subr_kobj.c revision 1.41 1 1.41 pooka /* $NetBSD: subr_kobj.c,v 1.41 2010/04/26 22:58:53 pooka Exp $ */
2 1.1 ad
3 1.1 ad /*-
4 1.1 ad * Copyright (c) 2008 The NetBSD Foundation, Inc.
5 1.1 ad * All rights reserved.
6 1.1 ad *
7 1.25 ad * This code is derived from software developed for The NetBSD Foundation
8 1.25 ad * by Andrew Doran.
9 1.25 ad *
10 1.1 ad * Redistribution and use in source and binary forms, with or without
11 1.1 ad * modification, are permitted provided that the following conditions
12 1.1 ad * are met:
13 1.1 ad * 1. Redistributions of source code must retain the above copyright
14 1.1 ad * notice, this list of conditions and the following disclaimer.
15 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 ad * notice, this list of conditions and the following disclaimer in the
17 1.1 ad * documentation and/or other materials provided with the distribution.
18 1.1 ad *
19 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 ad * POSSIBILITY OF SUCH DAMAGE.
30 1.1 ad */
31 1.1 ad
32 1.1 ad /*-
33 1.1 ad * Copyright (c) 1998-2000 Doug Rabson
34 1.1 ad * Copyright (c) 2004 Peter Wemm
35 1.1 ad * All rights reserved.
36 1.1 ad *
37 1.1 ad * Redistribution and use in source and binary forms, with or without
38 1.1 ad * modification, are permitted provided that the following conditions
39 1.1 ad * are met:
40 1.1 ad * 1. Redistributions of source code must retain the above copyright
41 1.1 ad * notice, this list of conditions and the following disclaimer.
42 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
43 1.1 ad * notice, this list of conditions and the following disclaimer in the
44 1.1 ad * documentation and/or other materials provided with the distribution.
45 1.1 ad *
46 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
47 1.1 ad * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
48 1.1 ad * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
49 1.1 ad * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
50 1.1 ad * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
51 1.1 ad * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
52 1.1 ad * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
53 1.1 ad * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
54 1.1 ad * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
55 1.1 ad * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
56 1.1 ad * SUCH DAMAGE.
57 1.1 ad */
58 1.1 ad
59 1.1 ad /*
60 1.1 ad * Kernel loader for ELF objects.
61 1.1 ad *
62 1.1 ad * TODO: adjust kmem_alloc() calls to avoid needless fragmentation.
63 1.1 ad */
64 1.1 ad
65 1.1 ad #include <sys/cdefs.h>
66 1.41 pooka __KERNEL_RCSID(0, "$NetBSD: subr_kobj.c,v 1.41 2010/04/26 22:58:53 pooka Exp $");
67 1.34 apb
68 1.34 apb #include "opt_modular.h"
69 1.1 ad
70 1.36 ad #include <sys/kobj_impl.h>
71 1.16 ad
72 1.16 ad #ifdef MODULAR
73 1.16 ad
74 1.1 ad #include <sys/param.h>
75 1.1 ad #include <sys/kernel.h>
76 1.1 ad #include <sys/kmem.h>
77 1.1 ad #include <sys/proc.h>
78 1.1 ad #include <sys/ksyms.h>
79 1.25 ad #include <sys/module.h>
80 1.1 ad
81 1.1 ad #include <machine/stdarg.h>
82 1.1 ad
83 1.1 ad #include <uvm/uvm_extern.h>
84 1.1 ad
85 1.18 ad static int kobj_relocate(kobj_t, bool);
86 1.30 ad static int kobj_checksyms(kobj_t, bool);
87 1.1 ad static void kobj_error(const char *, ...);
88 1.18 ad static void kobj_jettison(kobj_t);
89 1.12 ad static void kobj_free(kobj_t, void *, size_t);
90 1.18 ad static void kobj_close(kobj_t);
91 1.40 pooka static int kobj_read_mem(kobj_t, void **, size_t, off_t, bool);
92 1.40 pooka static void kobj_close_mem(kobj_t);
93 1.1 ad
94 1.25 ad extern struct vm_map *module_map;
95 1.1 ad
96 1.1 ad /*
97 1.18 ad * kobj_load_mem:
98 1.3 ad *
99 1.18 ad * Load an object already resident in memory. If size is not -1,
100 1.18 ad * the complete size of the object is known.
101 1.3 ad */
102 1.3 ad int
103 1.18 ad kobj_load_mem(kobj_t *kop, void *base, ssize_t size)
104 1.3 ad {
105 1.3 ad kobj_t ko;
106 1.3 ad
107 1.3 ad ko = kmem_zalloc(sizeof(*ko), KM_SLEEP);
108 1.3 ad if (ko == NULL) {
109 1.3 ad return ENOMEM;
110 1.3 ad }
111 1.3 ad
112 1.3 ad ko->ko_type = KT_MEMORY;
113 1.3 ad ko->ko_source = base;
114 1.3 ad ko->ko_memsize = size;
115 1.40 pooka ko->ko_read = kobj_read_mem;
116 1.40 pooka ko->ko_close = kobj_close_mem;
117 1.40 pooka
118 1.3 ad *kop = ko;
119 1.18 ad return kobj_load(ko);
120 1.3 ad }
121 1.3 ad
122 1.3 ad /*
123 1.3 ad * kobj_close:
124 1.3 ad *
125 1.18 ad * Close an open ELF object.
126 1.3 ad */
127 1.18 ad static void
128 1.3 ad kobj_close(kobj_t ko)
129 1.3 ad {
130 1.3 ad
131 1.18 ad if (ko->ko_source == NULL) {
132 1.18 ad return;
133 1.18 ad }
134 1.3 ad
135 1.40 pooka ko->ko_close(ko);
136 1.40 pooka ko->ko_source = NULL;
137 1.40 pooka }
138 1.40 pooka
139 1.40 pooka static void
140 1.40 pooka kobj_close_mem(kobj_t ko)
141 1.40 pooka {
142 1.3 ad
143 1.40 pooka return;
144 1.3 ad }
145 1.3 ad
146 1.3 ad /*
147 1.3 ad * kobj_load:
148 1.3 ad *
149 1.18 ad * Load an ELF object and prepare to link into the running kernel
150 1.18 ad * image.
