Red-black tree based physical memory management
This commit is contained in:
88
kernel/mem.c
88
kernel/mem.c
@ -498,7 +498,9 @@ static void *mckernel_allocate_aligned_pages_node(int npages, int p2align,
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{
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unsigned long pa = 0;
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int i, node;
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#ifndef IHK_RBTREE_ALLOCATOR
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struct ihk_page_allocator_desc *pa_allocator;
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#endif
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int numa_id;
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/* Not yet initialized or idle process */
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@ -519,9 +521,14 @@ static void *mckernel_allocate_aligned_pages_node(int npages, int p2align,
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/* Explicit valid node? */
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if (pref_node > -1 && pref_node < ihk_mc_get_nr_numa_nodes()) {
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#ifdef IHK_RBTREE_ALLOCATOR
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{
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pa = ihk_numa_alloc_pages(&memory_nodes[pref_node], npages, p2align);
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#else
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list_for_each_entry(pa_allocator,
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&memory_nodes[pref_node].allocators, list) {
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pa = ihk_pagealloc_alloc(pa_allocator, npages, p2align);
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#endif
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if (pa) {
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dkprintf("%s: explicit (node: %d) CPU @ node %d allocated "
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@ -559,12 +566,16 @@ static void *mckernel_allocate_aligned_pages_node(int npages, int p2align,
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continue;
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}
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numa_id = memory_nodes[node].
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nodes_by_distance[i].id;
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numa_id = memory_nodes[node].nodes_by_distance[i].id;
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#ifdef IHK_RBTREE_ALLOCATOR
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{
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pa = ihk_numa_alloc_pages(&memory_nodes[memory_nodes[node].
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nodes_by_distance[i].id], npages, p2align);
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#else
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list_for_each_entry(pa_allocator,
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&memory_nodes[numa_id].
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allocators, list) {
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&memory_nodes[numa_id].allocators, list) {
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pa = ihk_pagealloc_alloc(pa_allocator, npages, p2align);
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#endif
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if (pa) {
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dkprintf("%s: policy: CPU @ node %d allocated "
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@ -612,9 +623,16 @@ distance_based:
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for (i = 0; i < ihk_mc_get_nr_numa_nodes(); ++i) {
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numa_id = memory_nodes[node].nodes_by_distance[i].id;
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#ifdef IHK_RBTREE_ALLOCATOR
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{
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pa = ihk_numa_alloc_pages(&memory_nodes[memory_nodes[node].
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nodes_by_distance[i].id], npages, p2align);
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#else
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list_for_each_entry(pa_allocator,
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&memory_nodes[numa_id].allocators, list) {
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pa = ihk_pagealloc_alloc(pa_allocator, npages, p2align);
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#endif
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if (pa) {
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dkprintf("%s: distance: CPU @ node %d allocated "
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@ -640,11 +658,19 @@ order_based:
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/* Fall back to regular order */
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for (i = 0; i < ihk_mc_get_nr_numa_nodes(); ++i) {
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numa_id = (node + i) % ihk_mc_get_nr_numa_nodes();
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#ifdef IHK_RBTREE_ALLOCATOR
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{
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pa = ihk_numa_alloc_pages(&memory_nodes[(node + i) %
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ihk_mc_get_nr_numa_nodes()], npages, p2align);
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#else
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list_for_each_entry(pa_allocator,
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&memory_nodes[numa_id].allocators, list) {
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pa = ihk_pagealloc_alloc(pa_allocator, npages, p2align);
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#endif
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if (pa) {
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#ifdef ENABLE_RUSAGE
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rusage_numa_add(numa_id, npages * PAGE_SIZE);
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#endif
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break;
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}
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}
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@ -669,15 +695,25 @@ static void __mckernel_free_pages_in_allocator(void *va, int npages)
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/* Find corresponding memory allocator */
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for (i = 0; i < ihk_mc_get_nr_numa_nodes(); ++i) {
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struct ihk_page_allocator_desc *pa_allocator;
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#ifdef IHK_RBTREE_ALLOCATOR
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{
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if (pa_start >= memory_nodes[i].min_addr &&
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pa_end <= memory_nodes[i].max_addr) {
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ihk_numa_free_pages(&memory_nodes[i], pa_start, npages);
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#else
