xref: /linux/arch/arm64/mm/mmu.c (revision fab183d632628381b466a41479489541ac0e29a0)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Based on arch/arm/mm/mmu.c
4  *
5  * Copyright (C) 1995-2005 Russell King
6  * Copyright (C) 2012 ARM Ltd.
7  */
8 
9 #include <linux/cache.h>
10 #include <linux/export.h>
11 #include <linux/kernel.h>
12 #include <linux/errno.h>
13 #include <linux/init.h>
14 #include <linux/ioport.h>
15 #include <linux/kexec.h>
16 #include <linux/libfdt.h>
17 #include <linux/mman.h>
18 #include <linux/nodemask.h>
19 #include <linux/memblock.h>
20 #include <linux/memremap.h>
21 #include <linux/memory.h>
22 #include <linux/fs.h>
23 #include <linux/io.h>
24 #include <linux/mm.h>
25 #include <linux/vmalloc.h>
26 #include <linux/set_memory.h>
27 #include <linux/suspend.h>
28 #include <linux/kfence.h>
29 #include <linux/pkeys.h>
30 #include <linux/mm_inline.h>
31 #include <linux/pagewalk.h>
32 #include <linux/stop_machine.h>
33 
34 #include <asm/barrier.h>
35 #include <asm/cputype.h>
36 #include <asm/fixmap.h>
37 #include <asm/kasan.h>
38 #include <asm/kernel-pgtable.h>
39 #include <asm/sections.h>
40 #include <asm/setup.h>
41 #include <linux/sizes.h>
42 #include <asm/tlb.h>
43 #include <asm/mmu_context.h>
44 #include <asm/ptdump.h>
45 #include <asm/tlbflush.h>
46 #include <asm/pgalloc.h>
47 #include <asm/kfence.h>
48 
49 #define NO_BLOCK_MAPPINGS	BIT(0)
50 #define NO_CONT_MAPPINGS	BIT(1)
51 #define NO_EXEC_MAPPINGS	BIT(2)	/* assumes FEAT_HPDS is not used */
52 
53 u64 kimage_voffset __ro_after_init;
54 EXPORT_SYMBOL(kimage_voffset);
55 
56 u32 __boot_cpu_mode[] = { BOOT_CPU_MODE_EL2, BOOT_CPU_MODE_EL1 };
57 
58 static bool rodata_is_rw __ro_after_init = true;
59 
60 /*
61  * The booting CPU updates the failed status @__early_cpu_boot_status,
62  * with MMU turned off.
63  */
64 long __section(".mmuoff.data.write") __early_cpu_boot_status;
65 
66 static DEFINE_SPINLOCK(swapper_pgdir_lock);
67 static DEFINE_MUTEX(fixmap_lock);
68 
set_swapper_pgd(pgd_t * pgdp,pgd_t pgd)69 void noinstr set_swapper_pgd(pgd_t *pgdp, pgd_t pgd)
70 {
71 	pgd_t *fixmap_pgdp;
72 
73 	/*
74 	 * Don't bother with the fixmap if swapper_pg_dir is still mapped
75 	 * writable in the kernel mapping.
76 	 */
77 	if (rodata_is_rw) {
78 		WRITE_ONCE(*pgdp, pgd);
79 		dsb(ishst);
80 		isb();
81 		return;
82 	}
83 
84 	spin_lock(&swapper_pgdir_lock);
85 	fixmap_pgdp = pgd_set_fixmap(__pa_symbol(pgdp));
86 	WRITE_ONCE(*fixmap_pgdp, pgd);
87 	/*
88 	 * We need dsb(ishst) here to ensure the page-table-walker sees
89 	 * our new entry before set_p?d() returns. The fixmap's
90 	 * flush_tlb_kernel_range() via clear_fixmap() does this for us.
91 	 */
92 	pgd_clear_fixmap();
93 	spin_unlock(&swapper_pgdir_lock);
94 }
95 
phys_mem_access_prot(struct file * file,unsigned long pfn,unsigned long size,pgprot_t vma_prot)96 pgprot_t phys_mem_access_prot(struct file *file, unsigned long pfn,
97 			      unsigned long size, pgprot_t vma_prot)
98 {
99 	if (!pfn_is_map_memory(pfn))
100 		return pgprot_noncached(vma_prot);
101 	else if (file->f_flags & O_SYNC)
102 		return pgprot_writecombine(vma_prot);
103 	return vma_prot;
104 }
105 EXPORT_SYMBOL(phys_mem_access_prot);
106 
early_pgtable_alloc(enum pgtable_level pgtable_level)107 static phys_addr_t __init early_pgtable_alloc(enum pgtable_level pgtable_level)
108 {
109 	phys_addr_t phys;
110 
111 	phys = memblock_phys_alloc_range(PAGE_SIZE, PAGE_SIZE, 0,
112 					 MEMBLOCK_ALLOC_NOLEAKTRACE);
113 	if (!phys)
114 		panic("Failed to allocate page table page\n");
115 
116 	return phys;
117 }
118 
pgattr_change_is_safe(pteval_t old,pteval_t new)119 bool pgattr_change_is_safe(pteval_t old, pteval_t new)
120 {
121 	/*
122 	 * The following mapping attributes may be updated in live
123 	 * kernel mappings without the need for break-before-make.
124 	 */
125 	pteval_t mask = PTE_PXN | PTE_RDONLY | PTE_WRITE | PTE_NG |
126 			PTE_SWBITS_MASK;
127 
128 	/* creating or taking down mappings is always safe */
129 	if (!pte_valid(__pte(old)) || !pte_valid(__pte(new)))
130 		return true;
131 
132 	/* A live entry's pfn should not change */
133 	if (pte_pfn(__pte(old)) != pte_pfn(__pte(new)))
134 		return false;
135 
136 	/* Transitioning from Non-Global to Global is unsafe */
137 	if (old & ~new & PTE_NG)
138 		return false;
139 
140 	/*
141 	 * Changing the memory type between Normal and Normal-Tagged is safe
142 	 * since Tagged is considered a permission attribute from the
143 	 * mismatched attribute aliases perspective.
144 	 */
145 	if (((old & PTE_ATTRINDX_MASK) == PTE_ATTRINDX(MT_NORMAL) ||
146 	     (old & PTE_ATTRINDX_MASK) == PTE_ATTRINDX(MT_NORMAL_TAGGED)) &&
147 	    ((new & PTE_ATTRINDX_MASK) == PTE_ATTRINDX(MT_NORMAL) ||
148 	     (new & PTE_ATTRINDX_MASK) == PTE_ATTRINDX(MT_NORMAL_TAGGED)))
149 		mask |= PTE_ATTRINDX_MASK;
150 
151 	return ((old ^ new) & ~mask) == 0;
152 }
153 
init_clear_pgtable(void * table)154 static void init_clear_pgtable(void *table)
155 {
156 	clear_page(table);
157 
158 	/* Ensure the zeroing is observed by page table walks. */
159 	dsb(ishst);
160 }
161 
init_pte(pte_t * ptep,unsigned long addr,unsigned long end,phys_addr_t phys,pgprot_t prot)162 static void init_pte(pte_t *ptep, unsigned long addr, unsigned long end,
163 		     phys_addr_t phys, pgprot_t prot)
164 {
165 	do {
166 		pte_t old_pte = __ptep_get(ptep);
167 
168 		/*
169 		 * Required barriers to make this visible to the table walker
170 		 * are deferred to the end of alloc_init_cont_pte().
171 		 */
172 		__set_pte_nosync(ptep, pfn_pte(__phys_to_pfn(phys), prot));
173 
174 		/*
175 		 * After the PTE entry has been populated once, we
176 		 * only allow updates to the permission attributes.
177 		 */
178 		BUG_ON(!pgattr_change_is_safe(pte_val(old_pte),
179 					      pte_val(__ptep_get(ptep))));
180 
181 		phys += PAGE_SIZE;
182 	} while (ptep++, addr += PAGE_SIZE, addr != end);
183 }
184 
pte_range_has_valid_noncont(pte_t * ptep)185 static bool pte_range_has_valid_noncont(pte_t *ptep)
186 {
187 	for (int i = 0; i < CONT_PTES; i++) {
188 		pte_t pte = __ptep_get(&ptep[i]);
189 
190 		if (pte_valid(pte) && !pte_cont(pte))
191 			return true;
192 	}
193 	return false;
194 }
195 
alloc_init_cont_pte(pmd_t * pmdp,unsigned long addr,unsigned long end,phys_addr_t phys,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)196 static int alloc_init_cont_pte(pmd_t *pmdp, unsigned long addr,
197 			       unsigned long end, phys_addr_t phys,
198 			       pgprot_t prot,
199 			       phys_addr_t (*pgtable_alloc)(enum pgtable_level),
200 			       int flags)
201 {
202 	unsigned long next;
203 	pmd_t pmd = READ_ONCE(*pmdp);
204 	pte_t *ptep;
205 
206 	BUG_ON(pmd_leaf(pmd));
207 	if (pmd_none(pmd)) {
208 		pmdval_t pmdval = PMD_TYPE_TABLE | PMD_TABLE_UXN | PMD_TABLE_AF;
209 		phys_addr_t pte_phys;
210 
211 		if (flags & NO_EXEC_MAPPINGS)
212 			pmdval |= PMD_TABLE_PXN;
213 		BUG_ON(!pgtable_alloc);
214 		pte_phys = pgtable_alloc(PGTABLE_LEVEL_PTE);
215 		if (pte_phys == INVALID_PHYS_ADDR)
216 			return -ENOMEM;
217 		ptep = pte_set_fixmap(pte_phys);
218 		init_clear_pgtable(ptep);
219 		ptep += pte_index(addr);
220 		__pmd_populate(pmdp, pte_phys, pmdval);
221 	} else {
222 		BUG_ON(pmd_bad(pmd));
223 		ptep = pte_set_fixmap_offset(pmdp, addr);
224 	}
225 
226 	do {
227 		pgprot_t __prot = prot;
228 
229 		next = pte_cont_addr_end(addr, end);
230 
231 		/* use a contiguous mapping if the range is suitably aligned */
232 		if ((((addr | next | phys) & ~CONT_PTE_MASK) == 0) &&
233 		    (flags & NO_CONT_MAPPINGS) == 0 &&
234 		    !pte_range_has_valid_noncont(ptep))
235 			__prot = __pgprot(pgprot_val(prot) | PTE_CONT);
236 
237 		init_pte(ptep, addr, next, phys, __prot);
238 
239 		ptep += pte_index(next) - pte_index(addr);
240 		phys += next - addr;
241 	} while (addr = next, addr != end);
242 
243 	/*
244 	 * Note: barriers and maintenance necessary to clear the fixmap slot
245 	 * ensure that all previous pgtable writes are visible to the table
246 	 * walker.
247 	 */
248 	pte_clear_fixmap();
249 
250 	return 0;
251 }
252 
init_pmd(pmd_t * pmdp,unsigned long addr,unsigned long end,phys_addr_t phys,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)253 static int init_pmd(pmd_t *pmdp, unsigned long addr, unsigned long end,
254 		    phys_addr_t phys, pgprot_t prot,
255 		    phys_addr_t (*pgtable_alloc)(enum pgtable_level), int flags)
256 {
257 	unsigned long next;
258 
259 	do {
260 		pmd_t old_pmd = READ_ONCE(*pmdp);
261 
262 		next = pmd_addr_end(addr, end);
263 
264 		/* try section mapping first */
265 		if (((addr | next | phys) & ~PMD_MASK) == 0 &&
266 		    (flags & NO_BLOCK_MAPPINGS) == 0 &&
267 		    !pmd_table(old_pmd)) {
268 			WARN_ON(!pmd_set_huge(pmdp, phys, prot));
269 
270 			/*
271 			 * After the PMD entry has been populated once, we
272 			 * only allow updates to the permission attributes.
273 			 */
274 			BUG_ON(!pgattr_change_is_safe(pmd_val(old_pmd),
275 						      READ_ONCE(pmd_val(*pmdp))));
276 		} else {
277 			int ret;
278 
279 			ret = alloc_init_cont_pte(pmdp, addr, next, phys, prot,
280 						  pgtable_alloc, flags);
281 			if (ret)
282 				return ret;
283 
284 			VM_WARN_ON_ONCE(pmd_val(old_pmd) != 0 &&
285 					pmd_val(old_pmd) != READ_ONCE(pmd_val(*pmdp)));
286 		}
287 		phys += next - addr;
288 	} while (pmdp++, addr = next, addr != end);
289 
290 	return 0;
291 }
292 
pmd_range_has_valid_noncont(pmd_t * pmdp)293 static bool pmd_range_has_valid_noncont(pmd_t *pmdp)
294 {
295 	for (int i = 0; i < CONT_PMDS; i++) {
296 		pte_t pte = pmd_pte(READ_ONCE(pmdp[i]));
297 
298 		if (pte_valid(pte) && !pte_cont(pte))
299 			return true;
300 	}
301 	return false;
302 }
303 
alloc_init_cont_pmd(pud_t * pudp,unsigned long addr,unsigned long end,phys_addr_t phys,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)304 static int alloc_init_cont_pmd(pud_t *pudp, unsigned long addr,
305 			       unsigned long end, phys_addr_t phys,
306 			       pgprot_t prot,
307 			       phys_addr_t (*pgtable_alloc)(enum pgtable_level),
308 			       int flags)
309 {
310 	int ret;
311 	unsigned long next;
312 	pud_t pud = READ_ONCE(*pudp);
313 	pmd_t *pmdp;
314 
315 	/*
316 	 * Check for initial section mappings in the pgd/pud.
