xref: /linux/fs/hugetlbfs/inode.c (revision 247dbcdbf790c52fc76cf8e327cd0a5778e41e66)
1 /*
2  * hugetlbpage-backed filesystem.  Based on ramfs.
3  *
4  * Nadia Yvette Chambers, 2002
5  *
6  * Copyright (C) 2002 Linus Torvalds.
7  * License: GPL
8  */
9 
10 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
11 
12 #include <linux/thread_info.h>
13 #include <asm/current.h>
14 #include <linux/falloc.h>
15 #include <linux/fs.h>
16 #include <linux/mount.h>
17 #include <linux/file.h>
18 #include <linux/kernel.h>
19 #include <linux/writeback.h>
20 #include <linux/pagemap.h>
21 #include <linux/highmem.h>
22 #include <linux/init.h>
23 #include <linux/string.h>
24 #include <linux/capability.h>
25 #include <linux/ctype.h>
26 #include <linux/backing-dev.h>
27 #include <linux/hugetlb.h>
28 #include <linux/pagevec.h>
29 #include <linux/fs_parser.h>
30 #include <linux/mman.h>
31 #include <linux/slab.h>
32 #include <linux/dnotify.h>
33 #include <linux/statfs.h>
34 #include <linux/security.h>
35 #include <linux/magic.h>
36 #include <linux/migrate.h>
37 #include <linux/uio.h>
38 
39 #include <linux/uaccess.h>
40 #include <linux/sched/mm.h>
41 
42 static const struct address_space_operations hugetlbfs_aops;
43 const struct file_operations hugetlbfs_file_operations;
44 static const struct inode_operations hugetlbfs_dir_inode_operations;
45 static const struct inode_operations hugetlbfs_inode_operations;
46 
47 enum hugetlbfs_size_type { NO_SIZE, SIZE_STD, SIZE_PERCENT };
48 
49 struct hugetlbfs_fs_context {
50 	struct hstate		*hstate;
51 	unsigned long long	max_size_opt;
52 	unsigned long long	min_size_opt;
53 	long			max_hpages;
54 	long			nr_inodes;
55 	long			min_hpages;
56 	enum hugetlbfs_size_type max_val_type;
57 	enum hugetlbfs_size_type min_val_type;
58 	kuid_t			uid;
59 	kgid_t			gid;
60 	umode_t			mode;
61 };
62 
63 int sysctl_hugetlb_shm_group;
64 
65 enum hugetlb_param {
66 	Opt_gid,
67 	Opt_min_size,
68 	Opt_mode,
69 	Opt_nr_inodes,
70 	Opt_pagesize,
71 	Opt_size,
72 	Opt_uid,
73 };
74 
75 static const struct fs_parameter_spec hugetlb_fs_parameters[] = {
76 	fsparam_u32   ("gid",		Opt_gid),
77 	fsparam_string("min_size",	Opt_min_size),
78 	fsparam_u32oct("mode",		Opt_mode),
79 	fsparam_string("nr_inodes",	Opt_nr_inodes),
80 	fsparam_string("pagesize",	Opt_pagesize),
81 	fsparam_string("size",		Opt_size),
82 	fsparam_u32   ("uid",		Opt_uid),
83 	{}
84 };
85 
86 #ifdef CONFIG_NUMA
87 static inline void hugetlb_set_vma_policy(struct vm_area_struct *vma,
88 					struct inode *inode, pgoff_t index)
89 {
90 	vma->vm_policy = mpol_shared_policy_lookup(&HUGETLBFS_I(inode)->policy,
91 							index);
92 }
93 
94 static inline void hugetlb_drop_vma_policy(struct vm_area_struct *vma)
95 {
96 	mpol_cond_put(vma->vm_policy);
97 }
98 #else
99 static inline void hugetlb_set_vma_policy(struct vm_area_struct *vma,
100 					struct inode *inode, pgoff_t index)
101 {
102 }
103 
104 static inline void hugetlb_drop_vma_policy(struct vm_area_struct *vma)
105 {
106 }
107 #endif
108 
109 /*
110  * Mask used when checking the page offset value passed in via system
111  * calls.  This value will be converted to a loff_t which is signed.
