| // SPDX-License-Identifier: GPL-2.0-only |
| /* Copyright (c) 2016 Facebook |
| */ |
| #include <linux/bpf.h> |
| #include <linux/jhash.h> |
| #include <linux/filter.h> |
| #include <linux/kernel.h> |
| #include <linux/stacktrace.h> |
| #include <linux/perf_event.h> |
| #include <linux/btf_ids.h> |
| #include <linux/buildid.h> |
| #include <linux/mmap_lock.h> |
| #include "percpu_freelist.h" |
| #include "mmap_unlock_work.h" |
| |
| #define STACK_CREATE_FLAG_MASK \ |
| (BPF_F_NUMA_NODE | BPF_F_RDONLY | BPF_F_WRONLY | \ |
| BPF_F_STACK_BUILD_ID) |
| |
| struct stack_map_bucket { |
| struct pcpu_freelist_node fnode; |
| u32 hash; |
| u32 nr; |
| u64 data[]; |
| }; |
| |
| struct bpf_stack_map { |
| struct bpf_map map; |
| void *elems; |
| struct pcpu_freelist freelist; |
| u32 n_buckets; |
| struct stack_map_bucket *buckets[] __counted_by(n_buckets); |
| }; |
| |
| static inline bool stack_map_use_build_id(struct bpf_map *map) |
| { |
| return (map->map_flags & BPF_F_STACK_BUILD_ID); |
| } |
| |
| static inline int stack_map_data_size(struct bpf_map *map) |
| { |
| return stack_map_use_build_id(map) ? |
| sizeof(struct bpf_stack_build_id) : sizeof(u64); |
| } |
| |
| /** |
| * stack_map_calculate_max_depth - Calculate maximum allowed stack trace depth |
| * @size: Size of the buffer/map value in bytes |
| * @elem_size: Size of each stack trace element |
| * @flags: BPF stack trace flags (BPF_F_USER_STACK, BPF_F_USER_BUILD_ID, ...) |
| * |
| * Return: Maximum number of stack trace entries that can be safely stored |
| */ |
| static u32 stack_map_calculate_max_depth(u32 size, u32 elem_size, u64 flags) |
| { |
| u32 skip = flags & BPF_F_SKIP_FIELD_MASK; |
| u32 max_depth; |
| u32 curr_sysctl_max_stack = READ_ONCE(sysctl_perf_event_max_stack); |
| |
| max_depth = size / elem_size; |
| max_depth += skip; |
| if (max_depth > curr_sysctl_max_stack) |
| return curr_sysctl_max_stack; |
| |
| return max_depth; |
| } |
| |
| static int prealloc_elems_and_freelist(struct bpf_stack_map *smap) |
| { |
| u64 elem_size = sizeof(struct stack_map_bucket) + |
| (u64)smap->map.value_size; |
| int err; |
| |
| smap->elems = bpf_map_area_alloc(elem_size * smap->map.max_entries, |
| smap->map.numa_node); |
| if (!smap->elems) |
| return -ENOMEM; |
| |
| err = pcpu_freelist_init(&smap->freelist); |
| if (err) |
| goto free_elems; |
| |
| pcpu_freelist_populate(&smap->freelist, smap->elems, elem_size, |
| smap->map.max_entries); |
| return 0; |
| |
| free_elems: |
| bpf_map_area_free(smap->elems); |
| return err; |
| } |
| |
| /* Called from syscall */ |
| static struct bpf_map *stack_map_alloc(union bpf_attr *attr) |
| { |
| u32 value_size = attr->value_size; |
| struct bpf_stack_map *smap; |
| u64 cost, n_buckets; |
| int err; |
| |
| if (attr->map_flags & ~STACK_CREATE_FLAG_MASK) |
| return ERR_PTR(-EINVAL); |
| |
| /* check sanity of attributes */ |
| if (attr->max_entries == 0 || attr->key_size != 4 || |
| value_size < 8 || value_size % 8) |
| return ERR_PTR(-EINVAL); |
| |
| BUILD_BUG_ON(sizeof(struct bpf_stack_build_id) % sizeof(u64)); |
| if (attr->map_flags & BPF_F_STACK_BUILD_ID) { |
| if (value_size % sizeof(struct bpf_stack_build_id) || |
| value_size / sizeof(struct bpf_stack_build_id) |
| > sysctl_perf_event_max_stack) |
| return ERR_PTR(-EINVAL); |
| } else if (value_size / 8 > sysctl_perf_event_max_stack) |
| return ERR_PTR(-EINVAL); |
| |
| /* hash table size must be power of 2; roundup_pow_of_two() can overflow |
| * into UB on 32-bit arches, so check that first |
| */ |
| if (attr->max_entries > 1UL << 31) |
| return ERR_PTR(-E2BIG); |
| |
| n_buckets = roundup_pow_of_two(attr->max_entries); |
| |
| cost = n_buckets * sizeof(struct stack_map_bucket *) + sizeof(*smap); |
| smap = bpf_map_area_alloc(cost, bpf_map_attr_numa_node(attr)); |
| if (!smap) |
| return ERR_PTR(-ENOMEM); |
| |
| bpf_map_init_from_attr(&smap->map, attr); |
| smap->n_buckets = n_buckets; |
| |
| err = get_callchain_buffers(sysctl_perf_event_max_stack); |
| if (err) |
| goto free_smap; |
| |
| err = prealloc_elems_and_freelist(smap); |
| if (err) |
| goto put_buffers; |
| |
| return &smap->map; |
| |
| put_buffers: |
| put_callchain_buffers(); |
| free_smap: |
| bpf_map_area_free(smap); |
| return ERR_PTR(err); |
| } |
| |