317 	 */
318 	BUG_ON(pud_leaf(pud));
319 	if (pud_none(pud)) {
320 		pudval_t pudval = PUD_TYPE_TABLE | PUD_TABLE_UXN | PUD_TABLE_AF;
321 		phys_addr_t pmd_phys;
322 
323 		if (flags & NO_EXEC_MAPPINGS)
324 			pudval |= PUD_TABLE_PXN;
325 		BUG_ON(!pgtable_alloc);
326 		pmd_phys = pgtable_alloc(PGTABLE_LEVEL_PMD);
327 		if (pmd_phys == INVALID_PHYS_ADDR)
328 			return -ENOMEM;
329 		pmdp = pmd_set_fixmap(pmd_phys);
330 		init_clear_pgtable(pmdp);
331 		pmdp += pmd_index(addr);
332 		__pud_populate(pudp, pmd_phys, pudval);
333 	} else {
334 		BUG_ON(pud_bad(pud));
335 		pmdp = pmd_set_fixmap_offset(pudp, addr);
336 	}
337 
338 	do {
339 		pgprot_t __prot = prot;
340 
341 		next = pmd_cont_addr_end(addr, end);
342 
343 		/* use a contiguous mapping if the range is suitably aligned */
344 		if ((((addr | next | phys) & ~CONT_PMD_MASK) == 0) &&
345 		    (flags & NO_CONT_MAPPINGS) == 0 &&
346 		    !pmd_range_has_valid_noncont(pmdp))
347 			__prot = __pgprot(pgprot_val(prot) | PTE_CONT);
348 
349 		ret = init_pmd(pmdp, addr, next, phys, __prot, pgtable_alloc, flags);
350 		if (ret)
351 			goto out;
352 
353 		pmdp += pmd_index(next) - pmd_index(addr);
354 		phys += next - addr;
355 	} while (addr = next, addr != end);
356 
357 out:
358 	pmd_clear_fixmap();
359 
360 	return ret;
361 }
362 
alloc_init_pud(p4d_t * p4dp,unsigned long addr,unsigned long end,phys_addr_t phys,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)363 static int alloc_init_pud(p4d_t *p4dp, unsigned long addr, unsigned long end,
364 			  phys_addr_t phys, pgprot_t prot,
365 			  phys_addr_t (*pgtable_alloc)(enum pgtable_level),
366 			  int flags)
367 {
368 	int ret = 0;
369 	unsigned long next;
370 	p4d_t p4d = READ_ONCE(*p4dp);
371 	pud_t *pudp;
372 
373 	if (p4d_none(p4d)) {
374 		p4dval_t p4dval = P4D_TYPE_TABLE | P4D_TABLE_UXN | P4D_TABLE_AF;
375 		phys_addr_t pud_phys;
376 
377 		if (flags & NO_EXEC_MAPPINGS)
378 			p4dval |= P4D_TABLE_PXN;
379 		BUG_ON(!pgtable_alloc);
380 		pud_phys = pgtable_alloc(PGTABLE_LEVEL_PUD);
381 		if (pud_phys == INVALID_PHYS_ADDR)
382 			return -ENOMEM;
383 		pudp = pud_set_fixmap(pud_phys);
384 		init_clear_pgtable(pudp);
385 		pudp += pud_index(addr);
386 		__p4d_populate(p4dp, pud_phys, p4dval);
387 	} else {
388 		BUG_ON(p4d_bad(p4d));
389 		pudp = pud_set_fixmap_offset(p4dp, addr);
390 	}
391 
392 	do {
393 		pud_t old_pud = READ_ONCE(*pudp);
394 
395 		next = pud_addr_end(addr, end);
396 
397 		/*
398 		 * For 4K granule only, attempt to put down a 1GB block
399 		 */
400 		if (pud_sect_supported() &&
401 		   ((addr | next | phys) & ~PUD_MASK) == 0 &&
402 		    (flags & NO_BLOCK_MAPPINGS) == 0 &&
403 		    !pud_table(old_pud)) {
404 			WARN_ON(!pud_set_huge(pudp, phys, prot));
405 
406 			/*
407 			 * After the PUD entry has been populated once, we
408 			 * only allow updates to the permission attributes.
409 			 */
410 			BUG_ON(!pgattr_change_is_safe(pud_val(old_pud),
411 						      READ_ONCE(pud_val(*pudp))));
412 		} else {
413 			ret = alloc_init_cont_pmd(pudp, addr, next, phys, prot,
414 						  pgtable_alloc, flags);
415 			if (ret)
416 				goto out;
417 
418 			VM_WARN_ON_ONCE(pud_val(old_pud) != 0 &&
419 					pud_val(old_pud) != READ_ONCE(pud_val(*pudp)));
420 		}
421 		phys += next - addr;
422 	} while (pudp++, addr = next, addr != end);
423 
424 out:
425 	pud_clear_fixmap();
426 
427 	return ret;
428 }
429 
alloc_init_p4d(pgd_t * pgdp,unsigned long addr,unsigned long end,phys_addr_t phys,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)430 static int alloc_init_p4d(pgd_t *pgdp, unsigned long addr, unsigned long end,
431 			  phys_addr_t phys, pgprot_t prot,
432 			  phys_addr_t (*pgtable_alloc)(enum pgtable_level),
433 			  int flags)
434 {
435 	int ret;
436 	unsigned long next;
437 	pgd_t pgd = READ_ONCE(*pgdp);
438 	p4d_t *p4dp;
439 
440 	if (pgd_none(pgd)) {
441 		pgdval_t pgdval = PGD_TYPE_TABLE | PGD_TABLE_UXN | PGD_TABLE_AF;
442 		phys_addr_t p4d_phys;
443 
444 		if (flags & NO_EXEC_MAPPINGS)
445 			pgdval |= PGD_TABLE_PXN;
446 		BUG_ON(!pgtable_alloc);
447 		p4d_phys = pgtable_alloc(PGTABLE_LEVEL_P4D);
448 		if (p4d_phys == INVALID_PHYS_ADDR)
449 			return -ENOMEM;
450 		p4dp = p4d_set_fixmap(p4d_phys);
451 		init_clear_pgtable(p4dp);
452 		p4dp += p4d_index(addr);
453 		__pgd_populate(pgdp, p4d_phys, pgdval);
454 	} else {
455 		BUG_ON(pgd_bad(pgd));
456 		p4dp = p4d_set_fixmap_offset(pgdp, addr);
457 	}
458 
459 	do {
460 		p4d_t old_p4d = READ_ONCE(*p4dp);
461 
462 		next = p4d_addr_end(addr, end);
463 
464 		ret = alloc_init_pud(p4dp, addr, next, phys, prot,
465 				     pgtable_alloc, flags);
466 		if (ret)
467 			goto out;
468 
469 		VM_WARN_ON_ONCE(p4d_val(old_p4d) != 0 &&
470 				p4d_val(old_p4d) != READ_ONCE(p4d_val(*p4dp)));
471 
472 		phys += next - addr;
473 	} while (p4dp++, addr = next, addr != end);
474 
475 out:
476 	p4d_clear_fixmap();
477 
478 	return ret;
479 }
480 
__create_pgd_mapping_locked(pgd_t * pgdir,phys_addr_t phys,unsigned long virt,phys_addr_t size,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)481 static int __create_pgd_mapping_locked(pgd_t *pgdir, phys_addr_t phys,
482 				       unsigned long virt, phys_addr_t size,
483 				       pgprot_t prot,
484 				       phys_addr_t (*pgtable_alloc)(enum pgtable_level),
485 				       int flags)
486 {
487 	int ret;
488 	unsigned long addr, end, next;
489 	pgd_t *pgdp = pgd_offset_pgd(pgdir, virt);
490 
491 	/*
492 	 * If the virtual and physical address don't have the same offset
493 	 * within a page, we cannot map the region as the caller expects.
494 	 */
495 	if (WARN_ON((phys ^ virt) & ~PAGE_MASK))
496 		return -EINVAL;
497 
498 	phys &= PAGE_MASK;
499 	addr = virt & PAGE_MASK;
500 	end = PAGE_ALIGN(virt + size);
501 
502 	do {
503 		next = pgd_addr_end(addr, end);
504 		ret = alloc_init_p4d(pgdp, addr, next, phys, prot, pgtable_alloc,
505 				     flags);
506 		if (ret)
507 			return ret;
508 		phys += next - addr;
509 	} while (pgdp++, addr = next, addr != end);
510 
511 	return 0;
512 }
513 
__create_pgd_mapping(pgd_t * pgdir,phys_addr_t phys,unsigned long virt,phys_addr_t size,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)514 static int __create_pgd_mapping(pgd_t *pgdir, phys_addr_t phys,
515 				unsigned long virt, phys_addr_t size,
516 				pgprot_t prot,
517 				phys_addr_t (*pgtable_alloc)(enum pgtable_level),
518 				int flags)
519 {
520 	int ret;
521 
522 	mutex_lock(&fixmap_lock);
523 	ret = __create_pgd_mapping_locked(pgdir, phys, virt, size, prot,
524 					  pgtable_alloc, flags);
525 	mutex_unlock(&fixmap_lock);
526 
527 	return ret;
528 }
529 
early_create_pgd_mapping(pgd_t * pgdir,phys_addr_t phys,unsigned long virt,phys_addr_t size,pgprot_t prot,phys_addr_t (* pgtable_alloc)(enum pgtable_level),int flags)530 static void early_create_pgd_mapping(pgd_t *pgdir, phys_addr_t phys,
531 				     unsigned long virt, phys_addr_t size,
532 				     pgprot_t prot,
533 				     phys_addr_t (*pgtable_alloc)(enum pgtable_level),
534 				     int flags)
535 {
536 	int ret;
537 
538 	ret = __create_pgd_mapping(pgdir, phys, virt, size, prot, pgtable_alloc,
539 				   flags);
540 	if (ret)
541 		panic("Failed to create page tables\n");
542 }
543 
__pgd_pgtable_alloc(struct mm_struct * mm,gfp_t gfp,enum pgtable_level pgtable_level)544 static phys_addr_t __pgd_pgtable_alloc(struct mm_struct *mm, gfp_t gfp,
545 				       enum pgtable_level pgtable_level)
546 {
547 	/* Page is zeroed by init_clear_pgtable() so don't duplicate effort. */
548 	struct ptdesc *ptdesc = pagetable_alloc(gfp & ~__GFP_ZERO, 0);
549 	phys_addr_t pa;
550 
551 	if (!ptdesc)
552 		return INVALID_PHYS_ADDR;
553 
554 	pa = page_to_phys(ptdesc_page(ptdesc));
555 
556 	switch (pgtable_level) {
557 	case PGTABLE_LEVEL_PTE:
558 		BUG_ON(!pagetable_pte_ctor(mm, ptdesc));
559 		break;
560 	case PGTABLE_LEVEL_PMD:
561 		BUG_ON(!pagetable_pmd_ctor(mm, ptdesc));
562 		break;
563 	case PGTABLE_LEVEL_PUD:
564 		pagetable_pud_ctor(ptdesc);
565 		break;
566 	case PGTABLE_LEVEL_P4D:
567 		pagetable_p4d_ctor(ptdesc);
568 		break;
569 	case PGTABLE_LEVEL_PGD:
570 		VM_WARN_ON(1);
571 		break;
572 	}
573 
574 	return pa;
575 }
576 
577 static phys_addr_t
pgd_pgtable_alloc_init_mm_gfp(enum pgtable_level pgtable_level,gfp_t gfp)578 pgd_pgtable_alloc_init_mm_gfp(enum pgtable_level pgtable_level, gfp_t gfp)
579 {
580 	return __pgd_pgtable_alloc(&init_mm, gfp, pgtable_level);
581 }
582 
583 static phys_addr_t __maybe_unused
pgd_pgtable_alloc_init_mm(enum pgtable_level pgtable_level)584 pgd_pgtable_alloc_init_mm(enum pgtable_level pgtable_level)
585 {
586 	return pgd_pgtable_alloc_init_mm_gfp(pgtable_level, GFP_PGTABLE_KERNEL);
587 }
588 
589 static phys_addr_t
pgd_pgtable_alloc_special_mm(enum pgtable_level pgtable_level)590 pgd_pgtable_alloc_special_mm(enum pgtable_level pgtable_level)
591 {
592 	return  __pgd_pgtable_alloc(NULL, GFP_PGTABLE_KERNEL, pgtable_level);
593 }
594 
split_contpte(pte_t * ptep)595 static void split_contpte(pte_t *ptep)
596 {
597 	int i;
598 
599 	ptep = PTR_ALIGN_DOWN(ptep, sizeof(*ptep) * CONT_PTES);
600 	for (i = 0; i < CONT_PTES; i++, ptep++)
601 		__set_pte(ptep, pte_mknoncont(__ptep_get(ptep)));
602 }
603 
split_pmd(pmd_t * pmdp,pmd_t pmd,gfp_t gfp,bool to_cont)604 static int split_pmd(pmd_t *pmdp, pmd_t pmd, gfp_t gfp, bool to_cont)
605 {
606 	pmdval_t tableprot = PMD_TYPE_TABLE | PMD_TABLE_UXN | PMD_TABLE_AF;
607 	unsigned long pfn = pmd_pfn(pmd);
608 	pgprot_t prot = pmd_pgprot(pmd);
609 	phys_addr_t pte_phys;
610 	pte_t *ptep;
611 	int i;
612 
613 	pte_phys = pgd_pgtable_alloc_init_mm_gfp(PGTABLE_LEVEL_PTE, gfp);
614 	if (pte_phys == INVALID_PHYS_ADDR)
615 		return -ENOMEM;
616 	ptep = (pte_t *)phys_to_virt(pte_phys);
617 
618 	if (pgprot_val(prot) & PMD_SECT_PXN)
619 		tableprot |= PMD_TABLE_PXN;
620 
621 	prot = __pgprot((pgprot_val(prot) & ~PTE_TYPE_MASK) | PTE_TYPE_PAGE);
622 	if (!pmd_valid(pmd))
623 		prot = pte_pgprot(pte_mkinvalid(pfn_pte(0, prot)));
624 	prot = __pgprot(pgprot_val(prot) & ~PTE_CONT);
625 	if (to_cont)
626 		prot = __pgprot(pgprot_val(prot) | PTE_CONT);
627 
628 	for (i = 0; i < PTRS_PER_PTE; i++, ptep++, pfn++)
629 		__set_pte(ptep, pfn_pte(pfn, prot));
630 
631 	/*
632 	 * Ensure the pte entries are visible to the table walker by the time
633 	 * the pmd entry that points to the ptes is visible.