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struct ihk_page_allocator_desc *pa_allocator;
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list_for_each_entry(pa_allocator,
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&memory_nodes[i].allocators, list) {
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if (pa_start >= pa_allocator->start &&
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pa_end <= pa_allocator->end) {
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ihk_pagealloc_free(pa_allocator, pa_start, npages);
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#endif
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#ifdef ENABLE_RUSAGE
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rusage_numa_sub(i, npages * PAGE_SIZE);
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#endif
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return;
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}
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}
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@ -755,6 +791,9 @@ static void query_free_mem_interrupt_handler(void *priv)
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/* Iterate memory allocators */
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for (i = 0; i < ihk_mc_get_nr_numa_nodes(); ++i) {
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#ifdef IHK_RBTREE_ALLOCATOR
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pages += memory_nodes[i].nr_free_pages;
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#else
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struct ihk_page_allocator_desc *pa_allocator;
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list_for_each_entry(pa_allocator,
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@ -764,6 +803,7 @@ static void query_free_mem_interrupt_handler(void *priv)
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pa_allocator->start, pa_allocator->end, __pages);
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pages += __pages;
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}
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#endif
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}
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kprintf("McKernel free pages in total: %d\n", pages);
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@ -1082,6 +1122,13 @@ static void numa_init(void)
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memory_nodes[i].type = type;
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INIT_LIST_HEAD(&memory_nodes[i].allocators);
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memory_nodes[i].nodes_by_distance = 0;
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#ifdef IHK_RBTREE_ALLOCATOR
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memory_nodes[i].free_chunks.rb_node = 0;
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mcs_lock_init(&memory_nodes[i].lock);
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memory_nodes[i].min_addr = 0xFFFFFFFFFFFFFFFF;
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memory_nodes[i].max_addr = 0;
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memory_nodes[i].nr_free_pages = 0;
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#endif
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kprintf("NUMA: %d, Linux NUMA: %d, type: %d\n",
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i, linux_numa_id, type);
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@ -1090,21 +1137,48 @@ static void numa_init(void)
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for (j = 0; j < ihk_mc_get_nr_memory_chunks(); ++j) {
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unsigned long start, end;
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int numa_id;
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#ifndef IHK_RBTREE_ALLOCATOR
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struct ihk_page_allocator_desc *allocator;
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#endif
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ihk_mc_get_memory_chunk(j, &start, &end, &numa_id);
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if (virt_to_phys(get_last_early_heap()) >= start &&
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virt_to_phys(get_last_early_heap()) < end) {
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dkprintf("%s: start from 0x%lx\n",
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__FUNCTION__, virt_to_phys(get_last_early_heap()));
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start = virt_to_phys(get_last_early_heap());
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}
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#ifdef IHK_RBTREE_ALLOCATOR
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ihk_numa_add_free_pages(&memory_nodes[numa_id], start, end - start);
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#else
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allocator = page_allocator_init(start, end);
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list_add_tail(&allocator->list, &memory_nodes[numa_id].allocators);
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#endif
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#ifdef IHK_RBTREE_ALLOCATOR
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kprintf("Physical memory: 0x%lx - 0x%lx, %lu bytes, %d pages available @ NUMA: %d\n",
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start, end,
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end - start,
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(end - start) >> PAGE_SHIFT,
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numa_id);
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#else
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kprintf("Physical memory: 0x%lx - 0x%lx, %lu bytes, %d pages available @ NUMA: %d\n",
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start, end,
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ihk_pagealloc_count(allocator) * PAGE_SIZE,
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ihk_pagealloc_count(allocator),
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numa_id);
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#endif
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#ifdef ENABLE_RUSAGE
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#ifdef IHK_RBTREE_ALLOCATOR
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rusage_max_memory_add(memory_nodes[numa_id].nr_free_pages *
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PAGE_SIZE);
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#else
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rusage_max_memory_add(ihk_pagealloc_count(allocator) *
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PAGE_SIZE);
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PAGE_SIZE);
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#endif
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#endif
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}
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}
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@ -5,16 +5,19 @@
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* Declare functions acquire physical pages and assign virtual addresses
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* to them.
