block, bfq: clarify the goal of bfq_split_bfqq()
[linux/fpc-iii.git] / kernel / module.c
blobac058a5ad1d135a1d0d67223b7962e487bf6c752
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 Copyright (C) 2002 Richard Henderson
4 Copyright (C) 2001 Rusty Russell, 2002, 2010 Rusty Russell IBM.
6 */
7 #include <linux/export.h>
8 #include <linux/extable.h>
9 #include <linux/moduleloader.h>
10 #include <linux/module_signature.h>
11 #include <linux/trace_events.h>
12 #include <linux/init.h>
13 #include <linux/kallsyms.h>
14 #include <linux/file.h>
15 #include <linux/fs.h>
16 #include <linux/sysfs.h>
17 #include <linux/kernel.h>
18 #include <linux/slab.h>
19 #include <linux/vmalloc.h>
20 #include <linux/elf.h>
21 #include <linux/proc_fs.h>
22 #include <linux/security.h>
23 #include <linux/seq_file.h>
24 #include <linux/syscalls.h>
25 #include <linux/fcntl.h>
26 #include <linux/rcupdate.h>
27 #include <linux/capability.h>
28 #include <linux/cpu.h>
29 #include <linux/moduleparam.h>
30 #include <linux/errno.h>
31 #include <linux/err.h>
32 #include <linux/vermagic.h>
33 #include <linux/notifier.h>
34 #include <linux/sched.h>
35 #include <linux/device.h>
36 #include <linux/string.h>
37 #include <linux/mutex.h>
38 #include <linux/rculist.h>
39 #include <linux/uaccess.h>
40 #include <asm/cacheflush.h>
41 #include <linux/set_memory.h>
42 #include <asm/mmu_context.h>
43 #include <linux/license.h>
44 #include <asm/sections.h>
45 #include <linux/tracepoint.h>
46 #include <linux/ftrace.h>
47 #include <linux/livepatch.h>
48 #include <linux/async.h>
49 #include <linux/percpu.h>
50 #include <linux/kmemleak.h>
51 #include <linux/jump_label.h>
52 #include <linux/pfn.h>
53 #include <linux/bsearch.h>
54 #include <linux/dynamic_debug.h>
55 #include <linux/audit.h>
56 #include <uapi/linux/module.h>
57 #include "module-internal.h"
59 #define CREATE_TRACE_POINTS
60 #include <trace/events/module.h>
62 #ifndef ARCH_SHF_SMALL
63 #define ARCH_SHF_SMALL 0
64 #endif
67 * Modules' sections will be aligned on page boundaries
68 * to ensure complete separation of code and data, but
69 * only when CONFIG_ARCH_HAS_STRICT_MODULE_RWX=y
71 #ifdef CONFIG_ARCH_HAS_STRICT_MODULE_RWX
72 # define debug_align(X) ALIGN(X, PAGE_SIZE)
73 #else
74 # define debug_align(X) (X)
75 #endif
77 /* If this is set, the section belongs in the init part of the module */
78 #define INIT_OFFSET_MASK (1UL << (BITS_PER_LONG-1))
81 * Mutex protects:
82 * 1) List of modules (also safely readable with preempt_disable),
83 * 2) module_use links,
84 * 3) module_addr_min/module_addr_max.
85 * (delete and add uses RCU list operations). */
86 DEFINE_MUTEX(module_mutex);
87 EXPORT_SYMBOL_GPL(module_mutex);
88 static LIST_HEAD(modules);
90 /* Work queue for freeing init sections in success case */
91 static struct work_struct init_free_wq;
92 static struct llist_head init_free_list;
94 #ifdef CONFIG_MODULES_TREE_LOOKUP
97 * Use a latched RB-tree for __module_address(); this allows us to use
98 * RCU-sched lookups of the address from any context.
100 * This is conditional on PERF_EVENTS || TRACING because those can really hit
101 * __module_address() hard by doing a lot of stack unwinding; potentially from
102 * NMI context.
105 static __always_inline unsigned long __mod_tree_val(struct latch_tree_node *n)
107 struct module_layout *layout = container_of(n, struct module_layout, mtn.node);
109 return (unsigned long)layout->base;
112 static __always_inline unsigned long __mod_tree_size(struct latch_tree_node *n)
114 struct module_layout *layout = container_of(n, struct module_layout, mtn.node);
116 return (unsigned long)layout->size;
119 static __always_inline bool
120 mod_tree_less(struct latch_tree_node *a, struct latch_tree_node *b)
122 return __mod_tree_val(a) < __mod_tree_val(b);
125 static __always_inline int
126 mod_tree_comp(void *key, struct latch_tree_node *n)
128 unsigned long val = (unsigned long)key;
129 unsigned long start, end;
131 start = __mod_tree_val(n);
132 if (val < start)
133 return -1;
135 end = start + __mod_tree_size(n);
136 if (val >= end)
137 return 1;
139 return 0;
142 static const struct latch_tree_ops mod_tree_ops = {
143 .less = mod_tree_less,
144 .comp = mod_tree_comp,
147 static struct mod_tree_root {
148 struct latch_tree_root root;
149 unsigned long addr_min;
150 unsigned long addr_max;
151 } mod_tree __cacheline_aligned = {
152 .addr_min = -1UL,
155 #define module_addr_min mod_tree.addr_min
156 #define module_addr_max mod_tree.addr_max
158 static noinline void __mod_tree_insert(struct mod_tree_node *node)
160 latch_tree_insert(&node->node, &mod_tree.root, &mod_tree_ops);
163 static void __mod_tree_remove(struct mod_tree_node *node)
165 latch_tree_erase(&node->node, &mod_tree.root, &mod_tree_ops);
169 * These modifications: insert, remove_init and remove; are serialized by the
170 * module_mutex.
172 static void mod_tree_insert(struct module *mod)
174 mod->core_layout.mtn.mod = mod;
175 mod->init_layout.mtn.mod = mod;
177 __mod_tree_insert(&mod->core_layout.mtn);
178 if (mod->init_layout.size)
179 __mod_tree_insert(&mod->init_layout.mtn);
182 static void mod_tree_remove_init(struct module *mod)
184 if (mod->init_layout.size)
185 __mod_tree_remove(&mod->init_layout.mtn);
188 static void mod_tree_remove(struct module *mod)
190 __mod_tree_remove(&mod->core_layout.mtn);
191 mod_tree_remove_init(mod);
194 static struct module *mod_find(unsigned long addr)
196 struct latch_tree_node *ltn;
198 ltn = latch_tree_find((void *)addr, &mod_tree.root, &mod_tree_ops);
199 if (!ltn)
200 return NULL;
202 return container_of(ltn, struct mod_tree_node, node)->mod;
205 #else /* MODULES_TREE_LOOKUP */
207 static unsigned long module_addr_min = -1UL, module_addr_max = 0;
209 static void mod_tree_insert(struct module *mod) { }
210 static void mod_tree_remove_init(struct module *mod) { }
211 static void mod_tree_remove(struct module *mod) { }
213 static struct module *mod_find(unsigned long addr)
215 struct module *mod;
217 list_for_each_entry_rcu(mod, &modules, list) {
218 if (within_module(addr, mod))
219 return mod;
222 return NULL;
225 #endif /* MODULES_TREE_LOOKUP */
228 * Bounds of module text, for speeding up __module_address.
229 * Protected by module_mutex.
231 static void __mod_update_bounds(void *base, unsigned int size)
233 unsigned long min = (unsigned long)base;
234 unsigned long max = min + size;
236 if (min < module_addr_min)
237 module_addr_min = min;
238 if (max > module_addr_max)
239 module_addr_max = max;
242 static void mod_update_bounds(struct module *mod)
244 __mod_update_bounds(mod->core_layout.base, mod->core_layout.size);
245 if (mod->init_layout.size)
246 __mod_update_bounds(mod->init_layout.base, mod->init_layout.size);
249 #ifdef CONFIG_KGDB_KDB
250 struct list_head *kdb_modules = &modules; /* kdb needs the list of modules */
251 #endif /* CONFIG_KGDB_KDB */
253 static void module_assert_mutex(void)
255 lockdep_assert_held(&module_mutex);
258 static void module_assert_mutex_or_preempt(void)
260 #ifdef CONFIG_LOCKDEP
261 if (unlikely(!debug_locks))
262 return;
264 WARN_ON_ONCE(!rcu_read_lock_sched_held() &&
265 !lockdep_is_held(&module_mutex));
266 #endif
269 static bool sig_enforce = IS_ENABLED(CONFIG_MODULE_SIG_FORCE);
270 module_param(sig_enforce, bool_enable_only, 0644);
273 * Export sig_enforce kernel cmdline parameter to allow other subsystems rely
274 * on that instead of directly to CONFIG_MODULE_SIG_FORCE config.
276 bool is_module_sig_enforced(void)
278 return sig_enforce;
280 EXPORT_SYMBOL(is_module_sig_enforced);
282 void set_module_sig_enforced(void)
284 sig_enforce = true;
287 /* Block module loading/unloading? */
288 int modules_disabled = 0;
289 core_param(nomodule, modules_disabled, bint, 0);
291 /* Waiting for a module to finish initializing? */
292 static DECLARE_WAIT_QUEUE_HEAD(module_wq);
294 static BLOCKING_NOTIFIER_HEAD(module_notify_list);
296 int register_module_notifier(struct notifier_block *nb)
298 return blocking_notifier_chain_register(&module_notify_list, nb);
300 EXPORT_SYMBOL(register_module_notifier);
302 int unregister_module_notifier(struct notifier_block *nb)
304 return blocking_notifier_chain_unregister(&module_notify_list, nb);
306 EXPORT_SYMBOL(unregister_module_notifier);
309 * We require a truly strong try_module_get(): 0 means success.
310 * Otherwise an error is returned due to ongoing or failed
311 * initialization etc.
313 static inline int strong_try_module_get(struct module *mod)
315 BUG_ON(mod && mod->state == MODULE_STATE_UNFORMED);
316 if (mod && mod->state == MODULE_STATE_COMING)
317 return -EBUSY;
318 if (try_module_get(mod))
319 return 0;
320 else
321 return -ENOENT;
324 static inline void add_taint_module(struct module *mod, unsigned flag,
325 enum lockdep_ok lockdep_ok)
327 add_taint(flag, lockdep_ok);
328 set_bit(flag, &mod->taints);
332 * A thread that wants to hold a reference to a module only while it
333 * is running can call this to safely exit. nfsd and lockd use this.
335 void __noreturn __module_put_and_exit(struct module *mod, long code)
337 module_put(mod);
338 do_exit(code);
340 EXPORT_SYMBOL(__module_put_and_exit);
342 /* Find a module section: 0 means not found. */
343 static unsigned int find_sec(const struct load_info *info, const char *name)
345 unsigned int i;
347 for (i = 1; i < info->hdr->e_shnum; i++) {
348 Elf_Shdr *shdr = &info->sechdrs[i];
349 /* Alloc bit cleared means "ignore it." */
350 if ((shdr->sh_flags & SHF_ALLOC)
351 && strcmp(info->secstrings + shdr->sh_name, name) == 0)
352 return i;
354 return 0;
357 /* Find a module section, or NULL. */
358 static void *section_addr(const struct load_info *info, const char *name)
360 /* Section 0 has sh_addr 0. */
361 return (void *)info->sechdrs[find_sec(info, name)].sh_addr;
364 /* Find a module section, or NULL. Fill in number of "objects" in section. */
365 static void *section_objs(const struct load_info *info,
366 const char *name,
367 size_t object_size,
368 unsigned int *num)
370 unsigned int sec = find_sec(info, name);
372 /* Section 0 has sh_addr 0 and sh_size 0. */
373 *num = info->sechdrs[sec].sh_size / object_size;
374 return (void *)info->sechdrs[sec].sh_addr;
377 /* Provided by the linker */
378 extern const struct kernel_symbol __start___ksymtab[];
379 extern const struct kernel_symbol __stop___ksymtab[];
380 extern const struct kernel_symbol __start___ksymtab_gpl[];
381 extern const struct kernel_symbol __stop___ksymtab_gpl[];
382 extern const struct kernel_symbol __start___ksymtab_gpl_future[];
383 extern const struct kernel_symbol __stop___ksymtab_gpl_future[];
384 extern const s32 __start___kcrctab[];
385 extern const s32 __start___kcrctab_gpl[];
386 extern const s32 __start___kcrctab_gpl_future[];
387 #ifdef CONFIG_UNUSED_SYMBOLS
388 extern const struct kernel_symbol __start___ksymtab_unused[];
389 extern const struct kernel_symbol __stop___ksymtab_unused[];
390 extern const struct kernel_symbol __start___ksymtab_unused_gpl[];
391 extern const struct kernel_symbol __stop___ksymtab_unused_gpl[];
392 extern const s32 __start___kcrctab_unused[];
393 extern const s32 __start___kcrctab_unused_gpl[];
394 #endif
396 #ifndef CONFIG_MODVERSIONS
397 #define symversion(base, idx) NULL
398 #else
399 #define symversion(base, idx) ((base != NULL) ? ((base) + (idx)) : NULL)
400 #endif
402 static bool each_symbol_in_section(const struct symsearch *arr,
403 unsigned int arrsize,
404 struct module *owner,
405 bool (*fn)(const struct symsearch *syms,
406 struct module *owner,
407 void *data),
408 void *data)
410 unsigned int j;
412 for (j = 0; j < arrsize; j++) {
413 if (fn(&arr[j], owner, data))
414 return true;
417 return false;
420 /* Returns true as soon as fn returns true, otherwise false. */
421 bool each_symbol_section(bool (*fn)(const struct symsearch *arr,
422 struct module *owner,
423 void *data),
424 void *data)
426 struct module *mod;
427 static const struct symsearch arr[] = {
428 { __start___ksymtab, __stop___ksymtab, __start___kcrctab,
429 NOT_GPL_ONLY, false },
430 { __start___ksymtab_gpl, __stop___ksymtab_gpl,
431 __start___kcrctab_gpl,
432 GPL_ONLY, false },
433 { __start___ksymtab_gpl_future, __stop___ksymtab_gpl_future,
434 __start___kcrctab_gpl_future,
435 WILL_BE_GPL_ONLY, false },
436 #ifdef CONFIG_UNUSED_SYMBOLS
437 { __start___ksymtab_unused, __stop___ksymtab_unused,
438 __start___kcrctab_unused,
439 NOT_GPL_ONLY, true },
440 { __start___ksymtab_unused_gpl, __stop___ksymtab_unused_gpl,
441 __start___kcrctab_unused_gpl,
442 GPL_ONLY, true },
443 #endif
446 module_assert_mutex_or_preempt();
448 if (each_symbol_in_section(arr, ARRAY_SIZE(arr), NULL, fn, data))
449 return true;
451 list_for_each_entry_rcu(mod, &modules, list) {
452 struct symsearch arr[] = {
453 { mod->syms, mod->syms + mod->num_syms, mod->crcs,
454 NOT_GPL_ONLY, false },
455 { mod->gpl_syms, mod->gpl_syms + mod->num_gpl_syms,
456 mod->gpl_crcs,
457 GPL_ONLY, false },
458 { mod->gpl_future_syms,
459 mod->gpl_future_syms + mod->num_gpl_future_syms,
460 mod->gpl_future_crcs,
461 WILL_BE_GPL_ONLY, false },
462 #ifdef CONFIG_UNUSED_SYMBOLS
463 { mod->unused_syms,
464 mod->unused_syms + mod->num_unused_syms,
465 mod->unused_crcs,
466 NOT_GPL_ONLY, true },
467 { mod->unused_gpl_syms,
468 mod->unused_gpl_syms + mod->num_unused_gpl_syms,
469 mod->unused_gpl_crcs,
470 GPL_ONLY, true },
471 #endif
474 if (mod->state == MODULE_STATE_UNFORMED)
475 continue;
477 if (each_symbol_in_section(arr, ARRAY_SIZE(arr), mod, fn, data))
478 return true;
480 return false;
482 EXPORT_SYMBOL_GPL(each_symbol_section);
484 struct find_symbol_arg {
485 /* Input */
486 const char *name;
487 bool gplok;
488 bool warn;
490 /* Output */
491 struct module *owner;
492 const s32 *crc;
493 const struct kernel_symbol *sym;
496 static bool check_exported_symbol(const struct symsearch *syms,
497 struct module *owner,
498 unsigned int symnum, void *data)
500 struct find_symbol_arg *fsa = data;
502 if (!fsa->gplok) {
503 if (syms->licence == GPL_ONLY)
504 return false;
505 if (syms->licence == WILL_BE_GPL_ONLY && fsa->warn) {
506 pr_warn("Symbol %s is being used by a non-GPL module, "
507 "which will not be allowed in the future\n",
508 fsa->name);
512 #ifdef CONFIG_UNUSED_SYMBOLS
513 if (syms->unused && fsa->warn) {
514 pr_warn("Symbol %s is marked as UNUSED, however this module is "
515 "using it.\n", fsa->name);
516 pr_warn("This symbol will go away in the future.\n");
517 pr_warn("Please evaluate if this is the right api to use and "
518 "if it really is, submit a report to the linux kernel "
519 "mailing list together with submitting your code for "
520 "inclusion.\n");
522 #endif
524 fsa->owner = owner;
525 fsa->crc = symversion(syms->crcs, symnum);
526 fsa->sym = &syms->start[symnum];
527 return true;
530 static unsigned long kernel_symbol_value(const struct kernel_symbol *sym)
532 #ifdef CONFIG_HAVE_ARCH_PREL32_RELOCATIONS
533 return (unsigned long)offset_to_ptr(&sym->value_offset);
534 #else
535 return sym->value;
536 #endif
539 static const char *kernel_symbol_name(const struct kernel_symbol *sym)
541 #ifdef CONFIG_HAVE_ARCH_PREL32_RELOCATIONS
542 return offset_to_ptr(&sym->name_offset);
543 #else
544 return sym->name;
545 #endif
548 static const char *kernel_symbol_namespace(const struct kernel_symbol *sym)
550 #ifdef CONFIG_HAVE_ARCH_PREL32_RELOCATIONS
551 if (!sym->namespace_offset)
552 return NULL;
553 return offset_to_ptr(&sym->namespace_offset);
554 #else
555 return sym->namespace;
556 #endif
559 static int cmp_name(const void *name, const void *sym)
561 return strcmp(name, kernel_symbol_name(sym));
564 static bool find_exported_symbol_in_section(const struct symsearch *syms,
565 struct module *owner,
566 void *data)
568 struct find_symbol_arg *fsa = data;
569 struct kernel_symbol *sym;
571 sym = bsearch(fsa->name, syms->start, syms->stop - syms->start,
572 sizeof(struct kernel_symbol), cmp_name);
574 if (sym != NULL && check_exported_symbol(syms, owner,
575 sym - syms->start, data))
576 return true;
578 return false;
581 /* Find an exported symbol and return it, along with, (optional) crc and
582 * (optional) module which owns it. Needs preempt disabled or module_mutex. */
583 const struct kernel_symbol *find_symbol(const char *name,
584 struct module **owner,
585 const s32 **crc,
586 bool gplok,
587 bool warn)
589 struct find_symbol_arg fsa;
591 fsa.name = name;
592 fsa.gplok = gplok;
593 fsa.warn = warn;
595 if (each_symbol_section(find_exported_symbol_in_section, &fsa)) {
596 if (owner)
597 *owner = fsa.owner;
598 if (crc)
599 *crc = fsa.crc;
600 return fsa.sym;
603 pr_debug("Failed to find symbol %s\n", name);
604 return NULL;
606 EXPORT_SYMBOL_GPL(find_symbol);
609 * Search for module by name: must hold module_mutex (or preempt disabled
610 * for read-only access).
