diff options
Diffstat (limited to 'lib/radix-tree.c')
-rw-r--r-- | lib/radix-tree.c | 1714 |
1 files changed, 1168 insertions, 546 deletions
diff --git a/lib/radix-tree.c b/lib/radix-tree.c index 8e6d552c40dd..691a9ad48497 100644 --- a/lib/radix-tree.c +++ b/lib/radix-tree.c @@ -22,20 +22,21 @@ * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */ +#include <linux/bitmap.h> +#include <linux/bitops.h> +#include <linux/cpu.h> #include <linux/errno.h> +#include <linux/export.h> +#include <linux/idr.h> #include <linux/init.h> #include <linux/kernel.h> -#include <linux/export.h> -#include <linux/radix-tree.h> +#include <linux/kmemleak.h> #include <linux/percpu.h> +#include <linux/preempt.h> /* in_interrupt() */ +#include <linux/radix-tree.h> +#include <linux/rcupdate.h> #include <linux/slab.h> -#include <linux/kmemleak.h> -#include <linux/notifier.h> -#include <linux/cpu.h> #include <linux/string.h> -#include <linux/bitops.h> -#include <linux/rcupdate.h> -#include <linux/preempt.h> /* in_interrupt() */ /* Number of nodes in fully populated tree of given height */ @@ -60,15 +61,37 @@ static struct kmem_cache *radix_tree_node_cachep; #define RADIX_TREE_PRELOAD_SIZE (RADIX_TREE_MAX_PATH * 2 - 1) /* + * The IDR does not have to be as high as the radix tree since it uses + * signed integers, not unsigned longs. + */ +#define IDR_INDEX_BITS (8 /* CHAR_BIT */ * sizeof(int) - 1) +#define IDR_MAX_PATH (DIV_ROUND_UP(IDR_INDEX_BITS, \ + RADIX_TREE_MAP_SHIFT)) +#define IDR_PRELOAD_SIZE (IDR_MAX_PATH * 2 - 1) + +/* + * The IDA is even shorter since it uses a bitmap at the last level. + */ +#define IDA_INDEX_BITS (8 * sizeof(int) - 1 - ilog2(IDA_BITMAP_BITS)) +#define IDA_MAX_PATH (DIV_ROUND_UP(IDA_INDEX_BITS, \ + RADIX_TREE_MAP_SHIFT)) +#define IDA_PRELOAD_SIZE (IDA_MAX_PATH * 2 - 1) + +/* * Per-cpu pool of preloaded nodes */ struct radix_tree_preload { unsigned nr; - /* nodes->private_data points to next preallocated node */ + /* nodes->parent points to next preallocated node */ struct radix_tree_node *nodes; }; static DEFINE_PER_CPU(struct radix_tree_preload, radix_tree_preloads) = { 0, }; +static inline struct radix_tree_node *entry_to_node(void *ptr) +{ + return (void *)((unsigned long)ptr & ~RADIX_TREE_INTERNAL_NODE); +} + static inline void *node_to_entry(void *ptr) { return (void *)((unsigned long)ptr | RADIX_TREE_INTERNAL_NODE); @@ -78,35 +101,38 @@ static inline void *node_to_entry(void *ptr) #ifdef CONFIG_RADIX_TREE_MULTIORDER /* Sibling slots point directly to another slot in the same node */ -static inline bool is_sibling_entry(struct radix_tree_node *parent, void *node) +static inline +bool is_sibling_entry(const struct radix_tree_node *parent, void *node) { - void **ptr = node; + void __rcu **ptr = node; return (parent->slots <= ptr) && (ptr < parent->slots + RADIX_TREE_MAP_SIZE); } #else -static inline bool is_sibling_entry(struct radix_tree_node *parent, void *node) +static inline +bool is_sibling_entry(const struct radix_tree_node *parent, void *node) { return false; } #endif -static inline unsigned long get_slot_offset(struct radix_tree_node *parent, - void **slot) +static inline unsigned long +get_slot_offset(const struct radix_tree_node *parent, void __rcu **slot) { return slot - parent->slots; } -static unsigned int radix_tree_descend(struct radix_tree_node *parent, +static unsigned int radix_tree_descend(const struct radix_tree_node *parent, struct radix_tree_node **nodep, unsigned long index) { unsigned int offset = (index >> parent->shift) & RADIX_TREE_MAP_MASK; - void **entry = rcu_dereference_raw(parent->slots[offset]); + void __rcu **entry = rcu_dereference_raw(parent->slots[offset]); #ifdef CONFIG_RADIX_TREE_MULTIORDER if (radix_tree_is_internal_node(entry)) { if (is_sibling_entry(parent, entry)) { - void **sibentry = (void **) entry_to_node(entry); + void __rcu **sibentry; + sibentry = (void __rcu **) entry_to_node(entry); offset = get_slot_offset(parent, sibentry); entry = rcu_dereference_raw(*sibentry); } @@ -117,7 +143,7 @@ static unsigned int radix_tree_descend(struct radix_tree_node *parent, return offset; } -static inline gfp_t root_gfp_mask(struct radix_tree_root *root) +static inline gfp_t root_gfp_mask(const struct radix_tree_root *root) { return root->gfp_mask & __GFP_BITS_MASK; } @@ -134,42 +160,48 @@ static inline void tag_clear(struct radix_tree_node *node, unsigned int tag, __clear_bit(offset, node->tags[tag]); } -static inline int tag_get(struct radix_tree_node *node, unsigned int tag, +static inline int tag_get(const struct radix_tree_node *node, unsigned int tag, int offset) { return test_bit(offset, node->tags[tag]); } -static inline void root_tag_set(struct radix_tree_root *root, unsigned int tag) +static inline void root_tag_set(struct radix_tree_root *root, unsigned tag) { - root->gfp_mask |= (__force gfp_t)(1 << (tag + __GFP_BITS_SHIFT)); + root->gfp_mask |= (__force gfp_t)(1 << (tag + ROOT_TAG_SHIFT)); } static inline void root_tag_clear(struct radix_tree_root *root, unsigned tag) { - root->gfp_mask &= (__force gfp_t)~(1 << (tag + __GFP_BITS_SHIFT)); + root->gfp_mask &= (__force gfp_t)~(1 << (tag + ROOT_TAG_SHIFT)); } static inline void root_tag_clear_all(struct radix_tree_root *root) { - root->gfp_mask &= __GFP_BITS_MASK; + root->gfp_mask &= (1 << ROOT_TAG_SHIFT) - 1; +} + +static inline int root_tag_get(const struct radix_tree_root *root, unsigned tag) +{ + return (__force int)root->gfp_mask & (1 << (tag + ROOT_TAG_SHIFT)); } -static inline int root_tag_get(struct radix_tree_root *root, unsigned int tag) +static inline unsigned root_tags_get(const struct radix_tree_root *root) { - return (__force int)root->gfp_mask & (1 << (tag + __GFP_BITS_SHIFT)); + return (__force unsigned)root->gfp_mask >> ROOT_TAG_SHIFT; } -static inline unsigned root_tags_get(struct radix_tree_root *root) +static inline bool is_idr(const struct radix_tree_root *root) { - return (__force unsigned)root->gfp_mask >> __GFP_BITS_SHIFT; + return !!(root->gfp_mask & ROOT_IS_IDR); } /* * Returns 1 if any slot in the node has this tag set. * Otherwise returns 0. */ -static inline int any_tag_set(struct radix_tree_node *node, unsigned int tag) +static inline int any_tag_set(const struct radix_tree_node *node, + unsigned int tag) { unsigned idx; for (idx = 0; idx < RADIX_TREE_TAG_LONGS; idx++) { @@ -179,6 +211,11 @@ static inline int any_tag_set(struct radix_tree_node *node, unsigned int tag) return 0; } +static inline void all_tag_set(struct radix_tree_node *node, unsigned int tag) +{ + bitmap_fill(node->tags[tag], RADIX_TREE_MAP_SIZE); +} + /** * radix_tree_find_next_bit - find the next set bit in a memory region * @@ -191,13 +228,12 @@ static inline int any_tag_set(struct radix_tree_node *node, unsigned int tag) * Returns next bit offset, or size if nothing found. */ static __always_inline unsigned long -radix_tree_find_next_bit(const unsigned long *addr, - unsigned long size, unsigned long offset) +radix_tree_find_next_bit(struct radix_tree_node *node, unsigned int tag, + unsigned long offset) { - if (!__builtin_constant_p(size)) - return find_next_bit(addr, size, offset); + const unsigned long *addr = node->tags[tag]; - if (offset < size) { + if (offset < RADIX_TREE_MAP_SIZE) { unsigned long tmp; addr += offset / BITS_PER_LONG; @@ -205,14 +241,39 @@ radix_tree_find_next_bit(const unsigned long *addr, if (tmp) return __ffs(tmp) + offset; offset = (offset + BITS_PER_LONG) & ~(BITS_PER_LONG - 1); - while (offset < size) { + while (offset < RADIX_TREE_MAP_SIZE) { tmp = *++addr; if (tmp) return __ffs(tmp) + offset; offset += BITS_PER_LONG; } } - return size; + return RADIX_TREE_MAP_SIZE; +} + +static unsigned int iter_offset(const struct radix_tree_iter *iter) +{ + return (iter->index >> iter_shift(iter)) & RADIX_TREE_MAP_MASK; +} + +/* + * The maximum index which can be stored in a radix tree + */ +static inline unsigned long shift_maxindex(unsigned int shift) +{ + return (RADIX_TREE_MAP_SIZE << shift) - 1; +} + +static inline unsigned long node_maxindex(const struct radix_tree_node *node) +{ + return shift_maxindex(node->shift); +} + +static unsigned long next_index(unsigned long index, + const struct radix_tree_node *node, + unsigned long offset) +{ + return (index & ~node_maxindex(node)) + (offset << node->shift); } #ifndef __KERNEL__ @@ -220,10 +281,11 @@ static void dump_node(struct radix_tree_node *node, unsigned long