151 1.3 ad */
152 1.40 pooka int
153 1.3 ad kobj_load(kobj_t ko)
154 1.3 ad {
155 1.3 ad Elf_Ehdr *hdr;
156 1.3 ad Elf_Shdr *shdr;
157 1.3 ad Elf_Sym *es;
158 1.3 ad vaddr_t mapbase;
159 1.3 ad size_t mapsize;
160 1.3 ad int error;
161 1.3 ad int symtabindex;
162 1.3 ad int symstrindex;
163 1.3 ad int nsym;
164 1.3 ad int pb, rl, ra;
165 1.3 ad int alignmask;
166 1.3 ad int i, j;
167 1.13 ad void *addr;
168 1.3 ad
169 1.3 ad KASSERT(ko->ko_type != KT_UNSET);
170 1.3 ad KASSERT(ko->ko_source != NULL);
171 1.3 ad
172 1.3 ad shdr = NULL;
173 1.3 ad mapsize = 0;
174 1.3 ad error = 0;
175 1.3 ad hdr = NULL;
176 1.3 ad
177 1.1 ad /*
178 1.1 ad * Read the elf header from the file.
179 1.1 ad */
180 1.40 pooka error = ko->ko_read(ko, (void **)&hdr, sizeof(*hdr), 0, true);
181 1.1 ad if (error != 0)
182 1.1 ad goto out;
183 1.1 ad if (memcmp(hdr->e_ident, ELFMAG, SELFMAG) != 0) {
184 1.3 ad kobj_error("not an ELF object");
185 1.1 ad error = ENOEXEC;
186 1.1 ad goto out;
187 1.1 ad }
188 1.1 ad
189 1.1 ad if (hdr->e_ident[EI_VERSION] != EV_CURRENT ||
190 1.1 ad hdr->e_version != EV_CURRENT) {
191 1.1 ad kobj_error("unsupported file version");
192 1.1 ad error = ENOEXEC;
193 1.1 ad goto out;
194 1.1 ad }
195 1.1 ad if (hdr->e_type != ET_REL) {
196 1.1 ad kobj_error("unsupported file type");
197 1.1 ad error = ENOEXEC;
198 1.1 ad goto out;
199 1.1 ad }
200 1.1 ad switch (hdr->e_machine) {
201 1.1 ad #if ELFSIZE == 32
202 1.1 ad ELF32_MACHDEP_ID_CASES
203 1.1 ad #else
204 1.1 ad ELF64_MACHDEP_ID_CASES
205 1.1 ad #endif
206 1.1 ad default:
207 1.1 ad kobj_error("unsupported machine");
208 1.1 ad error = ENOEXEC;
209 1.1 ad goto out;
210 1.1 ad }
211 1.1 ad
212 1.1 ad ko->ko_nprogtab = 0;
213 1.1 ad ko->ko_shdr = 0;
214 1.1 ad ko->ko_nrel = 0;
215 1.1 ad ko->ko_nrela = 0;
216 1.1 ad
217 1.1 ad /*
218 1.1 ad * Allocate and read in the section header.
219 1.1 ad */
220 1.1 ad ko->ko_shdrsz = hdr->e_shnum * hdr->e_shentsize;
221 1.1 ad if (ko->ko_shdrsz == 0 || hdr->e_shoff == 0 ||
222 1.1 ad hdr->e_shentsize != sizeof(Elf_Shdr)) {
223 1.1 ad error = ENOEXEC;
224 1.1 ad goto out;
225 1.1 ad }
226 1.40 pooka error = ko->ko_read(ko, (void **)&shdr, ko->ko_shdrsz, hdr->e_shoff,
227 1.40 pooka true);
228 1.12 ad if (error != 0) {
229 1.1 ad goto out;
230 1.1 ad }
231 1.1 ad ko->ko_shdr = shdr;
232 1.1 ad
233 1.1 ad /*
234 1.1 ad * Scan the section header for information and table sizing.
235 1.1 ad */
236 1.1 ad nsym = 0;
237 1.1 ad symtabindex = -1;
238 1.1 ad symstrindex = -1;
239 1.1 ad for (i = 0; i < hdr->e_shnum; i++) {
240 1.1 ad switch (shdr[i].sh_type) {
241 1.1 ad case SHT_PROGBITS:
242 1.1 ad case SHT_NOBITS:
243 1.1 ad ko->ko_nprogtab++;
244 1.1 ad break;
245 1.1 ad case SHT_SYMTAB:
246 1.1 ad nsym++;
247 1.1 ad symtabindex = i;
248 1.1 ad symstrindex = shdr[i].sh_link;
249 1.1 ad break;
250 1.1 ad case SHT_REL:
251 1.1 ad ko->ko_nrel++;
252 1.1 ad break;
253 1.1 ad case SHT_RELA:
254 1.1 ad ko->ko_nrela++;
255 1.1 ad break;
256 1.1 ad case SHT_STRTAB:
257 1.1 ad break;
258 1.1 ad }
259 1.1 ad }
260 1.1 ad if (ko->ko_nprogtab == 0) {
261 1.1 ad kobj_error("file has no contents");
262 1.1 ad error = ENOEXEC;
263 1.1 ad goto out;
264 1.1 ad }
265 1.1 ad if (nsym != 1) {
266 1.1 ad /* Only allow one symbol table for now */
267 1.1 ad kobj_error("file has no valid symbol table");
268 1.1 ad error = ENOEXEC;
269 1.1 ad goto out;
270 1.1 ad }
271 1.1 ad if (symstrindex < 0 || symstrindex > hdr->e_shnum ||
272 1.1 ad shdr[symstrindex].sh_type != SHT_STRTAB) {
273 1.1 ad kobj_error("file has invalid symbol strings");
274 1.1 ad error = ENOEXEC;
275 1.1 ad goto out;
276 1.1 ad }
277 1.1 ad
278 1.1 ad /*
279 1.1 ad * Allocate space for tracking the load chunks.
