab)
426 1.29 jmmv {
427 1.29 jmmv int i, j;
428 1.29 jmmv caddr_t start = (caddr_t)ehdr;
429 1.29 jmmv Elf_Shdr *shdr;
430 1.29 jmmv caddr_t symstart = NULL, strstart = NULL;
431 1.29 jmmv size_t symsize = 0, strsize = 0;
432 1.29 jmmv
433 1.29 jmmv /* Find the symbol table and the corresponding string table. */
434 1.29 jmmv shdr = (Elf_Shdr *)(start + ehdr->e_shoff);
435 1.29 jmmv for (i = 1; i < ehdr->e_shnum; i++) {
436 1.29 jmmv if (shdr[i].sh_type != SHT_SYMTAB)
437 1.29 jmmv continue;
438 1.29 jmmv if (shdr[i].sh_offset == 0)
439 1.29 jmmv continue;
440 1.29 jmmv symstart = start + shdr[i].sh_offset;
441 1.29 jmmv symsize = shdr[i].sh_size;
442 1.29 jmmv j = shdr[i].sh_link;
443 1.29 jmmv if (shdr[j].sh_offset == 0)
444 1.29 jmmv continue; /* Can this happen? */
445 1.29 jmmv strstart = start + shdr[j].sh_offset;
446 1.29 jmmv strsize = shdr[j].sh_size;
447 1.29 jmmv break;
448 1.29 jmmv }
449 1.29 jmmv
450 1.29 jmmv KASSERT(symstart != NULL && strstart != NULL);
451 1.29 jmmv
452 1.29 jmmv addsymtab(name, symstart, symsize, strstart, strsize, tab, start);
453 1.29 jmmv }
454 1.29 jmmv
455 1.29 jmmv /*
456 1.1 ragge * Setup the kernel symbol table stuff.
457 1.1 ragge */
458 1.1 ragge void
459 1.28 christos ksyms_init(int symsize, void *start, void *end __unused)
460 1.1 ragge {
461 1.3 ragge Elf_Ehdr *ehdr;
462 1.3 ragge
463 1.3 ragge #ifdef SYMTAB_SPACE
464 1.3 ragge if (symsize <= 0 &&
465 1.3 ragge strncmp(db_symtab, SYMTAB_FILLER, sizeof(SYMTAB_FILLER))) {
466 1.3 ragge symsize = db_symtabsize;
467 1.3 ragge start = db_symtab;
468 1.3 ragge end = db_symtab + db_symtabsize;
469 1.3 ragge }
470 1.3 ragge #endif
471 1.3 ragge if (symsize <= 0) {
472 1.3 ragge printf("[ Kernel symbol table missing! ]\n");
473 1.3 ragge return;
474 1.3 ragge }
475 1.3 ragge
476 1.3 ragge /* Sanity check */
477 1.3 ragge if (ALIGNED_POINTER(start, long) == 0) {
478 1.3 ragge printf("[ Kernel symbol table has bad start address %p ]\n",
479 1.3 ragge start);
480 1.3 ragge return;
481 1.3 ragge }
482 1.3 ragge
483 1.3 ragge ehdr = (Elf_Ehdr *)start;
484 1.1 ragge
485 1.1 ragge /* check if this is a valid ELF header */
486 1.1 ragge /* No reason to verify arch type, the kernel is actually running! */
487 1.1 ragge if (memcmp(ehdr->e_ident, ELFMAG, SELFMAG) ||
488 1.1 ragge ehdr->e_ident[EI_CLASS] != ELFCLASS ||
489 1.1 ragge ehdr->e_version > 1) {
490 1.3 ragge #ifdef notyet /* DDB */
491 1.3 ragge if (ddb_init(symsize, start, end))
492 1.3 ragge return; /* old-style symbol table */
493 1.3 ragge #endif
494 1.3 ragge printf("[ Kernel symbol table invalid! ]\n");
495 1.1 ragge return; /* nothing to do */
496 1.1 ragge }
497 1.1 ragge
498 1.8 ragge #if NKSYMS
499 1.8 ragge /* Loaded header will be scratched in addsymtab */
500 1.8 ragge ksyms_hdr_init(start);
501 1.8 ragge #endif
502 1.8 ragge
503 1.29 jmmv addsymtab_elf("netbsd", ehdr, &kernel_symtab);
504 1.8 ragge
505 1.1 ragge #if NKSYMS
506 1.1 ragge ksyms_sizes_calc();
507 1.1 ragge #endif
508 1.8 ragge
509 1.1 ragge ksymsinited = 1;
510 1.8 ragge
511 1.1 ragge #ifdef DEBUG
512 1.1 ragge printf("Loaded initial symtab at %p, strtab at %p, # entries %ld\n",
513 1.1 ragge kernel_symtab.sd_symstart, kernel_symtab.sd_strstart,
514 1.2 ragge (long)kernel_symtab.sd_symsize/sizeof(Elf_Sym));
515 1.1 ragge #endif
516 1.1 ragge }
517 1.1 ragge
518 1.1 ragge /*
519 1.29 jmmv * Setup the kernel symbol table stuff.
520 1.29 jmmv * Use this when the address of the symbol and string tables are known;
521 1.29 jmmv * otherwise use ksyms_init with an ELF image.