112  * Therefore, we want to check the upper PAGE_SHIFT + 1 bits of the
113  * value.  The extra bit (- 1 in the shift value) is to take the sign
114  * bit into account.
115  */
116 #define PGOFF_LOFFT_MAX \
117 	(((1UL << (PAGE_SHIFT + 1)) - 1) <<  (BITS_PER_LONG - (PAGE_SHIFT + 1)))
118 
119 static int hugetlbfs_file_mmap(struct file *file, struct vm_area_struct *vma)
120 {
121 	struct inode *inode = file_inode(file);
122 	struct hugetlbfs_inode_info *info = HUGETLBFS_I(inode);
123 	loff_t len, vma_len;
124 	int ret;
125 	struct hstate *h = hstate_file(file);
126 
127 	/*
128 	 * vma address alignment (but not the pgoff alignment) has
129 	 * already been checked by prepare_hugepage_range.  If you add
130 	 * any error returns here, do so after setting VM_HUGETLB, so
131 	 * is_vm_hugetlb_page tests below unmap_region go the right
132 	 * way when do_mmap unwinds (may be important on powerpc
133 	 * and ia64).
134 	 */
135 	vm_flags_set(vma, VM_HUGETLB | VM_DONTEXPAND);
136 	vma->vm_ops = &hugetlb_vm_ops;
137 
138 	ret = seal_check_future_write(info->seals, vma);
139 	if (ret)
140 		return ret;
141 
142 	/*
143 	 * page based offset in vm_pgoff could be sufficiently large to
144 	 * overflow a loff_t when converted to byte offset.  This can
145 	 * only happen on architectures where sizeof(loff_t) ==
146 	 * sizeof(unsigned long).  So, only check in those instances.
147 	 */
148 	if (sizeof(unsigned long) == sizeof(loff_t)) {
149 		if (vma->vm_pgoff & PGOFF_LOFFT_MAX)
150 			return -EINVAL;
151 	}
152 
153 	/* must be huge page aligned */
154 	if (vma->vm_pgoff & (~huge_page_mask(h) >> PAGE_SHIFT))
155 		return -EINVAL;
156 
157 	vma_len = (loff_t)(vma->vm_end - vma->vm_start);
158 	len = vma_len + ((loff_t)vma->vm_pgoff << PAGE_SHIFT);
159 	/* check for overflow */
160 	if (len < vma_len)
161 		return -EINVAL;
162 
163 	inode_lock(inode);
164 	file_accessed(file);
165 
166 	ret = -ENOMEM;
167 	if (!hugetlb_reserve_pages(inode,
168 				vma->vm_pgoff >> huge_page_order(h),
169 				len >> huge_page_shift(h), vma,
170 				vma->vm_flags))
171 		goto out;
172 
173 	ret = 0;
174 	if (vma->vm_flags & VM_WRITE && inode->i_size < len)
175 		i_size_write(inode, len);
176 out:
177 	inode_unlock(inode);
178 
179 	return ret;
180 }
181 
182 /*
183  * Called under mmap_write_lock(mm).