280 1.1 ad */
281 1.1 ad if (ko->ko_nprogtab != 0) {
282 1.1 ad ko->ko_progtab = kmem_zalloc(ko->ko_nprogtab *
283 1.1 ad sizeof(*ko->ko_progtab), KM_SLEEP);
284 1.1 ad if (ko->ko_progtab == NULL) {
285 1.1 ad error = ENOMEM;
286 1.1 ad goto out;
287 1.1 ad }
288 1.1 ad }
289 1.1 ad if (ko->ko_nrel != 0) {
290 1.1 ad ko->ko_reltab = kmem_zalloc(ko->ko_nrel *
291 1.1 ad sizeof(*ko->ko_reltab), KM_SLEEP);
292 1.1 ad if (ko->ko_reltab == NULL) {
293 1.1 ad error = ENOMEM;
294 1.1 ad goto out;
295 1.1 ad }
296 1.1 ad }
297 1.1 ad if (ko->ko_nrela != 0) {
298 1.1 ad ko->ko_relatab = kmem_zalloc(ko->ko_nrela *
299 1.1 ad sizeof(*ko->ko_relatab), KM_SLEEP);
300 1.1 ad if (ko->ko_relatab == NULL) {
301 1.1 ad error = ENOMEM;
302 1.1 ad goto out;
303 1.1 ad }
304 1.1 ad }
305 1.1 ad if (symtabindex == -1) {
306 1.1 ad kobj_error("lost symbol table index");
307 1.1 ad goto out;
308 1.1 ad }
309 1.1 ad
310 1.1 ad /*
311 1.1 ad * Allocate space for and load the symbol table.
312 1.1 ad */
313 1.1 ad ko->ko_symcnt = shdr[symtabindex].sh_size / sizeof(Elf_Sym);
314 1.1 ad if (ko->ko_symcnt == 0) {
315 1.1 ad kobj_error("no symbol table");
316 1.1 ad goto out;
317 1.1 ad }
318 1.40 pooka error = ko->ko_read(ko, (void **)&ko->ko_symtab,
319 1.12 ad ko->ko_symcnt * sizeof(Elf_Sym),
320 1.40 pooka shdr[symtabindex].sh_offset, true);
321 1.1 ad if (error != 0) {
322 1.1 ad goto out;
323 1.1 ad }
324 1.1 ad
325 1.1 ad /*
326 1.1 ad * Allocate space for and load the symbol strings.
327 1.1 ad */
328 1.1 ad ko->ko_strtabsz = shdr[symstrindex].sh_size;
329 1.1 ad if (ko->ko_strtabsz == 0) {
330 1.1 ad kobj_error("no symbol strings");
331 1.1 ad goto out;
332 1.1 ad }
333 1.40 pooka error = ko->ko_read(ko, (void *)&ko->ko_strtab, ko->ko_strtabsz,
334 1.40 pooka shdr[symstrindex].sh_offset, true);
335 1.1 ad if (error != 0) {
336 1.1 ad goto out;
337 1.1 ad }
338 1.1 ad
339 1.1 ad /*
340 1.41 pooka * Adjust module symbol namespace, if necessary (e.g. with rump)
341 1.41 pooka */
342 1.41 pooka error = kobj_renamespace(ko->ko_symtab, ko->ko_symcnt,
343 1.41 pooka &ko->ko_strtab, &ko->ko_strtabsz);
344 1.41 pooka if (error != 0) {
345 1.41 pooka goto out;
346 1.41 pooka }
347 1.41 pooka
348 1.41 pooka /*
349 1.8 ad * Do we have a string table for the section names?
350 1.8 ad */
351 1.8 ad if (hdr->e_shstrndx != 0 && shdr[hdr->e_shstrndx].sh_size != 0 &&
352 1.8 ad shdr[hdr->e_shstrndx].sh_type == SHT_STRTAB) {
353 1.8 ad ko->ko_shstrtabsz = shdr[hdr->e_shstrndx].sh_size;
354 1.40 pooka error = ko->ko_read(ko, (void **)&ko->ko_shstrtab,
355 1.8 ad shdr[hdr->e_shstrndx].sh_size,
356 1.40 pooka shdr[hdr->e_shstrndx].sh_offset, true);
357 1.8 ad if (error != 0) {
358 1.8 ad goto out;
359 1.8 ad }
360 1.8 ad }
361 1.8 ad
362 1.8 ad /*
363 1.1 ad * Size up code/data(progbits) and bss(nobits).
364 1.1 ad */
365 1.1 ad alignmask = 0;
366 1.12 ad mapbase = 0;
367 1.1 ad for (i = 0; i < hdr->e_shnum; i++) {
368 1.1 ad switch (shdr[i].sh_type) {
369 1.1 ad case SHT_PROGBITS:
370 1.1 ad case SHT_NOBITS:
371 1.12 ad if (mapbase == 0)
372 1.12 ad mapbase = shdr[i].sh_offset;
373 1.1 ad alignmask = shdr[i].sh_addralign - 1;
374 1.1 ad mapsize += alignmask;
375 1.1 ad mapsize &= ~alignmask;
376 1.1 ad mapsize += shdr[i].sh_size;
377 1.1 ad break;
378 1.1 ad }
379 1.1 ad }
380 1.1 ad
381 1.1 ad /*
382 1.1 ad * We know how much space we need for the text/data/bss/etc.
383 1.1 ad * This stuff needs to be in a single chunk so that profiling etc
384 1.1 ad * can get the bounds and gdb can associate offsets with modules.