634 	 */
635 	dsb(ishst);
636 	__pmd_populate(pmdp, pte_phys, tableprot);
637 
638 	return 0;
639 }
640 
split_contpmd(pmd_t * pmdp)641 static void split_contpmd(pmd_t *pmdp)
642 {
643 	int i;
644 
645 	pmdp = PTR_ALIGN_DOWN(pmdp, sizeof(*pmdp) * CONT_PMDS);
646 	for (i = 0; i < CONT_PMDS; i++, pmdp++)
647 		set_pmd(pmdp, pmd_mknoncont(pmdp_get(pmdp)));
648 }
649 
split_pud(pud_t * pudp,pud_t pud,gfp_t gfp,bool to_cont)650 static int split_pud(pud_t *pudp, pud_t pud, gfp_t gfp, bool to_cont)
651 {
652 	pudval_t tableprot = PUD_TYPE_TABLE | PUD_TABLE_UXN | PUD_TABLE_AF;
653 	unsigned int step = PMD_SIZE >> PAGE_SHIFT;
654 	unsigned long pfn = pud_pfn(pud);
655 	pgprot_t prot = pud_pgprot(pud);
656 	phys_addr_t pmd_phys;
657 	pmd_t *pmdp;
658 	int i;
659 
660 	pmd_phys = pgd_pgtable_alloc_init_mm_gfp(PGTABLE_LEVEL_PMD, gfp);
661 	if (pmd_phys == INVALID_PHYS_ADDR)
662 		return -ENOMEM;
663 	pmdp = (pmd_t *)phys_to_virt(pmd_phys);
664 
665 	if (pgprot_val(prot) & PMD_SECT_PXN)
666 		tableprot |= PUD_TABLE_PXN;
667 
668 	prot = __pgprot((pgprot_val(prot) & ~PMD_TYPE_MASK) | PMD_TYPE_SECT);
669 	if (!pud_valid(pud))
670 		prot = pmd_pgprot(pmd_mkinvalid(pfn_pmd(0, prot)));
671 	prot = __pgprot(pgprot_val(prot) & ~PTE_CONT);
672 	if (to_cont)
673 		prot = __pgprot(pgprot_val(prot) | PTE_CONT);
674 
675 	for (i = 0; i < PTRS_PER_PMD; i++, pmdp++, pfn += step)
676 		set_pmd(pmdp, pfn_pmd(pfn, prot));
677 
678 	/*
679 	 * Ensure the pmd entries are visible to the table walker by the time
680 	 * the pud entry that points to the pmds is visible.
681 	 */
682 	dsb(ishst);
683 	__pud_populate(pudp, pmd_phys, tableprot);
684 
685 	return 0;
686 }
687 
split_kernel_leaf_mapping_locked(unsigned long addr)688 static int split_kernel_leaf_mapping_locked(unsigned long addr)
689 {
690 	pgd_t *pgdp, pgd;
691 	p4d_t *p4dp, p4d;
692 	pud_t *pudp, pud;
693 	pmd_t *pmdp, pmd;
694 	pte_t *ptep, pte;
695 	int ret = 0;
696 
697 	/*
698 	 * PGD: If addr is PGD aligned then addr already describes a leaf
699 	 * boundary. If not present then there is nothing to split.
700 	 */
701 	if (ALIGN_DOWN(addr, PGDIR_SIZE) == addr)
702 		goto out;
703 	pgdp = pgd_offset_k(addr);
704 	pgd = pgdp_get(pgdp);
705 	if (!pgd_present(pgd))
706 		goto out;
707 
708 	/*
709 	 * P4D: If addr is P4D aligned then addr already describes a leaf
710 	 * boundary. If not present then there is nothing to split.
711 	 */
712 	if (ALIGN_DOWN(addr, P4D_SIZE) == addr)
713 		goto out;
714 	p4dp = p4d_offset(pgdp, addr);
715 	p4d = p4dp_get(p4dp);
716 	if (!p4d_present(p4d))
717 		goto out;
718 
719 	/*
720 	 * PUD: If addr is PUD aligned then addr already describes a leaf
721 	 * boundary. If not present then there is nothing to split. Otherwise,
722 	 * if we have a pud leaf, split to contpmd.
723 	 */
724 	if (ALIGN_DOWN(addr, PUD_SIZE) == addr)
725 		goto out;
726 	pudp = pud_offset(p4dp, addr);
727 	pud = pudp_get(pudp);
728 	if (!pud_present(pud))
729 		goto out;
730 	if (pud_leaf(pud)) {
731 		ret = split_pud(pudp, pud, GFP_PGTABLE_KERNEL, true);
732 		if (ret)
733 			goto out;
734 	}
735 
736 	/*
737 	 * CONTPMD: If addr is CONTPMD aligned then addr already describes a
738 	 * leaf boundary. If not present then there is nothing to split.
739 	 * Otherwise, if we have a contpmd leaf, split to pmd.
740 	 */
741 	if (ALIGN_DOWN(addr, CONT_PMD_SIZE) == addr)
742 		goto out;
743 	pmdp = pmd_offset(pudp, addr);
744 	pmd = pmdp_get(pmdp);
745 	if (!pmd_present(pmd))
746 		goto out;
747 	if (pmd_leaf(pmd)) {
748 		if (pmd_cont(pmd))
749 			split_contpmd(pmdp);
750 		/*
751 		 * PMD: If addr is PMD aligned then addr already describes a
752 		 * leaf boundary. Otherwise, split to contpte.
753 		 */
754 		if (ALIGN_DOWN(addr, PMD_SIZE) == addr)
755 			goto out;
756 		ret = split_pmd(pmdp, pmd, GFP_PGTABLE_KERNEL, true);
757 		if (ret)
758 			goto out;
759 	}
760 
761 	/*
762 	 * CONTPTE: If addr is CONTPTE aligned then addr already describes a
763 	 * leaf boundary. If not present then there is nothing to split.
764 	 * Otherwise, if we have a contpte leaf, split to pte.
765 	 */
766 	if (ALIGN_DOWN(addr, CONT_PTE_SIZE) == addr)
767 		goto out;
768 	ptep = pte_offset_kernel(pmdp, addr);
769 	pte = __ptep_get(ptep);
770 	if (!pte_present(pte))
771 		goto out;
772 	if (pte_cont(pte))
773 		split_contpte(ptep);
774 
775 out:
776 	return ret;
777 }
778 
force_pte_mapping(void)779 static inline bool force_pte_mapping(void)
780 {
781 	const bool bbml3 = system_capabilities_finalized() ?
782 		system_supports_bbml3() : cpu_supports_bbml3();
783 
784 	if (debug_pagealloc_enabled())
785 		return true;
786 	if (bbml3)
787 		return false;
788 	return rodata_full || arm64_kfence_can_set_direct_map() || is_realm_world();
789 }
790 
791 static DEFINE_MUTEX(pgtable_split_lock);
792 static bool linear_map_requires_bbml3;
793 
split_kernel_leaf_mapping(unsigned long start,unsigned long end)794 int split_kernel_leaf_mapping(unsigned long start, unsigned long end)
795 {
796 	int ret;
797 
798 	/*
799 	 * If the region is within a pte-mapped area, there is no need to try to
800 	 * split. Additionally, CONFIG_DEBUG_PAGEALLOC and CONFIG_KFENCE may
801 	 * change permissions from atomic context so for those cases (which are
802 	 * always pte-mapped), we must not go any further because taking the
803 	 * mutex below may sleep. Do not call force_pte_mapping() here because
804 	 * it could return a confusing result if called from a secondary cpu
805 	 * prior to finalizing caps. Instead, linear_map_requires_bbml3 gives us
806 	 * what we need.
807 	 */
808 	if (!linear_map_requires_bbml3 || is_kfence_address((void *)start))
809 		return 0;
810 
811 	if (!system_supports_bbml3()) {
812 		/*
813 		 * BBML3 systems should not be trying to change
814 		 * permissions on anything that is not pte-mapped in the first
815 		 * place. Just return early and let the permission change code
816 		 * raise a warning if not already pte-mapped.
817 		 */
818 		if (system_capabilities_finalized())
819 			return 0;
820 
821 		/*
822 		 * Boot-time: split_kernel_leaf_mapping_locked() allocates from
823 		 * page allocator. Can't split until it's available.
824 		 */
825 		if (WARN_ON(!page_alloc_available))
826 			return -EBUSY;
827 
828 		/*
829 		 * Boot-time: Started secondary cpus but don't know if they
830 		 * support BBML3 yet. Can't allow splitting in this window
831 		 * in case they don't.
832 		 */
833 		if (WARN_ON(num_online_cpus() > 1))
834 			return -EBUSY;
835 	}
836 
837 	/*
838 	 * Ensure start and end are at least page-aligned since this is the
839 	 * finest granularity we can split to.
840 	 */
841 	if (start != PAGE_ALIGN(start) || end != PAGE_ALIGN(end))
842 		return -EINVAL;
843 
844 	mutex_lock(&pgtable_split_lock);
845 	lazy_mmu_mode_enable();
846 
847 	/*
848 	 * The split_kernel_leaf_mapping_locked() may sleep, it is not a
849 	 * problem for ARM64 since ARM64's lazy MMU implementation allows
850 	 * sleeping.
851 	 *
852 	 * Optimize for the common case of splitting out a single page from a
853 	 * larger mapping. Here we can just split on the "least aligned" of
854 	 * start and end and this will guarantee that there must also be a split
855 	 * on the more aligned address since the both addresses must be in the
856 	 * same contpte block and it must have been split to ptes.
857 	 */
858 	if (end - start == PAGE_SIZE) {
859 		start = __ffs(start) < __ffs(end) ? start : end;
860 		ret = split_kernel_leaf_mapping_locked(start);
861 	} else {
862 		ret = split_kernel_leaf_mapping_locked(start);
863 		if (!ret)
864 			ret = split_kernel_leaf_mapping_locked(end);
865 	}
866 
867 	lazy_mmu_mode_disable();
868 	mutex_unlock(&pgtable_split_lock);
869 	return ret;
870 }
871 
split_to_ptes_pud_entry(pud_t * pudp,unsigned long addr,unsigned long next,struct mm_walk * walk)872 static int split_to_ptes_pud_entry(pud_t *pudp, unsigned long addr,
873 				   unsigned long next, struct mm_walk *walk)
874 {
875 	gfp_t gfp = *(gfp_t *)walk->private;
876 	pud_t pud = pudp_get(pudp);
877 	int ret = 0;
878 
879 	if (pud_leaf(pud))
880 		ret = split_pud(pudp, pud, gfp, false);
881 
882 	return ret;
883 }
884 
split_to_ptes_pmd_entry(pmd_t * pmdp,unsigned long addr,unsigned long next,struct mm_walk * walk)885 static int split_to_ptes_pmd_entry(pmd_t *pmdp, unsigned long addr,
886 				   unsigned long next, struct mm_walk *walk)
887 {
888 	gfp_t gfp = *(gfp_t *)walk->private;
889 	pmd_t pmd = pmdp_get(pmdp);
890 	int ret = 0;
891 
892 	if (pmd_leaf(pmd)) {
893 		if (pmd_cont(pmd))
894 			split_contpmd(pmdp);
895 		ret = split_pmd(pmdp, pmd, gfp, false);
896 
897 		/*
898 		 * We have split the pmd directly to ptes so there is no need to
899 		 * visit each pte to check if they are contpte.