522 1.29 jmmv */
523 1.29 jmmv void
524 1.29 jmmv ksyms_init_explicit(caddr_t symstart, size_t symsize,
525 1.29 jmmv caddr_t strstart, size_t strsize)
526 1.29 jmmv {
527 1.29 jmmv
528 1.29 jmmv KASSERT(symstart != NULL);
529 1.29 jmmv KASSERT(strstart != NULL);
530 1.29 jmmv KASSERT(symstart <= strstart);
531 1.29 jmmv
532 1.29 jmmv addsymtab("netbsd", symstart, symsize, strstart, strsize,
533 1.29 jmmv &kernel_symtab, NULL);
534 1.29 jmmv
535 1.29 jmmv #if NKSYMS
536 1.29 jmmv ksyms_sizes_calc();
537 1.29 jmmv #endif
538 1.29 jmmv
539 1.29 jmmv ksymsinited = 1;
540 1.29 jmmv }
541 1.29 jmmv
542 1.29 jmmv /*
543 1.1 ragge * Get the value associated with a symbol.
544 1.23 perry * "mod" is the module name, or null if any module.
545 1.1 ragge * "sym" is the symbol name.
546 1.1 ragge * "val" is a pointer to the corresponding value, if call succeeded.
547 1.1 ragge * Returns 0 if success or ENOENT if no such entry.
548 1.1 ragge */
549 1.1 ragge int
550 1.24 christos ksyms_getval(const char *mod, const char *sym, unsigned long *val, int type)
551 1.1 ragge {
552 1.1 ragge struct symtab *st;
553 1.1 ragge Elf_Sym *es;
554 1.1 ragge
555 1.1 ragge if (ksymsinited == 0)
556 1.1 ragge return ENOENT;
557 1.1 ragge
558 1.1 ragge #ifdef KSYMS_DEBUG
559 1.1 ragge if (ksyms_debug & FOLLOW_CALLS)
560 1.1 ragge printf("ksyms_getval: mod %s sym %s valp %p\n", mod, sym, val);
561 1.1 ragge #endif
562 1.1 ragge
563 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
564 1.1 ragge if (mod && strcmp(st->sd_name, mod))
565 1.1 ragge continue;
566 1.22 cube if ((es = findsym(sym, st)) == NULL)
567 1.1 ragge continue;
568 1.1 ragge
569 1.1 ragge /* Skip if bad binding */
570 1.1 ragge if (type == KSYMS_EXTERN &&
571 1.1 ragge ELF_ST_BIND(es->st_info) != STB_GLOBAL)
572 1.1 ragge continue;
573 1.1 ragge
574 1.1 ragge if (val)
575 1.1 ragge *val = es->st_value;
576 1.1 ragge return 0;
577 1.1 ragge }
578 1.1 ragge return ENOENT;
579 1.1 ragge }
580 1.1 ragge
581 1.1 ragge /*
582 1.1 ragge * Get "mod" and "symbol" associated with an address.
583 1.1 ragge * Returns 0 if success or ENOENT if no such entry.
584 1.1 ragge */
585 1.1 ragge int
586 1.24 christos ksyms_getname(const char **mod, const char **sym, vaddr_t v, int f)
587 1.1 ragge {
588 1.1 ragge struct symtab *st;
589 1.1 ragge Elf_Sym *les, *es = NULL;
590 1.1 ragge vaddr_t laddr = 0;
591 1.15 christos const char *lmod = NULL;
592 1.15 christos char *stable = NULL;
593 1.1 ragge int type, i, sz;
594 1.1 ragge
595 1.1 ragge if (ksymsinited == 0)
596 1.1 ragge return ENOENT;
597 1.1 ragge
598 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
599 1.1 ragge sz = st->sd_symsize/sizeof(Elf_Sym);
600 1.1 ragge for (i = 0; i < sz; i++) {
601 1.1 ragge les = st->sd_symstart + i;
602 1.1 ragge type = ELF_ST_TYPE(les->st_info);
603 1.1 ragge
604 1.1 ragge if ((f & KSYMS_PROC) && (type != STT_FUNC))
605 1.1 ragge continue;
606 1.1 ragge
607 1.1 ragge if (type == STT_NOTYPE)
608 1.1 ragge continue;
609 1.1 ragge
610 1.1 ragge if (((f & KSYMS_ANY) == 0) &&
611 1.1 ragge (type != STT_FUNC) && (type != STT_OBJECT))
612 1.1 ragge continue;
613 1.1 ragge
614 1.1 ragge if ((les->st_value <= v) && (les->st_value > laddr)) {
615 1.1 ragge laddr = les->st_value;
616 1.1 ragge es = les;
617 1.1 ragge lmod = st->sd_name;
618 1.17 cube stable = st->sd_strstart - st->sd_usroffset;
619 1.1 ragge }
620 1.1 ragge }
621 1.1 ragge }
622 1.1 ragge if (es == NULL)
623 1.1 ragge return ENOENT;
624 1.1 ragge if ((f & KSYMS_EXACT) && (v != es->st_value))
625 1.1 ragge return ENOENT;
626 1.1 ragge if (mod)
627 1.1 ragge *mod = lmod;
628 1.1 ragge if (sym)
629 1.1 ragge *sym = stable + es->st_name;
630 1.1 ragge return 0;
631 1.1 ragge }
632 1.1 ragge
633 1.1 ragge #if NKSYMS
634 1.1 ragge static int symsz, strsz;
635 1.1 ragge
636 1.22 cube /*
637 1.22 cube * In case we exposing the symbol table to the userland using the pseudo-
638 1.22 cube * device /dev/ksyms, it is easier to provide all the tables as one.
639 1.22 cube * However, it means we have to change all the st_name fields for the
640 1.22 cube * symbols so they match the ELF image that the userland will read
641 1.22 cube * through the device.
