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Paul Mackerras14cf11a2005-09-26 16:04:21 +10001/*
2 * This file contains ioremap and related functions for 64-bit machines.
3 *
4 * Derived from arch/ppc64/mm/init.c
5 * Copyright (C) 1995-1996 Gary Thomas (gdt@linuxppc.org)
6 *
7 * Modifications by Paul Mackerras (PowerMac) (paulus@samba.org)
8 * and Cort Dougan (PReP) (cort@cs.nmt.edu)
9 * Copyright (C) 1996 Paul Mackerras
Paul Mackerras14cf11a2005-09-26 16:04:21 +100010 *
11 * Derived from "arch/i386/mm/init.c"
12 * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds
13 *
14 * Dave Engebretsen <engebret@us.ibm.com>
15 * Rework for PPC64 port.
16 *
17 * This program is free software; you can redistribute it and/or
18 * modify it under the terms of the GNU General Public License
19 * as published by the Free Software Foundation; either version
20 * 2 of the License, or (at your option) any later version.
21 *
22 */
23
Paul Mackerras14cf11a2005-09-26 16:04:21 +100024#include <linux/signal.h>
25#include <linux/sched.h>
26#include <linux/kernel.h>
27#include <linux/errno.h>
28#include <linux/string.h>
Paul Gortmaker66b15db2011-05-27 10:46:24 -040029#include <linux/export.h>
Paul Mackerras14cf11a2005-09-26 16:04:21 +100030#include <linux/types.h>
31#include <linux/mman.h>
32#include <linux/mm.h>
33#include <linux/swap.h>
34#include <linux/stddef.h>
35#include <linux/vmalloc.h>
Yinghai Lu95f72d12010-07-12 14:36:09 +100036#include <linux/memblock.h>
Tejun Heo5a0e3ad2010-03-24 17:04:11 +090037#include <linux/slab.h>
Aneesh Kumar K.V06743522014-11-05 21:57:39 +053038#include <linux/hugetlb.h>
Paul Mackerras14cf11a2005-09-26 16:04:21 +100039
40#include <asm/pgalloc.h>
41#include <asm/page.h>
42#include <asm/prom.h>
Paul Mackerras14cf11a2005-09-26 16:04:21 +100043#include <asm/io.h>
44#include <asm/mmu_context.h>
45#include <asm/pgtable.h>
46#include <asm/mmu.h>
Paul Mackerras14cf11a2005-09-26 16:04:21 +100047#include <asm/smp.h>
48#include <asm/machdep.h>
49#include <asm/tlb.h>
Paul Mackerras14cf11a2005-09-26 16:04:21 +100050#include <asm/processor.h>
Paul Mackerras14cf11a2005-09-26 16:04:21 +100051#include <asm/cputable.h>
Paul Mackerras14cf11a2005-09-26 16:04:21 +100052#include <asm/sections.h>
Stephen Rothwell5e203d62006-09-25 13:36:31 +100053#include <asm/firmware.h>
Anton Blanchard68cf0d62014-09-17 22:15:35 +100054#include <asm/dma.h>
David Gibson800fc3e2005-11-16 15:43:48 +110055
56#include "mmu_decl.h"
Paul Mackerras14cf11a2005-09-26 16:04:21 +100057
Aneesh Kumar K.V9e813302014-08-13 12:32:04 +053058#define CREATE_TRACE_POINTS
59#include <trace/events/thp.h>
60
Aneesh Kumar K.V78f1dbd2012-09-10 02:52:57 +000061#ifdef CONFIG_PPC_STD_MMU_64
Aneesh Kumar K.Vaf81d782013-03-13 03:34:55 +000062#if TASK_SIZE_USER64 > (1UL << (ESID_BITS + SID_SHIFT))
Aneesh Kumar K.V78f1dbd2012-09-10 02:52:57 +000063#error TASK_SIZE_USER64 exceeds user VSID range
64#endif
65#endif
66
Aneesh Kumar K.V50de5962016-04-29 23:25:43 +100067#ifdef CONFIG_PPC_BOOK3S_64
68/*
69 * partition table and process table for ISA 3.0
70 */
71struct prtb_entry *process_tb;
72struct patb_entry *partition_tb;
Aneesh Kumar K.Vdd1842a2016-04-29 23:25:49 +100073/*
74 * page table size
75 */
76unsigned long __pte_index_size;
77EXPORT_SYMBOL(__pte_index_size);
78unsigned long __pmd_index_size;
79EXPORT_SYMBOL(__pmd_index_size);
80unsigned long __pud_index_size;
81EXPORT_SYMBOL(__pud_index_size);
82unsigned long __pgd_index_size;
83EXPORT_SYMBOL(__pgd_index_size);
84unsigned long __pmd_cache_index;
85EXPORT_SYMBOL(__pmd_cache_index);
86unsigned long __pte_table_size;
87EXPORT_SYMBOL(__pte_table_size);
88unsigned long __pmd_table_size;
89EXPORT_SYMBOL(__pmd_table_size);
90unsigned long __pud_table_size;
91EXPORT_SYMBOL(__pud_table_size);
92unsigned long __pgd_table_size;
93EXPORT_SYMBOL(__pgd_table_size);
94
Aneesh Kumar K.V50de5962016-04-29 23:25:43 +100095#endif
Aneesh Kumar K.V78f1dbd2012-09-10 02:52:57 +000096unsigned long ioremap_bot = IOREMAP_BASE;
Benjamin Herrenschmidta2450672009-07-23 23:15:16 +000097
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +100098/**
99 * __ioremap_at - Low level function to establish the page tables
100 * for an IO mapping
101 */
102void __iomem * __ioremap_at(phys_addr_t pa, void *ea, unsigned long size,
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000103 unsigned long flags)
104{
105 unsigned long i;
106
Benjamin Herrenschmidta1f242f2008-07-23 21:27:08 -0700107 /* Make sure we have the base flags */
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000108 if ((flags & _PAGE_PRESENT) == 0)
