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radixtree.c revision 1.17.2.5
      1  1.17.2.5  yamt /*	$NetBSD: radixtree.c,v 1.17.2.5 2014/03/25 16:21:08 yamt Exp $	*/
      2       1.1  yamt 
      3       1.1  yamt /*-
      4  1.17.2.5  yamt  * Copyright (c)2011,2012,2013 YAMAMOTO Takashi,
      5       1.1  yamt  * All rights reserved.
      6       1.1  yamt  *
      7       1.1  yamt  * Redistribution and use in source and binary forms, with or without
      8       1.1  yamt  * modification, are permitted provided that the following conditions
      9       1.1  yamt  * are met:
     10       1.1  yamt  * 1. Redistributions of source code must retain the above copyright
     11       1.1  yamt  *    notice, this list of conditions and the following disclaimer.
     12       1.1  yamt  * 2. Redistributions in binary form must reproduce the above copyright
     13       1.1  yamt  *    notice, this list of conditions and the following disclaimer in the
     14       1.1  yamt  *    documentation and/or other materials provided with the distribution.
     15       1.1  yamt  *
     16       1.1  yamt  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     17       1.1  yamt  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     18       1.1  yamt  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     19       1.1  yamt  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     20       1.1  yamt  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     21       1.1  yamt  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     22       1.1  yamt  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     23       1.1  yamt  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     24       1.1  yamt  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     25       1.1  yamt  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     26       1.1  yamt  * SUCH DAMAGE.
     27       1.1  yamt  */
     28       1.1  yamt 
     29       1.1  yamt /*
     30      1.17  yamt  * radixtree.c
     31       1.1  yamt  *
     32  1.17.2.2  yamt  * Overview:
     33  1.17.2.2  yamt  *
     34  1.17.2.2  yamt  * This is an implementation of radix tree, whose keys are uint64_t and leafs
     35      1.17  yamt  * are user provided pointers.
     36      1.17  yamt  *
     37  1.17.2.2  yamt  * Leaf nodes are just void * and this implementation doesn't care about
     38  1.17.2.2  yamt  * what they actually point to.  However, this implementation has an assumption
     39  1.17.2.2  yamt  * about their alignment.  Specifically, this implementation assumes that their
     40  1.17.2.2  yamt  * 2 LSBs are always zero and uses them for internal accounting.
     41  1.17.2.2  yamt  *
     42  1.17.2.2  yamt  * Intermediate nodes and memory allocation:
     43  1.17.2.2  yamt  *
     44  1.17.2.2  yamt  * Intermediate nodes are automatically allocated and freed internally and
     45  1.17.2.2  yamt  * basically users don't need to care about them.  The allocation is done via
     46  1.17.2.2  yamt  * pool_cache_get(9) for _KERNEL, malloc(3) for userland, and alloc() for
     47  1.17.2.5  yamt  * _STANDALONE environment.  Only radix_tree_insert_node function can allocate
     48  1.17.2.2  yamt  * memory for intermediate nodes and thus can fail for ENOMEM.
     49  1.17.2.2  yamt  *
     50  1.17.2.5  yamt  * Memory Efficiency:
     51  1.17.2.2  yamt  *
     52  1.17.2.2  yamt  * It's designed to work efficiently with dense index distribution.
     53  1.17.2.2  yamt  * The memory consumption (number of necessary intermediate nodes) heavily
     54  1.17.2.2  yamt  * depends on the index distribution.  Basically, more dense index distribution
     55  1.17.2.2  yamt  * consumes less nodes per item.  Approximately,
     56  1.17.2.5  yamt  *
     57  1.17.2.2  yamt  *  - the best case: about RADIX_TREE_PTR_PER_NODE items per intermediate node.
     58  1.17.2.5  yamt  *    it would look like the following.
     59  1.17.2.5  yamt  *
     60  1.17.2.5  yamt  *     root (t_height=1)
     61  1.17.2.5  yamt  *      |
     62  1.17.2.5  yamt  *      v
     63  1.17.2.5  yamt  *      [ | | | ]   (intermediate node.  RADIX_TREE_PTR_PER_NODE=4 in this fig)
     64  1.17.2.5  yamt  *       | | | |
     65  1.17.2.5  yamt  *       v v v v
     66  1.17.2.5  yamt  *       p p p p    (items)
     67  1.17.2.5  yamt  *
     68  1.17.2.2  yamt  *  - the worst case: RADIX_TREE_MAX_HEIGHT intermediate nodes per item.
     69  1.17.2.5  yamt  *    it would look like the following if RADIX_TREE_MAX_HEIGHT=3.
     70  1.17.2.2  yamt  *
     71  1.17.2.5  yamt  *     root (t_height=3)
     72  1.17.2.5  yamt  *      |
     73  1.17.2.5  yamt  *      v
     74  1.17.2.5  yamt  *      [ | | | ]
     75  1.17.2.5  yamt  *           |
     76  1.17.2.5  yamt  *           v
     77  1.17.2.5  yamt  *           [ | | | ]
     78  1.17.2.5  yamt  *                |
     79  1.17.2.5  yamt  *                v
     80  1.17.2.5  yamt  *                [ | | | ]
     81  1.17.2.5  yamt  *                   |
     82  1.17.2.5  yamt  *                   v
     83  1.17.2.5  yamt  *                   p
     84  1.17.2.5  yamt  *
     85  1.17.2.5  yamt  * The height of tree (t_height) is dynamic.  It's smaller if only small
     86  1.17.2.5  yamt  * index values are used.  As an extreme case, if only index 0 is used,
     87  1.17.2.5  yamt  * the corresponding value is directly stored in the root of the tree
     88  1.17.2.5  yamt  * (struct radix_tree) without allocating any intermediate nodes.  In that
     89  1.17.2.5  yamt  * case, t_height=0.
     90  1.17.2.3  yamt  *
     91  1.17.2.2  yamt  * Gang lookup:
     92      1.17  yamt  *
     93  1.17.2.2  yamt  * This implementation provides a way to scan many nodes quickly via
     94      1.17  yamt  * radix_tree_gang_lookup_node function and its varients.
     95      1.17  yamt  *
     96  1.17.2.2  yamt  * Tags:
     97  1.17.2.2  yamt  *
     98  1.17.2.2  yamt  * This implementation provides tagging functionality, which allows quick
     99  1.17.2.2  yamt  * scanning of a subset of leaf nodes.  Leaf nodes are untagged when inserted
    100  1.17.2.2  yamt  * into the tree and can be tagged by radix_tree_set_tag function.
    101  1.17.2.2  yamt  * radix_tree_gang_lookup_tagged_node function and its variants returns only
    102  1.17.2.2  yamt  * leaf nodes with the given tag.  To reduce amount of nodes to visit for
    103      1.17  yamt  * these functions, this implementation keeps tagging information in internal
    104      1.17  yamt  * intermediate nodes and quickly skips uninterested parts of a tree.
    105  1.17.2.4  yamt  *
    106  1.17.2.4  yamt  * A tree has RADIX_TREE_TAG_ID_MAX independent tag spaces, each of which are
    107  1.17.2.4  yamt  * identified by an zero-origin numbers, tagid.  For the current implementation,
    108  1.17.2.4  yamt  * RADIX_TREE_TAG_ID_MAX is 2.  A set of tags is described as a bitmask tagmask,
    109  1.17.2.4  yamt  * which is a bitwise OR of (1 << tagid).
    110       1.1  yamt  */
    111       1.1  yamt 
    112       1.1  yamt #include <sys/cdefs.h>
    113       1.1  yamt 
    114       1.2  yamt #if defined(_KERNEL) || defined(_STANDALONE)
    115  1.17.2.5  yamt __KERNEL_RCSID(0, "$NetBSD: radixtree.c,v 1.17.2.5 2014/03/25 16:21:08 yamt Exp $");
    116       1.1  yamt #include <sys/param.h>
    117       1.3  yamt #include <sys/errno.h>
    118       1.1  yamt #include <sys/pool.h>
    119       1.1  yamt #include <sys/radixtree.h>
    120       1.3  yamt #include <lib/libkern/libkern.h>
    121       1.3  yamt #if defined(_STANDALONE)
    122       1.3  yamt #include <lib/libsa/stand.h>
    123       1.3  yamt #endif /* defined(_STANDALONE) */
    124       1.2  yamt #else /* defined(_KERNEL) || defined(_STANDALONE) */
    125  1.17.2.5  yamt __RCSID("$NetBSD: radixtree.c,v 1.17.2.5 2014/03/25 16:21:08 yamt Exp $");
    126       1.1  yamt #include <assert.h>
    127       1.1  yamt #include <errno.h>
    128       1.1  yamt #include <stdbool.h>
    129       1.1  yamt #include <stdlib.h>
    130       1.8  yamt #include <string.h>
    131       1.1  yamt #if 1
    132       1.1  yamt #define KASSERT assert
    133       1.1  yamt #else
    134       1.1  yamt #define KASSERT(a)	/* nothing */
    135       1.1  yamt #endif
    136       1.2  yamt #endif /* defined(_KERNEL) || defined(_STANDALONE) */
    137       1.1  yamt 
    138       1.1  yamt #include <sys/radixtree.h>
    139       1.1  yamt 
    140       1.1  yamt #define	RADIX_TREE_BITS_PER_HEIGHT	4	/* XXX tune */
    141       1.1  yamt #define	RADIX_TREE_PTR_PER_NODE		(1 << RADIX_TREE_BITS_PER_HEIGHT)
    142       1.1  yamt #define	RADIX_TREE_MAX_HEIGHT		(64 / RADIX_TREE_BITS_PER_HEIGHT)
    143      1.15  yamt #define	RADIX_TREE_INVALID_HEIGHT	(RADIX_TREE_MAX_HEIGHT + 1)
    144       1.2  yamt __CTASSERT((64 % RADIX_TREE_BITS_PER_HEIGHT) == 0);
    145       1.1  yamt 
    146       1.2  yamt __CTASSERT(((1 << RADIX_TREE_TAG_ID_MAX) & (sizeof(int) - 1)) == 0);
    147       1.1  yamt #define	RADIX_TREE_TAG_MASK	((1 << RADIX_TREE_TAG_ID_MAX) - 1)
    148       1.1  yamt 
    149       1.1  yamt static inline void *
    150       1.1  yamt entry_ptr(void *p)
    151       1.1  yamt {
    152       1.1  yamt 
    153       1.1  yamt 	return (void *)((uintptr_t)p & ~RADIX_TREE_TAG_MASK);
    154       1.1  yamt }
    155       1.1  yamt 
    156       1.1  yamt static inline unsigned int
    157       1.1  yamt entry_tagmask(void *p)
    158       1.1  yamt {
    159       1.1  yamt 
    160       1.1  yamt 	return (uintptr_t)p & RADIX_TREE_TAG_MASK;
    161       1.1  yamt }
    162       1.1  yamt 
    163       1.1  yamt static inline void *
    164       1.1  yamt entry_compose(void *p, unsigned int tagmask)
    165       1.1  yamt {
    166       1.1  yamt 
    167       1.1  yamt 	return (void *)((uintptr_t)p | tagmask);
    168       1.1  yamt }
    169       1.1  yamt 
    170       1.1  yamt static inline bool
    171       1.1  yamt entry_match_p(void *p, unsigned int tagmask)
    172       1.1  yamt {
    173       1.1  yamt 
    174       1.1  yamt 	KASSERT(entry_ptr(p) != NULL || entry_tagmask(p) == 0);
    175       1.1  yamt 	if (p == NULL) {
    176       1.1  yamt 		return false;
    177       1.1  yamt 	}
    178       1.1  yamt 	if (tagmask == 0) {
    179       1.1  yamt 		return true;
    180       1.1  yamt 	}
    181       1.1  yamt 	return (entry_tagmask(p) & tagmask) != 0;
    182       1.1  yamt }
    183       1.1  yamt 
    184       1.1  yamt /*
    185       1.1  yamt  * radix_tree_node: an intermediate node
    186       1.1  yamt  *
    187       1.1  yamt  * we don't care the type of leaf nodes.  they are just void *.
    188       1.1  yamt  */
    189       1.1  yamt 
    190       1.1  yamt struct radix_tree_node {
    191       1.1  yamt 	void *n_ptrs[RADIX_TREE_PTR_PER_NODE];
    192       1.1  yamt 	unsigned int n_nptrs;	/* # of non-NULL pointers in n_ptrs */
    193       1.1  yamt };
    194       1.1  yamt 
    195       1.7  yamt /*
    196       1.7  yamt  * any_children_tagmask:
    197       1.7  yamt  *
    198       1.7  yamt  * return OR'ed tagmask of the given node's children.
