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mm/internal.h becomes more and more bloated. Move declarations related to SPARSE and SPARSE_VMEMMAP memory models to a new mm/sparse.h header. No functional changes. Link: https://lore.kernel.org/20260709-internal-h-v2-2-695631425968@kernel.org Signed-off-by: Mike Rapoport (Microsoft) <rppt@kernel.org> Acked-by: Muchun Song <muchun.song@linux.dev> Acked-by: Vlastimil Babka (SUSE) <vbabka@kernel.org> Acked-by: David Hildenbrand (Arm) <david@kernel.org> Acked-by: Lorenzo Stoakes <ljs@kernel.org> Acked-by: Pratyush Yadav <pratyush@kernel.org> Acked-by: SJ Park <sj@kernel.org> Cc: Alexander Graf <graf@amazon.com> Cc: Alexander Potapenko <glider@google.com> Cc: Brendan Jackman <jackmanb@google.com> Cc: Dennis Zhou <dennis@kernel.org> Cc: Dmitry Vyukov <dvyukov@google.com> Cc: Johannes Weiner <hannes@cmpxchg.org> Cc: Liam R. Howlett <liam@infradead.org> Cc: Marco Elver <elver@google.com> Cc: Michal Hocko <mhocko@suse.com> Cc: Oscar Salvador <osalvador@suse.de> Cc: Pasha Tatashin <pasha.tatashin@soleen.com> Cc: Suren Baghdasaryan <surenb@google.com> Cc: Tejun Heo <tj@kernel.org> Cc: "Uladzislau Rezki (Sony)" <urezki@gmail.com> Cc: Zi Yan <ziy@nvidia.com> Signed-off-by: Andrew Morton <akpm@linux-foundation.org>
365 lines
9.6 KiB
C
365 lines
9.6 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* sparse memory mappings.
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*/
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#include <linux/mm.h>
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#include <linux/slab.h>
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#include <linux/mmzone.h>
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#include <linux/memblock.h>
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#include <linux/compiler.h>
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#include <linux/highmem.h>
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#include <linux/export.h>
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#include <linux/spinlock.h>
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#include <linux/vmalloc.h>
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#include <linux/swap.h>
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#include <linux/swapops.h>
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#include <linux/vmstat.h>
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#include "internal.h"
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#include "mm_init.h"
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#include "sparse.h"
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#include <asm/dma.h>
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/*
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* Permanent SPARSEMEM data:
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*
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* 1) mem_section - memory sections, mem_map's for valid memory
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*/
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#ifdef CONFIG_SPARSEMEM_EXTREME
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struct mem_section **mem_section;
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#else
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struct mem_section mem_section[NR_SECTION_ROOTS][SECTIONS_PER_ROOT]
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____cacheline_internodealigned_in_smp;
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#endif
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EXPORT_SYMBOL(mem_section);
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#ifdef NODE_NOT_IN_PAGE_FLAGS
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/*
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* If we did not store the node number in the page then we have to
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* do a lookup in the section_to_node_table in order to find which
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* node the page belongs to.
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*/
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#if MAX_NUMNODES <= 256
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static u8 section_to_node_table[NR_MEM_SECTIONS] __cacheline_aligned;
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#else
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static u16 section_to_node_table[NR_MEM_SECTIONS] __cacheline_aligned;
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#endif
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int memdesc_nid(const memdesc_flags_t *mdf)
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{
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return section_to_node_table[memdesc_section(mdf)];
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}
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EXPORT_SYMBOL(memdesc_nid);
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static void set_section_nid(unsigned long section_nr, int nid)
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{
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section_to_node_table[section_nr] = nid;
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}
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#else /* !NODE_NOT_IN_PAGE_FLAGS */
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static inline void set_section_nid(unsigned long section_nr, int nid)
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{
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}
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#endif
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#ifdef CONFIG_SPARSEMEM_EXTREME
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static noinline struct mem_section __ref *sparse_index_alloc(int nid)
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{
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struct mem_section *section = NULL;
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unsigned long array_size = SECTIONS_PER_ROOT *
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sizeof(struct mem_section);
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if (slab_is_available()) {
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section = kzalloc_node(array_size, GFP_KERNEL, nid);
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} else {
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section = memblock_alloc_node(array_size, SMP_CACHE_BYTES,
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nid);
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if (!section)
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panic("%s: Failed to allocate %lu bytes nid=%d\n",
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__func__, array_size, nid);
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}
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return section;
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}
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int __meminit sparse_index_init(unsigned long section_nr, int nid)
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{
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unsigned long root = SECTION_NR_TO_ROOT(section_nr);
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struct mem_section *section;
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/*
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* An existing section is possible in the sub-section hotplug
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* case. First hot-add instantiates, follow-on hot-add reuses
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* the existing section.