612 static struct module *find_module_all(const char *name, size_t len,
613 bool even_unformed)
615 struct module *mod;
617 module_assert_mutex_or_preempt();
619 list_for_each_entry_rcu(mod, &modules, list) {
620 if (!even_unformed && mod->state == MODULE_STATE_UNFORMED)
621 continue;
622 if (strlen(mod->name) == len && !memcmp(mod->name, name, len))
623 return mod;
625 return NULL;
628 struct module *find_module(const char *name)
630 module_assert_mutex();
631 return find_module_all(name, strlen(name), false);
633 EXPORT_SYMBOL_GPL(find_module);
635 #ifdef CONFIG_SMP
637 static inline void __percpu *mod_percpu(struct module *mod)
639 return mod->percpu;
642 static int percpu_modalloc(struct module *mod, struct load_info *info)
644 Elf_Shdr *pcpusec = &info->sechdrs[info->index.pcpu];
645 unsigned long align = pcpusec->sh_addralign;
647 if (!pcpusec->sh_size)
648 return 0;
650 if (align > PAGE_SIZE) {
651 pr_warn("%s: per-cpu alignment %li > %li\n",
652 mod->name, align, PAGE_SIZE);
653 align = PAGE_SIZE;
656 mod->percpu = __alloc_reserved_percpu(pcpusec->sh_size, align);
657 if (!mod->percpu) {
658 pr_warn("%s: Could not allocate %lu bytes percpu data\n",
659 mod->name, (unsigned long)pcpusec->sh_size);
660 return -ENOMEM;
662 mod->percpu_size = pcpusec->sh_size;
663 return 0;
666 static void percpu_modfree(struct module *mod)
668 free_percpu(mod->percpu);
671 static unsigned int find_pcpusec(struct load_info *info)
673 return find_sec(info, ".data..percpu");
676 static void percpu_modcopy(struct module *mod,
677 const void *from, unsigned long size)
679 int cpu;
681 for_each_possible_cpu(cpu)
682 memcpy(per_cpu_ptr(mod->percpu, cpu), from, size);
685 bool __is_module_percpu_address(unsigned long addr, unsigned long *can_addr)
687 struct module *mod;
688 unsigned int cpu;
690 preempt_disable();
692 list_for_each_entry_rcu(mod, &modules, list) {
693 if (mod->state == MODULE_STATE_UNFORMED)
694 continue;
695 if (!mod->percpu_size)
696 continue;
697 for_each_possible_cpu(cpu) {
698 void *start = per_cpu_ptr(mod->percpu, cpu);
699 void *va = (void *)addr;
701 if (va >= start && va < start + mod->percpu_size) {
702 if (can_addr) {
703 *can_addr = (unsigned long) (va - start);
704 *can_addr += (unsigned long)
705 per_cpu_ptr(mod->percpu,
706 get_boot_cpu_id());
708 preempt_enable();
709 return true;
714 preempt_enable();
715 return false;
719 * is_module_percpu_address - test whether address is from module static percpu
720 * @addr: address to test
722 * Test whether @addr belongs to module static percpu area.
724 * RETURNS:
725 * %true if @addr is from module static percpu area
727 bool is_module_percpu_address(unsigned long addr)
729 return __is_module_percpu_address(addr, NULL);
732 #else /* ... !CONFIG_SMP */
734 static inline void __percpu *mod_percpu(struct module *mod)
736 return NULL;
738 static int percpu_modalloc(struct module *mod, struct load_info *info)
740 /* UP modules shouldn't have this section: ENOMEM isn't quite right */
741 if (info->sechdrs[info->index.pcpu].sh_size != 0)
742 return -ENOMEM;
743 return 0;
745 static inline void percpu_modfree(struct module *mod)
748 static unsigned int find_pcpusec(struct load_info *info)
750 return 0;
752 static inline void percpu_modcopy(struct module *mod,
753 const void *from, unsigned long size)
755 /* pcpusec should be 0, and size of that section should be 0. */
756 BUG_ON(size != 0);
758 bool is_module_percpu_address(unsigned long addr)
760 return false;
763 bool __is_module_percpu_address(unsigned long addr, unsigned long *can_addr)
765 return false;
768 #endif /* CONFIG_SMP */
770 #define MODINFO_ATTR(field) \
771 static void setup_modinfo_##field(struct module *mod, const char *s) \
773 mod->field = kstrdup(s, GFP_KERNEL); \
775 static ssize_t show_modinfo_##field(struct module_attribute *mattr, \
776 struct module_kobject *mk, char *buffer) \
778 return scnprintf(buffer, PAGE_SIZE, "%s\n", mk->mod->field); \
780 static int modinfo_##field##_exists(struct module *mod) \
782 return mod->field != NULL; \
784 static void free_modinfo_##field(struct module *mod) \
786 kfree(mod->field); \
787 mod->field = NULL; \
789 static struct module_attribute modinfo_##field = { \
790 .attr = { .name = __stringify(field), .mode = 0444 }, \
791 .show = show_modinfo_##field, \
792 .setup = setup_modinfo_##field, \
793 .test = modinfo_##field##_exists, \
794 .free = free_modinfo_##field, \
797 MODINFO_ATTR(version);
798 MODINFO_ATTR(srcversion);
800 static char last_unloaded_module[MODULE_NAME_LEN+1];
802 #ifdef CONFIG_MODULE_UNLOAD
804 EXPORT_TRACEPOINT_SYMBOL(module_get);
806 /* MODULE_REF_BASE is the base reference count by kmodule loader. */
807 #define MODULE_REF_BASE 1
809 /* Init the unload section of the module. */
810 static int module_unload_init(struct module *mod)
813 * Initialize reference counter to MODULE_REF_BASE.
814 * refcnt == 0 means module is going.
816 atomic_set(&mod->refcnt, MODULE_REF_BASE);
818 INIT_LIST_HEAD(&mod->source_list);
819 INIT_LIST_HEAD(&mod->target_list);
821 /* Hold reference count during initialization. */
822 atomic_inc(&mod->refcnt);
824 return 0;
827 /* Does a already use b? */
828 static int already_uses(struct module *a, struct module *b)
830 struct module_use *use;
832 list_for_each_entry(use, &b->source_list, source_list) {
833 if (use->source == a) {
834 pr_debug("%s uses %s!\n", a->name, b->name);
835 return 1;
838 pr_debug("%s does not use %s!\n", a->name, b->name);
839 return 0;
843 * Module a uses b
844 * - we add 'a' as a "source", 'b' as a "target" of module use
845 * - the module_use is added to the list of 'b' sources (so
846 * 'b' can walk the list to see who sourced them), and of 'a'
847 * targets (so 'a' can see what modules it targets).
849 static int add_module_usage(struct module *a, struct module *b)
851 struct module_use *use;
853 pr_debug("Allocating new usage for %s.\n", a->name);
854 use = kmalloc(sizeof(*use), GFP_ATOMIC);
855 if (!use)
856 return -ENOMEM;
858 use->source = a;
859 use->target = b;
860 list_add(&use->source_list, &b->source_list);
861 list_add(&use->target_list, &a->target_list);
862 return 0;
865 /* Module a uses b: caller needs module_mutex() */
866 int ref_module(struct module *a, struct module *b)
868 int err;
870 if (b == NULL || already_uses(a, b))
871 return 0;
873 /* If module isn't available, we fail. */
874 err = strong_try_module_get(b);
875 if (err)
876 return err;
878 err = add_module_usage(a, b);
879 if (err) {
880 module_put(b);
881 return err;
883 return 0;
885 EXPORT_SYMBOL_GPL(ref_module);
887 /* Clear the unload stuff of the module. */
888 static void module_unload_free(struct module *mod)
890 struct module_use *use, *tmp;
892 mutex_lock(&module_mutex);
893 list_for_each_entry_safe(use, tmp, &mod->target_list, target_list) {
894 struct module *i = use->target;
895 pr_debug("%s unusing %s\n", mod->name, i->name);
896 module_put(i);
897 list_del(&use->source_list);
898 list_del(&use->target_list);
899 kfree(use);
901 mutex_unlock(&module_mutex);
904 #ifdef CONFIG_MODULE_FORCE_UNLOAD
905 static inline int try_force_unload(unsigned int flags)
907 int ret = (flags & O_TRUNC);
908 if (ret)
909 add_taint(TAINT_FORCED_RMMOD, LOCKDEP_NOW_UNRELIABLE);
910 return ret;
912 #else
913 static inline int try_force_unload(unsigned int flags)
915 return 0;
917 #endif /* CONFIG_MODULE_FORCE_UNLOAD */
919 /* Try to release refcount of module, 0 means success. */
920 static int try_release_module_ref(struct module *mod)
922 int ret;
924 /* Try to decrement refcnt which we set at loading */
925 ret = atomic_sub_return(MODULE_REF_BASE, &mod->refcnt);
926 BUG_ON(ret < 0);
927 if (ret)
928 /* Someone can put this right now, recover with checking */
929 ret = atomic_add_unless(&mod->refcnt, MODULE_REF_BASE, 0);
931 return ret;
934 static int try_stop_module(struct module *mod, int flags, int *forced)
936 /* If it's not unused, quit unless we're forcing. */
937 if (try_release_module_ref(mod) != 0) {
938 *forced = try_force_unload(flags);
939 if (!(*forced))
940 return -EWOULDBLOCK;
943 /* Mark it as dying. */
944 mod->state = MODULE_STATE_GOING;
946 return 0;
950 * module_refcount - return the refcount or -1 if unloading
952 * @mod: the module we're checking
954 * Returns:
955 * -1 if the module is in the process of unloading
956 * otherwise the number of references in the kernel to the module
958 int module_refcount(struct module *mod)
960 return atomic_read(&mod->refcnt) - MODULE_REF_BASE;
962 EXPORT_SYMBOL(module_refcount);
964 /* This exists whether we can unload or not */
965 static void free_module(struct module *mod);
967 SYSCALL_DEFINE2(delete_module, const char __user *, name_user,
968 unsigned int, flags)
970 struct module *mod;
971 char name[MODULE_NAME_LEN];
972 int ret, forced = 0;
974 if (!capable(CAP_SYS_MODULE) || modules_disabled)
975 return -EPERM;
977 if (strncpy_from_user(name, name_user, MODULE_NAME_LEN-1) < 0)
978 return -EFAULT;
979 name[MODULE_NAME_LEN-1] = '\0';
981 audit_log_kern_module(name);
983 if (mutex_lock_interruptible(&module_mutex) != 0)
984 return -EINTR;
986 mod = find_module(name);
987 if (!mod) {
988 ret = -ENOENT;
989 goto out;
992 if (!list_empty(&mod->source_list)) {
993 /* Other modules depend on us: get rid of them first. */
994 ret = -EWOULDBLOCK;
995 goto out;
998 /* Doing init or already dying? */
999 if (mod->state != MODULE_STATE_LIVE) {
1000 /* FIXME: if (force), slam module count damn the torpedoes */
1001 pr_debug("%s already dying\n", mod->name);
1002 ret = -EBUSY;
1003 goto out;
1006 /* If it has an init func, it must have an exit func to unload */
1007 if (mod->init && !mod->exit) {
1008 forced = try_force_unload(flags);
1009 if (!forced) {
1010 /* This module can't be removed */
1011 ret = -EBUSY;
1012 goto out;
1016 /* Stop the machine so refcounts can't move and disable module. */
1017 ret = try_stop_module(mod, flags, &forced);
1018 if (ret != 0)
1019 goto out;
1021 mutex_unlock(&module_mutex);
1022 /* Final destruction now no one is using it. */
1023 if (mod->exit != NULL)
1024 mod->exit();
1025 blocking_notifier_call_chain(&module_notify_list,
1026 MODULE_STATE_GOING, mod);
1027 klp_module_going(mod);
1028 ftrace_release_mod(mod);
1030 async_synchronize_full();
1032 /* Store the name of the last unloaded module for diagnostic purposes */
1033 strlcpy(last_unloaded_module, mod->name, sizeof(last_unloaded_module));
1035 free_module(mod);
1036 /* someone could wait for the module in add_unformed_module() */
1037 wake_up_all(&module_wq);
1038 return 0;
1039 out:
1040 mutex_unlock(&module_mutex);
1041 return ret;
1044 static inline void print_unload_info(struct seq_file *m, struct module *mod)
1046 struct module_use *use;
1047 int printed_something = 0;
1049 seq_printf(m, " %i ", module_refcount(mod));
1052 * Always include a trailing , so userspace can differentiate
1053 * between this and the old multi-field proc format.
1055 list_for_each_entry(use, &mod->source_list, source_list) {
1056 printed_something = 1;
1057 seq_printf(m, "%s,", use->source->name);
1060 if (mod->init != NULL && mod->exit == NULL) {
1061 printed_something = 1;
1062 seq_puts(m, "[permanent],");
1065 if (!printed_something)
1066 seq_puts(m, "-");
1069 void __symbol_put(const char *symbol)
1071 struct module *owner;
1073 preempt_disable();
1074 if (!find_symbol(symbol, &owner, NULL, true, false))
1075 BUG();
1076 module_put(owner);
1077 preempt_enable();
1079 EXPORT_SYMBOL(__symbol_put);
1081 /* Note this assumes addr is a function, which it currently always is. */
1082 void symbol_put_addr(void *addr)
1084 struct module *modaddr;
1085 unsigned long a = (unsigned long)dereference_function_descriptor(addr);
1087 if (core_kernel_text(a))
1088 return;
1091 * Even though we hold a reference on the module; we still need to
1092 * disable preemption in order to safely traverse the data structure.