109 flags |= pgprot_val(PAGE_KERNEL);
110
Benjamin Herrenschmidta1f242f2008-07-23 21:27:08 -0700111 /* We don't support the 4K PFN hack with ioremap */
Aneesh Kumar K.V945537d2016-04-29 23:25:45 +1000112 if (flags & H_PAGE_4K_PFN)
Benjamin Herrenschmidta1f242f2008-07-23 21:27:08 -0700113 return NULL;
114
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000115 WARN_ON(pa & ~PAGE_MASK);
116 WARN_ON(((unsigned long)ea) & ~PAGE_MASK);
117 WARN_ON(size & ~PAGE_MASK);
118
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000119 for (i = 0; i < size; i += PAGE_SIZE)
Benjamin Herrenschmidta2450672009-07-23 23:15:16 +0000120 if (map_kernel_page((unsigned long)ea+i, pa+i, flags))
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000121 return NULL;
122
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000123 return (void __iomem *)ea;
124}
125
126/**
127 * __iounmap_from - Low level function to tear down the page tables
128 * for an IO mapping. This is used for mappings that
129 * are manipulated manually, like partial unmapping of
130 * PCI IOs or ISA space.
131 */
132void __iounmap_at(void *ea, unsigned long size)
133{
134 WARN_ON(((unsigned long)ea) & ~PAGE_MASK);
135 WARN_ON(size & ~PAGE_MASK);
136
137 unmap_kernel_range((unsigned long)ea, size);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000138}
139
Benjamin Herrenschmidt1cdab552009-02-22 16:19:14 +0000140void __iomem * __ioremap_caller(phys_addr_t addr, unsigned long size,
141 unsigned long flags, void *caller)
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000142{
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000143 phys_addr_t paligned;
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000144 void __iomem *ret;
145
146 /*
147 * Choose an address to map it to.
148 * Once the imalloc system is running, we use it.
149 * Before that, we map using addresses going
150 * up from ioremap_bot. imalloc will use
151 * the addresses from ioremap_bot through
152 * IMALLOC_END
153 *
154 */
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000155 paligned = addr & PAGE_MASK;
156 size = PAGE_ALIGN(addr + size) - paligned;
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000157
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000158 if ((size == 0) || (paligned == 0))
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000159 return NULL;
160
Michael Ellermanf691fa12015-03-30 14:10:37 +1100161 if (slab_is_available()) {
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000162 struct vm_struct *area;
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000163
Benjamin Herrenschmidt1cdab552009-02-22 16:19:14 +0000164 area = __get_vm_area_caller(size, VM_IOREMAP,
165 ioremap_bot, IOREMAP_END,
166 caller);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000167 if (area == NULL)
168 return NULL;
Michael Ellerman7a9d1252010-11-28 18:26:36 +0000169
170 area->phys_addr = paligned;
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000171 ret = __ioremap_at(paligned, area->addr, size, flags);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000172 if (!ret)
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000173 vunmap(area->addr);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000174 } else {
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000175 ret = __ioremap_at(paligned, (void *)ioremap_bot, size, flags);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000176 if (ret)
177 ioremap_bot += size;
178 }
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000179
180 if (ret)
181 ret += addr & ~PAGE_MASK;
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000182 return ret;
183}
184
Benjamin Herrenschmidt1cdab552009-02-22 16:19:14 +0000185void __iomem * __ioremap(phys_addr_t addr, unsigned long size,
186 unsigned long flags)
187{
188 return __ioremap_caller(addr, size, flags, __builtin_return_address(0));
189}
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100190
Benjamin Herrenschmidt68a64352006-11-13 09:27:39 +1100191void __iomem * ioremap(phys_addr_t addr, unsigned long size)
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100192{
Aneesh Kumar K.V72176dd2016-04-29 23:25:37 +1000193 unsigned long flags = pgprot_val(pgprot_noncached(__pgprot(0)));
Benjamin Herrenschmidt1cdab552009-02-22 16:19:14 +0000194 void *caller = __builtin_return_address(0);
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100195
196 if (ppc_md.ioremap)
Benjamin Herrenschmidt1cdab552009-02-22 16:19:14 +0000197 return ppc_md.ioremap(addr, size, flags, caller);
198 return __ioremap_caller(addr, size, flags, caller);