    199       1.7  yamt  */
    200       1.7  yamt 
    201       1.1  yamt static unsigned int
    202      1.13  yamt any_children_tagmask(const struct radix_tree_node *n)
    203       1.1  yamt {
    204       1.1  yamt 	unsigned int mask;
    205       1.1  yamt 	int i;
    206       1.1  yamt 
    207       1.1  yamt 	mask = 0;
    208       1.1  yamt 	for (i = 0; i < RADIX_TREE_PTR_PER_NODE; i++) {
    209       1.1  yamt 		mask |= (unsigned int)(uintptr_t)n->n_ptrs[i];
    210       1.1  yamt 	}
    211       1.1  yamt 	return mask & RADIX_TREE_TAG_MASK;
    212       1.1  yamt }
    213       1.1  yamt 
    214       1.1  yamt /*
    215       1.1  yamt  * p_refs[0].pptr == &t->t_root
    216       1.1  yamt  *	:
    217       1.1  yamt  * p_refs[n].pptr == &(*p_refs[n-1])->n_ptrs[x]
    218       1.1  yamt  *	:
    219       1.1  yamt  *	:
    220       1.1  yamt  * p_refs[t->t_height].pptr == &leaf_pointer
    221       1.1  yamt  */
    222       1.1  yamt 
    223       1.1  yamt struct radix_tree_path {
    224       1.1  yamt 	struct radix_tree_node_ref {
    225       1.1  yamt 		void **pptr;
    226       1.1  yamt 	} p_refs[RADIX_TREE_MAX_HEIGHT + 1]; /* +1 for the root ptr */
    227      1.15  yamt 	/*
    228      1.15  yamt 	 * p_lastidx is either the index of the last valid element of p_refs[]
    229      1.15  yamt 	 * or RADIX_TREE_INVALID_HEIGHT.
    230      1.15  yamt 	 * RADIX_TREE_INVALID_HEIGHT means that radix_tree_lookup_ptr found
    231      1.15  yamt 	 * that the height of the tree is not enough to cover the given index.
    232      1.15  yamt 	 */
    233      1.10  yamt 	unsigned int p_lastidx;
    234       1.1  yamt };
    235       1.1  yamt 
    236       1.1  yamt static inline void **
    237      1.13  yamt path_pptr(const struct radix_tree *t, const struct radix_tree_path *p,
    238       1.1  yamt     unsigned int height)
    239       1.1  yamt {
    240       1.1  yamt 
    241       1.1  yamt 	KASSERT(height <= t->t_height);
    242       1.1  yamt 	return p->p_refs[height].pptr;
    243       1.1  yamt }
    244       1.1  yamt 
    245       1.1  yamt static inline struct radix_tree_node *
    246      1.13  yamt path_node(const struct radix_tree * t, const struct radix_tree_path *p,
    247      1.13  yamt     unsigned int height)
    248       1.1  yamt {
    249       1.1  yamt 
    250       1.1  yamt 	KASSERT(height <= t->t_height);
    251       1.1  yamt 	return entry_ptr(*path_pptr(t, p, height));
    252       1.1  yamt }
    253       1.1  yamt 
    254       1.1  yamt /*
    255       1.1  yamt  * radix_tree_init_tree:
    256       1.1  yamt  *
    257  1.17.2.2  yamt  * Initialize a tree.
    258       1.1  yamt  */
    259       1.1  yamt 
    260       1.1  yamt void
    261       1.1  yamt radix_tree_init_tree(struct radix_tree *t)
    262       1.1  yamt {
    263       1.1  yamt 
    264       1.1  yamt 	t->t_height = 0;
    265       1.1  yamt 	t->t_root = NULL;
    266       1.1  yamt }
    267       1.1  yamt 
    268       1.1  yamt /*
    269  1.17.2.2  yamt  * radix_tree_fini_tree:
    270       1.1  yamt  *
    271  1.17.2.2  yamt  * Finish using a tree.
    272       1.1  yamt  */
    273       1.1  yamt 
    274       1.1  yamt void
    275       1.1  yamt radix_tree_fini_tree(struct radix_tree *t)
    276       1.1  yamt {
    277       1.1  yamt 
    278       1.1  yamt 	KASSERT(t->t_root == NULL);
    279       1.1  yamt 	KASSERT(t->t_height == 0);
    280       1.1  yamt }
    281       1.1  yamt 
    282  1.17.2.2  yamt /*
    283  1.17.2.2  yamt  * radix_tree_empty_tree_p:
    284  1.17.2.2  yamt  *
    285  1.17.2.2  yamt  * Return if the tree is empty.
    286  1.17.2.2  yamt  */
    287  1.17.2.2  yamt 
    288       1.9  yamt bool
    289       1.9  yamt radix_tree_empty_tree_p(struct radix_tree *t)
    290       1.9  yamt {
    291       1.9  yamt 
    292       1.9  yamt 	return t->t_root == NULL;
    293       1.9  yamt }
    294       1.9  yamt 
    295  1.17.2.2  yamt /*
    296  1.17.2.2  yamt  * radix_tree_empty_tree_p:
    297  1.17.2.2  yamt  *
    298  1.17.2.2  yamt  * Return true if the tree has any nodes with the given tag.  Otherwise
    299  1.17.2.2  yamt  * return false.
    300  1.17.2.4  yamt  *
    301  1.17.2.4  yamt  * It's illegal to call this function with tagmask 0.
    302  1.17.2.2  yamt  */
    303  1.17.2.2  yamt 
    304      1.16  yamt bool
    305  1.17.2.4  yamt radix_tree_empty_tagged_tree_p(struct radix_tree *t, unsigned int tagmask)
    306      1.16  yamt {
    307      1.16  yamt 
    308  1.17.2.4  yamt 	KASSERT(tagmask != 0);
    309      1.16  yamt 	return (entry_tagmask(t->t_root) & tagmask) == 0;
    310      1.16  yamt }
    311      1.16  yamt 
    312       1.3  yamt static void
    313       1.3  yamt radix_tree_node_init(struct radix_tree_node *n)
    314       1.3  yamt {
    315       1.3  yamt 
    316       1.3  yamt 	memset(n, 0, sizeof(*n));
    317       1.3  yamt }
    318       1.3  yamt 
    319       1.1  yamt #if defined(_KERNEL)
    320       1.2  yamt pool_cache_t radix_tree_node_cache __read_mostly;
    321       1.1  yamt 
    322       1.1  yamt static int
    323       1.1  yamt radix_tree_node_ctor(void *dummy, void *item, int flags)
    324       1.1  yamt {
    325       1.1  yamt 	struct radix_tree_node *n = item;
    326       1.1  yamt 
    327       1.1  yamt 	KASSERT(dummy == NULL);
    328       1.3  yamt 	radix_tree_node_init(n);
    329       1.1  yamt 	return 0;
    330       1.1  yamt }
    331       1.1  yamt 
    332       1.1  yamt /*
    333       1.1  yamt  * radix_tree_init:
    334       1.1  yamt  *
    335       1.1  yamt  * initialize the subsystem.
    336       1.1  yamt  */
    337       1.1  yamt 
    338       1.1  yamt void
    339       1.1  yamt radix_tree_init(void)
    340       1.1  yamt {
    341       1.1  yamt 
    342       1.1  yamt 	radix_tree_node_cache = pool_cache_init(sizeof(struct radix_tree_node),
    343       1.1  yamt 	    0, 0, 0, "radix_tree_node", NULL, IPL_NONE, radix_tree_node_ctor,
    344       1.1  yamt 	    NULL, NULL);
    345       1.1  yamt 	KASSERT(radix_tree_node_cache != NULL);
    346       1.1  yamt }
    347       1.1  yamt #endif /* defined(_KERNEL) */
    348       1.1  yamt 
    349       1.1  yamt static bool __unused
    350       1.1  yamt radix_tree_node_clean_p(const struct radix_tree_node *n)
    351       1.1  yamt {
    352       1.1  yamt 	unsigned int i;
    353       1.1  yamt 
    354       1.1  yamt 	if (n->n_nptrs != 0) {
    355       1.1  yamt 		return false;
    356       1.1  yamt 	}
    357       1.1  yamt 	for (i = 0; i < RADIX_TREE_PTR_PER_NODE; i++) {
    358       1.1  yamt 		if (n->n_ptrs[i] != NULL) {
    359       1.1  yamt 			return false;
    360       1.1  yamt 		}
    361       1.1  yamt 	}
    362       1.1  yamt 	return true;
    363       1.1  yamt }
    364       1.1  yamt 
    365       1.1  yamt static struct radix_tree_node *
    366       1.1  yamt radix_tree_alloc_node(void)
    367       1.1  yamt {
    368       1.1  yamt 	struct radix_tree_node *n;
    369       1.1  yamt 
    370       1.1  yamt #if defined(_KERNEL)
    371  1.17.2.2  yamt 	/*
    372  1.17.2.2  yamt 	 * note that pool_cache_get can block.
    373  1.17.2.2  yamt 	 */
    374       1.1  yamt 	n = pool_cache_get(radix_tree_node_cache, PR_NOWAIT);
    375       1.1  yamt #else /* defined(_KERNEL) */
    376       1.3  yamt #if defined(_STANDALONE)
    377       1.3  yamt 	n = alloc(sizeof(*n));
    378       1.3  yamt #else /* defined(_STANDALONE) */
    379       1.3  yamt 	n = malloc(sizeof(*n));
    380       1.3  yamt #endif /* defined(_STANDALONE) */
    381       1.3  yamt 	if (n != NULL) {
    382       1.3  yamt 		radix_tree_node_init(n);
    383       1.3  yamt 	}
    384       1.1  yamt #endif /* defined(_KERNEL) */
    385       1.1  yamt 	KASSERT(n == NULL || radix_tree_node_clean_p(n));
    386       1.1  yamt 	return n;
    387       1.1  yamt }
    388       1.1  yamt 
    389       1.1  yamt static void
    390       1.1  yamt radix_tree_free_node(struct radix_tree_node *n)
    391       1.1  yamt {
    392       1.1  yamt 
    393       1.1  yamt 	KASSERT(radix_tree_node_clean_p(n));
    394       1.1  yamt #if defined(_KERNEL)
    395       1.1  yamt 	pool_cache_put(radix_tree_node_cache, n);
    396       1.3  yamt #elif defined(_STANDALONE)
    397       1.3  yamt 	dealloc(n, sizeof(*n));
    398       1.3  yamt #else
    399       1.1  yamt 	free(n);
    400       1.3  yamt #endif
    401       1.1  yamt }
    402       1.1  yamt 
    403       1.1  yamt static int
    404       1.1  yamt radix_tree_grow(struct radix_tree *t, unsigned int newheight)
    405       1.1  yamt {
    406       1.1  yamt 	const unsigned int tagmask = entry_tagmask(t->t_root);
    407       1.1  yamt 
    408       1.1  yamt 	KASSERT(newheight <= 64 / RADIX_TREE_BITS_PER_HEIGHT);
    409       1.1  yamt 	if (t->t_root == NULL) {
    410       1.1  yamt 		t->t_height = newheight;
    411       1.1  yamt 		return 0;
    412       1.1  yamt 	}
    413       1.1  yamt 	while (t->t_height < newheight) {
    414       1.1  yamt 		struct radix_tree_node *n;
    415       1.1  yamt 
    416       1.1  yamt 		n = radix_tree_alloc_node();
    417       1.1  yamt 		if (n == NULL) {
    418       1.1  yamt 			/*
    419       1.1  yamt 			 * don't bother to revert our changes.
    420       1.1  yamt 			 * the caller will likely retry.
    421       1.1  yamt 			 */
    422       1.1  yamt 			return ENOMEM;
    423       1.1  yamt 		}
    424       1.1  yamt 		n->n_nptrs = 1;
    425       1.1  yamt 		n->n_ptrs[0] = t->t_root;
    426       1.1  yamt 		t->t_root = entry_compose(n, tagmask);
    427       1.1  yamt 		t->t_height++;
    428       1.1  yamt 	}
    429       1.1  yamt 	return 0;
    430       1.1  yamt }
    431       1.1  yamt 
    432       1.5  yamt /*
    433       1.5  yamt  * radix_tree_lookup_ptr:
    434       1.5  yamt  *
    435       1.5  yamt  * an internal helper function used for various exported functions.
    436       1.5  yamt  *
    437       1.5  yamt  * return the pointer to store the node for the given index.