| static int fetch_build_id(struct vm_area_struct *vma, unsigned char *build_id, bool may_fault) |
| { |
| return may_fault ? build_id_parse(vma, build_id, NULL) |
| : build_id_parse_nofault(vma, build_id, NULL); |
| } |
| |
| static inline void stack_map_build_id_set_ip(struct bpf_stack_build_id *id) |
| { |
| id->status = BPF_STACK_BUILD_ID_IP; |
| memset(id->build_id, 0, BUILD_ID_SIZE_MAX); |
| } |
| |
| static inline u64 stack_map_build_id_offset(unsigned long vm_pgoff, |
| unsigned long vm_start, u64 ip) |
| { |
| return (vm_pgoff << PAGE_SHIFT) + ip - vm_start; |
| } |
| |
| static inline void stack_map_build_id_set_valid(struct bpf_stack_build_id *id, |
| u64 offset, |
| const unsigned char *build_id) |
| { |
| id->status = BPF_STACK_BUILD_ID_VALID; |
| id->offset = offset; |
| if (id->build_id != build_id) |
| memcpy(id->build_id, build_id, BUILD_ID_SIZE_MAX); |
| } |
| |
| /* |
| * A cached VMA lookup result. The range [vm_start, vm_end) is always set. |
| * vm_pgoff, file, build_id are set only when the build ID was resolved. |
| * Zero vm_end marks the slot empty. build_id aliases the id_offs[] entry. |
| */ |
| struct stack_map_cached_vma { |
| unsigned long vm_start; |
| unsigned long vm_end; |
| unsigned long vm_pgoff; |
| struct file *file; /* pinned in the sleepable path; NULL otherwise */ |
| const unsigned char *build_id; |
| }; |
| |
| /* |
| * Per stack_map_get_build_id_offset() call cache of the last VMA with a build ID |
| * resolved and the last VMA with no usable build ID. Adjacent stack frames tend |
| * to land in the same VMA or the same backing file, so caching the last result |
| * of each kind lets us skip unnecessary VMA lookups and build ID parse calls. |
| * Keeping the two slots independent means a build-ID-less VMA doesn't evict the |
| * last resolved build ID. |
| */ |
| struct stack_map_build_id_cache { |
| struct stack_map_cached_vma resolved; |
| struct stack_map_cached_vma unresolved; |
| }; |
| |
| /* |
| * Fill @id from a cached range covering @ip. On a hit this writes @id (resolved |
| * range -> build ID + offset, unresolved range -> raw ip) and returns 0; on a |
| * miss it leaves @id untouched and returns -ENOENT. |
| */ |
| static int stack_map_build_id_set_from_cache(struct stack_map_build_id_cache *cache, |
| struct bpf_stack_build_id *id, u64 ip) |
| { |
| unsigned long vm_start, vm_end, vm_pgoff; |
| u64 offset; |
| |
| vm_start = cache->resolved.vm_start; |
| vm_end = cache->resolved.vm_end; |
| if (vm_end && ip >= vm_start && ip < vm_end) { |
| vm_pgoff = cache->resolved.vm_pgoff; |
| offset = stack_map_build_id_offset(vm_pgoff, vm_start, ip); |
| stack_map_build_id_set_valid(id, offset, cache->resolved.build_id); |
| return 0; |
| } |
| |
| vm_start = cache->unresolved.vm_start; |
| vm_end = cache->unresolved.vm_end; |
| if (vm_end && ip >= vm_start && ip < vm_end) { |
| stack_map_build_id_set_ip(id); |
| return 0; |
| } |
| |
| return -ENOENT; |
| } |
| |
| /* |
| * Record @vma's build ID as the last resolved one. @file is the pinned backing |
| * file in the sleepable path (released when evicted), or NULL otherwise. |
| */ |
| static void stack_map_build_id_cache_set_resolved(struct stack_map_build_id_cache *cache, |
| struct file *file, |
| const unsigned char *build_id, |
| unsigned long vm_start, |
| unsigned long vm_end, |
| unsigned long vm_pgoff) |
| { |
| if (cache->resolved.file) |
| fput(cache->resolved.file); |
| cache->resolved = (struct stack_map_cached_vma){ |
| .vm_start = vm_start, |
| .vm_end = vm_end, |
| .vm_pgoff = vm_pgoff, |
| .file = file, |
| .build_id = build_id, |
| }; |
| } |
| |
| /* Record [vm_start, vm_end) as a range with no usable build ID. */ |
| static void stack_map_build_id_cache_set_unresolved(struct stack_map_build_id_cache *cache, |
| unsigned long vm_start, |
| unsigned long vm_end) |
| { |
| cache->unresolved = (struct stack_map_cached_vma){ |
| .vm_start = vm_start, |
| .vm_end = vm_end, |
| }; |
| } |
| |
| struct stack_map_vma_lock { |
| struct vm_area_struct *vma; |
| struct mm_struct *mm; |
| }; |
| |
| /* |
| * Acquire a stable read-side reference on the VMA covering @ip. |
| * |
| * With CONFIG_PER_VMA_LOCK=y this returns a VMA with its per-VMA read |
| * lock held and mmap_lock dropped, so the caller may sleep. |
| * |
| * With CONFIG_PER_VMA_LOCK=n it returns a VMA with mmap_lock still |