1094 preempt_disable();
1095 modaddr = __module_text_address(a);
1096 BUG_ON(!modaddr);
1097 module_put(modaddr);
1098 preempt_enable();
1100 EXPORT_SYMBOL_GPL(symbol_put_addr);
1102 static ssize_t show_refcnt(struct module_attribute *mattr,
1103 struct module_kobject *mk, char *buffer)
1105 return sprintf(buffer, "%i\n", module_refcount(mk->mod));
1108 static struct module_attribute modinfo_refcnt =
1109 __ATTR(refcnt, 0444, show_refcnt, NULL);
1111 void __module_get(struct module *module)
1113 if (module) {
1114 preempt_disable();
1115 atomic_inc(&module->refcnt);
1116 trace_module_get(module, _RET_IP_);
1117 preempt_enable();
1120 EXPORT_SYMBOL(__module_get);
1122 bool try_module_get(struct module *module)
1124 bool ret = true;
1126 if (module) {
1127 preempt_disable();
1128 /* Note: here, we can fail to get a reference */
1129 if (likely(module_is_live(module) &&
1130 atomic_inc_not_zero(&module->refcnt) != 0))
1131 trace_module_get(module, _RET_IP_);
1132 else
1133 ret = false;
1135 preempt_enable();
1137 return ret;
1139 EXPORT_SYMBOL(try_module_get);
1141 void module_put(struct module *module)
1143 int ret;
1145 if (module) {
1146 preempt_disable();
1147 ret = atomic_dec_if_positive(&module->refcnt);
1148 WARN_ON(ret < 0); /* Failed to put refcount */
1149 trace_module_put(module, _RET_IP_);
1150 preempt_enable();
1153 EXPORT_SYMBOL(module_put);
1155 #else /* !CONFIG_MODULE_UNLOAD */
1156 static inline void print_unload_info(struct seq_file *m, struct module *mod)
1158 /* We don't know the usage count, or what modules are using. */
1159 seq_puts(m, " - -");
1162 static inline void module_unload_free(struct module *mod)
1166 int ref_module(struct module *a, struct module *b)
1168 return strong_try_module_get(b);
1170 EXPORT_SYMBOL_GPL(ref_module);
1172 static inline int module_unload_init(struct module *mod)
1174 return 0;
1176 #endif /* CONFIG_MODULE_UNLOAD */
1178 static size_t module_flags_taint(struct module *mod, char *buf)
1180 size_t l = 0;
1181 int i;
1183 for (i = 0; i < TAINT_FLAGS_COUNT; i++) {
1184 if (taint_flags[i].module && test_bit(i, &mod->taints))
1185 buf[l++] = taint_flags[i].c_true;
1188 return l;
1191 static ssize_t show_initstate(struct module_attribute *mattr,
1192 struct module_kobject *mk, char *buffer)
1194 const char *state = "unknown";
1196 switch (mk->mod->state) {
1197 case MODULE_STATE_LIVE:
1198 state = "live";
1199 break;
1200 case MODULE_STATE_COMING:
1201 state = "coming";
1202 break;
1203 case MODULE_STATE_GOING:
1204 state = "going";
1205 break;
1206 default:
1207 BUG();
1209 return sprintf(buffer, "%s\n", state);
1212 static struct module_attribute modinfo_initstate =
1213 __ATTR(initstate, 0444, show_initstate, NULL);
1215 static ssize_t store_uevent(struct module_attribute *mattr,
1216 struct module_kobject *mk,
1217 const char *buffer, size_t count)
1219 int rc;
1221 rc = kobject_synth_uevent(&mk->kobj, buffer, count);
1222 return rc ? rc : count;
1225 struct module_attribute module_uevent =
1226 __ATTR(uevent, 0200, NULL, store_uevent);
1228 static ssize_t show_coresize(struct module_attribute *mattr,
1229 struct module_kobject *mk, char *buffer)
1231 return sprintf(buffer, "%u\n", mk->mod->core_layout.size);
1234 static struct module_attribute modinfo_coresize =
1235 __ATTR(coresize, 0444, show_coresize, NULL);
1237 static ssize_t show_initsize(struct module_attribute *mattr,
1238 struct module_kobject *mk, char *buffer)
1240 return sprintf(buffer, "%u\n", mk->mod->init_layout.size);
1243 static struct module_attribute modinfo_initsize =
1244 __ATTR(initsize, 0444, show_initsize, NULL);
1246 static ssize_t show_taint(struct module_attribute *mattr,
1247 struct module_kobject *mk, char *buffer)
1249 size_t l;
1251 l = module_flags_taint(mk->mod, buffer);
1252 buffer[l++] = '\n';
1253 return l;
1256 static struct module_attribute modinfo_taint =
1257 __ATTR(taint, 0444, show_taint, NULL);
1259 static struct module_attribute *modinfo_attrs[] = {
1260 &module_uevent,
1261 &modinfo_version,
1262 &modinfo_srcversion,
1263 &modinfo_initstate,
1264 &modinfo_coresize,
1265 &modinfo_initsize,
1266 &modinfo_taint,
1267 #ifdef CONFIG_MODULE_UNLOAD
1268 &modinfo_refcnt,
1269 #endif
1270 NULL,
1273 static const char vermagic[] = VERMAGIC_STRING;
1275 static int try_to_force_load(struct module *mod, const char *reason)
1277 #ifdef CONFIG_MODULE_FORCE_LOAD
1278 if (!test_taint(TAINT_FORCED_MODULE))
1279 pr_warn("%s: %s: kernel tainted.\n", mod->name, reason);
1280 add_taint_module(mod, TAINT_FORCED_MODULE, LOCKDEP_NOW_UNRELIABLE);
1281 return 0;
1282 #else
1283 return -ENOEXEC;
1284 #endif
1287 #ifdef CONFIG_MODVERSIONS
1289 static u32 resolve_rel_crc(const s32 *crc)
1291 return *(u32 *)((void *)crc + *crc);
1294 static int check_version(const struct load_info *info,
1295 const char *symname,
1296 struct module *mod,
1297 const s32 *crc)
1299 Elf_Shdr *sechdrs = info->sechdrs;
1300 unsigned int versindex = info->index.vers;
1301 unsigned int i, num_versions;
1302 struct modversion_info *versions;
1304 /* Exporting module didn't supply crcs? OK, we're already tainted. */
1305 if (!crc)
1306 return 1;
1308 /* No versions at all? modprobe --force does this. */
1309 if (versindex == 0)
1310 return try_to_force_load(mod, symname) == 0;
1312 versions = (void *) sechdrs[versindex].sh_addr;
1313 num_versions = sechdrs[versindex].sh_size
1314 / sizeof(struct modversion_info);
1316 for (i = 0; i < num_versions; i++) {
1317 u32 crcval;
1319 if (strcmp(versions[i].name, symname) != 0)
1320 continue;
1322 if (IS_ENABLED(CONFIG_MODULE_REL_CRCS))
1323 crcval = resolve_rel_crc(crc);
1324 else
1325 crcval = *crc;
1326 if (versions[i].crc == crcval)
1327 return 1;
1328 pr_debug("Found checksum %X vs module %lX\n",
1329 crcval, versions[i].crc);
1330 goto bad_version;
1333 /* Broken toolchain. Warn once, then let it go.. */
1334 pr_warn_once("%s: no symbol version for %s\n", info->name, symname);
1335 return 1;
1337 bad_version:
1338 pr_warn("%s: disagrees about version of symbol %s\n",
1339 info->name, symname);
1340 return 0;
1343 static inline int check_modstruct_version(const struct load_info *info,
1344 struct module *mod)
1346 const s32 *crc;
1349 * Since this should be found in kernel (which can't be removed), no
1350 * locking is necessary -- use preempt_disable() to placate lockdep.
1352 preempt_disable();
1353 if (!find_symbol("module_layout", NULL, &crc, true, false)) {
1354 preempt_enable();
1355 BUG();
1357 preempt_enable();
1358 return check_version(info, "module_layout", mod, crc);
1361 /* First part is kernel version, which we ignore if module has crcs. */
1362 static inline int same_magic(const char *amagic, const char *bmagic,
1363 bool has_crcs)
1365 if (has_crcs) {
1366 amagic += strcspn(amagic, " ");
1367 bmagic += strcspn(bmagic, " ");
1369 return strcmp(amagic, bmagic) == 0;
1371 #else
1372 static inline int check_version(const struct load_info *info,
1373 const char *symname,
1374 struct module *mod,
1375 const s32 *crc)
1377 return 1;
1380 static inline int check_modstruct_version(const struct load_info *info,
1381 struct module *mod)
1383 return 1;
1386 static inline int same_magic(const char *amagic, const char *bmagic,
1387 bool has_crcs)
1389 return strcmp(amagic, bmagic) == 0;
1391 #endif /* CONFIG_MODVERSIONS */
1393 static char *get_modinfo(const struct load_info *info, const char *tag);
1394 static char *get_next_modinfo(const struct load_info *info, const char *tag,
1395 char *prev);
1397 static int verify_namespace_is_imported(const struct load_info *info,
1398 const struct kernel_symbol *sym,
1399 struct module *mod)
1401 const char *namespace;
1402 char *imported_namespace;
1404 namespace = kernel_symbol_namespace(sym);
1405 if (namespace && namespace[0]) {
1406 imported_namespace = get_modinfo(info, "import_ns");
1407 while (imported_namespace) {
1408 if (strcmp(namespace, imported_namespace) == 0)
1409 return 0;
1410 imported_namespace = get_next_modinfo(
1411 info, "import_ns", imported_namespace);
1413 #ifdef CONFIG_MODULE_ALLOW_MISSING_NAMESPACE_IMPORTS
1414 pr_warn(
1415 #else
1416 pr_err(
1417 #endif
1418 "%s: module uses symbol (%s) from namespace %s, but does not import it.\n",
1419 mod->name, kernel_symbol_name(sym), namespace);
1420 #ifndef CONFIG_MODULE_ALLOW_MISSING_NAMESPACE_IMPORTS
1421 return -EINVAL;
1422 #endif
1424 return 0;
1428 /* Resolve a symbol for this module. I.e. if we find one, record usage. */
1429 static const struct kernel_symbol *resolve_symbol(struct module *mod,
1430 const struct load_info *info,
1431 const char *name,
1432 char ownername[])
1434 struct module *owner;
1435 const struct kernel_symbol *sym;
1436 const s32 *crc;
1437 int err;
1440 * The module_mutex should not be a heavily contended lock;
1441 * if we get the occasional sleep here, we'll go an extra iteration
1442 * in the wait_event_interruptible(), which is harmless.
1444 sched_annotate_sleep();
1445 mutex_lock(&module_mutex);
1446 sym = find_symbol(name, &owner, &crc,
1447 !(mod->taints & (1 << TAINT_PROPRIETARY_MODULE)), true);
1448 if (!sym)
1449 goto unlock;
1451 if (!check_version(info, name, mod, crc)) {
1452 sym = ERR_PTR(-EINVAL);
1453 goto getname;
1456 err = verify_namespace_is_imported(info, sym, mod);
1457 if (err) {
1458 sym = ERR_PTR(err);
1459 goto getname;
1462 err = ref_module(mod, owner);
1463 if (err) {
1464 sym = ERR_PTR(err);
1465 goto getname;
1468 getname:
1469 /* We must make copy under the lock if we failed to get ref. */
1470 strncpy(ownername, module_name(owner), MODULE_NAME_LEN);
1471 unlock:
1472 mutex_unlock(&module_mutex);
1473 return sym;
1476 static const struct kernel_symbol *
1477 resolve_symbol_wait(struct module *mod,
1478 const struct load_info *info,
1479 const char *name)
1481 const struct kernel_symbol *ksym;
1482 char owner[MODULE_NAME_LEN];
1484 if (wait_event_interruptible_timeout(module_wq,
1485 !IS_ERR(ksym = resolve_symbol(mod, info, name, owner))
1486 || PTR_ERR(ksym) != -EBUSY,
1487 30 * HZ) <= 0) {
1488 pr_warn("%s: gave up waiting for init of module %s.\n",
1489 mod->name, owner);
1491 return ksym;
1495 * /sys/module/foo/sections stuff
1496 * J. Corbet <corbet@lwn.net>
1498 #ifdef CONFIG_SYSFS
1500 #ifdef CONFIG_KALLSYMS
1501 static inline bool sect_empty(const Elf_Shdr *sect)
1503 return !(sect->sh_flags & SHF_ALLOC) || sect->sh_size == 0;
1506 struct module_sect_attr {
1507 struct module_attribute mattr;
1508 char *name;
1509 unsigned long address;
1512 struct module_sect_attrs {
1513 struct attribute_group grp;
1514 unsigned int nsections;
1515 struct module_sect_attr attrs[0];
1518 static ssize_t module_sect_show(struct module_attribute *mattr,
1519 struct module_kobject *mk, char *buf)
1521 struct module_sect_attr *sattr =
1522 container_of(mattr, struct module_sect_attr, mattr);
1523 return sprintf(buf, "0x%px\n", kptr_restrict < 2 ?
1524 (void *)sattr->address : NULL);
1527 static void free_sect_attrs(struct module_sect_attrs *sect_attrs)
1529 unsigned int section;
1531 for (section = 0; section < sect_attrs->nsections; section++)
1532 kfree(sect_attrs->attrs[section].name);
1533 kfree(sect_attrs);
1536 static void add_sect_attrs(struct module *mod, const struct load_info *info)
1538 unsigned int nloaded = 0, i, size[2];
1539 struct module_sect_attrs *sect_attrs;
1540 struct module_sect_attr *sattr;
1541 struct attribute **gattr;
1543 /* Count loaded sections and allocate structures */
1544 for (i = 0; i < info->hdr->e_shnum; i++)
1545 if (!sect_empty(&info->sechdrs[i]))
1546 nloaded++;
1547 size[0] = ALIGN(struct_size(sect_attrs, attrs, nloaded),
1548 sizeof(sect_attrs->grp.attrs[0]));
1549 size[1] = (nloaded + 1) * sizeof(sect_attrs->grp.attrs[0]);
1550 sect_attrs = kzalloc(size[0] + size[1], GFP_KERNEL);
1551 if (sect_attrs == NULL)
1552 return;
1554 /* Setup section attributes. */
1555 sect_attrs->grp.name = "sections";
1556 sect_attrs->grp.attrs = (void *)sect_attrs + size[0];
1558 sect_attrs->nsections = 0;
1559 sattr = &sect_attrs->attrs[0];
1560 gattr = &sect_attrs->grp.attrs[0];
1561 for (i = 0; i < info->hdr->e_shnum; i++) {
1562 Elf_Shdr *sec = &info->sechdrs[i];
1563 if (sect_empty(sec))
1564 continue;
1565 sattr->address = sec->sh_addr;
1566 sattr->name = kstrdup(info->secstrings + sec->sh_name,
1567 GFP_KERNEL);
1568 if (sattr->name == NULL)
1569 goto out;
1570 sect_attrs->nsections++;
1571 sysfs_attr_init(&sattr->mattr.attr);
1572 sattr->mattr.show = module_sect_show;
1573 sattr->mattr.store = NULL;
1574 sattr->mattr.attr.name = sattr->name;
1575 sattr->mattr.attr.mode = S_IRUSR;
1576 *(gattr++) = &(sattr++)->mattr.attr;
1578 *gattr = NULL;
1580 if (sysfs_create_group(&mod->mkobj.kobj, &sect_attrs->grp))
1581 goto out;
1583 mod->sect_attrs = sect_attrs;
1584 return;
1585 out:
1586 free_sect_attrs(sect_attrs);
1589 static void remove_sect_attrs(struct module *mod)
1591 if (mod->sect_attrs) {
1592 sysfs_remove_group(&mod->mkobj.kobj,
1593 &mod->sect_attrs->grp);
1594 /* We are positive that no one is using any sect attrs
1595 * at this point. Deallocate immediately. */
1596 free_sect_attrs(mod->sect_attrs);
1597 mod->sect_attrs = NULL;
1602 * /sys/module/foo/notes/.section.name gives contents of SHT_NOTE sections.
1605 struct module_notes_attrs {
1606 struct kobject *dir;
1607 unsigned int notes;
1608 struct bin_attribute attrs[0];
1611 static ssize_t module_notes_read(struct file *filp, struct kobject *kobj,
1612 struct bin_attribute *bin_attr,
1613 char *buf, loff_t pos, size_t count)
1616 * The caller checked the pos and count against our size.
1618 memcpy(buf, bin_attr->private + pos, count);
1619 return count;
1622 static void free_notes_attrs(struct module_notes_attrs *notes_attrs,
1623 unsigned int i)
1625 if (notes_attrs->dir) {
1626 while (i-- > 0)
1627 sysfs_remove_bin_file(notes_attrs->dir,
1628 &notes_attrs->attrs[i]);
1629 kobject_put(notes_attrs->dir);
1631 kfree(notes_attrs);
1634 static void add_notes_attrs(struct module *mod, const struct load_info *info)
1636 unsigned int notes, loaded, i;
1637 struct module_notes_attrs *notes_attrs;
1638 struct bin_attribute *nattr;
1640 /* failed to create section attributes, so can't create notes */
1641 if (!mod->sect_attrs)
1642 return;
1644 /* Count notes sections and allocate structures. */
1645 notes = 0;
1646 for (i = 0; i < info->hdr->e_shnum; i++)
1647 if (!sect_empty(&info->sechdrs[i]) &&
1648 (info->sechdrs[i].sh_type == SHT_NOTE))
1649 ++notes;
1651 if (notes == 0)
1652 return;
1654 notes_attrs = kzalloc(struct_size(notes_attrs, attrs, notes),
1655 GFP_KERNEL);
1656 if (notes_attrs == NULL)
1657 return;
1659 notes_attrs->notes = notes;
1660 nattr = &notes_attrs->attrs[0];
1661 for (loaded = i = 0; i < info->hdr->e_shnum; ++i) {
1662 if (sect_empty(&info->sechdrs[i]))
1663 continue;
1664 if (info->sechdrs[i].sh_type == SHT_NOTE) {
1665 sysfs_bin_attr_init(nattr);
1666 nattr->attr.name = mod->sect_attrs->attrs[loaded].name;
1667 nattr->attr.mode = S_IRUGO;
1668 nattr->size = info->sechdrs[i].sh_size;
1669 nattr->private = (void *) info->sechdrs[i].sh_addr;
1670 nattr->read = module_notes_read;
1671 ++nattr;
1673 ++loaded;
1676 notes_attrs->dir = kobject_create_and_add("notes", &mod->mkobj.kobj);
1677 if (!notes_attrs->dir)
1678 goto out;
1680 for (i = 0; i < notes; ++i)
1681 if (sysfs_create_bin_file(notes_attrs->dir,
1682 &notes_attrs->attrs[i]))
1683 goto out;
1685 mod->notes_attrs = notes_attrs;
1686 return;
1688 out:
1689 free_notes_attrs(notes_attrs, i);
1692 static void remove_notes_attrs(struct module *mod)
1694 if (mod->notes_attrs)
1695 free_notes_attrs(mod->notes_attrs, mod->notes_attrs->notes);
1698 #else
1700 static inline void add_sect_attrs(struct module *mod,
1701 const struct load_info *info)
1705 static inline void remove_sect_attrs(struct module *mod)
1709 static inline void add_notes_attrs(struct module *mod,
1710 const struct load_info *info)
1714 static inline void remove_notes_attrs(struct module *mod)
1717 #endif /* CONFIG_KALLSYMS */
1719 static void del_usage_links(struct module *mod)
1721 #ifdef CONFIG_MODULE_UNLOAD
1722 struct module_use *use;
1724 mutex_lock(&module_mutex);
1725 list_for_each_entry(use, &mod->target_list, target_list)
1726 sysfs_remove_link(use->target->holders_dir, mod->name);
1727 mutex_unlock(&module_mutex);
1728 #endif
1731 static int add_usage_links(struct module *mod)
1733 int ret = 0;
1734 #ifdef CONFIG_MODULE_UNLOAD
1735 struct module_use *use;
1737 mutex_lock(&module_mutex);
1738 list_for_each_entry(use, &mod->target_list, target_list) {
1739 ret = sysfs_create_link(use->target->holders_dir,
1740 &mod->mkobj.kobj, mod->name);
1741 if (ret)
1742 break;
1744 mutex_unlock(&module_mutex);
1745 if (ret)
1746 del_usage_links(mod);
1747 #endif
1748 return ret;
1751 static void module_remove_modinfo_attrs(struct module *mod, int end);
1753 static int module_add_modinfo_attrs(struct module *mod)
1755 struct module_attribute *attr;
1756 struct module_attribute *temp_attr;
1757 int error = 0;
1758 int i;
1760 mod->modinfo_attrs = kzalloc((sizeof(struct module_attribute) *
1761 (ARRAY_SIZE(modinfo_attrs) + 1)),
1762 GFP_KERNEL);
1763 if (!mod->modinfo_attrs)
1764 return -ENOMEM;
1766 temp_attr = mod->modinfo_attrs;
1767 for (i = 0; (attr = modinfo_attrs[i]); i++) {
1768 if (!attr->test || attr->test(mod)) {
1769 memcpy(temp_attr, attr, sizeof(*temp_attr));
1770 sysfs_attr_init(&temp_attr->attr);
1771 error = sysfs_create_file(&mod->mkobj.kobj,
1772 &temp_attr->attr);
1773 if (error)
1774 goto error_out;
1775 ++temp_attr;
1779 return 0;
1781 error_out:
1782 if (i > 0)
1783 module_remove_modinfo_attrs(mod, --i);
1784 return error;
1787 static void module_remove_modinfo_attrs(struct module *mod, int end)
1789 struct module_attribute *attr;
1790 int i;
1792 for (i = 0; (attr = &mod->modinfo_attrs[i]); i++) {
1793 if (end >= 0 && i > end)
1794 break;
1795 /* pick a field to test for end of list */
1796 if (!attr->attr.name)
1797 break;
1798 sysfs_remove_file(&mod->mkobj.kobj, &attr->attr);
1799 if (attr->free)
1800 attr->free(mod);
1802 kfree(mod->modinfo_attrs);
1805 static void mod_kobject_put(struct module *mod)
1807 DECLARE_COMPLETION_ONSTACK(c);
1808 mod->mkobj.kobj_completion = &c;
1809 kobject_put(&mod->mkobj.kobj);
1810 wait_for_completion(&c);
1813 static int mod_sysfs_init(struct module *mod)
1815 int err;
1816 struct kobject *kobj;
1818 if (!module_sysfs_initialized) {
1819 pr_err("%s: module sysfs not initialized\n", mod->name);
1820 err = -EINVAL;
1821 goto out;
1824 kobj = kset_find_obj(module_kset, mod->name);
1825 if (kobj) {
1826 pr_err("%s: module is already loaded\n", mod->name);
1827 kobject_put(kobj);
1828 err = -EINVAL;
1829 goto out;
1832 mod->mkobj.mod = mod;
1834 memset(&mod->mkobj.kobj, 0, sizeof(mod->mkobj.kobj));
1835 mod->mkobj.kobj.kset = module_kset;
1836 err = kobject_init_and_add(&mod->mkobj.kobj, &module_ktype, NULL,
1837 "%s", mod->name);
1838 if (err)
1839 mod_kobject_put(mod);
1841 /* delay uevent until full sysfs population */
1842 out:
1843 return err;
1846 static int mod_sysfs_setup(struct module *mod,
1847 const struct load_info *info,
1848 struct kernel_param *kparam,
1849 unsigned int num_params)
1851 int err;
1853 err = mod_sysfs_init(mod);
1854 if (err)
1855 goto out;
1857 mod->holders_dir = kobject_create_and_add("holders", &mod->mkobj.kobj);
1858 if (!mod->holders_dir) {
1859 err = -ENOMEM;
1860 goto out_unreg;
1863 err = module_param_sysfs_setup(mod, kparam, num_params);
1864 if (err)
1865 goto out_unreg_holders;
1867 err = module_add_modinfo_attrs(mod);
1868 if (err)
1869 goto out_unreg_param;
1871 err = add_usage_links(mod);
1872 if (err)
1873 goto out_unreg_modinfo_attrs;
1875 add_sect_attrs(mod, info);
1876 add_notes_attrs(mod, info);
1878 kobject_uevent(&mod->mkobj.kobj, KOBJ_ADD);
1879 return 0;
1881 out_unreg_modinfo_attrs:
1882 module_remove_modinfo_attrs(mod, -1);
1883 out_unreg_param:
1884 module_param_sysfs_remove(mod);
1885 out_unreg_holders:
1886 kobject_put(mod->holders_dir);
1887 out_unreg:
1888 mod_kobject_put(mod);
1889 out:
1890 return err;
1893 static void mod_sysfs_fini(struct module *mod)
1895 remove_notes_attrs(mod);
1896 remove_sect_attrs(mod);
1897 mod_kobject_put(mod);
1900 static void init_param_lock(struct module *mod)
1902 mutex_init(&mod->param_lock);
1904 #else /* !CONFIG_SYSFS */
1906 static int mod_sysfs_setup(struct module *mod,
1907 const struct load_info *info,
1908 struct kernel_param *kparam,
1909 unsigned int num_params)
1911 return 0;
1914 static void mod_sysfs_fini(struct module *mod)
1918 static void module_remove_modinfo_attrs(struct module *mod, int end)
1922 static void del_usage_links(struct module *mod)
1926 static void init_param_lock(struct module *mod)
1929 #endif /* CONFIG_SYSFS */
1931 static void mod_sysfs_teardown(struct module *mod)
1933 del_usage_links(mod);
1934 module_remove_modinfo_attrs(mod, -1);
1935 module_param_sysfs_remove(mod);
1936 kobject_put(mod->mkobj.drivers_dir);
1937 kobject_put(mod->holders_dir);
1938 mod_sysfs_fini(mod);
1941 #ifdef CONFIG_ARCH_HAS_STRICT_MODULE_RWX
1943 * LKM RO/NX protection: protect module's text/ro-data
1944 * from modification and any data from execution.