    438       1.5  yamt  *
    439       1.5  yamt  * if alloc is true, try to allocate the storage.  (note for _KERNEL:
    440       1.5  yamt  * in that case, this function can block.)  if the allocation failed or
    441       1.5  yamt  * alloc is false, return NULL.
    442       1.5  yamt  *
    443       1.5  yamt  * if path is not NULL, fill it for the caller's investigation.
    444       1.5  yamt  *
    445       1.5  yamt  * if tagmask is not zero, search only for nodes with the tag set.
    446      1.15  yamt  * note that, however, this function doesn't check the tagmask for the leaf
    447      1.15  yamt  * pointer.  it's a caller's responsibility to investigate the value which
    448      1.15  yamt  * is pointed by the returned pointer if necessary.
    449       1.5  yamt  *
    450       1.5  yamt  * while this function is a bit large, as it's called with some constant
    451       1.5  yamt  * arguments, inlining might have benefits.  anyway, a compiler will decide.
    452       1.5  yamt  */
    453       1.5  yamt 
    454       1.1  yamt static inline void **
    455       1.1  yamt radix_tree_lookup_ptr(struct radix_tree *t, uint64_t idx,
    456       1.1  yamt     struct radix_tree_path *path, bool alloc, const unsigned int tagmask)
    457       1.1  yamt {
    458       1.1  yamt 	struct radix_tree_node *n;
    459       1.1  yamt 	int hshift = RADIX_TREE_BITS_PER_HEIGHT * t->t_height;
    460       1.1  yamt 	int shift;
    461       1.1  yamt 	void **vpp;
    462       1.1  yamt 	const uint64_t mask = (UINT64_C(1) << RADIX_TREE_BITS_PER_HEIGHT) - 1;
    463       1.1  yamt 	struct radix_tree_node_ref *refs = NULL;
    464       1.1  yamt 
    465       1.5  yamt 	/*
    466       1.5  yamt 	 * check unsupported combinations
    467       1.5  yamt 	 */
    468       1.1  yamt 	KASSERT(tagmask == 0 || !alloc);
    469       1.1  yamt 	KASSERT(path == NULL || !alloc);
    470       1.1  yamt 	vpp = &t->t_root;
    471       1.1  yamt 	if (path != NULL) {
    472       1.1  yamt 		refs = path->p_refs;
    473       1.1  yamt 		refs->pptr = vpp;
    474       1.1  yamt 	}
    475       1.1  yamt 	n = NULL;
    476       1.1  yamt 	for (shift = 64 - RADIX_TREE_BITS_PER_HEIGHT; shift >= 0;) {
    477       1.1  yamt 		struct radix_tree_node *c;
    478       1.1  yamt 		void *entry;
    479       1.1  yamt 		const uint64_t i = (idx >> shift) & mask;
    480       1.1  yamt 
    481       1.1  yamt 		if (shift >= hshift) {
    482       1.1  yamt 			unsigned int newheight;
    483       1.1  yamt 
    484       1.1  yamt 			KASSERT(vpp == &t->t_root);
    485       1.1  yamt 			if (i == 0) {
    486       1.1  yamt 				shift -= RADIX_TREE_BITS_PER_HEIGHT;
    487       1.1  yamt 				continue;
    488       1.1  yamt 			}
    489       1.1  yamt 			if (!alloc) {
    490       1.1  yamt 				if (path != NULL) {
    491       1.1  yamt 					KASSERT((refs - path->p_refs) == 0);
    492      1.15  yamt 					path->p_lastidx =
    493      1.15  yamt 					    RADIX_TREE_INVALID_HEIGHT;
    494       1.1  yamt 				}
    495       1.1  yamt 				return NULL;
    496       1.1  yamt 			}
    497       1.1  yamt 			newheight = shift / RADIX_TREE_BITS_PER_HEIGHT + 1;
    498       1.1  yamt 			if (radix_tree_grow(t, newheight)) {
    499       1.1  yamt 				return NULL;
    500       1.1  yamt 			}
    501       1.1  yamt 			hshift = RADIX_TREE_BITS_PER_HEIGHT * t->t_height;
    502       1.1  yamt 		}
    503       1.1  yamt 		entry = *vpp;
    504       1.1  yamt 		c = entry_ptr(entry);
    505       1.1  yamt 		if (c == NULL ||
    506       1.1  yamt 		    (tagmask != 0 &&
    507       1.1  yamt 		    (entry_tagmask(entry) & tagmask) == 0)) {
    508       1.1  yamt 			if (!alloc) {
    509       1.1  yamt 				if (path != NULL) {
    510       1.1  yamt 					path->p_lastidx = refs - path->p_refs;
    511       1.1  yamt 				}
    512       1.1  yamt 				return NULL;
    513       1.1  yamt 			}
    514       1.1  yamt 			c = radix_tree_alloc_node();
    515       1.1  yamt 			if (c == NULL) {
    516       1.1  yamt 				return NULL;
    517       1.1  yamt 			}
    518       1.1  yamt 			*vpp = c;
    519       1.1  yamt 			if (n != NULL) {
    520       1.1  yamt 				KASSERT(n->n_nptrs < RADIX_TREE_PTR_PER_NODE);
    521       1.1  yamt 				n->n_nptrs++;
    522       1.1  yamt 			}
    523       1.1  yamt 		}
    524       1.1  yamt 		n = c;
    525       1.1  yamt 		vpp = &n->n_ptrs[i];
    526       1.1  yamt 		if (path != NULL) {
    527       1.1  yamt 			refs++;
    528       1.1  yamt 			refs->pptr = vpp;
    529       1.1  yamt 		}
    530       1.1  yamt 		shift -= RADIX_TREE_BITS_PER_HEIGHT;
    531       1.1  yamt 	}
    532       1.1  yamt 	if (alloc) {
    533       1.1  yamt 		KASSERT(*vpp == NULL);
    534       1.1  yamt 		if (n != NULL) {
    535       1.1  yamt 			KASSERT(n->n_nptrs < RADIX_TREE_PTR_PER_NODE);
    536       1.1  yamt 			n->n_nptrs++;
    537       1.1  yamt 		}
    538       1.1  yamt 	}
    539       1.1  yamt 	if (path != NULL) {
    540       1.1  yamt 		path->p_lastidx = refs - path->p_refs;
    541       1.1  yamt 	}
    542       1.1  yamt 	return vpp;
    543       1.1  yamt }
    544       1.1  yamt 
    545       1.1  yamt /*
    546       1.1  yamt  * radix_tree_insert_node:
    547       1.1  yamt  *
    548  1.17.2.2  yamt  * Insert the node at the given index.
    549       1.1  yamt  *
    550  1.17.2.2  yamt  * It's illegal to insert NULL.  It's illegal to insert a non-aligned pointer.
    551       1.1  yamt  *
    552  1.17.2.2  yamt  * This function returns ENOMEM if necessary memory allocation failed.
    553  1.17.2.2  yamt  * Otherwise, this function returns 0.
    554       1.4  yamt  *
    555  1.17.2.2  yamt  * Note that inserting a node can involves memory allocation for intermediate
    556  1.17.2.2  yamt  * nodes.  If _KERNEL, it's done with no-sleep IPL_NONE memory allocation.
    557  1.17.2.2  yamt  *
    558  1.17.2.2  yamt  * For the newly inserted node, all tags are cleared.
    559       1.1  yamt  */
    560       1.1  yamt 
    561       1.1  yamt int
    562       1.1  yamt radix_tree_insert_node(struct radix_tree *t, uint64_t idx, void *p)
    563       1.1  yamt {
    564       1.1  yamt 	void **vpp;
    565       1.1  yamt 
    566       1.1  yamt 	KASSERT(p != NULL);
    567  1.17.2.1  yamt 	KASSERT(entry_tagmask(entry_compose(p, 0)) == 0);
    568       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, NULL, true, 0);
    569       1.1  yamt 	if (vpp == NULL) {
    570       1.1  yamt 		return ENOMEM;
    571       1.1  yamt 	}
    572       1.1  yamt 	KASSERT(*vpp == NULL);
    573       1.1  yamt 	*vpp = p;
    574       1.1  yamt 	return 0;
    575       1.1  yamt }
    576       1.1  yamt 
    577       1.4  yamt /*
    578       1.4  yamt  * radix_tree_replace_node:
    579       1.4  yamt  *
    580  1.17.2.2  yamt  * Replace a node at the given index with the given node and return the
    581  1.17.2.2  yamt  * replaced one.
    582  1.17.2.2  yamt  *
    583  1.17.2.2  yamt  * It's illegal to try to replace a node which has not been inserted.
    584       1.4  yamt  *
    585  1.17.2.2  yamt  * This function keeps tags intact.
    586       1.4  yamt  */
    587       1.4  yamt 
    588       1.1  yamt void *
    589       1.1  yamt radix_tree_replace_node(struct radix_tree *t, uint64_t idx, void *p)
    590       1.1  yamt {
    591       1.1  yamt 	void **vpp;
    592       1.1  yamt 	void *oldp;
    593       1.1  yamt 
    594       1.1  yamt 	KASSERT(p != NULL);
    595  1.17.2.1  yamt 	KASSERT(entry_tagmask(entry_compose(p, 0)) == 0);
    596       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, NULL, false, 0);
    597       1.1  yamt 	KASSERT(vpp != NULL);
    598       1.1  yamt 	oldp = *vpp;
    599       1.1  yamt 	KASSERT(oldp != NULL);
    600       1.1  yamt 	*vpp = entry_compose(p, entry_tagmask(*vpp));
    601       1.1  yamt 	return entry_ptr(oldp);
    602       1.1  yamt }
    603       1.1  yamt 
    604       1.1  yamt /*
    605       1.1  yamt  * radix_tree_remove_node:
    606       1.1  yamt  *
    607  1.17.2.2  yamt  * Remove the node at the given index.
    608  1.17.2.2  yamt  *
    609  1.17.2.2  yamt  * It's illegal to try to remove a node which has not been inserted.
    610       1.1  yamt  */
    611       1.1  yamt 
    612       1.1  yamt void *
    613       1.1  yamt radix_tree_remove_node(struct radix_tree *t, uint64_t idx)
    614       1.1  yamt {
    615       1.1  yamt 	struct radix_tree_path path;
    616       1.1  yamt 	void **vpp;
    617       1.1  yamt 	void *oldp;
    618       1.1  yamt 	int i;
    619       1.1  yamt 
    620       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, &path, false, 0);
    621       1.1  yamt 	KASSERT(vpp != NULL);
    622       1.1  yamt 	oldp = *vpp;
    623       1.1  yamt 	KASSERT(oldp != NULL);
    624       1.1  yamt 	KASSERT(path.p_lastidx == t->t_height);
    625       1.1  yamt 	KASSERT(vpp == path_pptr(t, &path, path.p_lastidx));
    626       1.1  yamt 	*vpp = NULL;
    627       1.1  yamt 	for (i = t->t_height - 1; i >= 0; i--) {
    628       1.1  yamt 		void *entry;
    629       1.1  yamt 		struct radix_tree_node ** const pptr =
    630       1.1  yamt 		    (struct radix_tree_node **)path_pptr(t, &path, i);
    631       1.1  yamt 		struct radix_tree_node *n;
    632       1.1  yamt 
    633       1.1  yamt 		KASSERT(pptr != NULL);
    634       1.1  yamt 		entry = *pptr;
    635       1.1  yamt 		n = entry_ptr(entry);
    636       1.1  yamt 		KASSERT(n != NULL);
    637       1.1  yamt 		KASSERT(n->n_nptrs > 0);
    638       1.1  yamt 		n->n_nptrs--;
    639       1.1  yamt 		if (n->n_nptrs > 0) {
    640       1.1  yamt 			break;
    641       1.1  yamt 		}
    642       1.1  yamt 		radix_tree_free_node(n);
    643       1.1  yamt 		*pptr = NULL;
    644       1.1  yamt 	}
    645       1.1  yamt 	/*
    646       1.1  yamt 	 * fix up height
    647       1.1  yamt 	 */
    648       1.1  yamt 	if (i < 0) {
    649       1.1  yamt 		KASSERT(t->t_root == NULL);
    650       1.1  yamt 		t->t_height = 0;
    651       1.1  yamt 	}
    652       1.1  yamt 	/*
    653       1.1  yamt 	 * update tags
    654       1.1  yamt 	 */
    655       1.1  yamt 	for (; i >= 0; i--) {
    656       1.1  yamt 		void *entry;
    657       1.1  yamt 		struct radix_tree_node ** const pptr =
    658       1.1  yamt 		    (struct radix_tree_node **)path_pptr(t, &path, i);
    659       1.1  yamt 		struct radix_tree_node *n;
    660       1.1  yamt 		unsigned int newmask;
    661       1.1  yamt 
    662       1.1  yamt 		KASSERT(pptr != NULL);
    663       1.1  yamt 		entry = *pptr;
    664       1.1  yamt 		n = entry_ptr(entry);
    665       1.1  yamt 		KASSERT(n != NULL);
    666       1.1  yamt 		KASSERT(n->n_nptrs > 0);
    667       1.1  yamt 		newmask = any_children_tagmask(n);
    668       1.1  yamt 		if (newmask == entry_tagmask(entry)) {
    669       1.1  yamt 			break;
    670       1.1  yamt 		}
    671       1.1  yamt 		*pptr = entry_compose(n, newmask);
    672       1.1  yamt 	}
    673       1.1  yamt 	/*
    674       1.1  yamt 	 * XXX is it worth to try to reduce height?