184  */
185 
186 static unsigned long
187 hugetlb_get_unmapped_area_bottomup(struct file *file, unsigned long addr,
188 		unsigned long len, unsigned long pgoff, unsigned long flags)
189 {
190 	struct hstate *h = hstate_file(file);
191 	struct vm_unmapped_area_info info;
192 
193 	info.flags = 0;
194 	info.length = len;
195 	info.low_limit = current->mm->mmap_base;
196 	info.high_limit = arch_get_mmap_end(addr, len, flags);
197 	info.align_mask = PAGE_MASK & ~huge_page_mask(h);
198 	info.align_offset = 0;
199 	return vm_unmapped_area(&info);
200 }
201 
202 static unsigned long
203 hugetlb_get_unmapped_area_topdown(struct file *file, unsigned long addr,
204 		unsigned long len, unsigned long pgoff, unsigned long flags)
205 {
206 	struct hstate *h = hstate_file(file);
207 	struct vm_unmapped_area_info info;
208 
209 	info.flags = VM_UNMAPPED_AREA_TOPDOWN;
210 	info.length = len;
211 	info.low_limit = PAGE_SIZE;
212 	info.high_limit = arch_get_mmap_base(addr, current->mm->mmap_base);
213 	info.align_mask = PAGE_MASK & ~huge_page_mask(h);
214 	info.align_offset = 0;
215 	addr = vm_unmapped_area(&info);
216 
217 	/*
218 	 * A failed mmap() very likely causes application failure,
219 	 * so fall back to the bottom-up function here. This scenario
220 	 * can happen with large stack limits and large mmap()
221 	 * allocations.
222 	 */
223 	if (unlikely(offset_in_page(addr))) {
224 		VM_BUG_ON(addr != -ENOMEM);
225 		info.flags = 0;
226 		info.low_limit = current->mm->mmap_base;
227 		info.high_limit = arch_get_mmap_end(addr, len, flags);
228 		addr = vm_unmapped_area(&info);
229 	}
230 
231 	return addr;
232 }
233 
234 unsigned long
235 generic_hugetlb_get_unmapped_area(struct file *file, unsigned long addr,
236 				  unsigned long len, unsigned long pgoff,
237 				  unsigned long flags)
238 {
239 	struct mm_struct *mm = current->mm;
240 	struct vm_area_struct *vma;
241 	struct hstate *h = hstate_file(file);
242 	const unsigned long mmap_end = arch_get_mmap_end(addr, len, flags);
243 
244 	if (len & ~huge_page_mask(h))
245 		return -EINVAL;
246 	if (len > TASK_SIZE)
247 		return -ENOMEM;
248 
249 	if (flags & MAP_FIXED) {
250 		if (prepare_hugepage_range(file, addr, len))
251 			return -EINVAL;
252 		return addr;
253 	}
254 
255 	if (addr) {
256 		addr = ALIGN(addr, huge_page_size(h));
257 		vma = find_vma(mm, addr);
258 		if (mmap_end - len >= addr &&
259 		    (!vma || addr + len <= vm_start_gap(vma)))
260 			return addr;
261 	}
262 
263 	/*
264 	 * Use mm->get_unmapped_area value as a hint to use topdown routine.
265 	 * If architectures have special needs, they should define their own
266 	 * version of hugetlb_get_unmapped_area.
267 	 */
268 	if (mm->get_unmapped_area == arch_get_unmapped_area_topdown)
269 		return hugetlb_get_unmapped_area_topdown(file, addr, len,
270 				pgoff, flags);
271 	return hugetlb_get_unmapped_area_bottomup(file, addr, len,
272 			pgoff, flags);
273 }
274 
275 #ifndef HAVE_ARCH_HUGETLB_UNMAPPED_AREA
276 static unsigned long
277 hugetlb_get_unmapped_area(struct file *file, unsigned long addr,
278 			  unsigned long len, unsigned long pgoff,
279 			  unsigned long flags)
280 {
281 	return generic_hugetlb_get_unmapped_area(file, addr, len, pgoff, flags);
282 }
283 #endif
284 
285 /*
286  * Someone wants to read @bytes from a HWPOISON hugetlb @page from @offset.
287  * Returns the maximum number of bytes one can read without touching the 1st raw
288  * HWPOISON subpage.
289  *
290  * The implementation borrows the iteration logic from copy_page_to_iter*.