900 		 */
901 		walk->action = ACTION_CONTINUE;
902 	}
903 
904 	return ret;
905 }
906 
split_to_ptes_pte_entry(pte_t * ptep,unsigned long addr,unsigned long next,struct mm_walk * walk)907 static int split_to_ptes_pte_entry(pte_t *ptep, unsigned long addr,
908 				   unsigned long next, struct mm_walk *walk)
909 {
910 	pte_t pte = __ptep_get(ptep);
911 
912 	if (pte_cont(pte))
913 		split_contpte(ptep);
914 
915 	return 0;
916 }
917 
918 static const struct mm_walk_ops split_to_ptes_ops = {
919 	.pud_entry	= split_to_ptes_pud_entry,
920 	.pmd_entry	= split_to_ptes_pmd_entry,
921 	.pte_entry	= split_to_ptes_pte_entry,
922 };
923 
range_split_to_ptes(unsigned long start,unsigned long end,gfp_t gfp)924 static int range_split_to_ptes(unsigned long start, unsigned long end, gfp_t gfp)
925 {
926 	int ret;
927 
928 	lazy_mmu_mode_enable();
929 	ret = walk_kernel_page_table_range_lockless(start, end,
930 					&split_to_ptes_ops, NULL, &gfp);
931 	lazy_mmu_mode_disable();
932 
933 	return ret;
934 }
935 
936 u32 idmap_kpti_bbml3_flag;
937 
init_idmap_kpti_bbml3_flag(void)938 static void __init init_idmap_kpti_bbml3_flag(void)
939 {
940 	WRITE_ONCE(idmap_kpti_bbml3_flag, 1);
941 	/* Must be visible to other CPUs before stop_machine() is called. */
942 	smp_mb();
943 }
944 
linear_map_split_to_ptes(void * __unused)945 static int __init linear_map_split_to_ptes(void *__unused)
946 {
947 	/*
948 	 * Repainting the linear map must be done by CPU0 (the boot CPU) because
949 	 * that's the only CPU that we know supports BBML3. The other CPUs will
950 	 * be held in a waiting area with the idmap active.
951 	 */
952 	if (!smp_processor_id()) {
953 		unsigned long lstart = _PAGE_OFFSET(vabits_actual);
954 		unsigned long lend = PAGE_END;
955 		unsigned long kstart = (unsigned long)lm_alias(_stext);
956 		unsigned long kend = (unsigned long)lm_alias(__init_begin);
957 		int ret;
958 
959 		/*
960 		 * Wait for all secondary CPUs to be put into the waiting area.
961 		 */
962 		smp_cond_load_acquire(&idmap_kpti_bbml3_flag, VAL == num_online_cpus());
963 
964 		/*
965 		 * Walk all of the linear map [lstart, lend), except the kernel
966 		 * linear map alias [kstart, kend), and split all mappings to
967 		 * PTE. The kernel alias remains static throughout runtime so
968 		 * can continue to be safely mapped with large mappings.
969 		 */
970 		ret = range_split_to_ptes(lstart, kstart, GFP_ATOMIC);
971 		if (!ret)
972 			ret = range_split_to_ptes(kend, lend, GFP_ATOMIC);
973 		if (ret)
974 			panic("Failed to split linear map\n");
975 		flush_tlb_kernel_range(lstart, lend);
976 
977 		/*
978 		 * Relies on dsb in flush_tlb_kernel_range() to avoid reordering
979 		 * before any page table split operations.
980 		 */
981 		WRITE_ONCE(idmap_kpti_bbml3_flag, 0);
982 	} else {
983 		typedef void (wait_split_fn)(void);
984 		extern wait_split_fn wait_linear_map_split_to_ptes;
985 		wait_split_fn *wait_fn;
986 
987 		wait_fn = (void *)__pa_symbol(wait_linear_map_split_to_ptes);
988 
989 		/*
990 		 * At least one secondary CPU doesn't support BBML3 so cannot
991 		 * tolerate the size of the live mappings changing. So have the
992 		 * secondary CPUs wait for the boot CPU to make the changes
993 		 * with the idmap active and init_mm inactive.
994 		 */
995 		cpu_install_idmap();
996 		wait_fn();
997 		cpu_uninstall_idmap();
998 	}
999 
1000 	return 0;
1001 }
1002 
linear_map_maybe_split_to_ptes(void)1003 void __init linear_map_maybe_split_to_ptes(void)
1004 {
1005 	if (linear_map_requires_bbml3 && !system_supports_bbml3()) {
1006 		init_idmap_kpti_bbml3_flag();
1007 		stop_machine(linear_map_split_to_ptes, NULL, cpu_online_mask);
1008 	}
1009 }
1010 
1011 /*
1012  * This function can only be used to modify existing table entries,
1013  * without allocating new levels of table. Note that this permits the
1014  * creation of new section or page entries.
1015  */
create_mapping_noalloc(phys_addr_t phys,unsigned long virt,phys_addr_t size,pgprot_t prot)1016 void __init create_mapping_noalloc(phys_addr_t phys, unsigned long virt,
1017 				   phys_addr_t size, pgprot_t prot)
1018 {
1019 	if (virt < PAGE_OFFSET) {
1020 		pr_warn("BUG: not creating mapping for %pa at 0x%016lx - outside kernel range\n",
1021 			&phys, virt);
1022 		return;
1023 	}
1024 	early_create_pgd_mapping(init_mm.pgd, phys, virt, size, prot, NULL, 0);
1025 }
1026 
create_pgd_mapping(struct mm_struct * mm,phys_addr_t phys,unsigned long virt,phys_addr_t size,pgprot_t prot,bool page_mappings_only)1027 void __init create_pgd_mapping(struct mm_struct *mm, phys_addr_t phys,
1028 			       unsigned long virt, phys_addr_t size,
1029 			       pgprot_t prot, bool page_mappings_only)
1030 {
1031 	int flags = 0;
1032 
1033 	BUG_ON(mm == &init_mm);
1034 
1035 	if (page_mappings_only)
1036 		flags = NO_BLOCK_MAPPINGS | NO_CONT_MAPPINGS;
1037 
1038 	early_create_pgd_mapping(mm->pgd, phys, virt, size, prot,
1039 				 pgd_pgtable_alloc_special_mm, flags);
1040 }
1041 
update_mapping_prot(phys_addr_t phys,unsigned long virt,phys_addr_t size,pgprot_t prot)1042 static void update_mapping_prot(phys_addr_t phys, unsigned long virt,
1043 				phys_addr_t size, pgprot_t prot)
1044 {
1045 	if (virt < PAGE_OFFSET) {
1046 		pr_warn("BUG: not updating mapping for %pa at 0x%016lx - outside kernel range\n",
1047 			&phys, virt);
1048 		return;
1049 	}
1050 
1051 	early_create_pgd_mapping(init_mm.pgd, phys, virt, size, prot, NULL, 0);
1052 
1053 	/* flush the TLBs after updating live kernel mappings */
1054 	flush_tlb_kernel_range(virt, virt + size);
1055 }
1056 
__map_memblock(phys_addr_t start,phys_addr_t end,pgprot_t prot,int flags)1057 static void __init __map_memblock(phys_addr_t start, phys_addr_t end,
1058 				  pgprot_t prot, int flags)
1059 {
1060 	early_create_pgd_mapping(swapper_pg_dir, start, __phys_to_virt(start),
1061 				 end - start, prot, early_pgtable_alloc, flags);
1062 }
1063 
mark_linear_data_alias_valid(bool valid)1064 static void mark_linear_data_alias_valid(bool valid)
1065 {
1066 	set_memory_valid((unsigned long)lm_alias(__init_end),
1067 			 (unsigned long)(__bss_stop - __init_end) / PAGE_SIZE,
1068 			 valid);
1069 }
1070 
arm64_hibernate_pm_notify(struct notifier_block * nb,unsigned long mode,void * unused)1071 static int arm64_hibernate_pm_notify(struct notifier_block *nb,
1072 				     unsigned long mode, void *unused)
1073 {
1074 	switch (mode) {
1075 	default:
1076 		break;
1077 	case PM_POST_HIBERNATION:
1078 		mark_linear_data_alias_valid(false);
1079 		break;
1080 	case PM_HIBERNATION_PREPARE:
1081 		mark_linear_data_alias_valid(true);
1082 		break;
1083 	}
1084 	return 0;
1085 }
1086 
mark_linear_text_alias_ro(void)1087 void __init mark_linear_text_alias_ro(void)
1088 {
1089 	/*
1090 	 * Remove the write permissions from the linear alias of .text/.rodata
1091 	 */
1092 	update_mapping_prot(__pa_symbol(_text), (unsigned long)lm_alias(_text),
1093 			    (unsigned long)__init_begin - (unsigned long)_text,
1094 			    PAGE_KERNEL_RO);
1095 
1096 	/*
1097 	 * Register a PM notifier to remap the linear alias of data/bss as
1098 	 * valid read/write before hibernation. This is needed because the
1099 	 * snapshot logic disregards PageReserved pages (such as the ones
1100 	 * covering the kernel image) unless they are mapped in the linear
1101 	 * map.
1102 	 */
1103 	if (IS_ENABLED(CONFIG_HIBERNATION) && rodata_enabled) {
1104 		static struct notifier_block nb = {
1105 			.notifier_call = arm64_hibernate_pm_notify
1106 		};
1107 
1108 		register_pm_notifier(&nb);
1109 	}
1110 }
1111 
1112 #ifdef CONFIG_KFENCE
1113 
1114 bool __ro_after_init kfence_early_init = !!CONFIG_KFENCE_SAMPLE_INTERVAL;
1115 
1116 /* early_param() will be parsed before map_mem() below. */
parse_kfence_early_init(char * arg)1117 static int __init parse_kfence_early_init(char *arg)
1118 {
1119 	int val;
1120 
1121 	if (get_option(&arg, &val))
1122 		kfence_early_init = !!val;
1123 	return 0;
1124 }
1125 early_param("kfence.sample_interval", parse_kfence_early_init);
1126 
arm64_kfence_map_pool(void)1127 static void __init arm64_kfence_map_pool(void)
1128 {
1129 	phys_addr_t kfence_pool;
1130 
1131 	if (!kfence_early_init)
1132 		return;
1133 
1134 	kfence_pool = memblock_phys_alloc(KFENCE_POOL_SIZE, PAGE_SIZE);
1135 	if (!kfence_pool) {
1136 		pr_err("failed to allocate kfence pool\n");
1137 		kfence_early_init = false;
1138 		return;
1139 	}
1140 
1141 	/* KFENCE pool needs page-level mapping. */
1142 	__map_memblock(kfence_pool, kfence_pool + KFENCE_POOL_SIZE,
1143 			pgprot_tagged(PAGE_KERNEL),
1144 			NO_BLOCK_MAPPINGS | NO_CONT_MAPPINGS | NO_EXEC_MAPPINGS);
1145 	__kfence_pool = phys_to_virt(kfence_pool);
1146 }
1147 
arch_kfence_init_pool(void)1148 bool arch_kfence_init_pool(void)
1149 {
1150 	unsigned long start = (unsigned long)__kfence_pool;
1151 	unsigned long end = start + KFENCE_POOL_SIZE;
1152 	int ret;
1153 
1154 	/* Exit early if we know the linear map is already pte-mapped. */
1155 	if (force_pte_mapping())
1156 		return true;
1157 
1158 	/* Kfence pool is already pte-mapped for the early init case. */
1159 	if (kfence_early_init)
1160 		return true;
1161 
1162 	mutex_lock(&pgtable_split_lock);
1163 	ret = range_split_to_ptes(start, end, GFP_PGTABLE_KERNEL);
1164 	mutex_unlock(&pgtable_split_lock);
1165 
1166 	/*
1167 	 * Since the system supports bbml3, tlb invalidation is not
1168 	 * required here; the pgtable mappings have been split to pte but larger
1169 	 * entries may safely linger in the TLB.
1170 	 */
1171 
1172 	return !ret;
1173 }
1174 #else /* CONFIG_KFENCE */
1175 
arm64_kfence_map_pool(void)1176 static inline void arm64_kfence_map_pool(void) { }
1177 
1178 #endif /* CONFIG_KFENCE */
1179 
map_mem(void)1180 static void __init map_mem(void)
1181 {
1182 	static const u64 direct_map_end = _PAGE_END(VA_BITS_MIN);
1183 	phys_addr_t kernel_start = __pa_symbol(_text);
1184 	phys_addr_t init_begin = __pa_symbol(__init_begin);
1185 	phys_addr_t init_end = __pa_symbol(__init_end);
1186 	phys_addr_t kernel_end = __pa_symbol(__bss_stop);
1187 	phys_addr_t start, end;
1188 	int flags = NO_EXEC_MAPPINGS;
1189 	u64 i;
1190 
1191 	/*
1192 	 * Setting hierarchical PXNTable attributes on table entries covering
1193 	 * the linear region is only possible if it is guaranteed that no table
1194 	 * entries at any level are being shared between the linear region and
1195 	 * the vmalloc region. Check whether this is true for the PGD level, in
1196 	 * which case it is guaranteed to be true for all other levels as well.
1197 	 * (Unless we are running with support for LPA2, in which case the
1198 	 * entire reduced VA space is covered by a single pgd_t which will have
1199 	 * been populated without the PXNTable attribute by the time we get here.)
1200 	 */
1201 	BUILD_BUG_ON(pgd_index(direct_map_end - 1) == pgd_index(direct_map_end) &&
1202 		     pgd_index(_PAGE_OFFSET(VA_BITS_MIN)) != PTRS_PER_PGD - 1);
1203 
1204 	arm64_kfence_map_pool();
1205 
1206 	linear_map_requires_bbml3 = !force_pte_mapping() && can_set_direct_map();
1207 
1208 	if (force_pte_mapping())
1209 		flags |= NO_BLOCK_MAPPINGS | NO_CONT_MAPPINGS;
1210 
1211 	/*
1212 	 * Map the linear alias of the [_text, __init_begin) interval first
1213 	 * so that its write permissions can be removed later without the need
1214 	 * to split any block mappings created by the loop below.
