1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright 2002 Andi Kleen, SuSE Labs.
4 * Thanks to Ben LaHaise for precious feedback.
5 */
6 #include <linux/highmem.h>
7 #include <linux/memblock.h>
8 #include <linux/sched.h>
9 #include <linux/mm.h>
10 #include <linux/interrupt.h>
11 #include <linux/seq_file.h>
12 #include <linux/proc_fs.h>
13 #include <linux/debugfs.h>
14 #include <linux/pfn.h>
15 #include <linux/percpu.h>
16 #include <linux/gfp.h>
17 #include <linux/pci.h>
18 #include <linux/vmalloc.h>
19 #include <linux/libnvdimm.h>
20 #include <linux/vmstat.h>
21 #include <linux/kernel.h>
22 #include <linux/cc_platform.h>
23 #include <linux/set_memory.h>
24 #include <linux/memregion.h>
25 #include <linux/cleanup.h>
26
27 #include <asm/e820/api.h>
28 #include <asm/processor.h>
29 #include <asm/tlbflush.h>
30 #include <asm/sections.h>
31 #include <asm/setup.h>
32 #include <linux/uaccess.h>
33 #include <asm/pgalloc.h>
34 #include <asm/proto.h>
35 #include <asm/memtype.h>
36
37 #include "../mm_internal.h"
38
39 /*
40 * The current flushing context - we pass it instead of 5 arguments:
41 */
42 struct cpa_data {
43 unsigned long *vaddr;
44 pgd_t *pgd;
45 pgprot_t mask_set;
46 pgprot_t mask_clr;
47 unsigned long numpages;
48 unsigned long curpage;
49 unsigned long pfn;
50 unsigned int flags;
51 unsigned int force_split : 1,
52 force_static_prot : 1,
53 force_flush_all : 1,
54 init_mm_read_locked : 1;
55 struct page **pages;
56 };
57
58 enum cpa_warn {
59 CPA_CONFLICT,
60 CPA_PROTECT,
61 CPA_DETECT,
62 };
63
64 static const int cpa_warn_level = CPA_PROTECT;
65
66 /*
67 * Serialize cpa() using cpa_lock so that we don't allow any other cpu, with
68 * stale large tlb entries, to change the page attribute in parallel to some
69 * other cpu splitting a large page entry along with changing the attribute.
70 */
71 static DEFINE_SPINLOCK(cpa_lock);
72
73 #define CPA_FLUSHTLB 0x01
74 #define CPA_ARRAY 0x02
75 #define CPA_PAGES_ARRAY 0x04
76 #define CPA_NO_CHECK_ALIAS 0x08 /* Do not search for aliases */
77 #define CPA_COLLAPSE 0x10 /* try to collapse large pages */
78 #define CPA_DEBUG_PAGEALLOC 0x20
79
cachemode2pgprot(enum page_cache_mode pcm)80 static inline pgprot_t cachemode2pgprot(enum page_cache_mode pcm)
81 {
82 return __pgprot(cachemode2protval(pcm));
83 }
84
85 #ifdef CONFIG_PROC_FS
86 static unsigned long direct_pages_count[PG_LEVEL_NUM];
87
update_page_count(int level,unsigned long pages)88 void update_page_count(int level, unsigned long pages)
89 {
90 /* Protect against CPA */
91 guard(spinlock)(&pgd_lock);
92 direct_pages_count[level] += pages;
93 }
94
split_page_count(int level)95 static void split_page_count(int level)
96 {
97 if (direct_pages_count[level] == 0)
98 return;
99
100 direct_pages_count[level]--;
101 if (system_state == SYSTEM_RUNNING) {
102 if (level == PG_LEVEL_2M)
103 count_vm_event(DIRECT_MAP_LEVEL2_SPLIT);
104 else if (level == PG_LEVEL_1G)
105 count_vm_event(DIRECT_MAP_LEVEL3_SPLIT);
106 }
107 direct_pages_count[level - 1] += PTRS_PER_PTE;
108 }
109
collapse_page_count(int level)110 static void collapse_page_count(int level)
111 {
112 direct_pages_count[level]++;
113 if (system_state == SYSTEM_RUNNING) {
114 if (level == PG_LEVEL_2M)
115 count_vm_event(DIRECT_MAP_LEVEL2_COLLAPSE);
116 else if (level == PG_LEVEL_1G)
117 count_vm_event(DIRECT_MAP_LEVEL3_COLLAPSE);
118 }
119 direct_pages_count[level - 1] -= PTRS_PER_PTE;
120 }
121
arch_report_meminfo(struct seq_file * m)122 void arch_report_meminfo(struct seq_file *m)
123 {
124 seq_printf(m, "DirectMap4k: %8lu kB\n",
125 direct_pages_count[PG_LEVEL_4K] << 2);
126 #if defined(CONFIG_X86_64) || defined(CONFIG_X86_PAE)
127 seq_printf(m, "DirectMap2M: %8lu kB\n",
128 direct_pages_count[PG_LEVEL_2M] << 11);
129 #else
130 seq_printf(m, "DirectMap4M: %8lu kB\n",
131 direct_pages_count[PG_LEVEL_2M] << 12);
132 #endif
133 if (direct_gbpages)
134 seq_printf(m, "DirectMap1G: %8lu kB\n",
135 direct_pages_count[PG_LEVEL_1G] << 20);
136 }
137 #else
split_page_count(int level)138 static inline void split_page_count(int level) { }
collapse_page_count(int level)139 static inline void collapse_page_count(int level) { }
140 #endif
141
142 #ifdef CONFIG_X86_CPA_STATISTICS
143
144 static unsigned long cpa_1g_checked;
145 static unsigned long cpa_1g_sameprot;
146 static unsigned long cpa_1g_preserved;
147 static unsigned long cpa_2m_checked;
148 static unsigned long cpa_2m_sameprot;
149 static unsigned long cpa_2m_preserved;
150 static unsigned long cpa_4k_install;
151
cpa_inc_1g_checked(void)152 static inline void cpa_inc_1g_checked(void)
153 {
154 cpa_1g_checked++;
155 }
156
cpa_inc_2m_checked(void)157 static inline void cpa_inc_2m_checked(void)
158 {
159 cpa_2m_checked++;
160 }
161
cpa_inc_4k_install(void)162 static inline void cpa_inc_4k_install(void)
163 {
164 data_race(cpa_4k_install++);
165 }
166
cpa_inc_lp_sameprot(int level)167 static inline void cpa_inc_lp_sameprot(int level)
168 {
169 if (level == PG_LEVEL_1G)
170 cpa_1g_sameprot++;
171 else
172 cpa_2m_sameprot++;
173 }
174
cpa_inc_lp_preserved(int level)175 static inline void cpa_inc_lp_preserved(int level)
176 {
177 if (level == PG_LEVEL_1G)
178 cpa_1g_preserved++;
179 else
180 cpa_2m_preserved++;
181 }
182
cpastats_show(struct seq_file * m,void * p)183 static int cpastats_show(struct seq_file *m, void *p)
184 {
185 seq_printf(m, "1G pages checked: %16lu\n", cpa_1g_checked);
186 seq_printf(m, "1G pages sameprot: %16lu\n", cpa_1g_sameprot);
187 seq_printf(m, "1G pages preserved: %16lu\n", cpa_1g_preserved);
188 seq_printf(m, "2M pages checked: %16lu\n", cpa_2m_checked);
189 seq_printf(m, "2M pages sameprot: %16lu\n", cpa_2m_sameprot);
190 seq_printf(m, "2M pages preserved: %16lu\n", cpa_2m_preserved);
191 seq_printf(m, "4K pages set-checked: %16lu\n", cpa_4k_install);
192 return 0;
193 }
194
cpastats_open(struct inode * inode,struct file * file)195 static int cpastats_open(struct inode *inode, struct file *file)
196 {
197 return single_open(file, cpastats_show, NULL);
198 }
199
200 static const struct file_operations cpastats_fops = {
201 .open = cpastats_open,
202 .read = seq_read,
203 .llseek = seq_lseek,
204 .release = single_release,
205 };
206
cpa_stats_init(void)207 static int __init cpa_stats_init(void)
208 {
209 debugfs_create_file("cpa_stats", S_IRUSR, arch_debugfs_dir, NULL,
210 &cpastats_fops);
211 return 0;
212 }
213 late_initcall(cpa_stats_init);
214 #else
cpa_inc_1g_checked(void)215 static inline void cpa_inc_1g_checked(void) { }
cpa_inc_2m_checked(void)216 static inline void cpa_inc_2m_checked(void) { }
cpa_inc_4k_install(void)217 static inline void cpa_inc_4k_install(void) { }
cpa_inc_lp_sameprot(int level)218 static inline void cpa_inc_lp_sameprot(int level) { }
cpa_inc_lp_preserved(int level)219 static inline void cpa_inc_lp_preserved(int level) { }
220 #endif
221
222
223 static inline int
within(unsigned long addr,unsigned long start,unsigned long end)224 within(unsigned long addr, unsigned long start, unsigned long end)
225 {
226 return addr >= start && addr < end;
227 }
228
229 #ifdef CONFIG_X86_64
230
231 static inline int
within_inclusive(unsigned long addr,unsigned long start,unsigned long end)232 within_inclusive(unsigned long addr, unsigned long start, unsigned long end)
233 {
234 return addr >= start && addr <= end;
235 }
236
237 /*
238 * The kernel image is mapped into two places in the virtual address space
239 * (addresses without KASLR, of course):
240 *
241 * 1. The kernel direct map (0xffff880000000000)
242 * 2. The "high kernel map" (0xffffffff81000000)
243 *
244 * We actually execute out of #2. If we get the address of a kernel symbol, it
245 * points to #2, but almost all physical-to-virtual translations point to #1.
246 *
247 * This is so that we can have both a directmap of all physical memory *and*
248 * take full advantage of the limited (s32) immediate addressing range (2G)
249 * of x86_64.
250 *
251 * See Documentation/arch/x86/x86_64/mm.rst for more detail.
252 */
253
highmap_start_pfn(void)254 static inline unsigned long highmap_start_pfn(void)
255 {
256 return __pa_symbol(_text) >> PAGE_SHIFT;
257 }
258
highmap_end_pfn(void)259 static inline unsigned long highmap_end_pfn(void)
260 {
261 /* Do not reference physical address outside the kernel. */
262 return __pa_symbol(roundup(_brk_end, PMD_SIZE) - 1) >> PAGE_SHIFT;
263 }
264
__cpa_pfn_in_highmap(unsigned long pfn)265 static bool __cpa_pfn_in_highmap(unsigned long pfn)
266 {
267 /*
268 * Kernel text has an alias mapping at a high address, known
269 * here as "highmap".
270 */
271 return within_inclusive(pfn, highmap_start_pfn(), highmap_end_pfn());
272 }
273
274 #else
275
__cpa_pfn_in_highmap(unsigned long pfn)276 static bool __cpa_pfn_in_highmap(unsigned long pfn)
277 {
278 /* There is no highmap on 32-bit */
279 return false;
280 }
281
282 #endif
283
284 /*
285 * See set_mce_nospec().
286 *
287 * Machine check recovery code needs to change cache mode of poisoned pages to
288 * UC to avoid speculative access logging another error. But passing the
289 * address of the 1:1 mapping to set_memory_uc() is a fine way to encourage a
290 * speculative access. So we cheat and flip the top bit of the address. This
291 * works fine for the code that updates the page tables. But at the end of the
292 * process we need to flush the TLB and cache and the non-canonical address
293 * causes a #GP fault when used by the INVLPG and CLFLUSH instructions.
294 *
295 * But in the common case we already have a canonical address. This code
296 * will fix the top bit if needed and is a no-op otherwise.
297 */
fix_addr(unsigned long addr)298 static inline unsigned long fix_addr(unsigned long addr)
299 {
300 #ifdef CONFIG_X86_64
301 return (long)(addr << 1) >> 1;
302 #else
303 return addr;
304 #endif
305 }
306
__cpa_addr(struct cpa_data * cpa,unsigned long idx)307 static unsigned long __cpa_addr(struct cpa_data *cpa, unsigned long idx)
308 {
309 if (cpa->flags & CPA_PAGES_ARRAY) {
310 struct page *page = cpa->pages[idx];
311
312 if (unlikely(PageHighMem(page)))
313 return 0;
314
315 return (unsigned long)page_address(page);
316 }
317
318 if (cpa->flags & CPA_ARRAY)
319 return cpa->vaddr[idx];
320
321 return *cpa->vaddr + idx * PAGE_SIZE;
322 }
323
324 /*
325 * Flushing functions
326 */
327
clflush_cache_range_opt(void * vaddr,unsigned int size)328 static void clflush_cache_range_opt(void *vaddr, unsigned int size)
329 {
330 const unsigned long clflush_size = boot_cpu_data.x86_clflush_size;
331 void *p = (void *)((unsigned long)vaddr & ~(clflush_size - 1));
332 void *vend = vaddr + size;
333
334 if (p >= vend)
335 return;
336
337 for (; p < vend; p += clflush_size)
338 clflushopt(p);
339 }
340
341 /**
342 * clflush_cache_range - flush a cache range with clflush
343 * @vaddr: virtual start address
344 * @size: number of bytes to flush
345 *
346 * CLFLUSHOPT is an unordered instruction which needs fencing with MFENCE or
347 * SFENCE to avoid ordering issues.