291  */
292 static size_t adjust_range_hwpoison(struct page *page, size_t offset, size_t bytes)
293 {
294 	size_t n = 0;
295 	size_t res = 0;
296 
297 	/* First subpage to start the loop. */
298 	page = nth_page(page, offset / PAGE_SIZE);
299 	offset %= PAGE_SIZE;
300 	while (1) {
301 		if (is_raw_hwpoison_page_in_hugepage(page))
302 			break;
303 
304 		/* Safe to read n bytes without touching HWPOISON subpage. */
305 		n = min(bytes, (size_t)PAGE_SIZE - offset);
306 		res += n;
307 		bytes -= n;
308 		if (!bytes || !n)
309 			break;
310 		offset += n;
311 		if (offset == PAGE_SIZE) {
312 			page = nth_page(page, 1);
313 			offset = 0;
314 		}
315 	}
316 
317 	return res;
318 }
319 
320 /*
321  * Support for read() - Find the page attached to f_mapping and copy out the
322  * data. This provides functionality similar to filemap_read().
323  */
324 static ssize_t hugetlbfs_read_iter(struct kiocb *iocb, struct iov_iter *to)
325 {
326 	struct file *file = iocb->ki_filp;
327 	struct hstate *h = hstate_file(file);
328 	struct address_space *mapping = file->f_mapping;
329 	struct inode *inode = mapping->host;
330 	unsigned long index = iocb->ki_pos >> huge_page_shift(h);
331 	unsigned long offset = iocb->ki_pos & ~huge_page_mask(h);
332 	unsigned long end_index;
333 	loff_t isize;
334 	ssize_t retval = 0;
335 
336 	while (iov_iter_count(to)) {
337 		struct folio *folio;
338 		size_t nr, copied, want;
339 
340 		/* nr is the maximum number of bytes to copy from this page */
341 		nr = huge_page_size(h);
342 		isize = i_size_read(inode);
343 		if (!isize)
344 			break;
345 		end_index = (isize - 1) >> huge_page_shift(h);
346 		if (index > end_index)
347 			break;
348 		if (index == end_index) {
349 			nr = ((isize - 1) & ~huge_page_mask(h)) + 1;
350 			if (nr <= offset)
351 				break;
352 		}
353 		nr = nr - offset;
354 
355 		/* Find the folio */
356 		folio = filemap_lock_hugetlb_folio(h, mapping, index);
357 		if (IS_ERR(folio)) {
358 			/*
359 			 * We have a HOLE, zero out the user-buffer for the
360 			 * length of the hole or request.
361 			 */
362 			copied = iov_iter_zero(nr, to);
363 		} else {
364 			folio_unlock(folio);
365 
366 			if (!folio_test_has_hwpoisoned(folio))
367 				want = nr;
368 			else {
369 				/*
370 				 * Adjust how many bytes safe to read without
371 				 * touching the 1st raw HWPOISON subpage after
372 				 * offset.
373 				 */
374 				want = adjust_range_hwpoison(&folio->page, offset, nr);
375 				if (want == 0) {
376 					folio_put(folio);
377 					retval = -EIO;
378 					break;
379 				}
380 			}
381 
382 			/*
383 			 * We have the folio, copy it to user space buffer.