1215 	 *
1216 	 * Write permissions are needed for alternatives patching, and will be
1217 	 * removed later by mark_linear_text_alias_ro() above. This makes the
1218 	 * contents of the region accessible to subsystems such as hibernate,
1219 	 * but protects it from inadvertent modification or execution.
1220 	 */
1221 	__map_memblock(kernel_start, init_begin, pgprot_tagged(PAGE_KERNEL),
1222 		       flags);
1223 
1224 	/* Map the kernel data/bss so it can be remapped later */
1225 	__map_memblock(init_end, kernel_end, pgprot_tagged(PAGE_KERNEL),
1226 		       flags);
1227 
1228 	/* map all the memory banks */
1229 	for_each_mem_range(i, &start, &end) {
1230 		/*
1231 		 * for_each_mem_range may return sub-page-aligned boundaries
1232 		 * after memblock_mark_nomap() splits regions at byte precision.
1233 		 * __create_pgd_mapping_locked aligns phys down to PAGE_MASK,
1234 		 * which could accidentally map no-map memory on the boundary.
1235 		 * Round the mappable range inward: start UP, end DOWN, so
1236 		 * that the mapped area never overlaps with adjacent no-map
1237 		 * regions. The cost is at most one page of unmapped gap at
1238 		 * each boundary.
1239 		 */
1240 		start = PAGE_ALIGN(start);
1241 		end = end & PAGE_MASK;
1242 		if (start >= end)
1243 			continue;
1244 		/*
1245 		 * The linear map must allow allocation tags reading/writing
1246 		 * if MTE is present. Otherwise, it has the same attributes as
1247 		 * PAGE_KERNEL.
1248 		 */
1249 		__map_memblock(start, end, pgprot_tagged(PAGE_KERNEL),
1250 			       flags);
1251 	}
1252 }
1253 
mark_rodata_ro(void)1254 void mark_rodata_ro(void)
1255 {
1256 	unsigned long section_size;
1257 
1258 	/*
1259 	 * mark .rodata as read only. Use __init_begin rather than __end_rodata
1260 	 * to cover NOTES and EXCEPTION_TABLE.
1261 	 */
1262 	section_size = (unsigned long)__init_begin - (unsigned long)__start_rodata;
1263 	WRITE_ONCE(rodata_is_rw, false);
1264 	update_mapping_prot(__pa_symbol(__start_rodata), (unsigned long)__start_rodata,
1265 			    section_size, PAGE_KERNEL_RO);
1266 	/* mark the range between _text and _stext as read only. */
1267 	update_mapping_prot(__pa_symbol(_text), (unsigned long)_text,
1268 			    (unsigned long)_stext - (unsigned long)_text,
1269 			    PAGE_KERNEL_RO);
1270 
1271 	/* Map the kernel data/bss as invalid in the linear map */
1272 	mark_linear_data_alias_valid(false);
1273 }
1274 
declare_vma(struct vm_struct * vma,void * va_start,void * va_end,unsigned long vm_flags)1275 static void __init declare_vma(struct vm_struct *vma,
1276 			       void *va_start, void *va_end,
1277 			       unsigned long vm_flags)
1278 {
1279 	phys_addr_t pa_start = __pa_symbol(va_start);
1280 	unsigned long size = va_end - va_start;
1281 
1282 	BUG_ON(!PAGE_ALIGNED(pa_start));
1283 	BUG_ON(!PAGE_ALIGNED(size));
1284 
1285 	if (!(vm_flags & VM_NO_GUARD))
1286 		size += PAGE_SIZE;
1287 
1288 	vma->addr	= va_start;
1289 	vma->phys_addr	= pa_start;
1290 	vma->size	= size;
1291 	vma->flags	= VM_MAP | vm_flags;
1292 	vma->caller	= __builtin_return_address(0);
1293 
1294 	vm_area_add_early(vma);
1295 }
1296 
1297 #ifdef CONFIG_UNMAP_KERNEL_AT_EL0
1298 #define KPTI_NG_TEMP_VA		(-(1UL << PMD_SHIFT))
1299 
1300 static phys_addr_t kpti_ng_temp_alloc __initdata;
1301 
kpti_ng_pgd_alloc(enum pgtable_level pgtable_level)1302 static phys_addr_t __init kpti_ng_pgd_alloc(enum pgtable_level pgtable_level)
1303 {
1304 	kpti_ng_temp_alloc -= PAGE_SIZE;
1305 	return kpti_ng_temp_alloc;
1306 }
1307 
__kpti_install_ng_mappings(void * __unused)1308 static int __init __kpti_install_ng_mappings(void *__unused)
1309 {
1310 	typedef void (kpti_remap_fn)(int, int, phys_addr_t, unsigned long);
1311 	extern kpti_remap_fn idmap_kpti_install_ng_mappings;
1312 	kpti_remap_fn *remap_fn;
1313 
1314 	int cpu = smp_processor_id();
1315 	int levels = CONFIG_PGTABLE_LEVELS;
1316 	int order = order_base_2(levels);
1317 	u64 kpti_ng_temp_pgd_pa = 0;
1318 	pgd_t *kpti_ng_temp_pgd;
1319 	u64 alloc = 0;
1320 
1321 	if (levels == 5 && !pgtable_l5_enabled())
1322 		levels = 4;
1323 	else if (levels == 4 && !pgtable_l4_enabled())
1324 		levels = 3;
1325 
1326 	remap_fn = (void *)__pa_symbol(idmap_kpti_install_ng_mappings);
1327 
1328 	if (!cpu) {
1329 		int ret;
1330 
1331 		alloc = __get_free_pages(GFP_ATOMIC | __GFP_ZERO, order);
1332 		kpti_ng_temp_pgd = (pgd_t *)(alloc + (levels - 1) * PAGE_SIZE);
1333 		kpti_ng_temp_alloc = kpti_ng_temp_pgd_pa = __pa(kpti_ng_temp_pgd);
1334 
1335 		//
1336 		// Create a minimal page table hierarchy that permits us to map
1337 		// the swapper page tables temporarily as we traverse them.
1338 		//
1339 		// The physical pages are laid out as follows:
1340 		//
1341 		// +--------+-/-------+-/------ +-/------ +-\\\--------+
1342 		// :  PTE[] : | PMD[] : | PUD[] : | P4D[] : ||| PGD[]  :
1343 		// +--------+-\-------+-\------ +-\------ +-///--------+
1344 		//      ^
1345 		// The first page is mapped into this hierarchy at a PMD_SHIFT
1346 		// aligned virtual address, so that we can manipulate the PTE
1347 		// level entries while the mapping is active. The first entry
1348 		// covers the PTE[] page itself, the remaining entries are free
1349 		// to be used as a ad-hoc fixmap.
1350 		//
1351 		ret = __create_pgd_mapping_locked(kpti_ng_temp_pgd, __pa(alloc),
1352 						  KPTI_NG_TEMP_VA, PAGE_SIZE, PAGE_KERNEL,
1353 						  kpti_ng_pgd_alloc, 0);
1354 		if (ret)
1355 			panic("Failed to create page tables\n");
1356 	}
1357 
1358 	cpu_install_idmap();
1359 	remap_fn(cpu, num_online_cpus(), kpti_ng_temp_pgd_pa, KPTI_NG_TEMP_VA);
1360 	cpu_uninstall_idmap();
1361 
1362 	if (!cpu) {
1363 		free_pages(alloc, order);
1364 		arm64_use_ng_mappings = true;
1365 	}
1366 
1367 	return 0;
1368 }
1369 
kpti_install_ng_mappings(void)1370 void __init kpti_install_ng_mappings(void)
1371 {
1372 	/* Check whether KPTI is going to be used */
1373 	if (!arm64_kernel_unmapped_at_el0())
1374 		return;
1375 
1376 	/*
1377 	 * We don't need to rewrite the page-tables if either we've done
1378 	 * it already or we have KASLR enabled and therefore have not
1379 	 * created any global mappings at all.
1380 	 */
1381 	if (arm64_use_ng_mappings)
1382 		return;
1383 
1384 	init_idmap_kpti_bbml3_flag();
1385 	stop_machine(__kpti_install_ng_mappings, NULL, cpu_online_mask);
1386 }
1387 
kernel_exec_prot(void)1388 static pgprot_t __init kernel_exec_prot(void)
1389 {
1390 	return rodata_enabled ? PAGE_KERNEL_ROX : PAGE_KERNEL_EXEC;
1391 }
1392 
map_entry_trampoline(void)1393 static int __init map_entry_trampoline(void)
1394 {
1395 	int i;
1396 
1397 	if (!arm64_kernel_unmapped_at_el0())
1398 		return 0;
1399 
1400 	pgprot_t prot = kernel_exec_prot();
1401 	phys_addr_t pa_start = __pa_symbol(__entry_tramp_text_start);
1402 
1403 	/* The trampoline is always mapped and can therefore be global */
1404 	pgprot_val(prot) &= ~PTE_NG;
1405 
1406 	/* Map only the text into the trampoline page table */
1407 	memset(tramp_pg_dir, 0, PGD_SIZE);
1408 	early_create_pgd_mapping(tramp_pg_dir, pa_start, TRAMP_VALIAS,
1409 				 entry_tramp_text_size(), prot,
1410 				 pgd_pgtable_alloc_init_mm, NO_BLOCK_MAPPINGS);
1411 
1412 	/* Map both the text and data into the kernel page table */
1413 	for (i = 0; i < DIV_ROUND_UP(entry_tramp_text_size(), PAGE_SIZE); i++)
1414 		__set_fixmap(FIX_ENTRY_TRAMP_TEXT1 - i,
1415 			     pa_start + i * PAGE_SIZE, prot);
1416 
1417 	if (IS_ENABLED(CONFIG_RELOCATABLE))
1418 		__set_fixmap(FIX_ENTRY_TRAMP_TEXT1 - i,
1419 			     pa_start + i * PAGE_SIZE, PAGE_KERNEL_RO);
1420 
1421 	return 0;
1422 }
1423 core_initcall(map_entry_trampoline);
1424 #endif
1425 
1426 /*
1427  * Declare the VMA areas for the kernel
1428  */
declare_kernel_vmas(void)1429 static void __init declare_kernel_vmas(void)
1430 {
1431 	static struct vm_struct vmlinux_seg[KERNEL_SEGMENT_COUNT];
1432 
1433 	declare_vma(&vmlinux_seg[0], _text, _etext, VM_NO_GUARD);
1434 	declare_vma(&vmlinux_seg[1], __start_rodata, __inittext_begin, VM_NO_GUARD);
1435 	declare_vma(&vmlinux_seg[2], __inittext_begin, __inittext_end, VM_NO_GUARD);
1436 	declare_vma(&vmlinux_seg[3], __initdata_begin, __initdata_end, VM_NO_GUARD);
1437 	declare_vma(&vmlinux_seg[4], _data, _end, 0);
1438 }
1439 
1440 void __pi_map_range(phys_addr_t *pte, u64 start, u64 end, phys_addr_t pa,
1441 		    pgprot_t prot, int level, pte_t *tbl, bool may_use_cont,
1442 		    u64 va_offset);
1443 
1444 static u8 idmap_ptes[IDMAP_LEVELS - 1][PAGE_SIZE] __aligned(PAGE_SIZE) __ro_after_init,
1445 	  kpti_bbml3_ptes[IDMAP_LEVELS - 1][PAGE_SIZE] __aligned(PAGE_SIZE) __ro_after_init;
1446 
create_idmap(void)1447 static void __init create_idmap(void)
1448 {
1449 	phys_addr_t start = __pa_symbol(__idmap_text_start);
1450 	phys_addr_t end   = __pa_symbol(__idmap_text_end);
1451 	phys_addr_t ptep  = __pa_symbol(idmap_ptes);
1452 
1453 	__pi_map_range(&ptep, start, end, start, PAGE_KERNEL_ROX,
1454 		       IDMAP_ROOT_LEVEL, (pte_t *)idmap_pg_dir, false,
1455 		       __phys_to_virt(ptep) - ptep);
1456 
1457 	if (linear_map_requires_bbml3 ||
1458 	    (IS_ENABLED(CONFIG_UNMAP_KERNEL_AT_EL0) && !arm64_use_ng_mappings)) {
1459 		phys_addr_t pa = __pa_symbol(&idmap_kpti_bbml3_flag);
1460 
1461 		/*
1462 		 * The KPTI G-to-nG conversion code needs a read-write mapping
1463 		 * of its synchronization flag in the ID map. This is also used
1464 		 * when splitting the linear map to ptes if a secondary CPU
1465 		 * doesn't support bbml3.