1946 * General layout of module is:
1947 * [text] [read-only-data] [ro-after-init] [writable data]
1948 * text_size -----^ ^ ^ ^
1949 * ro_size ------------------------| | |
1950 * ro_after_init_size -----------------------------| |
1951 * size -----------------------------------------------------------|
1953 * These values are always page-aligned (as is base)
1955 static void frob_text(const struct module_layout *layout,
1956 int (*set_memory)(unsigned long start, int num_pages))
1958 BUG_ON((unsigned long)layout->base & (PAGE_SIZE-1));
1959 BUG_ON((unsigned long)layout->text_size & (PAGE_SIZE-1));
1960 set_memory((unsigned long)layout->base,
1961 layout->text_size >> PAGE_SHIFT);
1964 #ifdef CONFIG_STRICT_MODULE_RWX
1965 static void frob_rodata(const struct module_layout *layout,
1966 int (*set_memory)(unsigned long start, int num_pages))
1968 BUG_ON((unsigned long)layout->base & (PAGE_SIZE-1));
1969 BUG_ON((unsigned long)layout->text_size & (PAGE_SIZE-1));
1970 BUG_ON((unsigned long)layout->ro_size & (PAGE_SIZE-1));
1971 set_memory((unsigned long)layout->base + layout->text_size,
1972 (layout->ro_size - layout->text_size) >> PAGE_SHIFT);
1975 static void frob_ro_after_init(const struct module_layout *layout,
1976 int (*set_memory)(unsigned long start, int num_pages))
1978 BUG_ON((unsigned long)layout->base & (PAGE_SIZE-1));
1979 BUG_ON((unsigned long)layout->ro_size & (PAGE_SIZE-1));
1980 BUG_ON((unsigned long)layout->ro_after_init_size & (PAGE_SIZE-1));
1981 set_memory((unsigned long)layout->base + layout->ro_size,
1982 (layout->ro_after_init_size - layout->ro_size) >> PAGE_SHIFT);
1985 static void frob_writable_data(const struct module_layout *layout,
1986 int (*set_memory)(unsigned long start, int num_pages))
1988 BUG_ON((unsigned long)layout->base & (PAGE_SIZE-1));
1989 BUG_ON((unsigned long)layout->ro_after_init_size & (PAGE_SIZE-1));
1990 BUG_ON((unsigned long)layout->size & (PAGE_SIZE-1));
1991 set_memory((unsigned long)layout->base + layout->ro_after_init_size,
1992 (layout->size - layout->ro_after_init_size) >> PAGE_SHIFT);
1995 /* livepatching wants to disable read-only so it can frob module. */
1996 void module_disable_ro(const struct module *mod)
1998 if (!rodata_enabled)
1999 return;
2001 frob_text(&mod->core_layout, set_memory_rw);
2002 frob_rodata(&mod->core_layout, set_memory_rw);
2003 frob_ro_after_init(&mod->core_layout, set_memory_rw);
2004 frob_text(&mod->init_layout, set_memory_rw);
2005 frob_rodata(&mod->init_layout, set_memory_rw);
2008 void module_enable_ro(const struct module *mod, bool after_init)
2010 if (!rodata_enabled)
2011 return;
2013 set_vm_flush_reset_perms(mod->core_layout.base);
2014 set_vm_flush_reset_perms(mod->init_layout.base);
2015 frob_text(&mod->core_layout, set_memory_ro);
2017 frob_rodata(&mod->core_layout, set_memory_ro);
2018 frob_text(&mod->init_layout, set_memory_ro);
2019 frob_rodata(&mod->init_layout, set_memory_ro);
2021 if (after_init)
2022 frob_ro_after_init(&mod->core_layout, set_memory_ro);
2025 static void module_enable_nx(const struct module *mod)
2027 frob_rodata(&mod->core_layout, set_memory_nx);
2028 frob_ro_after_init(&mod->core_layout, set_memory_nx);
2029 frob_writable_data(&mod->core_layout, set_memory_nx);
2030 frob_rodata(&mod->init_layout, set_memory_nx);
2031 frob_writable_data(&mod->init_layout, set_memory_nx);
2034 #else /* !CONFIG_STRICT_MODULE_RWX */
2035 static void module_enable_nx(const struct module *mod) { }
2036 #endif /* CONFIG_STRICT_MODULE_RWX */
2037 static void module_enable_x(const struct module *mod)
2039 frob_text(&mod->core_layout, set_memory_x);
2040 frob_text(&mod->init_layout, set_memory_x);
2042 #else /* !CONFIG_ARCH_HAS_STRICT_MODULE_RWX */
2043 static void module_enable_nx(const struct module *mod) { }
2044 static void module_enable_x(const struct module *mod) { }
2045 #endif /* CONFIG_ARCH_HAS_STRICT_MODULE_RWX */
2048 #ifdef CONFIG_LIVEPATCH
2050 * Persist Elf information about a module. Copy the Elf header,
2051 * section header table, section string table, and symtab section
2052 * index from info to mod->klp_info.
2054 static int copy_module_elf(struct module *mod, struct load_info *info)
2056 unsigned int size, symndx;
2057 int ret;
2059 size = sizeof(*mod->klp_info);
2060 mod->klp_info = kmalloc(size, GFP_KERNEL);
2061 if (mod->klp_info == NULL)
2062 return -ENOMEM;
2064 /* Elf header */
2065 size = sizeof(mod->klp_info->hdr);
2066 memcpy(&mod->klp_info->hdr, info->hdr, size);
2068 /* Elf section header table */
2069 size = sizeof(*info->sechdrs) * info->hdr->e_shnum;
2070 mod->klp_info->sechdrs = kmemdup(info->sechdrs, size, GFP_KERNEL);
2071 if (mod->klp_info->sechdrs == NULL) {
2072 ret = -ENOMEM;
2073 goto free_info;
2076 /* Elf section name string table */
2077 size = info->sechdrs[info->hdr->e_shstrndx].sh_size;
2078 mod->klp_info->secstrings = kmemdup(info->secstrings, size, GFP_KERNEL);
2079 if (mod->klp_info->secstrings == NULL) {
2080 ret = -ENOMEM;
2081 goto free_sechdrs;
2084 /* Elf symbol section index */
2085 symndx = info->index.sym;
2086 mod->klp_info->symndx = symndx;
2089 * For livepatch modules, core_kallsyms.symtab is a complete
2090 * copy of the original symbol table. Adjust sh_addr to point
2091 * to core_kallsyms.symtab since the copy of the symtab in module
2092 * init memory is freed at the end of do_init_module().
2094 mod->klp_info->sechdrs[symndx].sh_addr = \
2095 (unsigned long) mod->core_kallsyms.symtab;
2097 return 0;
2099 free_sechdrs:
2100 kfree(mod->klp_info->sechdrs);
2101 free_info:
2102 kfree(mod->klp_info);
2103 return ret;
2106 static void free_module_elf(struct module *mod)
2108 kfree(mod->klp_info->sechdrs);
2109 kfree(mod->klp_info->secstrings);
2110 kfree(mod->klp_info);
2112 #else /* !CONFIG_LIVEPATCH */
2113 static int copy_module_elf(struct module *mod, struct load_info *info)
2115 return 0;
2118 static void free_module_elf(struct module *mod)
2121 #endif /* CONFIG_LIVEPATCH */
2123 void __weak module_memfree(void *module_region)
2126 * This memory may be RO, and freeing RO memory in an interrupt is not
2127 * supported by vmalloc.
2129 WARN_ON(in_interrupt());
2130 vfree(module_region);
2133 void __weak module_arch_cleanup(struct module *mod)
2137 void __weak module_arch_freeing_init(struct module *mod)
2141 /* Free a module, remove from lists, etc. */
2142 static void free_module(struct module *mod)
2144 trace_module_free(mod);
2146 mod_sysfs_teardown(mod);
2148 /* We leave it in list to prevent duplicate loads, but make sure
2149 * that noone uses it while it's being deconstructed. */
2150 mutex_lock(&module_mutex);
2151 mod->state = MODULE_STATE_UNFORMED;
2152 mutex_unlock(&module_mutex);
2154 /* Remove dynamic debug info */
2155 ddebug_remove_module(mod->name);
2157 /* Arch-specific cleanup. */
2158 module_arch_cleanup(mod);
2160 /* Module unload stuff */
2161 module_unload_free(mod);
2163 /* Free any allocated parameters. */
2164 destroy_params(mod->kp, mod->num_kp);
2166 if (is_livepatch_module(mod))
2167 free_module_elf(mod);
2169 /* Now we can delete it from the lists */
2170 mutex_lock(&module_mutex);
2171 /* Unlink carefully: kallsyms could be walking list. */
2172 list_del_rcu(&mod->list);
2173 mod_tree_remove(mod);
2174 /* Remove this module from bug list, this uses list_del_rcu */
2175 module_bug_cleanup(mod);
2176 /* Wait for RCU-sched synchronizing before releasing mod->list and buglist. */
2177 synchronize_rcu();
2178 mutex_unlock(&module_mutex);
2180 /* This may be empty, but that's OK */
2181 module_arch_freeing_init(mod);
2182 module_memfree(mod->init_layout.base);
2183 kfree(mod->args);
2184 percpu_modfree(mod);
2186 /* Free lock-classes; relies on the preceding sync_rcu(). */
2187 lockdep_free_key_range(mod->core_layout.base, mod->core_layout.size);
2189 /* Finally, free the core (containing the module structure) */
2190 module_memfree(mod->core_layout.base);
2193 void *__symbol_get(const char *symbol)
2195 struct module *owner;
2196 const struct kernel_symbol *sym;
2198 preempt_disable();
2199 sym = find_symbol(symbol, &owner, NULL, true, true);
2200 if (sym && strong_try_module_get(owner))
2201 sym = NULL;
2202 preempt_enable();
2204 return sym ? (void *)kernel_symbol_value(sym) : NULL;
2206 EXPORT_SYMBOL_GPL(__symbol_get);
2209 * Ensure that an exported symbol [global namespace] does not already exist
2210 * in the kernel or in some other module's exported symbol table.
2212 * You must hold the module_mutex.
2214 static int verify_exported_symbols(struct module *mod)
2216 unsigned int i;
2217 struct module *owner;
2218 const struct kernel_symbol *s;
2219 struct {
2220 const struct kernel_symbol *sym;
2221 unsigned int num;
2222 } arr[] = {
2223 { mod->syms, mod->num_syms },
2224 { mod->gpl_syms, mod->num_gpl_syms },
2225 { mod->gpl_future_syms, mod->num_gpl_future_syms },
2226 #ifdef CONFIG_UNUSED_SYMBOLS
2227 { mod->unused_syms, mod->num_unused_syms },
2228 { mod->unused_gpl_syms, mod->num_unused_gpl_syms },
2229 #endif
2232 for (i = 0; i < ARRAY_SIZE(arr); i++) {
2233 for (s = arr[i].sym; s < arr[i].sym + arr[i].num; s++) {
2234 if (find_symbol(kernel_symbol_name(s), &owner, NULL,
2235 true, false)) {
2236 pr_err("%s: exports duplicate symbol %s"
2237 " (owned by %s)\n",
2238 mod->name, kernel_symbol_name(s),
2239 module_name(owner));
2240 return -ENOEXEC;
2244 return 0;
2247 /* Change all symbols so that st_value encodes the pointer directly. */
2248 static int simplify_symbols(struct module *mod, const struct load_info *info)
2250 Elf_Shdr *symsec = &info->sechdrs[info->index.sym];
2251 Elf_Sym *sym = (void *)symsec->sh_addr;
2252 unsigned long secbase;
2253 unsigned int i;
2254 int ret = 0;
2255 const struct kernel_symbol *ksym;
2257 for (i = 1; i < symsec->sh_size / sizeof(Elf_Sym); i++) {
2258 const char *name = info->strtab + sym[i].st_name;
2260 switch (sym[i].st_shndx) {
2261 case SHN_COMMON:
2262 /* Ignore common symbols */
2263 if (!strncmp(name, "__gnu_lto", 9))
2264 break;
2266 /* We compiled with -fno-common. These are not
2267 supposed to happen. */
2268 pr_debug("Common symbol: %s\n", name);
2269 pr_warn("%s: please compile with -fno-common\n",
2270 mod->name);
2271 ret = -ENOEXEC;
2272 break;
2274 case SHN_ABS:
2275 /* Don't need to do anything */
2276 pr_debug("Absolute symbol: 0x%08lx\n",
2277 (long)sym[i].st_value);
2278 break;
2280 case SHN_LIVEPATCH:
2281 /* Livepatch symbols are resolved by livepatch */
2282 break;
2284 case SHN_UNDEF:
2285 ksym = resolve_symbol_wait(mod, info, name);
2286 /* Ok if resolved. */
2287 if (ksym && !IS_ERR(ksym)) {
2288 sym[i].st_value = kernel_symbol_value(ksym);
2289 break;
2292 /* Ok if weak. */
2293 if (!ksym && ELF_ST_BIND(sym[i].st_info) == STB_WEAK)
2294 break;
2296 ret = PTR_ERR(ksym) ?: -ENOENT;
2297 pr_warn("%s: Unknown symbol %s (err %d)\n",
2298 mod->name, name, ret);
2299 break;
2301 default:
2302 /* Divert to percpu allocation if a percpu var. */
2303 if (sym[i].st_shndx == info->index.pcpu)
2304 secbase = (unsigned long)mod_percpu(mod);
2305 else
2306 secbase = info->sechdrs[sym[i].st_shndx].sh_addr;
2307 sym[i].st_value += secbase;
2308 break;
2312 return ret;
2315 static int apply_relocations(struct module *mod, const struct load_info *info)
2317 unsigned int i;
2318 int err = 0;
2320 /* Now do relocations. */
2321 for (i = 1; i < info->hdr->e_shnum; i++) {
2322 unsigned int infosec = info->sechdrs[i].sh_info;
2324 /* Not a valid relocation section? */
2325 if (infosec >= info->hdr->e_shnum)
2326 continue;
2328 /* Don't bother with non-allocated sections */
2329 if (!(info->sechdrs[infosec].sh_flags & SHF_ALLOC))
2330 continue;
2332 /* Livepatch relocation sections are applied by livepatch */
2333 if (info->sechdrs[i].sh_flags & SHF_RELA_LIVEPATCH)
2334 continue;
2336 if (info->sechdrs[i].sh_type == SHT_REL)
2337 err = apply_relocate(info->sechdrs, info->strtab,
2338 info->index.sym, i, mod);
2339 else if (info->sechdrs[i].sh_type == SHT_RELA)
2340 err = apply_relocate_add(info->sechdrs, info->strtab,
2341 info->index.sym, i, mod);
2342 if (err < 0)
2343 break;
2345 return err;
2348 /* Additional bytes needed by arch in front of individual sections */
2349 unsigned int __weak arch_mod_section_prepend(struct module *mod,
2350 unsigned int section)
2352 /* default implementation just returns zero */
2353 return 0;
2356 /* Update size with this section: return offset. */
2357 static long get_offset(struct module *mod, unsigned int *size,
2358 Elf_Shdr *sechdr, unsigned int section)
2360 long ret;
2362 *size += arch_mod_section_prepend(mod, section);
2363 ret = ALIGN(*size, sechdr->sh_addralign ?: 1);
2364 *size = ret + sechdr->sh_size;
2365 return ret;
2368 /* Lay out the SHF_ALLOC sections in a way not dissimilar to how ld
2369 might -- code, read-only data, read-write data, small data. Tally
2370 sizes, and place the offsets into sh_entsize fields: high bit means it
2371 belongs in init. */
2372 static void layout_sections(struct module *mod, struct load_info *info)
2374 static unsigned long const masks[][2] = {
2375 /* NOTE: all executable code must be the first section
2376 * in this array; otherwise modify the text_size
2377 * finder in the two loops below */
2378 { SHF_EXECINSTR | SHF_ALLOC, ARCH_SHF_SMALL },
2379 { SHF_ALLOC, SHF_WRITE | ARCH_SHF_SMALL },
2380 { SHF_RO_AFTER_INIT | SHF_ALLOC, ARCH_SHF_SMALL },
2381 { SHF_WRITE | SHF_ALLOC, ARCH_SHF_SMALL },
2382 { ARCH_SHF_SMALL | SHF_ALLOC, 0 }
2384 unsigned int m, i;
2386 for (i = 0; i < info->hdr->e_shnum; i++)
2387 info->sechdrs[i].sh_entsize = ~0UL;
2389 pr_debug("Core section allocation order:\n");
2390 for (m = 0; m < ARRAY_SIZE(masks); ++m) {
2391 for (i = 0; i < info->hdr->e_shnum; ++i) {
2392 Elf_Shdr *s = &info->sechdrs[i];
2393 const char *sname = info->secstrings + s->sh_name;
2395 if ((s->sh_flags & masks[m][0]) != masks[m][0]
2396 || (s->sh_flags & masks[m][1])
2397 || s->sh_entsize != ~0UL
2398 || strstarts(sname, ".init"))
2399 continue;
2400 s->sh_entsize = get_offset(mod, &mod->core_layout.size, s, i);
2401 pr_debug("\t%s\n", sname);
2403 switch (m) {
2404 case 0: /* executable */
2405 mod->core_layout.size = debug_align(mod->core_layout.size);
2406 mod->core_layout.text_size = mod->core_layout.size;
2407 break;
2408 case 1: /* RO: text and ro-data */
2409 mod->core_layout.size = debug_align(mod->core_layout.size);
2410 mod->core_layout.ro_size = mod->core_layout.size;
2411 break;
2412 case 2: /* RO after init */
2413 mod->core_layout.size = debug_align(mod->core_layout.size);
2414 mod->core_layout.ro_after_init_size = mod->core_layout.size;
2415 break;
2416 case 4: /* whole core */
2417 mod->core_layout.size = debug_align(mod->core_layout.size);
2418 break;
2422 pr_debug("Init section allocation order:\n");
2423 for (m = 0; m < ARRAY_SIZE(masks); ++m) {
2424 for (i = 0; i < info->hdr->e_shnum; ++i) {
2425 Elf_Shdr *s = &info->sechdrs[i];
2426 const char *sname = info->secstrings + s->sh_name;
2428 if ((s->sh_flags & masks[m][0]) != masks[m][0]
2429 || (s->sh_flags & masks[m][1])
2430 || s->sh_entsize != ~0UL
2431 || !strstarts(sname, ".init"))
2432 continue;
2433 s->sh_entsize = (get_offset(mod, &mod->init_layout.size, s, i)
2434 | INIT_OFFSET_MASK);
2435 pr_debug("\t%s\n", sname);
2437 switch (m) {
2438 case 0: /* executable */
2439 mod->init_layout.size = debug_align(mod->init_layout.size);
2440 mod->init_layout.text_size = mod->init_layout.size;
2441 break;
2442 case 1: /* RO: text and ro-data */
2443 mod->init_layout.size = debug_align(mod->init_layout.size);
2444 mod->init_layout.ro_size = mod->init_layout.size;
2445 break;
2446 case 2:
2448 * RO after init doesn't apply to init_layout (only
2449 * core_layout), so it just takes the value of ro_size.