index) { unsigned long i; - pr_debug("radix node: %p offset %d tags %lx %lx %lx shift %d count %d parent %p\n", - node, node->offset, + pr_debug("radix node: %p offset %d indices %lu-%lu parent %p tags %lx %lx %lx shift %d count %d exceptional %d\n", + node, node->offset, index, index | node_maxindex(node), + node->parent, node->tags[0][0], node->tags[1][0], node->tags[2][0], - node->shift, node->count, node->parent); + node->shift, node->count, node->exceptional); for (i = 0; i < RADIX_TREE_MAP_SIZE; i++) { unsigned long first = index | (i << node->shift); @@ -231,14 +293,16 @@ static void dump_node(struct radix_tree_node *node, unsigned long index) void *entry = node->slots[i]; if (!entry) continue; - if (is_sibling_entry(node, entry)) { - pr_debug("radix sblng %p offset %ld val %p indices %ld-%ld\n", - entry, i, - *(void **)entry_to_node(entry), - first, last); + if (entry == RADIX_TREE_RETRY) { + pr_debug("radix retry offset %ld indices %lu-%lu parent %p\n", + i, first, last, node); } else if (!radix_tree_is_internal_node(entry)) { - pr_debug("radix entry %p offset %ld indices %ld-%ld\n", - entry, i, first, last); + pr_debug("radix entry %p offset %ld indices %lu-%lu parent %p\n", + entry, i, first, last, node); + } else if (is_sibling_entry(node, entry)) { + pr_debug("radix sblng %p offset %ld indices %lu-%lu parent %p val %p\n", + entry, i, first, last, node, + *(void **)entry_to_node(entry)); } else { dump_node(entry_to_node(entry), first); } @@ -250,11 +314,59 @@ static void radix_tree_dump(struct radix_tree_root *root) { pr_debug("radix root: %p rnode %p tags %x\n", root, root->rnode, - root->gfp_mask >> __GFP_BITS_SHIFT); + root->gfp_mask >> ROOT_TAG_SHIFT); if (!radix_tree_is_internal_node(root->rnode)) return; dump_node(entry_to_node(root->rnode), 0); } + +static void dump_ida_node(void *entry, unsigned long index) +{ + unsigned long i; + + if (!entry) + return; + + if (radix_tree_is_internal_node(entry)) { + struct radix_tree_node *node = entry_to_node(entry); + + pr_debug("ida node: %p offset %d indices %lu-%lu parent %p free %lx shift %d count %d\n", + node, node->offset, index * IDA_BITMAP_BITS, + ((index | node_maxindex(node)) + 1) * + IDA_BITMAP_BITS - 1, + node->parent, node->tags[0][0], node->shift, + node->count); + for (i = 0; i < RADIX_TREE_MAP_SIZE; i++) + dump_ida_node(node->slots[i], + index | (i << node->shift)); + } else if (radix_tree_exceptional_entry(entry)) { + pr_debug("ida excp: %p offset %d indices %lu-%lu data %lx\n", + entry, (int)(index & RADIX_TREE_MAP_MASK), + index * IDA_BITMAP_BITS, + index * IDA_BITMAP_BITS + BITS_PER_LONG - + RADIX_TREE_EXCEPTIONAL_SHIFT, + (unsigned long)entry >> + RADIX_TREE_EXCEPTIONAL_SHIFT); + } else { + struct ida_bitmap *bitmap = entry; + + pr_debug("ida btmp: %p offset %d indices %lu-%lu data", bitmap, + (int)(index & RADIX_TREE_MAP_MASK), + index * IDA_BITMAP_BITS, + (index + 1) * IDA_BITMAP_BITS - 1); + for (i = 0; i < IDA_BITMAP_LONGS; i++) + pr_cont(" %lx", bitmap->bitmap[i]); + pr_cont("\n"); + } +} + +static void ida_dump(struct ida *ida) +{ + struct radix_tree_root *root = &ida->ida_rt; + pr_debug("ida: %p node %p free %d\n", ida, root->rnode, + root->gfp_mask >> ROOT_TAG_SHIFT); + dump_ida_node(root->rnode, 0); +} #endif /* @@ -262,10 +374,12 @@ static void radix_tree_dump(struct radix_tree_root *root) * that the caller has pinned this thread of control to the current CPU. */ static struct radix_tree_node * -radix_tree_node_alloc(struct radix_tree_root *root) +radix_tree_node_alloc(gfp_t gfp_mask, struct radix_tree_node *parent, + struct radix_tree_root *root, + unsigned int shift, unsigned int offset, + unsigned int count, unsigned int exceptional) { struct radix_tree_node *ret = NULL; - gfp_t gfp_mask = root_gfp_mask(root); /* * Preload code isn't irq safe and it doesn't make sense to use @@ -293,8 +407,7 @@ radix_tree_node_alloc(struct radix_tree_root *root) rtp = this_cpu_ptr(&radix_tree_preloads); if (rtp->nr) { ret = rtp->nodes; - rtp->nodes = ret->private_data; - ret->private_data = NULL; + rtp->nodes = ret->parent; rtp->nr--; } /* @@ -307,6 +420,14 @@ radix_tree_node_alloc(struct radix_tree_root *root) ret = kmem_cache_alloc(radix_tree_node_cachep, gfp_mask); out: BUG_ON(radix_tree_is_internal_node(ret)); + if (ret) { + ret->shift = shift; + ret->offset = offset; + ret->count = count; + ret->exceptional = exceptional; + ret->parent = parent; + ret->root = root; + } return ret; } @@ -314,18 +435,15 @@ static void radix_tree_node_rcu_free(struct rcu_head *head) { struct radix_tree_node *node = container_of(head, struct radix_tree_node, rcu_head); - int i; /* - * must only free zeroed nodes into the slab. radix_tree_shrink - * can leave us with a non-NULL entry in the first slot, so clear - * that here to make sure. + * Must only free zeroed nodes into the slab. We can be left with + * non-NULL entries by radix_tree_free_nodes, so clear the entries + * and tags here. */ - for (i = 0; i < RADIX_TREE_MAX_TAGS; i++) - tag_clear(node, i, 0); - - node->slots[0] = NULL; - node->count = 0; + memset(node->slots, 0, sizeof(node->slots)); + memset(node->tags, 0, sizeof(node->tags)); + INIT_LIST_HEAD(&node->private_list); kmem_cache_free(radix_tree_node_cachep, node); } @@ -345,7 +463,7 @@ radix_tree_node_free(struct radix_tree_node *node) * To make use of this facility, the radix tree must be initialised without * __GFP_DIRECT_RECLAIM being passed to INIT_RADIX_TREE(). */ -static int __radix_tree_preload(gfp_t gfp_mask, int nr) +static int __radix_tree_preload(gfp_t gfp_mask, unsigned nr) { struct radix_tree_preload *rtp; struct radix_tree_node *node; @@ -367,7 +485,7 @@ static int __radix_tree_preload(gfp_t gfp_mask, int nr) preempt_disable(); rtp = this_cpu_ptr(&radix_tree_preloads); if (rtp->nr < nr) { - node->private_data = rtp->nodes; + node->parent = rtp->nodes; rtp->nodes = node; rtp->nr++; } else { @@ -411,6 +529,28 @@ int radix_tree_maybe_preload(gfp_t gfp_mask) } EXPORT_SYMBOL(radix_tree_maybe_preload); +#ifdef CONFIG_RADIX_TREE_MULTIORDER +/* + * Preload with enough objects to ensure that we can split a single entry + * of order @old_order into many entries of size @new_order + */ +int radix_tree_split_preload(unsigned int old_order, unsigned int new_order, + gfp_t gfp_mask) +{ + unsigned top = 1 << (old_order % RADIX_TREE_MAP_SHIFT); + unsigned layers = (old_order / RADIX_TREE_MAP_SHIFT) - + (new_order / RADIX_TREE_MAP_SHIFT); + unsigned nr = 0; + + WARN_ON_ONCE(!gfpflags_allow_blocking(gfp_mask)); + BUG_ON(new_order >= old_order); + + while (layers--) + nr = nr * RADIX_TREE_MAP_SIZE + 1; + return __radix_tree_preload(gfp_mask, top * nr); +} +#endif + /* * The same as function above, but preload number of nodes required to insert * (1 << order) continuous naturally-aligned elements. @@ -456,20 +596,7 @@ int radix_tree_maybe_preload_order(gfp_t gfp_mask, int order) return __radix_tree_preload(gfp_mask, nr_nodes); } -/* - * The maximum index which can be stored in a radix tree - */ -static inline unsigned long shift_maxindex(unsigned int shift) -{ - return (RADIX_TREE_MAP_SIZE << shift) - 1; -} - -static inline unsigned long node_maxindex(struct radix_tree_node *node) -{ - return shift_maxindex(node->shift); -} - -static unsigned radix_tree_load_root(struct radix_tree_root *root, +static unsigned radix_tree_load_root(const struct radix_tree_root *root, struct radix_tree_node **nodep, unsigned long *maxindex) { struct radix_tree_node *node = rcu_dereference_raw(root->rnode); @@ -489,10 +616,10 @@ static unsigned radix_tree_load_root(struct radix_tree_root *root, /* * Extend a radix tree so it can store key @index. */ -static int radix_tree_extend(struct radix_tree_root *root, +static int radix_tree_extend(struct radix_tree_root *root, gfp_t gfp, unsigned long index, unsigned int shift) { - struct radix_tree_node *slot; + void *entry; unsigned int maxshift; int tag; @@ -501,32 +628,44 @@ static int radix_tree_extend(struct radix_tree_root *root, while (index > shift_maxindex(maxshift)) maxshift += RADIX_TREE_MAP_SHIFT; - slot = root->rnode; - if (!slot) + entry = rcu_dereference_raw(root->rnode); + if (!entry && (!is_idr(root) || root_tag_get(root, IDR_FREE))) goto out; do { - struct radix_tree_node *node = radix_tree_node_alloc(root); - + struct radix_tree_node *node = radix_tree_node_alloc(gfp, NULL, + root, shift, 0, 1, 0); if (!node) return -ENOMEM; - /* Propagate the aggregated tag info into the new root */ - for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) { - if (root_tag_get(root, tag)) - tag_set(node, tag, 0); + if (is_idr(root)) { + all_tag_set(node, IDR_FREE); + if (!root_tag_get(root, IDR_FREE)) { + tag_clear(node, IDR_FREE, 0); + root_tag_set(root, IDR_FREE); + } + } else { + /* Propagate the aggregated tag info to the new child */ + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) { + if (root_tag_get(root, tag)) + tag_set(node, tag, 0); + } } BUG_ON(shift > BITS_PER_LONG); - node->shift = shift; - node->offset = 0; - node->count = 1; - node->parent = NULL; - if (radix_tree_is_internal_node(slot)) - entry_to_node(slot)->parent = node; - node->slots[0] = slot; - slot = node_to_entry(node); - rcu_assign_pointer(root->rnode, slot); + if (radix_tree_is_internal_node(entry)) { + entry_to_node(entry)->parent = node; + } else if (radix_tree_exceptional_entry(entry)) { + /* Moving an exceptional root->rnode to a node */ + node->exceptional = 1; + } + /* + * entry was already in the radix tree, so we do not need + * rcu_assign_pointer here + */ + node->slots[0] = (void __rcu *)entry; + entry = node_to_entry(node); + rcu_assign_pointer(root->rnode, entry); shift += RADIX_TREE_MAP_SHIFT; } while (shift <= maxshift); out: @@ -534,6 +673,125 @@ out: } /** + * radix_tree_shrink - shrink radix tree to minimum height + * @root radix tree root + */ +static inline bool radix_tree_shrink(struct radix_tree_root *root, + radix_tree_update_node_t update_node, + void *private) +{ + bool shrunk = false; + + for (;;) { + struct radix_tree_node *node = rcu_dereference_raw(root->rnode); + struct radix_tree_node *child; + + if (!radix_tree_is_internal_node(node)) + break; + node = entry_to_node(node); + + /* + * The candidate node has more than one child, or its child + * is not at the leftmost slot, or the child is a multiorder + * entry, we cannot shrink. + */ + if (node->count != 1) + break; + child = rcu_dereference_raw(node->slots[0]); + if (!child) + break; + if (!radix_tree_is_internal_node(child) && node->shift) + break; + + if (radix_tree_is_internal_node(child)) + entry_to_node(child)->parent = NULL; + + /* + * We don't need rcu_assign_pointer(), since we are simply + * moving the node from one part of the tree to another: if it + * was safe to dereference the old pointer to it + * (node->slots[0]), it will be safe to dereference the new + * one (root->rnode) as far as dependent read barriers go. + */ + root->rnode = (void __rcu *)child; + if (is_idr(root) && !tag_get(node, IDR_FREE, 0)) + root_tag_clear(root, IDR_FREE); + + /* + * We have a dilemma here. The node's slot[0] must not be + * NULLed in case there are concurrent lookups expecting to + * find the item. However if this was a bottom-level node, + * then it may be subject to the slot pointer being visible + * to callers dereferencing it. If item corresponding to + * slot[0] is subsequently deleted, these callers would expect + * their slot to become empty sooner or later. + * + * For example, lockless pagecache will look up a slot, deref + * the page pointer, and if the page has 0 refcount it means it + * was concurrently deleted from pagecache so try the deref + * again. Fortunately there is already a requirement for logic + * to retry the entire slot lookup -- the indirect pointer + * problem (replacing direct root node with an indirect pointer + * also results in a stale slot). So tag the slot as indirect + * to force callers to retry. + */ + node->count = 0; + if (!radix_tree_is_internal_node(child)) { + node->slots[0] = (void __rcu *)RADIX_TREE_RETRY; + if (update_node) + update_node(node, private); + } + + WARN_ON_ONCE(!list_empty(&node->private_list)); + radix_tree_node_free(node); + shrunk = true; + } + + return shrunk; +} + +static bool delete_node(struct radix_tree_root *root, + struct radix_tree_node *node, + radix_tree_update_node_t update_node, void *private) +{ + bool deleted = false; + + do { + struct radix_tree_node *parent; + + if (node->count) { + if (node_to_entry(node) == + rcu_dereference_raw(root->rnode)) + deleted |= radix_tree_shrink(root, update_node, + private); + return deleted; + } + + parent = node->parent; + if (parent) { + parent->slots[node->offset] = NULL; + parent->count--; + } else { + /* + * Shouldn't the tags already have all been cleared + * by the caller? + */ + if (!is_idr(root)) + root_tag_clear_all(root); + root->rnode = NULL; + } + + WARN_ON_ONCE(!list_empty(&node->private_list)); + radix_tree_node_free(node); + deleted = true; + + node = parent; + } while (node); + + return deleted; +} + +/** * __radix_tree_create - create a slot in a radix tree * @root: radix tree root * @index: index key @@ -552,37 +810,36 @@ out: */ int __radix_tree_create(struct radix_tree_root *root, unsigned long index, unsigned order, struct radix_tree_node **nodep, - void ***slotp) + void __rcu ***slotp) { struct radix_tree_node *node = NULL, *child; - void **slot = (void **)&root->rnode; + void __rcu **slot = (void __rcu **)&root->rnode; unsigned long maxindex; unsigned int shift, offset = 0; unsigned long max = index | ((1UL << order) - 1); + gfp_t gfp = root_gfp_mask(root); shift = radix_tree_load_root(root, &child, &maxindex); /* Make sure the tree is high enough. */ + if (order > 0 && max == ((1UL << order) - 1)) + max++; if (max > maxindex) { - int error = radix_tree_extend(root, max, shift); + int error = radix_tree_extend(root, gfp, max, shift); if (error < 0) return error; shift = error; - child = root->rnode; - if (order == shift) - shift += RADIX_TREE_MAP_SHIFT; + child = rcu_dereference_raw(root->rnode); } while (shift > order) { shift -= RADIX_TREE_MAP_SHIFT; if (child == NULL) { /* Have to add a child node. */ - child = radix_tree_node_alloc(root); + child = radix_tree_node_alloc(gfp, node, root, shift, + offset, 0, 0); if (!child) return -ENOMEM; - child->shift = shift; - child->offset = offset; - child->parent = node; rcu_assign_pointer(*slot, node_to_entry(child)); if (node) node->count++; @@ -595,31 +852,126 @@ int __radix_tree_create(struct radix_tree_root *root, unsigned long index, slot = &node->slots[offset]; } + if (nodep) + *nodep = node; + if (slotp) + *slotp = slot; + return 0; +} + +/* + * Free any nodes below this node. The tree is presumed to not need + * shrinking, and any user data in the tree is presumed to not need a + * destructor called on it. If we need to add a destructor, we can + * add that functionality later. Note that we may not clear tags or + * slots from the tree as an RCU walker may still have a pointer into + * this subtree. We could replace the entries with RADIX_TREE_RETRY, + * but we'll still have to clear those in rcu_free. + */ +static void radix_tree_free_nodes(struct radix_tree_node *node) +{ + unsigned offset = 0; + struct radix_tree_node *child = entry_to_node(node); + + for (;;) { + void *entry = rcu_dereference_raw(child->slots[offset]); + if (radix_tree_is_internal_node(entry) && + !is_sibling_entry(child, entry)) { + child = entry_to_node(entry); + offset = 0; + continue; + } + offset++; + while (offset == RADIX_TREE_MAP_SIZE) { + struct radix_tree_node *old = child; + offset = child->offset + 1; + child = child->parent; + WARN_ON_ONCE(!list_empty(&old->private_list)); + radix_tree_node_free(old); + if (old == entry_to_node(node)) + return; + } + } +} + #ifdef CONFIG_RADIX_TREE_MULTIORDER - /* Insert pointers to the canonical entry */ - if (order > shift) { - unsigned i, n = 1 << (order - shift); +static inline int insert_entries(struct radix_tree_node *node, + void __rcu **slot, void *item, unsigned order, bool replace) +{ + struct radix_tree_node *child; + unsigned i, n, tag, offset, tags = 0; + + if (node) { + if (order > node->shift) + n = 1 << (order - node->shift); + else + n = 1; + offset = get_slot_offset(node, slot); + } else { + n = 1; + offset = 0; + } + + if (n > 1) { offset = offset & ~(n - 1); slot = &node->slots[offset]; - child = node_to_entry(slot); - for (i = 0; i < n; i++) { - if (slot[i]) + } + child = node_to_entry(slot); + + for (i = 0; i < n; i++) { + if (slot[i]) { + if (replace) { + node->count--; + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + if (tag_get(node, tag, offset + i)) + tags |= 1 << tag; + } else return -EEXIST; } + } - for (i = 1; i < n; i++) { + for (i = 0; i < n; i++) { + struct