| * held; the caller must snapshot any fields it needs and pin vm_file |
| * with get_file() before stack_map_unlock_vma() drops mmap_lock, as |
| * the VMA may be split, merged, or freed after that. |
| * |
| * Returns NULL on failure, in which case no lock is held. |
| */ |
| static struct vm_area_struct * |
| stack_map_lock_vma(struct stack_map_vma_lock *lock, unsigned long ip) |
| { |
| struct mm_struct *mm = lock->mm; |
| struct vm_area_struct *vma; |
| |
| /* noop under !CONFIG_PER_VMA_LOCK */ |
| vma = lock_vma_under_rcu(mm, ip); |
| if (vma) { |
| lock->vma = vma; |
| return vma; |
| } |
| |
| /* |
| * Taking mmap_read_lock() is unsafe here, because the caller BPF |
| * program might already hold it, causing a deadlock. |
| */ |
| if (!mmap_read_trylock(mm)) |
| return NULL; |
| |
| vma = vma_lookup(mm, ip); |
| if (!vma) { |
| mmap_read_unlock(mm); |
| return NULL; |
| } |
| |
| #ifdef CONFIG_PER_VMA_LOCK |
| if (!vma_start_read_locked(vma)) { |
| mmap_read_unlock(mm); |
| return NULL; |
| } |
| mmap_read_unlock(mm); |
| #endif |
| |
| lock->vma = vma; |
| return vma; |
| } |
| |
| static void stack_map_unlock_vma(struct stack_map_vma_lock *lock) |
| { |
| #ifdef CONFIG_PER_VMA_LOCK |
| vma_end_read(lock->vma); |
| #else |
| mmap_read_unlock(lock->mm); |
| #endif |
| lock->vma = NULL; |
| } |
| |
| static void stack_map_get_build_id_offset_sleepable(struct bpf_stack_build_id *id_offs, |
| u32 trace_nr) |
| { |
| struct stack_map_vma_lock lock = { .mm = current->mm }; |
| struct stack_map_build_id_cache cache = {}; |
| struct stack_map_cached_vma *res = &cache.resolved; |
| unsigned long vm_pgoff, vm_start, vm_end; |
| struct vm_area_struct *vma; |
| struct file *file; |
| u64 offset; |
| u64 ip; |
| |
| for (u32 i = 0; i < trace_nr; i++) { |
| ip = READ_ONCE(id_offs[i].ip); |
| |
| if (!stack_map_build_id_set_from_cache(&cache, &id_offs[i], ip)) |
| continue; |
| |
| vma = stack_map_lock_vma(&lock, ip); |
| if (!vma) { |
| stack_map_build_id_set_ip(&id_offs[i]); |
| continue; |
| } |
| |
| vm_pgoff = vma->vm_pgoff; |
| vm_start = vma->vm_start; |
| vm_end = vma->vm_end; |
| |
| if (vma_is_anonymous(vma) || !vma->vm_file) { |
| stack_map_unlock_vma(&lock); |
| stack_map_build_id_set_ip(&id_offs[i]); |
| stack_map_build_id_cache_set_unresolved(&cache, vm_start, vm_end); |
| continue; |
| } |
| |
| file = vma->vm_file; |
| offset = stack_map_build_id_offset(vm_pgoff, vm_start, ip); |
| |
| /* |
| * Same backing file as the last resolved VMA (another mapping |
| * of the same ELF binary): reuse its build_id without re-parsing. |
| */ |
| if (file == res->file) { |
| stack_map_unlock_vma(&lock); |
| stack_map_build_id_set_valid(&id_offs[i], offset, res->build_id); |
| res->vm_start = vm_start; |
| res->vm_end = vm_end; |
| res->vm_pgoff = vm_pgoff; |
| continue; |
| } |
| |
| file = get_file(file); |
| stack_map_unlock_vma(&lock); |
| |
| /* build_id_parse_file() may block on filesystem reads */ |
| if (build_id_parse_file(file, id_offs[i].build_id, NULL)) { |
| stack_map_build_id_set_ip(&id_offs[i]); |
| fput(file); |
| stack_map_build_id_cache_set_unresolved(&cache, vm_start, vm_end); |
| continue; |
| } |
| |
| stack_map_build_id_set_valid(&id_offs[i], offset, id_offs[i].build_id); |
| stack_map_build_id_cache_set_resolved(&cache, file, id_offs[i].build_id, |
| vm_start, vm_end, vm_pgoff); |
| } |
| |
| if (res->file) |
| fput(res->file); |
| } |
| |
| /* |
| * Expects all id_offs[i].ip values to be set to correct initial IPs. |
| * They will be subsequently: |
| * - either adjusted in place to a file offset, if build ID fetching |
| * succeeds; in this case id_offs[i].build_id is set to correct build ID, |
| * and id_offs[i].status is set to BPF_STACK_BUILD_ID_VALID; |
| * - or IP will be kept intact, if build ID fetching failed; in this case |
| * id_offs[i].build_id is zeroed out and id_offs[i].status is set to |
| * BPF_STACK_BUILD_ID_IP. |
| */ |
| static void stack_map_get_build_id_offset(struct bpf_stack_build_id *id_offs, |
| u32 trace_nr, bool user, bool may_fault) |
| { |
| struct mmap_unlock_irq_work *work; |
| bool has_user_ctx = user && current && current->mm; |
| struct stack_map_build_id_cache cache = {}; |
| struct vm_area_struct *vma; |
| int i; |
| |
| if (may_fault && has_user_ctx) { |
