eafe26c8a6
use a different scheme for preallocation: reserve few KB of nodes to be used to cater page allocations before the memory can be efficiently pre-allocated by UMA. This at all effects remove boot_pages further carving and along with this modifies to the boot_pages allocation system and necessity to initialize the UMA zone before pmap_init(). Reported by: pho, jhb
769 lines
21 KiB
C
769 lines
21 KiB
C
/*
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* Copyright (c) 2013 EMC Corp.
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* Copyright (c) 2011 Jeffrey Roberson <jeff@freebsd.org>
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* Copyright (c) 2008 Mayur Shardul <mayur.shardul@gmail.com>
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions
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* are met:
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* 1. Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* 2. Redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution.
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*
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* THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
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* ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
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* ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
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* FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
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* OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
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* HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
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* LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
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* OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
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* SUCH DAMAGE.
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*
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*/
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/*
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* Path-compressed radix trie implementation.
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* The following code is not generalized into a general purpose library
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* because there are way too many parameters embedded that should really
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* be decided by the library consumers. At the same time, consumers
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* of this code must achieve highest possible performance.
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*
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* The implementation takes into account the following rationale:
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* - Size of the nodes might be as small as possible.
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* - There is no bias toward lookup operations over inserts or removes,
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* and vice-versa.
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* - In average there are not many complete levels, than level
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* compression may just complicate things.
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*/
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#include <sys/cdefs.h>
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#include "opt_ddb.h"
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#include <sys/param.h>
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#include <sys/conf.h>
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#include <sys/systm.h>
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#include <sys/kernel.h>
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#include <sys/malloc.h>
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#include <sys/queue.h>
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#include <sys/lock.h>
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#include <sys/mutex.h>
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#include <vm/uma.h>
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#include <vm/vm.h>
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#include <vm/vm_param.h>
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#include <vm/vm_extern.h>
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#include <vm/vm_kern.h>
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#include <vm/vm_page.h>
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#include <vm/vm_radix.h>
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#ifdef DDB
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#include <ddb/ddb.h>
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#endif
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#define VM_RADIX_BOOT_CACHE 1500
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/*
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* Such sizes should permit to keep node children contained into a single
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* cache-line, or to at least not span many of those.
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* In particular, sparse tries should however be compressed properly and
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* then make some extra-levels not a big deal.
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*/
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#ifdef __LP64__
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#define VM_RADIX_WIDTH 4
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#else
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#define VM_RADIX_WIDTH 3
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#endif
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#define VM_RADIX_COUNT (1 << VM_RADIX_WIDTH)
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#define VM_RADIX_MASK (VM_RADIX_COUNT - 1)
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#define VM_RADIX_LIMIT \
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(howmany((sizeof(vm_pindex_t) * NBBY), VM_RADIX_WIDTH) - 1)
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/* Flag bits stored in node pointers. */
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#define VM_RADIX_ISLEAF 0x1
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#define VM_RADIX_FLAGS 0x1
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#define VM_RADIX_PAD VM_RADIX_FLAGS
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/* Returns one unit associated with specified level. */
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#define VM_RADIX_UNITLEVEL(lev) \
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((vm_pindex_t)1 << ((VM_RADIX_LIMIT - (lev)) * VM_RADIX_WIDTH))
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struct vm_radix_node {
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void *rn_child[VM_RADIX_COUNT]; /* Child nodes. */
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vm_pindex_t rn_owner; /* Owner of record. */
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uint16_t rn_count; /* Valid children. */
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uint16_t rn_clev; /* Current level. */
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};
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static uma_zone_t vm_radix_node_zone;
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/*
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* Boot-time cache of struct vm_radix_node objects.
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* This cache is used to cater page allocations before the UMA zone is
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* actually setup and pre-allocated (ie. pmap_init()).
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*/
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static u_int boot_cache_cnt;
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static struct vm_radix_node boot_cache[VM_RADIX_BOOT_CACHE];
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#ifdef INVARIANTS
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/*
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* Radix node zone destructor.