348 */
clflush_cache_range(void * vaddr,unsigned int size)349 void clflush_cache_range(void *vaddr, unsigned int size)
350 {
351 mb();
352 clflush_cache_range_opt(vaddr, size);
353 mb();
354 }
355 EXPORT_SYMBOL_GPL(clflush_cache_range);
356
357 #ifdef CONFIG_ARCH_HAS_PMEM_API
arch_invalidate_pmem(void * addr,size_t size)358 void arch_invalidate_pmem(void *addr, size_t size)
359 {
360 clflush_cache_range(addr, size);
361 }
362 EXPORT_SYMBOL_GPL(arch_invalidate_pmem);
363 #endif
364
365 #ifdef CONFIG_ARCH_HAS_CPU_CACHE_INVALIDATE_MEMREGION
cpu_cache_has_invalidate_memregion(void)366 bool cpu_cache_has_invalidate_memregion(void)
367 {
368 return !cpu_feature_enabled(X86_FEATURE_HYPERVISOR);
369 }
370 EXPORT_SYMBOL_NS_GPL(cpu_cache_has_invalidate_memregion, "DEVMEM");
371
cpu_cache_invalidate_memregion(phys_addr_t start,size_t len)372 int cpu_cache_invalidate_memregion(phys_addr_t start, size_t len)
373 {
374 if (WARN_ON_ONCE(!cpu_cache_has_invalidate_memregion()))
375 return -ENXIO;
376 wbinvd_on_all_cpus();
377 return 0;
378 }
379 EXPORT_SYMBOL_NS_GPL(cpu_cache_invalidate_memregion, "DEVMEM");
380 #endif
381
__cpa_flush_all(void * arg)382 static void __cpa_flush_all(void *arg)
383 {
384 unsigned long cache = (unsigned long)arg;
385
386 /*
387 * Flush all to work around Errata in early athlons regarding
388 * large page flushing.
389 */
390 __flush_tlb_all();
391
392 if (cache && boot_cpu_data.x86 >= 4)
393 wbinvd();
394 }
395
cpa_flush_all(unsigned long cache)396 static void cpa_flush_all(unsigned long cache)
397 {
398 BUG_ON(irqs_disabled() && !early_boot_irqs_disabled);
399
400 on_each_cpu(__cpa_flush_all, (void *) cache, 1);
401 }
402
__cpa_flush_tlb(void * data)403 static void __cpa_flush_tlb(void *data)
404 {
405 struct cpa_data *cpa = data;
406 unsigned int i;
407
408 for (i = 0; i < cpa->numpages; i++)
409 flush_tlb_one_kernel(fix_addr(__cpa_addr(cpa, i)));
410 }
411
412 static int collapse_large_pages(unsigned long addr, struct list_head *pgtables);
413
__cpa_collapse_large_pages(struct cpa_data * cpa)414 static void __cpa_collapse_large_pages(struct cpa_data *cpa)
415 {
416 unsigned long start, addr, end;
417 struct ptdesc *ptdesc, *tmp;
418 LIST_HEAD(pgtables);
419 int collapsed = 0;
420 int i;
421
422 guard(spinlock)(&cpa_lock);
423
424 if (cpa->flags & (CPA_PAGES_ARRAY | CPA_ARRAY)) {
425 for (i = 0; i < cpa->numpages; i++)
426 collapsed += collapse_large_pages(__cpa_addr(cpa, i),
427 &pgtables);
428 } else {
429 addr = __cpa_addr(cpa, 0);
430 start = addr & PMD_MASK;
431 end = addr + PAGE_SIZE * cpa->numpages;
432
433 for (addr = start; within(addr, start, end); addr += PMD_SIZE)
434 collapsed += collapse_large_pages(addr, &pgtables);
435 }
436
437 if (!collapsed)
438 return;
439
440 flush_tlb_all();
441
442 list_for_each_entry_safe(ptdesc, tmp, &pgtables, pt_list) {
443 list_del(&ptdesc->pt_list);
444 /*
445 * Only early alloc'd direct map should not be flagged PG_table
446 * here and those shouldn't be collapsed. However be abundantly
447 * cautious and handle the !PG_table case too.
448 */
449 if (PageTable((ptdesc_page(ptdesc))))
450 pagetable_dtor_free(ptdesc);
451 else
452 pagetable_free(ptdesc);
453 }
454 }
455
cpa_collapse_large_pages(struct cpa_data * cpa)456 static void cpa_collapse_large_pages(struct cpa_data *cpa)
457 {
458 /*
459 * Take the mmap write lock on init_mm to:
460 * - Avoid a use-after-free if raced by ptdump (which takes its own
461 * write lock on init_mm).
462 * - Serialise concurrent CPA walkers.
463 */
464 scoped_guard(mmap_write_lock, &init_mm)
465 __cpa_collapse_large_pages(cpa);
466 }
467
cpa_flush(struct cpa_data * cpa,int cache)468 static void cpa_flush(struct cpa_data *cpa, int cache)
469 {
470 unsigned int i;
471
472 BUG_ON(irqs_disabled() && !early_boot_irqs_disabled);
473
474 if (cache && !cpu_feature_enabled(X86_FEATURE_CLFLUSH)) {
475 cpa_flush_all(cache);
476 goto collapse_large_pages;
477 }
478
479 if (cpa->force_flush_all || cpa->numpages > tlb_single_page_flush_ceiling)
480 flush_tlb_all();
481 else
482 on_each_cpu(__cpa_flush_tlb, cpa, 1);
483
484 if (!cache)
485 goto collapse_large_pages;
486
487 mb();
488 for (i = 0; i < cpa->numpages; i++) {
489 unsigned long addr = __cpa_addr(cpa, i);
490 unsigned int level;
491
492 pte_t *pte = lookup_address(addr, &level);
493
494 /*
495 * Only flush present addresses:
496 */
497 if (pte && (pte_val(*pte) & _PAGE_PRESENT))
498 clflush_cache_range_opt((void *)fix_addr(addr), PAGE_SIZE);
499 }
500 mb();
501
502 collapse_large_pages:
503 if (cpa->flags & CPA_COLLAPSE)
504 cpa_collapse_large_pages(cpa);
505 }
506
overlaps(unsigned long r1_start,unsigned long r1_end,unsigned long r2_start,unsigned long r2_end)507 static bool overlaps(unsigned long r1_start, unsigned long r1_end,
508 unsigned long r2_start, unsigned long r2_end)
509 {
510 return (r1_start <= r2_end && r1_end >= r2_start) ||
511 (r2_start <= r1_end && r2_end >= r1_start);
512 }
513
514 #ifdef CONFIG_PCI_BIOS
515 /*
516 * The BIOS area between 640k and 1Mb needs to be executable for PCI BIOS
517 * based config access (CONFIG_PCI_GOBIOS) support.
518 */
519 #define BIOS_PFN PFN_DOWN(BIOS_BEGIN)
520 #define BIOS_PFN_END PFN_DOWN(BIOS_END - 1)
521
protect_pci_bios(unsigned long spfn,unsigned long epfn)522 static pgprotval_t protect_pci_bios(unsigned long spfn, unsigned long epfn)
523 {
524 if (pcibios_enabled && overlaps(spfn, epfn, BIOS_PFN, BIOS_PFN_END))
525 return _PAGE_NX;
526 return 0;
527 }
528 #else
protect_pci_bios(unsigned long spfn,unsigned long epfn)529 static pgprotval_t protect_pci_bios(unsigned long spfn, unsigned long epfn)
530 {
531 return 0;
532 }
533 #endif
534
535 /*
536 * The .rodata section needs to be read-only. Using the pfn catches all
537 * aliases. This also includes __ro_after_init, so do not enforce until
538 * kernel_set_to_readonly is true.
539 */
protect_rodata(unsigned long spfn,unsigned long epfn)540 static pgprotval_t protect_rodata(unsigned long spfn, unsigned long epfn)
541 {
542 unsigned long epfn_ro, spfn_ro = PFN_DOWN(__pa_symbol(__start_rodata));
543
544 /*
545 * Note: __end_rodata is at page aligned and not inclusive, so
546 * subtract 1 to get the last enforced PFN in the rodata area.
547 */
548 epfn_ro = PFN_DOWN(__pa_symbol(__end_rodata)) - 1;
549
550 if (kernel_set_to_readonly && overlaps(spfn, epfn, spfn_ro, epfn_ro))
551 return _PAGE_RW;
552 return 0;
553 }
554
555 /*
556 * Protect kernel text against becoming non executable by forbidding
557 * _PAGE_NX. This protects only the high kernel mapping (_text -> _etext)
558 * out of which the kernel actually executes. Do not protect the low
559 * mapping.
560 *
561 * This does not cover __inittext since that is gone after boot.
562 */
protect_kernel_text(unsigned long start,unsigned long end)563 static pgprotval_t protect_kernel_text(unsigned long start, unsigned long end)
564 {
565 unsigned long t_end = (unsigned long)_etext - 1;
566 unsigned long t_start = (unsigned long)_text;
567
568 if (overlaps(start, end, t_start, t_end))
569 return _PAGE_NX;
570 return 0;
571 }
572
573 #if defined(CONFIG_X86_64)
574 /*
575 * Once the kernel maps the text as RO (kernel_set_to_readonly is set),
576 * kernel text mappings for the large page aligned text, rodata sections
577 * will be always read-only. For the kernel identity mappings covering the
578 * holes caused by this alignment can be anything that user asks.
579 *
580 * This will preserve the large page mappings for kernel text/data at no
581 * extra cost.
582 */
protect_kernel_text_ro(unsigned long start,unsigned long end)583 static pgprotval_t protect_kernel_text_ro(unsigned long start,
584 unsigned long end)
585 {
586 unsigned long t_end = (unsigned long)__end_rodata_hpage_align - 1;
587 unsigned long t_start = (unsigned long)_text;
588 unsigned int level;
589
590 if (!kernel_set_to_readonly || !overlaps(start, end, t_start, t_end))
591 return 0;
592 /*
593 * Don't enforce the !RW mapping for the kernel text mapping, if
594 * the current mapping is already using small page mapping. No
595 * need to work hard to preserve large page mappings in this case.
596 *
597 * This also fixes the Linux Xen paravirt guest boot failure caused
598 * by unexpected read-only mappings for kernel identity
599 * mappings. In this paravirt guest case, the kernel text mapping
600 * and the kernel identity mapping share the same page-table pages,
601 * so the protections for kernel text and identity mappings have to
602 * be the same.
603 */
604 if (lookup_address(start, &level) && (level != PG_LEVEL_4K))
605 return _PAGE_RW;
606 return 0;
607 }
608 #else
protect_kernel_text_ro(unsigned long start,unsigned long end)609 static pgprotval_t protect_kernel_text_ro(unsigned long start,
610 unsigned long end)
611 {
612 return 0;
613 }
614 #endif
615
conflicts(pgprot_t prot,pgprotval_t val)616 static inline bool conflicts(pgprot_t prot, pgprotval_t val)
617 {
618 return (pgprot_val(prot) & ~val) != pgprot_val(prot);
619 }
620
check_conflict(int warnlvl,pgprot_t prot,pgprotval_t val,unsigned long start,unsigned long end,unsigned long pfn,const char * txt)621 static inline void check_conflict(int warnlvl, pgprot_t prot, pgprotval_t val,
622 unsigned long start, unsigned long end,
623 unsigned long pfn, const char *txt)
624 {
625 static const char *lvltxt[] = {
626 [CPA_CONFLICT] = "conflict",
627 [CPA_PROTECT] = "protect",
628 [CPA_DETECT] = "detect",
629 };
630
631 if (warnlvl > cpa_warn_level || !conflicts(prot, val))
632 return;
633
634 pr_warn("CPA %8s %10s: 0x%016lx - 0x%016lx PFN %lx req %016llx prevent %016llx\n",
635 lvltxt[warnlvl], txt, start, end, pfn, (unsigned long long)pgprot_val(prot),
636 (unsigned long long)val);
637 }
638
639 /*
640 * Certain areas of memory on x86 require very specific protection flags,
641 * for example the BIOS area or kernel text. Callers don't always get this
642 * right (again, ioremap() on BIOS memory is not uncommon) so this function
643 * checks and fixes these known static required protection bits.
644 */
static_protections(pgprot_t prot,unsigned long start,unsigned long pfn,unsigned long npg,unsigned long lpsize,int warnlvl)645 static inline pgprot_t static_protections(pgprot_t prot, unsigned long start,
646 unsigned long pfn, unsigned long npg,
647 unsigned long lpsize, int warnlvl)
648 {
649 pgprotval_t forbidden, res;
650 unsigned long end;
651
652 /*
653 * There is no point in checking RW/NX conflicts when the requested
654 * mapping is setting the page !PRESENT.
655 */
656 if (!(pgprot_val(prot) & _PAGE_PRESENT))
657 return prot;
658
659 /* Operate on the virtual address */
660 end = start + npg * PAGE_SIZE - 1;
661
662 res = protect_kernel_text(start, end);
663 check_conflict(warnlvl, prot, res, start, end, pfn, "Text NX");
664 forbidden = res;
665
666 /*
667 * Special case to preserve a large page. If the change spawns the
668 * full large page mapping then there is no point to split it
669 * up. Happens with ftrace and is going to be removed once ftrace
670 * switched to text_poke().
671 */
672 if (lpsize != (npg * PAGE_SIZE) || (start & (lpsize - 1))) {
673 res = protect_kernel_text_ro(start, end);
674 check_conflict(warnlvl, prot, res, start, end, pfn, "Text RO");
675 forbidden |= res;
676 }
677
678 /* Check the PFN directly */
679 res = protect_pci_bios(pfn, pfn + npg - 1);
680 check_conflict(warnlvl, prot, res, start, end, pfn, "PCIBIOS NX");
681 forbidden |= res;
682
683 res = protect_rodata(pfn, pfn + npg - 1);
684 check_conflict(warnlvl, prot, res, start, end, pfn, "Rodata RO");
685 forbidden |= res;
686
687 return __pgprot(pgprot_val(prot) & ~forbidden);
688 }
689
690 /*
691 * Validate strict W^X semantics.
692 */
verify_rwx(pgprot_t old,pgprot_t new,unsigned long start,unsigned long pfn,unsigned long npg,bool nx,bool rw)693 static inline pgprot_t verify_rwx(pgprot_t old, pgprot_t new, unsigned long start,
694 unsigned long pfn, unsigned long npg,
695 bool nx, bool rw)
696 {
697 unsigned long end;
698
699 /*
700 * 32-bit has some unfixable W+X issues, like EFI code
701 * and writeable data being in the same page. Disable
702 * detection and enforcement there.