385 1.1 ad */
386 1.1 ad if (mapsize == 0) {
387 1.1 ad kobj_error("no text/data/bss");
388 1.1 ad goto out;
389 1.1 ad }
390 1.12 ad if (ko->ko_type == KT_MEMORY) {
391 1.12 ad mapbase += (vaddr_t)ko->ko_source;
392 1.12 ad } else {
393 1.25 ad mapbase = uvm_km_alloc(module_map, round_page(mapsize),
394 1.13 ad 0, UVM_KMF_WIRED | UVM_KMF_EXEC);
395 1.12 ad if (mapbase == 0) {
396 1.12 ad error = ENOMEM;
397 1.12 ad goto out;
398 1.12 ad }
399 1.1 ad }
400 1.1 ad ko->ko_address = mapbase;
401 1.1 ad ko->ko_size = mapsize;
402 1.1 ad
403 1.1 ad /*
404 1.1 ad * Now load code/data(progbits), zero bss(nobits), allocate space
405 1.1 ad * for and load relocs
406 1.1 ad */
407 1.1 ad pb = 0;
408 1.1 ad rl = 0;
409 1.1 ad ra = 0;
410 1.1 ad alignmask = 0;
411 1.1 ad for (i = 0; i < hdr->e_shnum; i++) {
412 1.1 ad switch (shdr[i].sh_type) {
413 1.1 ad case SHT_PROGBITS:
414 1.1 ad case SHT_NOBITS:
415 1.1 ad alignmask = shdr[i].sh_addralign - 1;
416 1.13 ad if (ko->ko_type == KT_MEMORY) {
417 1.13 ad addr = (void *)(shdr[i].sh_offset +
418 1.13 ad (vaddr_t)ko->ko_source);
419 1.13 ad if (((vaddr_t)addr & alignmask) != 0) {
420 1.13 ad kobj_error("section %d not aligned\n",
421 1.13 ad i);
422 1.13 ad goto out;
423 1.13 ad }
424 1.13 ad } else {
425 1.13 ad mapbase += alignmask;
426 1.13 ad mapbase &= ~alignmask;
427 1.13 ad addr = (void *)mapbase;
428 1.13 ad mapbase += shdr[i].sh_size;
429 1.13 ad }
430 1.13 ad ko->ko_progtab[pb].addr = addr;
431 1.1 ad if (shdr[i].sh_type == SHT_PROGBITS) {
432 1.1 ad ko->ko_progtab[pb].name = "<<PROGBITS>>";
433 1.40 pooka error = ko->ko_read(ko, &addr,
434 1.40 pooka shdr[i].sh_size, shdr[i].sh_offset, false);
435 1.1 ad if (error != 0) {
436 1.1 ad goto out;
437 1.1 ad }
438 1.13 ad } else if (ko->ko_type == KT_MEMORY &&
439 1.13 ad shdr[i].sh_size != 0) {
440 1.13 ad kobj_error("non-loadable BSS section in "
441 1.13 ad "pre-loaded module");
442 1.17 jmcneill error = EINVAL;
443 1.13 ad goto out;
444 1.1 ad } else {
445 1.1 ad ko->ko_progtab[pb].name = "<<NOBITS>>";
446 1.13 ad memset(addr, 0, shdr[i].sh_size);
447 1.1 ad }
448 1.1 ad ko->ko_progtab[pb].size = shdr[i].sh_size;
449 1.1 ad ko->ko_progtab[pb].sec = i;
450 1.8 ad if (ko->ko_shstrtab != NULL && shdr[i].sh_name != 0) {
451 1.8 ad ko->ko_progtab[pb].name =
452 1.8 ad ko->ko_shstrtab + shdr[i].sh_name;
453 1.8 ad }
454 1.1 ad
455 1.1 ad /* Update all symbol values with the offset. */
456 1.1 ad for (j = 0; j < ko->ko_symcnt; j++) {
457 1.1 ad es = &ko->ko_symtab[j];
458 1.1 ad if (es->st_shndx != i) {
459 1.1 ad continue;
460 1.1 ad }
461 1.13 ad es->st_value += (Elf_Addr)addr;
462 1.1 ad }
463 1.1 ad pb++;
464 1.1 ad break;
465 1.1 ad case SHT_REL:
466 1.1 ad ko->ko_reltab[rl].size = shdr[i].sh_size;
467 1.1 ad ko->ko_reltab[rl].size -=
468 1.1 ad shdr[i].sh_size % sizeof(Elf_Rel);
469 1.1 ad if (ko->ko_reltab[rl].size != 0) {
470 1.1 ad ko->ko_reltab[rl].nrel =
471 1.1 ad shdr[i].sh_size / sizeof(Elf_Rel);
472 1.1 ad ko->ko_reltab[rl].sec = shdr[i].sh_info;
473 1.40 pooka error = ko->ko_read(ko,
474 1.32 pooka (void **)&ko->ko_reltab[rl].rel,
475 1.1 ad ko->ko_reltab[rl].size,
476 1.40 pooka shdr[i].sh_offset, true);
477 1.1 ad if (error != 0) {
478 1.1 ad goto out;
479 1.1 ad }
480 1.1 ad }
481 1.1 ad rl++;
482 1.1 ad break;
483 1.1 ad case SHT_RELA:
484 1.1 ad ko->ko_relatab[ra].size = shdr[i].sh_size;
485 1.1 ad ko->ko_relatab[ra].size -=
486 1.1 ad shdr[i].sh_size % sizeof(Elf_Rela);
487 1.1 ad if (ko->ko_relatab[ra].size != 0) {
488 1.1 ad ko->ko_relatab[ra].nrela =
489 1.1 ad shdr[i].sh_size / sizeof(Elf_Rela);
490 1.1 ad ko->ko_relatab[ra].sec = shdr[i].sh_info;
491 1.40 pooka error = ko->ko_read(ko,
492 1.32 pooka (void **)&ko->ko_relatab[ra].rela,
493 1.1 ad shdr[i].sh_size,
494 1.40 pooka shdr[i].sh_offset, true);
495 1.1 ad if (error != 0) {
496 1.1 ad goto out;
497 1.1 ad }
498 1.1 ad }
499 1.1 ad ra++;
500 1.1 ad break;
501 1.13 ad default:
502 1.13 ad break;
503 1.1 ad }
504 1.1 ad }
505 1.1 ad if (pb != ko->ko_nprogtab) {
506 1.1 ad panic("lost progbits");
507 1.1 ad }
508 1.1 ad if (rl != ko->ko_nrel) {
509 1.1 ad panic("lost rel");
510 1.1 ad }
511 1.1 ad if (ra != ko->ko_nrela) {
512 1.1 ad panic("lost rela");
513 1.1 ad }
514 1.13 ad if (ko->ko_type != KT_MEMORY && mapbase != ko->ko_address + mapsize) {
515 1.13 ad panic("mapbase 0x%lx != address %lx + mapsize %ld (0x%lx)\n",
516 1.1 ad (long)mapbase, (long)ko->ko_address, (long)mapsize,
517 1.1 ad (long)ko->ko_address + mapsize);
518 1.1 ad }
519 1.1 ad
520 1.1 ad /*
521 1.18 ad * Perform local relocations only. Relocations relating to global
522 1.18 ad * symbols will be done by kobj_affix().