    675       1.1  yamt 	 * if we do that, make radix_tree_grow rollback its change as well.
    676       1.1  yamt 	 */
    677       1.1  yamt 	return entry_ptr(oldp);
    678       1.1  yamt }
    679       1.1  yamt 
    680       1.1  yamt /*
    681       1.1  yamt  * radix_tree_lookup_node:
    682       1.1  yamt  *
    683  1.17.2.2  yamt  * Returns the node at the given index.
    684  1.17.2.2  yamt  * Returns NULL if nothing is found at the given index.
    685       1.1  yamt  */
    686       1.1  yamt 
    687       1.1  yamt void *
    688       1.1  yamt radix_tree_lookup_node(struct radix_tree *t, uint64_t idx)
    689       1.1  yamt {
    690       1.1  yamt 	void **vpp;
    691       1.1  yamt 
    692       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, NULL, false, 0);
    693       1.1  yamt 	if (vpp == NULL) {
    694       1.1  yamt 		return NULL;
    695       1.1  yamt 	}
    696       1.1  yamt 	return entry_ptr(*vpp);
    697       1.1  yamt }
    698       1.1  yamt 
    699       1.1  yamt static inline void
    700       1.1  yamt gang_lookup_init(struct radix_tree *t, uint64_t idx,
    701       1.1  yamt     struct radix_tree_path *path, const unsigned int tagmask)
    702       1.1  yamt {
    703       1.1  yamt 	void **vpp;
    704       1.1  yamt 
    705       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, path, false, tagmask);
    706       1.1  yamt 	KASSERT(vpp == NULL ||
    707       1.1  yamt 	    vpp == path_pptr(t, path, path->p_lastidx));
    708       1.1  yamt 	KASSERT(&t->t_root == path_pptr(t, path, 0));
    709      1.15  yamt 	KASSERT(path->p_lastidx == RADIX_TREE_INVALID_HEIGHT ||
    710      1.15  yamt 	   path->p_lastidx == t->t_height ||
    711      1.15  yamt 	   !entry_match_p(*path_pptr(t, path, path->p_lastidx), tagmask));
    712       1.1  yamt }
    713       1.1  yamt 
    714      1.15  yamt /*
    715      1.15  yamt  * gang_lookup_scan:
    716      1.15  yamt  *
    717      1.15  yamt  * a helper routine for radix_tree_gang_lookup_node and its variants.
    718      1.15  yamt  */
    719      1.15  yamt 
    720       1.1  yamt static inline unsigned int
    721      1.15  yamt __attribute__((__always_inline__))
    722       1.1  yamt gang_lookup_scan(struct radix_tree *t, struct radix_tree_path *path,
    723  1.17.2.1  yamt     void **results, const unsigned int maxresults, const unsigned int tagmask,
    724  1.17.2.1  yamt     const bool reverse, const bool dense)
    725       1.1  yamt {
    726      1.15  yamt 
    727      1.15  yamt 	/*
    728      1.15  yamt 	 * we keep the path updated only for lastidx-1.
    729      1.15  yamt 	 * vpp is what path_pptr(t, path, lastidx) would be.
    730      1.15  yamt 	 */
    731       1.1  yamt 	void **vpp;
    732      1.10  yamt 	unsigned int nfound;
    733       1.1  yamt 	unsigned int lastidx;
    734      1.15  yamt 	/*
    735      1.15  yamt 	 * set up scan direction dependant constants so that we can iterate
    736      1.15  yamt 	 * n_ptrs as the following.
    737      1.15  yamt 	 *
    738      1.15  yamt 	 *	for (i = first; i != guard; i += step)
    739      1.15  yamt 	 *		visit n->n_ptrs[i];
    740      1.15  yamt 	 */
    741      1.15  yamt 	const int step = reverse ? -1 : 1;
    742      1.15  yamt 	const unsigned int first = reverse ? RADIX_TREE_PTR_PER_NODE - 1 : 0;
    743      1.15  yamt 	const unsigned int last = reverse ? 0 : RADIX_TREE_PTR_PER_NODE - 1;
    744      1.15  yamt 	const unsigned int guard = last + step;
    745       1.1  yamt 
    746       1.1  yamt 	KASSERT(maxresults > 0);
    747      1.15  yamt 	KASSERT(&t->t_root == path_pptr(t, path, 0));
    748       1.1  yamt 	lastidx = path->p_lastidx;
    749      1.15  yamt 	KASSERT(lastidx == RADIX_TREE_INVALID_HEIGHT ||
    750      1.15  yamt 	   lastidx == t->t_height ||
    751      1.15  yamt 	   !entry_match_p(*path_pptr(t, path, lastidx), tagmask));
    752      1.15  yamt 	nfound = 0;
    753      1.15  yamt 	if (lastidx == RADIX_TREE_INVALID_HEIGHT) {
    754  1.17.2.1  yamt 		/*
    755  1.17.2.1  yamt 		 * requested idx is beyond the right-most node.
    756  1.17.2.1  yamt 		 */
    757  1.17.2.1  yamt 		if (reverse && !dense) {
    758      1.15  yamt 			lastidx = 0;
    759      1.15  yamt 			vpp = path_pptr(t, path, lastidx);
    760      1.15  yamt 			goto descend;
    761      1.15  yamt 		}
    762       1.1  yamt 		return 0;
    763       1.1  yamt 	}
    764       1.1  yamt 	vpp = path_pptr(t, path, lastidx);
    765       1.1  yamt 	while (/*CONSTCOND*/true) {
    766       1.1  yamt 		struct radix_tree_node *n;
    767      1.10  yamt 		unsigned int i;
    768       1.1  yamt 
    769       1.1  yamt 		if (entry_match_p(*vpp, tagmask)) {
    770       1.1  yamt 			KASSERT(lastidx == t->t_height);
    771       1.1  yamt 			/*
    772      1.15  yamt 			 * record the matching non-NULL leaf.
    773       1.1  yamt 			 */
    774       1.1  yamt 			results[nfound] = entry_ptr(*vpp);
    775       1.1  yamt 			nfound++;
    776       1.1  yamt 			if (nfound == maxresults) {
    777       1.1  yamt 				return nfound;
    778       1.1  yamt 			}
    779  1.17.2.1  yamt 		} else if (dense) {
    780  1.17.2.1  yamt 			return nfound;
    781       1.1  yamt 		}
    782       1.1  yamt scan_siblings:
    783       1.1  yamt 		/*
    784      1.15  yamt 		 * try to find the next matching non-NULL sibling.
    785       1.1  yamt 		 */
    786      1.15  yamt 		if (lastidx == 0) {
    787      1.15  yamt 			/*
    788      1.15  yamt 			 * the root has no siblings.
    789      1.15  yamt 			 * we've done.
    790      1.15  yamt 			 */
    791      1.15  yamt 			KASSERT(vpp == &t->t_root);
    792      1.15  yamt 			break;
    793      1.15  yamt 		}
    794       1.1  yamt 		n = path_node(t, path, lastidx - 1);
    795       1.1  yamt 		if (*vpp != NULL && n->n_nptrs == 1) {
    796       1.1  yamt 			/*
    797      1.15  yamt 			 * optimization; if the node has only a single pointer
    798      1.15  yamt 			 * and we've already visited it, there's no point to
    799      1.15  yamt 			 * keep scanning in this node.
    800       1.1  yamt 			 */
    801       1.1  yamt 			goto no_siblings;
    802       1.1  yamt 		}
    803      1.15  yamt 		for (i = vpp - n->n_ptrs + step; i != guard; i += step) {
    804      1.15  yamt 			KASSERT(i < RADIX_TREE_PTR_PER_NODE);
    805       1.1  yamt 			if (entry_match_p(n->n_ptrs[i], tagmask)) {
    806       1.1  yamt 				vpp = &n->n_ptrs[i];
    807       1.1  yamt 				break;
    808       1.1  yamt 			}
    809       1.1  yamt 		}
    810      1.15  yamt 		if (i == guard) {
    811       1.1  yamt no_siblings:
    812       1.1  yamt 			/*
    813       1.1  yamt 			 * not found.  go to parent.
    814       1.1  yamt 			 */
    815       1.1  yamt 			lastidx--;
    816       1.1  yamt 			vpp = path_pptr(t, path, lastidx);
    817       1.1  yamt 			goto scan_siblings;
    818       1.1  yamt 		}
    819      1.15  yamt descend:
    820       1.1  yamt 		/*
    821      1.15  yamt 		 * following the left-most (or right-most in the case of
    822      1.15  yamt 		 * reverse scan) child node, decend until reaching the leaf or
    823      1.15  yamt 		 * an non-matching entry.
    824       1.1  yamt 		 */
    825       1.1  yamt 		while (entry_match_p(*vpp, tagmask) && lastidx < t->t_height) {
    826      1.15  yamt 			/*
    827      1.15  yamt 			 * save vpp in the path so that we can come back to this
    828      1.15  yamt 			 * node after finishing visiting children.
    829      1.15  yamt 			 */
    830      1.15  yamt 			path->p_refs[lastidx].pptr = vpp;
    831       1.1  yamt 			n = entry_ptr(*vpp);
    832      1.15  yamt 			vpp = &n->n_ptrs[first];
    833       1.1  yamt 			lastidx++;
    834       1.1  yamt 		}
    835       1.1  yamt 	}
    836      1.15  yamt 	return nfound;
    837       1.1  yamt }
    838       1.1  yamt 
    839       1.1  yamt /*
    840       1.1  yamt  * radix_tree_gang_lookup_node:
    841       1.1  yamt  *
    842  1.17.2.2  yamt  * Scan the tree starting from the given index in the ascending order and
    843  1.17.2.2  yamt  * return found nodes.
    844  1.17.2.2  yamt  *
    845       1.1  yamt  * results should be an array large enough to hold maxresults pointers.
    846  1.17.2.2  yamt  * This function returns the number of nodes found, up to maxresults.
    847  1.17.2.2  yamt  * Returning less than maxresults means there are no more nodes in the tree.
    848       1.1  yamt  *
    849  1.17.2.2  yamt  * If dense == true, this function stops scanning when it founds a hole of
    850  1.17.2.2  yamt  * indexes.  I.e. an index for which radix_tree_lookup_node would returns NULL.
    851  1.17.2.2  yamt  * If dense == false, this function skips holes and continue scanning until
    852  1.17.2.1  yamt  * maxresults nodes are found or it reaches the limit of the index range.
    853  1.17.2.1  yamt  *
    854  1.17.2.2  yamt  * The result of this function is semantically equivalent to what could be
    855       1.1  yamt  * obtained by repeated calls of radix_tree_lookup_node with increasing index.
    856  1.17.2.1  yamt  * but this function is expected to be computationally cheaper when looking up
    857  1.17.2.2  yamt  * multiple nodes at once.  Especially, it's expected to be much cheaper when
    858  1.17.2.1  yamt  * node indexes are distributed sparsely.
    859  1.17.2.1  yamt  *
    860  1.17.2.2  yamt  * Note that this function doesn't return index values of found nodes.
    861  1.17.2.2  yamt  * Thus, in the case of dense == false, if index values are important for
    862  1.17.2.1  yamt  * a caller, it's the caller's responsibility to check them, typically
    863  1.17.2.1  yamt  * by examinining the returned nodes using some caller-specific knowledge
    864  1.17.2.1  yamt  * about them.
    865  1.17.2.2  yamt  * In the case of dense == true, a node returned via results[N] is always for
    866  1.17.2.1  yamt  * the index (idx + N).