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* \author Taku Shimosawa <shimosawa@is.s.u-tokyo.ac.jp> \par
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* Copyright (C) 2011 - 2012 Taku Shimosawa
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* \author Balazs Gerofi <bgerofi@riken.jp> \par
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*/
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/*
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* HISTORY
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* 2016/12 - bgerofi - NUMA support
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* 2017/06 - bgerofi - rewrite physical memory mngt for red-black trees
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*/
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#ifndef __HEADER_GENERIC_IHK_PAGE_ALLOC
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#define __HEADER_GENERIC_IHK_PAGE_ALLOC
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#include <list.h>
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#include <rbtree.h>
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/* XXX: Physical memory management shouldn't be part of IHK */
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struct node_distance {
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@ -22,14 +25,40 @@ struct node_distance {
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int distance;
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};
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#define IHK_RBTREE_ALLOCATOR
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#ifdef IHK_RBTREE_ALLOCATOR
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struct free_chunk {
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unsigned long addr, size;
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struct rb_node node;
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};
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#endif
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struct ihk_mc_numa_node {
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int id;
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int linux_numa_id;
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int type;
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struct list_head allocators;
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struct node_distance *nodes_by_distance;
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#ifdef IHK_RBTREE_ALLOCATOR
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struct rb_root free_chunks;
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mcs_lock_node_t lock;
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unsigned long nr_free_pages;
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unsigned long min_addr;
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unsigned long max_addr;
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#endif
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};
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#ifdef IHK_RBTREE_ALLOCATOR
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unsigned long ihk_numa_alloc_pages(struct ihk_mc_numa_node *node,
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int npages, int p2align);
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void ihk_numa_free_pages(struct ihk_mc_numa_node *node,
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unsigned long addr, int npages);
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int ihk_numa_add_free_pages(struct ihk_mc_numa_node *node,
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unsigned long addr, unsigned long size);
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#endif
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struct ihk_page_allocator_desc {
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unsigned long start, end;
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unsigned int last;
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351
lib/page_alloc.c
351
lib/page_alloc.c
@ -18,6 +18,15 @@
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#include <ihk/page_alloc.h>
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#include <memory.h>
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#include <bitops.h>
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#include <errno.h>
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//#define DEBUG_PRINT_PAGE_ALLOC
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#ifdef DEBUG_PRINT_PAGE_ALLOC
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#define dkprintf kprintf
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#else
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#define dkprintf(...) do { if (0) kprintf(__VA_ARGS__); } while (0)
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#endif
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void free_pages(void *, int npages);
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@ -301,3 +310,345 @@ kprintf("\nzeroing done\n");
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}
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#ifdef IHK_RBTREE_ALLOCATOR
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/*
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* Simple red-black tree based physical memory management routines.
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*
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* Allocation grabs first suitable chunk (splits chunk if alignment requires it).
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* Deallocation merges with immediate neighbours.
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*
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* NOTE: invariant property: free_chunk structures are placed in the very front
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* of their corresponding memory (i.e., they are on the free memory chunk itself).
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*/
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/*
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* Free pages.
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* NOTE: locking must be managed by the caller.