523 1.1 ad */
524 1.30 ad error = kobj_checksyms(ko, false);
525 1.23 ad if (error == 0) {
526 1.23 ad error = kobj_relocate(ko, true);
527 1.23 ad }
528 1.1 ad out:
529 1.3 ad if (hdr != NULL) {
530 1.12 ad kobj_free(ko, hdr, sizeof(*hdr));
531 1.1 ad }
532 1.18 ad kobj_close(ko);
533 1.18 ad if (error != 0) {
534 1.18 ad kobj_unload(ko);
535 1.18 ad }
536 1.1 ad
537 1.1 ad return error;
538 1.1 ad }
539 1.1 ad
540 1.1 ad /*
541 1.1 ad * kobj_unload:
542 1.1 ad *
543 1.1 ad * Unload an object previously loaded by kobj_load().
544 1.1 ad */
545 1.1 ad void
546 1.1 ad kobj_unload(kobj_t ko)
547 1.1 ad {
548 1.1 ad int error;
549 1.1 ad
550 1.18 ad kobj_close(ko);
551 1.18 ad kobj_jettison(ko);
552 1.18 ad
553 1.18 ad /*
554 1.18 ad * Notify MD code that a module has been unloaded.
555 1.18 ad */
556 1.18 ad if (ko->ko_loaded) {
557 1.18 ad error = kobj_machdep(ko, (void *)ko->ko_address, ko->ko_size,
558 1.18 ad false);
559 1.18 ad if (error != 0) {
560 1.18 ad kobj_error("machine dependent deinit failed");
561 1.18 ad }
562 1.18 ad }
563 1.12 ad if (ko->ko_address != 0 && ko->ko_type != KT_MEMORY) {
564 1.25 ad uvm_km_free(module_map, ko->ko_address, round_page(ko->ko_size),
565 1.1 ad UVM_KMF_WIRED);
566 1.1 ad }
567 1.1 ad if (ko->ko_ksyms == true) {
568 1.23 ad ksyms_modunload(ko->ko_name);
569 1.1 ad }
570 1.1 ad if (ko->ko_symtab != NULL) {
571 1.12 ad kobj_free(ko, ko->ko_symtab, ko->ko_symcnt * sizeof(Elf_Sym));
572 1.1 ad }
573 1.1 ad if (ko->ko_strtab != NULL) {
574 1.12 ad kobj_free(ko, ko->ko_strtab, ko->ko_strtabsz);
575 1.1 ad }
576 1.14 ad if (ko->ko_progtab != NULL) {
577 1.14 ad kobj_free(ko, ko->ko_progtab, ko->ko_nprogtab *
578 1.14 ad sizeof(*ko->ko_progtab));
579 1.14 ad ko->ko_progtab = NULL;
580 1.14 ad }
581 1.14 ad if (ko->ko_shstrtab) {
582 1.14 ad kobj_free(ko, ko->ko_shstrtab, ko->ko_shstrtabsz);
583 1.14 ad ko->ko_shstrtab = NULL;
584 1.14 ad }
585 1.1 ad
586 1.3 ad kmem_free(ko, sizeof(*ko));
587 1.1 ad }
588 1.1 ad
589 1.1 ad /*
590 1.2 ad * kobj_stat:
591 1.2 ad *
592 1.2 ad * Return size and load address of an object.
593 1.2 ad */
594 1.39 dyoung int
595 1.8 ad kobj_stat(kobj_t ko, vaddr_t *address, size_t *size)
596 1.2 ad {
597 1.2 ad
598 1.2 ad if (address != NULL) {
599 1.2 ad *address = ko->ko_address;
600 1.2 ad }
601 1.2 ad if (size != NULL) {
602 1.2 ad *size = ko->ko_size;
603 1.2 ad }
604 1.39 dyoung return 0;
605 1.2 ad }
606 1.2 ad
607 1.2 ad /*
608 1.18 ad * kobj_affix:
609 1.3 ad *
610 1.18 ad * Set an object's name and perform global relocs. May only be
611 1.18 ad * called after the module and any requisite modules are loaded.
612 1.3 ad */
613 1.6 ad int
614 1.18 ad kobj_affix(kobj_t ko, const char *name)
615 1.3 ad {
616 1.6 ad int error;
617 1.3 ad
618 1.18 ad KASSERT(ko->ko_ksyms == false);
619 1.18 ad KASSERT(ko->ko_loaded == false);
620 1.3 ad
621 1.3 ad strlcpy(ko->ko_name, name, sizeof(ko->ko_name));
622 1.6 ad
623 1.30 ad /* Cache addresses of undefined symbols. */
624 1.30 ad error = kobj_checksyms(ko, true);
625 1.30 ad
626 1.23 ad /* Now do global relocations. */
627 1.30 ad if (error == 0)
628 1.30 ad error = kobj_relocate(ko, false);
629 1.23 ad
630 1.23 ad /*
631 1.23 ad * Now that we know the name, register the symbol table.
632 1.25 ad * Do after global relocations because ksyms will pack
633 1.25 ad * the table.
634 1.23 ad */
635 1.30 ad if (error == 0) {
636 1.30 ad ksyms_modload(ko->ko_name, ko->ko_symtab, ko->ko_symcnt *
637 1.30 ad sizeof(Elf_Sym), ko->ko_strtab, ko->ko_strtabsz);
638 1.30 ad ko->ko_ksyms = true;
639 1.30 ad }
640 1.18 ad
641 1.18 ad /* Jettison unneeded memory post-link. */
642 1.18 ad kobj_jettison(ko);
643 1.18 ad
644 1.33 pooka /*
645 1.33 pooka * Notify MD code that a module has been loaded.