1466 		 */
1467 		ptep = __pa_symbol(kpti_bbml3_ptes);
1468 		__pi_map_range(&ptep, pa, pa + sizeof(u32), pa, PAGE_KERNEL,
1469 			       IDMAP_ROOT_LEVEL, (pte_t *)idmap_pg_dir, false,
1470 			       __phys_to_virt(ptep) - ptep);
1471 	}
1472 }
1473 
paging_init(void)1474 void __init paging_init(void)
1475 {
1476 	map_mem();
1477 
1478 	memblock_allow_resize();
1479 
1480 	create_idmap();
1481 	declare_kernel_vmas();
1482 }
1483 
1484 #ifdef CONFIG_MEMORY_HOTPLUG
free_hotplug_page_range(struct page * page,size_t size,struct vmem_altmap * altmap)1485 static void free_hotplug_page_range(struct page *page, size_t size,
1486 				    struct vmem_altmap *altmap)
1487 {
1488 	if (altmap) {
1489 		vmem_altmap_free(altmap, size >> PAGE_SHIFT);
1490 	} else {
1491 		WARN_ON(PageReserved(page));
1492 		__free_pages(page, get_order(size));
1493 	}
1494 }
1495 
free_hotplug_pgtable_page(struct page * page)1496 static void free_hotplug_pgtable_page(struct page *page)
1497 {
1498 	pagetable_dtor(page_ptdesc(page));
1499 	free_hotplug_page_range(page, PAGE_SIZE, NULL);
1500 }
1501 
pgtable_range_aligned(unsigned long start,unsigned long end,unsigned long floor,unsigned long ceiling,unsigned long mask)1502 static bool pgtable_range_aligned(unsigned long start, unsigned long end,
1503 				  unsigned long floor, unsigned long ceiling,
1504 				  unsigned long mask)
1505 {
1506 	start &= mask;
1507 	if (start < floor)
1508 		return false;
1509 
1510 	if (ceiling) {
1511 		ceiling &= mask;
1512 		if (!ceiling)
1513 			return false;
1514 	}
1515 
1516 	if (end - 1 > ceiling - 1)
1517 		return false;
1518 	return true;
1519 }
1520 
unmap_hotplug_pte_range(pmd_t * pmdp,unsigned long addr,unsigned long end,bool free_mapped,struct vmem_altmap * altmap)1521 static void unmap_hotplug_pte_range(pmd_t *pmdp, unsigned long addr,
1522 				    unsigned long end, bool free_mapped,
1523 				    struct vmem_altmap *altmap)
1524 {
1525 	pte_t *ptep, pte;
1526 
1527 	do {
1528 		ptep = pte_offset_kernel(pmdp, addr);
1529 		pte = __ptep_get(ptep);
1530 		if (pte_none(pte))
1531 			continue;
1532 
1533 		WARN_ON(!pte_present(pte));
1534 		__pte_clear(&init_mm, addr, ptep);
1535 		if (free_mapped) {
1536 			/* CONT blocks are not supported in the vmemmap */
1537 			WARN_ON(pte_cont(pte));
1538 			flush_tlb_kernel_range(addr, addr + PAGE_SIZE);
1539 			free_hotplug_page_range(pte_page(pte),
1540 						PAGE_SIZE, altmap);
1541 		}
1542 		/* unmap_hotplug_range() flushes TLB for !free_mapped */
1543 	} while (addr += PAGE_SIZE, addr < end);
1544 }
1545 
unmap_hotplug_pmd_range(pud_t * pudp,unsigned long addr,unsigned long end,bool free_mapped,struct vmem_altmap * altmap)1546 static void unmap_hotplug_pmd_range(pud_t *pudp, unsigned long addr,
1547 				    unsigned long end, bool free_mapped,
1548 				    struct vmem_altmap *altmap)
1549 {
1550 	unsigned long next;
1551 	pmd_t *pmdp, pmd;
1552 
1553 	do {
1554 		next = pmd_addr_end(addr, end);
1555 		pmdp = pmd_offset(pudp, addr);
1556 		pmd = READ_ONCE(*pmdp);
1557 		if (pmd_none(pmd))
1558 			continue;
1559 
1560 		WARN_ON(!pmd_present(pmd));
1561 		if (pmd_leaf(pmd)) {
1562 			pmd_clear(pmdp);
1563 			if (free_mapped) {
1564 				/* CONT blocks are not supported in the vmemmap */
1565 				WARN_ON(pmd_cont(pmd));
1566 				/*
1567 				 * Invalidating a block entry requires just
1568 				 * a single overlapping TLB invalidation,
1569 				 * so limit the range of the flush to a single
1570 				 * page.
1571 				 */
1572 				flush_tlb_kernel_range(addr, addr + PAGE_SIZE);
1573 				free_hotplug_page_range(pmd_page(pmd),
1574 							PMD_SIZE, altmap);
1575 			}
1576 			/* unmap_hotplug_range() flushes TLB for !free_mapped */
1577 			continue;
1578 		}
1579 		WARN_ON(!pmd_table(pmd));
1580 		unmap_hotplug_pte_range(pmdp, addr, next, free_mapped, altmap);
1581 	} while (addr = next, addr < end);
1582 }
1583 
unmap_hotplug_pud_range(p4d_t * p4dp,unsigned long addr,unsigned long end,bool free_mapped,struct vmem_altmap * altmap)1584 static void unmap_hotplug_pud_range(p4d_t *p4dp, unsigned long addr,
1585 				    unsigned long end, bool free_mapped,
1586 				    struct vmem_altmap *altmap)
1587 {
1588 	unsigned long next;
1589 	pud_t *pudp, pud;
1590 
1591 	do {
1592 		next = pud_addr_end(addr, end);
1593 		pudp = pud_offset(p4dp, addr);
1594 		pud = READ_ONCE(*pudp);
1595 		if (pud_none(pud))
1596 			continue;
1597 
1598 		WARN_ON(!pud_present(pud));
1599 		if (pud_leaf(pud)) {
1600 			pud_clear(pudp);
1601 			if (free_mapped) {
1602 				/* See comment in unmap_hotplug_pmd_range(). */
1603 				flush_tlb_kernel_range(addr, addr + PAGE_SIZE);
1604 				free_hotplug_page_range(pud_page(pud),
1605 							PUD_SIZE, altmap);
1606 			}
1607 			/* unmap_hotplug_range() flushes TLB for !free_mapped */
1608 			continue;
1609 		}
1610 		WARN_ON(!pud_table(pud));
1611 		unmap_hotplug_pmd_range(pudp, addr, next, free_mapped, altmap);
1612 	} while (addr = next, addr < end);
1613 }
1614 
unmap_hotplug_p4d_range(pgd_t * pgdp,unsigned long addr,unsigned long end,bool free_mapped,struct vmem_altmap * altmap)1615 static void unmap_hotplug_p4d_range(pgd_t *pgdp, unsigned long addr,
1616 				    unsigned long end, bool free_mapped,
1617 				    struct vmem_altmap *altmap)
1618 {
1619 	unsigned long next;
1620 	p4d_t *p4dp, p4d;
1621 
1622 	do {
1623 		next = p4d_addr_end(addr, end);
1624 		p4dp = p4d_offset(pgdp, addr);
1625 		p4d = READ_ONCE(*p4dp);
1626 		if (p4d_none(p4d))
1627 			continue;
1628 
1629 		WARN_ON(!p4d_present(p4d));
1630 		unmap_hotplug_pud_range(p4dp, addr, next, free_mapped, altmap);
1631 	} while (addr = next, addr < end);
1632 }
1633 
unmap_hotplug_range(unsigned long addr,unsigned long end,bool free_mapped,struct vmem_altmap * altmap)1634 static void unmap_hotplug_range(unsigned long addr, unsigned long end,
1635 				bool free_mapped, struct vmem_altmap *altmap)
1636 {
1637 	unsigned long start = addr;
1638 	unsigned long next;
1639 	pgd_t *pgdp, pgd;
1640 
1641 	/*
1642 	 * altmap can only be used as vmemmap mapping backing memory.
1643 	 * In case the backing memory itself is not being freed, then
1644 	 * altmap is irrelevant. Warn about this inconsistency when
1645 	 * encountered.
1646 	 */
1647 	WARN_ON(!free_mapped && altmap);
1648 
1649 	do {
1650 		next = pgd_addr_end(addr, end);
1651 		pgdp = pgd_offset_k(addr);
1652 		pgd = READ_ONCE(*pgdp);
1653 		if (pgd_none(pgd))
1654 			continue;
1655 
1656 		WARN_ON(!pgd_present(pgd));
1657 		unmap_hotplug_p4d_range(pgdp, addr, next, free_mapped, altmap);
1658 	} while (addr = next, addr < end);
1659 
1660 	if (!free_mapped)
1661 		flush_tlb_kernel_range(start, end);
1662 }
1663 
free_empty_pte_table(pmd_t * pmdp,unsigned long addr,unsigned long end,unsigned long floor,unsigned long ceiling)1664 static void free_empty_pte_table(pmd_t *pmdp, unsigned long addr,
1665 				 unsigned long end, unsigned long floor,
1666 				 unsigned long ceiling)
1667 {
1668 	pte_t *ptep, pte;
1669 	unsigned long i, start = addr;
1670 
1671 	do {
1672 		ptep = pte_offset_kernel(pmdp, addr);
1673 		pte = __ptep_get(ptep);
1674 
1675 		/*
1676 		 * This is just a sanity check here which verifies that
1677 		 * pte clearing has been done by earlier unmap loops.
1678 		 */
1679 		WARN_ON(!pte_none(pte));
1680 	} while (addr += PAGE_SIZE, addr < end);
1681 
1682 	if (!pgtable_range_aligned(start, end, floor, ceiling, PMD_MASK))
1683 		return;
1684 
1685 	/*
1686 	 * Check whether we can free the pte page if the rest of the
1687 	 * entries are empty. Overlap with other regions have been
1688 	 * handled by the floor/ceiling check.
1689 	 */
1690 	ptep = pte_offset_kernel(pmdp, 0UL);
1691 	for (i = 0; i < PTRS_PER_PTE; i++) {
1692 		if (!pte_none(__ptep_get(&ptep[i])))
1693 			return;
1694 	}
1695 
1696 	pmd_clear(pmdp);
1697 	__flush_tlb_kernel_pgtable(start);
1698 	free_hotplug_pgtable_page(virt_to_page(ptep));
1699 }
1700 
free_empty_pmd_table(pud_t * pudp,unsigned long addr,unsigned long end,unsigned long floor,unsigned long ceiling)1701 static void free_empty_pmd_table(pud_t *pudp, unsigned long addr,
1702 				 unsigned long end, unsigned long floor,
1703 				 unsigned long ceiling)
1704 {
1705 	pmd_t *pmdp, pmd;
1706 	unsigned long i, next, start = addr;
1707 
1708 	do {
1709 		next = pmd_addr_end(addr, end);
1710 		pmdp = pmd_offset(pudp, addr);
1711 		pmd = READ_ONCE(*pmdp);
1712 		if (pmd_none(pmd))
1713 			continue;
1714 
1715 		WARN_ON(!pmd_present(pmd) || !pmd_table(pmd));
1716 		free_empty_pte_table(pmdp, addr, next, floor, ceiling);
1717 	} while (addr = next, addr < end);
1718 
1719 	if (CONFIG_PGTABLE_LEVELS <= 2)
1720 		return;
1721 
1722 	if (!pgtable_range_aligned(start, end, floor, ceiling, PUD_MASK))
1723 		return;
1724 
1725 	/*
1726 	 * Check whether we can free the pmd page if the rest of the
1727 	 * entries are empty. Overlap with other regions have been
1728 	 * handled by the floor/ceiling check.
1729 	 */
1730 	pmdp = pmd_offset(pudp, 0UL);
1731 	for (i = 0; i < PTRS_PER_PMD; i++) {
1732 		if (!pmd_none(READ_ONCE(pmdp[i])))
1733 			return;
1734 	}
1735 
1736 	pud_clear(pudp);
1737 	__flush_tlb_kernel_pgtable(start);
1738 	free_hotplug_pgtable_page(virt_to_page(pmdp));
1739 }
1740 
free_empty_pud_table(p4d_t * p4dp,unsigned long addr,unsigned long end,unsigned long floor,unsigned long ceiling)1741 static void free_empty_pud_table(p4d_t *p4dp, unsigned long addr,
1742 				 unsigned long end, unsigned long floor,
1743 				 unsigned long ceiling)
1744 {
1745 	pud_t *pudp, pud;
1746 	unsigned long i, next, start = addr;
1747 
1748 	do {
1749 		next = pud_addr_end(addr, end);
1750 		pudp = pud_offset(p4dp, addr);
1751 		pud = READ_ONCE(*pudp);
1752 		if (pud_none(pud))
1753 			continue;
1754 
1755 		WARN_ON(!pud_present(pud) || !pud_table(pud));
1756 		free_empty_pmd_table(pudp, addr, next, floor, ceiling);
1757 	} while (addr = next, addr < end);
1758 
1759 	if (!pgtable_l4_enabled())
1760 		return;
1761 
1762 	if (!pgtable_range_aligned(start, end, floor, ceiling, P4D_MASK))
1763 		return;
1764 
1765 	/*
1766 	 * Check whether we can free the pud page if the rest of the
1767 	 * entries are empty. Overlap with other regions have been
1768 	 * handled by the floor/ceiling check.