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*/
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static int __page_alloc_rbtree_free_range(struct rb_root *root,
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unsigned long addr, unsigned long size)
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{
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struct rb_node **iter = &(root->rb_node), *parent = NULL;
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struct free_chunk *new_chunk;
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/* Figure out where to put new node */
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while (*iter) {
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struct free_chunk *ichunk = container_of(*iter, struct free_chunk, node);
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parent = *iter;
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if ((addr >= ichunk->addr) && (addr < ichunk->addr + ichunk->size)) {
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kprintf("%s: ERROR: free memory chunk: 0x%lx:%lu"
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" and requested range to be freed: 0x%lx:%lu are "
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"overlapping (double-free?)\n",
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__FUNCTION__,
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ichunk->addr, ichunk->size, addr, size);
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return EINVAL;
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}
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/* Is ichunk contigous from the left? */
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if (ichunk->addr + ichunk->size == addr) {
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struct rb_node *right;
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/* Extend it to the right */
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ichunk->size += size;
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dkprintf("%s: chunk extended to right: 0x%lx:%lu\n",
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__FUNCTION__, ichunk->addr, ichunk->size);
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/* Have the right chunk of ichunk and ichunk become contigous? */
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right = rb_next(*iter);
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if (right) {
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struct free_chunk *right_chunk =
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container_of(right, struct free_chunk, node);
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if (ichunk->addr + ichunk->size == right_chunk->addr) {
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ichunk->size += right_chunk->size;
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rb_erase(right, root);
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dkprintf("%s: chunk merged to right: 0x%lx:%lu\n",
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__FUNCTION__, ichunk->addr, ichunk->size);
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}
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}
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return 0;
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}
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/* Is ichunk contigous from the right? */
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if (addr + size == ichunk->addr) {
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struct rb_node *left;
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/* Extend it to the left */
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ichunk->addr -= size;
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ichunk->size += size;
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dkprintf("%s: chunk extended to left: 0x%lx:%lu\n",
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__FUNCTION__, ichunk->addr, ichunk->size);
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/* Have the left chunk of ichunk and ichunk become contigous? */
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left = rb_prev(*iter);
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if (left) {
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struct free_chunk *left_chunk =
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container_of(left, struct free_chunk, node);
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if (left_chunk->addr + left_chunk->size == ichunk->addr) {
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ichunk->addr -= left_chunk->size;
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ichunk->size += left_chunk->size;
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rb_erase(left, root);
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dkprintf("%s: chunk merged to left: 0x%lx:%lu\n",
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__FUNCTION__, ichunk->addr, ichunk->size);
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}
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}
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/* Move chunk structure to the front */
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new_chunk = (struct free_chunk *)phys_to_virt(ichunk->addr);
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*new_chunk = *ichunk;
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rb_replace_node(&ichunk->node, &new_chunk->node, root);
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dkprintf("%s: chunk moved to front: 0x%lx:%lu\n",
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__FUNCTION__, new_chunk->addr, new_chunk->size);
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return 0;
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}
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if (addr < ichunk->addr)
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iter = &((*iter)->rb_left);
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else
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iter = &((*iter)->rb_right);
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}
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new_chunk = (struct free_chunk *)phys_to_virt(addr);
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new_chunk->addr = addr;
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new_chunk->size = size;
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dkprintf("%s: new chunk: 0x%lx:%lu\n",
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__FUNCTION__, new_chunk->addr, new_chunk->size);
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/* Add new node and rebalance tree. */
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rb_link_node(&new_chunk->node, parent, iter);
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rb_insert_color(&new_chunk->node, root);
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return 0;
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}
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/*
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* Mark address range as used (i.e., allocated).
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*
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* chunk is the free memory chunk in which
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* [aligned_addr, aligned_addr + size] resides.
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*
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* NOTE: locking must be managed by the caller.