703 */
704 if (IS_ENABLED(CONFIG_X86_32))
705 return new;
706
707 /* Only verify when NX is supported: */
708 if (!(__supported_pte_mask & _PAGE_NX))
709 return new;
710
711 if (!((pgprot_val(old) ^ pgprot_val(new)) & (_PAGE_RW | _PAGE_NX)))
712 return new;
713
714 if ((pgprot_val(new) & (_PAGE_RW | _PAGE_NX)) != _PAGE_RW)
715 return new;
716
717 /* Non-leaf translation entries can disable writing or execution. */
718 if (!rw || nx)
719 return new;
720
721 end = start + npg * PAGE_SIZE - 1;
722 WARN_ONCE(1, "CPA detected W^X violation: %016llx -> %016llx range: 0x%016lx - 0x%016lx PFN %lx\n",
723 (unsigned long long)pgprot_val(old),
724 (unsigned long long)pgprot_val(new),
725 start, end, pfn);
726
727 /*
728 * For now, allow all permission change attempts by returning the
729 * attempted permissions. This can 'return old' to actively
730 * refuse the permission change at a later time.
731 */
732 return new;
733 }
734
735 /*
736 * Lookup the page table entry for a virtual address in a specific pgd.
737 * Return a pointer to the entry (or NULL if the entry does not exist),
738 * the level of the entry, and the effective NX and RW bits of all
739 * page table levels.
740 */
lookup_address_in_pgd_attr(pgd_t * pgd,unsigned long address,unsigned int * level,bool * nx,bool * rw)741 pte_t *lookup_address_in_pgd_attr(pgd_t *pgd, unsigned long address,
742 unsigned int *level, bool *nx, bool *rw)
743 {
744 p4d_t *p4d;
745 pud_t *pud;
746 pmd_t *pmd;
747
748 *level = PG_LEVEL_256T;
749 *nx = false;
750 *rw = true;
751
752 if (pgd_none(*pgd))
753 return NULL;
754
755 *level = PG_LEVEL_512G;
756 *nx |= pgd_flags(*pgd) & _PAGE_NX;
757 *rw &= pgd_flags(*pgd) & _PAGE_RW;
758
759 p4d = p4d_offset(pgd, address);
760 if (p4d_none(*p4d))
761 return NULL;
762
763 if (p4d_leaf(*p4d) || !p4d_present(*p4d))
764 return (pte_t *)p4d;
765
766 *level = PG_LEVEL_1G;
767 *nx |= p4d_flags(*p4d) & _PAGE_NX;
768 *rw &= p4d_flags(*p4d) & _PAGE_RW;
769
770 pud = pud_offset(p4d, address);
771 if (pud_none(*pud))
772 return NULL;
773
774 if (pud_leaf(*pud) || !pud_present(*pud))
775 return (pte_t *)pud;
776
777 *level = PG_LEVEL_2M;
778 *nx |= pud_flags(*pud) & _PAGE_NX;
779 *rw &= pud_flags(*pud) & _PAGE_RW;
780
781 pmd = pmd_offset(pud, address);
782 if (pmd_none(*pmd))
783 return NULL;
784
785 if (pmd_leaf(*pmd) || !pmd_present(*pmd))
786 return (pte_t *)pmd;
787
788 *level = PG_LEVEL_4K;
789 *nx |= pmd_flags(*pmd) & _PAGE_NX;
790 *rw &= pmd_flags(*pmd) & _PAGE_RW;
791
792 return pte_offset_kernel(pmd, address);
793 }
794
795 /*
796 * Lookup the page table entry for a virtual address in a specific pgd.
797 * Return a pointer to the entry and the level of the mapping.
798 */
lookup_address_in_pgd(pgd_t * pgd,unsigned long address,unsigned int * level)799 pte_t *lookup_address_in_pgd(pgd_t *pgd, unsigned long address,
800 unsigned int *level)
801 {
802 bool nx, rw;
803
804 return lookup_address_in_pgd_attr(pgd, address, level, &nx, &rw);
805 }
806
807 /*
808 * Lookup the page table entry for a virtual address. Return a pointer
809 * to the entry and the level of the mapping.
810 *
811 * Note: the function returns p4d, pud or pmd either when the entry is marked
812 * large or when the present bit is not set. Otherwise it returns NULL.
813 */
lookup_address(unsigned long address,unsigned int * level)814 pte_t *lookup_address(unsigned long address, unsigned int *level)
815 {
816 return lookup_address_in_pgd(pgd_offset_k(address), address, level);
817 }
818 EXPORT_SYMBOL_GPL(lookup_address);
819
_lookup_address_cpa(struct cpa_data * cpa,unsigned long address,unsigned int * level,bool * nx,bool * rw)820 static pte_t *_lookup_address_cpa(struct cpa_data *cpa, unsigned long address,
821 unsigned int *level, bool *nx, bool *rw)
822 {
823 pgd_t *pgd;
824
825 if (!cpa->pgd)
826 pgd = pgd_offset_k(address);
827 else
828 pgd = cpa->pgd + pgd_index(address);
829
830 return lookup_address_in_pgd_attr(pgd, address, level, nx, rw);
831 }
832
833 /*
834 * Lookup the PMD entry for a virtual address. Return a pointer to the entry
835 * or NULL if not present.
836 */
lookup_pmd_address(unsigned long address)837 pmd_t *lookup_pmd_address(unsigned long address)
838 {
839 pgd_t *pgd;
840 p4d_t *p4d;
841 pud_t *pud;
842
843 pgd = pgd_offset_k(address);
844 if (pgd_none(*pgd))
845 return NULL;
846
847 p4d = p4d_offset(pgd, address);
848 if (p4d_none(*p4d) || p4d_leaf(*p4d) || !p4d_present(*p4d))
849 return NULL;
850
851 pud = pud_offset(p4d, address);
852 if (pud_none(*pud) || pud_leaf(*pud) || !pud_present(*pud))
853 return NULL;
854
855 return pmd_offset(pud, address);
856 }
857
858 /*
859 * This is necessary because __pa() does not work on some
860 * kinds of memory, like vmalloc() or the alloc_remap()
861 * areas on 32-bit NUMA systems. The percpu areas can
862 * end up in this kind of memory, for instance.
863 *
864 * Note that as long as the PTEs are well-formed with correct PFNs, this
865 * works without checking the PRESENT bit in the leaf PTE. This is unlike
866 * the similar vmalloc_to_page() and derivatives. Callers may depend on
867 * this behavior.
868 *
869 * This could be optimized, but it is only used in paths that are not perf
870 * sensitive, and keeping it unoptimized should increase the testing coverage
871 * for the more obscure platforms.
872 */
slow_virt_to_phys(void * __virt_addr)873 phys_addr_t slow_virt_to_phys(void *__virt_addr)
874 {
875 unsigned long virt_addr = (unsigned long)__virt_addr;
876 phys_addr_t phys_addr;
877 unsigned long offset;
878 enum pg_level level;
879 pte_t *pte;
880
881 pte = lookup_address(virt_addr, &level);
882 BUG_ON(!pte);
883
884 /*
885 * pXX_pfn() returns unsigned long, which must be cast to phys_addr_t
886 * before being left-shifted PAGE_SHIFT bits -- this trick is to
887 * make 32-PAE kernel work correctly.
888 */
889 switch (level) {
890 case PG_LEVEL_1G:
891 phys_addr = (phys_addr_t)pud_pfn(*(pud_t *)pte) << PAGE_SHIFT;
892 offset = virt_addr & ~PUD_MASK;
893 break;
894 case PG_LEVEL_2M:
895 phys_addr = (phys_addr_t)pmd_pfn(*(pmd_t *)pte) << PAGE_SHIFT;
896 offset = virt_addr & ~PMD_MASK;
897 break;
898 default:
899 phys_addr = (phys_addr_t)pte_pfn(*pte) << PAGE_SHIFT;
900 offset = virt_addr & ~PAGE_MASK;
901 }
902
903 return (phys_addr_t)(phys_addr | offset);
904 }
905 EXPORT_SYMBOL_GPL(slow_virt_to_phys);
906
907 /*
908 * Set the new pmd in all the pgds we know about:
909 */
__set_pmd_pte(pte_t * kpte,unsigned long address,pte_t pte)910 static void __set_pmd_pte(pte_t *kpte, unsigned long address, pte_t pte)
911 {
912 /* change init_mm */
913 set_pte_atomic(kpte, pte);
914
915 if (IS_ENABLED(CONFIG_X86_32)) {
916 struct ptdesc *ptdesc;
917
918 list_for_each_entry(ptdesc, &pgd_list, pt_list) {
919 pgd_t *pgd;
920 p4d_t *p4d;
921 pud_t *pud;
922 pmd_t *pmd;
923
924 pgd = (pgd_t *)ptdesc_address(ptdesc) + pgd_index(address);
925 p4d = p4d_offset(pgd, address);
926 pud = pud_offset(p4d, address);
927 pmd = pmd_offset(pud, address);
928 set_pte_atomic((pte_t *)pmd, pte);
929 }
930 }
931 }
932
pgprot_clear_protnone_bits(pgprot_t prot)933 static pgprot_t pgprot_clear_protnone_bits(pgprot_t prot)
934 {
935 /*
936 * _PAGE_GLOBAL means "global page" for present PTEs.
937 * But, it is also used to indicate _PAGE_PROTNONE
938 * for non-present PTEs.
939 *
940 * This ensures that a _PAGE_GLOBAL PTE going from
941 * present to non-present is not confused as
942 * _PAGE_PROTNONE.
943 */
944 if (!(pgprot_val(prot) & _PAGE_PRESENT))
945 pgprot_val(prot) &= ~_PAGE_GLOBAL;
946
947 return prot;
948 }
949
__should_split_large_page(pte_t * kpte,unsigned long address,struct cpa_data * cpa)950 static int __should_split_large_page(pte_t *kpte, unsigned long address,
951 struct cpa_data *cpa)
952 {
953 unsigned long numpages, pmask, psize, lpaddr, pfn, old_pfn;
954 pgprot_t old_prot, new_prot, req_prot, chk_prot;
955 pte_t new_pte, *tmp;
956 enum pg_level level;
957 bool nx, rw;
958
959 /*
960 * Check for races, another CPU might have split this page
961 * up already:
962 */
963 tmp = _lookup_address_cpa(cpa, address, &level, &nx, &rw);
964 if (tmp != kpte)
965 return 1;
966
967 switch (level) {
968 case PG_LEVEL_2M:
969 old_prot = pmd_pgprot(*(pmd_t *)kpte);
970 old_pfn = pmd_pfn(*(pmd_t *)kpte);
971 cpa_inc_2m_checked();
972 break;
973 case PG_LEVEL_1G:
974 old_prot = pud_pgprot(*(pud_t *)kpte);
975 old_pfn = pud_pfn(*(pud_t *)kpte);
976 cpa_inc_1g_checked();
977 break;
978 default:
979 return -EINVAL;
980 }
981
982 psize = page_level_size(level);
983 pmask = page_level_mask(level);
984
985 /*
986 * Calculate the number of pages, which fit into this large
987 * page starting at address:
988 */
989 lpaddr = (address + psize) & pmask;
990 numpages = (lpaddr - address) >> PAGE_SHIFT;
991 if (numpages < cpa->numpages)
992 cpa->numpages = numpages;
993
994 /*
995 * We are safe now. Check whether the new pgprot is the same:
996 * Convert protection attributes to 4k-format, as cpa->mask* are set
997 * up accordingly.
998 */
999
1000 /* Clear PSE (aka _PAGE_PAT) and move PAT bit to correct position */
1001 req_prot = pgprot_large_2_4k(old_prot);
1002
1003 pgprot_val(req_prot) &= ~pgprot_val(cpa->mask_clr);
1004 pgprot_val(req_prot) |= pgprot_val(cpa->mask_set);
1005
1006 /*
1007 * req_prot is in format of 4k pages. It must be converted to large
1008 * page format: the caching mode includes the PAT bit located at
1009 * different bit positions in the two formats.
1010 */
1011 req_prot = pgprot_4k_2_large(req_prot);
1012 req_prot = pgprot_clear_protnone_bits(req_prot);
1013 if (pgprot_val(req_prot) & _PAGE_PRESENT)
1014 pgprot_val(req_prot) |= _PAGE_PSE;
1015
1016 /*
1017 * old_pfn points to the large page base pfn. So we need to add the
1018 * offset of the virtual address:
1019 */
1020 pfn = old_pfn + ((address & (psize - 1)) >> PAGE_SHIFT);
1021 cpa->pfn = pfn;
1022
1023 /*
1024 * Calculate the large page base address and the number of 4K pages
1025 * in the large page
1026 */
1027 lpaddr = address & pmask;
1028 numpages = psize >> PAGE_SHIFT;
1029
1030 /*
1031 * Sanity check that the existing mapping is correct versus the static
1032 * protections. static_protections() guards against !PRESENT, so no
1033 * extra conditional required here.
1034 */
1035 chk_prot = static_protections(old_prot, lpaddr, old_pfn, numpages,
1036 psize, CPA_CONFLICT);
1037
1038 if (WARN_ON_ONCE(pgprot_val(chk_prot) != pgprot_val(old_prot))) {
1039 /*
1040 * Split the large page and tell the split code to
1041 * enforce static protections.
1042 */
1043 cpa->force_static_prot = 1;
1044 return 1;
1045 }
1046
1047 /*
1048 * Optimization: If the requested pgprot is the same as the current
1049 * pgprot, then the large page can be preserved and no updates are
1050 * required independent of alignment and length of the requested
1051 * range. The above already established that the current pgprot is
1052 * correct, which in consequence makes the requested pgprot correct
1053 * as well if it is the same. The static protection scan below will
1054 * not come to a different conclusion.
1055 */
1056 if (pgprot_val(req_prot) == pgprot_val(old_prot)) {
1057 cpa_inc_lp_sameprot(level);
1058 return 0;
1059 }
1060
1061 /*
1062 * If the requested range does not cover the full page, split it up
1063 */
1064 if (address != lpaddr || cpa->numpages != numpages)
1065 return 1;
1066
1067 /*
1068 * Check whether the requested pgprot is conflicting with a static
1069 * protection requirement in the large page.
