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@@ -18,31 +18,31 @@
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#ifdef CONFIG_BCACHE_DEBUG
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-void bch_dump_bset(struct btree_keys *b, struct bset *i, unsigned set)
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+void bch_dump_bset(struct btree_keys *b, struct bset *i, unsigned int set)
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{
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struct bkey *k, *next;
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for (k = i->start; k < bset_bkey_last(i); k = next) {
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next = bkey_next(k);
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- printk(KERN_ERR "block %u key %u/%u: ", set,
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- (unsigned) ((u64 *) k - i->d), i->keys);
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+ pr_err("block %u key %u/%u: ", set,
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+ (unsigned int) ((u64 *) k - i->d), i->keys);
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if (b->ops->key_dump)
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b->ops->key_dump(b, k);
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else
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- printk("%llu:%llu\n", KEY_INODE(k), KEY_OFFSET(k));
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+ pr_err("%llu:%llu\n", KEY_INODE(k), KEY_OFFSET(k));
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if (next < bset_bkey_last(i) &&
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bkey_cmp(k, b->ops->is_extents ?
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&START_KEY(next) : next) > 0)
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- printk(KERN_ERR "Key skipped backwards\n");
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+ pr_err("Key skipped backwards\n");
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}
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}
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void bch_dump_bucket(struct btree_keys *b)
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{
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- unsigned i;
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+ unsigned int i;
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console_lock();
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for (i = 0; i <= b->nsets; i++)
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@@ -53,7 +53,7 @@ void bch_dump_bucket(struct btree_keys *b)
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int __bch_count_data(struct btree_keys *b)
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{
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- unsigned ret = 0;
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+ unsigned int ret = 0;
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struct btree_iter iter;
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struct bkey *k;
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@@ -128,7 +128,7 @@ static inline void bch_btree_iter_next_check(struct btree_iter *iter) {}
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/* Keylists */
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-int __bch_keylist_realloc(struct keylist *l, unsigned u64s)
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+int __bch_keylist_realloc(struct keylist *l, unsigned int u64s)
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{
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size_t oldsize = bch_keylist_nkeys(l);
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size_t newsize = oldsize + u64s;
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@@ -180,7 +180,7 @@ void bch_keylist_pop_front(struct keylist *l)
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/* Key/pointer manipulation */
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void bch_bkey_copy_single_ptr(struct bkey *dest, const struct bkey *src,
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- unsigned i)
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+ unsigned int i)
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{
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BUG_ON(i > KEY_PTRS(src));
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@@ -194,7 +194,7 @@ void bch_bkey_copy_single_ptr(struct bkey *dest, const struct bkey *src,
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bool __bch_cut_front(const struct bkey *where, struct bkey *k)
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{
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- unsigned i, len = 0;
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+ unsigned int i, len = 0;
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if (bkey_cmp(where, &START_KEY(k)) <= 0)
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return false;
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@@ -214,7 +214,7 @@ bool __bch_cut_front(const struct bkey *where, struct bkey *k)
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bool __bch_cut_back(const struct bkey *where, struct bkey *k)
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{
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- unsigned len = 0;
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+ unsigned int len = 0;
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if (bkey_cmp(where, k) >= 0)
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return false;
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@@ -240,9 +240,9 @@ bool __bch_cut_back(const struct bkey *where, struct bkey *k)
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#define BKEY_MANTISSA_MASK ((1 << BKEY_MANTISSA_BITS) - 1)
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struct bkey_float {
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- unsigned exponent:BKEY_EXPONENT_BITS;
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- unsigned m:BKEY_MID_BITS;
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- unsigned mantissa:BKEY_MANTISSA_BITS;
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+ unsigned int exponent:BKEY_EXPONENT_BITS;
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+ unsigned int m:BKEY_MID_BITS;
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+ unsigned int mantissa:BKEY_MANTISSA_BITS;
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} __packed;
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/*
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@@ -311,7 +311,9 @@ void bch_btree_keys_free(struct btree_keys *b)
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}
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EXPORT_SYMBOL(bch_btree_keys_free);