2451 mod->init_layout.ro_after_init_size = mod->init_layout.ro_size;
2452 break;
2453 case 4: /* whole init */
2454 mod->init_layout.size = debug_align(mod->init_layout.size);
2455 break;
2460 static void set_license(struct module *mod, const char *license)
2462 if (!license)
2463 license = "unspecified";
2465 if (!license_is_gpl_compatible(license)) {
2466 if (!test_taint(TAINT_PROPRIETARY_MODULE))
2467 pr_warn("%s: module license '%s' taints kernel.\n",
2468 mod->name, license);
2469 add_taint_module(mod, TAINT_PROPRIETARY_MODULE,
2470 LOCKDEP_NOW_UNRELIABLE);
2474 /* Parse tag=value strings from .modinfo section */
2475 static char *next_string(char *string, unsigned long *secsize)
2477 /* Skip non-zero chars */
2478 while (string[0]) {
2479 string++;
2480 if ((*secsize)-- <= 1)
2481 return NULL;
2484 /* Skip any zero padding. */
2485 while (!string[0]) {
2486 string++;
2487 if ((*secsize)-- <= 1)
2488 return NULL;
2490 return string;
2493 static char *get_next_modinfo(const struct load_info *info, const char *tag,
2494 char *prev)
2496 char *p;
2497 unsigned int taglen = strlen(tag);
2498 Elf_Shdr *infosec = &info->sechdrs[info->index.info];
2499 unsigned long size = infosec->sh_size;
2502 * get_modinfo() calls made before rewrite_section_headers()
2503 * must use sh_offset, as sh_addr isn't set!
2505 char *modinfo = (char *)info->hdr + infosec->sh_offset;
2507 if (prev) {
2508 size -= prev - modinfo;
2509 modinfo = next_string(prev, &size);
2512 for (p = modinfo; p; p = next_string(p, &size)) {
2513 if (strncmp(p, tag, taglen) == 0 && p[taglen] == '=')
2514 return p + taglen + 1;
2516 return NULL;
2519 static char *get_modinfo(const struct load_info *info, const char *tag)
2521 return get_next_modinfo(info, tag, NULL);
2524 static void setup_modinfo(struct module *mod, struct load_info *info)
2526 struct module_attribute *attr;
2527 int i;
2529 for (i = 0; (attr = modinfo_attrs[i]); i++) {
2530 if (attr->setup)
2531 attr->setup(mod, get_modinfo(info, attr->attr.name));
2535 static void free_modinfo(struct module *mod)
2537 struct module_attribute *attr;
2538 int i;
2540 for (i = 0; (attr = modinfo_attrs[i]); i++) {
2541 if (attr->free)
2542 attr->free(mod);
2546 #ifdef CONFIG_KALLSYMS
2548 /* Lookup exported symbol in given range of kernel_symbols */
2549 static const struct kernel_symbol *lookup_exported_symbol(const char *name,
2550 const struct kernel_symbol *start,
2551 const struct kernel_symbol *stop)
2553 return bsearch(name, start, stop - start,
2554 sizeof(struct kernel_symbol), cmp_name);
2557 static int is_exported(const char *name, unsigned long value,
2558 const struct module *mod)
2560 const struct kernel_symbol *ks;
2561 if (!mod)
2562 ks = lookup_exported_symbol(name, __start___ksymtab, __stop___ksymtab);
2563 else
2564 ks = lookup_exported_symbol(name, mod->syms, mod->syms + mod->num_syms);
2566 return ks != NULL && kernel_symbol_value(ks) == value;
2569 /* As per nm */
2570 static char elf_type(const Elf_Sym *sym, const struct load_info *info)
2572 const Elf_Shdr *sechdrs = info->sechdrs;
2574 if (ELF_ST_BIND(sym->st_info) == STB_WEAK) {
2575 if (ELF_ST_TYPE(sym->st_info) == STT_OBJECT)
2576 return 'v';
2577 else
2578 return 'w';
2580 if (sym->st_shndx == SHN_UNDEF)
2581 return 'U';
2582 if (sym->st_shndx == SHN_ABS || sym->st_shndx == info->index.pcpu)
2583 return 'a';
2584 if (sym->st_shndx >= SHN_LORESERVE)
2585 return '?';
2586 if (sechdrs[sym->st_shndx].sh_flags & SHF_EXECINSTR)
2587 return 't';
2588 if (sechdrs[sym->st_shndx].sh_flags & SHF_ALLOC
2589 && sechdrs[sym->st_shndx].sh_type != SHT_NOBITS) {
2590 if (!(sechdrs[sym->st_shndx].sh_flags & SHF_WRITE))
2591 return 'r';
2592 else if (sechdrs[sym->st_shndx].sh_flags & ARCH_SHF_SMALL)
2593 return 'g';
2594 else
2595 return 'd';
2597 if (sechdrs[sym->st_shndx].sh_type == SHT_NOBITS) {
2598 if (sechdrs[sym->st_shndx].sh_flags & ARCH_SHF_SMALL)
2599 return 's';
2600 else
2601 return 'b';
2603 if (strstarts(info->secstrings + sechdrs[sym->st_shndx].sh_name,
2604 ".debug")) {
2605 return 'n';
2607 return '?';
2610 static bool is_core_symbol(const Elf_Sym *src, const Elf_Shdr *sechdrs,
2611 unsigned int shnum, unsigned int pcpundx)
2613 const Elf_Shdr *sec;
2615 if (src->st_shndx == SHN_UNDEF
2616 || src->st_shndx >= shnum
2617 || !src->st_name)
2618 return false;
2620 #ifdef CONFIG_KALLSYMS_ALL
2621 if (src->st_shndx == pcpundx)
2622 return true;
2623 #endif
2625 sec = sechdrs + src->st_shndx;
2626 if (!(sec->sh_flags & SHF_ALLOC)
2627 #ifndef CONFIG_KALLSYMS_ALL
2628 || !(sec->sh_flags & SHF_EXECINSTR)
2629 #endif
2630 || (sec->sh_entsize & INIT_OFFSET_MASK))
2631 return false;
2633 return true;
2637 * We only allocate and copy the strings needed by the parts of symtab
2638 * we keep. This is simple, but has the effect of making multiple
2639 * copies of duplicates. We could be more sophisticated, see
2640 * linux-kernel thread starting with
2641 * <73defb5e4bca04a6431392cc341112b1@localhost>.
2643 static void layout_symtab(struct module *mod, struct load_info *info)
2645 Elf_Shdr *symsect = info->sechdrs + info->index.sym;
2646 Elf_Shdr *strsect = info->sechdrs + info->index.str;
2647 const Elf_Sym *src;
2648 unsigned int i, nsrc, ndst, strtab_size = 0;
2650 /* Put symbol section at end of init part of module. */
2651 symsect->sh_flags |= SHF_ALLOC;
2652 symsect->sh_entsize = get_offset(mod, &mod->init_layout.size, symsect,
2653 info->index.sym) | INIT_OFFSET_MASK;
2654 pr_debug("\t%s\n", info->secstrings + symsect->sh_name);
2656 src = (void *)info->hdr + symsect->sh_offset;
2657 nsrc = symsect->sh_size / sizeof(*src);
2659 /* Compute total space required for the core symbols' strtab. */
2660 for (ndst = i = 0; i < nsrc; i++) {
2661 if (i == 0 || is_livepatch_module(mod) ||
2662 is_core_symbol(src+i, info->sechdrs, info->hdr->e_shnum,
2663 info->index.pcpu)) {
2664 strtab_size += strlen(&info->strtab[src[i].st_name])+1;
2665 ndst++;
2669 /* Append room for core symbols at end of core part. */
2670 info->symoffs = ALIGN(mod->core_layout.size, symsect->sh_addralign ?: 1);
2671 info->stroffs = mod->core_layout.size = info->symoffs + ndst * sizeof(Elf_Sym);
2672 mod->core_layout.size += strtab_size;
2673 info->core_typeoffs = mod->core_layout.size;
2674 mod->core_layout.size += ndst * sizeof(char);
2675 mod->core_layout.size = debug_align(mod->core_layout.size);
2677 /* Put string table section at end of init part of module. */
2678 strsect->sh_flags |= SHF_ALLOC;
2679 strsect->sh_entsize = get_offset(mod, &mod->init_layout.size, strsect,
2680 info->index.str) | INIT_OFFSET_MASK;
2681 pr_debug("\t%s\n", info->secstrings + strsect->sh_name);
2683 /* We'll tack temporary mod_kallsyms on the end. */
2684 mod->init_layout.size = ALIGN(mod->init_layout.size,
2685 __alignof__(struct mod_kallsyms));
2686 info->mod_kallsyms_init_off = mod->init_layout.size;
2687 mod->init_layout.size += sizeof(struct mod_kallsyms);
2688 info->init_typeoffs = mod->init_layout.size;
2689 mod->init_layout.size += nsrc * sizeof(char);
2690 mod->init_layout.size = debug_align(mod->init_layout.size);
2694 * We use the full symtab and strtab which layout_symtab arranged to
2695 * be appended to the init section. Later we switch to the cut-down
2696 * core-only ones.
2698 static void add_kallsyms(struct module *mod, const struct load_info *info)
2700 unsigned int i, ndst;
2701 const Elf_Sym *src;
2702 Elf_Sym *dst;
2703 char *s;
2704 Elf_Shdr *symsec = &info->sechdrs[info->index.sym];
2706 /* Set up to point into init section. */
2707 mod->kallsyms = mod->init_layout.base + info->mod_kallsyms_init_off;
2709 mod->kallsyms->symtab = (void *)symsec->sh_addr;
2710 mod->kallsyms->num_symtab = symsec->sh_size / sizeof(Elf_Sym);
2711 /* Make sure we get permanent strtab: don't use info->strtab. */
2712 mod->kallsyms->strtab = (void *)info->sechdrs[info->index.str].sh_addr;
2713 mod->kallsyms->typetab = mod->init_layout.base + info->init_typeoffs;
2716 * Now populate the cut down core kallsyms for after init
2717 * and set types up while we still have access to sections.
2719 mod->core_kallsyms.symtab = dst = mod->core_layout.base + info->symoffs;
2720 mod->core_kallsyms.strtab = s = mod->core_layout.base + info->stroffs;
2721 mod->core_kallsyms.typetab = mod->core_layout.base + info->core_typeoffs;
2722 src = mod->kallsyms->symtab;
2723 for (ndst = i = 0; i < mod->kallsyms->num_symtab; i++) {
2724 mod->kallsyms->typetab[i] = elf_type(src + i, info);
2725 if (i == 0 || is_livepatch_module(mod) ||
2726 is_core_symbol(src+i, info->sechdrs, info->hdr->e_shnum,
2727 info->index.pcpu)) {
2728 mod->core_kallsyms.typetab[ndst] =
2729 mod->kallsyms->typetab[i];
2730 dst[ndst] = src[i];
2731 dst[ndst++].st_name = s - mod->core_kallsyms.strtab;
2732 s += strlcpy(s, &mod->kallsyms->strtab[src[i].st_name],
2733 KSYM_NAME_LEN) + 1;
2736 mod->core_kallsyms.num_symtab = ndst;
2738 #else
2739 static inline void layout_symtab(struct module *mod, struct load_info *info)
2743 static void add_kallsyms(struct module *mod, const struct load_info *info)
2746 #endif /* CONFIG_KALLSYMS */
2748 static void dynamic_debug_setup(struct module *mod, struct _ddebug *debug, unsigned int num)
2750 if (!debug)
2751 return;
2752 ddebug_add_module(debug, num, mod->name);
2755 static void dynamic_debug_remove(struct module *mod, struct _ddebug *debug)
2757 if (debug)
2758 ddebug_remove_module(mod->name);
2761 void * __weak module_alloc(unsigned long size)
2763 return vmalloc_exec(size);
2766 bool __weak module_exit_section(const char *name)
2768 return strstarts(name, ".exit");
2771 #ifdef CONFIG_DEBUG_KMEMLEAK
2772 static void kmemleak_load_module(const struct module *mod,
2773 const struct load_info *info)
2775 unsigned int i;
2777 /* only scan the sections containing data */
2778 kmemleak_scan_area(mod, sizeof(struct module), GFP_KERNEL);
2780 for (i = 1; i < info->hdr->e_shnum; i++) {
2781 /* Scan all writable sections that's not executable */
2782 if (!(info->sechdrs[i].sh_flags & SHF_ALLOC) ||
2783 !(info->sechdrs[i].sh_flags & SHF_WRITE) ||
2784 (info->sechdrs[i].sh_flags & SHF_EXECINSTR))
2785 continue;
2787 kmemleak_scan_area((void *)info->sechdrs[i].sh_addr,
2788 info->sechdrs[i].sh_size, GFP_KERNEL);
2791 #else
2792 static inline void kmemleak_load_module(const struct module *mod,
2793 const struct load_info *info)
2796 #endif
2798 #ifdef CONFIG_MODULE_SIG
2799 static int module_sig_check(struct load_info *info, int flags)
2801 int err = -ENODATA;
2802 const unsigned long markerlen = sizeof(MODULE_SIG_STRING) - 1;
2803 const char *reason;
2804 const void *mod = info->hdr;
2807 * Require flags == 0, as a module with version information
2808 * removed is no longer the module that was signed
2810 if (flags == 0 &&
2811 info->len > markerlen &&
2812 memcmp(mod + info->len - markerlen, MODULE_SIG_STRING, markerlen) == 0) {
2813 /* We truncate the module to discard the signature */
2814 info->len -= markerlen;
2815 err = mod_verify_sig(mod, info);
2818 switch (err) {
2819 case 0:
2820 info->sig_ok = true;
2821 return 0;
2823 /* We don't permit modules to be loaded into trusted kernels
2824 * without a valid signature on them, but if we're not
2825 * enforcing, certain errors are non-fatal.