radix_tree_node *old = rcu_dereference_raw(slot[i]); + if (i) { rcu_assign_pointer(slot[i], child); - node->count++; + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + if (tags & (1 << tag)) + tag_clear(node, tag, offset + i); + } else { + rcu_assign_pointer(slot[i], item); + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + if (tags & (1 << tag)) + tag_set(node, tag, offset); } + if (radix_tree_is_internal_node(old) && + !is_sibling_entry(node, old) && + (old != RADIX_TREE_RETRY)) + radix_tree_free_nodes(old); + if (radix_tree_exceptional_entry(old)) + node->exceptional--; } -#endif - - if (nodep) - *nodep = node; - if (slotp) - *slotp = slot; - return 0; + if (node) { + node->count += n; + if (radix_tree_exceptional_entry(item)) + node->exceptional += n; + } + return n; +} +#else +static inline int insert_entries(struct radix_tree_node *node, + void __rcu **slot, void *item, unsigned order, bool replace) +{ + if (*slot) + return -EEXIST; + rcu_assign_pointer(*slot, item); + if (node) { + node->count++; + if (radix_tree_exceptional_entry(item)) + node->exceptional++; + } + return 1; } +#endif /** * __radix_tree_insert - insert into a radix tree @@ -634,7 +986,7 @@ int __radix_tree_insert(struct radix_tree_root *root, unsigned long index, unsigned order, void *item) { struct radix_tree_node *node; - void **slot; + void __rcu **slot; int error; BUG_ON(radix_tree_is_internal_node(item)); @@ -642,13 +994,13 @@ int __radix_tree_insert(struct radix_tree_root *root, unsigned long index, error = __radix_tree_create(root, index, order, &node, &slot); if (error) return error; - if (*slot != NULL) - return -EEXIST; - rcu_assign_pointer(*slot, item); + + error = insert_entries(node, slot, item, order, false); + if (error < 0) + return error; if (node) { unsigned offset = get_slot_offset(node, slot); - node->count++; BUG_ON(tag_get(node, 0, offset)); BUG_ON(tag_get(node, 1, offset)); BUG_ON(tag_get(node, 2, offset)); @@ -674,16 +1026,17 @@ EXPORT_SYMBOL(__radix_tree_insert); * allocated and @root->rnode is used as a direct slot instead of * pointing to a node, in which case *@nodep will be NULL. */ -void *__radix_tree_lookup(struct radix_tree_root *root, unsigned long index, - struct radix_tree_node **nodep, void ***slotp) +void *__radix_tree_lookup(const struct radix_tree_root *root, + unsigned long index, struct radix_tree_node **nodep, + void __rcu ***slotp) { struct radix_tree_node *node, *parent; unsigned long maxindex; - void **slot; + void __rcu **slot; restart: parent = NULL; - slot = (void **)&root->rnode; + slot = (void __rcu **)&root->rnode; radix_tree_load_root(root, &node, &maxindex); if (index > maxindex) return NULL; @@ -718,9 +1071,10 @@ void *__radix_tree_lookup(struct radix_tree_root *root, unsigned long index, * exclusive from other writers. Any dereference of the slot must be done * using radix_tree_deref_slot. */ -void **radix_tree_lookup_slot(struct radix_tree_root *root, unsigned long index) +void __rcu **radix_tree_lookup_slot(const struct radix_tree_root *root, + unsigned long index) { - void **slot; + void __rcu **slot; if (!__radix_tree_lookup(root, index, NULL, &slot)) return NULL; @@ -740,12 +1094,319 @@ EXPORT_SYMBOL(radix_tree_lookup_slot); * them safely). No RCU barriers are required to access or modify the * returned item, however. */ -void *radix_tree_lookup(struct radix_tree_root *root, unsigned long index) +void *radix_tree_lookup(const struct radix_tree_root *root, unsigned long index) { return __radix_tree_lookup(root, index, NULL, NULL); } EXPORT_SYMBOL(radix_tree_lookup); +static inline void replace_sibling_entries(struct radix_tree_node *node, + void __rcu **slot, int count, int exceptional) +{ +#ifdef CONFIG_RADIX_TREE_MULTIORDER + void *ptr = node_to_entry(slot); + unsigned offset = get_slot_offset(node, slot) + 1; + + while (offset < RADIX_TREE_MAP_SIZE) { + if (rcu_dereference_raw(node->slots[offset]) != ptr) + break; + if (count < 0) { + node->slots[offset] = NULL; + node->count--; + } + node->exceptional += exceptional; + offset++; + } +#endif +} + +static void replace_slot(void __rcu **slot, void *item, + struct radix_tree_node *node, int count, int exceptional) +{ + if (WARN_ON_ONCE(radix_tree_is_internal_node(item))) + return; + + if (node && (count || exceptional)) { + node->count += count; + node->exceptional += exceptional; + replace_sibling_entries(node, slot, count, exceptional); + } + + rcu_assign_pointer(*slot, item); +} + +static bool node_tag_get(const struct radix_tree_root *root, + const struct radix_tree_node *node, + unsigned int tag, unsigned int offset) +{ + if (node) + return tag_get(node, tag, offset); + return root_tag_get(root, tag); +} + +/* + * IDR users want to be able to store NULL in the tree, so if the slot isn't + * free, don't adjust the count, even if it's transitioning between NULL and + * non-NULL. For the IDA, we mark slots as being IDR_FREE while they still + * have empty bits, but it only stores NULL in slots when they're being + * deleted. + */ +static int calculate_count(struct radix_tree_root *root, + struct radix_tree_node *node, void __rcu **slot, + void *item, void *old) +{ + if (is_idr(root)) { + unsigned offset = get_slot_offset(node, slot); + bool free = node_tag_get(root, node, IDR_FREE, offset); + if (!free) + return 0; + if (!old) + return 1; + } + return !!item - !!old; +} + +/** + * __radix_tree_replace - replace item in a slot + * @root: radix tree root + * @node: pointer to tree node + * @slot: pointer to slot in @node + * @item: new item to store in the slot. + * @update_node: callback for changing leaf nodes + * @private: private data to pass to @update_node + * + * For use with __radix_tree_lookup(). Caller must hold tree write locked + * across slot lookup and replacement. + */ +void __radix_tree_replace(struct radix_tree_root *root, + struct radix_tree_node *node, + void __rcu **slot, void *item, + radix_tree_update_node_t update_node, void *private) +{ + void *old = rcu_dereference_raw(*slot); + int exceptional = !!radix_tree_exceptional_entry(item) - + !!radix_tree_exceptional_entry(old); + int count = calculate_count(root, node, slot, item, old); + + /* + * This function supports replacing exceptional entries and + * deleting entries, but that needs accounting against the + * node unless the slot is root->rnode. + */ + WARN_ON_ONCE(!node && (slot != (void __rcu **)&root->rnode) && + (count || exceptional)); + replace_slot(slot, item, node, count, exceptional); + + if (!node) + return; + + if (update_node) + update_node(node, private); + + delete_node(root, node, update_node, private); +} + +/** + * radix_tree_replace_slot - replace item in a slot + * @root: radix tree root + * @slot: pointer to slot + * @item: new item to store in the slot. + * + * For use with radix_tree_lookup_slot(), radix_tree_gang_lookup_slot(), + * radix_tree_gang_lookup_tag_slot(). Caller must hold tree write locked + * across slot lookup and replacement. + * + * NOTE: This cannot be used to switch between non-entries (empty slots), + * regular entries, and exceptional entries, as that requires accounting + * inside the radix tree node. When switching from one type of entry or + * deleting, use __radix_tree_lookup() and __radix_tree_replace() or + * radix_tree_iter_replace(). + */ +void radix_tree_replace_slot(struct radix_tree_root *root, + void __rcu **slot, void *item) +{ + __radix_tree_replace(root, NULL, slot, item, NULL, NULL); +} +EXPORT_SYMBOL(radix_tree_replace_slot); + +/** + * radix_tree_iter_replace - replace item in a slot + * @root: radix tree root + * @slot: pointer to slot + * @item: new item to store in the slot. + * + * For use with radix_tree_split() and radix_tree_for_each_slot(). + * Caller must hold tree write locked across split and replacement. + */ +void radix_tree_iter_replace(struct radix_tree_root *root, + const struct radix_tree_iter *iter, + void __rcu **slot, void *item) +{ + __radix_tree_replace(root, iter->node, slot, item, NULL, NULL); +} + +#ifdef CONFIG_RADIX_TREE_MULTIORDER +/** + * radix_tree_join - replace multiple entries with one multiorder entry + * @root: radix tree root + * @index: an index inside the new entry + * @order: order of the new entry + * @item: new entry + * + * Call this function to replace several entries with one larger entry. + * The existing entries are presumed to not need freeing as a