642 1.22 cube *
643 1.22 cube * The actual (correct) value of st_name is preserved through a global
644 1.22 cube * offset stored in the symbol table structure.
645 1.22 cube */
646 1.22 cube
647 1.1 ragge static void
648 1.1 ragge ksyms_sizes_calc(void)
649 1.23 perry {
650 1.23 perry struct symtab *st;
651 1.1 ragge int i;
652 1.1 ragge
653 1.1 ragge symsz = strsz = 0;
654 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
655 1.1 ragge if (st != &kernel_symtab) {
656 1.1 ragge for (i = 0; i < st->sd_symsize/sizeof(Elf_Sym); i++)
657 1.1 ragge st->sd_symstart[i].st_name =
658 1.1 ragge strsz + st->sd_symnmoff[i];
659 1.17 cube st->sd_usroffset = strsz;
660 1.1 ragge }
661 1.1 ragge symsz += st->sd_symsize;
662 1.1 ragge strsz += st->sd_strsize;
663 1.17 cube }
664 1.1 ragge }
665 1.25 thorpej #endif /* NKSYMS */
666 1.1 ragge
667 1.1 ragge /*
668 1.20 matt * Temporary work structure for dynamic loaded symbol tables.
669 1.1 ragge * Will go away when in-kernel linker is in place.
670 1.1 ragge */
671 1.20 matt
672 1.20 matt struct syminfo {
673 1.20 matt size_t cursyms;
674 1.20 matt size_t curnamep;
675 1.20 matt size_t maxsyms;
676 1.20 matt size_t maxnamep;
677 1.20 matt Elf_Sym *syms;
678 1.20 matt int *symnmoff;
679 1.20 matt char *symnames;
680 1.20 matt };
681 1.23 perry
682 1.1 ragge
683 1.1 ragge /*
684 1.1 ragge * Add a symbol to the temporary save area for symbols.
685 1.1 ragge * This routine will go away when the in-kernel linker is in place.
686 1.1 ragge */
687 1.1 ragge static void
688 1.20 matt addsym(struct syminfo *info, const Elf_Sym *sym, const char *name,
689 1.20 matt const char *mod)
690 1.1 ragge {
691 1.20 matt int len, mlen;
692 1.1 ragge
693 1.1 ragge #ifdef KSYMS_DEBUG
694 1.1 ragge if (ksyms_debug & FOLLOW_MORE_CALLS)
695 1.1 ragge printf("addsym: name %s val %lx\n", name, (long)sym->st_value);
696 1.1 ragge #endif
697 1.20 matt len = strlen(name) + 1;
698 1.20 matt if (mod)
699 1.20 matt mlen = 1 + strlen(mod);
700 1.20 matt else
701 1.20 matt mlen = 0;
702 1.23 perry if (info->cursyms == info->maxsyms ||
703 1.20 matt (len + mlen + info->curnamep) > info->maxnamep) {
704 1.19 matt printf("addsym: too many symbols, skipping '%s'\n", name);
705 1.1 ragge return;
706 1.1 ragge }
707 1.20 matt strlcpy(&info->symnames[info->curnamep], name,
708 1.20 matt info->maxnamep - info->curnamep);
709 1.20 matt if (mlen) {
710 1.20 matt info->symnames[info->curnamep + len - 1] = '.';
711 1.20 matt strlcpy(&info->symnames[info->curnamep + len], mod,
712 1.20 matt info->maxnamep - (info->curnamep + len));
713 1.20 matt len += mlen;
714 1.20 matt }
715 1.20 matt info->syms[info->cursyms] = *sym;
716 1.20 matt info->syms[info->cursyms].st_name = info->curnamep;
717 1.20 matt info->symnmoff[info->cursyms] = info->curnamep;
718 1.20 matt info->curnamep += len;
719 1.7 ragge #if NKSYMS
720 1.5 ragge if (len > ksyms_maxlen)
721 1.5 ragge ksyms_maxlen = len;
722 1.6 tron #endif
723 1.20 matt info->cursyms++;
724 1.1 ragge }
725 1.1 ragge /*
726 1.1 ragge * Adds a symbol table.
727 1.1 ragge * "name" is the module name, "start" and "size" is where the symbol table
728 1.1 ragge * is located, and "type" is in which binary format the symbol table is.
729 1.1 ragge * New memory for keeping the symbol table is allocated in this function.
730 1.1 ragge * Returns 0 if success and EEXIST if the module name is in use.
731 1.1 ragge */
732 1.21 matt static int
733 1.21 matt specialsym(const char *symname)
734 1.21 matt {
735 1.21 matt return !strcmp(symname, "_bss_start") ||
736 1.21 matt !strcmp(symname, "__bss_start") ||
737 1.21 matt !strcmp(symname, "_bss_end__") ||
738 1.21 matt !strcmp(symname, "__bss_end__") ||
739 1.21 matt !strcmp(symname, "_edata") ||
740 1.21 matt !strcmp(symname, "_end") ||
741 1.21 matt !strcmp(symname, "__end") ||
742 1.21 matt !strcmp(symname, "__end__") ||
743 1.21 matt !strncmp(symname, "__start_link_set_", 17) ||
744 1.21 matt !strncmp(symname, "__stop_link_set_", 16);
745 1.21 matt }
746 1.21 matt
747 1.1 ragge int
748 1.9 jdolecek ksyms_addsymtab(const char *mod, void *symstart, vsize_t symsize,
749 1.28 christos char *strstart, vsize_t strsize __unused)
750 1.1 ragge {
751 1.1 ragge Elf_Sym *sym = symstart;
752 1.1 ragge struct symtab *st;
753 1.14 ragge unsigned long rval;
754 1.1 ragge int i;
755 1.20 matt char *name;
756 1.20 matt struct syminfo info;
757 1.1 ragge
758 1.1 ragge #ifdef KSYMS_DEBUG
759 1.1 ragge if (ksyms_debug & FOLLOW_CALLS)
760 1.1 ragge printf("ksyms_addsymtab: mod %s symsize %lx strsize %lx\n",
761 1.1 ragge mod, symsize, strsize);
762 1.1 ragge #endif
763 1.1 ragge
764 1.1 ragge #if NKSYMS
765 1.1 ragge /*
766 1.1 ragge * Do not try to add a symbol table while someone is reading
767 1.1 ragge * from /dev/ksyms.