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100199}
200
Anton Blanchardbe135f42011-05-08 21:41:59 +0000201void __iomem * ioremap_wc(phys_addr_t addr, unsigned long size)
202{
Aneesh Kumar K.V72176dd2016-04-29 23:25:37 +1000203 unsigned long flags = pgprot_val(pgprot_noncached_wc(__pgprot(0)));
Anton Blanchardbe135f42011-05-08 21:41:59 +0000204 void *caller = __builtin_return_address(0);
205
206 if (ppc_md.ioremap)
207 return ppc_md.ioremap(addr, size, flags, caller);
208 return __ioremap_caller(addr, size, flags, caller);
209}
210
Anton Blanchard40f1ce72011-05-08 21:43:47 +0000211void __iomem * ioremap_prot(phys_addr_t addr, unsigned long size,
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100212 unsigned long flags)
213{
Benjamin Herrenschmidt1cdab552009-02-22 16:19:14 +0000214 void *caller = __builtin_return_address(0);
215
Benjamin Herrenschmidta1f242f2008-07-23 21:27:08 -0700216 /* writeable implies dirty for kernel addresses */
Aneesh Kumar K.Vc7d54842016-04-29 23:25:30 +1000217 if (flags & _PAGE_WRITE)
Benjamin Herrenschmidta1f242f2008-07-23 21:27:08 -0700218 flags |= _PAGE_DIRTY;
219
Aneesh Kumar K.Vac29c642016-04-29 23:25:34 +1000220 /* we don't want to let _PAGE_EXEC leak out */
221 flags &= ~_PAGE_EXEC;
222 /*
223 * Force kernel mapping.
224 */
225#if defined(CONFIG_PPC_BOOK3S_64)
226 flags |= _PAGE_PRIVILEGED;
227#else
228 flags &= ~_PAGE_USER;
229#endif
230
Benjamin Herrenschmidta1f242f2008-07-23 21:27:08 -0700231
Benjamin Herrenschmidt55052ee2010-04-07 14:39:36 +1000232#ifdef _PAGE_BAP_SR
233 /* _PAGE_USER contains _PAGE_BAP_SR on BookE using the new PTE format
234 * which means that we just cleared supervisor access... oops ;-) This
235 * restores it
236 */
237 flags |= _PAGE_BAP_SR;
238#endif
239
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100240 if (ppc_md.ioremap)
Benjamin Herrenschmidt1cdab552009-02-22 16:19:14 +0000241 return ppc_md.ioremap(addr, size, flags, caller);
242 return __ioremap_caller(addr, size, flags, caller);
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100243}
244
245
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000246/*
247 * Unmap an IO region and remove it from imalloc'd list.
248 * Access to IO memory should be serialized by driver.
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000249 */
Benjamin Herrenschmidt68a64352006-11-13 09:27:39 +1100250void __iounmap(volatile void __iomem *token)
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000251{
252 void *addr;
253
Michael Ellermanf691fa12015-03-30 14:10:37 +1100254 if (!slab_is_available())
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000255 return;
256
Benjamin Herrenschmidt3d5134e2007-06-04 15:15:36 +1000257 addr = (void *) ((unsigned long __force)
258 PCI_FIX_ADDR(token) & PAGE_MASK);
259 if ((unsigned long)addr < ioremap_bot) {
260 printk(KERN_WARNING "Attempt to iounmap early bolted mapping"
261 " at 0x%p\n", addr);
262 return;
263 }
264 vunmap(addr);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000265}
266
Benjamin Herrenschmidt68a64352006-11-13 09:27:39 +1100267void iounmap(volatile void __iomem *token)
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100268{
269 if (ppc_md.iounmap)
270 ppc_md.iounmap(token);
271 else
272 __iounmap(token);
273}
274
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000275EXPORT_SYMBOL(ioremap);
Anton Blanchardbe135f42011-05-08 21:41:59 +0000276EXPORT_SYMBOL(ioremap_wc);
Anton Blanchard40f1ce72011-05-08 21:43:47 +0000277EXPORT_SYMBOL(ioremap_prot);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000278EXPORT_SYMBOL(__ioremap);
Olof Johanssona302cb92007-08-31 13:58:51 +1000279EXPORT_SYMBOL(__ioremap_at);
Paul Mackerras14cf11a2005-09-26 16:04:21 +1000280EXPORT_SYMBOL(iounmap);
Benjamin Herrenschmidt4cb3cee2006-11-11 17:25:10 +1100281EXPORT_SYMBOL(__iounmap);
Olof Johanssona302cb92007-08-31 13:58:51 +1000282EXPORT_SYMBOL(__iounmap_at);
Aneesh Kumar K.V5c1f6ee2013-04-28 09:37:33 +0000283
Aneesh Kumar K.V06743522014-11-05 21:57:39 +0530284#ifndef __PAGETABLE_PUD_FOLDED
285/* 4 level page table */
286struct page *pgd_page(pgd_t pgd)
287{
288 if (pgd_huge(pgd))
289 return pte_page(pgd_pte(pgd));
290 return virt_to_page(pgd_page_vaddr(pgd));
291}
292#endif
293
294struct page *pud_page(pud_t pud)
295{
296 if (pud_huge(pud))
297 return pte_page(pud_pte(pud));
298 return virt_to_page(pud_page_vaddr(pud));
299}
300
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530301/*
302 * For hugepage we have pfn in the pmd, we use PTE_RPN_SHIFT bits for flags
303 * For PTE page, we have a PTE_FRAG_SIZE (4K) aligned virtual address.