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*/
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static void
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vm_radix_node_zone_dtor(void *mem, int size __unused, void *arg __unused)
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{
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struct vm_radix_node *rnode;
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rnode = mem;
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KASSERT(rnode->rn_count == 0,
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("vm_radix_node_put: Freeing node %p with %d children\n", mem,
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rnode->rn_count));
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}
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#endif
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/*
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* Allocate a radix node. Pre-allocation ensures that the request will be
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* always successfully satisfied.
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*/
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static __inline struct vm_radix_node *
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vm_radix_node_get(vm_pindex_t owner, uint16_t count, uint16_t clevel)
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{
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struct vm_radix_node *rnode;
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if (boot_cache_cnt <= VM_RADIX_BOOT_CACHE) {
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if (boot_cache_cnt == VM_RADIX_BOOT_CACHE)
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panic("%s: Increase VM_RADIX_BOOT_CACHE", __func__);
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rnode = &boot_cache[boot_cache_cnt];
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boot_cache_cnt++;
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} else {
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rnode = uma_zalloc(vm_radix_node_zone, M_NOWAIT | M_ZERO);
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/*
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* The required number of nodes might be already correctly
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* pre-allocated in vm_radix_init(). However, UMA can reserve
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* few nodes on per-cpu specific buckets, which will not be
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* accessible from the curcpu. The allocation could then
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* return NULL when the pre-allocation pool is close to be
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* exhausted. Anyway, in practice this should never be a
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* problem because a new node is not always required for
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* insert, thus the pre-allocation pool should already have
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* some extra-pages that indirectly deal with this situation.
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*/
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if (rnode == NULL)
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panic("%s: uma_zalloc() returned NULL for a new node",
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__func__);
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}
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rnode->rn_owner = owner;
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rnode->rn_count = count;
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rnode->rn_clev = clevel;
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return (rnode);
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}
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/*
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* Free radix node.
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*/
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static __inline void
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vm_radix_node_put(struct vm_radix_node *rnode)
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{
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if (rnode > boot_cache && rnode <= &boot_cache[VM_RADIX_BOOT_CACHE])
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return;
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uma_zfree(vm_radix_node_zone, rnode);
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}
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/*
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* Return the position in the array for a given level.
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*/
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static __inline int
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vm_radix_slot(vm_pindex_t index, uint16_t level)
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{
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return ((index >> ((VM_RADIX_LIMIT - level) * VM_RADIX_WIDTH)) &
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VM_RADIX_MASK);
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}
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/* Trims the key after the specified level. */
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static __inline vm_pindex_t
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vm_radix_trimkey(vm_pindex_t index, uint16_t level)
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{
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vm_pindex_t ret;
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ret = index;
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if (level < VM_RADIX_LIMIT) {
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ret >>= (VM_RADIX_LIMIT - level) * VM_RADIX_WIDTH;
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ret <<= (VM_RADIX_LIMIT - level) * VM_RADIX_WIDTH;
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}
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return (ret);
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}
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/*
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* Get the root node for a radix tree.
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*/
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static __inline struct vm_radix_node *
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vm_radix_getroot(struct vm_radix *rtree)
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{
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return ((struct vm_radix_node *)(rtree->rt_root & ~VM_RADIX_FLAGS));
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}
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/*
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* Set the root node for a radix tree.
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*/
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static __inline void
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vm_radix_setroot(struct vm_radix *rtree, struct vm_radix_node *rnode)
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{
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rtree->rt_root = (uintptr_t)rnode;
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}
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/*
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* Returns the associated page extracted from rnode if available,
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* NULL otherwise.
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*/
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static __inline vm_page_t
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vm_radix_node_page(struct vm_radix_node *rnode)
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{
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return ((((uintptr_t)rnode & VM_RADIX_ISLEAF) != 0) ?
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(vm_page_t)((uintptr_t)rnode & ~VM_RADIX_FLAGS) : NULL);
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}
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/*
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* Adds the page as a child of provided node.
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*/
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static __inline void
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vm_radix_addpage(struct vm_radix_node *rnode, vm_pindex_t index, uint16_t clev,
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vm_page_t page)
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{
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int slot;
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slot = vm_radix_slot(index, clev);
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rnode->rn_child[slot] = (void *)((uintptr_t)page | VM_RADIX_ISLEAF);
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}
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/*
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* Returns the slot where two keys differ.
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* It cannot accept 2 equal keys.