| stack_map_get_build_id_offset_sleepable(id_offs, trace_nr); |
| return; |
| } |
| |
| if (!has_user_ctx) |
| goto fallback; |
| |
| work = bpf_mmap_unlock_guard_get(); |
| if (IS_ERR(work)) |
| goto fallback; |
| |
| if (!mmap_read_trylock(current->mm)) { |
| bpf_mmap_unlock_guard_put(work); |
| goto fallback; |
| } |
| |
| for (i = 0; i < trace_nr; i++) { |
| u64 ip = READ_ONCE(id_offs[i].ip); |
| |
| if (!stack_map_build_id_set_from_cache(&cache, &id_offs[i], ip)) |
| continue; |
| |
| vma = find_vma(current->mm, ip); |
| if (!vma || vma_is_anonymous(vma) || |
| fetch_build_id(vma, id_offs[i].build_id, may_fault)) { |
| /* per entry fall back to ips; cache build-ID-less range */ |
| stack_map_build_id_set_ip(&id_offs[i]); |
| if (vma) |
| stack_map_build_id_cache_set_unresolved(&cache, |
| vma->vm_start, vma->vm_end); |
| continue; |
| } |
| /* |
| * mmap_lock is held for the whole loop, so the cached VMA |
| * fields stay valid; no file pinning is needed here. |
| */ |
| stack_map_build_id_set_valid(&id_offs[i], |
| stack_map_build_id_offset(vma->vm_pgoff, vma->vm_start, ip), |
| id_offs[i].build_id); |
| stack_map_build_id_cache_set_resolved(&cache, NULL, id_offs[i].build_id, |
| vma->vm_start, vma->vm_end, |
| vma->vm_pgoff); |
| } |
| bpf_mmap_unlock_mm(work, current->mm); |
| return; |
| |
| fallback: |
| /* cannot access current->mm, fall back to ips */ |
| for (i = 0; i < trace_nr; i++) |
| stack_map_build_id_set_ip(&id_offs[i]); |
| } |
| |
| static struct perf_callchain_entry * |
| get_callchain_entry_for_task(struct task_struct *task, u32 max_depth) |
| { |
| #ifdef CONFIG_STACKTRACE |
| struct perf_callchain_entry *entry; |
| int rctx; |
| |
| entry = get_callchain_entry(&rctx); |
| |
| if (!entry) |
| return NULL; |
| |
| entry->nr = stack_trace_save_tsk(task, (unsigned long *)entry->ip, |
| max_depth, 0); |
| |
| /* stack_trace_save_tsk() works on unsigned long array, while |
| * perf_callchain_entry uses u64 array. For 32-bit systems, it is |
| * necessary to fix this mismatch. |
| */ |
| if (__BITS_PER_LONG != 64) { |
| unsigned long *from = (unsigned long *) entry->ip; |
| u64 *to = entry->ip; |
| int i; |
| |
| /* copy data from the end to avoid using extra buffer */ |
| for (i = entry->nr - 1; i >= 0; i--) |
| to[i] = (u64)(from[i]); |
| } |
| |
| put_callchain_entry(rctx); |
| |
| return entry; |
| #else /* CONFIG_STACKTRACE */ |
| return NULL; |
| #endif |
| } |
| |
| struct stackid { |
| struct stack_map_bucket *bucket; |
| const u64 *ips; |
| u32 nr; |
| u32 len; |
| u32 hash; |
| u32 id; |
| bool hash_matches; |
| }; |
| |
| static int stackid_init(struct stackid *stackid, struct bpf_map *map, |
| const struct perf_callchain_entry *trace, u32 trace_nr, u64 flags) |
| { |
| struct bpf_stack_map *smap = container_of(map, struct bpf_stack_map, map); |
| u32 skip = flags & BPF_F_SKIP_FIELD_MASK; |
| u32 max_depth; |
| |
| if (trace_nr <= skip) |
| /* skipping more than usable stack trace */ |
| return -EFAULT; |
| |
| max_depth = stack_map_calculate_max_depth(map->value_size, stack_map_data_size(map), flags); |
| stackid->nr = min_t(u32, trace_nr - skip, max_depth - skip); |
| stackid->len = stackid->nr * sizeof(u64); |
| stackid->ips = trace->ip + skip; |
| stackid->hash = jhash2((const u32 *)stackid->ips, stackid->len / sizeof(u32), 0); |
| stackid->id = stackid->hash & (smap->n_buckets - 1); |
| stackid->bucket = READ_ONCE(smap->buckets[stackid->id]); |
| stackid->hash_matches = stackid->bucket && stackid->bucket->hash == stackid->hash; |
| return 0; |
| } |
| |
| static int stackid_fastpath(struct stackid *stackid, struct bpf_map *map, |
| const struct perf_callchain_entry *trace, u32 trace_nr, |
| u64 flags) |
| { |
| int err; |
| |
| err = stackid_init(stackid, map, trace, trace_nr, flags); |
| if (err) |
| return err; |
| |
| /* fast cmp */ |
| if (stackid->hash_matches && flags & BPF_F_FAST_STACK_CMP) |
| return stackid->id; |
| |
| if (stack_map_use_build_id(map)) |
| return -ENOENT; |
| if (stackid->hash_matches && stackid->bucket->nr == stackid->nr && |
| memcmp(stackid->bucket->data, stackid->ips, stackid->len) == 0) |
| return stackid->id; |
| if (stackid->bucket && !(flags & BPF_F_REUSE_STACKID)) |
| return -EEXIST; |
| return -ENOENT; |
| } |
| |
| static struct stack_map_bucket * |