304 */
305struct page *pmd_page(pmd_t pmd)
306{
Aneesh Kumar K.V06743522014-11-05 21:57:39 +0530307 if (pmd_trans_huge(pmd) || pmd_huge(pmd))
Aneesh Kumar K.Ve34aa032015-12-01 09:06:53 +0530308 return pte_page(pmd_pte(pmd));
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530309 return virt_to_page(pmd_page_vaddr(pmd));
310}
311
Aneesh Kumar K.V5c1f6ee2013-04-28 09:37:33 +0000312#ifdef CONFIG_PPC_64K_PAGES
313static pte_t *get_from_cache(struct mm_struct *mm)
314{
315 void *pte_frag, *ret;
316
317 spin_lock(&mm->page_table_lock);
318 ret = mm->context.pte_frag;
319 if (ret) {
320 pte_frag = ret + PTE_FRAG_SIZE;
321 /*
322 * If we have taken up all the fragments mark PTE page NULL
323 */
324 if (((unsigned long)pte_frag & ~PAGE_MASK) == 0)
325 pte_frag = NULL;
326 mm->context.pte_frag = pte_frag;
327 }
328 spin_unlock(&mm->page_table_lock);
329 return (pte_t *)ret;
330}
331
332static pte_t *__alloc_for_cache(struct mm_struct *mm, int kernel)
333{
334 void *ret = NULL;
335 struct page *page = alloc_page(GFP_KERNEL | __GFP_NOTRACK |
336 __GFP_REPEAT | __GFP_ZERO);
337 if (!page)
338 return NULL;
Kirill A. Shutemov4f8049432013-11-14 14:31:38 -0800339 if (!kernel && !pgtable_page_ctor(page)) {
340 __free_page(page);
341 return NULL;
342 }
Aneesh Kumar K.V5c1f6ee2013-04-28 09:37:33 +0000343
344 ret = page_address(page);
345 spin_lock(&mm->page_table_lock);
346 /*
347 * If we find pgtable_page set, we return
348 * the allocated page with single fragement
349 * count.
350 */
351 if (likely(!mm->context.pte_frag)) {
Joonsoo Kimfe896d12016-03-17 14:19:26 -0700352 set_page_count(page, PTE_FRAG_NR);
Aneesh Kumar K.V5c1f6ee2013-04-28 09:37:33 +0000353 mm->context.pte_frag = ret + PTE_FRAG_SIZE;
354 }
355 spin_unlock(&mm->page_table_lock);
356
Aneesh Kumar K.V5c1f6ee2013-04-28 09:37:33 +0000357 return (pte_t *)ret;
358}
359
360pte_t *page_table_alloc(struct mm_struct *mm, unsigned long vmaddr, int kernel)
361{
362 pte_t *pte;
363
364 pte = get_from_cache(mm);
365 if (pte)
366 return pte;
367
368 return __alloc_for_cache(mm, kernel);
369}
370
371void page_table_free(struct mm_struct *mm, unsigned long *table, int kernel)
372{
373 struct page *page = virt_to_page(table);
374 if (put_page_testzero(page)) {
375 if (!kernel)
376 pgtable_page_dtor(page);
377 free_hot_cold_page(page, 0);
378 }
379}
380
381#ifdef CONFIG_SMP
382static void page_table_free_rcu(void *table)
383{
384 struct page *page = virt_to_page(table);
385 if (put_page_testzero(page)) {
386 pgtable_page_dtor(page);
387 free_hot_cold_page(page, 0);
388 }
389}
390
391void pgtable_free_tlb(struct mmu_gather *tlb, void *table, int shift)
392{
393 unsigned long pgf = (unsigned long)table;
394
395 BUG_ON(shift > MAX_PGTABLE_INDEX_SIZE);
396 pgf |= shift;
397 tlb_remove_table(tlb, (void *)pgf);
398}
399
400void __tlb_remove_table(void *_table)
401{
402 void *table = (void *)((unsigned long)_table & ~MAX_PGTABLE_INDEX_SIZE);
403 unsigned shift = (unsigned long)_table & MAX_PGTABLE_INDEX_SIZE;
404
405 if (!shift)
406 /* PTE page needs special handling */
407 page_table_free_rcu(table);
408 else {
409 BUG_ON(shift > MAX_PGTABLE_INDEX_SIZE);
410 kmem_cache_free(PGT_CACHE(shift), table);
411 }
412}
413#else
414void pgtable_free_tlb(struct mmu_gather *tlb, void *table, int shift)
415{
416 if (!shift) {
417 /* PTE page needs special handling */
418 struct page *page = virt_to_page(table);
419 if (put_page_testzero(page)) {
420 pgtable_page_dtor(page);
421 free_hot_cold_page(page, 0);
422 }
423 } else {
424 BUG_ON(shift > MAX_PGTABLE_INDEX_SIZE);
425 kmem_cache_free(PGT_CACHE(shift), table);
426 }
427}
428#endif