1070 */
1071 new_prot = static_protections(req_prot, lpaddr, old_pfn, numpages,
1072 psize, CPA_DETECT);
1073
1074 new_prot = verify_rwx(old_prot, new_prot, lpaddr, old_pfn, numpages,
1075 nx, rw);
1076
1077 /*
1078 * If there is a conflict, split the large page.
1079 *
1080 * There used to be a 4k wise evaluation trying really hard to
1081 * preserve the large pages, but experimentation has shown, that this
1082 * does not help at all. There might be corner cases which would
1083 * preserve one large page occasionally, but it's really not worth the
1084 * extra code and cycles for the common case.
1085 */
1086 if (pgprot_val(req_prot) != pgprot_val(new_prot))
1087 return 1;
1088
1089 /* All checks passed. Update the large page mapping. */
1090 new_pte = pfn_pte(old_pfn, new_prot);
1091 __set_pmd_pte(kpte, address, new_pte);
1092 cpa->flags |= CPA_FLUSHTLB;
1093 cpa_inc_lp_preserved(level);
1094 return 0;
1095 }
1096
should_split_large_page(pte_t * kpte,unsigned long address,struct cpa_data * cpa)1097 static int should_split_large_page(pte_t *kpte, unsigned long address,
1098 struct cpa_data *cpa)
1099 {
1100 if (cpa->force_split)
1101 return 1;
1102
1103 guard(spinlock)(&pgd_lock);
1104 return __should_split_large_page(kpte, address, cpa);
1105 }
1106
split_set_pte(struct cpa_data * cpa,pte_t * pte,unsigned long pfn,pgprot_t ref_prot,unsigned long address,unsigned long size)1107 static void split_set_pte(struct cpa_data *cpa, pte_t *pte, unsigned long pfn,
1108 pgprot_t ref_prot, unsigned long address,
1109 unsigned long size)
1110 {
1111 unsigned int npg = PFN_DOWN(size);
1112 pgprot_t prot;
1113
1114 /*
1115 * If should_split_large_page() discovered an inconsistent mapping,
1116 * remove the invalid protection in the split mapping.
1117 */
1118 if (!cpa->force_static_prot)
1119 goto set;
1120
1121 /* Hand in lpsize = 0 to enforce the protection mechanism */
1122 prot = static_protections(ref_prot, address, pfn, npg, 0, CPA_PROTECT);
1123
1124 if (pgprot_val(prot) == pgprot_val(ref_prot))
1125 goto set;
1126
1127 /*
1128 * If this is splitting a PMD, fix it up. PUD splits cannot be
1129 * fixed trivially as that would require to rescan the newly
1130 * installed PMD mappings after returning from split_large_page()
1131 * so an eventual further split can allocate the necessary PTE
1132 * pages. Warn for now and revisit it in case this actually
1133 * happens.
1134 */
1135 if (size == PAGE_SIZE)
1136 ref_prot = prot;
1137 else
1138 pr_warn_once("CPA: Cannot fixup static protections for PUD split\n");
1139 set:
1140 set_pte(pte, pfn_pte(pfn, ref_prot));
1141 }
1142
1143 static int
__split_large_page(struct cpa_data * cpa,pte_t * kpte,unsigned long address,pte_t * pbase)1144 __split_large_page(struct cpa_data *cpa, pte_t *kpte, unsigned long address,
1145 pte_t *pbase)
1146 {
1147 unsigned long lpaddr, lpinc, ref_pfn, pfn, pfninc = 1;
1148 struct page *base = virt_to_page(pbase);
1149 unsigned int i, level;
1150 pgprot_t ref_prot;
1151 bool nx, rw;
1152 pte_t *tmp;
1153
1154 guard(spinlock)(&pgd_lock);
1155 /*
1156 * Check for races, another CPU might have split this page
1157 * up for us already:
1158 */
1159 tmp = _lookup_address_cpa(cpa, address, &level, &nx, &rw);
1160 if (tmp != kpte)
1161 return 1;
1162
1163 paravirt_alloc_pte(&init_mm, page_to_pfn(base));
1164
1165 switch (level) {
1166 case PG_LEVEL_2M:
1167 ref_prot = pmd_pgprot(*(pmd_t *)kpte);
1168 /*
1169 * Clear PSE (aka _PAGE_PAT) and move
1170 * PAT bit to correct position.
1171 */
1172 ref_prot = pgprot_large_2_4k(ref_prot);
1173 ref_pfn = pmd_pfn(*(pmd_t *)kpte);
1174 lpaddr = address & PMD_MASK;
1175 lpinc = PAGE_SIZE;
1176 break;
1177
1178 case PG_LEVEL_1G:
1179 ref_prot = pud_pgprot(*(pud_t *)kpte);
1180 ref_pfn = pud_pfn(*(pud_t *)kpte);
1181 pfninc = PMD_SIZE >> PAGE_SHIFT;
1182 lpaddr = address & PUD_MASK;
1183 lpinc = PMD_SIZE;
1184 /*
1185 * Clear the PSE flags if the PRESENT flag is not set
1186 * otherwise pmd_present() will return true even on a non
1187 * present pmd.
1188 */
1189 if (!(pgprot_val(ref_prot) & _PAGE_PRESENT))
1190 pgprot_val(ref_prot) &= ~_PAGE_PSE;
1191 break;
1192
1193 default:
1194 return 1;
1195 }
1196
1197 ref_prot = pgprot_clear_protnone_bits(ref_prot);
1198
1199 /*
1200 * Get the target pfn from the original entry:
1201 */
1202 pfn = ref_pfn;
1203 for (i = 0; i < PTRS_PER_PTE; i++, pfn += pfninc, lpaddr += lpinc)
1204 split_set_pte(cpa, pbase + i, pfn, ref_prot, lpaddr, lpinc);
1205
1206 if (virt_addr_valid(address)) {
1207 unsigned long pfn = PFN_DOWN(__pa(address));
1208
1209 if (pfn_range_is_mapped(pfn, pfn + 1))
1210 split_page_count(level);
1211 }
1212
1213 /*
1214 * Install the new, split up pagetable.
1215 *
1216 * We use the standard kernel pagetable protections for the new
1217 * pagetable protections, the actual ptes set above control the
1218 * primary protection behavior:
1219 */
1220 __set_pmd_pte(kpte, address, mk_pte(base, __pgprot(_KERNPG_TABLE)));
1221
1222 /*
1223 * Do a global flush tlb after splitting the large page
1224 * and before we do the actual change page attribute in the PTE.
1225 *
1226 * Without this, we violate the TLB application note, that says:
1227 * "The TLBs may contain both ordinary and large-page
1228 * translations for a 4-KByte range of linear addresses. This
1229 * may occur if software modifies the paging structures so that
1230 * the page size used for the address range changes. If the two
1231 * translations differ with respect to page frame or attributes
1232 * (e.g., permissions), processor behavior is undefined and may
1233 * be implementation-specific."
1234 *
1235 * We do this global tlb flush inside the cpa_lock, so that we
1236 * don't allow any other cpu, with stale tlb entries change the
1237 * page attribute in parallel, that also falls into the
1238 * just split large page entry.
1239 */
1240 flush_tlb_all();
1241
1242 return 0;
1243 }
1244
split_large_page(struct cpa_data * cpa,pte_t * kpte,unsigned long address)1245 static int split_large_page(struct cpa_data *cpa, pte_t *kpte,
1246 unsigned long address)
1247 {
1248 pte_t *pte;
1249
1250 spin_unlock(&cpa_lock);
1251 if (cpa->init_mm_read_locked)
1252 mmap_read_unlock(&init_mm);
1253 pte = pte_alloc_one_kernel(&init_mm);
1254 if (cpa->init_mm_read_locked)
1255 mmap_read_lock(&init_mm);
1256 spin_lock(&cpa_lock);
1257 if (!pte)
1258 return -ENOMEM;
1259
1260 if (__split_large_page(cpa, kpte, address, pte))
1261 pte_free_kernel(&init_mm, pte);
1262
1263 return 0;
1264 }
1265
collapse_pmd_page(pmd_t * pmd,unsigned long addr,struct list_head * pgtables)1266 static int collapse_pmd_page(pmd_t *pmd, unsigned long addr,
1267 struct list_head *pgtables)
1268 {
1269 pmd_t _pmd, old_pmd;
1270 pte_t *pte, first;
1271 unsigned long pfn;
1272 pgprot_t pgprot;
1273 int i = 0;
1274
1275 if (!cpu_feature_enabled(X86_FEATURE_PSE))
1276 return 0;
1277
1278 addr &= PMD_MASK;
1279 pte = pte_offset_kernel(pmd, addr);
1280 first = *pte;
1281 pfn = pte_pfn(first);
1282
1283 /* Make sure alignment is suitable */
1284 if (PFN_PHYS(pfn) & ~PMD_MASK)
1285 return 0;
1286
1287 /* The page is 4k intentionally */
1288 if (pte_flags(first) & _PAGE_KERNEL_4K)
1289 return 0;
1290
1291 /* Check that the rest of PTEs are compatible with the first one */
1292 for (i = 1, pte++; i < PTRS_PER_PTE; i++, pte++) {
1293 pte_t entry = *pte;
1294
1295 if (!pte_present(entry))
1296 return 0;
1297 if (pte_flags(entry) != pte_flags(first))
1298 return 0;
1299 if (pte_pfn(entry) != pte_pfn(first) + i)
1300 return 0;
1301 }
1302
1303 old_pmd = *pmd;
1304
1305 /* Success: set up a large page */
1306 pgprot = pgprot_4k_2_large(pte_pgprot(first));
1307 pgprot_val(pgprot) |= _PAGE_PSE;
1308 _pmd = pfn_pmd(pfn, pgprot);
1309 set_pmd(pmd, _pmd);
1310
1311 /* Queue the page table to be freed after TLB flush */
1312 list_add(&page_ptdesc(pmd_page(old_pmd))->pt_list, pgtables);
1313
1314 if (IS_ENABLED(CONFIG_X86_32)) {
1315 struct ptdesc *ptdesc;
1316
1317 /* Update all PGD tables to use the same large page */
1318 list_for_each_entry(ptdesc, &pgd_list, pt_list) {
1319 pgd_t *pgd = (pgd_t *)ptdesc_address(ptdesc) + pgd_index(addr);
1320 p4d_t *p4d = p4d_offset(pgd, addr);
1321 pud_t *pud = pud_offset(p4d, addr);
1322 pmd_t *pmd = pmd_offset(pud, addr);
1323 /* Something is wrong if entries doesn't match */
1324 if (WARN_ON(pmd_val(old_pmd) != pmd_val(*pmd)))
1325 continue;
1326 set_pmd(pmd, _pmd);
1327 }
1328 }
1329
1330 if (virt_addr_valid(addr) && pfn_range_is_mapped(pfn, pfn + 1))
1331 collapse_page_count(PG_LEVEL_2M);
1332
1333 return 1;
1334 }
1335
collapse_pud_page(pud_t * pud,unsigned long addr,struct list_head * pgtables)1336 static int collapse_pud_page(pud_t *pud, unsigned long addr,
1337 struct list_head *pgtables)
1338 {
1339 unsigned long pfn;
1340 pmd_t *pmd, first;
1341 int i;
1342
1343 if (!direct_gbpages)
1344 return 0;
1345
1346 addr &= PUD_MASK;
1347 pmd = pmd_offset(pud, addr);
1348 first = *pmd;
1349
1350 /*
1351 * To restore PUD page all PMD entries must be large and
1352 * have suitable alignment
1353 */
1354 pfn = pmd_pfn(first);
1355 if (!pmd_leaf(first) || (PFN_PHYS(pfn) & ~PUD_MASK))
1356 return 0;
1357
1358 /*
1359 * To restore PUD page, all following PMDs must be compatible with the
1360 * first one.
1361 */
1362 for (i = 1, pmd++; i < PTRS_PER_PMD; i++, pmd++) {
1363 pmd_t entry = *pmd;
1364
1365 if (!pmd_present(entry) || !pmd_leaf(entry))
1366 return 0;
1367 if (pmd_flags(entry) != pmd_flags(first))
1368 return 0;
1369 if (pmd_pfn(entry) != pmd_pfn(first) + i * PTRS_PER_PTE)
1370 return 0;
1371 }
1372
1373 /* Restore PUD page and queue page table to be freed after TLB flush */
1374 list_add(&page_ptdesc(pud_page(*pud))->pt_list, pgtables);
1375 set_pud(pud, pfn_pud(pfn, pmd_pgprot(first)));
1376
1377 if (virt_addr_valid(addr) && pfn_range_is_mapped(pfn, pfn + 1))
1378 collapse_page_count(PG_LEVEL_1G);
1379
1380 return 1;
1381 }
1382
1383 /*
1384 * Collapse PMD and PUD pages in the kernel mapping around the address where
1385 * possible.
1386 *
1387 * Caller must flush TLB and free page tables queued on the list before
1388 * touching the new entries. CPU must not see TLB entries of different size
1389 * with different attributes.