    867       1.1  yamt  */
    868       1.1  yamt 
    869       1.1  yamt unsigned int
    870       1.1  yamt radix_tree_gang_lookup_node(struct radix_tree *t, uint64_t idx,
    871  1.17.2.1  yamt     void **results, unsigned int maxresults, bool dense)
    872       1.1  yamt {
    873       1.1  yamt 	struct radix_tree_path path;
    874       1.1  yamt 
    875       1.1  yamt 	gang_lookup_init(t, idx, &path, 0);
    876  1.17.2.1  yamt 	return gang_lookup_scan(t, &path, results, maxresults, 0, false, dense);
    877      1.15  yamt }
    878      1.15  yamt 
    879      1.15  yamt /*
    880      1.15  yamt  * radix_tree_gang_lookup_node_reverse:
    881      1.15  yamt  *
    882  1.17.2.2  yamt  * Same as radix_tree_gang_lookup_node except that this one scans the
    883  1.17.2.2  yamt  * tree in the reverse order.  I.e. descending index values.
    884      1.15  yamt  */
    885      1.15  yamt 
    886      1.15  yamt unsigned int
    887      1.15  yamt radix_tree_gang_lookup_node_reverse(struct radix_tree *t, uint64_t idx,
    888  1.17.2.1  yamt     void **results, unsigned int maxresults, bool dense)
    889      1.15  yamt {
    890      1.15  yamt 	struct radix_tree_path path;
    891      1.15  yamt 
    892      1.15  yamt 	gang_lookup_init(t, idx, &path, 0);
    893  1.17.2.1  yamt 	return gang_lookup_scan(t, &path, results, maxresults, 0, true, dense);
    894       1.1  yamt }
    895       1.1  yamt 
    896       1.1  yamt /*
    897       1.1  yamt  * radix_tree_gang_lookup_tagged_node:
    898       1.1  yamt  *
    899  1.17.2.2  yamt  * Same as radix_tree_gang_lookup_node except that this one only returns
    900       1.1  yamt  * nodes tagged with tagid.
    901  1.17.2.4  yamt  *
    902  1.17.2.4  yamt  * It's illegal to call this function with tagmask 0.
    903       1.1  yamt  */
    904       1.1  yamt 
    905       1.1  yamt unsigned int
    906       1.1  yamt radix_tree_gang_lookup_tagged_node(struct radix_tree *t, uint64_t idx,
    907  1.17.2.4  yamt     void **results, unsigned int maxresults, bool dense, unsigned int tagmask)
    908       1.1  yamt {
    909       1.1  yamt 	struct radix_tree_path path;
    910       1.1  yamt 
    911  1.17.2.4  yamt 	KASSERT(tagmask != 0);
    912       1.1  yamt 	gang_lookup_init(t, idx, &path, tagmask);
    913  1.17.2.1  yamt 	return gang_lookup_scan(t, &path, results, maxresults, tagmask, false,
    914  1.17.2.1  yamt 	    dense);
    915      1.15  yamt }
    916      1.15  yamt 
    917      1.15  yamt /*
    918      1.15  yamt  * radix_tree_gang_lookup_tagged_node_reverse:
    919      1.15  yamt  *
    920  1.17.2.2  yamt  * Same as radix_tree_gang_lookup_tagged_node except that this one scans the
    921  1.17.2.2  yamt  * tree in the reverse order.  I.e. descending index values.
    922      1.15  yamt  */
    923      1.15  yamt 
    924      1.15  yamt unsigned int
    925      1.15  yamt radix_tree_gang_lookup_tagged_node_reverse(struct radix_tree *t, uint64_t idx,
    926  1.17.2.4  yamt     void **results, unsigned int maxresults, bool dense, unsigned int tagmask)
    927      1.15  yamt {
    928      1.15  yamt 	struct radix_tree_path path;
    929      1.15  yamt 
    930  1.17.2.4  yamt 	KASSERT(tagmask != 0);
    931      1.15  yamt 	gang_lookup_init(t, idx, &path, tagmask);
    932  1.17.2.1  yamt 	return gang_lookup_scan(t, &path, results, maxresults, tagmask, true,
    933  1.17.2.1  yamt 	    dense);
    934       1.1  yamt }
    935       1.1  yamt 
    936       1.4  yamt /*
    937       1.4  yamt  * radix_tree_get_tag:
    938       1.4  yamt  *
    939  1.17.2.4  yamt  * Return the tagmask for the node at the given index.
    940  1.17.2.2  yamt  *
    941  1.17.2.2  yamt  * It's illegal to call this function for a node which has not been inserted.
    942       1.4  yamt  */
    943       1.4  yamt 
    944  1.17.2.4  yamt unsigned int
    945  1.17.2.4  yamt radix_tree_get_tag(struct radix_tree *t, uint64_t idx, unsigned int tagmask)
    946       1.1  yamt {
    947  1.17.2.1  yamt 	/*
    948  1.17.2.1  yamt 	 * the following two implementations should behave same.
    949  1.17.2.1  yamt 	 * the former one was chosen because it seems faster.
    950  1.17.2.1  yamt 	 */
    951       1.1  yamt #if 1
    952       1.1  yamt 	void **vpp;
    953       1.1  yamt 
    954       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, NULL, false, tagmask);
    955       1.1  yamt 	if (vpp == NULL) {
    956       1.1  yamt 		return false;
    957       1.1  yamt 	}
    958       1.1  yamt 	KASSERT(*vpp != NULL);
    959  1.17.2.4  yamt 	return (entry_tagmask(*vpp) & tagmask);
    960       1.1  yamt #else
    961       1.1  yamt 	void **vpp;
    962       1.1  yamt 
    963       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, NULL, false, 0);
    964       1.1  yamt 	KASSERT(vpp != NULL);
    965  1.17.2.4  yamt 	return (entry_tagmask(*vpp) & tagmask);
    966       1.1  yamt #endif
    967       1.1  yamt }
    968       1.1  yamt 
    969       1.4  yamt /*
    970       1.4  yamt  * radix_tree_set_tag:
    971       1.4  yamt  *
    972  1.17.2.2  yamt  * Set the tag for the node at the given index.
    973  1.17.2.2  yamt  *
    974  1.17.2.2  yamt  * It's illegal to call this function for a node which has not been inserted.
    975  1.17.2.4  yamt  * It's illegal to call this function with tagmask 0.
    976       1.4  yamt  */
    977       1.4  yamt 
    978       1.1  yamt void
    979  1.17.2.4  yamt radix_tree_set_tag(struct radix_tree *t, uint64_t idx, unsigned int tagmask)
    980       1.1  yamt {
    981       1.1  yamt 	struct radix_tree_path path;
    982       1.1  yamt 	void **vpp;
    983       1.1  yamt 	int i;
    984       1.1  yamt 
    985  1.17.2.4  yamt 	KASSERT(tagmask != 0);
    986       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, &path, false, 0);
    987       1.1  yamt 	KASSERT(vpp != NULL);
    988       1.1  yamt 	KASSERT(*vpp != NULL);
    989       1.1  yamt 	KASSERT(path.p_lastidx == t->t_height);
    990       1.1  yamt 	KASSERT(vpp == path_pptr(t, &path, path.p_lastidx));
    991       1.1  yamt 	for (i = t->t_height; i >= 0; i--) {
    992       1.1  yamt 		void ** const pptr = (void **)path_pptr(t, &path, i);
    993       1.1  yamt 		void *entry;
    994       1.1  yamt 
    995       1.1  yamt 		KASSERT(pptr != NULL);
    996       1.1  yamt 		entry = *pptr;
    997       1.1  yamt 		if ((entry_tagmask(entry) & tagmask) != 0) {
    998       1.1  yamt 			break;
    999       1.1  yamt 		}
   1000       1.1  yamt 		*pptr = (void *)((uintptr_t)entry | tagmask);
   1001       1.1  yamt 	}
   1002       1.1  yamt }
   1003       1.1  yamt 
   1004       1.4  yamt /*
   1005       1.4  yamt  * radix_tree_clear_tag:
   1006       1.4  yamt  *
   1007  1.17.2.2  yamt  * Clear the tag for the node at the given index.
   1008  1.17.2.2  yamt  *
   1009  1.17.2.2  yamt  * It's illegal to call this function for a node which has not been inserted.
   1010  1.17.2.4  yamt  * It's illegal to call this function with tagmask 0.
   1011       1.4  yamt  */
   1012       1.4  yamt 
   1013       1.1  yamt void
   1014  1.17.2.4  yamt radix_tree_clear_tag(struct radix_tree *t, uint64_t idx, unsigned int tagmask)
   1015       1.1  yamt {
   1016       1.1  yamt 	struct radix_tree_path path;
   1017       1.1  yamt 	void **vpp;
   1018       1.1  yamt 	int i;
   1019       1.1  yamt 
   1020  1.17.2.4  yamt 	KASSERT(tagmask != 0);
   1021       1.1  yamt 	vpp = radix_tree_lookup_ptr(t, idx, &path, false, 0);
   1022       1.1  yamt 	KASSERT(vpp != NULL);
   1023       1.1  yamt 	KASSERT(*vpp != NULL);
   1024       1.1  yamt 	KASSERT(path.p_lastidx == t->t_height);
   1025       1.1  yamt 	KASSERT(vpp == path_pptr(t, &path, path.p_lastidx));
   1026       1.7  yamt 	/*
   1027       1.7  yamt 	 * if already cleared, nothing to do
   1028       1.7  yamt 	 */
   1029       1.1  yamt 	if ((entry_tagmask(*vpp) & tagmask) == 0) {
   1030       1.1  yamt 		return;
   1031       1.1  yamt 	}
   1032       1.7  yamt 	/*
   1033       1.7  yamt 	 * clear the tag only if no children have the tag.
   1034       1.7  yamt 	 */
   1035       1.1  yamt 	for (i = t->t_height; i >= 0; i--) {
   1036       1.1  yamt 		void ** const pptr = (void **)path_pptr(t, &path, i);
   1037       1.1  yamt 		void *entry;
   1038       1.1  yamt 
   1039       1.1  yamt 		KASSERT(pptr != NULL);
   1040       1.1  yamt 		entry = *pptr;
   1041       1.1  yamt 		KASSERT((entry_tagmask(entry) & tagmask) != 0);
   1042       1.1  yamt 		*pptr = entry_compose(entry_ptr(entry),
   1043       1.1  yamt 		    entry_tagmask(entry) & ~tagmask);
   1044       1.7  yamt 		/*
   1045       1.7  yamt 		 * check if we should proceed to process the next level.