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*
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* The mem_hotplug_lock resolves the apparent race below.
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*/
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if (mem_section[root])
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return 0;
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section = sparse_index_alloc(nid);
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if (!section)
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return -ENOMEM;
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mem_section[root] = section;
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return 0;
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}
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#else /* !SPARSEMEM_EXTREME */
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int sparse_index_init(unsigned long section_nr, int nid)
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{
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return 0;
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}
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#endif
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/*
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* During early boot, before section_mem_map is used for an actual
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* mem_map, we use section_mem_map to store the section's NUMA
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* node. This keeps us from having to use another data structure. The
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* node information is cleared just before we store the real mem_map.
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*/
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static inline unsigned long sparse_encode_early_nid(int nid)
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{
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return ((unsigned long)nid << SECTION_NID_SHIFT);
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}
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static inline int sparse_early_nid(struct mem_section *section)
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{
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return (section->section_mem_map >> SECTION_NID_SHIFT);
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}
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/* Validate the physical addressing limitations of the model */
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static void __meminit mminit_validate_memmodel_limits(unsigned long *start_pfn,
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unsigned long *end_pfn)
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{
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unsigned long max_sparsemem_pfn = (DIRECT_MAP_PHYSMEM_END + 1) >> PAGE_SHIFT;
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/*
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* Sanity checks - do not allow an architecture to pass
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* in larger pfns than the maximum scope of sparsemem:
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*/
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if (*start_pfn > max_sparsemem_pfn) {
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mminit_dprintk(MMINIT_WARNING, "pfnvalidation",
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"Start of range %lu -> %lu exceeds SPARSEMEM max %lu\n",
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*start_pfn, *end_pfn, max_sparsemem_pfn);
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WARN_ON_ONCE(1);
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*start_pfn = max_sparsemem_pfn;
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*end_pfn = max_sparsemem_pfn;
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} else if (*end_pfn > max_sparsemem_pfn) {
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mminit_dprintk(MMINIT_WARNING, "pfnvalidation",
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"End of range %lu -> %lu exceeds SPARSEMEM max %lu\n",
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*start_pfn, *end_pfn, max_sparsemem_pfn);
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WARN_ON_ONCE(1);
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*end_pfn = max_sparsemem_pfn;
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}
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}
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/*
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* There are a number of times that we loop over NR_MEM_SECTIONS,
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* looking for section_present() on each. But, when we have very
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* large physical address spaces, NR_MEM_SECTIONS can also be
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* very large which makes the loops quite long.
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*
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* Keeping track of this gives us an easy way to break out of
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* those loops early.
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*/
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unsigned long __highest_present_section_nr;
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static inline unsigned long first_present_section_nr(void)
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{
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return next_present_section_nr(-1);
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}
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/* Record a memory area against a node. */
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static void __init memory_present(int nid, unsigned long start, unsigned long end)
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{
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unsigned long pfn;
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start &= PAGE_SECTION_MASK;
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mminit_validate_memmodel_limits(&start, &end);
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for (pfn = start; pfn < end; pfn += PAGES_PER_SECTION) {
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unsigned long section_nr = pfn_to_section_nr(pfn);
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struct mem_section *ms;
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sparse_index_init(section_nr, nid);
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set_section_nid(section_nr, nid);
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ms = __nr_to_section(section_nr);
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if (!ms->section_mem_map) {
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ms->section_mem_map = sparse_encode_early_nid(nid) |
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SECTION_IS_ONLINE;
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__section_mark_present(ms, section_nr);
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}
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}
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}
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/*
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* Mark all memblocks as present using memory_present().
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* This is a convenience function that is useful to mark all of the systems
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* memory as present during initialization.
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*/
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static void __init memblocks_present(void)
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{
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unsigned long start, end;
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int i, nid;
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#ifdef CONFIG_SPARSEMEM_EXTREME
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unsigned long size, align;
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size = sizeof(struct mem_section *) * NR_SECTION_ROOTS;
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align = 1 << (INTERNODE_CACHE_SHIFT);
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mem_section = memblock_alloc_or_panic(size, align);
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#endif
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for_each_mem_pfn_range(i, MAX_NUMNODES, &start, &end, &nid)
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memory_present(nid, start, end);
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}
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static unsigned long usemap_size(void)
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{
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return BITS_TO_LONGS(SECTION_BLOCKFLAGS_BITS) * sizeof(unsigned long);
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}
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size_t mem_section_usage_size(void)
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{
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return sizeof(struct mem_section_usage) + usemap_size();
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}
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#ifdef CONFIG_SPARSEMEM_VMEMMAP
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unsigned long __init section_map_size(void)
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{
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return ALIGN(sizeof(struct page) * PAGES_PER_SECTION, PMD_SIZE);
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}
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#else
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unsigned long __init section_map_size(void)
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{
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return PAGE_ALIGN(sizeof(struct page) * PAGES_PER_SECTION);
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}
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struct page __init *__populate_section_memmap(unsigned long pfn,
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unsigned long nr_pages, int nid, struct vmem_altmap *altmap,
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struct dev_pagemap *pgmap)
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{
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unsigned long size = section_map_size();
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return memmap_alloc(size, size, __pa(MAX_DMA_ADDRESS), nid, false);
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}
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#endif /* !CONFIG_SPARSEMEM_VMEMMAP */
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void __weak __meminit vmemmap_populate_print_last(void)
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{
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}
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static void *sparse_usagebuf __meminitdata;
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static void *sparse_usagebuf_end __meminitdata;
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/*
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* Helper function that is used for generic section initialization, and
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* can also be used by any hooks added above.