1769 	 */
1770 	pudp = pud_offset(p4dp, 0UL);
1771 	for (i = 0; i < PTRS_PER_PUD; i++) {
1772 		if (!pud_none(READ_ONCE(pudp[i])))
1773 			return;
1774 	}
1775 
1776 	p4d_clear(p4dp);
1777 	__flush_tlb_kernel_pgtable(start);
1778 	free_hotplug_pgtable_page(virt_to_page(pudp));
1779 }
1780 
free_empty_p4d_table(pgd_t * pgdp,unsigned long addr,unsigned long end,unsigned long floor,unsigned long ceiling)1781 static void free_empty_p4d_table(pgd_t *pgdp, unsigned long addr,
1782 				 unsigned long end, unsigned long floor,
1783 				 unsigned long ceiling)
1784 {
1785 	p4d_t *p4dp, p4d;
1786 	unsigned long i, next, start = addr;
1787 
1788 	do {
1789 		next = p4d_addr_end(addr, end);
1790 		p4dp = p4d_offset(pgdp, addr);
1791 		p4d = READ_ONCE(*p4dp);
1792 		if (p4d_none(p4d))
1793 			continue;
1794 
1795 		WARN_ON(!p4d_present(p4d));
1796 		free_empty_pud_table(p4dp, addr, next, floor, ceiling);
1797 	} while (addr = next, addr < end);
1798 
1799 	if (!pgtable_l5_enabled())
1800 		return;
1801 
1802 	if (!pgtable_range_aligned(start, end, floor, ceiling, PGDIR_MASK))
1803 		return;
1804 
1805 	/*
1806 	 * Check whether we can free the p4d page if the rest of the
1807 	 * entries are empty. Overlap with other regions have been
1808 	 * handled by the floor/ceiling check.
1809 	 */
1810 	p4dp = p4d_offset(pgdp, 0UL);
1811 	for (i = 0; i < PTRS_PER_P4D; i++) {
1812 		if (!p4d_none(READ_ONCE(p4dp[i])))
1813 			return;
1814 	}
1815 
1816 	pgd_clear(pgdp);
1817 	__flush_tlb_kernel_pgtable(start);
1818 	free_hotplug_pgtable_page(virt_to_page(p4dp));
1819 }
1820 
free_empty_tables(unsigned long addr,unsigned long end,unsigned long floor,unsigned long ceiling)1821 static void free_empty_tables(unsigned long addr, unsigned long end,
1822 			      unsigned long floor, unsigned long ceiling)
1823 {
1824 	unsigned long next;
1825 	pgd_t *pgdp, pgd;
1826 
1827 	do {
1828 		next = pgd_addr_end(addr, end);
1829 		pgdp = pgd_offset_k(addr);
1830 		pgd = READ_ONCE(*pgdp);
1831 		if (pgd_none(pgd))
1832 			continue;
1833 
1834 		WARN_ON(!pgd_present(pgd));
1835 		free_empty_p4d_table(pgdp, addr, next, floor, ceiling);
1836 	} while (addr = next, addr < end);
1837 }
1838 #endif
1839 
vmemmap_populate(unsigned long start,unsigned long end,int node,struct vmem_altmap * altmap)1840 int __meminit vmemmap_populate(unsigned long start, unsigned long end, int node,
1841 		struct vmem_altmap *altmap)
1842 {
1843 	WARN_ON((start < VMEMMAP_START) || (end > VMEMMAP_END));
1844 	/* [start, end] should be within one section */
1845 	WARN_ON_ONCE(end - start > PAGES_PER_SECTION * sizeof(struct page));
1846 
1847 	if (!IS_ENABLED(CONFIG_ARM64_4K_PAGES) ||
1848 	    (end - start < PAGES_PER_SECTION * sizeof(struct page)))
1849 		return vmemmap_populate_basepages(start, end, node, altmap);
1850 	else
1851 		return vmemmap_populate_hugepages(start, end, node, altmap);
1852 }
1853 
1854 #ifdef CONFIG_MEMORY_HOTPLUG
vmemmap_free(unsigned long start,unsigned long end,struct vmem_altmap * altmap)1855 void vmemmap_free(unsigned long start, unsigned long end,
1856 		struct vmem_altmap *altmap)
1857 {
1858 	WARN_ON((start < VMEMMAP_START) || (end > VMEMMAP_END));
1859 
1860 	unmap_hotplug_range(start, end, true, altmap);
1861 	free_empty_tables(start, end, VMEMMAP_START, VMEMMAP_END);
1862 }
1863 #endif /* CONFIG_MEMORY_HOTPLUG */
1864 
pud_set_huge(pud_t * pudp,phys_addr_t phys,pgprot_t prot)1865 int pud_set_huge(pud_t *pudp, phys_addr_t phys, pgprot_t prot)
1866 {
1867 	pud_t new_pud = pfn_pud(__phys_to_pfn(phys), mk_pud_sect_prot(prot));
1868 
1869 	/* Only allow permission changes for now */
1870 	if (!pgattr_change_is_safe(READ_ONCE(pud_val(*pudp)),
1871 				   pud_val(new_pud)))
1872 		return 0;
1873 
1874 	VM_BUG_ON(phys & ~PUD_MASK);
1875 	set_pud(pudp, new_pud);
1876 	return 1;
1877 }
1878 
pmd_set_huge(pmd_t * pmdp,phys_addr_t phys,pgprot_t prot)1879 int pmd_set_huge(pmd_t *pmdp, phys_addr_t phys, pgprot_t prot)
1880 {
1881 	pmd_t new_pmd = pfn_pmd(__phys_to_pfn(phys), mk_pmd_sect_prot(prot));
1882 
1883 	/* Only allow permission changes for now */
1884 	if (!pgattr_change_is_safe(READ_ONCE(pmd_val(*pmdp)),
1885 				   pmd_val(new_pmd)))
1886 		return 0;
1887 
1888 	VM_BUG_ON(phys & ~PMD_MASK);
1889 	set_pmd(pmdp, new_pmd);
1890 	return 1;
1891 }
1892 
1893 #ifndef __PAGETABLE_P4D_FOLDED
p4d_clear_huge(p4d_t * p4dp)1894 void p4d_clear_huge(p4d_t *p4dp)
1895 {
1896 }
1897 #endif
1898 
pud_clear_huge(pud_t * pudp)1899 int pud_clear_huge(pud_t *pudp)
1900 {
1901 	if (!pud_leaf(READ_ONCE(*pudp)))
1902 		return 0;
1903 	pud_clear(pudp);
1904 	return 1;
1905 }
1906 
pmd_clear_huge(pmd_t * pmdp)1907 int pmd_clear_huge(pmd_t *pmdp)
1908 {
1909 	if (!pmd_leaf(READ_ONCE(*pmdp)))
1910 		return 0;
1911 	pmd_clear(pmdp);
1912 	return 1;
1913 }
1914 
pmd_free_pte_page(pmd_t * pmdp,unsigned long addr)1915 int pmd_free_pte_page(pmd_t *pmdp, unsigned long addr)
1916 {
1917 	pte_t *table;
1918 	pmd_t pmd;
1919 
1920 	pmd = READ_ONCE(*pmdp);
1921 
1922 	if (!pmd_table(pmd)) {
1923 		VM_WARN_ON(1);
1924 		return 1;
1925 	}
1926 
1927 	table = pte_offset_kernel(pmdp, addr);
1928 	pmd_clear(pmdp);
1929 	__flush_tlb_kernel_pgtable(addr);
1930 	pte_free_kernel(NULL, table);
1931 	return 1;
1932 }
1933 
pud_free_pmd_page(pud_t * pudp,unsigned long addr)1934 int pud_free_pmd_page(pud_t *pudp, unsigned long addr)
1935 {
1936 	pmd_t *table;
1937 	pmd_t *pmdp;
1938 	pud_t pud;
1939 	unsigned long next, end;
1940 
1941 	pud = READ_ONCE(*pudp);
1942 
1943 	if (!pud_table(pud)) {
1944 		VM_WARN_ON(1);
1945 		return 1;
1946 	}
1947 
1948 	table = pmd_offset(pudp, addr);
1949 	pmdp = table;
1950 	next = addr;
1951 	end = addr + PUD_SIZE;
1952 	do {
1953 		if (pmd_present(pmdp_get(pmdp)))
1954 			pmd_free_pte_page(pmdp, next);
1955 	} while (pmdp++, next += PMD_SIZE, next != end);
1956 
1957 	pud_clear(pudp);
1958 	__flush_tlb_kernel_pgtable(addr);
1959 	pmd_free(NULL, table);
1960 	return 1;
1961 }
1962 
1963 #ifdef CONFIG_MEMORY_HOTPLUG
__remove_pgd_mapping(pgd_t * pgdir,unsigned long start,u64 size)1964 static void __remove_pgd_mapping(pgd_t *pgdir, unsigned long start, u64 size)
1965 {
1966 	unsigned long end = start + size;
1967 
1968 	WARN_ON(pgdir != init_mm.pgd);
1969 	WARN_ON((start < PAGE_OFFSET) || (end > PAGE_END));
1970 
1971 	unmap_hotplug_range(start, end, false, NULL);
1972 	free_empty_tables(start, end, PAGE_OFFSET, PAGE_END);
1973 }
1974 
arch_get_mappable_range(void)1975 struct range arch_get_mappable_range(void)
1976 {
1977 	struct range mhp_range;
1978 	phys_addr_t start_linear_pa = __pa(_PAGE_OFFSET(vabits_actual));
1979 	phys_addr_t end_linear_pa = __pa(PAGE_END - 1);
1980 
1981 	if (IS_ENABLED(CONFIG_RANDOMIZE_BASE)) {
1982 		/*
1983 		 * Check for a wrap, it is possible because of randomized linear
1984 		 * mapping the start physical address is actually bigger than
1985 		 * the end physical address. In this case set start to zero
1986 		 * because [0, end_linear_pa] range must still be able to cover
1987 		 * all addressable physical addresses.
1988 		 */
1989 		if (start_linear_pa > end_linear_pa)
1990 			start_linear_pa = 0;
1991 	}
1992 
1993 	WARN_ON(start_linear_pa > end_linear_pa);
1994 
1995 	/*
1996 	 * Linear mapping region is the range [PAGE_OFFSET..(PAGE_END - 1)]
1997 	 * accommodating both its ends but excluding PAGE_END. Max physical
1998 	 * range which can be mapped inside this linear mapping range, must
1999 	 * also be derived from its end points.
2000 	 */
2001 	mhp_range.start = start_linear_pa;
2002 	mhp_range.end =  end_linear_pa;
2003 
2004 	return mhp_range;
2005 }
2006 
arch_add_memory(int nid,u64 start,u64 size,struct mhp_params * params)2007 int arch_add_memory(int nid, u64 start, u64 size,
2008 		    struct mhp_params *params)
2009 {
2010 	int ret, flags = NO_EXEC_MAPPINGS;
2011 
2012 	VM_BUG_ON(!mhp_range_allowed(start, size, true));
2013 
2014 	if (force_pte_mapping())
2015 		flags |= NO_BLOCK_MAPPINGS | NO_CONT_MAPPINGS;
2016 
2017 	ret = __create_pgd_mapping(swapper_pg_dir, start, __phys_to_virt(start),
2018 				   size, params->pgprot, pgd_pgtable_alloc_init_mm,
2019 				   flags);
2020 	if (ret)
2021 		goto err;
2022 
2023 	memblock_clear_nomap(start, size);
2024 
2025 	ret = __add_pages(nid, start >> PAGE_SHIFT, size >> PAGE_SHIFT,
2026 			   params);
2027 	if (ret)
2028 		goto err;
2029 
2030 	/* Address of hotplugged memory can be smaller */
2031 	max_pfn = max(max_pfn, PFN_UP(start + size));
2032 	max_low_pfn = max_pfn;
2033 
2034 	return 0;
2035 
2036 err:
2037 	__remove_pgd_mapping(swapper_pg_dir,
2038 			     __phys_to_virt(start), size);
2039 	return ret;
2040 }
2041 
arch_remove_memory(u64 start,u64 size,struct vmem_altmap * altmap,struct dev_pagemap * pgmap)2042 void arch_remove_memory(u64 start, u64 size, struct vmem_altmap *altmap,
2043 			struct dev_pagemap *pgmap)
2044 {
2045 	unsigned long start_pfn = start >> PAGE_SHIFT;
2046 	unsigned long nr_pages = size >> PAGE_SHIFT;
2047 
2048 	__remove_pages(start_pfn, nr_pages, altmap, pgmap);
2049 	__remove_pgd_mapping(swapper_pg_dir, __phys_to_virt(start), size);
2050 }
2051 
2052 
addr_splits_kernel_leaf(unsigned long addr)2053 static bool addr_splits_kernel_leaf(unsigned long addr)
2054 {
2055 	pgd_t *pgdp, pgd;
2056 	p4d_t *p4dp, p4d;
2057 	pud_t *pudp, pud;
2058 	pmd_t *pmdp, pmd;
2059 	pte_t *ptep, pte;
2060 
2061 	/*
2062 	 * If the given address points at a the start address of
2063 	 * a possible leaf, we certainly won't split. Otherwise,
2064 	 * check if we would actually split a leaf by traversing
2065 	 * the page tables further.