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-int bch_btree_keys_alloc(struct btree_keys *b, unsigned page_order, gfp_t gfp)
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+int bch_btree_keys_alloc(struct btree_keys *b,
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+ unsigned int page_order,
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+ gfp_t gfp)
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{
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struct bset_tree *t = b->set;
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@@ -345,7 +347,7 @@ EXPORT_SYMBOL(bch_btree_keys_alloc);
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void bch_btree_keys_init(struct btree_keys *b, const struct btree_keys_ops *ops,
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bool *expensive_debug_checks)
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{
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- unsigned i;
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+ unsigned int i;
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b->ops = ops;
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b->expensive_debug_checks = expensive_debug_checks;
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@@ -370,7 +372,7 @@ EXPORT_SYMBOL(bch_btree_keys_init);
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* return array index next to j when does in-order traverse
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* of a binary tree which is stored in a linear array
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*/
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-static unsigned inorder_next(unsigned j, unsigned size)
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+static unsigned int inorder_next(unsigned int j, unsigned int size)
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{
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if (j * 2 + 1 < size) {
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j = j * 2 + 1;
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@@ -387,7 +389,7 @@ static unsigned inorder_next(unsigned j, unsigned size)
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* return array index previous to j when does in-order traverse
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* of a binary tree which is stored in a linear array
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*/
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-static unsigned inorder_prev(unsigned j, unsigned size)
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+static unsigned int inorder_prev(unsigned int j, unsigned int size)
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{
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if (j * 2 < size) {
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j = j * 2;
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@@ -400,7 +402,8 @@ static unsigned inorder_prev(unsigned j, unsigned size)
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return j;
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}
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-/* I have no idea why this code works... and I'm the one who wrote it
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+/*
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+ * I have no idea why this code works... and I'm the one who wrote it
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*
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* However, I do know what it does:
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* Given a binary tree constructed in an array (i.e. how you normally implement
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@@ -413,10 +416,12 @@ static unsigned inorder_prev(unsigned j, unsigned size)
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* extra is a function of size:
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* extra = (size - rounddown_pow_of_two(size - 1)) << 1;
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*/
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-static unsigned __to_inorder(unsigned j, unsigned size, unsigned extra)
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+static unsigned int __to_inorder(unsigned int j,
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+ unsigned int size,
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+ unsigned int extra)
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{
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- unsigned b = fls(j);
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- unsigned shift = fls(size - 1) - b;
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+ unsigned int b = fls(j);
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+ unsigned int shift = fls(size - 1) - b;
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j ^= 1U << (b - 1);
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j <<= 1;
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@@ -433,14 +438,16 @@ static unsigned __to_inorder(unsigned j, unsigned size, unsigned extra)
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* Return the cacheline index in bset_tree->data, where j is index
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* from a linear array which stores the auxiliar binary tree
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*/
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-static unsigned to_inorder(unsigned j, struct bset_tree *t)
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+static unsigned int to_inorder(unsigned int j, struct bset_tree *t)
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{
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return __to_inorder(j, t->size, t->extra);
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}
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-static unsigned __inorder_to_tree(unsigned j, unsigned size, unsigned extra)
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+static unsigned int __inorder_to_tree(unsigned int j,
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+ unsigned int size,
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+ unsigned int extra)
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{
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- unsigned shift;
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+ unsigned int shift;
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if (j > extra)
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j += j - extra;
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@@ -457,7 +464,7 @@ static unsigned __inorder_to_tree(unsigned j, unsigned size, unsigned extra)
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* Return an index from a linear array which stores the auxiliar binary
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* tree, j is the cacheline index of t->data.