| stackid_new_bucket(struct stackid *stackid, struct bpf_map *map) |
| { |
| struct bpf_stack_map *smap = container_of(map, struct bpf_stack_map, map); |
| struct bpf_stack_build_id *id_offs; |
| struct stack_map_bucket *bucket; |
| u32 i; |
| |
| bucket = (struct stack_map_bucket *) pcpu_freelist_pop(&smap->freelist); |
| if (unlikely(!bucket)) |
| return NULL; |
| |
| if (stack_map_use_build_id(map)) { |
| id_offs = (struct bpf_stack_build_id *)bucket->data; |
| for (i = 0; i < stackid->nr; i++) |
| id_offs[i].ip = stackid->ips[i]; |
| } else { |
| memcpy(bucket->data, stackid->ips, stackid->len); |
| } |
| |
| bucket->hash = stackid->hash; |
| bucket->nr = stackid->nr; |
| return bucket; |
| } |
| |
| static long stackid_install(struct stackid *stackid, struct bpf_map *map, |
| struct stack_map_bucket *new_bucket, u64 flags) |
| { |
| struct bpf_stack_map *smap = container_of(map, struct bpf_stack_map, map); |
| bool user = flags & BPF_F_USER_STACK; |
| struct stack_map_bucket *old_bucket; |
| u32 trace_len; |
| |
| if (stack_map_use_build_id(map)) { |
| struct bpf_stack_build_id *id_offs; |
| |
| id_offs = (struct bpf_stack_build_id *)new_bucket->data; |
| stack_map_get_build_id_offset(id_offs, stackid->nr, user, false /* !may_fault */); |
| trace_len = stackid->nr * sizeof(struct bpf_stack_build_id); |
| if (stackid->hash_matches && stackid->bucket->nr == stackid->nr && |
| memcmp(stackid->bucket->data, new_bucket->data, trace_len) == 0) { |
| pcpu_freelist_push(&smap->freelist, &new_bucket->fnode); |
| return stackid->id; |
| } |
| if (stackid->bucket && !(flags & BPF_F_REUSE_STACKID)) { |
| pcpu_freelist_push(&smap->freelist, &new_bucket->fnode); |
| return -EEXIST; |
| } |
| } |
| |
| old_bucket = xchg(&smap->buckets[stackid->id], new_bucket); |
| if (old_bucket) |
| pcpu_freelist_push(&smap->freelist, &old_bucket->fnode); |
| return stackid->id; |
| } |
| |
| BPF_CALL_3(bpf_get_stackid, struct pt_regs *, regs, struct bpf_map *, map, |
| u64, flags) |
| { |
| u32 elem_size = stack_map_data_size(map); |
| bool user = flags & BPF_F_USER_STACK; |
| struct stack_map_bucket *new_bucket; |
| struct perf_callchain_entry *trace; |
| struct stackid stackid; |
| bool kernel = !user; |
| u32 max_depth; |
| int err; |
| |
| if (unlikely(flags & ~(BPF_F_SKIP_FIELD_MASK | BPF_F_USER_STACK | |
| BPF_F_FAST_STACK_CMP | BPF_F_REUSE_STACKID))) |
| return -EINVAL; |
| |
| max_depth = stack_map_calculate_max_depth(map->value_size, elem_size, flags); |
| |
| scoped_guard(preempt) { |
| trace = get_perf_callchain(regs, kernel, user, max_depth, |
| false, false, 0); |
| if (unlikely(!trace)) |
| /* couldn't fetch the stack trace */ |
| return -EFAULT; |
| |
| err = stackid_fastpath(&stackid, map, trace, trace->nr, flags); |
| if (err != -ENOENT) |
| return err; |
| |
| new_bucket = stackid_new_bucket(&stackid, map); |
| if (!new_bucket) |
| return -ENOMEM; |
| } |
| |
| return stackid_install(&stackid, map, new_bucket, flags); |
| } |
| |
| const struct bpf_func_proto bpf_get_stackid_proto = { |
| .func = bpf_get_stackid, |
| .gpl_only = true, |
| .ret_type = RET_INTEGER, |
| .arg1_type = ARG_PTR_TO_CTX, |
| .arg2_type = ARG_CONST_MAP_PTR, |
| .arg3_type = ARG_ANYTHING, |
| }; |
| |
| static __u64 count_kernel_ip(const struct perf_callchain_entry *trace) |
| { |
| __u64 nr_kernel = 0; |
| |
| while (nr_kernel < trace->nr) { |
| if (trace->ip[nr_kernel] == PERF_CONTEXT_USER) |
| break; |
| nr_kernel++; |
| } |
| return nr_kernel; |
| } |
| |
| BPF_CALL_3(bpf_get_stackid_pe, struct bpf_perf_event_data_kern *, ctx, |
| struct bpf_map *, map, u64, flags) |
| { |
| const struct perf_callchain_entry *trace; |
| struct perf_event *event = ctx->event; |
| struct stack_map_bucket *new_bucket; |
| struct stackid stackid; |
| bool kernel, user; |
| __u64 nr_kernel; |
| u32 trace_nr; |
| int ret; |
| |
| /* perf_sample_data doesn't have callchain, use bpf_get_stackid */ |
| if (!(event->attr.sample_type & PERF_SAMPLE_CALLCHAIN)) |
| return bpf_get_stackid((unsigned long)(ctx->regs), |
| (unsigned long) map, flags, 0, 0); |
| |
| if (unlikely(flags & ~(BPF_F_SKIP_FIELD_MASK | BPF_F_USER_STACK | |
| BPF_F_FAST_STACK_CMP | BPF_F_REUSE_STACKID))) |
| return -EINVAL; |
| |
| user = flags & BPF_F_USER_STACK; |
| kernel = !user; |
| |
| trace = ctx->data->callchain; |