2066 	 */
2067 	if (IS_ALIGNED(addr, PGDIR_SIZE))
2068 		return false;
2069 
2070 	pgdp = pgd_offset_k(addr);
2071 	pgd = pgdp_get(pgdp);
2072 	if (!pgd_present(pgd))
2073 		return false;
2074 
2075 	if (IS_ALIGNED(addr, P4D_SIZE))
2076 		return false;
2077 
2078 	p4dp = p4d_offset(pgdp, addr);
2079 	p4d = p4dp_get(p4dp);
2080 	if (!p4d_present(p4d))
2081 		return false;
2082 
2083 	if (IS_ALIGNED(addr, PUD_SIZE))
2084 		return false;
2085 
2086 	pudp = pud_offset(p4dp, addr);
2087 	pud = pudp_get(pudp);
2088 	if (!pud_present(pud))
2089 		return false;
2090 
2091 	if (pud_leaf(pud))
2092 		return true;
2093 
2094 	if (IS_ALIGNED(addr, CONT_PMD_SIZE))
2095 		return false;
2096 
2097 	pmdp = pmd_offset(pudp, addr);
2098 	pmd = pmdp_get(pmdp);
2099 	if (!pmd_present(pmd))
2100 		return false;
2101 
2102 	if (pmd_cont(pmd))
2103 		return true;
2104 
2105 	if (IS_ALIGNED(addr, PMD_SIZE))
2106 		return false;
2107 
2108 	if (pmd_leaf(pmd))
2109 		return true;
2110 
2111 	if (IS_ALIGNED(addr, CONT_PTE_SIZE))
2112 		return false;
2113 
2114 	ptep = pte_offset_kernel(pmdp, addr);
2115 	pte = __ptep_get(ptep);
2116 	if (!pte_present(pte))
2117 		return false;
2118 
2119 	if (pte_cont(pte))
2120 		return true;
2121 
2122 	return !IS_ALIGNED(addr, PAGE_SIZE);
2123 }
2124 
can_unmap_without_split(unsigned long pfn,unsigned long nr_pages)2125 static bool can_unmap_without_split(unsigned long pfn, unsigned long nr_pages)
2126 {
2127 	unsigned long phys_start, phys_end, start, end;
2128 
2129 	phys_start = PFN_PHYS(pfn);
2130 	phys_end = phys_start + nr_pages * PAGE_SIZE;
2131 
2132 	/* PFN range's linear map edges are leaf entry aligned */
2133 	start = __phys_to_virt(phys_start);
2134 	end =  __phys_to_virt(phys_end);
2135 	if (addr_splits_kernel_leaf(start) || addr_splits_kernel_leaf(end)) {
2136 		pr_warn("[%lx %lx] splits a leaf entry in linear map\n",
2137 			phys_start, phys_end);
2138 		return false;
2139 	}
2140 
2141 	/* PFN range's vmemmap edges are leaf entry aligned */
2142 	BUILD_BUG_ON(!IS_ENABLED(CONFIG_SPARSEMEM_VMEMMAP));
2143 	start = (unsigned long)pfn_to_page(pfn);
2144 	end = (unsigned long)pfn_to_page(pfn + nr_pages);
2145 	if (addr_splits_kernel_leaf(start) || addr_splits_kernel_leaf(end)) {
2146 		pr_warn("[%lx %lx] splits a leaf entry in vmemmap\n",
2147 			phys_start, phys_end);
2148 		return false;
2149 	}
2150 	return true;
2151 }
2152 
2153 /*
2154  * This memory hotplug notifier helps prevent boot memory from being
2155  * inadvertently removed as it blocks pfn range offlining process in
2156  * __offline_pages(). Hence this prevents both offlining as well as
2157  * removal process for boot memory which is initially always online.
2158  * In future if and when boot memory could be removed, this notifier
2159  * should be dropped and free_hotplug_page_range() should handle any
2160  * reserved pages allocated during boot.
2161  *
2162  * This also blocks any memory remove that would have caused a split
2163  * in leaf entry in kernel linear or vmemmap mapping.
2164  */
prevent_memory_remove_notifier(struct notifier_block * nb,unsigned long action,void * data)2165 static int prevent_memory_remove_notifier(struct notifier_block *nb,
2166 					   unsigned long action, void *data)
2167 {
2168 	struct mem_section *ms;
2169 	struct memory_notify *arg = data;
2170 	unsigned long end_pfn = arg->start_pfn + arg->nr_pages;
2171 	unsigned long pfn = arg->start_pfn;
2172 
2173 	if ((action != MEM_GOING_OFFLINE) && (action != MEM_OFFLINE))
2174 		return NOTIFY_OK;
2175 
2176 	for (; pfn < end_pfn; pfn += PAGES_PER_SECTION) {
2177 		unsigned long start = PFN_PHYS(pfn);
2178 		unsigned long end = start + (1UL << PA_SECTION_SHIFT);
2179 
2180 		ms = __pfn_to_section(pfn);
2181 		if (!early_section(ms))
2182 			continue;
2183 
2184 		if (action == MEM_GOING_OFFLINE) {
2185 			/*
2186 			 * Boot memory removal is not supported. Prevent
2187 			 * it via blocking any attempted offline request
2188 			 * for the boot memory and just report it.
2189 			 */
2190 			pr_warn("Boot memory [%lx %lx] offlining attempted\n", start, end);
2191 			return NOTIFY_BAD;
2192 		} else if (action == MEM_OFFLINE) {
2193 			/*
2194 			 * This should have never happened. Boot memory
2195 			 * offlining should have been prevented by this
2196 			 * very notifier. Probably some memory removal
2197 			 * procedure might have changed which would then
2198 			 * require further debug.
2199 			 */
2200 			pr_err("Boot memory [%lx %lx] offlined\n", start, end);
2201 
2202 			/*
2203 			 * Core memory hotplug does not process a return
2204 			 * code from the notifier for MEM_OFFLINE events.
2205 			 * The error condition has been reported. Return
2206 			 * from here as if ignored.
2207 			 */
2208 			return NOTIFY_DONE;
2209 		}
2210 	}
2211 
2212 	if (!can_unmap_without_split(arg->start_pfn, arg->nr_pages))
2213 		return NOTIFY_BAD;
2214 
2215 	return NOTIFY_OK;
2216 }
2217 
2218 static struct notifier_block prevent_memory_remove_nb = {
2219 	.notifier_call = prevent_memory_remove_notifier,
2220 };
2221 
2222 /*
2223  * This ensures that boot memory sections on the platform are online
2224  * from early boot. Memory sections could not be prevented from being
2225  * offlined, unless for some reason they are not online to begin with.
2226  * This helps validate the basic assumption on which the above memory
2227  * event notifier works to prevent boot memory section offlining and
2228  * its possible removal.
2229  */
validate_bootmem_online(void)2230 static void validate_bootmem_online(void)
2231 {
2232 	phys_addr_t start, end, addr;
2233 	struct mem_section *ms;
2234 	u64 i;
2235 
2236 	/*
2237 	 * Scanning across all memblock might be expensive
2238 	 * on some big memory systems. Hence enable this
2239 	 * validation only with DEBUG_VM.
2240 	 */
2241 	if (!IS_ENABLED(CONFIG_DEBUG_VM))
2242 		return;
2243 
2244 	for_each_mem_range(i, &start, &end) {
2245 		for (addr = start; addr < end; addr += (1UL << PA_SECTION_SHIFT)) {
2246 			ms = __pfn_to_section(PHYS_PFN(addr));
2247 
2248 			/*
2249 			 * All memory ranges in the system at this point
2250 			 * should have been marked as early sections.
2251 			 */
2252 			WARN_ON(!early_section(ms));
2253 
2254 			/*
2255 			 * Memory notifier mechanism here to prevent boot
2256 			 * memory offlining depends on the fact that each
2257 			 * early section memory on the system is initially
2258 			 * online. Otherwise a given memory section which
2259 			 * is already offline will be overlooked and can
2260 			 * be removed completely. Call out such sections.
2261 			 */
2262 			if (!online_section(ms))
2263 				pr_err("Boot memory [%llx %llx] is offline, can be removed\n",
2264 					addr, addr + (1UL << PA_SECTION_SHIFT));
2265 		}
2266 	}
2267 }
2268 
prevent_memory_remove_init(void)2269 static int __init prevent_memory_remove_init(void)
2270 {
2271 	int ret = 0;
2272 
2273 	if (!IS_ENABLED(CONFIG_MEMORY_HOTREMOVE))
2274 		return ret;
2275 
2276 	validate_bootmem_online();
2277 	ret = register_memory_notifier(&prevent_memory_remove_nb);
2278 	if (ret)
2279 		pr_err("%s: Notifier registration failed %d\n", __func__, ret);
2280 
2281 	return ret;
2282 }
2283 early_initcall(prevent_memory_remove_init);
2284 #endif
2285 
modify_prot_start_ptes(struct vm_area_struct * vma,unsigned long addr,pte_t * ptep,unsigned int nr)2286 pte_t modify_prot_start_ptes(struct vm_area_struct *vma, unsigned long addr,
2287 			     pte_t *ptep, unsigned int nr)
2288 {
2289 	pte_t pte = get_and_clear_ptes(vma->vm_mm, addr, ptep, nr);
2290 
2291 	if (alternative_has_cap_unlikely(ARM64_WORKAROUND_2645198)) {
2292 		/*
2293 		 * Break-before-make (BBM) is required for all user space mappings
2294 		 * when the permission changes from executable to non-executable
2295 		 * in cases where cpu is affected with errata #2645198.
2296 		 */
2297 		if (pte_accessible(vma->vm_mm, pte) && pte_user_exec(pte))
2298 			__flush_tlb_range(vma, addr, nr * PAGE_SIZE,
2299 					  PAGE_SIZE, 3, TLBF_NOWALKCACHE);
2300 	}
2301 
2302 	return pte;
2303 }
2304 
ptep_modify_prot_start(struct vm_area_struct * vma,unsigned long addr,pte_t * ptep)2305 pte_t ptep_modify_prot_start(struct vm_area_struct *vma, unsigned long addr, pte_t *ptep)
2306 {
2307 	return modify_prot_start_ptes(vma, addr, ptep, 1);
2308 }
2309 
modify_prot_commit_ptes(struct vm_area_struct * vma,unsigned long addr,pte_t * ptep,pte_t old_pte,pte_t pte,unsigned int nr)2310 void modify_prot_commit_ptes(struct vm_area_struct *vma, unsigned long addr,
2311 			     pte_t *ptep, pte_t old_pte, pte_t pte,
2312 			     unsigned int nr)
2313 {
2314 	set_ptes(vma->vm_mm, addr, ptep, pte, nr);
2315 }
2316 
ptep_modify_prot_commit(struct vm_area_struct * vma,unsigned long addr,pte_t * ptep,pte_t old_pte,pte_t pte)2317 void ptep_modify_prot_commit(struct vm_area_struct *vma, unsigned long addr, pte_t *ptep,
2318 			     pte_t old_pte, pte_t pte)
2319 {
2320 	modify_prot_commit_ptes(vma, addr, ptep, old_pte, pte, 1);
2321 }
2322 
2323 /*
2324  * Atomically replaces the active TTBR1_EL1 PGD with a new VA-compatible PGD,
2325  * avoiding the possibility of conflicting TLB entries being allocated.
2326  */
__cpu_replace_ttbr1(pgd_t * pgdp,bool cnp)2327 void __cpu_replace_ttbr1(pgd_t *pgdp, bool cnp)
2328 {
2329 	typedef void (ttbr_replace_func)(phys_addr_t);
2330 	extern ttbr_replace_func idmap_cpu_replace_ttbr1;
2331 	ttbr_replace_func *replace_phys;
2332 	unsigned long daif;
2333 
2334 	/* phys_to_ttbr() zeros lower 2 bits of ttbr with 52-bit PA */
2335 	phys_addr_t ttbr1 = phys_to_ttbr(virt_to_phys(pgdp));
2336 
2337 	if (cnp)
2338 		ttbr1 |= TTBRx_EL1_CnP;
2339 
2340 	replace_phys = (void *)__pa_symbol(idmap_cpu_replace_ttbr1);
2341 
2342 	cpu_install_idmap();
2343 
2344 	/*
2345 	 * We really don't want to take *any* exceptions while TTBR1 is
2346 	 * in the process of being replaced so mask everything.
2347 	 */
2348 	daif = local_daif_save();
2349 	replace_phys(ttbr1);
2350 	local_daif_restore(daif);
2351 
2352 	cpu_uninstall_idmap();
2353 }
2354 
2355 #ifdef CONFIG_ARCH_HAS_PKEYS
arch_set_user_pkey_access(int pkey,unsigned long init_val)2356 int arch_set_user_pkey_access(int pkey, unsigned long init_val)
2357 {
2358 	u64 new_por;
2359 	u64 old_por;
2360 
2361 	if (!system_supports_poe())
2362 		return -ENOSPC;
2363 
2364 	/*
2365 	 * This code should only be called with valid 'pkey'
2366 	 * values originating from in-kernel users.  Complain
2367 	 * if a bad value is observed.
2368 	 */
2369 	if (WARN_ON_ONCE(pkey >= arch_max_pkey()))
2370 		return -EINVAL;
2371 
2372 	/* Set the bits we need in POR:  */
2373 	new_por = POE_RWX;
2374 	if (init_val & PKEY_DISABLE_WRITE)
2375 		new_por &= ~POE_W;
2376 	if (init_val & PKEY_DISABLE_ACCESS)
2377 		new_por &= ~POE_RW;
2378 	if (init_val & PKEY_DISABLE_READ)
2379 		new_por &= ~POE_R;
2380 	if (init_val & PKEY_DISABLE_EXECUTE)
2381 		new_por &= ~POE_X;
2382 
2383 	/* Shift the bits in to the correct place in POR for pkey: */
2384 	new_por = POR_ELx_PERM_PREP(pkey, new_por);
2385 
2386 	/* Get old POR and mask off any old bits in place: */
2387 	old_por = read_sysreg_s(SYS_POR_EL0);
2388 	old_por &= ~(POE_MASK << POR_ELx_PERM_SHIFT(pkey));
2389 
2390 	/* Write old part along with new part: */
2391 	write_sysreg_s(old_por | new_por, SYS_POR_EL0);
2392 
2393 	return 0;
2394 }
2395 #endif
2396