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*/
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-static unsigned inorder_to_tree(unsigned j, struct bset_tree *t)
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+static unsigned int inorder_to_tree(unsigned int j, struct bset_tree *t)
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{
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return __inorder_to_tree(j, t->size, t->extra);
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}
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@@ -468,14 +475,15 @@ void inorder_test(void)
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unsigned long done = 0;
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ktime_t start = ktime_get();
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- for (unsigned size = 2;
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+ for (unsigned int size = 2;
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size < 65536000;
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size++) {
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- unsigned extra = (size - rounddown_pow_of_two(size - 1)) << 1;
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- unsigned i = 1, j = rounddown_pow_of_two(size - 1);
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+ unsigned int extra =
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+ (size - rounddown_pow_of_two(size - 1)) << 1;
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+ unsigned int i = 1, j = rounddown_pow_of_two(size - 1);
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if (!(size % 4096))
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- printk(KERN_NOTICE "loop %u, %llu per us\n", size,
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+ pr_notice("loop %u, %llu per us\n", size,
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done / ktime_us_delta(ktime_get(), start));
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while (1) {
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@@ -518,30 +526,31 @@ void inorder_test(void)
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* of the previous key so we can walk backwards to it from t->tree[j]'s key.
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*/
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-static struct bkey *cacheline_to_bkey(struct bset_tree *t, unsigned cacheline,
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- unsigned offset)
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+static struct bkey *cacheline_to_bkey(struct bset_tree *t,
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+ unsigned int cacheline,
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+ unsigned int offset)
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{
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return ((void *) t->data) + cacheline * BSET_CACHELINE + offset * 8;
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}
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-static unsigned bkey_to_cacheline(struct bset_tree *t, struct bkey *k)
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+static unsigned int bkey_to_cacheline(struct bset_tree *t, struct bkey *k)
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{
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return ((void *) k - (void *) t->data) / BSET_CACHELINE;
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}
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-static unsigned bkey_to_cacheline_offset(struct bset_tree *t,
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- unsigned cacheline,
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+static unsigned int bkey_to_cacheline_offset(struct bset_tree *t,
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+ unsigned int cacheline,
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struct bkey *k)
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{
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return (u64 *) k - (u64 *) cacheline_to_bkey(t, cacheline, 0);
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}
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-static struct bkey *tree_to_bkey(struct bset_tree *t, unsigned j)
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+static struct bkey *tree_to_bkey(struct bset_tree *t, unsigned int j)
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{
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return cacheline_to_bkey(t, to_inorder(j, t), t->tree[j].m);
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}
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-static struct bkey *tree_to_prev_bkey(struct bset_tree *t, unsigned j)
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+static struct bkey *tree_to_prev_bkey(struct bset_tree *t, unsigned int j)
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{
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return (void *) (((uint64_t *) tree_to_bkey(t, j)) - t->prev[j]);
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}
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@@ -550,7 +559,7 @@ static struct bkey *tree_to_prev_bkey(struct bset_tree *t, unsigned j)
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* For the write set - the one we're currently inserting keys into - we don't
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* maintain a full search tree, we just keep a simple lookup table in t->prev.
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*/
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-static struct bkey *table_to_bkey(struct bset_tree *t, unsigned cacheline)
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+static struct bkey *table_to_bkey(struct bset_tree *t, unsigned int cacheline)
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{
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return cacheline_to_bkey(t, cacheline, t->prev[cacheline]);
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}
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@@ -576,14 +585,15 @@ static inline uint64_t shrd128(uint64_t high, uint64_t low, uint8_t shift)
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* See make_bfloat() to check when most significant bit of f->exponent
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* is set or not.