| if (unlikely(!trace)) |
| return -EFAULT; |
| |
| nr_kernel = count_kernel_ip(trace); |
| |
| if (kernel) { |
| trace_nr = nr_kernel; |
| } else { /* user */ |
| u64 skip = flags & BPF_F_SKIP_FIELD_MASK; |
| |
| trace_nr = trace->nr; |
| skip += nr_kernel; |
| if (skip > BPF_F_SKIP_FIELD_MASK) |
| return -EFAULT; |
| |
| flags = (flags & ~BPF_F_SKIP_FIELD_MASK) | skip; |
| } |
| |
| ret = stackid_fastpath(&stackid, map, trace, trace_nr, flags); |
| if (ret != -ENOENT) |
| return ret; |
| |
| new_bucket = stackid_new_bucket(&stackid, map); |
| if (new_bucket) |
| return stackid_install(&stackid, map, new_bucket, flags); |
| return -ENOMEM; |
| } |
| |
| const struct bpf_func_proto bpf_get_stackid_proto_pe = { |
| .func = bpf_get_stackid_pe, |
| .gpl_only = false, |
| .ret_type = RET_INTEGER, |
| .arg1_type = ARG_PTR_TO_CTX, |
| .arg2_type = ARG_CONST_MAP_PTR, |
| .arg3_type = ARG_ANYTHING, |
| }; |
| |
| static u32 callchain_store(const struct perf_callchain_entry *trace, u32 trace_nr, |
| void *buf, u32 elem_size, u64 flags) |
| { |
| bool user_build_id = flags & BPF_F_USER_BUILD_ID; |
| u32 skip = flags & BPF_F_SKIP_FIELD_MASK; |
| const u64 *ips; |
| u32 copy_len; |
| |
| trace_nr = trace_nr - skip; |
| copy_len = trace_nr * elem_size; |
| |
| ips = trace->ip + skip; |
| if (user_build_id) { |
| struct bpf_stack_build_id *id_offs = buf; |
| |
| for (u32 i = 0; i < trace_nr; i++) |
| id_offs[i].ip = ips[i]; |
| } else { |
| memcpy(buf, ips, copy_len); |
| } |
| return trace_nr; |
| } |
| |
| static long callchain_finalize(void *buf, u32 size, u32 trace_nr, u32 elem_size, |
| u64 flags, bool may_fault) |
| { |
| bool user_build_id = flags & BPF_F_USER_BUILD_ID; |
| bool user = flags & BPF_F_USER_STACK; |
| u32 copy_len = trace_nr * elem_size; |
| |
| if (user_build_id) |
| stack_map_get_build_id_offset(buf, trace_nr, user, may_fault); |
| |
| if (size > copy_len) |
| memset(buf + copy_len, 0, size - copy_len); |
| return copy_len; |
| } |
| |
| static long __bpf_get_stack(struct pt_regs *regs, struct task_struct *task, |
| void *buf, u32 size, u64 flags, bool may_fault) |
| { |
| bool user_build_id = flags & BPF_F_USER_BUILD_ID; |
| bool crosstask = task && task != current; |
| u32 skip = flags & BPF_F_SKIP_FIELD_MASK; |
| bool user = flags & BPF_F_USER_STACK; |
| struct perf_callchain_entry *trace; |
| u32 trace_nr, elem_size, max_depth; |
| bool kernel = !user; |
| int err = -EINVAL; |
| |
| if (unlikely(flags & ~(BPF_F_SKIP_FIELD_MASK | BPF_F_USER_STACK | |
| BPF_F_USER_BUILD_ID))) |
| goto clear; |
| if (kernel && user_build_id) |
| goto clear; |
| |
| elem_size = user_build_id ? sizeof(struct bpf_stack_build_id) : sizeof(u64); |
| if (unlikely(size % elem_size)) |
| goto clear; |
| |
| /* cannot get valid user stack for task without user_mode regs */ |
| if (task && user && !user_mode(regs)) |
| goto err_fault; |
| |
| /* get_perf_callchain does not support crosstask user stack walking |
| * but returns an empty stack instead of NULL. |
| */ |
| if (crosstask && user) { |
| err = -EOPNOTSUPP; |
| goto clear; |
| } |
| |
| max_depth = stack_map_calculate_max_depth(size, elem_size, flags); |
| |
| preempt_disable(); |
| if (may_fault) |
| rcu_read_lock(); /* need RCU for perf's callchain below */ |
| |
| if (kernel && task) { |
| trace = get_callchain_entry_for_task(task, max_depth); |
| } else { |
| trace = get_perf_callchain(regs, kernel, user, max_depth, |
| crosstask, false, 0); |
| } |
| |
| if (unlikely(!trace) || trace->nr < skip) { |
| if (may_fault) |
| rcu_read_unlock(); |
| preempt_enable(); |
| goto err_fault; |
| } |
| |
| trace_nr = callchain_store(trace, trace->nr, buf, elem_size, flags); |
| |
| /* trace should not be dereferenced after this point */ |
| if (may_fault) |
| rcu_read_unlock(); |
| preempt_enable(); |
| |
| return callchain_finalize(buf, size, trace_nr, elem_size, flags, may_fault); |
| |
| err_fault: |
| err = -EFAULT; |
| clear: |
| memset(buf, 0, size); |
| return err; |
| } |
| |
| BPF_CALL_4(bpf_get_stack, struct pt_regs *, regs, void *, buf, u32, size, |
| u64, flags) |
| { |
| return __bpf_get_stack(regs, NULL, buf, size, flags, false /* !may_fault */); |
| } |
| |
| const struct bpf_func_proto bpf_get_stack_proto = { |
| .func = bpf_get_stack, |
| .gpl_only = true, |