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*/
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static __inline uint16_t
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vm_radix_keydiff(vm_pindex_t index1, vm_pindex_t index2)
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{
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uint16_t clev;
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KASSERT(index1 != index2, ("%s: passing the same key value %jx",
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__func__, (uintmax_t)index1));
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index1 ^= index2;
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for (clev = 0; clev <= VM_RADIX_LIMIT ; clev++)
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if (vm_radix_slot(index1, clev))
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return (clev);
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panic("%s: it might have not reached this point", __func__);
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return (0);
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}
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/*
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* Returns TRUE if it can be determined that key does not belong to the
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* specified rnode. FALSE otherwise.
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*/
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static __inline boolean_t
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vm_radix_keybarr(struct vm_radix_node *rnode, vm_pindex_t idx)
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{
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if (rnode->rn_clev > 0) {
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idx = vm_radix_trimkey(idx, rnode->rn_clev - 1);
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idx -= rnode->rn_owner;
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if (idx != 0)
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return (TRUE);
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}
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return (FALSE);
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}
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/*
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* Adjusts the idx key to the first upper level available, based on a valid
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* initial level and map of available levels.
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* Returns a value bigger than 0 to signal that there are not valid levels
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* available.
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*/
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static __inline int
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vm_radix_addlev(vm_pindex_t *idx, boolean_t *levels, uint16_t ilev)
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{
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vm_pindex_t wrapidx;
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for (; levels[ilev] == FALSE ||
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vm_radix_slot(*idx, ilev) == (VM_RADIX_COUNT - 1); ilev--)
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if (ilev == 0)
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break;
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KASSERT(ilev > 0 || levels[0] == TRUE,
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("%s: levels back-scanning problem", __func__));
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if (ilev == 0 && vm_radix_slot(*idx, ilev) == (VM_RADIX_COUNT - 1))
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return (1);
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wrapidx = *idx;
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*idx = vm_radix_trimkey(*idx, ilev);
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*idx += VM_RADIX_UNITLEVEL(ilev);
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if (*idx < wrapidx)
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return (1);
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return (0);
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}
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|
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/*
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* Adjusts the idx key to the first lower level available, based on a valid
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* initial level and map of available levels.
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* Returns a value bigger than 0 to signal that there are not valid levels
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* available.
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*/
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static __inline int
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vm_radix_declev(vm_pindex_t *idx, boolean_t *levels, uint16_t ilev)
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{
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vm_pindex_t wrapidx;
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for (; levels[ilev] == FALSE ||
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vm_radix_slot(*idx, ilev) == 0; ilev--)
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if (ilev == 0)
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break;
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KASSERT(ilev > 0 || levels[0] == TRUE,
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("%s: levels back-scanning problem", __func__));
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if (ilev == 0 && vm_radix_slot(*idx, ilev) == 0)
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return (1);
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wrapidx = *idx;
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*idx = vm_radix_trimkey(*idx, ilev);
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*idx |= VM_RADIX_UNITLEVEL(ilev) - 1;
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*idx -= VM_RADIX_UNITLEVEL(ilev);
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if (*idx < wrapidx)
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return (1);
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return (0);
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}
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|
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/*
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* Internal handwork for vm_radix_reclaim_allonodes() primitive.
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* This function is recrusive.
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*/
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static void
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vm_radix_reclaim_allnodes_int(struct vm_radix_node *rnode)
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{
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int slot;
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for (slot = 0; slot < VM_RADIX_COUNT && rnode->rn_count != 0; slot++) {
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if (rnode->rn_child[slot] == NULL)
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continue;
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if (vm_radix_node_page(rnode->rn_child[slot]) == NULL)
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vm_radix_reclaim_allnodes_int(rnode->rn_child[slot]);
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rnode->rn_count--;
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}
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vm_radix_node_put(rnode);
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}
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/*
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* Pre-allocate intermediate nodes from the UMA slab zone.