768 1.1 ragge */
769 1.1 ragge while (ksyms_isopen != 0)
770 1.1 ragge tsleep(&ksyms_isopen, PWAIT, "ksyms", 0);
771 1.1 ragge #endif
772 1.1 ragge
773 1.1 ragge /* Check if this symtab already loaded */
774 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
775 1.1 ragge if (strcmp(mod, st->sd_name) == 0)
776 1.1 ragge return EEXIST;
777 1.1 ragge }
778 1.1 ragge
779 1.1 ragge /*
780 1.1 ragge * XXX - Only add a symbol if it do not exist already.
781 1.1 ragge * This is because of a flaw in the current LKM implementation,
782 1.20 matt * these loops will be removed once the in-kernel linker is in place.
783 1.1 ragge */
784 1.20 matt memset(&info, 0, sizeof(info));
785 1.1 ragge for (i = 0; i < symsize/sizeof(Elf_Sym); i++) {
786 1.20 matt char * const symname = strstart + sym[i].st_name;
787 1.1 ragge if (sym[i].st_name == 0)
788 1.1 ragge continue; /* Just ignore */
789 1.1 ragge
790 1.1 ragge /* check validity of the symbol */
791 1.1 ragge /* XXX - save local symbols if DDB */
792 1.1 ragge if (ELF_ST_BIND(sym[i].st_info) != STB_GLOBAL)
793 1.1 ragge continue;
794 1.23 perry
795 1.1 ragge /* Check if the symbol exists */
796 1.22 cube if (ksyms_getval(NULL, symname, &rval, KSYMS_EXTERN) == 0) {
797 1.1 ragge /* Check (and complain) about differing values */
798 1.1 ragge if (sym[i].st_value != rval) {
799 1.21 matt if (specialsym(symname)) {
800 1.20 matt info.maxsyms++;
801 1.20 matt info.maxnamep += strlen(symname) + 1 +
802 1.20 matt strlen(mod) + 1;
803 1.20 matt } else {
804 1.20 matt printf("%s: symbol '%s' redeclared with"
805 1.20 matt " different value (%lx != %lx)\n",
806 1.20 matt mod, symname,
807 1.20 matt rval, (long)sym[i].st_value);
808 1.20 matt }
809 1.20 matt }
810 1.20 matt } else {
811 1.20 matt /*
812 1.20 matt * Count this symbol
813 1.20 matt */
814 1.20 matt info.maxsyms++;
815 1.20 matt info.maxnamep += strlen(symname) + 1;
816 1.20 matt }
817 1.20 matt }
818 1.20 matt
819 1.20 matt /*
820 1.20 matt * Now that we know the sizes, malloc the structures.
821 1.20 matt */
822 1.20 matt info.syms = malloc(sizeof(Elf_Sym)*info.maxsyms, M_DEVBUF, M_WAITOK);
823 1.20 matt info.symnames = malloc(info.maxnamep, M_DEVBUF, M_WAITOK);
824 1.20 matt info.symnmoff = malloc(sizeof(int)*info.maxsyms, M_DEVBUF, M_WAITOK);
825 1.20 matt
826 1.20 matt /*
827 1.20 matt * Now that we have the symbols, actually fill in the structures.
828 1.20 matt */
829 1.20 matt for (i = 0; i < symsize/sizeof(Elf_Sym); i++) {
830 1.20 matt char * const symname = strstart + sym[i].st_name;
831 1.20 matt if (sym[i].st_name == 0)
832 1.20 matt continue; /* Just ignore */
833 1.20 matt
834 1.20 matt /* check validity of the symbol */
835 1.20 matt /* XXX - save local symbols if DDB */
836 1.20 matt if (ELF_ST_BIND(sym[i].st_info) != STB_GLOBAL)
837 1.20 matt continue;
838 1.23 perry
839 1.20 matt /* Check if the symbol exists */
840 1.22 cube if (ksyms_getval(NULL, symname, &rval, KSYMS_EXTERN) == 0) {
841 1.21 matt if ((sym[i].st_value != rval) && specialsym(symname)) {
842 1.20 matt addsym(&info, &sym[i], symname, mod);
843 1.1 ragge }
844 1.1 ragge } else
845 1.1 ragge /* Ok, save this symbol */
846 1.20 matt addsym(&info, &sym[i], symname, NULL);
847 1.1 ragge }
848 1.5 ragge
849 1.1 ragge st = malloc(sizeof(struct symtab), M_DEVBUF, M_WAITOK);
850 1.10 itojun i = strlen(mod) + 1;
851 1.10 itojun name = malloc(i, M_DEVBUF, M_WAITOK);
852 1.10 itojun strlcpy(name, mod, i);
853 1.9 jdolecek st->sd_name = name;
854 1.20 matt st->sd_symnmoff = info.symnmoff;
855 1.20 matt st->sd_symstart = info.syms;
856 1.20 matt st->sd_symsize = sizeof(Elf_Sym)*info.maxsyms;
857 1.20 matt st->sd_strstart = info.symnames;
858 1.20 matt st->sd_strsize = info.maxnamep;
859 1.1 ragge
860 1.1 ragge /* Make them absolute references */
861 1.1 ragge sym = st->sd_symstart;
862 1.1 ragge for (i = 0; i < st->sd_symsize/sizeof(Elf_Sym); i++)
863 1.1 ragge sym[i].st_shndx = SHN_ABS;
864 1.1 ragge
865 1.1 ragge CIRCLEQ_INSERT_TAIL(&symtab_queue, st, sd_queue);
866 1.1 ragge #if NKSYMS
867 1.1 ragge ksyms_sizes_calc();
868 1.1 ragge #endif
869 1.1 ragge return 0;
870 1.1 ragge }
871 1.1 ragge
872 1.1 ragge /*
873 1.1 ragge * Remove a symbol table specified by name.