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*/
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static int __page_alloc_rbtree_mark_range_allocated(struct rb_root *root,
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struct free_chunk *chunk,
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unsigned long aligned_addr, unsigned long size)
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{
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struct free_chunk *left_chunk = NULL, *right_chunk = NULL;
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/* Is there leftover on the right? */
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if ((aligned_addr + size) < (chunk->addr + chunk->size)) {
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right_chunk = (struct free_chunk *)phys_to_virt(aligned_addr + size);
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right_chunk->addr = aligned_addr + size;
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right_chunk->size = (chunk->addr + chunk->size) - (aligned_addr + size);
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}
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/* Is there leftover on the left? */
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if (aligned_addr != chunk->addr) {
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left_chunk = chunk;
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}
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/* Update chunk's size, possibly becomes zero */
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chunk->size = (aligned_addr - chunk->addr);
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if (left_chunk) {
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/* Left chunk reuses chunk, add right chunk */
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if (right_chunk) {
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dkprintf("%s: adding right chunk: 0x%lx:%lu\n",
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__FUNCTION__, right_chunk->addr, right_chunk->size);
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if (__page_alloc_rbtree_free_range(root,
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right_chunk->addr, right_chunk->size)) {
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kprintf("%s: ERROR: adding right chunk: 0x%lx:%lu\n",
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__FUNCTION__, right_chunk->addr, right_chunk->size);
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return EINVAL;
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}
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}
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}
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else {
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/* Replace left with right */
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if (right_chunk) {
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rb_replace_node(&chunk->node, &right_chunk->node, root);
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dkprintf("%s: chunk replaced with right: 0x%lx:%lu\n",
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__FUNCTION__, right_chunk->addr, right_chunk->size);
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}
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/* No left chunk and no right chunk => chunk was exact match, delete it */
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else {
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rb_erase(&chunk->node, root);
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dkprintf("%s: chunk deleted: 0x%lx:%lu\n",
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__FUNCTION__, chunk->addr, chunk->size);
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}
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}
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return 0;
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}
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/*
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* Allocate pages.
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*
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* NOTE: locking must be managed by the caller.
|
||||
*/
|
||||
static unsigned long __page_alloc_rbtree_alloc_pages(struct rb_root *root,
|
||||
int npages, int p2align)
|
||||
{
|
||||
struct free_chunk *chunk;
|
||||
struct rb_node *node;
|
||||
unsigned long size = PAGE_SIZE * npages;
|
||||
unsigned long align_size = (PAGE_SIZE << p2align);
|
||||
unsigned long align_mask = ~(align_size - 1);
|
||||
unsigned long aligned_addr = 0;
|
||||
|
||||
for (node = rb_first(root); node; node = rb_next(node)) {
|
||||
chunk = container_of(node, struct free_chunk, node);
|
||||
aligned_addr = (chunk->addr + (align_size - 1)) & align_mask;
|
||||
|
||||
/* Is this a suitable chunk? */
|
||||
if ((aligned_addr + size) <= (chunk->addr + chunk->size)) {
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
/* No matching chunk at all? */
|
||||
if (!node) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
dkprintf("%s: allocating: 0x%lx:%lu\n",
|
||||
__FUNCTION__, aligned_addr, size);
|
||||
if (__page_alloc_rbtree_mark_range_allocated(root, chunk,
|
||||
aligned_addr, size)) {
|
||||
kprintf("%s: ERROR: allocating 0x%lx:%lu\n",
|
||||
__FUNCTION__, aligned_addr, size);
|
||||
return 0;
|
||||
}
|
||||
|
||||
return aligned_addr;
|
||||
}
|
||||
|
||||
/*
|
||||
* Reserve pages.
|
||||
*
|
||||
* NOTE: locking must be managed by the caller.
|
||||
*/
|
||||
static unsigned long __page_alloc_rbtree_reserve_pages(struct rb_root *root,
|
||||
unsigned long aligned_addr, int npages)
|
||||
{
|
||||
struct free_chunk *chunk;
|
||||
struct rb_node *node;
|
||||
unsigned long size = PAGE_SIZE * npages;
|
||||
|
||||
for (node = rb_first(root); node; node = rb_next(node)) {
|
||||
chunk = container_of(node, struct free_chunk, node);
|
||||
|
||||
/* Is this the containing chunk? */
|
||||
if (aligned_addr >= chunk->addr &&
|
||||
(aligned_addr + size) <= (chunk->addr + chunk->size)) {
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
/* No matching chunk at all? */
|
||||
if (!node) {
|
||||
kprintf("%s: WARNING: attempted to reserve non-free"
|
||||
" physical range: 0x%lx:%lu\n",
|
||||
__FUNCTION__,
|
||||
aligned_addr, size);
|
||||
return 0;
|
||||
}
|
||||
|
||||
dkprintf("%s: reserving: 0x%lx:%lu\n",
|
||||
__FUNCTION__, aligned_addr, size);
|
||||
if (__page_alloc_rbtree_mark_range_allocated(root, chunk,
|
||||
aligned_addr, size)) {
|
||||
kprintf("%s: ERROR: reserving 0x%lx:%lu\n",
|
||||
__FUNCTION__, aligned_addr, size);
|
||||
return 0;
|
||||
}
|
||||
|
||||
return aligned_addr;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* External routines.