429#endif /* CONFIG_PPC_64K_PAGES */
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530430
431#ifdef CONFIG_TRANSPARENT_HUGEPAGE
432
433/*
434 * This is called when relaxing access to a hugepage. It's also called in the page
435 * fault path when we don't hit any of the major fault cases, ie, a minor
436 * update of _PAGE_ACCESSED, _PAGE_DIRTY, etc... The generic code will have
437 * handled those two for us, we additionally deal with missing execute
438 * permission here on some processors
439 */
440int pmdp_set_access_flags(struct vm_area_struct *vma, unsigned long address,
441 pmd_t *pmdp, pmd_t entry, int dirty)
442{
443 int changed;
444#ifdef CONFIG_DEBUG_VM
445 WARN_ON(!pmd_trans_huge(*pmdp));
446 assert_spin_locked(&vma->vm_mm->page_table_lock);
447#endif
448 changed = !pmd_same(*(pmdp), entry);
449 if (changed) {
450 __ptep_set_access_flags(pmdp_ptep(pmdp), pmd_pte(entry));
451 /*
452 * Since we are not supporting SW TLB systems, we don't
453 * have any thing similar to flush_tlb_page_nohash()
454 */
455 }
456 return changed;
457}
458
459unsigned long pmd_hugepage_update(struct mm_struct *mm, unsigned long addr,
Aneesh Kumar K.V88247e82014-02-12 09:13:36 +0530460 pmd_t *pmdp, unsigned long clr,
461 unsigned long set)
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530462{
463
Aneesh Kumar K.V5dc1ef82016-04-29 23:25:28 +1000464 __be64 old_be, tmp;
465 unsigned long old;
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530466
467#ifdef CONFIG_DEBUG_VM
468 WARN_ON(!pmd_trans_huge(*pmdp));
469 assert_spin_locked(&mm->page_table_lock);
470#endif
471
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530472 __asm__ __volatile__(
473 "1: ldarx %0,0,%3\n\
Aneesh Kumar K.V5dc1ef82016-04-29 23:25:28 +1000474 and. %1,%0,%6\n\
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530475 bne- 1b \n\
476 andc %1,%0,%4 \n\
Aneesh Kumar K.V88247e82014-02-12 09:13:36 +0530477 or %1,%1,%7\n\
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530478 stdcx. %1,0,%3 \n\
479 bne- 1b"
Aneesh Kumar K.V5dc1ef82016-04-29 23:25:28 +1000480 : "=&r" (old_be), "=&r" (tmp), "=m" (*pmdp)
481 : "r" (pmdp), "r" (cpu_to_be64(clr)), "m" (*pmdp),
Aneesh Kumar K.V945537d2016-04-29 23:25:45 +1000482 "r" (cpu_to_be64(H_PAGE_BUSY)), "r" (cpu_to_be64(set))
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530483 : "cc" );
Aneesh Kumar K.V4bece392016-04-29 23:25:26 +1000484
Aneesh Kumar K.V5dc1ef82016-04-29 23:25:28 +1000485 old = be64_to_cpu(old_be);
486
Aneesh Kumar K.V9e813302014-08-13 12:32:04 +0530487 trace_hugepage_update(addr, old, clr, set);
Aneesh Kumar K.V945537d2016-04-29 23:25:45 +1000488 if (old & H_PAGE_HASHPTE)
Aneesh Kumar K.Vfc047952014-08-13 12:32:00 +0530489 hpte_do_hugepage_flush(mm, addr, pmdp, old);
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530490 return old;
491}
492
Aneesh Kumar K.V15a25b22015-06-24 16:57:39 -0700493pmd_t pmdp_collapse_flush(struct vm_area_struct *vma, unsigned long address,
494 pmd_t *pmdp)
495{
496 pmd_t pmd;
497
498 VM_BUG_ON(address & ~HPAGE_PMD_MASK);
499 VM_BUG_ON(pmd_trans_huge(*pmdp));
500
501 pmd = *pmdp;
502 pmd_clear(pmdp);
503 /*
504 * Wait for all pending hash_page to finish. This is needed
505 * in case of subpage collapse. When we collapse normal pages
506 * to hugepage, we first clear the pmd, then invalidate all
507 * the PTE entries. The assumption here is that any low level
508 * page fault will see a none pmd and take the slow path that
509 * will wait on mmap_sem. But we could very well be in a
510 * hash_page with local ptep pointer value. Such a hash page
511 * can result in adding new HPTE entries for normal subpages.