646 1.33 pooka *
647 1.33 pooka * Most architectures use this opportunity to flush their caches.
648 1.33 pooka */
649 1.18 ad if (error == 0) {
650 1.18 ad error = kobj_machdep(ko, (void *)ko->ko_address, ko->ko_size,
651 1.18 ad true);
652 1.18 ad if (error != 0) {
653 1.18 ad kobj_error("machine dependent init failed");
654 1.18 ad }
655 1.18 ad ko->ko_loaded = true;
656 1.18 ad }
657 1.18 ad
658 1.18 ad /* If there was an error, destroy the whole object. */
659 1.18 ad if (error != 0) {
660 1.18 ad kobj_unload(ko);
661 1.6 ad }
662 1.6 ad
663 1.6 ad return error;
664 1.3 ad }
665 1.3 ad
666 1.3 ad /*
667 1.8 ad * kobj_find_section:
668 1.8 ad *
669 1.8 ad * Given a section name, search the loaded object and return
670 1.8 ad * virtual address if present and loaded.
671 1.8 ad */
672 1.8 ad int
673 1.8 ad kobj_find_section(kobj_t ko, const char *name, void **addr, size_t *size)
674 1.8 ad {
675 1.8 ad int i;
676 1.8 ad
677 1.8 ad KASSERT(ko->ko_progtab != NULL);
678 1.8 ad
679 1.8 ad for (i = 0; i < ko->ko_nprogtab; i++) {
680 1.8 ad if (strcmp(ko->ko_progtab[i].name, name) == 0) {
681 1.8 ad if (addr != NULL) {
682 1.8 ad *addr = ko->ko_progtab[i].addr;
683 1.8 ad }
684 1.8 ad if (size != NULL) {
685 1.8 ad *size = ko->ko_progtab[i].size;
686 1.8 ad }
687 1.8 ad return 0;
688 1.8 ad }
689 1.8 ad }
690 1.8 ad
691 1.8 ad return ENOENT;
692 1.8 ad }
693 1.8 ad
694 1.8 ad /*
695 1.18 ad * kobj_jettison:
696 1.1 ad *
697 1.18 ad * Release object data not needed after performing relocations.
698 1.1 ad */
699 1.1 ad static void
700 1.18 ad kobj_jettison(kobj_t ko)
701 1.1 ad {
702 1.1 ad int i;
703 1.1 ad
704 1.35 ad if (ko->ko_reltab != NULL) {
705 1.35 ad for (i = 0; i < ko->ko_nrel; i++) {
706 1.35 ad if (ko->ko_reltab[i].rel) {
707 1.35 ad kobj_free(ko, ko->ko_reltab[i].rel,
708 1.35 ad ko->ko_reltab[i].size);
709 1.35 ad }
710 1.1 ad }
711 1.12 ad kobj_free(ko, ko->ko_reltab, ko->ko_nrel *
712 1.1 ad sizeof(*ko->ko_reltab));
713 1.1 ad ko->ko_reltab = NULL;
714 1.1 ad ko->ko_nrel = 0;
715 1.1 ad }
716 1.1 ad if (ko->ko_relatab != NULL) {
717 1.35 ad for (i = 0; i < ko->ko_nrela; i++) {
718 1.35 ad if (ko->ko_relatab[i].rela) {
719 1.35 ad kobj_free(ko, ko->ko_relatab[i].rela,
720 1.35 ad ko->ko_relatab[i].size);
721 1.35 ad }
722 1.35 ad }
723 1.12 ad kobj_free(ko, ko->ko_relatab, ko->ko_nrela *
724 1.1 ad sizeof(*ko->ko_relatab));
725 1.1 ad ko->ko_relatab = NULL;
726 1.1 ad ko->ko_nrela = 0;
727 1.1 ad }
728 1.1 ad if (ko->ko_shdr != NULL) {
729 1.12 ad kobj_free(ko, ko->ko_shdr, ko->ko_shdrsz);
730 1.1 ad ko->ko_shdr = NULL;
731 1.1 ad }
732 1.1 ad }
733 1.1 ad
734 1.1 ad /*
735 1.1 ad * kobj_sym_lookup:
736 1.1 ad *
737 1.1 ad * Symbol lookup function to be used when the symbol index
738 1.1 ad * is known (ie during relocation).
739 1.1 ad */
740 1.1 ad uintptr_t
741 1.1 ad kobj_sym_lookup(kobj_t ko, uintptr_t symidx)
742 1.1 ad {
743 1.1 ad const Elf_Sym *sym;
744 1.1 ad const char *symbol;
745 1.1 ad
746 1.1 ad /* Don't even try to lookup the symbol if the index is bogus. */
747 1.1 ad if (symidx >= ko->ko_symcnt)
748 1.1 ad return 0;
749 1.1 ad
750 1.1 ad sym = ko->ko_symtab + symidx;
751 1.1 ad
752 1.1 ad /* Quick answer if there is a definition included. */
753 1.1 ad if (sym->st_shndx != SHN_UNDEF) {
754 1.28 ad return (uintptr_t)sym->st_value;
755 1.1 ad }
756 1.1 ad
757 1.1 ad /* If we get here, then it is undefined and needs a lookup. */
758 1.1 ad switch (ELF_ST_BIND(sym->st_info)) {
759 1.1 ad case STB_LOCAL:
760 1.1 ad /* Local, but undefined? huh? */
761 1.1 ad kobj_error("local symbol undefined");
762 1.1 ad return 0;
763 1.1 ad
764 1.1 ad case STB_GLOBAL:
765 1.1 ad /* Relative to Data or Function name */
766 1.1 ad symbol = ko->ko_strtab + sym->st_name;
767 1.1 ad
768 1.1 ad /* Force a lookup failure if the symbol name is bogus. */
769 1.1 ad if (*symbol == 0) {
770 1.1 ad kobj_error("bad symbol name");
771 1.1 ad return 0;
772 1.1 ad }
773 1.1 ad
774 1.28 ad return (uintptr_t)sym->st_value;
775 1.1 ad
776 1.1 ad case STB_WEAK:
777 1.1 ad kobj_error("weak symbols not supported\n");
778 1.1 ad return 0;
779 1.1 ad
780 1.1 ad default:
781 1.1 ad return 0;
782 1.1 ad }
783 1.1 ad }
784 1.1 ad
785 1.1 ad /*
786 1.1 ad * kobj_findbase:
787 1.1 ad *
788 1.1 ad * Return base address of the given section.