|
||||
*/
|
||||
int ihk_numa_add_free_pages(struct ihk_mc_numa_node *node,
|
||||
unsigned long addr, unsigned long size)
|
||||
{
|
||||
if (__page_alloc_rbtree_free_range(&node->free_chunks, addr, size)) {
|
||||
kprintf("%s: ERROR: adding 0x%lx:%lu\n",
|
||||
__FUNCTION__, addr, size);
|
||||
return EINVAL;
|
||||
}
|
||||
|
||||
if (addr < node->min_addr)
|
||||
node->min_addr = addr;
|
||||
|
||||
if (addr + size > node->max_addr)
|
||||
node->max_addr = addr + size;
|
||||
|
||||
node->nr_free_pages += (size >> PAGE_SHIFT);
|
||||
dkprintf("%s: added free pages 0x%lx:%lu\n",
|
||||
__FUNCTION__, addr, size);
|
||||
return 0;
|
||||
}
|
||||
|
||||
|
||||
unsigned long ihk_numa_alloc_pages(struct ihk_mc_numa_node *node,
|
||||
int npages, int p2align)
|
||||
{
|
||||
unsigned long addr = 0;
|
||||
mcs_lock_node_t mcs_node;
|
||||
|
||||
mcs_lock_lock(&node->lock, &mcs_node);
|
||||
|
||||
if (node->nr_free_pages < npages) {
|
||||
goto unlock_out;
|
||||
}
|
||||
|
||||
addr = __page_alloc_rbtree_alloc_pages(&node->free_chunks,
|
||||
npages, p2align);
|
||||
|
||||
/* Does not necessarily succeed due to alignment */
|
||||
if (addr) {
|
||||
node->nr_free_pages -= npages;
|
||||
dkprintf("%s: allocated pages 0x%lx:%lu\n",
|
||||
__FUNCTION__, addr, npages << PAGE_SHIFT);
|
||||
}
|
||||
|
||||
unlock_out:
|
||||
mcs_lock_unlock(&node->lock, &mcs_node);
|
||||
|
||||
return addr;
|
||||
}
|
||||
|
||||
void ihk_numa_free_pages(struct ihk_mc_numa_node *node,
|
||||
unsigned long addr, int npages)
|
||||
{
|
||||
mcs_lock_node_t mcs_node;
|
||||
|
||||
if (addr < node->min_addr ||
|
||||
(addr + (npages << PAGE_SHIFT)) > node->max_addr) {
|
||||
return;
|
||||
}
|
||||
|
||||
if (npages <= 0) {
|
||||
return;
|
||||
}
|
||||
|
||||
mcs_lock_lock(&node->lock, &mcs_node);
|
||||
if (__page_alloc_rbtree_free_range(&node->free_chunks, addr,
|
||||
npages << PAGE_SHIFT)) {
|
||||
kprintf("%s: ERROR: freeing 0x%lx:%lu\n",
|
||||
__FUNCTION__, addr, npages << PAGE_SHIFT);
|
||||
}
|
||||
else {
|
||||
node->nr_free_pages += npages;
|
||||
dkprintf("%s: freed pages 0x%lx:%lu\n",
|
||||
__FUNCTION__, addr, npages << PAGE_SHIFT);
|
||||
}
|
||||
mcs_lock_unlock(&node->lock, &mcs_node);
|
||||
}
|
||||
|
||||
#endif // IHK_RBTREE_ALLOCATOR
|
||||
|
||||
Reference in New Issue
Block a user