2827 case -ENODATA:
2828 reason = "Loading of unsigned module";
2829 goto decide;
2830 case -ENOPKG:
2831 reason = "Loading of module with unsupported crypto";
2832 goto decide;
2833 case -ENOKEY:
2834 reason = "Loading of module with unavailable key";
2835 decide:
2836 if (is_module_sig_enforced()) {
2837 pr_notice("%s is rejected\n", reason);
2838 return -EKEYREJECTED;
2841 return security_locked_down(LOCKDOWN_MODULE_SIGNATURE);
2843 /* All other errors are fatal, including nomem, unparseable
2844 * signatures and signature check failures - even if signatures
2845 * aren't required.
2847 default:
2848 return err;
2851 #else /* !CONFIG_MODULE_SIG */
2852 static int module_sig_check(struct load_info *info, int flags)
2854 return 0;
2856 #endif /* !CONFIG_MODULE_SIG */
2858 /* Sanity checks against invalid binaries, wrong arch, weird elf version. */
2859 static int elf_header_check(struct load_info *info)
2861 if (info->len < sizeof(*(info->hdr)))
2862 return -ENOEXEC;
2864 if (memcmp(info->hdr->e_ident, ELFMAG, SELFMAG) != 0
2865 || info->hdr->e_type != ET_REL
2866 || !elf_check_arch(info->hdr)
2867 || info->hdr->e_shentsize != sizeof(Elf_Shdr))
2868 return -ENOEXEC;
2870 if (info->hdr->e_shoff >= info->len
2871 || (info->hdr->e_shnum * sizeof(Elf_Shdr) >
2872 info->len - info->hdr->e_shoff))
2873 return -ENOEXEC;
2875 return 0;
2878 #define COPY_CHUNK_SIZE (16*PAGE_SIZE)
2880 static int copy_chunked_from_user(void *dst, const void __user *usrc, unsigned long len)
2882 do {
2883 unsigned long n = min(len, COPY_CHUNK_SIZE);
2885 if (copy_from_user(dst, usrc, n) != 0)
2886 return -EFAULT;
2887 cond_resched();
2888 dst += n;
2889 usrc += n;
2890 len -= n;
2891 } while (len);
2892 return 0;
2895 #ifdef CONFIG_LIVEPATCH
2896 static int check_modinfo_livepatch(struct module *mod, struct load_info *info)
2898 if (get_modinfo(info, "livepatch")) {
2899 mod->klp = true;
2900 add_taint_module(mod, TAINT_LIVEPATCH, LOCKDEP_STILL_OK);
2901 pr_notice_once("%s: tainting kernel with TAINT_LIVEPATCH\n",
2902 mod->name);
2905 return 0;
2907 #else /* !CONFIG_LIVEPATCH */
2908 static int check_modinfo_livepatch(struct module *mod, struct load_info *info)
2910 if (get_modinfo(info, "livepatch")) {
2911 pr_err("%s: module is marked as livepatch module, but livepatch support is disabled",
2912 mod->name);
2913 return -ENOEXEC;
2916 return 0;
2918 #endif /* CONFIG_LIVEPATCH */
2920 static void check_modinfo_retpoline(struct module *mod, struct load_info *info)
2922 if (retpoline_module_ok(get_modinfo(info, "retpoline")))
2923 return;
2925 pr_warn("%s: loading module not compiled with retpoline compiler.\n",
2926 mod->name);
2929 /* Sets info->hdr and info->len. */
2930 static int copy_module_from_user(const void __user *umod, unsigned long len,
2931 struct load_info *info)
2933 int err;
2935 info->len = len;
2936 if (info->len < sizeof(*(info->hdr)))
2937 return -ENOEXEC;
2939 err = security_kernel_load_data(LOADING_MODULE);
2940 if (err)
2941 return err;
2943 /* Suck in entire file: we'll want most of it. */
2944 info->hdr = __vmalloc(info->len,
2945 GFP_KERNEL | __GFP_NOWARN, PAGE_KERNEL);
2946 if (!info->hdr)
2947 return -ENOMEM;
2949 if (copy_chunked_from_user(info->hdr, umod, info->len) != 0) {
2950 vfree(info->hdr);
2951 return -EFAULT;
2954 return 0;
2957 static void free_copy(struct load_info *info)
2959 vfree(info->hdr);
2962 static int rewrite_section_headers(struct load_info *info, int flags)
2964 unsigned int i;
2966 /* This should always be true, but let's be sure. */
2967 info->sechdrs[0].sh_addr = 0;
2969 for (i = 1; i < info->hdr->e_shnum; i++) {
2970 Elf_Shdr *shdr = &info->sechdrs[i];
2971 if (shdr->sh_type != SHT_NOBITS
2972 && info->len < shdr->sh_offset + shdr->sh_size) {
2973 pr_err("Module len %lu truncated\n", info->len);
2974 return -ENOEXEC;
2977 /* Mark all sections sh_addr with their address in the
2978 temporary image. */
2979 shdr->sh_addr = (size_t)info->hdr + shdr->sh_offset;
2981 #ifndef CONFIG_MODULE_UNLOAD
2982 /* Don't load .exit sections */
2983 if (module_exit_section(info->secstrings+shdr->sh_name))
2984 shdr->sh_flags &= ~(unsigned long)SHF_ALLOC;
2985 #endif
2988 /* Track but don't keep modinfo and version sections. */
2989 info->sechdrs[info->index.vers].sh_flags &= ~(unsigned long)SHF_ALLOC;
2990 info->sechdrs[info->index.info].sh_flags &= ~(unsigned long)SHF_ALLOC;
2992 return 0;
2996 * Set up our basic convenience variables (pointers to section headers,
2997 * search for module section index etc), and do some basic section
2998 * verification.
3000 * Set info->mod to the temporary copy of the module in info->hdr. The final one
3001 * will be allocated in move_module().
3003 static int setup_load_info(struct load_info *info, int flags)
3005 unsigned int i;
3007 /* Set up the convenience variables */
3008 info->sechdrs = (void *)info->hdr + info->hdr->e_shoff;
3009 info->secstrings = (void *)info->hdr
3010 + info->sechdrs[info->hdr->e_shstrndx].sh_offset;
3012 /* Try to find a name early so we can log errors with a module name */
3013 info->index.info = find_sec(info, ".modinfo");
3014 if (!info->index.info)
3015 info->name = "(missing .modinfo section)";
3016 else
3017 info->name = get_modinfo(info, "name");
3019 /* Find internal symbols and strings. */
3020 for (i = 1; i < info->hdr->e_shnum; i++) {
3021 if (info->sechdrs[i].sh_type == SHT_SYMTAB) {
3022 info->index.sym = i;
3023 info->index.str = info->sechdrs[i].sh_link;
3024 info->strtab = (char *)info->hdr
3025 + info->sechdrs[info->index.str].sh_offset;
3026 break;
3030 if (info->index.sym == 0) {
3031 pr_warn("%s: module has no symbols (stripped?)\n", info->name);
3032 return -ENOEXEC;
3035 info->index.mod = find_sec(info, ".gnu.linkonce.this_module");
3036 if (!info->index.mod) {
3037 pr_warn("%s: No module found in object\n",
3038 info->name ?: "(missing .modinfo name field)");
3039 return -ENOEXEC;
3041 /* This is temporary: point mod into copy of data. */
3042 info->mod = (void *)info->hdr + info->sechdrs[info->index.mod].sh_offset;
3045 * If we didn't load the .modinfo 'name' field earlier, fall back to
3046 * on-disk struct mod 'name' field.
3048 if (!info->name)
3049 info->name = info->mod->name;
3051 if (flags & MODULE_INIT_IGNORE_MODVERSIONS)
3052 info->index.vers = 0; /* Pretend no __versions section! */
3053 else
3054 info->index.vers = find_sec(info, "__versions");
3056 info->index.pcpu = find_pcpusec(info);
3058 return 0;
3061 static int check_modinfo(struct module *mod, struct load_info *info, int flags)
3063 const char *modmagic = get_modinfo(info, "vermagic");
3064 int err;
3066 if (flags & MODULE_INIT_IGNORE_VERMAGIC)
3067 modmagic = NULL;
3069 /* This is allowed: modprobe --force will invalidate it. */
3070 if (!modmagic) {
3071 err = try_to_force_load(mod, "bad vermagic");
3072 if (err)
3073 return err;
3074 } else if (!same_magic(modmagic, vermagic, info->index.vers)) {
3075 pr_err("%s: version magic '%s' should be '%s'\n",
3076 info->name, modmagic, vermagic);
3077 return -ENOEXEC;
3080 if (!get_modinfo(info, "intree")) {
3081 if (!test_taint(TAINT_OOT_MODULE))
3082 pr_warn("%s: loading out-of-tree module taints kernel.\n",
3083 mod->name);
3084 add_taint_module(mod, TAINT_OOT_MODULE, LOCKDEP_STILL_OK);
3087 check_modinfo_retpoline(mod, info);
3089 if (get_modinfo(info, "staging")) {
3090 add_taint_module(mod, TAINT_CRAP, LOCKDEP_STILL_OK);
3091 pr_warn("%s: module is from the staging directory, the quality "
3092 "is unknown, you have been warned.\n", mod->name);
3095 err = check_modinfo_livepatch(mod, info);
3096 if (err)
3097 return err;
3099 /* Set up license info based on the info section */
3100 set_license(mod, get_modinfo(info, "license"));
3102 return 0;
3105 static int find_module_sections(struct module *mod, struct load_info *info)
3107 mod->kp = section_objs(info, "__param",
3108 sizeof(*mod->kp), &mod->num_kp);
3109 mod->syms = section_objs(info, "__ksymtab",
3110 sizeof(*mod->syms), &mod->num_syms);
3111 mod->crcs = section_addr(info, "__kcrctab");
3112 mod->gpl_syms = section_objs(info, "__ksymtab_gpl",
3113 sizeof(*mod->gpl_syms),
3114 &mod->num_gpl_syms);
3115 mod->gpl_crcs = section_addr(info, "__kcrctab_gpl");
3116 mod->gpl_future_syms = section_objs(info,
3117 "__ksymtab_gpl_future",
3118 sizeof(*mod->gpl_future_syms),
3119 &mod->num_gpl_future_syms);
3120 mod->gpl_future_crcs = section_addr(info, "__kcrctab_gpl_future");
3122 #ifdef CONFIG_UNUSED_SYMBOLS
3123 mod->unused_syms = section_objs(info, "__ksymtab_unused",
3124 sizeof(*mod->unused_syms),
3125 &mod->num_unused_syms);
3126 mod->unused_crcs = section_addr(info, "__kcrctab_unused");
3127 mod->unused_gpl_syms = section_objs(info, "__ksymtab_unused_gpl",
3128 sizeof(*mod->unused_gpl_syms),
3129 &mod->num_unused_gpl_syms);
3130 mod->unused_gpl_crcs = section_addr(info, "__kcrctab_unused_gpl");
3131 #endif
3132 #ifdef CONFIG_CONSTRUCTORS
3133 mod->ctors = section_objs(info, ".ctors",
3134 sizeof(*mod->ctors), &mod->num_ctors);
3135 if (!mod->ctors)
3136 mod->ctors = section_objs(info, ".init_array",
3137 sizeof(*mod->ctors), &mod->num_ctors);
3138 else if (find_sec(info, ".init_array")) {
3140 * This shouldn't happen with same compiler and binutils
3141 * building all parts of the module.
3143 pr_warn("%s: has both .ctors and .init_array.\n",
3144 mod->name);
3145 return -EINVAL;
3147 #endif
3149 #ifdef CONFIG_TRACEPOINTS
3150 mod->tracepoints_ptrs = section_objs(info, "__tracepoints_ptrs",
3151 sizeof(*mod->tracepoints_ptrs),
3152 &mod->num_tracepoints);
3153 #endif
3154 #ifdef CONFIG_TREE_SRCU
3155 mod->srcu_struct_ptrs = section_objs(info, "___srcu_struct_ptrs",
3156 sizeof(*mod->srcu_struct_ptrs),
3157 &mod->num_srcu_structs);
3158 #endif
3159 #ifdef CONFIG_BPF_EVENTS
3160 mod->bpf_raw_events = section_objs(info, "__bpf_raw_tp_map",
3161 sizeof(*mod->bpf_raw_events),
3162 &mod->num_bpf_raw_events);
3163 #endif
3164 #ifdef CONFIG_JUMP_LABEL
3165 mod->jump_entries = section_objs(info, "__jump_table",
3166 sizeof(*mod->jump_entries),
3167 &mod->num_jump_entries);
3168 #endif
3169 #ifdef CONFIG_EVENT_TRACING
3170 mod->trace_events = section_objs(info, "_ftrace_events",
3171 sizeof(*mod->trace_events),
3172 &mod->num_trace_events);
3173 mod->trace_evals = section_objs(info, "_ftrace_eval_map",
3174 sizeof(*mod->trace_evals),
3175 &mod->num_trace_evals);
3176 #endif
3177 #ifdef CONFIG_TRACING
3178 mod->trace_bprintk_fmt_start = section_objs(info, "__trace_printk_fmt",
3179 sizeof(*mod->trace_bprintk_fmt_start),
3180 &mod->num_trace_bprintk_fmt);
3181 #endif
3182 #ifdef CONFIG_FTRACE_MCOUNT_RECORD
3183 /* sechdrs[0].sh_size is always zero */
3184 mod->ftrace_callsites = section_objs(info, FTRACE_CALLSITE_SECTION,
3185 sizeof(*mod->ftrace_callsites),
3186 &mod->num_ftrace_callsites);
3187 #endif
3188 #ifdef CONFIG_FUNCTION_ERROR_INJECTION
3189 mod->ei_funcs = section_objs(info, "_error_injection_whitelist",
3190 sizeof(*mod->ei_funcs),
3191 &mod->num_ei_funcs);
3192 #endif
3193 mod->extable = section_objs(info, "__ex_table",
3194 sizeof(*mod->extable), &mod->num_exentries);
3196 if (section_addr(info, "__obsparm"))
3197 pr_warn("%s: Ignoring obsolete parameters\n", mod->name);
3199 info->debug = section_objs(info, "__verbose",
3200 sizeof(*info->debug), &info->num_debug);
3202 return 0;
3205 static int move_module(struct module *mod, struct load_info *info)
3207 int i;
3208 void *ptr;
3210 /* Do the allocs. */
3211 ptr = module_alloc(mod->core_layout.size);
3213 * The pointer to this block is stored in the module structure
3214 * which is inside the block. Just mark it as not being a
3215 * leak.
3217 kmemleak_not_leak(ptr);
3218 if (!ptr)
3219 return -ENOMEM;
3221 memset(ptr, 0, mod->core_layout.size);
3222 mod->core_layout.base = ptr;
3224 if (mod->init_layout.size) {
3225 ptr = module_alloc(mod->init_layout.size);
3227 * The pointer to this block is stored in the module structure
3228 * which is inside the block. This block doesn't need to be
3229 * scanned as it contains data and code that will be freed
3230 * after the module is initialized.
3232 kmemleak_ignore(ptr);
3233 if (!ptr) {
3234 module_memfree(mod->core_layout.base);
3235 return -ENOMEM;
3237 memset(ptr, 0, mod->init_layout.size);
3238 mod->init_layout.base = ptr;
3239 } else
3240 mod->init_layout.base = NULL;
3242 /* Transfer each section which specifies SHF_ALLOC */
3243 pr_debug("final section addresses:\n");
3244 for (i = 0; i < info->hdr->e_shnum; i++) {
3245 void *dest;
3246 Elf_Shdr *shdr = &info->sechdrs[i];
3248 if (!(shdr->sh_flags & SHF_ALLOC))
3249 continue;
3251 if (shdr->sh_entsize & INIT_OFFSET_MASK)
3252 dest = mod->init_layout.base
3253 + (shdr->sh_entsize & ~INIT_OFFSET_MASK);
3254 else
3255 dest = mod->core_layout.base + shdr->sh_entsize;
3257 if (shdr->sh_type != SHT_NOBITS)
3258 memcpy(dest, (void *)shdr->sh_addr, shdr->sh_size);
3259 /* Update sh_addr to point to copy in image. */
3260 shdr->sh_addr = (unsigned long)dest;
3261 pr_debug("\t0x%lx %s\n",
3262 (long)shdr->sh_addr, info->secstrings + shdr->sh_name);
3265 return 0;
3268 static int check_module_license_and_versions(struct module *mod)
3270 int prev_taint = test_taint(TAINT_PROPRIETARY_MODULE);
3273 * ndiswrapper is under GPL by itself, but loads proprietary modules.
3274 * Don't use add_taint_module(), as it would prevent ndiswrapper from
3275 * using GPL-only symbols it needs.
3277 if (strcmp(mod->name, "ndiswrapper") == 0)
3278 add_taint(TAINT_PROPRIETARY_MODULE, LOCKDEP_NOW_UNRELIABLE);
3280 /* driverloader was caught wrongly pretending to be under GPL */
3281 if (strcmp(mod->name, "driverloader") == 0)
3282 add_taint_module(mod, TAINT_PROPRIETARY_MODULE,
3283 LOCKDEP_NOW_UNRELIABLE);
3285 /* lve claims to be GPL but upstream won't provide source */
3286 if (strcmp(mod->name, "lve") == 0)
3287 add_taint_module(mod, TAINT_PROPRIETARY_MODULE,
3288 LOCKDEP_NOW_UNRELIABLE);
3290 if (!prev_taint && test_taint(TAINT_PROPRIETARY_MODULE))
3291 pr_warn("%s: module license taints kernel.\n", mod->name);
3293 #ifdef CONFIG_MODVERSIONS
3294 if ((mod->num_syms && !mod->crcs)
3295 || (mod->num_gpl_syms && !mod->gpl_crcs)
3296 || (mod->num_gpl_future_syms && !mod->gpl_future_crcs)
3297 #ifdef CONFIG_UNUSED_SYMBOLS
3298 || (mod->num_unused_syms && !mod->unused_crcs)
3299 || (mod->num_unused_gpl_syms && !mod->unused_gpl_crcs)
3300 #endif
3302 return try_to_force_load(mod,
3303 "no versions for exported symbols");
3305 #endif
3306 return 0;
3309 static void flush_module_icache(const struct module *mod)
3311 mm_segment_t old_fs;
3313 /* flush the icache in correct context */
3314 old_fs = get_fs();
3315 set_fs(KERNEL_DS);
3318 * Flush the instruction cache, since we've played with text.
3319 * Do it before processing of module parameters, so the module
3320 * can provide parameter accessor functions of its own.