789 1.1 ad */
790 1.1 ad static uintptr_t
791 1.1 ad kobj_findbase(kobj_t ko, int sec)
792 1.1 ad {
793 1.1 ad int i;
794 1.1 ad
795 1.1 ad for (i = 0; i < ko->ko_nprogtab; i++) {
796 1.1 ad if (sec == ko->ko_progtab[i].sec) {
797 1.1 ad return (uintptr_t)ko->ko_progtab[i].addr;
798 1.1 ad }
799 1.1 ad }
800 1.1 ad return 0;
801 1.1 ad }
802 1.1 ad
803 1.1 ad /*
804 1.28 ad * kobj_checksyms:
805 1.23 ad *
806 1.30 ad * Scan symbol table for duplicates or resolve references to
807 1.28 ad * exernal symbols.
808 1.23 ad */
809 1.23 ad static int
810 1.30 ad kobj_checksyms(kobj_t ko, bool undefined)
811 1.23 ad {
812 1.23 ad unsigned long rval;
813 1.23 ad Elf_Sym *sym, *ms;
814 1.23 ad const char *name;
815 1.28 ad int error;
816 1.28 ad
817 1.28 ad error = 0;
818 1.23 ad
819 1.23 ad for (ms = (sym = ko->ko_symtab) + ko->ko_symcnt; sym < ms; sym++) {
820 1.23 ad /* Check validity of the symbol. */
821 1.23 ad if (ELF_ST_BIND(sym->st_info) != STB_GLOBAL ||
822 1.23 ad sym->st_name == 0)
823 1.23 ad continue;
824 1.30 ad if (undefined != (sym->st_shndx == SHN_UNDEF)) {
825 1.30 ad continue;
826 1.30 ad }
827 1.23 ad
828 1.28 ad /*
829 1.28 ad * Look it up. Don't need to lock, as it is known that
830 1.28 ad * the symbol tables aren't going to change (we hold
831 1.28 ad * module_lock).
832 1.28 ad */
833 1.23 ad name = ko->ko_strtab + sym->st_name;
834 1.28 ad if (ksyms_getval_unlocked(NULL, name, &rval,
835 1.28 ad KSYMS_EXTERN) != 0) {
836 1.30 ad if (undefined) {
837 1.28 ad kobj_error("symbol `%s' not found", name);
838 1.28 ad error = ENOEXEC;
839 1.28 ad }
840 1.29 ad continue;
841 1.28 ad }
842 1.28 ad
843 1.28 ad /* Save values of undefined globals. */
844 1.30 ad if (undefined) {
845 1.28 ad sym->st_value = (Elf_Addr)rval;
846 1.23 ad continue;
847 1.23 ad }
848 1.23 ad
849 1.28 ad /* Check (and complain) about differing values. */
850 1.28 ad if (sym->st_value == rval) {
851 1.23 ad continue;
852 1.23 ad }
853 1.23 ad if (strcmp(name, "_bss_start") == 0 ||
854 1.23 ad strcmp(name, "__bss_start") == 0 ||
855 1.23 ad strcmp(name, "_bss_end__") == 0 ||
856 1.23 ad strcmp(name, "__bss_end__") == 0 ||
857 1.23 ad strcmp(name, "_edata") == 0 ||
858 1.23 ad strcmp(name, "_end") == 0 ||
859 1.23 ad strcmp(name, "__end") == 0 ||
860 1.23 ad strcmp(name, "__end__") == 0 ||
861 1.23 ad strncmp(name, "__start_link_set_", 17) == 0 ||
862 1.23 ad strncmp(name, "__stop_link_set_", 16)) {
863 1.23 ad continue;
864 1.23 ad }
865 1.24 ad kobj_error("global symbol `%s' redefined\n", name);
866 1.28 ad error = ENOEXEC;
867 1.23 ad }
868 1.23 ad
869 1.28 ad return error;
870 1.23 ad }
871 1.23 ad
872 1.23 ad /*
873 1.1 ad * kobj_relocate:
874 1.1 ad *
875 1.18 ad * Resolve relocations for the loaded object.
876 1.1 ad */
877 1.1 ad static int
878 1.18 ad kobj_relocate(kobj_t ko, bool local)
879 1.1 ad {
880 1.1 ad const Elf_Rel *rellim;
881 1.1 ad const Elf_Rel *rel;
882 1.1 ad const Elf_Rela *relalim;
883 1.1 ad const Elf_Rela *rela;
884 1.1 ad const Elf_Sym *sym;
885 1.1 ad uintptr_t base;
886 1.8 ad int i, error;
887 1.1 ad uintptr_t symidx;
888 1.1 ad
889 1.1 ad /*
890 1.1 ad * Perform relocations without addend if there are any.
891 1.1 ad */
892 1.1 ad for (i = 0; i < ko->ko_nrel; i++) {
893 1.1 ad rel = ko->ko_reltab[i].rel;
894 1.1 ad if (rel == NULL) {
895 1.1 ad continue;
896 1.1 ad }
897 1.1 ad rellim = rel + ko->ko_reltab[i].nrel;
898 1.1 ad base = kobj_findbase(ko, ko->ko_reltab[i].sec);
899 1.1 ad if (base == 0) {
900 1.1 ad panic("lost base for e_reltab");
901 1.1 ad }
902 1.1 ad for (; rel < rellim; rel++) {
903 1.1 ad symidx = ELF_R_SYM(rel->r_info);
904 1.1 ad if (symidx >= ko->ko_symcnt) {
905 1.1 ad continue;
906 1.1 ad }
907 1.1 ad sym = ko->ko_symtab + symidx;
908 1.18 ad if (local != (ELF_ST_BIND(sym->st_info) == STB_LOCAL)) {
909 1.18 ad continue;
910 1.18 ad }
911 1.18 ad error = kobj_reloc(ko, base, rel, false, local);
912 1.8 ad if (error != 0) {
913 1.1 ad return ENOENT;
914 1.1 ad }
915 1.1 ad }
916 1.1 ad }
917 1.1 ad
918 1.1 ad /*
919 1.1 ad * Perform relocations with addend if there are any.