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*/
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void __init sparse_init_early_section(int nid, struct page *map,
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unsigned long pnum, unsigned long flags)
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{
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BUG_ON(!sparse_usagebuf || sparse_usagebuf >= sparse_usagebuf_end);
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sparse_init_one_section(__nr_to_section(pnum), pnum, map,
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sparse_usagebuf, SECTION_IS_EARLY | flags);
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sparse_usagebuf = (void *)sparse_usagebuf + mem_section_usage_size();
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}
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static int __init sparse_usage_init(int nid, unsigned long map_count)
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{
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unsigned long size;
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size = mem_section_usage_size() * map_count;
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sparse_usagebuf = memblock_alloc_node(size, SMP_CACHE_BYTES, nid);
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if (!sparse_usagebuf) {
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sparse_usagebuf_end = NULL;
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return -ENOMEM;
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}
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sparse_usagebuf_end = sparse_usagebuf + size;
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return 0;
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}
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static void __init sparse_usage_fini(void)
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{
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sparse_usagebuf = sparse_usagebuf_end = NULL;
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}
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/*
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* Initialize sparse on a specific node. The node spans [pnum_begin, pnum_end)
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* And number of present sections in this node is map_count.
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*/
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static void __init sparse_init_nid(int nid, unsigned long pnum_begin,
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unsigned long pnum_end,
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unsigned long map_count)
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{
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unsigned long pnum;
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if (sparse_usage_init(nid, map_count))
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panic("Failed to allocate usemap for node %d\n", nid);
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sparse_vmemmap_init_nid_early(nid);
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for_each_present_section_nr(pnum_begin, pnum) {
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struct mem_section *ms;
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unsigned long pfn = section_nr_to_pfn(pnum);
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if (pnum >= pnum_end)
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break;
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ms = __nr_to_section(pnum);
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if (!preinited_vmemmap_section(ms)) {
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struct page *map;
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map = __populate_section_memmap(pfn, PAGES_PER_SECTION,
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nid, NULL, NULL);
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if (!map)
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panic("Failed to allocate memmap for section %lu\n", pnum);
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memmap_boot_pages_add(DIV_ROUND_UP(PAGES_PER_SECTION * sizeof(struct page),
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PAGE_SIZE));
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sparse_init_early_section(nid, map, pnum, 0);
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}
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}
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sparse_usage_fini();
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}
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/*
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* Allocate the accumulated non-linear sections, allocate a mem_map
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* for each and record the physical to section mapping.
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*/
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void __init sparse_init(void)
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{
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unsigned long pnum_end, pnum_begin, map_count = 1;
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int nid_begin;
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/* see include/linux/mmzone.h 'struct mem_section' definition */
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BUILD_BUG_ON(!is_power_of_2(sizeof(struct mem_section)));
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memblocks_present();
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if (compound_info_has_mask()) {
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VM_WARN_ON_ONCE(!IS_ALIGNED((unsigned long) pfn_to_page(0),
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MAX_FOLIO_VMEMMAP_ALIGN));
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}
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pnum_begin = first_present_section_nr();
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nid_begin = sparse_early_nid(__nr_to_section(pnum_begin));
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for_each_present_section_nr(pnum_begin + 1, pnum_end) {
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int nid = sparse_early_nid(__nr_to_section(pnum_end));
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if (nid == nid_begin) {
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map_count++;
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continue;
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}
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/* Init node with sections in range [pnum_begin, pnum_end) */
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sparse_init_nid(nid_begin, pnum_begin, pnum_end, map_count);
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nid_begin = nid;
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pnum_begin = pnum_end;
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map_count = 1;
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}
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/* cover the last node */
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sparse_init_nid(nid_begin, pnum_begin, pnum_end, map_count);
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sparse_init_subsection_map();
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vmemmap_populate_print_last();
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}
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