3322 if (mod->init_layout.base)
3323 flush_icache_range((unsigned long)mod->init_layout.base,
3324 (unsigned long)mod->init_layout.base
3325 + mod->init_layout.size);
3326 flush_icache_range((unsigned long)mod->core_layout.base,
3327 (unsigned long)mod->core_layout.base + mod->core_layout.size);
3329 set_fs(old_fs);
3332 int __weak module_frob_arch_sections(Elf_Ehdr *hdr,
3333 Elf_Shdr *sechdrs,
3334 char *secstrings,
3335 struct module *mod)
3337 return 0;
3340 /* module_blacklist is a comma-separated list of module names */
3341 static char *module_blacklist;
3342 static bool blacklisted(const char *module_name)
3344 const char *p;
3345 size_t len;
3347 if (!module_blacklist)
3348 return false;
3350 for (p = module_blacklist; *p; p += len) {
3351 len = strcspn(p, ",");
3352 if (strlen(module_name) == len && !memcmp(module_name, p, len))
3353 return true;
3354 if (p[len] == ',')
3355 len++;
3357 return false;
3359 core_param(module_blacklist, module_blacklist, charp, 0400);
3361 static struct module *layout_and_allocate(struct load_info *info, int flags)
3363 struct module *mod;
3364 unsigned int ndx;
3365 int err;
3367 err = check_modinfo(info->mod, info, flags);
3368 if (err)
3369 return ERR_PTR(err);
3371 /* Allow arches to frob section contents and sizes. */
3372 err = module_frob_arch_sections(info->hdr, info->sechdrs,
3373 info->secstrings, info->mod);
3374 if (err < 0)
3375 return ERR_PTR(err);
3377 /* We will do a special allocation for per-cpu sections later. */
3378 info->sechdrs[info->index.pcpu].sh_flags &= ~(unsigned long)SHF_ALLOC;
3381 * Mark ro_after_init section with SHF_RO_AFTER_INIT so that
3382 * layout_sections() can put it in the right place.
3383 * Note: ro_after_init sections also have SHF_{WRITE,ALLOC} set.
3385 ndx = find_sec(info, ".data..ro_after_init");
3386 if (ndx)
3387 info->sechdrs[ndx].sh_flags |= SHF_RO_AFTER_INIT;
3389 * Mark the __jump_table section as ro_after_init as well: these data
3390 * structures are never modified, with the exception of entries that
3391 * refer to code in the __init section, which are annotated as such
3392 * at module load time.
3394 ndx = find_sec(info, "__jump_table");
3395 if (ndx)
3396 info->sechdrs[ndx].sh_flags |= SHF_RO_AFTER_INIT;
3398 /* Determine total sizes, and put offsets in sh_entsize. For now
3399 this is done generically; there doesn't appear to be any
3400 special cases for the architectures. */
3401 layout_sections(info->mod, info);
3402 layout_symtab(info->mod, info);
3404 /* Allocate and move to the final place */
3405 err = move_module(info->mod, info);
3406 if (err)
3407 return ERR_PTR(err);
3409 /* Module has been copied to its final place now: return it. */
3410 mod = (void *)info->sechdrs[info->index.mod].sh_addr;
3411 kmemleak_load_module(mod, info);
3412 return mod;
3415 /* mod is no longer valid after this! */
3416 static void module_deallocate(struct module *mod, struct load_info *info)
3418 percpu_modfree(mod);
3419 module_arch_freeing_init(mod);
3420 module_memfree(mod->init_layout.base);
3421 module_memfree(mod->core_layout.base);
3424 int __weak module_finalize(const Elf_Ehdr *hdr,
3425 const Elf_Shdr *sechdrs,
3426 struct module *me)
3428 return 0;
3431 static int post_relocation(struct module *mod, const struct load_info *info)
3433 /* Sort exception table now relocations are done. */
3434 sort_extable(mod->extable, mod->extable + mod->num_exentries);
3436 /* Copy relocated percpu area over. */
3437 percpu_modcopy(mod, (void *)info->sechdrs[info->index.pcpu].sh_addr,
3438 info->sechdrs[info->index.pcpu].sh_size);
3440 /* Setup kallsyms-specific fields. */
3441 add_kallsyms(mod, info);
3443 /* Arch-specific module finalizing. */
3444 return module_finalize(info->hdr, info->sechdrs, mod);
3447 /* Is this module of this name done loading? No locks held. */
3448 static bool finished_loading(const char *name)
3450 struct module *mod;
3451 bool ret;
3454 * The module_mutex should not be a heavily contended lock;
3455 * if we get the occasional sleep here, we'll go an extra iteration
3456 * in the wait_event_interruptible(), which is harmless.
3458 sched_annotate_sleep();
3459 mutex_lock(&module_mutex);
3460 mod = find_module_all(name, strlen(name), true);
3461 ret = !mod || mod->state == MODULE_STATE_LIVE;
3462 mutex_unlock(&module_mutex);
3464 return ret;
3467 /* Call module constructors. */
3468 static void do_mod_ctors(struct module *mod)
3470 #ifdef CONFIG_CONSTRUCTORS
3471 unsigned long i;
3473 for (i = 0; i < mod->num_ctors; i++)
3474 mod->ctors[i]();
3475 #endif
3478 /* For freeing module_init on success, in case kallsyms traversing */
3479 struct mod_initfree {
3480 struct llist_node node;
3481 void *module_init;
3484 static void do_free_init(struct work_struct *w)
3486 struct llist_node *pos, *n, *list;
3487 struct mod_initfree *initfree;
3489 list = llist_del_all(&init_free_list);
3491 synchronize_rcu();
3493 llist_for_each_safe(pos, n, list) {
3494 initfree = container_of(pos, struct mod_initfree, node);
3495 module_memfree(initfree->module_init);
3496 kfree(initfree);
3500 static int __init modules_wq_init(void)
3502 INIT_WORK(&init_free_wq, do_free_init);
3503 init_llist_head(&init_free_list);
3504 return 0;
3506 module_init(modules_wq_init);
3509 * This is where the real work happens.
3511 * Keep it uninlined to provide a reliable breakpoint target, e.g. for the gdb
3512 * helper command 'lx-symbols'.
3514 static noinline int do_init_module(struct module *mod)
3516 int ret = 0;
3517 struct mod_initfree *freeinit;
3519 freeinit = kmalloc(sizeof(*freeinit), GFP_KERNEL);
3520 if (!freeinit) {
3521 ret = -ENOMEM;
3522 goto fail;
3524 freeinit->module_init = mod->init_layout.base;
3527 * We want to find out whether @mod uses async during init. Clear
3528 * PF_USED_ASYNC. async_schedule*() will set it.
3530 current->flags &= ~PF_USED_ASYNC;
3532 do_mod_ctors(mod);
3533 /* Start the module */
3534 if (mod->init != NULL)
3535 ret = do_one_initcall(mod->init);
3536 if (ret < 0) {
3537 goto fail_free_freeinit;
3539 if (ret > 0) {
3540 pr_warn("%s: '%s'->init suspiciously returned %d, it should "
3541 "follow 0/-E convention\n"
3542 "%s: loading module anyway...\n",
3543 __func__, mod->name, ret, __func__);
3544 dump_stack();
3547 /* Now it's a first class citizen! */
3548 mod->state = MODULE_STATE_LIVE;
3549 blocking_notifier_call_chain(&module_notify_list,
3550 MODULE_STATE_LIVE, mod);
3553 * We need to finish all async code before the module init sequence
3554 * is done. This has potential to deadlock. For example, a newly
3555 * detected block device can trigger request_module() of the
3556 * default iosched from async probing task. Once userland helper
3557 * reaches here, async_synchronize_full() will wait on the async
3558 * task waiting on request_module() and deadlock.
3560 * This deadlock is avoided by perfomring async_synchronize_full()
3561 * iff module init queued any async jobs. This isn't a full
3562 * solution as it will deadlock the same if module loading from
3563 * async jobs nests more than once; however, due to the various
3564 * constraints, this hack seems to be the best option for now.
3565 * Please refer to the following thread for details.
3567 * http://thread.gmane.org/gmane.linux.kernel/1420814
3569 if (!mod->async_probe_requested && (current->flags & PF_USED_ASYNC))
3570 async_synchronize_full();
3572 ftrace_free_mem(mod, mod->init_layout.base, mod->init_layout.base +
3573 mod->init_layout.size);
3574 mutex_lock(&module_mutex);
3575 /* Drop initial reference. */
3576 module_put(mod);
3577 trim_init_extable(mod);
3578 #ifdef CONFIG_KALLSYMS
3579 /* Switch to core kallsyms now init is done: kallsyms may be walking! */
3580 rcu_assign_pointer(mod->kallsyms, &mod->core_kallsyms);
3581 #endif
3582 module_enable_ro(mod, true);
3583 mod_tree_remove_init(mod);
3584 module_arch_freeing_init(mod);
3585 mod->init_layout.base = NULL;
3586 mod->init_layout.size = 0;
3587 mod->init_layout.ro_size = 0;
3588 mod->init_layout.ro_after_init_size = 0;
3589 mod->init_layout.text_size = 0;
3591 * We want to free module_init, but be aware that kallsyms may be
3592 * walking this with preempt disabled. In all the failure paths, we
3593 * call synchronize_rcu(), but we don't want to slow down the success
3594 * path. module_memfree() cannot be called in an interrupt, so do the
3595 * work and call synchronize_rcu() in a work queue.
3597 * Note that module_alloc() on most architectures creates W+X page
3598 * mappings which won't be cleaned up until do_free_init() runs. Any
3599 * code such as mark_rodata_ro() which depends on those mappings to
3600 * be cleaned up needs to sync with the queued work - ie
3601 * rcu_barrier()
3603 if (llist_add(&freeinit->node, &init_free_list))
3604 schedule_work(&init_free_wq);
3606 mutex_unlock(&module_mutex);
3607 wake_up_all(&module_wq);
3609 return 0;
3611 fail_free_freeinit:
3612 kfree(freeinit);
3613 fail:
3614 /* Try to protect us from buggy refcounters. */
3615 mod->state = MODULE_STATE_GOING;
3616 synchronize_rcu();
3617 module_put(mod);
3618 blocking_notifier_call_chain(&module_notify_list,
3619 MODULE_STATE_GOING, mod);
3620 klp_module_going(mod);
3621 ftrace_release_mod(mod);
3622 free_module(mod);
3623 wake_up_all(&module_wq);
3624 return ret;
3627 static int may_init_module(void)
3629 if (!capable(CAP_SYS_MODULE) || modules_disabled)
3630 return -EPERM;
3632 return 0;
3636 * We try to place it in the list now to make sure it's unique before
3637 * we dedicate too many resources. In particular, temporary percpu
3638 * memory exhaustion.
3640 static int add_unformed_module(struct module *mod)
3642 int err;
3643 struct module *old;
3645 mod->state = MODULE_STATE_UNFORMED;
3647 again:
3648 mutex_lock(&module_mutex);
3649 old = find_module_all(mod->name, strlen(mod->name), true);
3650 if (old != NULL) {
3651 if (old->state != MODULE_STATE_LIVE) {
3652 /* Wait in case it fails to load. */
3653 mutex_unlock(&module_mutex);
3654 err = wait_event_interruptible(module_wq,
3655 finished_loading(mod->name));
3656 if (err)
3657 goto out_unlocked;
3658 goto again;
3660 err = -EEXIST;
3661 goto out;
3663 mod_update_bounds(mod);
3664 list_add_rcu(&mod->list, &modules);
3665 mod_tree_insert(mod);
3666 err = 0;
3668 out:
3669 mutex_unlock(&module_mutex);
3670 out_unlocked:
3671 return err;
3674 static int complete_formation(struct module *mod, struct load_info *info)
3676 int err;
3678 mutex_lock(&module_mutex);
3680 /* Find duplicate symbols (must be called under lock). */
3681 err = verify_exported_symbols(mod);
3682 if (err < 0)
3683 goto out;
3685 /* This relies on module_mutex for list integrity. */
3686 module_bug_finalize(info->hdr, info->sechdrs, mod);
3688 module_enable_ro(mod, false);
3689 module_enable_nx(mod);
3690 module_enable_x(mod);
3692 /* Mark state as coming so strong_try_module_get() ignores us,
3693 * but kallsyms etc. can see us. */
3694 mod->state = MODULE_STATE_COMING;
3695 mutex_unlock(&module_mutex);
3697 return 0;
3699 out:
3700 mutex_unlock(&module_mutex);
3701 return err;
3704 static int prepare_coming_module(struct module *mod)
3706 int err;
3708 ftrace_module_enable(mod);
3709 err = klp_module_coming(mod);
3710 if (err)
3711 return err;
3713 blocking_notifier_call_chain(&module_notify_list,
3714 MODULE_STATE_COMING, mod);
3715 return 0;
3718 static int unknown_module_param_cb(char *param, char *val, const char *modname,
3719 void *arg)
3721 struct module *mod = arg;
3722 int ret;
3724 if (strcmp(param, "async_probe") == 0) {
3725 mod->async_probe_requested = true;
3726 return 0;
3729 /* Check for magic 'dyndbg' arg */
3730 ret = ddebug_dyndbg_module_param_cb(param, val, modname);
3731 if (ret != 0)
3732 pr_warn("%s: unknown parameter '%s' ignored\n", modname, param);
3733 return 0;
3736 /* Allocate and load the module: note that size of section 0 is always
3737 zero, and we rely on this for optional sections. */
3738 static int load_module(struct load_info *info, const char __user *uargs,
3739 int flags)
3741 struct module *mod;
3742 long err = 0;
3743 char *after_dashes;
3745 err = elf_header_check(info);
3746 if (err)
3747 goto free_copy;
3749 err = setup_load_info(info, flags);
3750 if (err)
3751 goto free_copy;
3753 if (blacklisted(info->name)) {
3754 err = -EPERM;
3755 goto free_copy;
3758 err = module_sig_check(info, flags);
3759 if (err)
3760 goto free_copy;
3762 err = rewrite_section_headers(info, flags);
3763 if (err)
3764 goto free_copy;
3766 /* Check module struct version now, before we try to use module. */
3767 if (!check_modstruct_version(info, info->mod)) {
3768 err = -ENOEXEC;
3769 goto free_copy;
3772 /* Figure out module layout, and allocate all the memory. */
3773 mod = layout_and_allocate(info, flags);
3774 if (IS_ERR(mod)) {
3775 err = PTR_ERR(mod);
3776 goto free_copy;
3779 audit_log_kern_module(mod->name);
3781 /* Reserve our place in the list. */
3782 err = add_unformed_module(mod);
3783 if (err)
3784 goto free_module;
3786 #ifdef CONFIG_MODULE_SIG
3787 mod->sig_ok = info->sig_ok;
3788 if (!mod->sig_ok) {
3789 pr_notice_once("%s: module verification failed: signature "
3790 "and/or required key missing - tainting "
3791 "kernel\n", mod->name);
3792 add_taint_module(mod, TAINT_UNSIGNED_MODULE, LOCKDEP_STILL_OK);
3794 #endif
3796 /* To avoid stressing percpu allocator, do this once we're unique. */
3797 err = percpu_modalloc(mod, info);
3798 if (err)
3799 goto unlink_mod;
3801 /* Now module is in final location, initialize linked lists, etc. */
3802 err = module_unload_init(mod);
3803 if (err)
3804 goto unlink_mod;
3806 init_param_lock(mod);
3808 /* Now we've got everything in the final locations, we can
3809 * find optional sections. */
3810 err = find_module_sections(mod, info);
3811 if (err)
3812 goto free_unload;
3814 err = check_module_license_and_versions(mod);
3815 if (err)
3816 goto free_unload;
3818 /* Set up MODINFO_ATTR fields */
3819 setup_modinfo(mod, info);
3821 /* Fix up syms, so that st_value is a pointer to location. */
3822 err = simplify_symbols(mod, info);
3823 if (err < 0)
3824 goto free_modinfo;
3826 err = apply_relocations(mod, info);
3827 if (err < 0)
3828 goto free_modinfo;
3830 err = post_relocation(mod, info);
3831 if (err < 0)
3832 goto free_modinfo;
3834 flush_module_icache(mod);
3836 /* Now copy in args */
3837 mod->args = strndup_user(uargs, ~0UL >> 1);
3838 if (IS_ERR(mod->args)) {
3839 err = PTR_ERR(mod->args);
3840 goto free_arch_cleanup;
3843 dynamic_debug_setup(mod, info->debug, info->num_debug);
3845 /* Ftrace init must be called in the MODULE_STATE_UNFORMED state */
3846 ftrace_module_init(mod);
3848 /* Finally it's fully formed, ready to start executing. */
3849 err = complete_formation(mod, info);
3850 if (err)
3851 goto ddebug_cleanup;
3853 err = prepare_coming_module(mod);
3854 if (err)
3855 goto bug_cleanup;
3857 /* Module is ready to execute: parsing args may do that. */
3858 after_dashes = parse_args(mod->name, mod->args, mod->kp, mod->num_kp,
3859 -32768, 32767, mod,
3860 unknown_module_param_cb);
3861 if (IS_ERR(after_dashes)) {
3862 err = PTR_ERR(after_dashes);
3863 goto coming_cleanup;
3864 } else if (after_dashes) {
3865 pr_warn("%s: parameters '%s' after `--' ignored\n",
3866 mod->name, after_dashes);
3869 /* Link in to sysfs. */
3870 err = mod_sysfs_setup(mod, info, mod->kp, mod->num_kp);
3871 if (err < 0)
3872 goto coming_cleanup;
3874 if (is_livepatch_module(mod)) {
3875 err = copy_module_elf(mod, info);
3876 if (err < 0)
3877 goto sysfs_cleanup;
3880 /* Get rid of temporary copy. */
3881 free_copy(info);
3883 /* Done! */
3884 trace_module_load(mod);
3886 return do_init_module(mod);
3888 sysfs_cleanup:
3889 mod_sysfs_teardown(mod);
3890 coming_cleanup:
3891 mod->state = MODULE_STATE_GOING;
3892 destroy_params(mod->kp, mod->num_kp);
3893 blocking_notifier_call_chain(&module_notify_list,
3894 MODULE_STATE_GOING, mod);
3895 klp_module_going(mod);
3896 bug_cleanup:
3897 /* module_bug_cleanup needs module_mutex protection */
3898 mutex_lock(&module_mutex);
3899 module_bug_cleanup(mod);
3900 mutex_unlock(&module_mutex);
3902 ddebug_cleanup:
3903 ftrace_release_mod(mod);
3904 dynamic_debug_remove(mod, info->debug);
3905 synchronize_rcu();
3906 kfree(mod->args);
3907 free_arch_cleanup:
3908 module_arch_cleanup(mod);
3909 free_modinfo:
3910 free_modinfo(mod);
3911 free_unload:
3912 module_unload_free(mod);
3913 unlink_mod:
3914 mutex_lock(&module_mutex);
3915 /* Unlink carefully: kallsyms could be walking list. */
3916 list_del_rcu(&mod->list);
3917 mod_tree_remove(mod);
3918 wake_up_all(&module_wq);
3919 /* Wait for RCU-sched synchronizing before releasing mod->list. */
3920 synchronize_rcu();
3921 mutex_unlock(&module_mutex);
3922 free_module:
3923 /* Free lock-classes; relies on the preceding sync_rcu() */
3924 lockdep_free_key_range(mod->core_layout.base, mod->core_layout.size);
3926 module_deallocate(mod, info);
3927 free_copy:
3928 free_copy(info);
3929 return err;
3932 SYSCALL_DEFINE3(init_module, void __user *, umod,
3933 unsigned long, len, const char __user *, uargs)
3935 int err;
3936 struct load_info info = { };
3938 err = may_init_module();
3939 if (err)
3940 return err;
3942 pr_debug("init_module: umod=%p, len=%lu, uargs=%p\n",
3943 umod, len, uargs);
3945 err = copy_module_from_user(umod, len, &info);
3946 if (err)
3947 return err;
3949 return load_module(&info, uargs, 0);
3952 SYSCALL_DEFINE3(finit_module, int, fd, const char __user *, uargs, int, flags)
3954 struct load_info info = { };
3955 loff_t size;
3956 void *hdr;
3957 int err;
3959 err = may_init_module();
3960 if (err)
3961 return err;
3963 pr_debug("finit_module: fd=%d, uargs=%p, flags=%i\n", fd, uargs, flags);
3965 if (flags & ~(MODULE_INIT_IGNORE_MODVERSIONS
3966 |MODULE_INIT_IGNORE_VERMAGIC))
3967 return -EINVAL;
3969 err = kernel_read_file_from_fd(fd, &hdr, &size, INT_MAX,
3970 READING_MODULE);
3971 if (err)
3972 return err;
3973 info.hdr = hdr;
3974 info.len = size;
3976 return load_module(&info, uargs, flags);
3979 static inline int within(unsigned long addr, void *start, unsigned long size)
3981 return ((void *)addr >= start && (void *)addr < start + size);
3984 #ifdef CONFIG_KALLSYMS
3986 * This ignores the intensely annoying "mapping symbols" found
3987 * in ARM ELF files: $a, $t and $d.