384 			 */
385 			copied = copy_folio_to_iter(folio, offset, want, to);
386 			folio_put(folio);
387 		}
388 		offset += copied;
389 		retval += copied;
390 		if (copied != nr && iov_iter_count(to)) {
391 			if (!retval)
392 				retval = -EFAULT;
393 			break;
394 		}
395 		index += offset >> huge_page_shift(h);
396 		offset &= ~huge_page_mask(h);
397 	}
398 	iocb->ki_pos = ((loff_t)index << huge_page_shift(h)) + offset;
399 	return retval;
400 }
401 
402 static int hugetlbfs_write_begin(struct file *file,
403 			struct address_space *mapping,
404 			loff_t pos, unsigned len,
405 			struct page **pagep, void **fsdata)
406 {
407 	return -EINVAL;
408 }
409 
410 static int hugetlbfs_write_end(struct file *file, struct address_space *mapping,
411 			loff_t pos, unsigned len, unsigned copied,
412 			struct page *page, void *fsdata)
413 {
414 	BUG();
415 	return -EINVAL;
416 }
417 
418 static void hugetlb_delete_from_page_cache(struct folio *folio)
419 {
420 	folio_clear_dirty(folio);
421 	folio_clear_uptodate(folio);
422 	filemap_remove_folio(folio);
423 }
424 
425 /*
426  * Called with i_mmap_rwsem held for inode based vma maps.  This makes
427  * sure vma (and vm_mm) will not go away.  We also hold the hugetlb fault
428  * mutex for the page in the mapping.  So, we can not race with page being
429  * faulted into the vma.
430  */
431 static bool hugetlb_vma_maps_page(struct vm_area_struct *vma,
432 				unsigned long addr, struct page *page)
433 {
434 	pte_t *ptep, pte;
435 
436 	ptep = hugetlb_walk(vma, addr, huge_page_size(hstate_vma(vma)));
437 	if (!ptep)
438 		return false;
439 
440 	pte = huge_ptep_get(ptep);
441 	if (huge_pte_none(pte) || !pte_present(pte))
442 		return false;
443 
444 	if (pte_page(pte) == page)
445 		return true;
446 
447 	return false;
448 }
449 
450 /*
451  * Can vma_offset_start/vma_offset_end overflow on 32-bit arches?
452  * No, because the interval tree returns us only those vmas
453  * which overlap the truncated area starting at pgoff,
454  * and no vma on a 32-bit arch can span beyond the 4GB.
455  */
456 static unsigned long vma_offset_start(struct vm_area_struct *vma, pgoff_t start)
457 {
458 	unsigned long offset = 0;
459 
460 	if (vma->vm_pgoff < start)
461 		offset = (start - vma->vm_pgoff) << PAGE_SHIFT;
462 
463 	return vma->vm_start + offset;
464 }
465 
466 static unsigned long vma_offset_end(struct vm_area_struct *vma, pgoff_t end)
467 {
468 	unsigned long t_end;
469 
470 	if (!end)
471 		return vma->vm_end;
472 
473 	t_end = ((end - vma->vm_pgoff) << PAGE_SHIFT) + vma->vm_start;
474 	if (t_end > vma->vm_end)
475 		t_end = vma->vm_end;
476 	return t_end;
477 }
478 
479 /*
480  * Called with hugetlb fault mutex held.  Therefore, no more mappings to
481  * this folio can be created while executing the routine.
482  */
483 static void hugetlb_unmap_file_folio(struct hstate *h,
484 					struct address_space *mapping,
485 					struct folio *folio, pgoff_t index)
486 {
487 	struct rb_root_cached *root = &mapping->i_mmap;
488 	struct hugetlb_vma_lock *vma_lock;
489 	struct page *page = &folio->page;
490 	struct vm_area_struct *vma;
491 	unsigned long v_start;
492 	unsigned long v_end;
493 	pgoff_t start, end;
494 
495 	start = index * pages_per_huge_page(h);
496 	end = (index + 1) * pages_per_huge_page(h);
497 
498 	i_mmap_lock_write(mapping);
499 retry:
500 	vma_lock = NULL;
501 	vma_interval_tree_foreach(vma, root, start, end - 1) {
502 		v_start = vma_offset_start(vma, start);
503 		v_end = vma_offset_end(vma, end);
504 
505 		if (!hugetlb_vma_maps_page(vma, v_start, page))
506 			continue;
507 
508 		if (!hugetlb_vma_trylock_write(vma)) {
509 			vma_lock = vma->vm_private_data;
510 			/*
511 			 * If we can not get vma lock, we need to drop
512 			 * immap_sema and take locks in order.  First,
513 			 * take a ref on the vma_lock structure so that
514 			 * we can be guaranteed it will not go away when
515 			 * dropping immap_sema.