874 1.1 ragge * Returns 0 if success, EBUSY if device open and ENOENT if no such name.
875 1.1 ragge */
876 1.1 ragge int
877 1.9 jdolecek ksyms_delsymtab(const char *mod)
878 1.1 ragge {
879 1.1 ragge struct symtab *st;
880 1.1 ragge int found = 0;
881 1.1 ragge
882 1.1 ragge #if NKSYMS
883 1.1 ragge /*
884 1.1 ragge * Do not try to delete a symbol table while someone is reading
885 1.1 ragge * from /dev/ksyms.
886 1.1 ragge */
887 1.1 ragge while (ksyms_isopen != 0)
888 1.1 ragge tsleep(&ksyms_isopen, PWAIT, "ksyms", 0);
889 1.1 ragge #endif
890 1.1 ragge
891 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
892 1.1 ragge if (strcmp(mod, st->sd_name) == 0) {
893 1.1 ragge found = 1;
894 1.1 ragge break;
895 1.1 ragge }
896 1.1 ragge }
897 1.1 ragge if (found == 0)
898 1.1 ragge return ENOENT;
899 1.1 ragge CIRCLEQ_REMOVE(&symtab_queue, st, sd_queue);
900 1.1 ragge free(st->sd_symstart, M_DEVBUF);
901 1.1 ragge free(st->sd_strstart, M_DEVBUF);
902 1.1 ragge free(st->sd_symnmoff, M_DEVBUF);
903 1.24 christos /* XXXUNCONST LINTED - const castaway */
904 1.24 christos free(__UNCONST(st->sd_name), M_DEVBUF);
905 1.1 ragge free(st, M_DEVBUF);
906 1.1 ragge #if NKSYMS
907 1.1 ragge ksyms_sizes_calc();
908 1.1 ragge #endif
909 1.1 ragge return 0;
910 1.1 ragge }
911 1.1 ragge
912 1.17 cube int
913 1.17 cube ksyms_rensymtab(const char *old, const char *new)
914 1.17 cube {
915 1.17 cube struct symtab *st, *oldst = NULL;
916 1.17 cube char *newstr;
917 1.17 cube
918 1.17 cube CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
919 1.17 cube if (strcmp(old, st->sd_name) == 0)
920 1.17 cube oldst = st;
921 1.17 cube if (strcmp(new, st->sd_name) == 0)
922 1.17 cube return (EEXIST);
923 1.17 cube }
924 1.17 cube if (oldst == NULL)
925 1.17 cube return (ENOENT);
926 1.17 cube
927 1.17 cube newstr = malloc(strlen(new)+1, M_DEVBUF, M_WAITOK);
928 1.17 cube if (!newstr)
929 1.17 cube return (ENOMEM);
930 1.17 cube strcpy(newstr, new);
931 1.24 christos /*XXXUNCONST*/
932 1.24 christos free(__UNCONST(oldst->sd_name), M_DEVBUF);
933 1.17 cube oldst->sd_name = newstr;
934 1.17 cube
935 1.17 cube return (0);
936 1.17 cube }
937 1.17 cube
938 1.1 ragge #ifdef DDB
939 1.1 ragge /*
940 1.1 ragge * Keep sifting stuff here, to avoid export of ksyms internals.
941 1.1 ragge */
942 1.1 ragge int
943 1.1 ragge ksyms_sift(char *mod, char *sym, int mode)
944 1.1 ragge {
945 1.1 ragge struct symtab *st;
946 1.1 ragge char *sb;
947 1.1 ragge int i, sz;
948 1.1 ragge
949 1.1 ragge if (ksymsinited == 0)
950 1.1 ragge return ENOENT;
951 1.1 ragge
952 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
953 1.1 ragge if (mod && strcmp(mod, st->sd_name))
954 1.1 ragge continue;
955 1.1 ragge sb = st->sd_strstart;
956 1.1 ragge
957 1.1 ragge sz = st->sd_symsize/sizeof(Elf_Sym);
958 1.1 ragge for (i = 0; i < sz; i++) {
959 1.1 ragge Elf_Sym *les = st->sd_symstart + i;
960 1.1 ragge char c;
961 1.1 ragge
962 1.17 cube if (strstr(sb + les->st_name - st->sd_usroffset, sym)
963 1.17 cube == NULL)
964 1.1 ragge continue;
965 1.1 ragge
966 1.1 ragge if (mode == 'F') {
967 1.1 ragge switch (ELF_ST_TYPE(les->st_info)) {
968 1.1 ragge case STT_OBJECT:
969 1.1 ragge c = '+';
970 1.1 ragge break;
971 1.1 ragge case STT_FUNC:
972 1.1 ragge c = '*';
973 1.1 ragge break;
974 1.1 ragge case STT_SECTION:
975 1.1 ragge c = '&';
976 1.1 ragge break;
977 1.1 ragge case STT_FILE:
978 1.1 ragge c = '/';
979 1.1 ragge break;
980 1.1 ragge default:
981 1.1 ragge c = ' ';
982 1.1 ragge break;
983 1.1 ragge }
984 1.17 cube db_printf("%s%c ", sb + les->st_name -
985 1.17 cube st->sd_usroffset, c);
986 1.1 ragge } else
987 1.17 cube db_printf("%s ", sb + les->st_name -
988 1.17 cube st->sd_usroffset);
989 1.1 ragge }
990 1.1 ragge }
991 1.1 ragge return ENOENT;
992 1.1 ragge }
993 1.25 thorpej #endif /* DDB */
994 1.1 ragge
995 1.1 ragge #if NKSYMS
996 1.1 ragge /*
997 1.1 ragge * Static allocated ELF header.