512 * That means we could be modifying the page content as we
513 * copy them to a huge page. So wait for parallel hash_page
514 * to finish before invalidating HPTE entries. We can do this
515 * by sending an IPI to all the cpus and executing a dummy
516 * function there.
517 */
518 kick_all_cpus_sync();
519 /*
520 * Now invalidate the hpte entries in the range
521 * covered by pmd. This make sure we take a
522 * fault and will find the pmd as none, which will
523 * result in a major fault which takes mmap_sem and
524 * hence wait for collapse to complete. Without this
525 * the __collapse_huge_page_copy can result in copying
526 * the old content.
527 */
528 flush_tlb_pmd_range(vma->vm_mm, &pmd, address);
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530529 return pmd;
530}
531
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530532/*
533 * We currently remove entries from the hashtable regardless of whether
Aneesh Kumar K.Vff844b72016-04-29 23:25:39 +1000534 * the entry was young or dirty.
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530535 *
536 * We should be more intelligent about this but for the moment we override
537 * these functions and force a tlb flush unconditionally
538 */
Aneesh Kumar K.Vff844b72016-04-29 23:25:39 +1000539int pmdp_test_and_clear_young(struct vm_area_struct *vma,
540 unsigned long address, pmd_t *pmdp)
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530541{
542 return __pmdp_test_and_clear_young(vma->vm_mm, address, pmdp);
543}
544
545/*
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530546 * We want to put the pgtable in pmd and use pgtable for tracking
547 * the base page size hptes
548 */
549void pgtable_trans_huge_deposit(struct mm_struct *mm, pmd_t *pmdp,
550 pgtable_t pgtable)
551{
552 pgtable_t *pgtable_slot;
553 assert_spin_locked(&mm->page_table_lock);
554 /*
555 * we store the pgtable in the second half of PMD
556 */
557 pgtable_slot = (pgtable_t *)pmdp + PTRS_PER_PMD;
558 *pgtable_slot = pgtable;
559 /*
560 * expose the deposited pgtable to other cpus.
561 * before we set the hugepage PTE at pmd level
562 * hash fault code looks at the deposted pgtable
563 * to store hash index values.
564 */
565 smp_wmb();
566}
567
568pgtable_t pgtable_trans_huge_withdraw(struct mm_struct *mm, pmd_t *pmdp)
569{
570 pgtable_t pgtable;
571 pgtable_t *pgtable_slot;
572
573 assert_spin_locked(&mm->page_table_lock);
574 pgtable_slot = (pgtable_t *)pmdp + PTRS_PER_PMD;
575 pgtable = *pgtable_slot;
576 /*
577 * Once we withdraw, mark the entry NULL.
578 */
579 *pgtable_slot = NULL;
580 /*
581 * We store HPTE information in the deposited PTE fragment.
582 * zero out the content on withdraw.
583 */
584 memset(pgtable, 0, PTE_FRAG_SIZE);
585 return pgtable;
586}
587
Aneesh Kumar K.Vc777e2a2016-02-09 06:50:31 +0530588void pmdp_huge_split_prepare(struct vm_area_struct *vma,
589 unsigned long address, pmd_t *pmdp)
590{
591 VM_BUG_ON(address & ~HPAGE_PMD_MASK);
592 VM_BUG_ON(REGION_ID(address) != USER_REGION_ID);
593
594 /*
595 * We can't mark the pmd none here, because that will cause a race
596 * against exit_mmap. We need to continue mark pmd TRANS HUGE, while
597 * we spilt, but at the same time we wan't rest of the ppc64 code
598 * not to insert hash pte on this, because we will be modifying
599 * the deposited pgtable in the caller of this function. Hence
600 * clear the _PAGE_USER so that we move the fault handling to
601 * higher level function and that will serialize against ptl.
602 * We need to flush existing hash pte entries here even though,
603 * the translation is still valid, because we will withdraw
604 * pgtable_t after this.
605 */
Aneesh Kumar K.Vac29c642016-04-29 23:25:34 +1000606 pmd_hugepage_update(vma->vm_mm, address, pmdp, 0, _PAGE_PRIVILEGED);
Aneesh Kumar K.Vc777e2a2016-02-09 06:50:31 +0530607}
608
609
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530610/*
611 * set a new huge pmd. We should not be called for updating
612 * an existing pmd entry. That should go via pmd_hugepage_update.