516 			 */
517 			kref_get(&vma_lock->refs);
518 			break;
519 		}
520 
521 		unmap_hugepage_range(vma, v_start, v_end, NULL,
522 				     ZAP_FLAG_DROP_MARKER);
523 		hugetlb_vma_unlock_write(vma);
524 	}
525 
526 	i_mmap_unlock_write(mapping);
527 
528 	if (vma_lock) {
529 		/*
530 		 * Wait on vma_lock.  We know it is still valid as we have
531 		 * a reference.  We must 'open code' vma locking as we do
532 		 * not know if vma_lock is still attached to vma.
533 		 */
534 		down_write(&vma_lock->rw_sema);
535 		i_mmap_lock_write(mapping);
536 
537 		vma = vma_lock->vma;
538 		if (!vma) {
539 			/*
540 			 * If lock is no longer attached to vma, then just
541 			 * unlock, drop our reference and retry looking for
542 			 * other vmas.
543 			 */
544 			up_write(&vma_lock->rw_sema);
545 			kref_put(&vma_lock->refs, hugetlb_vma_lock_release);
546 			goto retry;
547 		}
548 
549 		/*
550 		 * vma_lock is still attached to vma.  Check to see if vma
551 		 * still maps page and if so, unmap.
552 		 */
553 		v_start = vma_offset_start(vma, start);
554 		v_end = vma_offset_end(vma, end);
555 		if (hugetlb_vma_maps_page(vma, v_start, page))
556 			unmap_hugepage_range(vma, v_start, v_end, NULL,
557 					     ZAP_FLAG_DROP_MARKER);
558 
559 		kref_put(&vma_lock->refs, hugetlb_vma_lock_release);
560 		hugetlb_vma_unlock_write(vma);
561 
562 		goto retry;
563 	}
564 }
565 
566 static void
567 hugetlb_vmdelete_list(struct rb_root_cached *root, pgoff_t start, pgoff_t end,
568 		      zap_flags_t zap_flags)
569 {
570 	struct vm_area_struct *vma;
571 
572 	/*
573 	 * end == 0 indicates that the entire range after start should be
574 	 * unmapped.  Note, end is exclusive, whereas the interval tree takes
575 	 * an inclusive "last".
576 	 */
577 	vma_interval_tree_foreach(vma, root, start, end ? end - 1 : ULONG_MAX) {
578 		unsigned long v_start;
579 		unsigned long v_end;
580 
581 		if (!hugetlb_vma_trylock_write(vma))
582 			continue;
583 
584 		v_start = vma_offset_start(vma, start);
585 		v_end = vma_offset_end(vma, end);
586 
587 		unmap_hugepage_range(vma, v_start, v_end, NULL, zap_flags);
588 
589 		/*
590 		 * Note that vma lock only exists for shared/non-private
591 		 * vmas.  Therefore, lock is not held when calling
592 		 * unmap_hugepage_range for private vmas.
593 		 */
594 		hugetlb_vma_unlock_write(vma);
595 	}
596 }
597 
598 /*
599  * Called with hugetlb fault mutex held.
600  * Returns true if page was actually removed, false otherwise.
601  */
602 static bool remove_inode_single_folio(struct hstate *h, struct inode *inode,
603 					struct address_space *mapping,
604 					struct folio *folio, pgoff_t index,
605 					bool truncate_op)
606 {
607 	bool ret = false;
608 
609 	/*
610 	 * If folio is mapped, it was faulted in after being
611 	 * unmapped in caller.  Unmap (again) while holding
612 	 * the fault mutex.  The mutex will prevent faults
613 	 * until we finish removing the folio.