920 1.1 ad */
921 1.1 ad for (i = 0; i < ko->ko_nrela; i++) {
922 1.1 ad rela = ko->ko_relatab[i].rela;
923 1.1 ad if (rela == NULL) {
924 1.1 ad continue;
925 1.1 ad }
926 1.1 ad relalim = rela + ko->ko_relatab[i].nrela;
927 1.1 ad base = kobj_findbase(ko, ko->ko_relatab[i].sec);
928 1.1 ad if (base == 0) {
929 1.1 ad panic("lost base for e_relatab");
930 1.1 ad }
931 1.1 ad for (; rela < relalim; rela++) {
932 1.1 ad symidx = ELF_R_SYM(rela->r_info);
933 1.1 ad if (symidx >= ko->ko_symcnt) {
934 1.1 ad continue;
935 1.1 ad }
936 1.1 ad sym = ko->ko_symtab + symidx;
937 1.18 ad if (local != (ELF_ST_BIND(sym->st_info) == STB_LOCAL)) {
938 1.18 ad continue;
939 1.18 ad }
940 1.18 ad error = kobj_reloc(ko, base, rela, true, local);
941 1.8 ad if (error != 0) {
942 1.1 ad return ENOENT;
943 1.1 ad }
944 1.1 ad }
945 1.1 ad }
946 1.1 ad
947 1.1 ad return 0;
948 1.1 ad }
949 1.1 ad
950 1.1 ad /*
951 1.1 ad * kobj_error:
952 1.1 ad *
953 1.1 ad * Utility function: log an error.
954 1.1 ad */
955 1.1 ad static void
956 1.1 ad kobj_error(const char *fmt, ...)
957 1.1 ad {
958 1.1 ad va_list ap;
959 1.1 ad
960 1.1 ad va_start(ap, fmt);
961 1.1 ad printf("WARNING: linker error: ");
962 1.1 ad vprintf(fmt, ap);
963 1.1 ad printf("\n");
964 1.1 ad va_end(ap);
965 1.1 ad }
966 1.1 ad
967 1.1 ad static int
968 1.40 pooka kobj_read_mem(kobj_t ko, void **basep, size_t size, off_t off,
969 1.40 pooka bool allocate)
970 1.1 ad {
971 1.40 pooka void *base = *basep;
972 1.1 ad int error;
973 1.1 ad
974 1.40 pooka if (ko->ko_memsize != -1 && off + size > ko->ko_memsize) {
975 1.40 pooka kobj_error("kobj_read_mem: preloaded object short");
976 1.40 pooka error = EINVAL;
977 1.40 pooka base = NULL;
978 1.40 pooka } else if (allocate) {
979 1.40 pooka base = (uint8_t *)ko->ko_source + off;
980 1.40 pooka error = 0;
981 1.40 pooka } else if ((uint8_t *)base != (uint8_t *)ko->ko_source + off) {
982 1.40 pooka kobj_error("kobj_read_mem: object not aligned");
983 1.40 pooka kobj_error("source=%p base=%p off=%d size=%zd",
984 1.40 pooka ko->ko_source, base, (int)off, size);
985 1.40 pooka error = EINVAL;
986 1.40 pooka } else {
987 1.40 pooka /* Nothing to do. Loading in-situ. */
988 1.40 pooka error = 0;
989 1.12 ad }
990 1.12 ad
991 1.40 pooka if (allocate)
992 1.40 pooka *basep = base;
993 1.3 ad
994 1.1 ad return error;
995 1.1 ad }
996 1.5 ad
997 1.12 ad /*
998 1.12 ad * kobj_free:
999 1.12 ad *
1000 1.12 ad * Utility function: free memory if it was allocated from the heap.
1001 1.12 ad */
1002 1.12 ad static void
1003 1.12 ad kobj_free(kobj_t ko, void *base, size_t size)
1004 1.12 ad {
1005 1.12 ad
1006 1.12 ad if (ko->ko_type != KT_MEMORY)
1007 1.12 ad kmem_free(base, size);
1008 1.12 ad }
1009 1.12 ad
1010 1.5 ad #else /* MODULAR */
1011 1.5 ad
1012 1.5 ad int
1013 1.18 ad kobj_load_mem(kobj_t *kop, void *base, ssize_t size)
1014 1.5 ad {
1015 1.5 ad
1016 1.5 ad return ENOSYS;
1017 1.5 ad }
1018 1.5 ad
1019 1.5 ad void
1020 1.5 ad kobj_unload(kobj_t ko)
1021 1.5 ad {
1022 1.5 ad
1023 1.5 ad panic("not modular");
1024 1.5 ad }
1025 1.5 ad
1026 1.39 dyoung int
1027 1.8 ad kobj_stat(kobj_t ko, vaddr_t *base, size_t *size)
1028 1.5 ad {
1029 1.5 ad
1030 1.39 dyoung return ENOSYS;
1031 1.5 ad }
1032 1.5 ad
1033 1.7 ad int
1034 1.18 ad kobj_affix(kobj_t ko, const char *name)
1035 1.5 ad {
1036 1.5 ad
1037 1.5 ad panic("not modular");
1038 1.5 ad }
1039 1.5 ad
1040 1.8 ad int
1041 1.8 ad kobj_find_section(kobj_t ko, const char *name, void **addr, size_t *size)
1042 1.8 ad {
1043 1.8 ad
1044 1.8 ad panic("not modular");
1045 1.8 ad }
1046 1.8 ad
1047 1.5 ad #endif /* MODULAR */
1048