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*/
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static void
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vm_radix_init(void *arg __unused)
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{
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int nitems;
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|
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vm_radix_node_zone = uma_zcreate("RADIX NODE",
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sizeof(struct vm_radix_node), NULL,
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#ifdef INVARIANTS
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vm_radix_node_zone_dtor,
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#else
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NULL,
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#endif
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NULL, NULL, VM_RADIX_PAD, UMA_ZONE_VM | UMA_ZONE_NOFREE);
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nitems = uma_zone_set_max(vm_radix_node_zone, vm_page_array_size);
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uma_prealloc(vm_radix_node_zone, nitems);
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boot_cache_cnt = VM_RADIX_BOOT_CACHE + 1;
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}
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SYSINIT(vm_radix_init, SI_SUB_KMEM, SI_ORDER_SECOND, vm_radix_init, NULL);
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|
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/*
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* Inserts the key-value pair in to the trie.
|
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* Panics if the key already exists.
|
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*/
|
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void
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vm_radix_insert(struct vm_radix *rtree, vm_pindex_t index, vm_page_t page)
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{
|
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vm_pindex_t newind;
|
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struct vm_radix_node *rnode, *tmp, *tmp2;
|
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vm_page_t m;
|
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int slot;
|
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uint16_t clev;
|
|
|
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/*
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* The owner of record for root is not really important because it
|
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* will never be used.
|
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*/
|
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rnode = vm_radix_getroot(rtree);
|
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if (rnode == NULL) {
|
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rnode = vm_radix_node_get(0, 1, 0);
|
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vm_radix_setroot(rtree, rnode);
|
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vm_radix_addpage(rnode, index, 0, page);
|
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return;
|
|
}
|
|
while (rnode) {
|
|
if (vm_radix_keybarr(rnode, index) == TRUE)
|
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break;
|
|
slot = vm_radix_slot(index, rnode->rn_clev);
|
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m = vm_radix_node_page(rnode->rn_child[slot]);
|
|
if (m != NULL) {
|
|
if (m->pindex == index)
|
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panic("%s: key %jx is already present",
|
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__func__, (uintmax_t)index);
|
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clev = vm_radix_keydiff(m->pindex, index);
|
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tmp = vm_radix_node_get(vm_radix_trimkey(index,
|
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clev - 1), 2, clev);
|
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rnode->rn_child[slot] = tmp;
|
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vm_radix_addpage(tmp, index, clev, page);
|
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vm_radix_addpage(tmp, m->pindex, clev, m);
|
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return;
|
|
}
|
|
if (rnode->rn_child[slot] == NULL) {
|
|
rnode->rn_count++;
|
|
vm_radix_addpage(rnode, index, rnode->rn_clev, page);
|
|
return;
|
|
}
|
|
rnode = rnode->rn_child[slot];
|
|
}
|
|
if (rnode == NULL)
|
|
panic("%s: path traversal ended unexpectedly", __func__);
|
|
|
|
/*
|
|
* Scan the trie from the top and find the parent to insert
|
|
* the new object.
|
|
*/
|
|
newind = rnode->rn_owner;
|
|
clev = vm_radix_keydiff(newind, index);
|
|
slot = VM_RADIX_COUNT;
|
|
for (rnode = vm_radix_getroot(rtree); ; rnode = tmp) {
|
|
KASSERT(rnode != NULL, ("%s: edge cannot be NULL in the scan",
|
|
__func__));
|
|
KASSERT(clev >= rnode->rn_clev,
|
|
("%s: unexpected trie depth: clev: %d, rnode->rn_clev: %d",
|
|
__func__, clev, rnode->rn_clev));
|
|
slot = vm_radix_slot(index, rnode->rn_clev);
|
|
tmp = rnode->rn_child[slot];
|
|
KASSERT(tmp != NULL && vm_radix_node_page(tmp) == NULL,
|
|
("%s: unexpected lookup interruption", __func__));
|
|
if (tmp->rn_clev > clev)
|
|
break;
|
|
}
|
|
KASSERT(rnode != NULL && tmp != NULL && slot < VM_RADIX_COUNT,
|
|
("%s: invalid scan parameters rnode: %p, tmp: %p, slot: %d",
|
|
__func__, (void *)rnode, (void *)tmp, slot));
|
|
|
|
/*
|
|
* A new node is needed because the right insertion level is reached.
|
|
* Setup the new intermediate node and add the 2 children: the
|
|
* new object and the older edge.