1390 */
collapse_large_pages(unsigned long addr,struct list_head * pgtables)1391 static int collapse_large_pages(unsigned long addr, struct list_head *pgtables)
1392 {
1393 int collapsed;
1394 pgd_t *pgd;
1395 p4d_t *p4d;
1396 pud_t *pud;
1397 pmd_t *pmd;
1398
1399 addr &= PMD_MASK;
1400
1401 guard(spinlock)(&pgd_lock);
1402 pgd = pgd_offset_k(addr);
1403 if (pgd_none(*pgd))
1404 return 0;
1405 p4d = p4d_offset(pgd, addr);
1406 if (p4d_none(*p4d))
1407 return 0;
1408 pud = pud_offset(p4d, addr);
1409 if (!pud_present(*pud) || pud_leaf(*pud))
1410 return 0;
1411 pmd = pmd_offset(pud, addr);
1412 if (!pmd_present(*pmd) || pmd_leaf(*pmd))
1413 return 0;
1414
1415 collapsed = collapse_pmd_page(pmd, addr, pgtables);
1416 if (collapsed)
1417 collapsed += collapse_pud_page(pud, addr, pgtables);
1418
1419 return collapsed;
1420 }
1421
try_to_free_pte_page(pte_t * pte)1422 static bool try_to_free_pte_page(pte_t *pte)
1423 {
1424 int i;
1425
1426 for (i = 0; i < PTRS_PER_PTE; i++)
1427 if (!pte_none(pte[i]))
1428 return false;
1429
1430 pte_free_kernel(&init_mm, pte);
1431 return true;
1432 }
1433
try_to_free_pmd_page(pmd_t * pmd)1434 static bool try_to_free_pmd_page(pmd_t *pmd)
1435 {
1436 int i;
1437
1438 for (i = 0; i < PTRS_PER_PMD; i++)
1439 if (!pmd_none(pmd[i]))
1440 return false;
1441
1442 pmd_free(&init_mm, pmd);
1443 return true;
1444 }
1445
unmap_pte_range(pmd_t * pmd,unsigned long start,unsigned long end)1446 static bool unmap_pte_range(pmd_t *pmd, unsigned long start, unsigned long end)
1447 {
1448 pte_t *pte = pte_offset_kernel(pmd, start);
1449
1450 while (start < end) {
1451 set_pte(pte, __pte(0));
1452
1453 start += PAGE_SIZE;
1454 pte++;
1455 }
1456
1457 if (try_to_free_pte_page((pte_t *)pmd_page_vaddr(*pmd))) {
1458 pmd_clear(pmd);
1459 return true;
1460 }
1461 return false;
1462 }
1463
__unmap_pmd_range(pud_t * pud,pmd_t * pmd,unsigned long start,unsigned long end)1464 static void __unmap_pmd_range(pud_t *pud, pmd_t *pmd,
1465 unsigned long start, unsigned long end)
1466 {
1467 if (unmap_pte_range(pmd, start, end))
1468 if (try_to_free_pmd_page(pud_pgtable(*pud)))
1469 pud_clear(pud);
1470 }
1471
unmap_pmd_range(pud_t * pud,unsigned long start,unsigned long end)1472 static void unmap_pmd_range(pud_t *pud, unsigned long start, unsigned long end)
1473 {
1474 pmd_t *pmd = pmd_offset(pud, start);
1475
1476 /*
1477 * Not on a 2MB page boundary?
1478 */
1479 if (start & (PMD_SIZE - 1)) {
1480 unsigned long next_page = (start + PMD_SIZE) & PMD_MASK;
1481 unsigned long pre_end = min_t(unsigned long, end, next_page);
1482
1483 __unmap_pmd_range(pud, pmd, start, pre_end);
1484
1485 start = pre_end;
1486 pmd++;
1487 }
1488
1489 /*
1490 * Try to unmap in 2M chunks.
1491 */
1492 while (end - start >= PMD_SIZE) {
1493 if (pmd_leaf(*pmd))
1494 pmd_clear(pmd);
1495 else
1496 __unmap_pmd_range(pud, pmd, start, start + PMD_SIZE);
1497
1498 start += PMD_SIZE;
1499 pmd++;
1500 }
1501
1502 /*
1503 * 4K leftovers?
1504 */
1505 if (start < end)
1506 return __unmap_pmd_range(pud, pmd, start, end);
1507
1508 /*
1509 * Try again to free the PMD page if haven't succeeded above.
1510 */
1511 if (!pud_none(*pud))
1512 if (try_to_free_pmd_page(pud_pgtable(*pud)))
1513 pud_clear(pud);
1514 }
1515
unmap_pud_range(p4d_t * p4d,unsigned long start,unsigned long end)1516 static void unmap_pud_range(p4d_t *p4d, unsigned long start, unsigned long end)
1517 {
1518 pud_t *pud = pud_offset(p4d, start);
1519
1520 /*
1521 * Not on a GB page boundary?
1522 */
1523 if (start & (PUD_SIZE - 1)) {
1524 unsigned long next_page = (start + PUD_SIZE) & PUD_MASK;
1525 unsigned long pre_end = min_t(unsigned long, end, next_page);
1526
1527 unmap_pmd_range(pud, start, pre_end);
1528
1529 start = pre_end;
1530 pud++;
1531 }
1532
1533 /*
1534 * Try to unmap in 1G chunks?
1535 */
1536 while (end - start >= PUD_SIZE) {
1537
1538 if (pud_leaf(*pud))
1539 pud_clear(pud);
1540 else
1541 unmap_pmd_range(pud, start, start + PUD_SIZE);
1542
1543 start += PUD_SIZE;
1544 pud++;
1545 }
1546
1547 /*
1548 * 2M leftovers?
1549 */
1550 if (start < end)
1551 unmap_pmd_range(pud, start, end);
1552
1553 /*
1554 * No need to try to free the PUD page because we'll free it in
1555 * populate_pgd's error path
1556 */
1557 }
1558
alloc_pte_page(pmd_t * pmd)1559 static int alloc_pte_page(pmd_t *pmd)
1560 {
1561 pte_t *pte = pte_alloc_one_kernel(&init_mm);
1562 if (!pte)
1563 return -1;
1564
1565 set_pmd(pmd, __pmd(__pa(pte) | _KERNPG_TABLE));
1566 return 0;
1567 }
1568
alloc_pmd_page(pud_t * pud)1569 static int alloc_pmd_page(pud_t *pud)
1570 {
1571 /*
1572 * Pass 0 as a placeholder for the second argument, since the
1573 * generic implementation of pmd_alloc_one() does not use it.
1574 */
1575 pmd_t *pmd = pmd_alloc_one(&init_mm, 0);
1576 if (!pmd)
1577 return -1;
1578
1579 set_pud(pud, __pud(__pa(pmd) | _KERNPG_TABLE));
1580 return 0;
1581 }
1582
populate_pte(struct cpa_data * cpa,unsigned long start,unsigned long end,unsigned num_pages,pmd_t * pmd,pgprot_t pgprot)1583 static void populate_pte(struct cpa_data *cpa,
1584 unsigned long start, unsigned long end,
1585 unsigned num_pages, pmd_t *pmd, pgprot_t pgprot)
1586 {
1587 pte_t *pte;
1588
1589 pte = pte_offset_kernel(pmd, start);
1590
1591 pgprot = pgprot_clear_protnone_bits(pgprot);
1592
1593 while (num_pages-- && start < end) {
1594 set_pte(pte, pfn_pte(cpa->pfn, pgprot));
1595
1596 start += PAGE_SIZE;
1597 cpa->pfn++;
1598 pte++;
1599 }
1600 }
1601
populate_pmd(struct cpa_data * cpa,unsigned long start,unsigned long end,unsigned num_pages,pud_t * pud,pgprot_t pgprot)1602 static long populate_pmd(struct cpa_data *cpa,
1603 unsigned long start, unsigned long end,
1604 unsigned num_pages, pud_t *pud, pgprot_t pgprot)
1605 {
1606 long cur_pages = 0;
1607 pmd_t *pmd;
1608 pgprot_t pmd_pgprot;
1609
1610 /*
1611 * Not on a 2M boundary?
1612 */
1613 if (start & (PMD_SIZE - 1)) {
1614 unsigned long pre_end = start + (num_pages << PAGE_SHIFT);
1615 unsigned long next_page = (start + PMD_SIZE) & PMD_MASK;
1616
1617 pre_end = min_t(unsigned long, pre_end, next_page);
1618 cur_pages = (pre_end - start) >> PAGE_SHIFT;
1619 cur_pages = min_t(unsigned int, num_pages, cur_pages);
1620
1621 /*
1622 * Need a PTE page?
1623 */
1624 pmd = pmd_offset(pud, start);
1625 if (pmd_none(*pmd))
1626 if (alloc_pte_page(pmd))
1627 return -1;
1628
1629 populate_pte(cpa, start, pre_end, cur_pages, pmd, pgprot);
1630
1631 start = pre_end;
1632 }
1633
1634 /*
1635 * We mapped them all?
1636 */
1637 if (num_pages == cur_pages)
1638 return cur_pages;
1639
1640 pmd_pgprot = pgprot_4k_2_large(pgprot);
1641
1642 while (end - start >= PMD_SIZE) {
1643
1644 /*
1645 * We cannot use a 1G page so allocate a PMD page if needed.
1646 */
1647 if (pud_none(*pud))
1648 if (alloc_pmd_page(pud))
1649 return -1;
1650
1651 pmd = pmd_offset(pud, start);
1652
1653 set_pmd(pmd, pmd_mkhuge(pfn_pmd(cpa->pfn,
1654 canon_pgprot(pmd_pgprot))));
1655
1656 start += PMD_SIZE;
1657 cpa->pfn += PMD_SIZE >> PAGE_SHIFT;
1658 cur_pages += PMD_SIZE >> PAGE_SHIFT;
1659 }
1660
1661 /*
1662 * Map trailing 4K pages.
1663 */
1664 if (start < end) {
1665 pmd = pmd_offset(pud, start);
1666 if (pmd_none(*pmd))
1667 if (alloc_pte_page(pmd))
1668 return -1;
1669
1670 populate_pte(cpa, start, end, num_pages - cur_pages,
1671 pmd, pgprot);
1672 }
1673 return num_pages;
1674 }
1675
populate_pud(struct cpa_data * cpa,unsigned long start,p4d_t * p4d,pgprot_t pgprot)1676 static int populate_pud(struct cpa_data *cpa, unsigned long start, p4d_t *p4d,
1677 pgprot_t pgprot)
1678 {
1679 pud_t *pud;
1680 unsigned long end;
1681 long cur_pages = 0;
1682 pgprot_t pud_pgprot;
1683
1684 end = start + (cpa->numpages << PAGE_SHIFT);
1685
1686 /*
1687 * Not on a Gb page boundary? => map everything up to it with
1688 * smaller pages.
1689 */
1690 if (start & (PUD_SIZE - 1)) {
1691 unsigned long pre_end;
1692 unsigned long next_page = (start + PUD_SIZE) & PUD_MASK;
1693
1694 pre_end = min_t(unsigned long, end, next_page);
1695 cur_pages = (pre_end - start) >> PAGE_SHIFT;
1696 cur_pages = min_t(int, (int)cpa->numpages, cur_pages);
1697
1698 pud = pud_offset(p4d, start);
1699
1700 /*
1701 * Need a PMD page?
1702 */
1703 if (pud_none(*pud))
1704 if (alloc_pmd_page(pud))
1705 return -1;
1706
1707 cur_pages = populate_pmd(cpa, start, pre_end, cur_pages,
1708 pud, pgprot);
1709 if (cur_pages < 0)
1710 return cur_pages;
1711
1712 start = pre_end;
1713 }
1714
1715 /* We mapped them all? */
1716 if (cpa->numpages == cur_pages)
1717 return cur_pages;
1718
1719 pud = pud_offset(p4d, start);
1720 pud_pgprot = pgprot_4k_2_large(pgprot);
1721
1722 /*
1723 * Map everything starting from the Gb boundary, possibly with 1G pages
1724 */
1725 while (boot_cpu_has(X86_FEATURE_GBPAGES) && end - start >= PUD_SIZE) {
1726 set_pud(pud, pud_mkhuge(pfn_pud(cpa->pfn,
1727 canon_pgprot(pud_pgprot))));
1728
1729 start += PUD_SIZE;
1730 cpa->pfn += PUD_SIZE >> PAGE_SHIFT;
1731 cur_pages += PUD_SIZE >> PAGE_SHIFT;
1732 pud++;
1733 }
1734
1735 /* Map trailing leftover */
1736 if (start < end) {
1737 long tmp;
1738
1739 pud = pud_offset(p4d, start);
1740 if (pud_none(*pud))
1741 if (alloc_pmd_page(pud))
1742 return -1;
1743
1744 tmp = populate_pmd(cpa, start, end, cpa->numpages - cur_pages,
1745 pud, pgprot);
1746 if (tmp < 0)
1747 return cur_pages;
1748
1749 cur_pages += tmp;
1750 }
1751 return cur_pages;
1752 }
1753
1754 /*
1755 * Restrictions for kernel page table do not necessarily apply when mapping in
1756 * an alternate PGD.
1757 */
populate_pgd(struct cpa_data * cpa,unsigned long addr)1758 static int populate_pgd(struct cpa_data *cpa, unsigned long addr)
1759 {
1760 pgprot_t pgprot = __pgprot(_KERNPG_TABLE);
1761 pud_t *pud = NULL; /* shut up gcc */
1762 p4d_t *p4d;
1763 pgd_t *pgd_entry;
1764 long ret;
1765
1766 pgd_entry = cpa->pgd + pgd_index(addr);
1767
1768 if (pgd_none(*pgd_entry)) {
1769 /*
1770 * Pass 0 as a placeholder for the second argument, since the
1771 * generic implementation of p4d_alloc_one() does not use it.
1772 */
1773 p4d = p4d_alloc_one(&init_mm, 0);
1774 if (!p4d)
1775 return -1;
1776
1777 set_pgd(pgd_entry, __pgd(__pa(p4d) | _KERNPG_TABLE));
1778 }
1779
1780 /*
1781 * Allocate a PUD page and hand it down for mapping.
1782 */
1783 p4d = p4d_offset(pgd_entry, addr);
1784 if (p4d_none(*p4d)) {
1785 /*
1786 * Pass 0 as a placeholder for the second argument, since the
1787 * generic implementation of pud_alloc_one() does not use it.
1788 */
1789 pud = pud_alloc_one(&init_mm, 0);
1790 if (!pud)
1791 return -1;
1792
1793 set_p4d(p4d, __p4d(__pa(pud) | _KERNPG_TABLE));
1794 }
1795
1796 pgprot_val(pgprot) &= ~pgprot_val(cpa->mask_clr);
1797 pgprot_val(pgprot) |= pgprot_val(cpa->mask_set);
1798
1799 ret = populate_pud(cpa, addr, p4d, pgprot);
1800 if (ret < 0) {
1801 /*
1802 * Leave the PUD page in place in case some other CPU or thread
1803 * already found it, but remove any useless entries we just
1804 * added to it.