   1046       1.7  yamt 		 */
   1047       1.7  yamt 		if (0 < i) {
   1048       1.1  yamt 			struct radix_tree_node *n = path_node(t, &path, i - 1);
   1049       1.1  yamt 
   1050       1.1  yamt 			if ((any_children_tagmask(n) & tagmask) != 0) {
   1051       1.1  yamt 				break;
   1052       1.1  yamt 			}
   1053       1.1  yamt 		}
   1054       1.1  yamt 	}
   1055       1.1  yamt }
   1056       1.1  yamt 
   1057       1.1  yamt #if defined(UNITTEST)
   1058       1.1  yamt 
   1059       1.1  yamt #include <inttypes.h>
   1060       1.1  yamt #include <stdio.h>
   1061       1.1  yamt 
   1062       1.1  yamt static void
   1063       1.1  yamt radix_tree_dump_node(const struct radix_tree *t, void *vp,
   1064       1.1  yamt     uint64_t offset, unsigned int height)
   1065       1.1  yamt {
   1066       1.1  yamt 	struct radix_tree_node *n;
   1067       1.1  yamt 	unsigned int i;
   1068       1.1  yamt 
   1069       1.1  yamt 	for (i = 0; i < t->t_height - height; i++) {
   1070       1.1  yamt 		printf(" ");
   1071       1.1  yamt 	}
   1072       1.1  yamt 	if (entry_tagmask(vp) == 0) {
   1073       1.1  yamt 		printf("[%" PRIu64 "] %p", offset, entry_ptr(vp));
   1074       1.1  yamt 	} else {
   1075       1.1  yamt 		printf("[%" PRIu64 "] %p (tagmask=0x%x)", offset, entry_ptr(vp),
   1076       1.1  yamt 		    entry_tagmask(vp));
   1077       1.1  yamt 	}
   1078       1.1  yamt 	if (height == 0) {
   1079       1.1  yamt 		printf(" (leaf)\n");
   1080       1.1  yamt 		return;
   1081       1.1  yamt 	}
   1082       1.1  yamt 	n = entry_ptr(vp);
   1083       1.1  yamt 	assert(any_children_tagmask(n) == entry_tagmask(vp));
   1084       1.1  yamt 	printf(" (%u children)\n", n->n_nptrs);
   1085       1.1  yamt 	for (i = 0; i < __arraycount(n->n_ptrs); i++) {
   1086       1.1  yamt 		void *c;
   1087       1.1  yamt 
   1088       1.1  yamt 		c = n->n_ptrs[i];
   1089       1.1  yamt 		if (c == NULL) {
   1090       1.1  yamt 			continue;
   1091       1.1  yamt 		}
   1092       1.1  yamt 		radix_tree_dump_node(t, c,
   1093       1.1  yamt 		    offset + i * (UINT64_C(1) <<
   1094       1.1  yamt 		    (RADIX_TREE_BITS_PER_HEIGHT * (height - 1))), height - 1);
   1095       1.1  yamt 	}
   1096       1.1  yamt }
   1097       1.1  yamt 
   1098       1.1  yamt void radix_tree_dump(const struct radix_tree *);
   1099       1.1  yamt 
   1100       1.1  yamt void
   1101       1.1  yamt radix_tree_dump(const struct radix_tree *t)
   1102       1.1  yamt {
   1103       1.1  yamt 
   1104       1.1  yamt 	printf("tree %p height=%u\n", t, t->t_height);
   1105       1.1  yamt 	radix_tree_dump_node(t, t->t_root, 0, t->t_height);
   1106       1.1  yamt }
   1107       1.1  yamt 
   1108       1.1  yamt static void
   1109       1.1  yamt test1(void)
   1110       1.1  yamt {
   1111       1.1  yamt 	struct radix_tree s;
   1112       1.1  yamt 	struct radix_tree *t = &s;
   1113       1.1  yamt 	void *results[3];
   1114       1.1  yamt 
   1115       1.1  yamt 	radix_tree_init_tree(t);
   1116       1.1  yamt 	radix_tree_dump(t);
   1117       1.1  yamt 	assert(radix_tree_lookup_node(t, 0) == NULL);
   1118       1.1  yamt 	assert(radix_tree_lookup_node(t, 1000) == NULL);
   1119  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, false) == 0);
   1120  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, true) == 0);
   1121  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1000, results, 3, false) == 0);
   1122  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1000, results, 3, true) == 0);
   1123  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 0, results, 3, false) ==
   1124  1.17.2.1  yamt 	    0);
   1125  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 0, results, 3, true) ==
   1126  1.17.2.1  yamt 	    0);
   1127  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 1000, results, 3, false)
   1128  1.17.2.1  yamt 	    == 0);
   1129  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 1000, results, 3, true)
   1130  1.17.2.1  yamt 	    == 0);
   1131  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 3, false, 1)
   1132  1.17.2.1  yamt 	    == 0);
   1133  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 3, true, 1)
   1134      1.15  yamt 	    == 0);
   1135  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 1000, results, 3, false, 1)
   1136  1.17.2.1  yamt 	    == 0);
   1137  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 1000, results, 3, true, 1)
   1138  1.17.2.1  yamt 	    == 0);
   1139  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 0, results, 3,
   1140  1.17.2.4  yamt 	    false, 1) == 0);
   1141  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 0, results, 3,
   1142  1.17.2.4  yamt 	    true, 1) == 0);
   1143  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 1000, results, 3,
   1144  1.17.2.4  yamt 	    false, 1) == 0);
   1145      1.15  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 1000, results, 3,
   1146  1.17.2.4  yamt 	    true, 1) == 0);
   1147      1.15  yamt 	assert(radix_tree_empty_tree_p(t));
   1148      1.16  yamt 	assert(radix_tree_empty_tagged_tree_p(t, 1));
   1149  1.17.2.4  yamt 	assert(radix_tree_empty_tagged_tree_p(t, 2));
   1150      1.15  yamt 	assert(radix_tree_insert_node(t, 0, (void *)0xdeadbea0) == 0);
   1151      1.15  yamt 	assert(!radix_tree_empty_tree_p(t));
   1152      1.16  yamt 	assert(radix_tree_empty_tagged_tree_p(t, 1));
   1153  1.17.2.4  yamt 	assert(radix_tree_empty_tagged_tree_p(t, 2));
   1154      1.15  yamt 	assert(radix_tree_lookup_node(t, 0) == (void *)0xdeadbea0);
   1155      1.15  yamt 	assert(radix_tree_lookup_node(t, 1000) == NULL);
   1156      1.15  yamt 	memset(results, 0, sizeof(results));
   1157  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, false) == 1);
   1158  1.17.2.1  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1159  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1160  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, true) == 1);
   1161      1.15  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1162  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1000, results, 3, false) == 0);
   1163  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1000, results, 3, true) == 0);
   1164      1.15  yamt 	memset(results, 0, sizeof(results));
   1165  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 0, results, 3, false) ==
   1166  1.17.2.1  yamt 	    1);
   1167      1.15  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1168      1.15  yamt 	memset(results, 0, sizeof(results));
   1169  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 0, results, 3, true) ==
   1170  1.17.2.1  yamt 	    1);
   1171      1.15  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1172  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1173  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 1000, results, 3, false)
   1174  1.17.2.1  yamt 	    == 1);
   1175  1.17.2.1  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1176  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 1000, results, 3, true)
   1177  1.17.2.1  yamt 	    == 0);
   1178  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 3, false, 1)
   1179      1.15  yamt 	    == 0);
   1180  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 3, true, 1)
   1181      1.15  yamt 	    == 0);
   1182  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 0, results, 3,
   1183  1.17.2.4  yamt 	    false, 1) == 0);
   1184  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 0, results, 3,
   1185  1.17.2.4  yamt 	    true, 1) == 0);
   1186       1.1  yamt 	assert(radix_tree_insert_node(t, 1000, (void *)0xdeadbea0) == 0);
   1187      1.15  yamt 	assert(radix_tree_remove_node(t, 0) == (void *)0xdeadbea0);
   1188      1.15  yamt 	assert(!radix_tree_empty_tree_p(t));
   1189       1.1  yamt 	radix_tree_dump(t);
   1190      1.15  yamt 	assert(radix_tree_lookup_node(t, 0) == NULL);
   1191      1.15  yamt 	assert(radix_tree_lookup_node(t, 1000) == (void *)0xdeadbea0);
   1192      1.15  yamt 	memset(results, 0, sizeof(results));
   1193  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, false) == 1);
   1194  1.17.2.1  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1195  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, true) == 0);
   1196  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1197  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1000, results, 3, false) == 1);
   1198      1.15  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1199      1.15  yamt 	memset(results, 0, sizeof(results));
   1200  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1000, results, 3, true) == 1);
   1201      1.15  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1202  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 0, results, 3, false)
   1203  1.17.2.1  yamt 	    == 0);
   1204  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 0, results, 3, true)
   1205  1.17.2.1  yamt 	    == 0);
   1206  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1207  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 1000, results, 3, false)
   1208  1.17.2.1  yamt 	    == 1);
   1209      1.15  yamt 	memset(results, 0, sizeof(results));
   1210  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, 1000, results, 3, true)
   1211  1.17.2.1  yamt 	    == 1);
   1212      1.15  yamt 	assert(results[0] == (void *)0xdeadbea0);
   1213  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 3, false, 1)
   1214      1.15  yamt 	    == 0);
   1215  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 3, true, 1)
   1216      1.15  yamt 	    == 0);
   1217  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 0, results, 3,
   1218  1.17.2.4  yamt 	    false, 1) == 0);
   1219  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_tagged_node_reverse(t, 0, results, 3,
   1220  1.17.2.4  yamt 	    true, 1) == 0);
   1221       1.1  yamt 	assert(!radix_tree_get_tag(t, 1000, 1));
   1222  1.17.2.4  yamt 	assert(!radix_tree_get_tag(t, 1000, 2));
   1223  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2 | 1) == 0);
   1224      1.16  yamt 	assert(radix_tree_empty_tagged_tree_p(t, 1));
   1225  1.17.2.4  yamt 	assert(radix_tree_empty_tagged_tree_p(t, 2));
   1226  1.17.2.4  yamt 	radix_tree_set_tag(t, 1000, 2);
   1227  1.17.2.4  yamt 	assert(!radix_tree_get_tag(t, 1000, 1));
   1228  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2));
   1229  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2 | 1) == 2);
   1230  1.17.2.4  yamt 	assert(radix_tree_empty_tagged_tree_p(t, 1));
   1231  1.17.2.4  yamt 	assert(!radix_tree_empty_tagged_tree_p(t, 2));
   1232       1.1  yamt 	radix_tree_dump(t);
   1233       1.1  yamt 	assert(radix_tree_lookup_node(t, 1000) == (void *)0xdeadbea0);
   1234       1.1  yamt 	assert(radix_tree_insert_node(t, 0, (void *)0xbea0) == 0);
   1235       1.1  yamt 	radix_tree_dump(t);
   1236       1.1  yamt 	assert(radix_tree_lookup_node(t, 0) == (void *)0xbea0);
   1237       1.1  yamt 	assert(radix_tree_lookup_node(t, 1000) == (void *)0xdeadbea0);