|
|
*/
|
|
tmp2 = vm_radix_node_get(vm_radix_trimkey(page->pindex, clev - 1), 2,
|
|
clev);
|
|
rnode->rn_child[slot] = tmp2;
|
|
vm_radix_addpage(tmp2, index, clev, page);
|
|
slot = vm_radix_slot(newind, clev);
|
|
tmp2->rn_child[slot] = tmp;
|
|
}
|
|
|
|
/*
|
|
* Returns the value stored at the index. If the index is not present
|
|
* NULL is returned.
|
|
*/
|
|
vm_page_t
|
|
vm_radix_lookup(struct vm_radix *rtree, vm_pindex_t index)
|
|
{
|
|
struct vm_radix_node *rnode;
|
|
vm_page_t m;
|
|
int slot;
|
|
|
|
rnode = vm_radix_getroot(rtree);
|
|
while (rnode) {
|
|
if (vm_radix_keybarr(rnode, index) == TRUE)
|
|
return (NULL);
|
|
slot = vm_radix_slot(index, rnode->rn_clev);
|
|
rnode = rnode->rn_child[slot];
|
|
m = vm_radix_node_page(rnode);
|
|
if (m != NULL) {
|
|
if (m->pindex == index)
|
|
return (m);
|
|
else
|
|
return (NULL);
|
|
}
|
|
}
|
|
return (NULL);
|
|
}
|
|
|
|
/*
|
|
* Look up any entry at a position bigger than or equal to index.
|
|
*/
|
|
vm_page_t
|
|
vm_radix_lookup_ge(struct vm_radix *rtree, vm_pindex_t index)
|
|
{
|
|
vm_pindex_t inc;
|
|
vm_page_t m;
|
|
struct vm_radix_node *rnode;
|
|
int slot;
|
|
uint16_t difflev;
|
|
boolean_t maplevels[VM_RADIX_LIMIT + 1];
|
|
#ifdef INVARIANTS
|
|
int loops = 0;
|
|
#endif
|
|
|
|
restart:
|
|
KASSERT(++loops < 1000, ("%s: too many loops", __func__));
|
|
for (difflev = 0; difflev < (VM_RADIX_LIMIT + 1); difflev++)
|
|
maplevels[difflev] = FALSE;
|
|
rnode = vm_radix_getroot(rtree);
|
|
while (rnode) {
|
|
maplevels[rnode->rn_clev] = TRUE;
|
|
|
|
/*
|
|
* If the keys differ before the current bisection node
|
|
* the search key might rollback to the earlierst
|
|
* available bisection node, or to the smaller value
|
|
* in the current domain (if the owner is bigger than the
|
|
* search key).
|
|
* The search for a valid bisection node is helped through
|
|
* the use of maplevels array which should bring immediately
|
|
* a lower useful level, skipping holes.
|
|
*/
|
|
if (vm_radix_keybarr(rnode, index) == TRUE) {
|
|
difflev = vm_radix_keydiff(index, rnode->rn_owner);
|
|
if (index > rnode->rn_owner) {
|
|
if (vm_radix_addlev(&index, maplevels,
|
|
difflev) > 0)
|
|
break;
|
|
} else
|
|
index = vm_radix_trimkey(rnode->rn_owner,
|
|
difflev);
|
|
goto restart;
|
|
}
|
|
slot = vm_radix_slot(index, rnode->rn_clev);
|
|
m = vm_radix_node_page(rnode->rn_child[slot]);
|
|
if (m != NULL && m->pindex >= index)
|
|
return (m);
|
|
if (rnode->rn_child[slot] != NULL && m == NULL) {
|
|
rnode = rnode->rn_child[slot];
|
|
continue;
|
|
}
|
|
|
|
/*
|
|
* Look for an available edge or page within the current
|
|
* bisection node.
|
|
*/
|
|
if (slot < (VM_RADIX_COUNT - 1)) {
|
|
inc = VM_RADIX_UNITLEVEL(rnode->rn_clev);
|
|
index = vm_radix_trimkey(index, rnode->rn_clev);
|
|
index += inc;
|
|
slot++;
|
|
for (;; index += inc, slot++) {
|
|
m = vm_radix_node_page(rnode->rn_child[slot]);
|
|
if (m != NULL && m->pindex >= index)
|
|
return (m);
|
|
if ((rnode->rn_child[slot] != NULL &&
|
|
m == NULL) || slot == (VM_RADIX_COUNT - 1))
|
|
break;
|
|
}
|
|
}
|
|
|
|
/*
|
|
* If a valid page or edge, bigger than the search slot, is
|
|
* found in the traversal, skip to the next higher-level key.