1805 */
1806 unmap_pud_range(p4d, addr,
1807 addr + (cpa->numpages << PAGE_SHIFT));
1808 return ret;
1809 }
1810
1811 cpa->numpages = ret;
1812 return 0;
1813 }
1814
__cpa_process_fault(struct cpa_data * cpa,unsigned long vaddr,int primary)1815 static int __cpa_process_fault(struct cpa_data *cpa, unsigned long vaddr,
1816 int primary)
1817 {
1818 if (cpa->pgd) {
1819 /*
1820 * Right now, we only execute this code path when mapping
1821 * the EFI virtual memory map regions, no other users
1822 * provide a ->pgd value. This may change in the future.
1823 */
1824 return populate_pgd(cpa, vaddr);
1825 }
1826
1827 /*
1828 * Ignore all non primary paths.
1829 */
1830 if (!primary) {
1831 cpa->numpages = 1;
1832 return 0;
1833 }
1834
1835 /*
1836 * Ignore the NULL PTE for kernel identity mapping, as it is expected
1837 * to have holes.
1838 * Also set numpages to '1' indicating that we processed cpa req for
1839 * one virtual address page and its pfn. TBD: numpages can be set based
1840 * on the initial value and the level returned by lookup_address().
1841 */
1842 if (within(vaddr, PAGE_OFFSET,
1843 PAGE_OFFSET + (max_pfn_mapped << PAGE_SHIFT))) {
1844 cpa->numpages = 1;
1845 cpa->pfn = __pa(vaddr) >> PAGE_SHIFT;
1846 return 0;
1847
1848 } else if (__cpa_pfn_in_highmap(cpa->pfn)) {
1849 /* Faults in the highmap are OK, so do not warn: */
1850 return -EFAULT;
1851 } else {
1852 WARN(1, KERN_WARNING "CPA: called for zero pte. "
1853 "vaddr = %lx cpa->vaddr = %lx\n", vaddr,
1854 *cpa->vaddr);
1855
1856 return -EFAULT;
1857 }
1858 }
1859
__change_page_attr(struct cpa_data * cpa,int primary)1860 static int __change_page_attr(struct cpa_data *cpa, int primary)
1861 {
1862 unsigned long address;
1863 int do_split, err;
1864 unsigned int level;
1865 pte_t *kpte, old_pte;
1866 bool nx, rw;
1867
1868 address = __cpa_addr(cpa, cpa->curpage);
1869 repeat:
1870 kpte = _lookup_address_cpa(cpa, address, &level, &nx, &rw);
1871 if (!kpte)
1872 return __cpa_process_fault(cpa, address, primary);
1873
1874 old_pte = *kpte;
1875 if (pte_none(old_pte))
1876 return __cpa_process_fault(cpa, address, primary);
1877
1878 if (level == PG_LEVEL_4K) {
1879 pte_t new_pte;
1880 pgprot_t old_prot = pte_pgprot(old_pte);
1881 pgprot_t new_prot = pte_pgprot(old_pte);
1882 unsigned long pfn = pte_pfn(old_pte);
1883
1884 pgprot_val(new_prot) &= ~pgprot_val(cpa->mask_clr);
1885 pgprot_val(new_prot) |= pgprot_val(cpa->mask_set);
1886
1887 cpa_inc_4k_install();
1888 /* Hand in lpsize = 0 to enforce the protection mechanism */
1889 new_prot = static_protections(new_prot, address, pfn, 1, 0,
1890 CPA_PROTECT);
1891
1892 new_prot = verify_rwx(old_prot, new_prot, address, pfn, 1,
1893 nx, rw);
1894
1895 new_prot = pgprot_clear_protnone_bits(new_prot);
1896
1897 /*
1898 * We need to keep the pfn from the existing PTE,
1899 * after all we're only going to change its attributes
1900 * not the memory it points to
1901 */
1902 new_pte = pfn_pte(pfn, new_prot);
1903 cpa->pfn = pfn;
1904 /*
1905 * Do we really change anything ?
1906 */
1907 if (pte_val(old_pte) != pte_val(new_pte)) {
1908 set_pte_atomic(kpte, new_pte);
1909 cpa->flags |= CPA_FLUSHTLB;
1910 }
1911 cpa->numpages = 1;
1912 return 0;
1913 }
1914
1915 /*
1916 * Check, whether we can keep the large page intact
1917 * and just change the pte:
1918 */
1919 do_split = should_split_large_page(kpte, address, cpa);
1920 /*
1921 * When the range fits into the existing large page,
1922 * return. cp->numpages and cpa->tlbflush have been updated in
1923 * try_large_page:
1924 */
1925 if (do_split <= 0)
1926 return do_split;
1927
1928 /*
1929 * We have to split the large page:
1930 */
1931 err = split_large_page(cpa, kpte, address);
1932 if (!err)
1933 goto repeat;
1934
1935 return err;
1936 }
1937
1938 static int __change_page_attr_set_clr(struct cpa_data *cpa, int primary);
1939
1940 /*
1941 * Check the directmap and "high kernel map" 'aliases'.
1942 */
cpa_process_alias(struct cpa_data * cpa)1943 static int cpa_process_alias(struct cpa_data *cpa)
1944 {
1945 struct cpa_data alias_cpa;
1946 unsigned long laddr = (unsigned long)__va(cpa->pfn << PAGE_SHIFT);
1947 unsigned long vaddr;
1948 int ret;
1949
1950 if (!pfn_range_is_mapped(cpa->pfn, cpa->pfn + 1))
1951 return 0;
1952
1953 /*
1954 * No need to redo, when the primary call touched the direct
1955 * mapping already:
1956 */
1957 vaddr = __cpa_addr(cpa, cpa->curpage);
1958 if (!(within(vaddr, PAGE_OFFSET,
1959 PAGE_OFFSET + (max_pfn_mapped << PAGE_SHIFT)))) {
1960
1961 alias_cpa = *cpa;
1962 alias_cpa.vaddr = &laddr;
1963 alias_cpa.flags &= ~(CPA_PAGES_ARRAY | CPA_ARRAY);
1964 alias_cpa.curpage = 0;
1965
1966 /* Directmap always has NX set, do not modify. */
1967 if (__supported_pte_mask & _PAGE_NX) {
1968 alias_cpa.mask_clr.pgprot &= ~_PAGE_NX;
1969 alias_cpa.mask_set.pgprot &= ~_PAGE_NX;
1970 }
1971
1972 cpa->force_flush_all = 1;
1973
1974 ret = __change_page_attr_set_clr(&alias_cpa, 0);
1975 if (ret)
1976 return ret;
1977 }
1978
1979 #ifdef CONFIG_X86_64
1980 /*
1981 * If the primary call didn't touch the high mapping already
1982 * and the physical address is inside the kernel map, we need
1983 * to touch the high mapped kernel as well:
1984 */
1985 if (!within(vaddr, (unsigned long)_text, _brk_end) &&
1986 __cpa_pfn_in_highmap(cpa->pfn)) {
1987 unsigned long temp_cpa_vaddr = (cpa->pfn << PAGE_SHIFT) +
1988 __START_KERNEL_map - phys_base;
1989 alias_cpa = *cpa;
1990 alias_cpa.vaddr = &temp_cpa_vaddr;
1991 alias_cpa.flags &= ~(CPA_PAGES_ARRAY | CPA_ARRAY);
1992 alias_cpa.curpage = 0;
1993
1994 /*
1995 * [_text, _brk_end) also covers data, do not modify NX except
1996 * in cases where the highmap is the primary target.
1997 */
1998 if (__supported_pte_mask & _PAGE_NX) {
1999 alias_cpa.mask_clr.pgprot &= ~_PAGE_NX;
2000 alias_cpa.mask_set.pgprot &= ~_PAGE_NX;
2001 }
2002
2003 cpa->force_flush_all = 1;
2004 /*
2005 * The high mapping range is imprecise, so ignore the
2006 * return value.
2007 */
2008 __change_page_attr_set_clr(&alias_cpa, 0);
2009 }
2010 #endif
2011
2012 return 0;
2013 }
2014
__change_page_attr_set_clr(struct cpa_data * cpa,int primary)2015 static int __change_page_attr_set_clr(struct cpa_data *cpa, int primary)
2016 {
2017 unsigned long numpages = cpa->numpages;
2018 unsigned long rempages = numpages;
2019 bool lock = true;
2020 int ret = 0;
2021
2022 /*
2023 * No changes, easy!
2024 */
2025 if (!(pgprot_val(cpa->mask_set) | pgprot_val(cpa->mask_clr)) &&
2026 !cpa->force_split)
2027 return ret;
2028
2029 /*
2030 * DEBUG_PAGEALLOC is special; it is called from any context the
2031 * page-allocator is, which violates the normal cpa_lock locking
2032 * rules.
2033 *
2034 * However, since it is part of the page-allocator, things are still
2035 * properly serialized by the page-allocator locking and the fact that
2036 * when a page is owned by the page-allocator, it isn't owned by
2037 * anybody else. That is, you *SHOULD NOT* be calling cpa() on memory
2038 * that isn't allocated.
2039 *
2040 * Additionally, DEBUG_PAGEALLOC ensures (per probe_page_size_mask())
2041 * that the kernel mapping is 4k pages, therefore there are no large
2042 * pages to split/collapse.
2043 *
2044 * Furthermore, the page-allocator strictly manages pages that
2045 * *exist*, avoiding pgd_lock.
2046 *
2047 * Therefore, it is safe to not take cpa_lock.
2048 */
2049 if (debug_pagealloc_enabled() && (cpa->flags & CPA_DEBUG_PAGEALLOC))
2050 lock = false;
2051
2052 while (rempages) {
2053 /*
2054 * Store the remaining nr of pages for the large page
2055 * preservation check.
2056 */
2057 cpa->numpages = rempages;
2058 /* for array changes, we can't use large page */
2059 if (cpa->flags & (CPA_ARRAY | CPA_PAGES_ARRAY))
2060 cpa->numpages = 1;
2061
2062 if (lock) {
2063 guard(spinlock)(&cpa_lock);
2064 ret = __change_page_attr(cpa, primary);
2065 } else {
2066 ret = __change_page_attr(cpa, primary);
2067 }
2068 if (ret)
2069 goto out;
2070
2071 if (primary && !(cpa->flags & CPA_NO_CHECK_ALIAS)) {
2072 ret = cpa_process_alias(cpa);
2073 if (ret)
2074 goto out;
2075 }
2076
2077 /*
2078 * Adjust the number of pages with the result of the
2079 * CPA operation. Either a large page has been
2080 * preserved or a single page update happened.
2081 */
2082 BUG_ON(cpa->numpages > rempages || !cpa->numpages);
2083 rempages -= cpa->numpages;
2084 cpa->curpage += cpa->numpages;
2085 }
2086
2087 out:
2088 /* Restore the original numpages */
2089 cpa->numpages = numpages;
2090 return ret;
2091 }
2092
change_page_attr_set_clr(unsigned long * addr,int numpages,pgprot_t mask_set,pgprot_t mask_clr,int force_split,int in_flag,struct page ** pages)2093 static int change_page_attr_set_clr(unsigned long *addr, int numpages,
2094 pgprot_t mask_set, pgprot_t mask_clr,
2095 int force_split, int in_flag,
2096 struct page **pages)
2097 {
2098 struct cpa_data cpa;
2099 int ret, cache;
2100
2101 memset(&cpa, 0, sizeof(cpa));
2102
2103 /*
2104 * Check, if we are requested to set a not supported
2105 * feature. Clearing non-supported features is OK.
2106 */
2107 mask_set = canon_pgprot(mask_set);
2108
2109 if (!pgprot_val(mask_set) && !pgprot_val(mask_clr) && !force_split)
2110 return 0;
2111
2112 /* Ensure we are PAGE_SIZE aligned */
2113 if (in_flag & CPA_ARRAY) {
2114 int i;
2115 for (i = 0; i < numpages; i++) {
2116 if (addr[i] & ~PAGE_MASK) {
2117 addr[i] &= PAGE_MASK;
2118 WARN_ON_ONCE(1);
2119 }
2120 }
2121 } else if (!(in_flag & CPA_PAGES_ARRAY)) {
2122 /*
2123 * in_flag of CPA_PAGES_ARRAY implies it is aligned.
2124 * No need to check in that case
2125 */
2126 if (*addr & ~PAGE_MASK) {
2127 *addr &= PAGE_MASK;
2128 /*
2129 * People should not be passing in unaligned addresses:
2130 */
2131 WARN_ON_ONCE(1);
2132 }
2133 }
2134
2135 /* Must avoid aliasing mappings in the highmem code */
2136 kmap_flush_unused();
2137
2138 vm_unmap_aliases();
2139
2140 cpa.vaddr = addr;
2141 cpa.pages = pages;
2142 cpa.numpages = numpages;
2143 cpa.mask_set = mask_set;
2144 cpa.mask_clr = mask_clr;
2145 cpa.flags = in_flag;
2146 cpa.curpage = 0;
2147 cpa.force_split = force_split;
2148
2149 /* Avoid race with concurrent CPA collapse. */
2150 cpa.init_mm_read_locked = true;
2151 scoped_guard(mmap_read_lock, &init_mm)
2152 ret = __change_page_attr_set_clr(&cpa, 1);
2153 cpa.init_mm_read_locked = false;
2154
2155 /*
2156 * Check whether we really changed something:
2157 */
2158 if (!(cpa.flags & CPA_FLUSHTLB))
2159 goto out;
2160
2161 /*
2162 * No need to flush, when we did not set any of the caching
2163 * attributes:
2164 */
2165 cache = !!pgprot2cachemode(mask_set);
2166
2167 /*
2168 * On error; flush everything to be sure.