614 	 */
615 	if (unlikely(folio_mapped(folio)))
616 		hugetlb_unmap_file_folio(h, mapping, folio, index);
617 
618 	folio_lock(folio);
619 	/*
620 	 * We must remove the folio from page cache before removing
621 	 * the region/ reserve map (hugetlb_unreserve_pages).  In
622 	 * rare out of memory conditions, removal of the region/reserve
623 	 * map could fail.  Correspondingly, the subpool and global
624 	 * reserve usage count can need to be adjusted.
625 	 */
626 	VM_BUG_ON_FOLIO(folio_test_hugetlb_restore_reserve(folio), folio);
627 	hugetlb_delete_from_page_cache(folio);
628 	ret = true;
629 	if (!truncate_op) {
630 		if (unlikely(hugetlb_unreserve_pages(inode, index,
631 							index + 1, 1)))
632 			hugetlb_fix_reserve_counts(inode);
633 	}
634 
635 	folio_unlock(folio);
636 	return ret;
637 }
638 
639 /*
640  * remove_inode_hugepages handles two distinct cases: truncation and hole
641  * punch.  There are subtle differences in operation for each case.
642  *
643  * truncation is indicated by end of range being LLONG_MAX
644  *	In this case, we first scan the range and release found pages.
645  *	After releasing pages, hugetlb_unreserve_pages cleans up region/reserve
646  *	maps and global counts.  Page faults can race with truncation.
647  *	During faults, hugetlb_no_page() checks i_size before page allocation,
648  *	and again after obtaining page table lock.  It will 'back out'
649  *	allocations in the truncated range.
650  * hole punch is indicated if end is not LLONG_MAX
651  *	In the hole punch case we scan the range and release found pages.
652  *	Only when releasing a page is the associated region/reserve map
653  *	deleted.  The region/reserve map for ranges without associated
654  *	pages are not modified.  Page faults can race with hole punch.
655  *	This is indicated if we find a mapped page.
656  * Note: If the passed end of range value is beyond the end of file, but
657  * not LLONG_MAX this routine still performs a hole punch operation.
658  */
659 static void remove_inode_hugepages(struct inode *inode, loff_t lstart,
660 				   loff_t lend)
661 {
662 	struct hstate *h = hstate_inode(inode);
663 	struct address_space *mapping = &inode->i_data;
664 	const pgoff_t end = lend >> PAGE_SHIFT;
665 	struct folio_batch fbatch;
666 	pgoff_t next, index;
667 	int i, freed = 0;
668 	bool truncate_op = (lend == LLONG_MAX);
669 
670 	folio_batch_init(&fbatch);
671 	next = lstart >> PAGE_SHIFT;
672 	while (filemap_get_folios(mapping, &next, end - 1, &fbatch)) {
673 		for (i = 0; i < folio_batch_count(&fbatch); ++i) {
674 			struct folio *folio = fbatch.folios[i];
675 			u32 hash = 0;
676 
677 			index = folio->index >> huge_page_order(h);
678 			hash = hugetlb_fault_mutex_hash(mapping, index);
679 			mutex_lock(&hugetlb_fault_mutex_table[hash]);
680 
681 			/*
682 			 * Remove folio that was part of folio_batch.
683 			 */
684 			if (remove_inode_single_folio(h, inode, mapping, folio,
685 							index, truncate_op))
686 				freed++;
687 
688 			mutex_unlock(&hugetlb_fault_mutex_table[hash]);
689 		}
690 		folio_batch_release(&fbatch);
691 		cond_resched();
692 	}
693 
694 	if (truncate_op)
695 		(void)hugetlb_unreserve_pages(inode,
696 				lstart >> huge_page_shift(h),
697 				LONG_MAX, freed);
698 }
699 
700 static void hugetlbfs_evict_inode(struct inode *inode)
701 {
702 	struct resv_map *resv_map;
703 
704 	remove_inode_hugepages(inode, 0, LLONG_MAX);
705 
706 	/*
707 	 * Get the resv_map from the address space embedded in the inode.