998 1.1 ragge * Basic info is filled in at attach, sizes at open.
999 1.1 ragge */
1000 1.1 ragge #define SYMTAB 1
1001 1.1 ragge #define STRTAB 2
1002 1.1 ragge #define SHSTRTAB 3
1003 1.1 ragge #define NSECHDR 4
1004 1.1 ragge
1005 1.1 ragge #define NPRGHDR 2
1006 1.1 ragge #define SHSTRSIZ 28
1007 1.1 ragge
1008 1.1 ragge static struct ksyms_hdr {
1009 1.1 ragge Elf_Ehdr kh_ehdr;
1010 1.1 ragge Elf_Phdr kh_phdr[NPRGHDR];
1011 1.1 ragge Elf_Shdr kh_shdr[NSECHDR];
1012 1.1 ragge char kh_strtab[SHSTRSIZ];
1013 1.1 ragge } ksyms_hdr;
1014 1.1 ragge
1015 1.1 ragge
1016 1.25 thorpej static void
1017 1.1 ragge ksyms_hdr_init(caddr_t hdraddr)
1018 1.1 ragge {
1019 1.1 ragge
1020 1.1 ragge /* Copy the loaded elf exec header */
1021 1.1 ragge memcpy(&ksyms_hdr.kh_ehdr, hdraddr, sizeof(Elf_Ehdr));
1022 1.1 ragge
1023 1.1 ragge /* Set correct program/section header sizes, offsets and numbers */
1024 1.1 ragge ksyms_hdr.kh_ehdr.e_phoff = offsetof(struct ksyms_hdr, kh_phdr[0]);
1025 1.1 ragge ksyms_hdr.kh_ehdr.e_phentsize = sizeof(Elf_Phdr);
1026 1.1 ragge ksyms_hdr.kh_ehdr.e_phnum = NPRGHDR;
1027 1.1 ragge ksyms_hdr.kh_ehdr.e_shoff = offsetof(struct ksyms_hdr, kh_shdr[0]);
1028 1.1 ragge ksyms_hdr.kh_ehdr.e_shentsize = sizeof(Elf_Shdr);
1029 1.1 ragge ksyms_hdr.kh_ehdr.e_shnum = NSECHDR;
1030 1.1 ragge ksyms_hdr.kh_ehdr.e_shstrndx = NSECHDR - 1; /* Last section */
1031 1.1 ragge
1032 1.1 ragge /*
1033 1.1 ragge * Keep program headers zeroed (unused).
1034 1.1 ragge * The section headers are hand-crafted.
1035 1.1 ragge * First section is section zero.
1036 1.1 ragge */
1037 1.1 ragge
1038 1.1 ragge /* Second section header; ".symtab" */
1039 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_name = 1; /* Section 3 offset */
1040 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_type = SHT_SYMTAB;
1041 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_offset = sizeof(struct ksyms_hdr);
1042 1.1 ragge /* ksyms_hdr.kh_shdr[SYMTAB].sh_size = filled in at open */
1043 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_link = 2; /* Corresponding strtab */
1044 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_info = 0; /* XXX */
1045 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_addralign = sizeof(long);
1046 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_entsize = sizeof(Elf_Sym);
1047 1.1 ragge
1048 1.1 ragge /* Third section header; ".strtab" */
1049 1.1 ragge ksyms_hdr.kh_shdr[STRTAB].sh_name = 9; /* Section 3 offset */
1050 1.1 ragge ksyms_hdr.kh_shdr[STRTAB].sh_type = SHT_STRTAB;
1051 1.1 ragge /* ksyms_hdr.kh_shdr[STRTAB].sh_offset = filled in at open */
1052 1.1 ragge /* ksyms_hdr.kh_shdr[STRTAB].sh_size = filled in at open */
1053 1.1 ragge /* ksyms_hdr.kh_shdr[STRTAB].sh_link = kept zero */
1054 1.1 ragge ksyms_hdr.kh_shdr[STRTAB].sh_info = 0;
1055 1.1 ragge ksyms_hdr.kh_shdr[STRTAB].sh_addralign = sizeof(char);
1056 1.1 ragge ksyms_hdr.kh_shdr[STRTAB].sh_entsize = 0;
1057 1.1 ragge
1058 1.1 ragge /* Fourth section, ".shstrtab" */
1059 1.1 ragge ksyms_hdr.kh_shdr[SHSTRTAB].sh_name = 17; /* This section name offset */