| .ret_type = RET_INTEGER, |
| .arg1_type = ARG_PTR_TO_CTX, |
| .arg2_type = ARG_PTR_TO_UNINIT_MEM, |
| .arg3_type = ARG_MEM_SIZE_OR_ZERO, |
| .arg4_type = ARG_ANYTHING, |
| }; |
| |
| BPF_CALL_4(bpf_get_stack_sleepable, struct pt_regs *, regs, void *, buf, u32, size, |
| u64, flags) |
| { |
| return __bpf_get_stack(regs, NULL, buf, size, flags, true /* may_fault */); |
| } |
| |
| const struct bpf_func_proto bpf_get_stack_sleepable_proto = { |
| .func = bpf_get_stack_sleepable, |
| .gpl_only = true, |
| .ret_type = RET_INTEGER, |
| .arg1_type = ARG_PTR_TO_CTX, |
| .arg2_type = ARG_PTR_TO_UNINIT_MEM, |
| .arg3_type = ARG_MEM_SIZE_OR_ZERO, |
| .arg4_type = ARG_ANYTHING, |
| }; |
| |
| static long __bpf_get_task_stack(struct task_struct *task, void *buf, u32 size, |
| u64 flags, bool may_fault) |
| { |
| struct pt_regs *regs; |
| long res = -EINVAL; |
| |
| if (!try_get_task_stack(task)) { |
| memset(buf, 0, size); |
| return -EFAULT; |
| } |
| |
| regs = task_pt_regs(task); |
| if (regs) |
| res = __bpf_get_stack(regs, task, buf, size, flags, may_fault); |
| else |
| memset(buf, 0, size); |
| put_task_stack(task); |
| return res; |
| } |
| |
| BPF_CALL_4(bpf_get_task_stack, struct task_struct *, task, void *, buf, |
| u32, size, u64, flags) |
| { |
| return __bpf_get_task_stack(task, buf, size, flags, false /* !may_fault */); |
| } |
| |
| const struct bpf_func_proto bpf_get_task_stack_proto = { |
| .func = bpf_get_task_stack, |
| .gpl_only = false, |
| .ret_type = RET_INTEGER, |
| .arg1_type = ARG_PTR_TO_BTF_ID, |
| .arg1_btf_id = &btf_tracing_ids[BTF_TRACING_TYPE_TASK], |
| .arg2_type = ARG_PTR_TO_UNINIT_MEM, |
| .arg3_type = ARG_MEM_SIZE_OR_ZERO, |
| .arg4_type = ARG_ANYTHING, |
| }; |
| |
| BPF_CALL_4(bpf_get_task_stack_sleepable, struct task_struct *, task, void *, buf, |
| u32, size, u64, flags) |
| { |
| return __bpf_get_task_stack(task, buf, size, flags, true /* !may_fault */); |
| } |
| |
| const struct bpf_func_proto bpf_get_task_stack_sleepable_proto = { |
| .func = bpf_get_task_stack_sleepable, |
| .gpl_only = false, |
| .ret_type = RET_INTEGER, |
| .arg1_type = ARG_PTR_TO_BTF_ID, |
| .arg1_btf_id = &btf_tracing_ids[BTF_TRACING_TYPE_TASK], |
| .arg2_type = ARG_PTR_TO_UNINIT_MEM, |
| .arg3_type = ARG_MEM_SIZE_OR_ZERO, |
| .arg4_type = ARG_ANYTHING, |
| }; |
| |
| static int __bpf_get_stack_pe(const struct perf_callchain_entry *trace, u32 trace_nr, |
| void *buf, u32 size, u64 flags) |
| { |
| bool user_build_id = flags & BPF_F_USER_BUILD_ID; |
| u64 skip = flags & BPF_F_SKIP_FIELD_MASK; |
| bool user = flags & BPF_F_USER_STACK; |
| u32 elem_size, max_depth, nr_trace; |
| bool kernel = !user; |
| |
| if (kernel && user_build_id) |
| return -EINVAL; |
| |
| elem_size = user_build_id ? sizeof(struct bpf_stack_build_id) : sizeof(u64); |
| if (unlikely(size % elem_size)) |
| return -EINVAL; |
| |
| max_depth = stack_map_calculate_max_depth(size, elem_size, flags); |
| trace_nr = min_t(u32, trace_nr, max_depth); |
| |
| if (trace_nr < skip) |
| return -EFAULT; |
| |
| nr_trace = callchain_store(trace, trace_nr, buf, elem_size, flags); |
| return callchain_finalize(buf, size, nr_trace, elem_size, flags, false /* !may_fault */); |
| } |
| |
| BPF_CALL_4(bpf_get_stack_pe, struct bpf_perf_event_data_kern *, ctx, |
| void *, buf, u32, size, u64, flags) |
| { |
| struct pt_regs *regs = (struct pt_regs *)(ctx->regs); |
| const struct perf_callchain_entry *trace; |
| struct perf_event *event = ctx->event; |
| bool kernel, user; |
| int err = -EINVAL; |
| __u64 nr_kernel; |
| |
| if (!(event->attr.sample_type & PERF_SAMPLE_CALLCHAIN)) |
| return __bpf_get_stack(regs, NULL, buf, size, flags, false /* !may_fault */); |
| |
| if (unlikely(flags & ~(BPF_F_SKIP_FIELD_MASK | BPF_F_USER_STACK | |
| BPF_F_USER_BUILD_ID))) |
| goto clear; |
| |
| user = flags & BPF_F_USER_STACK; |
| kernel = !user; |
| |
| err = -EFAULT; |
| trace = ctx->data->callchain; |
| if (unlikely(!trace)) |
| goto clear; |
| |
| nr_kernel = count_kernel_ip(trace); |
| |
| if (kernel) { |
| err = __bpf_get_stack_pe(trace, nr_kernel, buf, size, flags); |
| } else { /* user */ |
| u64 skip = flags & BPF_F_SKIP_FIELD_MASK; |
| |
| skip += nr_kernel; |
| if (skip > BPF_F_SKIP_FIELD_MASK) |
| goto clear; |
| flags = (flags & ~BPF_F_SKIP_FIELD_MASK) | skip; |