result of + * this call. + * + * The replacement entry will have all the tags set on it that were set + * on any of the entries it is replacing. + */ +int radix_tree_join(struct radix_tree_root *root, unsigned long index, + unsigned order, void *item) +{ + struct radix_tree_node *node; + void __rcu **slot; + int error; + + BUG_ON(radix_tree_is_internal_node(item)); + + error = __radix_tree_create(root, index, order, &node, &slot); + if (!error) + error = insert_entries(node, slot, item, order, true); + if (error > 0) + error = 0; + + return error; +} + +/** + * radix_tree_split - Split an entry into smaller entries + * @root: radix tree root + * @index: An index within the large entry + * @order: Order of new entries + * + * Call this function as the first step in replacing a multiorder entry + * with several entries of lower order. After this function returns, + * loop over the relevant portion of the tree using radix_tree_for_each_slot() + * and call radix_tree_iter_replace() to set up each new entry. + * + * The tags from this entry are replicated to all the new entries. + * + * The radix tree should be locked against modification during the entire + * replacement operation. Lock-free lookups will see RADIX_TREE_RETRY which + * should prompt RCU walkers to restart the lookup from the root. + */ +int radix_tree_split(struct radix_tree_root *root, unsigned long index, + unsigned order) +{ + struct radix_tree_node *parent, *node, *child; + void __rcu **slot; + unsigned int offset, end; + unsigned n, tag, tags = 0; + gfp_t gfp = root_gfp_mask(root); + + if (!__radix_tree_lookup(root, index, &parent, &slot)) + return -ENOENT; + if (!parent) + return -ENOENT; + + offset = get_slot_offset(parent, slot); + + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + if (tag_get(parent, tag, offset)) + tags |= 1 << tag; + + for (end = offset + 1; end < RADIX_TREE_MAP_SIZE; end++) { + if (!is_sibling_entry(parent, + rcu_dereference_raw(parent->slots[end]))) + break; + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + if (tags & (1 << tag)) + tag_set(parent, tag, end); + /* rcu_assign_pointer ensures tags are set before RETRY */ + rcu_assign_pointer(parent->slots[end], RADIX_TREE_RETRY); + } + rcu_assign_pointer(parent->slots[offset], RADIX_TREE_RETRY); + parent->exceptional -= (end - offset); + + if (order == parent->shift) + return 0; + if (order > parent->shift) { + while (offset < end) + offset += insert_entries(parent, &parent->slots[offset], + RADIX_TREE_RETRY, order, true); + return 0; + } + + node = parent; + + for (;;) { + if (node->shift > order) { + child = radix_tree_node_alloc(gfp, node, root, + node->shift - RADIX_TREE_MAP_SHIFT, + offset, 0, 0); + if (!child) + goto nomem; + if (node != parent) { + node->count++; + rcu_assign_pointer(node->slots[offset], + node_to_entry(child)); + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + if (tags & (1 << tag)) + tag_set(node, tag, offset); + } + + node = child; + offset = 0; + continue; + } + + n = insert_entries(node, &node->slots[offset], + RADIX_TREE_RETRY, order, false); + BUG_ON(n > RADIX_TREE_MAP_SIZE); + + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + if (tags & (1 << tag)) + tag_set(node, tag, offset); + offset += n; + + while (offset == RADIX_TREE_MAP_SIZE) { + if (node == parent) + break; + offset = node->offset; + child = node; + node = node->parent; + rcu_assign_pointer(node->slots[offset], + node_to_entry(child)); + offset++; + } + if ((node == parent) && (offset == end)) + return 0; + } + + nomem: + /* Shouldn't happen; did user forget to preload? */ + /* TODO: free all the allocated nodes */ + WARN_ON(1); + return -ENOMEM; +} +#endif + +static void node_tag_set(struct radix_tree_root *root, + struct radix_tree_node *node, + unsigned int tag, unsigned int offset) +{ + while (node) { + if (tag_get(node, tag, offset)) + return; + tag_set(node, tag, offset); + offset = node->offset; + node = node->parent; + } + + if (!root_tag_get(root, tag)) + root_tag_set(root, tag); +} + /** * radix_tree_tag_set - set a tag on a radix tree node * @root: radix tree root @@ -787,6 +1448,18 @@ void *radix_tree_tag_set(struct radix_tree_root *root, } EXPORT_SYMBOL(radix_tree_tag_set); +/** + * radix_tree_iter_tag_set - set a tag on the current iterator entry + * @root: radix tree root + * @iter: iterator state + * @tag: tag to set + */ +void radix_tree_iter_tag_set(struct radix_tree_root *root, + const struct radix_tree_iter *iter, unsigned int tag) +{ + node_tag_set(root, iter->node, tag, iter_offset(iter)); +} + static void node_tag_clear(struct radix_tree_root *root, struct radix_tree_node *node, unsigned int tag, unsigned int offset) @@ -847,6 +1520,18 @@ void *radix_tree_tag_clear(struct radix_tree_root *root, EXPORT_SYMBOL(radix_tree_tag_clear); /** + * radix_tree_iter_tag_clear - clear a tag on the current iterator entry + * @root: radix tree root + * @iter: iterator state + * @tag: tag to clear + */ +void radix_tree_iter_tag_clear(struct radix_tree_root *root, + const struct radix_tree_iter *iter, unsigned int tag) +{ + node_tag_clear(root, iter->node, tag, iter_offset(iter)); +} + +/** * radix_tree_tag_get - get a tag on a radix tree node * @root: radix tree root * @index: index key @@ -861,7 +1546,7 @@ EXPORT_SYMBOL(radix_tree_tag_clear); * the RCU lock is held, unless tag modification and node deletion are excluded * from concurrency. */ -int radix_tree_tag_get(struct radix_tree_root *root, +int radix_tree_tag_get(const struct radix_tree_root *root, unsigned long index, unsigned int tag) { struct radix_tree_node *node, *parent; @@ -873,8 +1558,6 @@ int radix_tree_tag_get(struct radix_tree_root *root, radix_tree_load_root(root, &node, &maxindex); if (index > maxindex) return 0; - if (node == NULL) - return 0; while (radix_tree_is_internal_node(node)) { unsigned offset; @@ -882,8 +1565,6 @@ int radix_tree_tag_get(struct radix_tree_root *root, parent = entry_to_node(node); offset = radix_tree_descend(parent, &node, index); - if (!node) - return 0; if (!tag_get(parent, tag, offset)) return 0; if (node == RADIX_TREE_RETRY) @@ -902,6 +1583,126 @@ static inline void __set_iter_shift(struct radix_tree_iter *iter, #endif } +/* Construct iter->tags bit-mask from node->tags[tag] array */ +static void set_iter_tags(struct radix_tree_iter *iter, + struct radix_tree_node *node, unsigned offset, + unsigned tag) +{ + unsigned tag_long = offset / BITS_PER_LONG; + unsigned tag_bit = offset % BITS_PER_LONG; + + if (!node) { + iter->tags = 1; + return; + } + + iter->tags = node->tags[tag][tag_long] >> tag_bit; + + /* This never happens if RADIX_TREE_TAG_LONGS == 1 */ + if (tag_long < RADIX_TREE_TAG_LONGS - 1) { + /* Pick tags from next element */ + if (tag_bit) + iter->tags |= node->tags[tag][tag_long + 1] << + (BITS_PER_LONG - tag_bit); + /* Clip chunk size, here only BITS_PER_LONG tags */ + iter->next_index = __radix_tree_iter_add(iter, BITS_PER_LONG); + } +} + +#ifdef CONFIG_RADIX_TREE_MULTIORDER +static void __rcu **skip_siblings(struct radix_tree_node **nodep, + void __rcu **slot, struct radix_tree_iter *iter) +{ + void *sib = node_to_entry(slot - 1); + + while (iter->index < iter->next_index) { + *nodep = rcu_dereference_raw(*slot); + if (*nodep && *nodep != sib) + return slot; + slot++; + iter->index = __radix_tree_iter_add(iter, 1); + iter->tags >>= 1; + } + + *nodep = NULL; + return NULL; +} + +void __rcu **__radix_tree_next_slot(void __rcu **slot, + struct radix_tree_iter *iter, unsigned flags) +{ + unsigned tag = flags & RADIX_TREE_ITER_TAG_MASK; + struct radix_tree_node *node = rcu_dereference_raw(*slot); + + slot = skip_siblings(&node, slot, iter); + + while (radix_tree_is_internal_node(node)) { + unsigned offset; + unsigned long next_index; + + if (node == RADIX_TREE_RETRY) + return slot; + node = entry_to_node(node); + iter->node = node; + iter->shift = node->shift; + + if (flags & RADIX_TREE_ITER_TAGGED) { + offset = radix_tree_find_next_bit(node, tag, 0); + if (offset == RADIX_TREE_MAP_SIZE) + return NULL; + slot = &node->slots[offset]; + iter->index = __radix_tree_iter_add(iter, offset); + set_iter_tags(iter, node, offset, tag); + node = rcu_dereference_raw(*slot); + } else { + offset = 0; + slot = &node->slots[0]; + for (;;) { + node = rcu_dereference_raw(*slot); + if (node) + break; + slot++; + offset++; + if (offset == RADIX_TREE_MAP_SIZE) + return NULL; + } + iter->index = __radix_tree_iter_add(iter, offset); + } + if ((flags & RADIX_TREE_ITER_CONTIG) && (offset > 0)) + goto none; + next_index = (iter->index | shift_maxindex(iter->shift)) + 1; + if (next_index < iter->next_index) + iter->next_index = next_index; + } + + return slot; + none: + iter->next_index = 0; + return NULL; +} +EXPORT_SYMBOL(__radix_tree_next_slot); +#else +static void __rcu **skip_siblings(struct radix_tree_node **nodep, + void __rcu **slot, struct radix_tree_iter *iter) +{ + return slot; +} +#endif + +void __rcu **radix_tree_iter_resume(void __rcu **slot, + struct radix_tree_iter *iter) +{ + struct radix_tree_node *node; + + slot++; + iter->index = __radix_tree_iter_add(iter, 1); + skip_siblings(&node, slot, iter); + iter->next_index = iter->index; + iter->tags = 0; + return NULL; +} +EXPORT_SYMBOL(radix_tree_iter_resume); + /** * radix_tree_next_chunk - find next chunk of slots for iteration * @@ -910,7 +1711,7 @@ static inline void __set_iter_shift(struct radix_tree_iter *iter, * @flags: RADIX_TREE_ITER_* flags and tag index * Returns: pointer to chunk first slot, or NULL if iteration is over */ -void **radix_tree_next_chunk(struct radix_tree_root *root, +void __rcu **radix_tree_next_chunk(const struct radix_tree_root *root, struct radix_tree_iter *iter, unsigned flags) { unsigned tag = flags & RADIX_TREE_ITER_TAG_MASK; @@ -927,7 +1728,7 @@ void **radix_tree_next_chunk(struct radix_tree_root *root, * because RADIX_TREE_MAP_SHIFT < BITS_PER_LONG. * * This condition also used by radix_tree_next_slot() to stop - * contiguous iterating, and forbid swithing to the next chunk. + * contiguous iterating, and forbid switching to the next chunk. */ index = iter->next_index; if (!index && iter->index) @@ -945,8 +1746,9 @@ void **radix_tree_next_chunk(struct radix_tree_root *root, iter->index = index; iter->next_index = maxindex + 1; iter->tags = 1; + iter->node = NULL; __set_iter_shift(iter, 0); - return (void **)&root->rnode; + return (void __rcu **)&root->rnode; } do { @@ -960,13 +1762,12 @@ void **radix_tree_next_chunk(struct radix_tree_root *root, return NULL; if (flags & RADIX_TREE_ITER_TAGGED) - offset = radix_tree_find_next_bit( - node->tags[tag], - RADIX_TREE_MAP_SIZE, + offset = radix_tree_find_next_bit(node, tag, offset + 1); else while (++offset < RADIX_TREE_MAP_SIZE) { - void *slot = node->slots[offset]; + void *slot = rcu_dereference_raw( + node->slots[offset]); if (is_sibling_entry(node, slot)) continue; if (slot) @@ -982,154 +1783,26 @@ void **radix_tree_next_chunk(struct radix_tree_root *root, child = rcu_dereference_raw(node->slots[offset]); } - if ((child == NULL) || (child == RADIX_TREE_RETRY)) + if (!child) goto restart; + if (child == RADIX_TREE_RETRY) + break; } while (radix_tree_is_internal_node(child)); /* Update the iterator state */ iter->index = (index &~ node_maxindex(node)) | (offset << node->shift); iter->next_index = (index | node_maxindex(node)) + 1; + iter->node = node; __set_iter_shift(iter, node->shift); - /* Construct iter->tags bit-mask from node->tags[tag] array */ - if (flags & RADIX_TREE_ITER_TAGGED) { - unsigned tag_long, tag_bit; - - tag_long = offset / BITS_PER_LONG; - tag_bit = offset % BITS_PER_LONG; - iter->tags = node->tags[tag][tag_long] >> tag_bit; - /* This never happens if RADIX_TREE_TAG_LONGS == 1 */ - if (tag_long < RADIX_TREE_TAG_LONGS - 1) { - /* Pick tags from next element */ - if (tag_bit) - iter->tags |= node->tags[tag][tag_long + 1] << - (BITS_PER_LONG - tag_bit); - /* Clip chunk size, here only BITS_PER_LONG tags */ - iter->next_index = index + BITS_PER_LONG; - } - } + if (flags & RADIX_TREE_ITER_TAGGED) + set_iter_tags(iter, node, offset, tag); return node->slots + offset; } EXPORT_SYMBOL(radix_tree_next_chunk); /** - * radix_tree_range_tag_if_tagged - for each item in given range set given - * tag if item has another tag set - * @root: radix tree root - * @first_indexp: pointer to a starting index of a range to scan - * @last_index: last index of a range to scan - * @nr_to_tag: maximum number items to tag - * @iftag: tag index to test - * @settag: tag index to set if tested tag is set - * - * This function scans range of radix tree from first_index to last_index - * (inclusive). For each item in the range if iftag is set, the function sets - * also settag. The function stops either after tagging nr_to_tag items or - * after reaching last_index. - * - * The tags must be set from the leaf level only and propagated back up the - * path to the root. We must do this so that we resolve the full path before - * setting any tags on intermediate nodes. If we set tags as we descend, then - * we can get to the leaf node and find that the index that has the iftag - * set is outside the range we are scanning. This reults in dangling tags and - * can lead to problems with later tag operations (e.g. livelocks on lookups). - * - * The function returns the number of leaves where the tag was set and sets - * *first_indexp to the first unscanned index. - * WARNING! *first_indexp can wrap if last_index is ULONG_MAX. Caller must - * be prepared to handle that. - */ -unsigned long radix_tree_range_tag_if_tagged(struct radix_tree_root *root, - unsigned long *first_indexp, unsigned long last_index, - unsigned long nr_to_tag, - unsigned int iftag, unsigned int settag) -{ - struct radix_tree_node *parent, *node, *child; - unsigned long maxindex; - unsigned long tagged = 0; - unsigned long index = *first_indexp; - - radix_tree_load_root(root, &child, &maxindex); - last_index = min(last_index, maxindex); - if (index > last_index) - return 0; - if (!nr_to_tag) - return 0; - if (!root_tag_get(root, iftag)) { - *first_indexp = last_index + 1; - return 0; - } - if (!radix_tree_is_internal_node(child)) { - *first_indexp = last_index + 1; - root_tag_set(root, settag); - return 1; - } - - node = entry_to_node(child); - - for (;;) { - unsigned offset = radix_tree_descend(node, &child, index); - if (!child) - goto next; - if (!tag_get(node, iftag, offset)) - goto next; - /* Sibling slots never have tags set on them */ - if (radix_tree_is_internal_node(child)) { - node = entry_to_node(child); - continue; - } - - /* tag the leaf */ - tagged++; - tag_set(node, settag, offset); - - /* walk back up the path tagging interior nodes */ - parent = node; - for (;;) { - offset = parent->offset; - parent = parent->parent; - if (!parent) - break; - /* stop if we find a node with the tag already set */ - if (tag_get(parent, settag, offset)) - break; - tag_set(parent, settag, offset); - } - next: - /* Go to next entry in node */ - index = ((index >> node->shift) + 1) << node->shift; - /* Overflow can happen when last_index is ~0UL... */ - if (index > last_index || !index) - break; - offset = (index >> node->shift) & RADIX_TREE_MAP_MASK; - while (offset == 0) { - /* - * We've fully scanned this node. Go up. Because - * last_index is guaranteed to be in the tree, what - * we do below cannot wander astray. - */ - node = node->parent; - offset = (index >> node->shift) & RADIX_TREE_MAP_MASK; - } - if (is_sibling_entry(node, node->slots[offset])) - goto next; - if (tagged >= nr_to_tag) - break; - } - /* - * We need not to tag the root tag if there is no tag which is set with - * settag within the range from *first_indexp to last_index. - */ - if (tagged > 0) - root_tag_set(root, settag); - *first_indexp = index; - - return tagged; -} -EXPORT_SYMBOL(radix_tree_range_tag_if_tagged); - -/** * radix_tree_gang_lookup - perform multiple lookup on a radix tree * @root: radix tree root * @results: where the results of the lookup are placed @@ -1150,11 +1823,11 @@ EXPORT_SYMBOL(radix_tree_range_tag_if_tagged); * stored in 'results'. */ unsigned int -radix_tree_gang_lookup(struct radix_tree_root *root, void **results, +radix_tree_gang_lookup(const struct radix_tree_root *root, void **results, unsigned long first_index, unsigned int max_items) { struct radix_tree_iter iter; - void **slot; + void __rcu **slot; unsigned int ret = 0; if (unlikely(!max_items)) @@ -1195,12 +1868,12 @@ EXPORT_SYMBOL(radix_tree_gang_lookup); * protection, radix_tree_deref_slot may fail requiring a retry. */ unsigned int -radix_tree_gang_lookup_slot(struct radix_tree_root *root, - void ***results, unsigned long *indices, +radix_tree_gang_lookup_slot(const struct radix_tree_root *root, + void __rcu ***results, unsigned long *indices, unsigned long