1060 1.1 ragge ksyms_hdr.kh_shdr[SHSTRTAB].sh_type = SHT_STRTAB;
1061 1.1 ragge ksyms_hdr.kh_shdr[SHSTRTAB].sh_offset =
1062 1.1 ragge offsetof(struct ksyms_hdr, kh_strtab);
1063 1.1 ragge ksyms_hdr.kh_shdr[SHSTRTAB].sh_size = SHSTRSIZ;
1064 1.1 ragge ksyms_hdr.kh_shdr[SHSTRTAB].sh_addralign = sizeof(char);
1065 1.1 ragge
1066 1.1 ragge /* Set section names */
1067 1.10 itojun strlcpy(&ksyms_hdr.kh_strtab[1], ".symtab",
1068 1.10 itojun sizeof(ksyms_hdr.kh_strtab) - 1);
1069 1.10 itojun strlcpy(&ksyms_hdr.kh_strtab[9], ".strtab",
1070 1.10 itojun sizeof(ksyms_hdr.kh_strtab) - 9);
1071 1.10 itojun strlcpy(&ksyms_hdr.kh_strtab[17], ".shstrtab",
1072 1.10 itojun sizeof(ksyms_hdr.kh_strtab) - 17);
1073 1.1 ragge };
1074 1.1 ragge
1075 1.25 thorpej static int
1076 1.28 christos ksymsopen(dev_t dev, int oflags __unused, int devtype __unused,
1077 1.28 christos struct lwp *l __unused)
1078 1.1 ragge {
1079 1.1 ragge
1080 1.1 ragge if (minor(dev))
1081 1.1 ragge return ENXIO;
1082 1.18 cube if (ksymsinited == 0)
1083 1.18 cube return ENXIO;
1084 1.1 ragge
1085 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_size = symsz;
1086 1.1 ragge ksyms_hdr.kh_shdr[STRTAB].sh_offset = symsz +
1087 1.1 ragge ksyms_hdr.kh_shdr[SYMTAB].sh_offset;
1088 1.1 ragge ksyms_hdr.kh_shdr[STRTAB].sh_size = strsz;
1089 1.1 ragge ksyms_isopen = 1;
1090 1.1 ragge
1091 1.1 ragge #ifdef KSYMS_DEBUG
1092 1.1 ragge if (ksyms_debug & FOLLOW_DEVKSYMS)
1093 1.1 ragge printf("ksymsopen: symsz 0x%x strsz 0x%x\n", symsz, strsz);
1094 1.1 ragge #endif
1095 1.1 ragge
1096 1.1 ragge return 0;
1097 1.1 ragge }
1098 1.1 ragge
1099 1.25 thorpej static int
1100 1.28 christos ksymsclose(dev_t dev __unused, int oflags __unused, int devtype __unused,
1101 1.28 christos struct lwp *l __unused)
1102 1.1 ragge {
1103 1.1 ragge
1104 1.1 ragge #ifdef KSYMS_DEBUG
1105 1.1 ragge if (ksyms_debug & FOLLOW_DEVKSYMS)
1106 1.1 ragge printf("ksymsclose\n");
1107 1.1 ragge #endif
1108 1.1 ragge
1109 1.1 ragge ksyms_isopen = 0;
1110 1.1 ragge wakeup(&ksyms_isopen);
1111 1.1 ragge return 0;
1112 1.1 ragge }
1113 1.1 ragge
1114 1.1 ragge #define HDRSIZ sizeof(struct ksyms_hdr)
1115 1.1 ragge
1116 1.25 thorpej static int
1117 1.28 christos ksymsread(dev_t dev __unused, struct uio *uio, int ioflag __unused)
1118 1.1 ragge {
1119 1.1 ragge struct symtab *st;
1120 1.1 ragge size_t filepos, inpos, off;
1121 1.1 ragge
1122 1.1 ragge #ifdef KSYMS_DEBUG
1123 1.1 ragge if (ksyms_debug & FOLLOW_DEVKSYMS)
1124 1.26 riz printf("ksymsread: offset 0x%llx resid 0x%zx\n",
1125 1.1 ragge (long long)uio->uio_offset, uio->uio_resid);
1126 1.1 ragge #endif
1127 1.1 ragge
1128 1.1 ragge off = uio->uio_offset;
1129 1.1 ragge if (off >= (strsz + symsz + HDRSIZ))
1130 1.1 ragge return 0; /* End of symtab */
1131 1.1 ragge /*
1132 1.1 ragge * First: Copy out the ELF header.
1133 1.1 ragge */
1134 1.1 ragge if (off < HDRSIZ)
1135 1.1 ragge uiomove((char *)&ksyms_hdr + off, HDRSIZ - off, uio);
1136 1.1 ragge
1137 1.1 ragge /*
1138 1.1 ragge * Copy out the symbol table.