|
|
*/
|
|
if (slot == (VM_RADIX_COUNT - 1) &&
|
|
(rnode->rn_child[slot] == NULL || m != NULL)) {
|
|
if (rnode->rn_clev == 0 || vm_radix_addlev(&index,
|
|
maplevels, rnode->rn_clev - 1) > 0)
|
|
break;
|
|
goto restart;
|
|
}
|
|
rnode = rnode->rn_child[slot];
|
|
}
|
|
return (NULL);
|
|
}
|
|
|
|
/*
|
|
* Look up any entry at a position less than or equal to index.
|
|
*/
|
|
vm_page_t
|
|
vm_radix_lookup_le(struct vm_radix *rtree, vm_pindex_t index)
|
|
{
|
|
vm_pindex_t inc;
|
|
vm_page_t m;
|
|
struct vm_radix_node *rnode;
|
|
int slot;
|
|
uint16_t difflev;
|
|
boolean_t maplevels[VM_RADIX_LIMIT + 1];
|
|
#ifdef INVARIANTS
|
|
int loops = 0;
|
|
#endif
|
|
|
|
restart:
|
|
KASSERT(++loops < 1000, ("%s: too many loops", __func__));
|
|
for (difflev = 0; difflev < (VM_RADIX_LIMIT + 1); difflev++)
|
|
maplevels[difflev] = FALSE;
|
|
rnode = vm_radix_getroot(rtree);
|
|
while (rnode) {
|
|
maplevels[rnode->rn_clev] = TRUE;
|
|
|
|
/*
|
|
* If the keys differ before the current bisection node
|
|
* the search key might rollback to the earlierst
|
|
* available bisection node, or to the higher value
|
|
* in the current domain (if the owner is smaller than the
|
|
* search key).
|
|
* The search for a valid bisection node is helped through
|
|
* the use of maplevels array which should bring immediately
|
|
* a lower useful level, skipping holes.
|
|
*/
|
|
if (vm_radix_keybarr(rnode, index) == TRUE) {
|
|
difflev = vm_radix_keydiff(index, rnode->rn_owner);
|
|
if (index > rnode->rn_owner) {
|
|
index = vm_radix_trimkey(rnode->rn_owner,
|
|
difflev);
|
|
index |= VM_RADIX_UNITLEVEL(difflev) - 1;
|
|
} else if (vm_radix_declev(&index, maplevels,
|
|
difflev) > 0)
|
|
break;
|
|
goto restart;
|
|
}
|
|
slot = vm_radix_slot(index, rnode->rn_clev);
|
|
m = vm_radix_node_page(rnode->rn_child[slot]);
|
|
if (m != NULL && m->pindex <= index)
|
|
return (m);
|
|
if (rnode->rn_child[slot] != NULL && m == NULL) {
|
|
rnode = rnode->rn_child[slot];
|
|
continue;
|
|
}
|
|
|
|
/*
|
|
* Look for an available edge or page within the current
|
|
* bisection node.
|
|
*/
|
|
if (slot > 0) {
|
|
inc = VM_RADIX_UNITLEVEL(rnode->rn_clev);
|
|
index = vm_radix_trimkey(index, rnode->rn_clev);
|
|
index |= inc - 1;
|
|
index -= inc;
|
|
slot--;
|
|
for (;; index -= inc, slot--) {
|
|
m = vm_radix_node_page(rnode->rn_child[slot]);
|
|
if (m != NULL && m->pindex <= index)
|
|
return (m);
|
|
if ((rnode->rn_child[slot] != NULL &&
|
|
m == NULL) || slot == 0)
|
|
break;
|
|
}
|
|
}
|
|
|
|
/*
|
|
* If a valid page or edge, smaller than the search slot, is
|
|
* found in the traversal, skip to the next higher-level key.