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*/
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-static inline unsigned bfloat_mantissa(const struct bkey *k,
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+static inline unsigned int bfloat_mantissa(const struct bkey *k,
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struct bkey_float *f)
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{
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const uint64_t *p = &k->low - (f->exponent >> 6);
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+
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return shrd128(p[-1], p[0], f->exponent & 63) & BKEY_MANTISSA_MASK;
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}
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-static void make_bfloat(struct bset_tree *t, unsigned j)
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+static void make_bfloat(struct bset_tree *t, unsigned int j)
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{
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struct bkey_float *f = &t->tree[j];
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struct bkey *m = tree_to_bkey(t, j);
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@@ -631,7 +641,7 @@ static void make_bfloat(struct bset_tree *t, unsigned j)
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static void bset_alloc_tree(struct btree_keys *b, struct bset_tree *t)
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{
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if (t != b->set) {
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- unsigned j = roundup(t[-1].size,
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+ unsigned int j = roundup(t[-1].size,
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64 / sizeof(struct bkey_float));
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t->tree = t[-1].tree + j;
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@@ -686,13 +696,13 @@ void bch_bset_build_written_tree(struct btree_keys *b)
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{
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struct bset_tree *t = bset_tree_last(b);
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struct bkey *prev = NULL, *k = t->data->start;
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- unsigned j, cacheline = 1;
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+ unsigned int j, cacheline = 1;
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b->last_set_unwritten = 0;
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bset_alloc_tree(b, t);
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- t->size = min_t(unsigned,
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+ t->size = min_t(unsigned int,
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bkey_to_cacheline(t, bset_bkey_last(t->data)),
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b->set->tree + btree_keys_cachelines(b) - t->tree);
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@@ -732,7 +742,7 @@ EXPORT_SYMBOL(bch_bset_build_written_tree);
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void bch_bset_fix_invalidated_key(struct btree_keys *b, struct bkey *k)
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{
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struct bset_tree *t;
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- unsigned inorder, j = 1;
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+ unsigned int inorder, j = 1;
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for (t = b->set; t <= bset_tree_last(b); t++)
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if (k < bset_bkey_last(t->data))
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@@ -779,14 +789,15 @@ static void bch_bset_fix_lookup_table(struct btree_keys *b,
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struct bset_tree *t,
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struct bkey *k)
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{
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- unsigned shift = bkey_u64s(k);
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- unsigned j = bkey_to_cacheline(t, k);
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+ unsigned int shift = bkey_u64s(k);
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+ unsigned int j = bkey_to_cacheline(t, k);
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/* We're getting called from btree_split() or btree_gc, just bail out */
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if (!t->size)
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return;
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- /* k is the key we just inserted; we need to find the entry in the
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+ /*
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+ * k is the key we just inserted; we need to find the entry in the
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* lookup table for the first key that is strictly greater than k:
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* it's either k's cacheline or the next one
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*/
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@@ -794,7 +805,8 @@ static void bch_bset_fix_lookup_table(struct btree_keys *b,
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table_to_bkey(t, j) <= k)
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j++;
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- /* Adjust all the lookup table entries, and find a new key for any that
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+ /*
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+ * Adjust all the lookup table entries, and find a new key for any that
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* have gotten too big
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*/
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for (; j < t->size; j++) {
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@@ -819,7 +831,8 @@ static void bch_bset_fix_lookup_table(struct btree_keys *b,
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k != bset_bkey_last(t->data);
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k = bkey_next(k))
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if (t->size == bkey_to_cacheline(t, k)) {
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- t->prev[t->size] = bkey_to_cacheline_offset(t, t->size, k);
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+ t->prev[t->size] =
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+ bkey_to_cacheline_offset(t, t->size, k);
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t->size++;
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}
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}
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@@ -867,10 +880,10 @@ void bch_bset_insert(struct btree_keys *b, struct bkey *where,
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}
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EXPORT_SYMBOL(bch_bset_insert);
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-unsigned bch_btree_insert_key(struct btree_keys *b, struct bkey *k,
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+unsigned int bch_btree_insert_key(struct btree_keys *b, struct bkey *k,
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struct bkey *replace_key)
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{
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- unsigned status = BTREE_INSERT_STATUS_NO_INSERT;
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+ unsigned int status = BTREE_INSERT_STATUS_NO_INSERT;
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struct bset *i = bset_tree_last(b)->data;
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struct bkey *m, *prev = NULL;
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struct btree_iter iter;
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@@ -922,10 +935,10 @@ struct bset_search_iter {
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static struct bset_search_iter bset_search_write_set(struct bset_tree *t,
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const struct bkey *search)
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{
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- unsigned li = 0, ri = t->size;
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+ unsigned int li = 0, ri = t->size;
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while (li + 1 != ri) {
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- unsigned m = (li + ri) >> 1;
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+ unsigned int m = (li + ri) >> 1;
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if (bkey_cmp(table_to_bkey(t, m), search) > 0)
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ri = m;
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@@ -944,7 +957,7 @@ static struct bset_search_iter bset_search_tree(struct bset_tree *t,
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{
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struct bkey *l, *r;
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struct bkey_float *f;
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- unsigned inorder, j, n = 1;
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+ unsigned int inorder, j, n = 1;
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do {
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/*
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@@ -958,7 +971,8 @@ static struct bset_search_iter bset_search_tree(struct bset_tree *t,
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* p = 0;
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* but a branch instruction is avoided.