1139 1.1 ragge */
1140 1.1 ragge filepos = HDRSIZ;
1141 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
1142 1.1 ragge if (uio->uio_resid == 0)
1143 1.1 ragge return 0;
1144 1.1 ragge if (uio->uio_offset <= st->sd_symsize + filepos) {
1145 1.1 ragge inpos = uio->uio_offset - filepos;
1146 1.1 ragge uiomove((char *)st->sd_symstart + inpos,
1147 1.1 ragge st->sd_symsize - inpos, uio);
1148 1.1 ragge }
1149 1.1 ragge filepos += st->sd_symsize;
1150 1.1 ragge }
1151 1.1 ragge
1152 1.1 ragge if (filepos != HDRSIZ + symsz)
1153 1.1 ragge panic("ksymsread: unsunc");
1154 1.1 ragge
1155 1.1 ragge /*
1156 1.1 ragge * Copy out the string table
1157 1.1 ragge */
1158 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
1159 1.1 ragge if (uio->uio_resid == 0)
1160 1.1 ragge return 0;
1161 1.1 ragge if (uio->uio_offset <= st->sd_strsize + filepos) {
1162 1.1 ragge inpos = uio->uio_offset - filepos;
1163 1.1 ragge uiomove((char *)st->sd_strstart + inpos,
1164 1.1 ragge st->sd_strsize - inpos, uio);
1165 1.1 ragge }
1166 1.1 ragge filepos += st->sd_strsize;
1167 1.1 ragge }
1168 1.1 ragge return 0;
1169 1.1 ragge }
1170 1.1 ragge
1171 1.25 thorpej static int
1172 1.28 christos ksymswrite(dev_t dev __unused, struct uio *uio __unused, int ioflag __unused)
1173 1.1 ragge {
1174 1.1 ragge return EROFS;
1175 1.1 ragge }
1176 1.1 ragge
1177 1.25 thorpej static int
1178 1.28 christos ksymsioctl(dev_t dev __unused, u_long cmd, caddr_t data, int fflag __unused,
1179 1.28 christos struct lwp *l __unused)
1180 1.1 ragge {
1181 1.1 ragge struct ksyms_gsymbol *kg = (struct ksyms_gsymbol *)data;
1182 1.1 ragge struct symtab *st;
1183 1.15 christos Elf_Sym *sym = NULL;
1184 1.1 ragge unsigned long val;
1185 1.1 ragge int error = 0;
1186 1.15 christos char *str = NULL;
1187 1.5 ragge
1188 1.5 ragge if (cmd == KIOCGVALUE || cmd == KIOCGSYMBOL)
1189 1.5 ragge str = malloc(ksyms_maxlen, M_DEVBUF, M_WAITOK);
1190 1.1 ragge
1191 1.1 ragge switch (cmd) {
1192 1.1 ragge case KIOCGVALUE:
1193 1.1 ragge /*
1194 1.1 ragge * Use the in-kernel symbol lookup code for fast
1195 1.1 ragge * retreival of a value.
1196 1.1 ragge */
1197 1.5 ragge if ((error = copyinstr(kg->kg_name, str, ksyms_maxlen, NULL)))
1198 1.1 ragge break;
1199 1.22 cube if ((error = ksyms_getval(NULL, str, &val, KSYMS_EXTERN)))
1200 1.1 ragge break;
1201 1.1 ragge error = copyout(&val, kg->kg_value, sizeof(long));
1202 1.1 ragge break;
1203 1.1 ragge
1204 1.1 ragge case KIOCGSYMBOL:
1205 1.1 ragge /*
1206 1.1 ragge * Use the in-kernel symbol lookup code for fast
1207 1.1 ragge * retreival of a symbol.
1208 1.1 ragge */
1209 1.5 ragge if ((error = copyinstr(kg->kg_name, str, ksyms_maxlen, NULL)))
1210 1.1 ragge break;
1211 1.1 ragge CIRCLEQ_FOREACH(st, &symtab_queue, sd_queue) {
1212 1.22 cube if ((sym = findsym(str, st)) == NULL) /* from userland */
1213 1.1 ragge continue;
1214 1.1 ragge
1215 1.1 ragge /* Skip if bad binding */
1216 1.1 ragge if (ELF_ST_BIND(sym->st_info) != STB_GLOBAL) {
1217 1.1 ragge sym = NULL;
1218 1.1 ragge continue;
1219 1.1 ragge }
1220 1.1 ragge break;
1221 1.1 ragge }
1222 1.22 cube /*
1223 1.22 cube * XXX which value of sym->st_name should be returned? The real
1224 1.22 cube * one, or the one that matches what reading /dev/ksyms get?
1225 1.22 cube *
1226 1.22 cube * Currently, we're returning the /dev/ksyms one.
1227 1.22 cube */
1228 1.1 ragge if (sym != NULL)
1229 1.1 ragge error = copyout(sym, kg->kg_sym, sizeof(Elf_Sym));
1230 1.1 ragge else
1231 1.1 ragge error = ENOENT;
1232 1.1 ragge break;
1233 1.1 ragge
1234 1.1 ragge case KIOCGSIZE:
1235 1.1 ragge /*
1236 1.1 ragge * Get total size of symbol table.
1237 1.1 ragge */
1238 1.1 ragge *(int *)data = strsz + symsz + HDRSIZ;
1239 1.1 ragge break;
1240 1.1 ragge
1241 1.1 ragge default:
1242 1.1 ragge error = ENOTTY;
1243 1.1 ragge break;
1244 1.1 ragge }
1245 1.5 ragge
1246 1.5 ragge if (cmd == KIOCGVALUE || cmd == KIOCGSYMBOL)
1247 1.5 ragge free(str, M_DEVBUF);
1248 1.5 ragge
1249 1.5 ragge return error;
1250 1.1 ragge }
1251 1.25 thorpej
1252 1.25 thorpej const struct cdevsw ksyms_cdevsw = {
1253 1.25 thorpej ksymsopen, ksymsclose, ksymsread, ksymswrite, ksymsioctl,
1254 1.25 thorpej nullstop, notty, nopoll, nommap, nullkqfilter, DV_DULL
1255 1.25 thorpej };
1256 1.25 thorpej #endif /* NKSYMS */
1257