613 */
614void set_pmd_at(struct mm_struct *mm, unsigned long addr,
615 pmd_t *pmdp, pmd_t pmd)
616{
617#ifdef CONFIG_DEBUG_VM
Aneesh Kumar K.Vc7d54842016-04-29 23:25:30 +1000618 WARN_ON(pte_present(pmd_pte(*pmdp)) && !pte_protnone(pmd_pte(*pmdp)));
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530619 assert_spin_locked(&mm->page_table_lock);
620 WARN_ON(!pmd_trans_huge(pmd));
621#endif
Michael Ellerman4f9c53c2015-03-25 20:11:57 +1100622 trace_hugepage_set_pmd(addr, pmd_val(pmd));
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530623 return set_pte_at(mm, addr, pmdp_ptep(pmdp), pmd_pte(pmd));
624}
625
Aneesh Kumar K.Vc777e2a2016-02-09 06:50:31 +0530626/*
627 * We use this to invalidate a pmdp entry before switching from a
628 * hugepte to regular pmd entry.
629 */
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530630void pmdp_invalidate(struct vm_area_struct *vma, unsigned long address,
631 pmd_t *pmdp)
632{
Aneesh Kumar K.V88247e82014-02-12 09:13:36 +0530633 pmd_hugepage_update(vma->vm_mm, address, pmdp, _PAGE_PRESENT, 0);
Aneesh Kumar K.Vc777e2a2016-02-09 06:50:31 +0530634
635 /*
636 * This ensures that generic code that rely on IRQ disabling
637 * to prevent a parallel THP split work as expected.
638 */
639 kick_all_cpus_sync();
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530640}
641
642/*
643 * A linux hugepage PMD was changed and the corresponding hash table entries
644 * neesd to be flushed.
645 */
646void hpte_do_hugepage_flush(struct mm_struct *mm, unsigned long addr,
Aneesh Kumar K.Vfc047952014-08-13 12:32:00 +0530647 pmd_t *pmdp, unsigned long old_pmd)
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530648{
Aneesh Kumar K.Vaefa5682014-12-04 11:00:14 +0530649 int ssize;
Aneesh Kumar K.Vf1581bf2014-11-02 21:15:27 +0530650 unsigned int psize;
651 unsigned long vsid;
Aneesh Kumar K.Vaefa5682014-12-04 11:00:14 +0530652 unsigned long flags = 0;
Aneesh Kumar K.Vd557b092014-11-02 21:15:28 +0530653 const struct cpumask *tmp;
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530654
Aneesh Kumar K.Vfa1f8ae2014-08-13 12:31:58 +0530655 /* get the base page size,vsid and segment size */
Aneesh Kumar K.Vfc047952014-08-13 12:32:00 +0530656#ifdef CONFIG_DEBUG_VM
Aneesh Kumar K.Vf1581bf2014-11-02 21:15:27 +0530657 psize = get_slice_psize(mm, addr);
Aneesh Kumar K.Vfc047952014-08-13 12:32:00 +0530658 BUG_ON(psize == MMU_PAGE_16M);
659#endif
Aneesh Kumar K.V945537d2016-04-29 23:25:45 +1000660 if (old_pmd & H_PAGE_COMBO)
Aneesh Kumar K.Vfc047952014-08-13 12:32:00 +0530661 psize = MMU_PAGE_4K;
662 else
663 psize = MMU_PAGE_64K;
664
Aneesh Kumar K.Vf1581bf2014-11-02 21:15:27 +0530665 if (!is_kernel_addr(addr)) {
666 ssize = user_segment_size(addr);
667 vsid = get_vsid(mm->context.id, addr, ssize);
Aneesh Kumar K.Vfa1f8ae2014-08-13 12:31:58 +0530668 WARN_ON(vsid == 0);
669 } else {
Aneesh Kumar K.Vf1581bf2014-11-02 21:15:27 +0530670 vsid = get_kernel_vsid(addr, mmu_kernel_ssize);
Aneesh Kumar K.Vfa1f8ae2014-08-13 12:31:58 +0530671 ssize = mmu_kernel_ssize;
672 }
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530673
Aneesh Kumar K.Vd557b092014-11-02 21:15:28 +0530674 tmp = cpumask_of(smp_processor_id());
675 if (cpumask_equal(mm_cpumask(mm), tmp))
Aneesh Kumar K.Vaefa5682014-12-04 11:00:14 +0530676 flags |= HPTE_LOCAL_UPDATE;
Aneesh Kumar K.Vd557b092014-11-02 21:15:28 +0530677
Aneesh Kumar K.Vaefa5682014-12-04 11:00:14 +0530678 return flush_hash_hugepage(vsid, addr, pmdp, psize, ssize, flags);
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530679}
680
681static pmd_t pmd_set_protbits(pmd_t pmd, pgprot_t pgprot)
682{
Aneesh Kumar K.Vf281b5d2015-12-01 09:06:35 +0530683 return __pmd(pmd_val(pmd) | pgprot_val(pgprot));
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530684}
685
686pmd_t pfn_pmd(unsigned long pfn, pgprot_t pgprot)
687{
Aneesh Kumar K.Vf281b5d2015-12-01 09:06:35 +0530688 unsigned long pmdv;
Aneesh Kumar K.V6a119ea2015-12-01 09:06:54 +0530689
Aneesh Kumar K.V96270b12016-04-29 23:25:35 +1000690 pmdv = (pfn << PAGE_SHIFT) & PTE_RPN_MASK;
Aneesh Kumar K.Vf281b5d2015-12-01 09:06:35 +0530691 return pmd_set_protbits(__pmd(pmdv), pgprot);
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530692}
693
694pmd_t mk_pmd(struct page *page, pgprot_t pgprot)
695{
696 return pfn_pmd(page_to_pfn(page), pgprot);
697}
698
699pmd_t pmd_modify(pmd_t pmd, pgprot_t newprot)
700{
Aneesh Kumar K.Vf281b5d2015-12-01 09:06:35 +0530701 unsigned long pmdv;
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530702
Aneesh Kumar K.Vf281b5d2015-12-01 09:06:35 +0530703 pmdv = pmd_val(pmd);
704 pmdv &= _HPAGE_CHG_MASK;
705 return pmd_set_protbits(__pmd(pmdv), newprot);
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530706}
707
708/*
709 * This is called at the end of handling a user page fault, when the
710 * fault has been handled by updating a HUGE PMD entry in the linux page tables.