2169 */
2170 if (ret) {
2171 cpa_flush_all(cache);
2172 goto out;
2173 }
2174
2175 cpa_flush(&cpa, cache);
2176 out:
2177 return ret;
2178 }
2179
change_page_attr_set(unsigned long * addr,int numpages,pgprot_t mask,int array)2180 static inline int change_page_attr_set(unsigned long *addr, int numpages,
2181 pgprot_t mask, int array)
2182 {
2183 return change_page_attr_set_clr(addr, numpages, mask, __pgprot(0), 0,
2184 (array ? CPA_ARRAY : 0), NULL);
2185 }
2186
change_page_attr_clear(unsigned long * addr,int numpages,pgprot_t mask,int array)2187 static inline int change_page_attr_clear(unsigned long *addr, int numpages,
2188 pgprot_t mask, int array)
2189 {
2190 return change_page_attr_set_clr(addr, numpages, __pgprot(0), mask, 0,
2191 (array ? CPA_ARRAY : 0), NULL);
2192 }
2193
cpa_set_pages_array(struct page ** pages,int numpages,pgprot_t mask)2194 static inline int cpa_set_pages_array(struct page **pages, int numpages,
2195 pgprot_t mask)
2196 {
2197 return change_page_attr_set_clr(NULL, numpages, mask, __pgprot(0), 0,
2198 CPA_PAGES_ARRAY, pages);
2199 }
2200
cpa_clear_pages_array(struct page ** pages,int numpages,pgprot_t mask)2201 static inline int cpa_clear_pages_array(struct page **pages, int numpages,
2202 pgprot_t mask)
2203 {
2204 return change_page_attr_set_clr(NULL, numpages, __pgprot(0), mask, 0,
2205 CPA_PAGES_ARRAY, pages);
2206 }
2207
_set_memory_uc(unsigned long addr,int numpages)2208 int _set_memory_uc(unsigned long addr, int numpages)
2209 {
2210 /*
2211 * for now UC MINUS. see comments in ioremap()
2212 * If you really need strong UC use ioremap_uc(), but note
2213 * that you cannot override IO areas with set_memory_*() as
2214 * these helpers cannot work with IO memory.
2215 */
2216 return change_page_attr_set(&addr, numpages,
2217 cachemode2pgprot(_PAGE_CACHE_MODE_UC_MINUS),
2218 0);
2219 }
2220
set_memory_uc(unsigned long addr,int numpages)2221 int set_memory_uc(unsigned long addr, int numpages)
2222 {
2223 int ret;
2224
2225 /*
2226 * for now UC MINUS. see comments in ioremap()
2227 */
2228 ret = memtype_reserve(__pa(addr), __pa(addr) + numpages * PAGE_SIZE,
2229 _PAGE_CACHE_MODE_UC_MINUS, NULL);
2230 if (ret)
2231 goto out_err;
2232
2233 ret = _set_memory_uc(addr, numpages);
2234 if (ret)
2235 goto out_free;
2236
2237 return 0;
2238
2239 out_free:
2240 memtype_free(__pa(addr), __pa(addr) + numpages * PAGE_SIZE);
2241 out_err:
2242 return ret;
2243 }
2244 EXPORT_SYMBOL(set_memory_uc);
2245
_set_memory_wc(unsigned long addr,int numpages)2246 int _set_memory_wc(unsigned long addr, int numpages)
2247 {
2248 int ret;
2249
2250 ret = change_page_attr_set(&addr, numpages,
2251 cachemode2pgprot(_PAGE_CACHE_MODE_UC_MINUS),
2252 0);
2253 if (!ret) {
2254 ret = change_page_attr_set_clr(&addr, numpages,
2255 cachemode2pgprot(_PAGE_CACHE_MODE_WC),
2256 __pgprot(_PAGE_CACHE_MASK),
2257 0, 0, NULL);
2258 }
2259 return ret;
2260 }
2261
set_memory_wc(unsigned long addr,int numpages)2262 int set_memory_wc(unsigned long addr, int numpages)
2263 {
2264 int ret;
2265
2266 ret = memtype_reserve(__pa(addr), __pa(addr) + numpages * PAGE_SIZE,
2267 _PAGE_CACHE_MODE_WC, NULL);
2268 if (ret)
2269 return ret;
2270
2271 ret = _set_memory_wc(addr, numpages);
2272 if (ret)
2273 memtype_free(__pa(addr), __pa(addr) + numpages * PAGE_SIZE);
2274
2275 return ret;
2276 }
2277 EXPORT_SYMBOL(set_memory_wc);
2278
_set_memory_wt(unsigned long addr,int numpages)2279 int _set_memory_wt(unsigned long addr, int numpages)
2280 {
2281 return change_page_attr_set(&addr, numpages,
2282 cachemode2pgprot(_PAGE_CACHE_MODE_WT), 0);
2283 }
2284
_set_memory_wb(unsigned long addr,int numpages)2285 int _set_memory_wb(unsigned long addr, int numpages)
2286 {
2287 /* WB cache mode is hard wired to all cache attribute bits being 0 */
2288 return change_page_attr_clear(&addr, numpages,
2289 __pgprot(_PAGE_CACHE_MASK), 0);
2290 }
2291
set_memory_wb(unsigned long addr,int numpages)2292 int set_memory_wb(unsigned long addr, int numpages)
2293 {
2294 int ret;
2295
2296 ret = _set_memory_wb(addr, numpages);
2297 if (ret)
2298 return ret;
2299
2300 memtype_free(__pa(addr), __pa(addr) + numpages * PAGE_SIZE);
2301 return 0;
2302 }
2303 EXPORT_SYMBOL(set_memory_wb);
2304
2305 /* Prevent speculative access to a page by marking it not-present */
2306 #ifdef CONFIG_X86_64
set_mce_nospec(unsigned long pfn)2307 int set_mce_nospec(unsigned long pfn)
2308 {
2309 unsigned long decoy_addr;
2310 int rc;
2311
2312 /* SGX pages are not in the 1:1 map */
2313 if (arch_is_platform_page(pfn << PAGE_SHIFT))
2314 return 0;
2315 /*
2316 * We would like to just call:
2317 * set_memory_XX((unsigned long)pfn_to_kaddr(pfn), 1);
2318 * but doing that would radically increase the odds of a
2319 * speculative access to the poison page because we'd have
2320 * the virtual address of the kernel 1:1 mapping sitting
2321 * around in registers.
2322 * Instead we get tricky. We create a non-canonical address
2323 * that looks just like the one we want, but has bit 63 flipped.
2324 * This relies on set_memory_XX() properly sanitizing any __pa()
2325 * results with __PHYSICAL_MASK or PTE_PFN_MASK.
2326 */
2327 decoy_addr = (pfn << PAGE_SHIFT) + (PAGE_OFFSET ^ BIT(63));
2328
2329 rc = set_memory_np(decoy_addr, 1);
2330 if (rc)
2331 pr_warn("Could not invalidate pfn=0x%lx from 1:1 map\n", pfn);
2332 return rc;
2333 }
2334 EXPORT_SYMBOL_GPL(set_mce_nospec);
2335
2336 /* Restore full speculative operation to the pfn. */
clear_mce_nospec(unsigned long pfn)2337 int clear_mce_nospec(unsigned long pfn)
2338 {
2339 unsigned long addr = (unsigned long) pfn_to_kaddr(pfn);
2340
2341 return set_memory_p(addr, 1);
2342 }
2343 EXPORT_SYMBOL_GPL(clear_mce_nospec);
2344 #endif /* CONFIG_X86_64 */
2345
set_memory_x(unsigned long addr,int numpages)2346 int set_memory_x(unsigned long addr, int numpages)
2347 {
2348 if (!(__supported_pte_mask & _PAGE_NX))
2349 return 0;
2350
2351 return change_page_attr_clear(&addr, numpages, __pgprot(_PAGE_NX), 0);
2352 }
2353
set_memory_nx(unsigned long addr,int numpages)2354 int set_memory_nx(unsigned long addr, int numpages)
2355 {
2356 if (!(__supported_pte_mask & _PAGE_NX))
2357 return 0;
2358
2359 return change_page_attr_set(&addr, numpages, __pgprot(_PAGE_NX), 0);
2360 }
2361
set_memory_ro(unsigned long addr,int numpages)2362 int set_memory_ro(unsigned long addr, int numpages)
2363 {
2364 return change_page_attr_clear(&addr, numpages, __pgprot(_PAGE_RW | _PAGE_DIRTY), 0);
2365 }
2366
set_memory_rox(unsigned long addr,int numpages)2367 int set_memory_rox(unsigned long addr, int numpages)
2368 {
2369 pgprot_t clr = __pgprot(_PAGE_RW | _PAGE_DIRTY);
2370
2371 if (__supported_pte_mask & _PAGE_NX)
2372 clr.pgprot |= _PAGE_NX;
2373
2374 return change_page_attr_set_clr(&addr, numpages, __pgprot(0), clr, 0,
2375 CPA_COLLAPSE, NULL);
2376 }
2377
set_memory_rw(unsigned long addr,int numpages)2378 int set_memory_rw(unsigned long addr, int numpages)
2379 {
2380 return change_page_attr_set(&addr, numpages, __pgprot(_PAGE_RW), 0);
2381 }
2382
set_memory_np(unsigned long addr,int numpages)2383 int set_memory_np(unsigned long addr, int numpages)
2384 {
2385 return change_page_attr_clear(&addr, numpages, __pgprot(_PAGE_PRESENT), 0);
2386 }
2387
set_memory_np_noalias(unsigned long addr,int numpages)2388 int set_memory_np_noalias(unsigned long addr, int numpages)
2389 {
2390 return change_page_attr_set_clr(&addr, numpages, __pgprot(0),
2391 __pgprot(_PAGE_PRESENT), 0,
2392 CPA_NO_CHECK_ALIAS, NULL);
2393 }
2394
set_memory_p(unsigned long addr,int numpages)2395 int set_memory_p(unsigned long addr, int numpages)
2396 {
2397 return change_page_attr_set(&addr, numpages, __pgprot(_PAGE_PRESENT), 0);
2398 }
2399
set_memory_4k(unsigned long addr,int numpages)2400 int set_memory_4k(unsigned long addr, int numpages)
2401 {
2402 return change_page_attr_set_clr(&addr, numpages,
2403 __pgprot(_PAGE_KERNEL_4K),
2404 __pgprot(0), 1, 0, NULL);
2405 }
2406
set_memory_nonglobal(unsigned long addr,int numpages)2407 int set_memory_nonglobal(unsigned long addr, int numpages)
2408 {
2409 return change_page_attr_clear(&addr, numpages,
2410 __pgprot(_PAGE_GLOBAL), 0);
2411 }
2412
set_memory_global(unsigned long addr,int numpages)2413 int set_memory_global(unsigned long addr, int numpages)
2414 {
2415 return change_page_attr_set(&addr, numpages,
2416 __pgprot(_PAGE_GLOBAL), 0);
2417 }
2418
2419 /*
2420 * __set_memory_enc_pgtable() is used for the hypervisors that get
2421 * informed about "encryption" status via page tables.
2422 */
__set_memory_enc_pgtable(unsigned long addr,int numpages,bool enc)2423 static int __set_memory_enc_pgtable(unsigned long addr, int numpages, bool enc)
2424 {
2425 pgprot_t empty = __pgprot(0);
2426 struct cpa_data cpa;
2427 int ret;
2428
2429 /* Should not be working on unaligned addresses */
2430 if (WARN_ONCE(addr & ~PAGE_MASK, "misaligned address: %#lx\n", addr))
2431 addr &= PAGE_MASK;
2432
2433 memset(&cpa, 0, sizeof(cpa));
2434 cpa.vaddr = &addr;
2435 cpa.numpages = numpages;
2436 cpa.mask_set = enc ? pgprot_encrypted(empty) : pgprot_decrypted(empty);
2437 cpa.mask_clr = enc ? pgprot_decrypted(empty) : pgprot_encrypted(empty);
2438 cpa.pgd = init_mm.pgd;
2439
2440 /* Must avoid aliasing mappings in the highmem code */
2441 kmap_flush_unused();
2442 vm_unmap_aliases();
2443
2444 /* Flush the caches as needed before changing the encryption attribute. */
2445 if (x86_platform.guest.enc_tlb_flush_required(enc))
2446 cpa_flush(&cpa, x86_platform.guest.enc_cache_flush_required());
2447
2448 /* Notify hypervisor that we are about to set/clr encryption attribute. */
2449 ret = x86_platform.guest.enc_status_change_prepare(addr, numpages, enc);
2450 if (ret)
2451 goto vmm_fail;
2452
2453 ret = __change_page_attr_set_clr(&cpa, 1);
2454
2455 /*
2456 * After changing the encryption attribute, we need to flush TLBs again
2457 * in case any speculative TLB caching occurred (but no need to flush
2458 * caches again). We could just use cpa_flush_all(), but in case TLB
2459 * flushing gets optimized in the cpa_flush() path use the same logic
2460 * as above.
2461 */
2462 cpa_flush(&cpa, 0);
2463
2464 if (ret)
2465 return ret;
2466
2467 /* Notify hypervisor that we have successfully set/clr encryption attribute. */
2468 ret = x86_platform.guest.enc_status_change_finish(addr, numpages, enc);
2469 if (ret)
2470 goto vmm_fail;
2471
2472 return 0;
2473
2474 vmm_fail:
2475 WARN_ONCE(1, "CPA VMM failure to convert memory (addr=%p, numpages=%d) to %s: %d\n",
2476 (void *)addr, numpages, enc ? "private" : "shared", ret);
2477
2478 return ret;
2479 }
2480
2481 /*
2482 * The lock serializes conversions between private and shared memory.
2483 *
2484 * It is taken for read on conversion. A write lock guarantees that no
2485 * concurrent conversions are in progress.
2486 */
2487 static DECLARE_RWSEM(mem_enc_lock);
2488
2489 /*
2490 * Stop new private<->shared conversions.
2491 *
2492 * Taking the exclusive mem_enc_lock waits for in-flight conversions to complete.
2493 * The lock is not released to prevent new conversions from being started.