   1238       1.1  yamt 	assert(radix_tree_insert_node(t, UINT64_C(10000000000), (void *)0xdea0)
   1239       1.1  yamt 	    == 0);
   1240       1.1  yamt 	radix_tree_dump(t);
   1241       1.1  yamt 	assert(radix_tree_lookup_node(t, 0) == (void *)0xbea0);
   1242       1.1  yamt 	assert(radix_tree_lookup_node(t, 1000) == (void *)0xdeadbea0);
   1243       1.1  yamt 	assert(radix_tree_lookup_node(t, UINT64_C(10000000000)) ==
   1244       1.1  yamt 	    (void *)0xdea0);
   1245       1.1  yamt 	radix_tree_dump(t);
   1246  1.17.2.4  yamt 	assert(!radix_tree_get_tag(t, 0, 2));
   1247  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2));
   1248       1.1  yamt 	assert(!radix_tree_get_tag(t, UINT64_C(10000000000), 1));
   1249  1.17.2.4  yamt 	radix_tree_set_tag(t, 0, 2);;
   1250  1.17.2.4  yamt 	radix_tree_set_tag(t, UINT64_C(10000000000), 2);
   1251       1.1  yamt 	radix_tree_dump(t);
   1252  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 0, 2));
   1253  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2));
   1254  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, UINT64_C(10000000000), 2));
   1255  1.17.2.4  yamt 	radix_tree_clear_tag(t, 0, 2);;
   1256  1.17.2.4  yamt 	radix_tree_clear_tag(t, UINT64_C(10000000000), 2);
   1257       1.1  yamt 	radix_tree_dump(t);
   1258  1.17.2.4  yamt 	assert(!radix_tree_get_tag(t, 0, 2));
   1259  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2));
   1260  1.17.2.4  yamt 	assert(!radix_tree_get_tag(t, UINT64_C(10000000000), 2));
   1261       1.1  yamt 	radix_tree_dump(t);
   1262       1.1  yamt 	assert(radix_tree_replace_node(t, 1000, (void *)0x12345678) ==
   1263       1.1  yamt 	    (void *)0xdeadbea0);
   1264  1.17.2.4  yamt 	assert(!radix_tree_get_tag(t, 1000, 1));
   1265  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2));
   1266  1.17.2.4  yamt 	assert(radix_tree_get_tag(t, 1000, 2 | 1) == 2);
   1267  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1268  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, false) == 3);
   1269       1.1  yamt 	assert(results[0] == (void *)0xbea0);
   1270       1.1  yamt 	assert(results[1] == (void *)0x12345678);
   1271       1.1  yamt 	assert(results[2] == (void *)0xdea0);
   1272  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1273  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 0, results, 3, true) == 1);
   1274  1.17.2.1  yamt 	assert(results[0] == (void *)0xbea0);
   1275  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1276  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1, results, 3, false) == 2);
   1277       1.1  yamt 	assert(results[0] == (void *)0x12345678);
   1278       1.1  yamt 	assert(results[1] == (void *)0xdea0);
   1279  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1, results, 3, true) == 0);
   1280  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1281  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1001, results, 3, false) == 1);
   1282       1.1  yamt 	assert(results[0] == (void *)0xdea0);
   1283  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, 1001, results, 3, true) == 0);
   1284  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, UINT64_C(10000000001), results, 3,
   1285  1.17.2.1  yamt 	    false) == 0);
   1286  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, UINT64_C(10000000001), results, 3,
   1287  1.17.2.1  yamt 	    true) == 0);
   1288       1.1  yamt 	assert(radix_tree_gang_lookup_node(t, UINT64_C(1000000000000), results,
   1289  1.17.2.1  yamt 	    3, false) == 0);
   1290  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, UINT64_C(1000000000000), results,
   1291  1.17.2.1  yamt 	    3, true) == 0);
   1292  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1293  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 100, false, 2)
   1294  1.17.2.1  yamt 	    == 1);
   1295       1.1  yamt 	assert(results[0] == (void *)0x12345678);
   1296  1.17.2.4  yamt 	assert(radix_tree_gang_lookup_tagged_node(t, 0, results, 100, true, 2)
   1297  1.17.2.1  yamt 	    == 0);
   1298       1.1  yamt 	assert(entry_tagmask(t->t_root) != 0);
   1299       1.1  yamt 	assert(radix_tree_remove_node(t, 1000) == (void *)0x12345678);
   1300       1.1  yamt 	assert(entry_tagmask(t->t_root) == 0);
   1301       1.1  yamt 	radix_tree_dump(t);
   1302  1.17.2.1  yamt 	assert(radix_tree_insert_node(t, UINT64_C(10000000001), (void *)0xfff0)
   1303  1.17.2.1  yamt 	    == 0);
   1304  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1305  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, UINT64_C(10000000000), results, 3,
   1306  1.17.2.1  yamt 	    false) == 2);
   1307  1.17.2.1  yamt 	assert(results[0] == (void *)0xdea0);
   1308  1.17.2.1  yamt 	assert(results[1] == (void *)0xfff0);
   1309  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1310  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node(t, UINT64_C(10000000000), results, 3,
   1311  1.17.2.1  yamt 	    true) == 2);
   1312  1.17.2.1  yamt 	assert(results[0] == (void *)0xdea0);
   1313  1.17.2.1  yamt 	assert(results[1] == (void *)0xfff0);
   1314  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1315  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, UINT64_C(10000000001),
   1316  1.17.2.1  yamt 	    results, 3, false) == 3);
   1317  1.17.2.1  yamt 	assert(results[0] == (void *)0xfff0);
   1318  1.17.2.1  yamt 	assert(results[1] == (void *)0xdea0);
   1319  1.17.2.1  yamt 	assert(results[2] == (void *)0xbea0);
   1320  1.17.2.1  yamt 	memset(results, 0, sizeof(results));
   1321  1.17.2.1  yamt 	assert(radix_tree_gang_lookup_node_reverse(t, UINT64_C(10000000001),
   1322  1.17.2.1  yamt 	    results, 3, true) == 2);
   1323  1.17.2.1  yamt 	assert(results[0] == (void *)0xfff0);
   1324  1.17.2.1  yamt 	assert(results[1] == (void *)0xdea0);
   1325       1.1  yamt 	assert(radix_tree_remove_node(t, UINT64_C(10000000000)) ==
   1326       1.1  yamt 	    (void *)0xdea0);
   1327  1.17.2.1  yamt 	assert(radix_tree_remove_node(t, UINT64_C(10000000001)) ==
   1328  1.17.2.1  yamt 	    (void *)0xfff0);
   1329       1.1  yamt 	radix_tree_dump(t);
   1330       1.1  yamt 	assert(radix_tree_remove_node(t, 0) == (void *)0xbea0);
   1331       1.1  yamt 	radix_tree_dump(t);
   1332       1.1  yamt 	radix_tree_fini_tree(t);
   1333       1.1  yamt }
   1334       1.1  yamt 
   1335       1.1  yamt #include <sys/time.h>
   1336       1.1  yamt 
   1337       1.1  yamt struct testnode {
   1338       1.1  yamt 	uint64_t idx;
   1339      1.12  yamt 	bool tagged[RADIX_TREE_TAG_ID_MAX];
   1340       1.1  yamt };
   1341       1.1  yamt 
   1342       1.1  yamt static void
   1343      1.11  yamt printops(const char *title, const char *name, int tag, unsigned int n,
   1344      1.11  yamt     const struct timeval *stv, const struct timeval *etv)
   1345       1.1  yamt {
   1346       1.1  yamt 	uint64_t s = stv->tv_sec * 1000000 + stv->tv_usec;
   1347       1.1  yamt 	uint64_t e = etv->tv_sec * 1000000 + etv->tv_usec;
   1348       1.1  yamt 
   1349      1.11  yamt 	printf("RESULT %s %s %d %lf op/s\n", title, name, tag,
   1350      1.11  yamt 	    (double)n / (e - s) * 1000000);
   1351       1.1  yamt }
   1352       1.1  yamt 
   1353       1.1  yamt #define	TEST2_GANG_LOOKUP_NODES	16
   1354       1.1  yamt 
   1355       1.1  yamt static bool
   1356  1.17.2.4  yamt test2_should_tag(unsigned int i, unsigned int tagid)
   1357       1.1  yamt {
   1358       1.1  yamt 
   1359       1.1  yamt 	if (tagid == 0) {
   1360  1.17.2.4  yamt 		return (i % 4) == 0;	/* 25% */
   1361       1.1  yamt 	} else {
   1362      1.11  yamt 		return (i % 7) == 0;	/* 14% */
   1363       1.1  yamt 	}
   1364  1.17.2.4  yamt 	return 1;
   1365  1.17.2.4  yamt }
   1366  1.17.2.4  yamt 
   1367  1.17.2.4  yamt static void
   1368  1.17.2.4  yamt check_tag_count(const unsigned int *ntagged, unsigned int tagmask,
   1369  1.17.2.4  yamt     unsigned int count)
   1370  1.17.2.4  yamt {
   1371  1.17.2.4  yamt 	unsigned int tag;
   1372  1.17.2.4  yamt 
   1373  1.17.2.4  yamt 	for (tag = 0; tag < RADIX_TREE_TAG_ID_MAX; tag++) {
   1374  1.17.2.4  yamt 		if ((tagmask & (1 << tag)) == 0) {
   1375  1.17.2.4  yamt 			continue;
   1376  1.17.2.4  yamt 		}
   1377  1.17.2.4  yamt 		if (((tagmask - 1) & tagmask) == 0) {
   1378  1.17.2.4  yamt 			assert(count == ntagged[tag]);
   1379  1.17.2.4  yamt 		} else {
   1380  1.17.2.4  yamt 			assert(count >= ntagged[tag]);
   1381  1.17.2.4  yamt 		}
   1382  1.17.2.4  yamt 	}
   1383       1.1  yamt }
   1384       1.1  yamt 
   1385       1.1  yamt static void
   1386      1.11  yamt test2(const char *title, bool dense)
   1387       1.1  yamt {
   1388       1.1  yamt 	struct radix_tree s;
   1389       1.1  yamt 	struct radix_tree *t = &s;
   1390       1.1  yamt 	struct testnode *n;
   1391       1.1  yamt 	unsigned int i;
   1392       1.1  yamt 	unsigned int nnodes = 100000;
   1393       1.1  yamt 	unsigned int removed;
   1394  1.17.2.4  yamt 	unsigned int tag;
   1395  1.17.2.4  yamt 	unsigned int tagmask;
   1396       1.1  yamt 	unsigned int ntagged[RADIX_TREE_TAG_ID_MAX];
   1397       1.1  yamt 	struct testnode *nodes;
   1398       1.1  yamt 	struct timeval stv;
   1399       1.1  yamt 	struct timeval etv;
   1400       1.1  yamt 
   1401       1.1  yamt 	nodes = malloc(nnodes * sizeof(*nodes));
   1402       1.1  yamt 	for (tag = 0; tag < RADIX_TREE_TAG_ID_MAX; tag++) {
   1403       1.1  yamt 		ntagged[tag] = 0;
   1404       1.1  yamt 	}
   1405       1.1  yamt 	radix_tree_init_tree(t);
   1406       1.1  yamt 	for (i = 0; i < nnodes; i++) {
   1407       1.1  yamt 		n = &nodes[i];
   1408       1.1  yamt 		n->idx = random();
   1409       1.1  yamt 		if (sizeof(long) == 4) {
   1410       1.1  yamt 			n->idx <<= 32;
   1411       1.1  yamt 			n->idx |= (uint32_t)random();
   1412       1.1  yamt 		}
   1413       1.1  yamt 		if (dense) {
   1414       1.1  yamt 			n->idx %= nnodes * 2;
   1415       1.1  yamt 		}
   1416       1.1  yamt 		while (radix_tree_lookup_node(t, n->idx) != NULL) {
   1417       1.1  yamt 			n->idx++;
   1418       1.1  yamt 		}
   1419       1.1  yamt 		radix_tree_insert_node(t, n->idx, n);
   1420       1.1  yamt 		for (tag = 0; tag < RADIX_TREE_TAG_ID_MAX; tag++) {
   1421  1.17.2.4  yamt 			tagmask = 1 << tag;
   1422  1.17.2.4  yamt 
   1423      1.12  yamt 			n->tagged[tag] = test2_should_tag(i, tag);
   1424      1.12  yamt 			if (n->tagged[tag]) {
   1425  1.17.2.4  yamt 				radix_tree_set_tag(t, n->idx, tagmask);
   1426       1.1  yamt 				ntagged[tag]++;
   1427       1.1  yamt 			}
   1428  1.17.2.4  yamt 			assert((n->tagged[tag] ? tagmask : 0) ==
   1429  1.17.2.4  yamt 			    radix_tree_get_tag(t, n->idx, tagmask));
   1430       1.1  yamt 		}
   1431       1.1  yamt 	}
   1432       1.1  yamt 
   1433       1.1  yamt 	gettimeofday(&stv, NULL);
   1434       1.1  yamt 	for (i = 0; i < nnodes; i++) {
   1435       1.1  yamt 		n = &nodes[i];
   1436       1.1  yamt 		assert(radix_tree_lookup_node(t, n->idx) == n);
   1437       1.1  yamt 	}
   1438       1.1  yamt 	gettimeofday(&etv, NULL);
   1439      1.11  yamt 	printops(title, "lookup", 0, nnodes, &stv, &etv);
   1440       1.1  yamt 