3989 static inline int is_arm_mapping_symbol(const char *str)
3991 if (str[0] == '.' && str[1] == 'L')
3992 return true;
3993 return str[0] == '$' && strchr("axtd", str[1])
3994 && (str[2] == '\0' || str[2] == '.');
3997 static const char *kallsyms_symbol_name(struct mod_kallsyms *kallsyms, unsigned int symnum)
3999 return kallsyms->strtab + kallsyms->symtab[symnum].st_name;
4003 * Given a module and address, find the corresponding symbol and return its name
4004 * while providing its size and offset if needed.
4006 static const char *find_kallsyms_symbol(struct module *mod,
4007 unsigned long addr,
4008 unsigned long *size,
4009 unsigned long *offset)
4011 unsigned int i, best = 0;
4012 unsigned long nextval, bestval;
4013 struct mod_kallsyms *kallsyms = rcu_dereference_sched(mod->kallsyms);
4015 /* At worse, next value is at end of module */
4016 if (within_module_init(addr, mod))
4017 nextval = (unsigned long)mod->init_layout.base+mod->init_layout.text_size;
4018 else
4019 nextval = (unsigned long)mod->core_layout.base+mod->core_layout.text_size;
4021 bestval = kallsyms_symbol_value(&kallsyms->symtab[best]);
4023 /* Scan for closest preceding symbol, and next symbol. (ELF
4024 starts real symbols at 1). */
4025 for (i = 1; i < kallsyms->num_symtab; i++) {
4026 const Elf_Sym *sym = &kallsyms->symtab[i];
4027 unsigned long thisval = kallsyms_symbol_value(sym);
4029 if (sym->st_shndx == SHN_UNDEF)
4030 continue;
4032 /* We ignore unnamed symbols: they're uninformative
4033 * and inserted at a whim. */
4034 if (*kallsyms_symbol_name(kallsyms, i) == '\0'
4035 || is_arm_mapping_symbol(kallsyms_symbol_name(kallsyms, i)))
4036 continue;
4038 if (thisval <= addr && thisval > bestval) {
4039 best = i;
4040 bestval = thisval;
4042 if (thisval > addr && thisval < nextval)
4043 nextval = thisval;
4046 if (!best)
4047 return NULL;
4049 if (size)
4050 *size = nextval - bestval;
4051 if (offset)
4052 *offset = addr - bestval;
4054 return kallsyms_symbol_name(kallsyms, best);
4057 void * __weak dereference_module_function_descriptor(struct module *mod,
4058 void *ptr)
4060 return ptr;
4063 /* For kallsyms to ask for address resolution. NULL means not found. Careful
4064 * not to lock to avoid deadlock on oopses, simply disable preemption. */
4065 const char *module_address_lookup(unsigned long addr,
4066 unsigned long *size,
4067 unsigned long *offset,
4068 char **modname,
4069 char *namebuf)
4071 const char *ret = NULL;
4072 struct module *mod;
4074 preempt_disable();
4075 mod = __module_address(addr);
4076 if (mod) {
4077 if (modname)
4078 *modname = mod->name;
4080 ret = find_kallsyms_symbol(mod, addr, size, offset);
4082 /* Make a copy in here where it's safe */
4083 if (ret) {
4084 strncpy(namebuf, ret, KSYM_NAME_LEN - 1);
4085 ret = namebuf;
4087 preempt_enable();
4089 return ret;
4092 int lookup_module_symbol_name(unsigned long addr, char *symname)
4094 struct module *mod;
4096 preempt_disable();
4097 list_for_each_entry_rcu(mod, &modules, list) {
4098 if (mod->state == MODULE_STATE_UNFORMED)
4099 continue;
4100 if (within_module(addr, mod)) {
4101 const char *sym;
4103 sym = find_kallsyms_symbol(mod, addr, NULL, NULL);
4104 if (!sym)
4105 goto out;
4107 strlcpy(symname, sym, KSYM_NAME_LEN);
4108 preempt_enable();
4109 return 0;
4112 out:
4113 preempt_enable();
4114 return -ERANGE;
4117 int lookup_module_symbol_attrs(unsigned long addr, unsigned long *size,
4118 unsigned long *offset, char *modname, char *name)
4120 struct module *mod;
4122 preempt_disable();
4123 list_for_each_entry_rcu(mod, &modules, list) {
4124 if (mod->state == MODULE_STATE_UNFORMED)
4125 continue;
4126 if (within_module(addr, mod)) {
4127 const char *sym;
4129 sym = find_kallsyms_symbol(mod, addr, size, offset);
4130 if (!sym)
4131 goto out;
4132 if (modname)
4133 strlcpy(modname, mod->name, MODULE_NAME_LEN);
4134 if (name)
4135 strlcpy(name, sym, KSYM_NAME_LEN);
4136 preempt_enable();
4137 return 0;
4140 out:
4141 preempt_enable();
4142 return -ERANGE;
4145 int module_get_kallsym(unsigned int symnum, unsigned long *value, char *type,
4146 char *name, char *module_name, int *exported)
4148 struct module *mod;
4150 preempt_disable();
4151 list_for_each_entry_rcu(mod, &modules, list) {
4152 struct mod_kallsyms *kallsyms;
4154 if (mod->state == MODULE_STATE_UNFORMED)
4155 continue;
4156 kallsyms = rcu_dereference_sched(mod->kallsyms);
4157 if (symnum < kallsyms->num_symtab) {
4158 const Elf_Sym *sym = &kallsyms->symtab[symnum];
4160 *value = kallsyms_symbol_value(sym);
4161 *type = kallsyms->typetab[symnum];
4162 strlcpy(name, kallsyms_symbol_name(kallsyms, symnum), KSYM_NAME_LEN);
4163 strlcpy(module_name, mod->name, MODULE_NAME_LEN);
4164 *exported = is_exported(name, *value, mod);
4165 preempt_enable();
4166 return 0;
4168 symnum -= kallsyms->num_symtab;
4170 preempt_enable();
4171 return -ERANGE;
4174 /* Given a module and name of symbol, find and return the symbol's value */
4175 static unsigned long find_kallsyms_symbol_value(struct module *mod, const char *name)
4177 unsigned int i;
4178 struct mod_kallsyms *kallsyms = rcu_dereference_sched(mod->kallsyms);
4180 for (i = 0; i < kallsyms->num_symtab; i++) {
4181 const Elf_Sym *sym = &kallsyms->symtab[i];
4183 if (strcmp(name, kallsyms_symbol_name(kallsyms, i)) == 0 &&
4184 sym->st_shndx != SHN_UNDEF)
4185 return kallsyms_symbol_value(sym);
4187 return 0;
4190 /* Look for this name: can be of form module:name. */
4191 unsigned long module_kallsyms_lookup_name(const char *name)
4193 struct module *mod;
4194 char *colon;
4195 unsigned long ret = 0;
4197 /* Don't lock: we're in enough trouble already. */
4198 preempt_disable();
4199 if ((colon = strnchr(name, MODULE_NAME_LEN, ':')) != NULL) {
4200 if ((mod = find_module_all(name, colon - name, false)) != NULL)
4201 ret = find_kallsyms_symbol_value(mod, colon+1);
4202 } else {
4203 list_for_each_entry_rcu(mod, &modules, list) {
4204 if (mod->state == MODULE_STATE_UNFORMED)
4205 continue;
4206 if ((ret = find_kallsyms_symbol_value(mod, name)) != 0)
4207 break;
4210 preempt_enable();
4211 return ret;
4214 int module_kallsyms_on_each_symbol(int (*fn)(void *, const char *,
4215 struct module *, unsigned long),
4216 void *data)
4218 struct module *mod;
4219 unsigned int i;
4220 int ret;
4222 module_assert_mutex();
4224 list_for_each_entry(mod, &modules, list) {
4225 /* We hold module_mutex: no need for rcu_dereference_sched */
4226 struct mod_kallsyms *kallsyms = mod->kallsyms;
4228 if (mod->state == MODULE_STATE_UNFORMED)
4229 continue;
4230 for (i = 0; i < kallsyms->num_symtab; i++) {
4231 const Elf_Sym *sym = &kallsyms->symtab[i];
4233 if (sym->st_shndx == SHN_UNDEF)
4234 continue;
4236 ret = fn(data, kallsyms_symbol_name(kallsyms, i),
4237 mod, kallsyms_symbol_value(sym));
4238 if (ret != 0)
4239 return ret;
4242 return 0;
4244 #endif /* CONFIG_KALLSYMS */
4246 /* Maximum number of characters written by module_flags() */
4247 #define MODULE_FLAGS_BUF_SIZE (TAINT_FLAGS_COUNT + 4)
4249 /* Keep in sync with MODULE_FLAGS_BUF_SIZE !!! */
4250 static char *module_flags(struct module *mod, char *buf)
4252 int bx = 0;
4254 BUG_ON(mod->state == MODULE_STATE_UNFORMED);
4255 if (mod->taints ||
4256 mod->state == MODULE_STATE_GOING ||
4257 mod->state == MODULE_STATE_COMING) {
4258 buf[bx++] = '(';
4259 bx += module_flags_taint(mod, buf + bx);
4260 /* Show a - for module-is-being-unloaded */
4261 if (mod->state == MODULE_STATE_GOING)
4262 buf[bx++] = '-';
4263 /* Show a + for module-is-being-loaded */
4264 if (mod->state == MODULE_STATE_COMING)
4265 buf[bx++] = '+';
4266 buf[bx++] = ')';
4268 buf[bx] = '\0';
4270 return buf;
4273 #ifdef CONFIG_PROC_FS
4274 /* Called by the /proc file system to return a list of modules. */
4275 static void *m_start(struct seq_file *m, loff_t *pos)
4277 mutex_lock(&module_mutex);
4278 return seq_list_start(&modules, *pos);
4281 static void *m_next(struct seq_file *m, void *p, loff_t *pos)
4283 return seq_list_next(p, &modules, pos);
4286 static void m_stop(struct seq_file *m, void *p)
4288 mutex_unlock(&module_mutex);
4291 static int m_show(struct seq_file *m, void *p)
4293 struct module *mod = list_entry(p, struct module, list);
4294 char buf[MODULE_FLAGS_BUF_SIZE];
4295 void *value;
4297 /* We always ignore unformed modules. */
4298 if (mod->state == MODULE_STATE_UNFORMED)
4299 return 0;
4301 seq_printf(m, "%s %u",
4302 mod->name, mod->init_layout.size + mod->core_layout.size);
4303 print_unload_info(m, mod);
4305 /* Informative for users. */
4306 seq_printf(m, " %s",
4307 mod->state == MODULE_STATE_GOING ? "Unloading" :
4308 mod->state == MODULE_STATE_COMING ? "Loading" :
4309 "Live");
4310 /* Used by oprofile and other similar tools. */
4311 value = m->private ? NULL : mod->core_layout.base;
4312 seq_printf(m, " 0x%px", value);
4314 /* Taints info */
4315 if (mod->taints)
4316 seq_printf(m, " %s", module_flags(mod, buf));
4318 seq_puts(m, "\n");
4319 return 0;
4322 /* Format: modulename size refcount deps address
4324 Where refcount is a number or -, and deps is a comma-separated list
4325 of depends or -.
4327 static const struct seq_operations modules_op = {
4328 .start = m_start,
4329 .next = m_next,
4330 .stop = m_stop,
4331 .show = m_show
4335 * This also sets the "private" pointer to non-NULL if the
4336 * kernel pointers should be hidden (so you can just test
4337 * "m->private" to see if you should keep the values private).
4339 * We use the same logic as for /proc/kallsyms.
4341 static int modules_open(struct inode *inode, struct file *file)
4343 int err = seq_open(file, &modules_op);
4345 if (!err) {
4346 struct seq_file *m = file->private_data;
4347 m->private = kallsyms_show_value() ? NULL : (void *)8ul;
4350 return err;
4353 static const struct file_operations proc_modules_operations = {
4354 .open = modules_open,
4355 .read = seq_read,
4356 .llseek = seq_lseek,
4357 .release = seq_release,
4360 static int __init proc_modules_init(void)
4362 proc_create("modules", 0, NULL, &proc_modules_operations);
4363 return 0;
4365 module_init(proc_modules_init);
4366 #endif
4368 /* Given an address, look for it in the module exception tables. */
4369 const struct exception_table_entry *search_module_extables(unsigned long addr)
4371 const struct exception_table_entry *e = NULL;
4372 struct module *mod;
4374 preempt_disable();
4375 mod = __module_address(addr);
4376 if (!mod)
4377 goto out;
4379 if (!mod->num_exentries)
4380 goto out;
4382 e = search_extable(mod->extable,
4383 mod->num_exentries,
4384 addr);
4385 out:
4386 preempt_enable();
4389 * Now, if we found one, we are running inside it now, hence
4390 * we cannot unload the module, hence no refcnt needed.
4392 return e;
4396 * is_module_address - is this address inside a module?
4397 * @addr: the address to check.
4399 * See is_module_text_address() if you simply want to see if the address
4400 * is code (not data).
4402 bool is_module_address(unsigned long addr)
4404 bool ret;
4406 preempt_disable();
4407 ret = __module_address(addr) != NULL;
4408 preempt_enable();
4410 return ret;
4414 * __module_address - get the module which contains an address.
4415 * @addr: the address.
4417 * Must be called with preempt disabled or module mutex held so that
4418 * module doesn't get freed during this.
4420 struct module *__module_address(unsigned long addr)
4422 struct module *mod;
4424 if (addr < module_addr_min || addr > module_addr_max)
4425 return NULL;
4427 module_assert_mutex_or_preempt();
4429 mod = mod_find(addr);
4430 if (mod) {
4431 BUG_ON(!within_module(addr, mod));
4432 if (mod->state == MODULE_STATE_UNFORMED)
4433 mod = NULL;
4435 return mod;
4437 EXPORT_SYMBOL_GPL(__module_address);
4440 * is_module_text_address - is this address inside module code?
4441 * @addr: the address to check.
4443 * See is_module_address() if you simply want to see if the address is
4444 * anywhere in a module. See kernel_text_address() for testing if an
4445 * address corresponds to kernel or module code.
4447 bool is_module_text_address(unsigned long addr)
4449 bool ret;
4451 preempt_disable();
4452 ret = __module_text_address(addr) != NULL;
4453 preempt_enable();
4455 return ret;
4459 * __module_text_address - get the module whose code contains an address.
4460 * @addr: the address.
4462 * Must be called with preempt disabled or module mutex held so that
4463 * module doesn't get freed during this.
4465 struct module *__module_text_address(unsigned long addr)
4467 struct module *mod = __module_address(addr);
4468 if (mod) {
4469 /* Make sure it's within the text section. */
4470 if (!within(addr, mod->init_layout.base, mod->init_layout.text_size)
4471 && !within(addr, mod->core_layout.base, mod->core_layout.text_size))
4472 mod = NULL;
4474 return mod;
4476 EXPORT_SYMBOL_GPL(__module_text_address);
4478 /* Don't grab lock, we're oopsing. */
4479 void print_modules(void)
4481 struct module *mod;
4482 char buf[MODULE_FLAGS_BUF_SIZE];
4484 printk(KERN_DEFAULT "Modules linked in:");
4485 /* Most callers should already have preempt disabled, but make sure */
4486 preempt_disable();
4487 list_for_each_entry_rcu(mod, &modules, list) {
4488 if (mod->state == MODULE_STATE_UNFORMED)
4489 continue;
4490 pr_cont(" %s%s", mod->name, module_flags(mod, buf));
4492 preempt_enable();
4493 if (last_unloaded_module[0])
4494 pr_cont(" [last unloaded: %s]", last_unloaded_module);
4495 pr_cont("\n");
4498 #ifdef CONFIG_MODVERSIONS
4499 /* Generate the signature for all relevant module structures here.
4500 * If these change, we don't want to try to parse the module. */
4501 void module_layout(struct module *mod,
4502 struct modversion_info *ver,
4503 struct kernel_param *kp,
4504 struct kernel_symbol *ks,
4505 struct tracepoint * const *tp)
4508 EXPORT_SYMBOL(module_layout);
4509 #endif