|
|
*/
|
|
if (slot == 0 && (rnode->rn_child[slot] == NULL || m != NULL)) {
|
|
if (rnode->rn_clev == 0 || vm_radix_declev(&index,
|
|
maplevels, rnode->rn_clev - 1) > 0)
|
|
break;
|
|
goto restart;
|
|
}
|
|
rnode = rnode->rn_child[slot];
|
|
}
|
|
return (NULL);
|
|
}
|
|
|
|
/*
|
|
* Remove the specified index from the tree.
|
|
* Panics if the key is not present.
|
|
*/
|
|
void
|
|
vm_radix_remove(struct vm_radix *rtree, vm_pindex_t index)
|
|
{
|
|
struct vm_radix_node *rnode, *parent;
|
|
vm_page_t m;
|
|
int i, slot;
|
|
|
|
parent = NULL;
|
|
rnode = vm_radix_getroot(rtree);
|
|
for (;;) {
|
|
if (rnode == NULL)
|
|
panic("vm_radix_remove: impossible to locate the key");
|
|
slot = vm_radix_slot(index, rnode->rn_clev);
|
|
m = vm_radix_node_page(rnode->rn_child[slot]);
|
|
if (m != NULL && m->pindex == index) {
|
|
rnode->rn_child[slot] = NULL;
|
|
rnode->rn_count--;
|
|
if (rnode->rn_count > 1)
|
|
break;
|
|
if (parent == NULL) {
|
|
if (rnode->rn_count == 0) {
|
|
vm_radix_node_put(rnode);
|
|
vm_radix_setroot(rtree, NULL);
|
|
}
|
|
break;
|
|
}
|
|
for (i = 0; i < VM_RADIX_COUNT; i++)
|
|
if (rnode->rn_child[i] != NULL)
|
|
break;
|
|
KASSERT(i != VM_RADIX_COUNT,
|
|
("%s: invalid node configuration", __func__));
|
|
slot = vm_radix_slot(index, parent->rn_clev);
|
|
KASSERT(parent->rn_child[slot] == rnode,
|
|
("%s: invalid child value", __func__));
|
|
parent->rn_child[slot] = rnode->rn_child[i];
|
|
rnode->rn_count--;
|
|
rnode->rn_child[i] = NULL;
|
|
vm_radix_node_put(rnode);
|
|
break;
|
|
}
|
|
if (m != NULL && m->pindex != index)
|
|
panic("%s: invalid key found", __func__);
|
|
parent = rnode;
|
|
rnode = rnode->rn_child[slot];
|
|
}
|
|
}
|
|
|
|
/*
|
|
* Remove and free all the nodes from the radix tree.
|
|
* This function is recrusive but there is a tight control on it as the
|
|
* maximum depth of the tree is fixed.
|
|
*/
|
|
void
|
|
vm_radix_reclaim_allnodes(struct vm_radix *rtree)
|
|
{
|
|
struct vm_radix_node *root;
|
|
|
|
root = vm_radix_getroot(rtree);
|
|
if (root == NULL)
|
|
return;
|
|
vm_radix_reclaim_allnodes_int(root);
|
|
vm_radix_setroot(rtree, NULL);
|
|
}
|
|
|
|
#ifdef DDB
|
|
/*
|
|
* Show details about the given vnode.
|
|
*/
|
|
DB_SHOW_COMMAND(radixnode, db_show_radixnode)
|
|
{
|
|
struct vm_radix_node *rnode;
|
|
int i;
|
|
|
|
if (!have_addr)
|
|
return;
|
|
rnode = (struct vm_radix_node *)addr;
|
|
db_printf("radixnode %p, owner %jx, children count %u, level %u:\n",
|
|
(void *)rnode, (uintmax_t)rnode->rn_owner, rnode->rn_count,
|
|
rnode->rn_clev);
|
|
for (i = 0; i < VM_RADIX_COUNT; i++)
|
|
if (rnode->rn_child[i] != NULL)
|
|
db_printf("slot: %d, val: %p, page: %p, clev: %d\n",
|
|
i, (void *)rnode->rn_child[i],
|
|
(void *)vm_radix_node_page(rnode->rn_child[i]),
|
|
rnode->rn_clev);
|
|
}
|
|
#endif /* DDB */
|