| err = __bpf_get_stack_pe(trace, trace->nr, buf, size, flags); |
| } |
| |
| clear: |
| if (err < 0) |
| memset(buf, 0, size); |
| return err; |
| |
| } |
| |
| const struct bpf_func_proto bpf_get_stack_proto_pe = { |
| .func = bpf_get_stack_pe, |
| .gpl_only = true, |
| .ret_type = RET_INTEGER, |
| .arg1_type = ARG_PTR_TO_CTX, |
| .arg2_type = ARG_PTR_TO_UNINIT_MEM, |
| .arg3_type = ARG_MEM_SIZE_OR_ZERO, |
| .arg4_type = ARG_ANYTHING, |
| }; |
| |
| /* Called from eBPF program */ |
| static void *stack_map_lookup_elem(struct bpf_map *map, void *key) |
| { |
| return ERR_PTR(-EOPNOTSUPP); |
| } |
| |
| /* Called from syscall */ |
| static int stack_map_lookup_and_delete_elem(struct bpf_map *map, void *key, |
| void *value, u64 flags) |
| { |
| return bpf_stackmap_extract(map, key, value, true); |
| } |
| |
| /* Called from syscall */ |
| int bpf_stackmap_extract(struct bpf_map *map, void *key, void *value, |
| bool delete) |
| { |
| struct bpf_stack_map *smap = container_of(map, struct bpf_stack_map, map); |
| struct stack_map_bucket *bucket, *old_bucket; |
| u32 id = *(u32 *)key, trace_len; |
| |
| if (unlikely(id >= smap->n_buckets)) |
| return -ENOENT; |
| |
| bucket = xchg(&smap->buckets[id], NULL); |
| if (!bucket) |
| return -ENOENT; |
| |
| trace_len = bucket->nr * stack_map_data_size(map); |
| memcpy(value, bucket->data, trace_len); |
| memset(value + trace_len, 0, map->value_size - trace_len); |
| |
| if (delete) |
| old_bucket = bucket; |
| else |
| old_bucket = xchg(&smap->buckets[id], bucket); |
| if (old_bucket) |
| pcpu_freelist_push(&smap->freelist, &old_bucket->fnode); |
| return 0; |
| } |
| |
| static int stack_map_get_next_key(struct bpf_map *map, void *key, |
| void *next_key) |
| { |
| struct bpf_stack_map *smap = container_of(map, |
| struct bpf_stack_map, map); |
| u32 id; |
| |
| WARN_ON_ONCE(!rcu_read_lock_held()); |
| |
| if (!key) { |
| id = 0; |
| } else { |
| id = *(u32 *)key; |
| if (id >= smap->n_buckets || !smap->buckets[id]) |
| id = 0; |
| else |
| id++; |
| } |
| |
| while (id < smap->n_buckets && !smap->buckets[id]) |
| id++; |
| |
| if (id >= smap->n_buckets) |
| return -ENOENT; |
| |
| *(u32 *)next_key = id; |
| return 0; |
| } |
| |
| static long stack_map_update_elem(struct bpf_map *map, void *key, void *value, |
| u64 map_flags) |
| { |
| return -EINVAL; |
| } |
| |
| /* Called from syscall or from eBPF program */ |
| static long stack_map_delete_elem(struct bpf_map *map, void *key) |
| { |
| struct bpf_stack_map *smap = container_of(map, struct bpf_stack_map, map); |
| struct stack_map_bucket *old_bucket; |
| u32 id = *(u32 *)key; |
| |
| if (unlikely(id >= smap->n_buckets)) |
| return -E2BIG; |
| |
| old_bucket = xchg(&smap->buckets[id], NULL); |
| if (old_bucket) { |
| pcpu_freelist_push(&smap->freelist, &old_bucket->fnode); |
| return 0; |
| } else { |
| return -ENOENT; |
| } |
| } |
| |
| /* Called when map->refcnt goes to zero, either from workqueue or from syscall */ |
| static void stack_map_free(struct bpf_map *map) |
| { |
| struct bpf_stack_map *smap = container_of(map, struct bpf_stack_map, map); |
| |
| bpf_map_area_free(smap->elems); |
| pcpu_freelist_destroy(&smap->freelist); |
| bpf_map_area_free(smap); |
| put_callchain_buffers(); |
| } |
| |
| static u64 stack_map_mem_usage(const struct bpf_map *map) |
| { |
| struct bpf_stack_map *smap = container_of(map, struct bpf_stack_map, map); |
| u64 value_size = map->value_size; |
| u64 n_buckets = smap->n_buckets; |
| u64 enties = map->max_entries; |
| u64 usage = sizeof(*smap); |
| |
| usage += n_buckets * sizeof(struct stack_map_bucket *); |
| usage += enties * (sizeof(struct stack_map_bucket) + value_size); |
| return usage; |
| } |
| |
| BTF_ID_LIST_SINGLE(stack_trace_map_btf_ids, struct, bpf_stack_map) |
| const struct bpf_map_ops stack_trace_map_ops = { |
| .map_meta_equal = bpf_map_meta_equal, |
| .map_alloc = stack_map_alloc, |
| .map_free = stack_map_free, |
| .map_get_next_key = stack_map_get_next_key, |
| .map_lookup_elem = stack_map_lookup_elem, |
| .map_lookup_and_delete_elem = stack_map_lookup_and_delete_elem, |
| .map_update_elem = stack_map_update_elem, |
| .map_delete_elem = stack_map_delete_elem, |
| .map_check_btf = map_check_no_btf, |
| .map_mem_usage = stack_map_mem_usage, |
| .map_btf_id = &stack_trace_map_btf_ids[0], |
| }; |