   1441  1.17.2.4  yamt 	for (tagmask = 1; tagmask <= RADIX_TREE_TAG_MASK; tagmask ++) {
   1442      1.12  yamt 		unsigned int count = 0;
   1443      1.12  yamt 
   1444       1.1  yamt 		gettimeofday(&stv, NULL);
   1445       1.1  yamt 		for (i = 0; i < nnodes; i++) {
   1446  1.17.2.4  yamt 			unsigned int tagged;
   1447      1.12  yamt 
   1448       1.1  yamt 			n = &nodes[i];
   1449  1.17.2.4  yamt 			tagged = radix_tree_get_tag(t, n->idx, tagmask);
   1450  1.17.2.4  yamt 			assert((tagged & ~tagmask) == 0);
   1451  1.17.2.4  yamt 			for (tag = 0; tag < RADIX_TREE_TAG_ID_MAX; tag++) {
   1452  1.17.2.4  yamt 				assert((tagmask & (1 << tag)) == 0 ||
   1453  1.17.2.4  yamt 				    n->tagged[tag] == !!(tagged & (1 << tag)));
   1454  1.17.2.4  yamt 			}
   1455      1.12  yamt 			if (tagged) {
   1456      1.12  yamt 				count++;
   1457      1.12  yamt 			}
   1458       1.1  yamt 		}
   1459       1.1  yamt 		gettimeofday(&etv, NULL);
   1460  1.17.2.4  yamt 		check_tag_count(ntagged, tagmask, count);
   1461  1.17.2.4  yamt 		printops(title, "get_tag", tagmask, nnodes, &stv, &etv);
   1462       1.1  yamt 	}
   1463       1.1  yamt 
   1464       1.1  yamt 	gettimeofday(&stv, NULL);
   1465       1.1  yamt 	for (i = 0; i < nnodes; i++) {
   1466       1.1  yamt 		n = &nodes[i];
   1467       1.1  yamt 		radix_tree_remove_node(t, n->idx);
   1468       1.1  yamt 	}
   1469       1.1  yamt 	gettimeofday(&etv, NULL);
   1470      1.11  yamt 	printops(title, "remove", 0, nnodes, &stv, &etv);
   1471       1.1  yamt 
   1472       1.1  yamt 	gettimeofday(&stv, NULL);
   1473       1.1  yamt 	for (i = 0; i < nnodes; i++) {
   1474       1.1  yamt 		n = &nodes[i];
   1475       1.1  yamt 		radix_tree_insert_node(t, n->idx, n);
   1476       1.1  yamt 	}
   1477       1.1  yamt 	gettimeofday(&etv, NULL);
   1478      1.11  yamt 	printops(title, "insert", 0, nnodes, &stv, &etv);
   1479       1.1  yamt 
   1480       1.1  yamt 	for (tag = 0; tag < RADIX_TREE_TAG_ID_MAX; tag++) {
   1481  1.17.2.4  yamt 		tagmask = 1 << tag;
   1482  1.17.2.4  yamt 
   1483       1.1  yamt 		ntagged[tag] = 0;
   1484       1.1  yamt 		gettimeofday(&stv, NULL);
   1485       1.1  yamt 		for (i = 0; i < nnodes; i++) {
   1486       1.1  yamt 			n = &nodes[i];
   1487      1.12  yamt 			if (n->tagged[tag]) {
   1488  1.17.2.4  yamt 				radix_tree_set_tag(t, n->idx, tagmask);
   1489       1.1  yamt 				ntagged[tag]++;
   1490       1.1  yamt 			}
   1491       1.1  yamt 		}
   1492       1.1  yamt 		gettimeofday(&etv, NULL);
   1493      1.11  yamt 		printops(title, "set_tag", tag, ntagged[tag], &stv, &etv);
   1494       1.1  yamt 	}
   1495       1.1  yamt 
   1496       1.1  yamt 	gettimeofday(&stv, NULL);
   1497       1.1  yamt 	{
   1498       1.1  yamt 		struct testnode *results[TEST2_GANG_LOOKUP_NODES];
   1499       1.1  yamt 		uint64_t nextidx;
   1500       1.1  yamt 		unsigned int nfound;
   1501       1.1  yamt 		unsigned int total;
   1502       1.1  yamt 
   1503       1.1  yamt 		nextidx = 0;
   1504       1.1  yamt 		total = 0;
   1505       1.1  yamt 		while ((nfound = radix_tree_gang_lookup_node(t, nextidx,
   1506  1.17.2.1  yamt 		    (void *)results, __arraycount(results), false)) > 0) {
   1507       1.1  yamt 			nextidx = results[nfound - 1]->idx + 1;
   1508       1.1  yamt 			total += nfound;
   1509      1.15  yamt 			if (nextidx == 0) {
   1510      1.15  yamt 				break;
   1511      1.15  yamt 			}
   1512       1.1  yamt 		}
   1513       1.1  yamt 		assert(total == nnodes);
   1514       1.1  yamt 	}
   1515       1.1  yamt 	gettimeofday(&etv, NULL);
   1516      1.11  yamt 	printops(title, "ganglookup", 0, nnodes, &stv, &etv);
   1517       1.1  yamt 
   1518      1.15  yamt 	gettimeofday(&stv, NULL);
   1519      1.15  yamt 	{
   1520      1.15  yamt 		struct testnode *results[TEST2_GANG_LOOKUP_NODES];
   1521      1.15  yamt 		uint64_t nextidx;
   1522      1.15  yamt 		unsigned int nfound;
   1523      1.15  yamt 		unsigned int total;
   1524      1.15  yamt 
   1525      1.15  yamt 		nextidx = UINT64_MAX;
   1526      1.15  yamt 		total = 0;
   1527      1.15  yamt 		while ((nfound = radix_tree_gang_lookup_node_reverse(t, nextidx,
   1528  1.17.2.1  yamt 		    (void *)results, __arraycount(results), false)) > 0) {
   1529      1.15  yamt 			nextidx = results[nfound - 1]->idx - 1;
   1530      1.15  yamt 			total += nfound;
   1531      1.15  yamt 			if (nextidx == UINT64_MAX) {
   1532      1.15  yamt 				break;
   1533      1.15  yamt 			}
   1534      1.15  yamt 		}
   1535      1.15  yamt 		assert(total == nnodes);
   1536      1.15  yamt 	}
   1537      1.15  yamt 	gettimeofday(&etv, NULL);
   1538      1.15  yamt 	printops(title, "ganglookup_reverse", 0, nnodes, &stv, &etv);
   1539      1.15  yamt 
   1540  1.17.2.4  yamt 	for (tagmask = 1; tagmask <= RADIX_TREE_TAG_MASK; tagmask ++) {
   1541  1.17.2.4  yamt 		unsigned int total = 0;
   1542  1.17.2.4  yamt 
   1543       1.1  yamt 		gettimeofday(&stv, NULL);
   1544       1.1  yamt 		{
   1545       1.1  yamt 			struct testnode *results[TEST2_GANG_LOOKUP_NODES];
   1546       1.1  yamt 			uint64_t nextidx;
   1547       1.1  yamt 			unsigned int nfound;
   1548       1.1  yamt 
   1549       1.1  yamt 			nextidx = 0;
   1550       1.1  yamt 			while ((nfound = radix_tree_gang_lookup_tagged_node(t,
   1551       1.1  yamt 			    nextidx, (void *)results, __arraycount(results),
   1552  1.17.2.4  yamt 			    false, tagmask)) > 0) {
   1553       1.1  yamt 				nextidx = results[nfound - 1]->idx + 1;
   1554       1.1  yamt 				total += nfound;
   1555       1.1  yamt 			}
   1556       1.1  yamt 		}
   1557       1.1  yamt 		gettimeofday(&etv, NULL);
   1558  1.17.2.4  yamt 		check_tag_count(ntagged, tagmask, total);
   1559  1.17.2.4  yamt 		assert(tagmask != 0 || total == 0);
   1560  1.17.2.4  yamt 		printops(title, "ganglookup_tag", tagmask, total, &stv, &etv);
   1561       1.1  yamt 	}
   1562       1.1  yamt 
   1563  1.17.2.4  yamt 	for (tagmask = 1; tagmask <= RADIX_TREE_TAG_MASK; tagmask ++) {
   1564  1.17.2.4  yamt 		unsigned int total = 0;
   1565  1.17.2.4  yamt 
   1566      1.15  yamt 		gettimeofday(&stv, NULL);
   1567      1.15  yamt 		{
   1568      1.15  yamt 			struct testnode *results[TEST2_GANG_LOOKUP_NODES];
   1569      1.15  yamt 			uint64_t nextidx;
   1570      1.15  yamt 			unsigned int nfound;
   1571      1.15  yamt 
   1572      1.15  yamt 			nextidx = UINT64_MAX;
   1573      1.15  yamt 			while ((nfound =
   1574      1.15  yamt 			    radix_tree_gang_lookup_tagged_node_reverse(t,
   1575      1.15  yamt 			    nextidx, (void *)results, __arraycount(results),
   1576  1.17.2.4  yamt 			    false, tagmask)) > 0) {
   1577      1.15  yamt 				nextidx = results[nfound - 1]->idx - 1;
   1578      1.15  yamt 				total += nfound;
   1579      1.15  yamt 				if (nextidx == UINT64_MAX) {
   1580      1.15  yamt 					break;
   1581      1.15  yamt 				}
   1582      1.15  yamt 			}
   1583      1.15  yamt 		}
   1584      1.15  yamt 		gettimeofday(&etv, NULL);
   1585  1.17.2.4  yamt 		check_tag_count(ntagged, tagmask, total);
   1586  1.17.2.4  yamt 		assert(tagmask != 0 || total == 0);
   1587  1.17.2.4  yamt 		printops(title, "ganglookup_tag_reverse", tagmask, total,
   1588      1.15  yamt 		    &stv, &etv);
   1589      1.15  yamt 	}
   1590      1.15  yamt 
   1591       1.1  yamt 	removed = 0;
   1592       1.1  yamt 	for (tag = 0; tag < RADIX_TREE_TAG_ID_MAX; tag++) {
   1593       1.1  yamt 		unsigned int total;
   1594       1.1  yamt 
   1595       1.1  yamt 		total = 0;
   1596  1.17.2.4  yamt 		tagmask = 1 << tag;
   1597       1.1  yamt 		gettimeofday(&stv, NULL);
   1598       1.1  yamt 		{
   1599       1.1  yamt 			struct testnode *results[TEST2_GANG_LOOKUP_NODES];
   1600       1.1  yamt 			uint64_t nextidx;
   1601       1.1  yamt 			unsigned int nfound;
   1602       1.1  yamt 
   1603       1.1  yamt 			nextidx = 0;
   1604       1.1  yamt 			while ((nfound = radix_tree_gang_lookup_tagged_node(t,
   1605       1.1  yamt 			    nextidx, (void *)results, __arraycount(results),
   1606  1.17.2.4  yamt 			    false, tagmask)) > 0) {
   1607       1.1  yamt 				for (i = 0; i < nfound; i++) {
   1608       1.1  yamt 					radix_tree_remove_node(t,
   1609       1.1  yamt 					    results[i]->idx);
   1610       1.1  yamt 				}
   1611       1.1  yamt 				nextidx = results[nfound - 1]->idx + 1;
   1612       1.1  yamt 				total += nfound;
   1613      1.15  yamt 				if (nextidx == 0) {
   1614      1.15  yamt 					break;
   1615      1.15  yamt 				}
   1616       1.1  yamt 			}
   1617       1.1  yamt 		}
   1618       1.1  yamt 		gettimeofday(&etv, NULL);
   1619  1.17.2.4  yamt 		if (tag == 0) {
   1620  1.17.2.4  yamt 			check_tag_count(ntagged, tagmask, total);
   1621  1.17.2.4  yamt 		} else {
   1622  1.17.2.4  yamt 			assert(total <= ntagged[tag]);
   1623  1.17.2.4  yamt 		}
   1624  1.17.2.4  yamt 		printops(title, "ganglookup_tag+remove", tagmask, total, &stv,
   1625      1.11  yamt 		    &etv);
   1626       1.1  yamt 		removed += total;
   1627       1.1  yamt 	}
   1628       1.1  yamt 
   1629       1.1  yamt 	gettimeofday(&stv, NULL);
   1630       1.1  yamt 	{
   1631       1.1  yamt 		struct testnode *results[TEST2_GANG_LOOKUP_NODES];
   1632       1.1  yamt 		uint64_t nextidx;
   1633       1.1  yamt 		unsigned int nfound;
   1634       1.1  yamt 		unsigned int total;
   1635       1.1  yamt 
   1636       1.1  yamt 		nextidx = 0;
   1637       1.1  yamt 		total = 0;
   1638       1.1  yamt 		while ((nfound = radix_tree_gang_lookup_node(t, nextidx,
   1639  1.17.2.1  yamt 		    (void *)results, __arraycount(results), false)) > 0) {
   1640       1.1  yamt 			for (i = 0; i < nfound; i++) {
   1641       1.1  yamt 				assert(results[i] == radix_tree_remove_node(t,
   1642       1.1  yamt 				    results[i]->idx));
   1643       1.1  yamt 			}
   1644       1.1  yamt 			nextidx = results[nfound - 1]->idx + 1;
   1645       1.1  yamt 			total += nfound;
   1646      1.15  yamt 			if (nextidx == 0) {
   1647      1.15  yamt 				break;
   1648      1.15  yamt 			}
   1649       1.1  yamt 		}
   1650       1.1  yamt 		assert(total == nnodes - removed);
   1651       1.1  yamt 	}
   1652       1.1  yamt 	gettimeofday(&etv, NULL);
   1653      1.11  yamt 	printops(title, "ganglookup+remove", 0, nnodes - removed, &stv, &etv);
   1654       1.1  yamt 
   1655      1.16  yamt 	assert(radix_tree_empty_tree_p(t));
   1656  1.17.2.4  yamt 	for (tagmask = 1; tagmask <= RADIX_TREE_TAG_MASK; tagmask ++) {
   1657  1.17.2.4  yamt 		assert(radix_tree_empty_tagged_tree_p(t, tagmask));
   1658  1.17.2.4  yamt 	}
   1659       1.1  yamt 	radix_tree_fini_tree(t);
   1660       1.1  yamt 	free(nodes);
   1661       1.1  yamt }
   1662       1.1  yamt 
   1663       1.1  yamt int
   1664       1.1  yamt main(int argc, char *argv[])
   1665       1.1  yamt {
   1666       1.1  yamt 
   1667       1.1  yamt 	test1();
   1668      1.11  yamt 	test2("dense", true);
   1669      1.11  yamt 	test2("sparse", false);
   1670       1.1  yamt 	return 0;
   1671       1.1  yamt }
   1672       1.1  yamt 
   1673       1.1  yamt #endif /* defined(UNITTEST) */
   1674