first_index, unsigned int max_items) { struct radix_tree_iter iter; - void **slot; + void __rcu **slot; unsigned int ret = 0; if (unlikely(!max_items)) @@ -1232,12 +1905,12 @@ EXPORT_SYMBOL(radix_tree_gang_lookup_slot); * returns the number of items which were placed at *@results. */ unsigned int -radix_tree_gang_lookup_tag(struct radix_tree_root *root, void **results, +radix_tree_gang_lookup_tag(const struct radix_tree_root *root, void **results, unsigned long first_index, unsigned int max_items, unsigned int tag) { struct radix_tree_iter iter; - void **slot; + void __rcu **slot; unsigned int ret = 0; if (unlikely(!max_items)) @@ -1273,12 +1946,12 @@ EXPORT_SYMBOL(radix_tree_gang_lookup_tag); * returns the number of slots which were placed at *@results. */ unsigned int -radix_tree_gang_lookup_tag_slot(struct radix_tree_root *root, void ***results, - unsigned long first_index, unsigned int max_items, - unsigned int tag) +radix_tree_gang_lookup_tag_slot(const struct radix_tree_root *root, + void __rcu ***results, unsigned long first_index, + unsigned int max_items, unsigned int tag) { struct radix_tree_iter iter; - void **slot; + void __rcu **slot; unsigned int ret = 0; if (unlikely(!max_items)) @@ -1294,288 +1967,102 @@ radix_tree_gang_lookup_tag_slot(struct radix_tree_root *root, void ***results, } EXPORT_SYMBOL(radix_tree_gang_lookup_tag_slot); -#if defined(CONFIG_SHMEM) && defined(CONFIG_SWAP) -#include <linux/sched.h> /* for cond_resched() */ - -struct locate_info { - unsigned long found_index; - bool stop; -}; - -/* - * This linear search is at present only useful to shmem_unuse_inode(). - */ -static unsigned long __locate(struct radix_tree_node *slot, void *item, - unsigned long index, struct locate_info *info) -{ - unsigned long i; - - do { - unsigned int shift = slot->shift; - - for (i = (index >> shift) & RADIX_TREE_MAP_MASK; - i < RADIX_TREE_MAP_SIZE; - i++, index += (1UL << shift)) { - struct radix_tree_node *node = - rcu_dereference_raw(slot->slots[i]); - if (node == RADIX_TREE_RETRY) - goto out; - if (!radix_tree_is_internal_node(node)) { - if (node == item) { - info->found_index = index; - info->stop = true; - goto out; - } - continue; - } - node = entry_to_node(node); - if (is_sibling_entry(slot, node)) - continue; - slot = node; - break; - } - } while (i < RADIX_TREE_MAP_SIZE); - -out: - if ((index == 0) && (i == RADIX_TREE_MAP_SIZE)) - info->stop = true; - return index; -} - -/** - * radix_tree_locate_item - search through radix tree for item - * @root: radix tree root - * @item: item to be found - * - * Returns index where item was found, or -1 if not found. - * Caller must hold no lock (since this time-consuming function needs - * to be preemptible), and must check afterwards if item is still there. - */ -unsigned long radix_tree_locate_item(struct radix_tree_root *root, void *item) -{ - struct radix_tree_node *node; - unsigned long max_index; - unsigned long cur_index = 0; - struct locate_info info = { - .found_index = -1, - .stop = false, - }; - - do { - rcu_read_lock(); - node = rcu_dereference_raw(root->rnode); - if (!radix_tree_is_internal_node(node)) { - rcu_read_unlock(); - if (node == item) - info.found_index = 0; - break; - } - - node = entry_to_node(node); - - max_index = node_maxindex(node); - if (cur_index > max_index) { - rcu_read_unlock(); - break; - } - - cur_index = __locate(node, item, cur_index, &info); - rcu_read_unlock(); - cond_resched(); - } while (!info.stop && cur_index <= max_index); - - return info.found_index; -} -#else -unsigned long radix_tree_locate_item(struct radix_tree_root *root, void *item) -{ - return -1; -} -#endif /* CONFIG_SHMEM && CONFIG_SWAP */ - -/** - * radix_tree_shrink - shrink radix tree to minimum height - * @root radix tree root - */ -static inline bool radix_tree_shrink(struct radix_tree_root *root) -{ - bool shrunk = false; - - for (;;) { - struct radix_tree_node *node = root->rnode; - struct radix_tree_node *child; - - if (!radix_tree_is_internal_node(node)) - break; - node = entry_to_node(node); - - /* - * The candidate node has more than one child, or its child - * is not at the leftmost slot, or the child is a multiorder - * entry, we cannot shrink. - */ - if (node->count != 1) - break; - child = node->slots[0]; - if (!child) - break; - if (!radix_tree_is_internal_node(child) && node->shift) - break; - - if (radix_tree_is_internal_node(child)) - entry_to_node(child)->parent = NULL; - - /* - * We don't need rcu_assign_pointer(), since we are simply - * moving the node from one part of the tree to another: if it - * was safe to dereference the old pointer to it - * (node->slots[0]), it will be safe to dereference the new - * one (root->rnode) as far as dependent read barriers go. - */ - root->rnode = child; - - /* - * We have a dilemma here. The node's slot[0] must not be - * NULLed in case there are concurrent lookups expecting to - * find the item. However if this was a bottom-level node, - * then it may be subject to the slot pointer being visible - * to callers dereferencing it. If item corresponding to - * slot[0] is subsequently deleted, these callers would expect - * their slot to become empty sooner or later. - * - * For example, lockless pagecache will look up a slot, deref - * the page pointer, and if the page has 0 refcount it means it - * was concurrently deleted from pagecache so try the deref - * again. Fortunately there is already a requirement for logic - * to retry the entire slot lookup -- the indirect pointer - * problem (replacing direct root node with an indirect pointer - * also results in a stale slot). So tag the slot as indirect - * to force callers to retry. - */ - if (!radix_tree_is_internal_node(child)) - node->slots[0] = RADIX_TREE_RETRY; - - radix_tree_node_free(node); - shrunk = true; - } - - return shrunk; -} - /** * __radix_tree_delete_node - try to free node after clearing a slot * @root: radix tree root * @node: node containing @index + * @update_node: callback for changing leaf nodes + * @private: private data to pass to @update_node * * After clearing the slot at @index in @node from radix tree * rooted at @root, call this function to attempt freeing the * node and shrinking the tree. - * - * Returns %true if @node was freed, %false otherwise. */ -bool __radix_tree_delete_node(struct radix_tree_root *root, - struct radix_tree_node *node) +void __radix_tree_delete_node(struct radix_tree_root *root, + struct radix_tree_node *node, + radix_tree_update_node_t update_node, + void *private) { - bool deleted = false; - - do { - struct radix_tree_node *parent; - - if (node->count) { - if (node == entry_to_node(root->rnode)) - deleted |= radix_tree_shrink(root); - return deleted; - } - - parent = node->parent; - if (parent) { - parent->slots[node->offset] = NULL; - parent->count--; - } else { - root_tag_clear_all(root); - root->rnode = NULL; - } + delete_node(root, node, update_node, private); +} - radix_tree_node_free(node); - deleted = true; +static bool __radix_tree_delete(struct radix_tree_root *root, + struct radix_tree_node *node, void __rcu **slot) +{ + void *old = rcu_dereference_raw(*slot); + int exceptional = radix_tree_exceptional_entry(old) ? -1 : 0; + unsigned offset = get_slot_offset(node, slot); + int tag; - node = parent; - } while (node); + if (is_idr(root)) + node_tag_set(root, node, IDR_FREE, offset); + else + for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) + node_tag_clear(root, node, tag, offset); - return deleted; + replace_slot(slot, NULL, node, -1, exceptional); + return node && delete_node(root, node, NULL, NULL); } -static inline void delete_sibling_entries(struct radix_tree_node *node, - void *ptr, unsigned offset) +/** + * radix_tree_iter_delete - delete the entry at this iterator position + * @root: radix tree root + * @iter: iterator state + * @slot: pointer to slot + * + * Delete the entry at the position currently pointed to by the iterator. + * This may result in the current node being freed; if it is, the iterator + * is advanced so that it will not reference the freed memory. This + * function may be called without any locking if there are no other threads + * which can access this tree. + */ +void radix_tree_iter_delete(struct radix_tree_root *root, + struct radix_tree_iter *iter, void __rcu **slot) { -#ifdef CONFIG_RADIX_TREE_MULTIORDER - int i; - for (i = 1; offset + i < RADIX_TREE_MAP_SIZE; i++) { - if (node->slots[offset + i] != ptr) - break; - node->slots[offset + i] = NULL; - node->count--; - } -#endif + if (__radix_tree_delete(root, iter->node, slot)) + iter->index = iter->next_index; } /** - * radix_tree_delete_item - delete an item from a radix tree - * @root: radix tree root - * @index: index key - * @item: expected item + * radix_tree_delete_item - delete an item from a radix tree + * @root: radix tree root + * @index: index key + * @item: expected item * - * Remove @item at @index from the radix tree rooted at @root. + * Remove @item at @index from the radix tree rooted at @root. * - * Returns the address of the deleted item, or NULL if it was not present - * or the entry at the given @index was not @item. + * Return: the deleted entry, or %NULL if it was not present + * or the entry at the given @index was not @item. */ void *radix_tree_delete_item(struct radix_tree_root *root, unsigned long index, void *item) { - struct radix_tree_node *node; - unsigned int offset; - void **slot; + struct radix_tree_node *node = NULL; + void __rcu **slot; void *entry; - int tag; entry = __radix_tree_lookup(root, index, &node, &slot); - if (!entry) + if (!entry && (!is_idr(root) || node_tag_get(root, node, IDR_FREE, + get_slot_offset(node, slot)))) return NULL; if (item && entry != item) return NULL; - if (!node) { - root_tag_clear_all(root); - root->rnode = NULL; - return entry; - } - - offset = get_slot_offset(node, slot); - - /* Clear all tags associated with the item to be deleted. */ - for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) - node_tag_clear(root, node, tag, offset); - - delete_sibling_entries(node, node_to_entry(slot), offset); - node->slots[offset] = NULL; - node->count--; - - __radix_tree_delete_node(root, node); + __radix_tree_delete(root, node, slot); return entry; } EXPORT_SYMBOL(radix_tree_delete_item); /** - * radix_tree_delete - delete an item from a radix tree - * @root: radix tree root - * @index: index key + * radix_tree_delete - delete an entry from a radix tree + * @root: radix tree root + * @index: index key * - * Remove the item at @index from the radix tree rooted at @root. + * Remove the entry at @index from the radix tree rooted at @root. * - * Returns the address of the deleted item, or NULL if it was not present. + * Return: The deleted entry, or %NULL if it was not present. */ void *radix_tree_delete(struct radix_tree_root *root, unsigned long index) { @@ -1585,15 +2072,14 @@ EXPORT_SYMBOL(radix_tree_delete); void radix_tree_clear_tags(struct radix_tree_root *root, struct radix_tree_node *node, - void **slot) + void __rcu **slot) { if (node) { unsigned int tag, offset = get_slot_offset(node, slot); for (tag = 0; tag < RADIX_TREE_MAX_TAGS; tag++) node_tag_clear(root, node, tag, offset); } else { - /* Clear root node tags */ - root->gfp_mask &= __GFP_BITS_MASK; + root_tag_clear_all(root); } } @@ -1602,12 +2088,147 @@ void radix_tree_clear_tags(struct radix_tree_root *root, * @root: radix tree root * @tag: tag to test */ -int radix_tree_tagged(struct radix_tree_root *root, unsigned int tag) +int radix_tree_tagged(const struct radix_tree_root *root, unsigned int tag) { return root_tag_get(root, tag); } EXPORT_SYMBOL(radix_tree_tagged); +/** + * idr_preload - preload for idr_alloc() + * @gfp_mask: allocation mask to use for preloading + * + * Preallocate memory to use for the next call to idr_alloc(). This function + * returns with preemption disabled. It will be enabled by idr_preload_end(). + */ +void idr_preload(gfp_t gfp_mask) +{ + __radix_tree_preload(gfp_mask, IDR_PRELOAD_SIZE); +} +EXPORT_SYMBOL(idr_preload); + +/** + * ida_pre_get - reserve resources for ida allocation + * @ida: ida handle + * @gfp: memory allocation flags + * + * This function should be called before calling ida_get_new_above(). If it + * is unable to allocate memory, it will return %0. On success, it returns %1. + */ +int ida_pre_get(struct ida *ida, gfp_t gfp) +{ + __radix_tree_preload(gfp, IDA_PRELOAD_SIZE); + /* + * The IDA API has no preload_end() equivalent. Instead, + * ida_get_new() can return -EAGAIN, prompting the caller + * to return to the ida_pre_get() step. + */ + preempt_enable(); + + if (!this_cpu_read(ida_bitmap)) { + struct ida_bitmap *bitmap = kmalloc(sizeof(*bitmap), gfp); + if (!bitmap) + return 0; + if (this_cpu_cmpxchg(ida_bitmap, NULL, bitmap)) + kfree(bitmap); + } + + return 1; +} +EXPORT_SYMBOL(ida_pre_get); + +void __rcu **idr_get_free(struct radix_tree_root *root, + struct radix_tree_iter *iter, gfp_t gfp, int end) +{ + struct radix_tree_node *node = NULL, *child; + void __rcu **slot = (void __rcu **)&root->rnode; + unsigned long maxindex, start = iter->next_index; + unsigned long max = end > 0 ? end - 1 : INT_MAX; + unsigned int shift, offset = 0; + + grow: + shift = radix_tree_load_root(root, &child, &maxindex); + if (!radix_tree_tagged(root, IDR_FREE)) + start = max(start, maxindex + 1); + if (start > max) + return ERR_PTR(-ENOSPC); + + if (start > maxindex) { + int error = radix_tree_extend(root, gfp, start, shift); + if (error < 0) + return ERR_PTR(error); + shift = error; + child = rcu_dereference_raw(root->rnode); + } + + while (shift) { + shift -= RADIX_TREE_MAP_SHIFT; + if (child == NULL) { + /* Have to add a child node. */ + child = radix_tree_node_alloc(gfp, node, root, shift, + offset, 0, 0); + if (!child) + return ERR_PTR(-ENOMEM); + all_tag_set(child, IDR_FREE); + rcu_assign_pointer(*slot, node_to_entry(child)); + if (node) + node->count++; + } else if (!radix_tree_is_internal_node(child)) + break; + + node = entry_to_node(child); + offset = radix_tree_descend(node, &child, start); + if (!tag_get(node, IDR_FREE, offset)) { + offset = radix_tree_find_next_bit(node, IDR_FREE, + offset + 1); + start = next_index(start, node, offset); + if (start > max) + return ERR_PTR(-ENOSPC); + while (offset == RADIX_TREE_MAP_SIZE) { + offset = node->offset + 1; + node = node->parent; + if (!node) + goto grow; + shift = node->shift; + } + child = rcu_dereference_raw(node->slots[offset]); + } + slot = &node->slots[offset]; + } + + iter->index = start; + if (node) + iter->next_index = 1 + min(max, (start | node_maxindex(node))); + else + iter->next_index = 1; + iter->node = node; + __set_iter_shift(iter, shift); + set_iter_tags(iter, node, offset, IDR_FREE); + + return slot; +} + +/** + * idr_destroy - release all internal memory from an IDR + * @idr: idr handle + * + * After this function is called, the IDR is empty, and may be reused or + * the data structure containing it may be freed. + * + * A typical clean-up sequence for objects stored in an idr tree will use + * idr_for_each() to free all objects, if necessary, then idr_destroy() to + * free the memory used to keep track of those objects. + */ +void idr_destroy(struct idr *idr) +{ + struct radix_tree_node *node = rcu_dereference_raw(idr->idr_rt.rnode); + if (radix_tree_is_internal_node(node)) + radix_tree_free_nodes(node); + idr->idr_rt.rnode = NULL; + root_tag_set(&idr->idr_rt, IDR_FREE); +} +EXPORT_SYMBOL(idr_destroy); + static void radix_tree_node_ctor(void *arg) { @@ -1642,32 +2263,33 @@ static __init void radix_tree_init_maxnodes(void) } } -static int radix_tree_callback(struct notifier_block *nfb, - unsigned long action, void *hcpu) +static int radix_tree_cpu_dead(unsigned int cpu) { - int cpu = (long)hcpu; struct radix_tree_preload *rtp; struct radix_tree_node *node; /* Free per-cpu pool of preloaded nodes */ - if (action == CPU_DEAD || action == CPU_DEAD_FROZEN) { - rtp = &per_cpu(radix_tree_preloads, cpu); - while (rtp->nr) { - node = rtp->nodes; - rtp->nodes = node->private_data; - kmem_cache_free(radix_tree_node_cachep, node); - rtp->nr--; - } + rtp = &per_cpu(radix_tree_preloads, cpu); + while (rtp->nr) { + node = rtp->nodes; + rtp->nodes = node->parent; + kmem_cache_free(radix_tree_node_cachep, node); + rtp->nr--; } - return NOTIFY_OK; + kfree(per_cpu(ida_bitmap, cpu)); + per_cpu(ida_bitmap, cpu) = NULL; + return 0; } void __init radix_tree_init(void) { + int ret; radix_tree_node_cachep = kmem_cache_create("radix_tree_node", sizeof(struct radix_tree_node), 0, SLAB_PANIC | SLAB_RECLAIM_ACCOUNT, radix_tree_node_ctor); radix_tree_init_maxnodes(); - hotcpu_notifier(radix_tree_callback, 0); + ret = cpuhp_setup_state_nocalls(CPUHP_RADIX_DEAD, "lib/radix:dead", + NULL, radix_tree_cpu_dead); + WARN_ON(ret < 0); } |