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*/
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- unsigned p = n << 4;
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+ unsigned int p = n << 4;
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+
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p &= ((int) (p - t->size)) >> 31;
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prefetch(&t->tree[p]);
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@@ -978,7 +992,7 @@ static struct bset_search_iter bset_search_tree(struct bset_tree *t,
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* to work - that's done in make_bfloat()
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*/
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if (likely(f->exponent != 127))
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- n = j * 2 + (((unsigned)
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+ n = j * 2 + (((unsigned int)
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(f->mantissa -
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bfloat_mantissa(search, f))) >> 31);
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else
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@@ -1109,6 +1123,7 @@ static struct bkey *__bch_btree_iter_init(struct btree_keys *b,
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struct bset_tree *start)
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{
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struct bkey *ret = NULL;
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+
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iter->size = ARRAY_SIZE(iter->data);
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iter->used = 0;
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@@ -1184,7 +1199,8 @@ void bch_bset_sort_state_free(struct bset_sort_state *state)
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mempool_exit(&state->pool);
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}
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-int bch_bset_sort_state_init(struct bset_sort_state *state, unsigned page_order)
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+int bch_bset_sort_state_init(struct bset_sort_state *state,
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+ unsigned int page_order)
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{
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spin_lock_init(&state->time.lock);
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@@ -1237,7 +1253,7 @@ static void btree_mergesort(struct btree_keys *b, struct bset *out,
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}
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static void __btree_sort(struct btree_keys *b, struct btree_iter *iter,
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- unsigned start, unsigned order, bool fixup,
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+ unsigned int start, unsigned int order, bool fixup,
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struct bset_sort_state *state)
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{
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uint64_t start_time;
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@@ -1288,7 +1304,7 @@ static void __btree_sort(struct btree_keys *b, struct btree_iter *iter,
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bch_time_stats_update(&state->time, start_time);
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}
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-void bch_btree_sort_partial(struct btree_keys *b, unsigned start,
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+void bch_btree_sort_partial(struct btree_keys *b, unsigned int start,
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struct bset_sort_state *state)
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{
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size_t order = b->page_order, keys = 0;
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@@ -1298,7 +1314,7 @@ void bch_btree_sort_partial(struct btree_keys *b, unsigned start,
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__bch_btree_iter_init(b, &iter, NULL, &b->set[start]);
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if (start) {
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- unsigned i;
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+ unsigned int i;
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for (i = start; i <= b->nsets; i++)
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keys += b->set[i].data->keys;
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@@ -1323,8 +1339,8 @@ void bch_btree_sort_into(struct btree_keys *b, struct btree_keys *new,
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struct bset_sort_state *state)
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|
{
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|
uint64_t start_time = local_clock();
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-
|
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struct btree_iter iter;
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+
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bch_btree_iter_init(b, &iter, NULL);
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|
btree_mergesort(b, new->set->data, &iter, false, true);
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@@ -1338,7 +1354,7 @@ void bch_btree_sort_into(struct btree_keys *b, struct btree_keys *new,
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void bch_btree_sort_lazy(struct btree_keys *b, struct bset_sort_state *state)
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|
{
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- unsigned crit = SORT_CRIT;
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|
+ unsigned int crit = SORT_CRIT;
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|
|
int i;
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/* Don't sort if nothing to do */
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@@ -1367,7 +1383,7 @@ EXPORT_SYMBOL(bch_btree_sort_lazy);
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|
|
void bch_btree_keys_stats(struct btree_keys *b, struct bset_stats *stats)
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|
|
{
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|
- unsigned i;
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|
+ unsigned int i;
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|
|
|
|
|
for (i = 0; i <= b->nsets; i++) {
|
|
|
struct bset_tree *t = &b->set[i];
|