2494 */
set_memory_enc_stop_conversion(void)2495 bool set_memory_enc_stop_conversion(void)
2496 {
2497 /*
2498 * In a crash scenario, sleep is not allowed. Try to take the lock.
2499 * Failure indicates that there is a race with the conversion.
2500 */
2501 if (oops_in_progress)
2502 return down_write_trylock(&mem_enc_lock);
2503
2504 down_write(&mem_enc_lock);
2505
2506 return true;
2507 }
2508
__set_memory_enc_dec(unsigned long addr,int numpages,bool enc)2509 static int __set_memory_enc_dec(unsigned long addr, int numpages, bool enc)
2510 {
2511 int ret = 0;
2512
2513 if (cc_platform_has(CC_ATTR_MEM_ENCRYPT)) {
2514 if (!down_read_trylock(&mem_enc_lock))
2515 return -EBUSY;
2516
2517 ret = __set_memory_enc_pgtable(addr, numpages, enc);
2518
2519 up_read(&mem_enc_lock);
2520 }
2521
2522 return ret;
2523 }
2524
set_memory_encrypted(unsigned long addr,int numpages)2525 int set_memory_encrypted(unsigned long addr, int numpages)
2526 {
2527 return __set_memory_enc_dec(addr, numpages, true);
2528 }
2529 EXPORT_SYMBOL_GPL(set_memory_encrypted);
2530
set_memory_decrypted(unsigned long addr,int numpages)2531 int set_memory_decrypted(unsigned long addr, int numpages)
2532 {
2533 return __set_memory_enc_dec(addr, numpages, false);
2534 }
2535 EXPORT_SYMBOL_GPL(set_memory_decrypted);
2536
set_pages_uc(struct page * page,int numpages)2537 int set_pages_uc(struct page *page, int numpages)
2538 {
2539 unsigned long addr = (unsigned long)page_address(page);
2540
2541 return set_memory_uc(addr, numpages);
2542 }
2543 EXPORT_SYMBOL(set_pages_uc);
2544
_set_pages_array(struct page ** pages,int numpages,enum page_cache_mode new_type)2545 static int _set_pages_array(struct page **pages, int numpages,
2546 enum page_cache_mode new_type)
2547 {
2548 unsigned long start;
2549 unsigned long end;
2550 enum page_cache_mode set_type;
2551 int i;
2552 int free_idx;
2553 int ret;
2554
2555 for (i = 0; i < numpages; i++) {
2556 if (PageHighMem(pages[i]))
2557 continue;
2558 start = page_to_pfn(pages[i]) << PAGE_SHIFT;
2559 end = start + PAGE_SIZE;
2560 if (memtype_reserve(start, end, new_type, NULL))
2561 goto err_out;
2562 }
2563
2564 /* If WC, set to UC- first and then WC */
2565 set_type = (new_type == _PAGE_CACHE_MODE_WC) ?
2566 _PAGE_CACHE_MODE_UC_MINUS : new_type;
2567
2568 ret = cpa_set_pages_array(pages, numpages,
2569 cachemode2pgprot(set_type));
2570 if (!ret && new_type == _PAGE_CACHE_MODE_WC)
2571 ret = change_page_attr_set_clr(NULL, numpages,
2572 cachemode2pgprot(
2573 _PAGE_CACHE_MODE_WC),
2574 __pgprot(_PAGE_CACHE_MASK),
2575 0, CPA_PAGES_ARRAY, pages);
2576 if (ret)
2577 goto err_out;
2578 return 0; /* Success */
2579 err_out:
2580 free_idx = i;
2581 for (i = 0; i < free_idx; i++) {
2582 if (PageHighMem(pages[i]))
2583 continue;
2584 start = page_to_pfn(pages[i]) << PAGE_SHIFT;
2585 end = start + PAGE_SIZE;
2586 memtype_free(start, end);
2587 }
2588 return -EINVAL;
2589 }
2590
set_pages_array_uc(struct page ** pages,int numpages)2591 int set_pages_array_uc(struct page **pages, int numpages)
2592 {
2593 return _set_pages_array(pages, numpages, _PAGE_CACHE_MODE_UC_MINUS);
2594 }
2595 EXPORT_SYMBOL(set_pages_array_uc);
2596
set_pages_array_wc(struct page ** pages,int numpages)2597 int set_pages_array_wc(struct page **pages, int numpages)
2598 {
2599 return _set_pages_array(pages, numpages, _PAGE_CACHE_MODE_WC);
2600 }
2601 EXPORT_SYMBOL(set_pages_array_wc);
2602
set_pages_wb(struct page * page,int numpages)2603 int set_pages_wb(struct page *page, int numpages)
2604 {
2605 unsigned long addr = (unsigned long)page_address(page);
2606
2607 return set_memory_wb(addr, numpages);
2608 }
2609 EXPORT_SYMBOL(set_pages_wb);
2610
set_pages_array_wb(struct page ** pages,int numpages)2611 int set_pages_array_wb(struct page **pages, int numpages)
2612 {
2613 int retval;
2614 unsigned long start;
2615 unsigned long end;
2616 int i;
2617
2618 /* WB cache mode is hard wired to all cache attribute bits being 0 */
2619 retval = cpa_clear_pages_array(pages, numpages,
2620 __pgprot(_PAGE_CACHE_MASK));
2621 if (retval)
2622 return retval;
2623
2624 for (i = 0; i < numpages; i++) {
2625 if (PageHighMem(pages[i]))
2626 continue;
2627 start = page_to_pfn(pages[i]) << PAGE_SHIFT;
2628 end = start + PAGE_SIZE;
2629 memtype_free(start, end);
2630 }
2631
2632 return 0;
2633 }
2634 EXPORT_SYMBOL(set_pages_array_wb);
2635
set_pages_ro(struct page * page,int numpages)2636 int set_pages_ro(struct page *page, int numpages)
2637 {
2638 unsigned long addr = (unsigned long)page_address(page);
2639
2640 return set_memory_ro(addr, numpages);
2641 }
2642
set_pages_rw(struct page * page,int numpages)2643 int set_pages_rw(struct page *page, int numpages)
2644 {
2645 unsigned long addr = (unsigned long)page_address(page);
2646
2647 return set_memory_rw(addr, numpages);
2648 }
2649
__set_pages_p(struct page * page,int numpages,unsigned int cpa_flags)2650 static int __set_pages_p(struct page *page, int numpages, unsigned int cpa_flags)
2651 {
2652 unsigned long tempaddr = (unsigned long) page_address(page);
2653 struct cpa_data cpa = { .vaddr = &tempaddr,
2654 .pgd = NULL,
2655 .numpages = numpages,
2656 .mask_set = __pgprot(_PAGE_PRESENT | _PAGE_RW),
2657 .mask_clr = __pgprot(0),
2658 .flags = CPA_NO_CHECK_ALIAS | cpa_flags };
2659
2660 /*
2661 * No alias checking needed for setting present flag. otherwise,
2662 * we may need to break large pages for 64-bit kernel text
2663 * mappings (this adds to complexity if we want to do this from
2664 * atomic context especially). Let's keep it simple!
2665 */
2666 return __change_page_attr_set_clr(&cpa, 1);
2667 }
2668
__set_pages_np(struct page * page,int numpages,unsigned int cpa_flags)2669 static int __set_pages_np(struct page *page, int numpages, unsigned int cpa_flags)
2670 {
2671 unsigned long tempaddr = (unsigned long) page_address(page);
2672 struct cpa_data cpa = { .vaddr = &tempaddr,
2673 .pgd = NULL,
2674 .numpages = numpages,
2675 .mask_set = __pgprot(0),
2676 .mask_clr = __pgprot(_PAGE_PRESENT | _PAGE_RW | _PAGE_DIRTY),
2677 .flags = CPA_NO_CHECK_ALIAS | cpa_flags };
2678
2679 /*
2680 * No alias checking needed for setting not present flag. otherwise,
2681 * we may need to break large pages for 64-bit kernel text
2682 * mappings (this adds to complexity if we want to do this from
2683 * atomic context especially). Let's keep it simple!
2684 */
2685 return __change_page_attr_set_clr(&cpa, 1);
2686 }
2687
set_direct_map_invalid_noflush(struct page * page)2688 int set_direct_map_invalid_noflush(struct page *page)
2689 {
2690 return __set_pages_np(page, 1, 0);
2691 }
2692
set_direct_map_default_noflush(struct page * page)2693 int set_direct_map_default_noflush(struct page *page)
2694 {
2695 return __set_pages_p(page, 1, 0);
2696 }
2697
set_direct_map_valid_noflush(struct page * page,unsigned nr,bool valid)2698 int set_direct_map_valid_noflush(struct page *page, unsigned nr, bool valid)
2699 {
2700 if (valid)
2701 return __set_pages_p(page, nr, 0);
2702
2703 return __set_pages_np(page, nr, 0);
2704 }
2705
2706 #ifdef CONFIG_DEBUG_PAGEALLOC
__kernel_map_pages(struct page * page,int numpages,int enable)2707 void __kernel_map_pages(struct page *page, int numpages, int enable)
2708 {
2709 if (PageHighMem(page))
2710 return;
2711 if (!enable) {
2712 debug_check_no_locks_freed(page_address(page),
2713 numpages * PAGE_SIZE);
2714 }
2715
2716 /*
2717 * The return value is ignored as the calls cannot fail.
2718 * Large pages for identity mappings are not used at boot time
2719 * and hence no memory allocations during large page split.
2720 */
2721 if (enable)
2722 __set_pages_p(page, numpages, CPA_DEBUG_PAGEALLOC);
2723 else
2724 __set_pages_np(page, numpages, CPA_DEBUG_PAGEALLOC);
2725
2726 /*
2727 * We should perform an IPI and flush all tlbs, but that can
2728 * deadlock, settle for a local flush.
2729 *
2730 * Not doing a global TLB flush means that remote CPUs will retain
2731 * stale TLB entries. In case of P->NP (on free) this means the remote
2732 * CPUs will not take the faults, making the debug scheme less
2733 * reliable. On the NP->P (on alloc) this means the remote CPUs can
2734 * take a spurious fault. However spurious_kernel_fault() will observe
2735 * *_present() and fix it up.
2736 *
2737 * Preemption needs to be disabled around __flush_tlb_all() due to CR3
2738 * reload in __native_flush_tlb().
2739 */
2740 preempt_disable();
2741 __flush_tlb_all();
2742 preempt_enable();
2743
2744 arch_flush_lazy_mmu_mode();
2745 }
2746 #endif /* CONFIG_DEBUG_PAGEALLOC */
2747
kernel_page_present(struct page * page)2748 bool kernel_page_present(struct page *page)
2749 {
2750 unsigned int level;
2751 pte_t *pte;
2752
2753 if (PageHighMem(page))
2754 return false;
2755
2756 pte = lookup_address((unsigned long)page_address(page), &level);
2757 return (pte_val(*pte) & _PAGE_PRESENT);
2758 }
2759
kernel_map_pages_in_pgd(pgd_t * pgd,u64 pfn,unsigned long address,unsigned numpages,unsigned long page_flags)2760 int __init kernel_map_pages_in_pgd(pgd_t *pgd, u64 pfn, unsigned long address,
2761 unsigned numpages, unsigned long page_flags)
2762 {
2763 int retval = -EINVAL;
2764
2765 struct cpa_data cpa = {
2766 .vaddr = &address,
2767 .pfn = pfn,
2768 .pgd = pgd,
2769 .numpages = numpages,
2770 .mask_set = __pgprot(0),
2771 .mask_clr = __pgprot(~page_flags & (_PAGE_NX|_PAGE_RW|_PAGE_DIRTY)),
2772 .flags = CPA_NO_CHECK_ALIAS,
2773 };
2774
2775 WARN_ONCE(num_online_cpus() > 1, "Don't call after initializing SMP");
2776
2777 if (!(__supported_pte_mask & _PAGE_NX))
2778 goto out;
2779
2780 if (!(page_flags & _PAGE_ENC))
2781 cpa.mask_clr = pgprot_encrypted(cpa.mask_clr);
2782
2783 cpa.mask_set = __pgprot(_PAGE_PRESENT | page_flags);
2784
2785 retval = __change_page_attr_set_clr(&cpa, 1);
2786 __flush_tlb_all();
2787
2788 out:
2789 return retval;
2790 }
2791
2792 /*
2793 * __flush_tlb_all() flushes mappings only on current CPU and hence this
2794 * function shouldn't be used in an SMP environment. Presently, it's used only
2795 * during boot (way before smp_init()) by EFI subsystem and hence is ok.
2796 */
kernel_unmap_pages_in_pgd(pgd_t * pgd,unsigned long address,unsigned long numpages)2797 int __init kernel_unmap_pages_in_pgd(pgd_t *pgd, unsigned long address,
2798 unsigned long numpages)
2799 {
2800 int retval;
2801
2802 /*
2803 * The typical sequence for unmapping is to find a pte through
2804 * lookup_address_in_pgd() (ideally, it should never return NULL because
2805 * the address is already mapped) and change its protections. As pfn is
2806 * the *target* of a mapping, it's not useful while unmapping.
2807 */
2808 struct cpa_data cpa = {
2809 .vaddr = &address,
2810 .pfn = 0,
2811 .pgd = pgd,
2812 .numpages = numpages,
2813 .mask_set = __pgprot(0),
2814 .mask_clr = __pgprot(_PAGE_PRESENT | _PAGE_RW | _PAGE_DIRTY),
2815 .flags = CPA_NO_CHECK_ALIAS,
2816 };
2817
2818 WARN_ONCE(num_online_cpus() > 1, "Don't call after initializing SMP");
2819
2820 retval = __change_page_attr_set_clr(&cpa, 1);
2821 __flush_tlb_all();
2822
2823 return retval;
2824 }
2825
2826 /*
2827 * The testcases use internal knowledge of the implementation that shouldn't
2828 * be exposed to the rest of the kernel. Include these directly here.
2829 */
2830 #ifdef CONFIG_CPA_DEBUG
2831 #include "cpa-test.c"
2832 #endif
2833