711 * We use it to preload an HPTE into the hash table corresponding to
712 * the updated linux HUGE PMD entry.
713 */
714void update_mmu_cache_pmd(struct vm_area_struct *vma, unsigned long addr,
715 pmd_t *pmd)
716{
717 return;
718}
719
Aneesh Kumar K.V8809aa22015-06-24 16:57:44 -0700720pmd_t pmdp_huge_get_and_clear(struct mm_struct *mm,
721 unsigned long addr, pmd_t *pmdp)
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530722{
723 pmd_t old_pmd;
724 pgtable_t pgtable;
725 unsigned long old;
726 pgtable_t *pgtable_slot;
727
Aneesh Kumar K.V88247e82014-02-12 09:13:36 +0530728 old = pmd_hugepage_update(mm, addr, pmdp, ~0UL, 0);
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530729 old_pmd = __pmd(old);
730 /*
731 * We have pmd == none and we are holding page_table_lock.
732 * So we can safely go and clear the pgtable hash
733 * index info.
734 */
735 pgtable_slot = (pgtable_t *)pmdp + PTRS_PER_PMD;
736 pgtable = *pgtable_slot;
737 /*
738 * Let's zero out old valid and hash index details
739 * hash fault look at them.
740 */
741 memset(pgtable, 0, PTE_FRAG_SIZE);
Aneesh Kumar K.V13bd8172015-05-11 11:56:01 +0530742 /*
743 * Serialize against find_linux_pte_or_hugepte which does lock-less
744 * lookup in page tables with local interrupts disabled. For huge pages
745 * it casts pmd_t to pte_t. Since format of pte_t is different from
746 * pmd_t we want to prevent transit from pmd pointing to page table
747 * to pmd pointing to huge page (and back) while interrupts are disabled.
748 * We clear pmd to possibly replace it with page table pointer in
749 * different code paths. So make sure we wait for the parallel
750 * find_linux_pte_or_hugepage to finish.
751 */
752 kick_all_cpus_sync();
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530753 return old_pmd;
754}
Aneesh Kumar K.V437d4962013-06-20 14:30:26 +0530755
756int has_transparent_hugepage(void)
757{
Kirill A. Shutemovff20c2e2016-03-01 09:45:14 +0530758
Aneesh Kumar K.V437d4962013-06-20 14:30:26 +0530759 if (!mmu_has_feature(MMU_FTR_16M_PAGE))
760 return 0;
761 /*
762 * We support THP only if PMD_SIZE is 16MB.
763 */
764 if (mmu_psize_defs[MMU_PAGE_16M].shift != PMD_SHIFT)
765 return 0;
766 /*
767 * We need to make sure that we support 16MB hugepage in a segement
768 * with base page size 64K or 4K. We only enable THP with a PAGE_SIZE
769 * of 64K.
770 */
771 /*
772 * If we have 64K HPTE, we will be using that by default
773 */
774 if (mmu_psize_defs[MMU_PAGE_64K].shift &&
775 (mmu_psize_defs[MMU_PAGE_64K].penc[MMU_PAGE_16M] == -1))
776 return 0;
777 /*
778 * Ok we only have 4K HPTE
779 */
780 if (mmu_psize_defs[MMU_PAGE_4K].penc[MMU_PAGE_16M] == -1)
781 return 0;
782
783 return 1;
784}
Aneesh Kumar K.V074c2ea2013-06-20 14:30:15 +0530785#endif /* CONFIG_TRANSPARENT_HUGEPAGE */