708 	 * This is the address space which points to any resv_map allocated
709 	 * at inode creation time.  If this is a device special inode,
710 	 * i_mapping may not point to the original address space.
711 	 */
712 	resv_map = (struct resv_map *)(&inode->i_data)->private_data;
713 	/* Only regular and link inodes have associated reserve maps */
714 	if (resv_map)
715 		resv_map_release(&resv_map->refs);
716 	clear_inode(inode);
717 }
718 
719 static void hugetlb_vmtruncate(struct inode *inode, loff_t offset)
720 {
721 	pgoff_t pgoff;
722 	struct address_space *mapping = inode->i_mapping;
723 	struct hstate *h = hstate_inode(inode);
724 
725 	BUG_ON(offset & ~huge_page_mask(h));
726 	pgoff = offset >> PAGE_SHIFT;
727 
728 	i_size_write(inode, offset);
729 	i_mmap_lock_write(mapping);
730 	if (!RB_EMPTY_ROOT(&mapping->i_mmap.rb_root))
731 		hugetlb_vmdelete_list(&mapping->i_mmap, pgoff, 0,
732 				      ZAP_FLAG_DROP_MARKER);
733 	i_mmap_unlock_write(mapping);
734 	remove_inode_hugepages(inode, offset, LLONG_MAX);
735 }
736 
737 static void hugetlbfs_zero_partial_page(struct hstate *h,
738 					struct address_space *mapping,
739 					loff_t start,
740 					loff_t end)
741 {
742 	pgoff_t idx = start >> huge_page_shift(h);
743 	struct folio *folio;
744 
745 	folio = filemap_lock_hugetlb_folio(h, mapping, idx);
746 	if (IS_ERR(folio))
747 		return;
748 
749 	start = start & ~huge_page_mask(h);
750 	end = end & ~huge_page_mask(h);
751 	if (!end)
752 		end = huge_page_size(h);
753 
754 	folio_zero_segment(folio, (size_t)start, (size_t)end);
755 
756 	folio_unlock(folio);
757 	folio_put(folio);
758 }
759 
760 static long hugetlbfs_punch_hole(struct inode *inode, loff_t offset, loff_t len)
761 {
762 	struct hugetlbfs_inode_info *info = HUGETLBFS_I(inode);
763 	struct address_space *mapping = inode->i_mapping;
764 	struct hstate *h = hstate_inode(inode);
765 	loff_t hpage_size = huge_page_size(h);
766 	loff_t hole_start, hole_end;
767 
768 	/*
769 	 * hole_start and hole_end indicate the full pages within the hole.
770 	 */
771 	hole_start = round_up(offset, hpage_size);
772 	hole_end = round_down(offset + len, hpage_size);
773 
774 	inode_lock(inode);
775 
776 	/* protected by i_rwsem */
777 	if (info->seals & (F_SEAL_WRITE | F_SEAL_FUTURE_WRITE)) {
778 		inode_unlock(inode);
779 		return -EPERM;
780 	}
781 
782 	i_mmap_lock_write(mapping);
783 
784 	/* If range starts before first full page, zero partial page. */
785 	if (offset < hole_start)
786 		hugetlbfs_zero_partial_page(h, mapping,
787 				offset, min(offset + len, hole_start));
788 
789 	/* Unmap users of full pages in the hole. */
790 	if (hole_end > hole_start) {
791 		if (!RB_EMPTY_ROOT(&mapping->i_mmap.rb_root))
792 			hugetlb_vmdelete_list(&mapping->i_mmap,
793 					      hole_start >> PAGE_SHIFT,
794 					      hole_end >> PAGE_SHIFT, 0);
795 	}
796 
797 	/* If range extends beyond last full page, zero partial page. */
798 	if ((offset + len) > hole_end && (offset + len) > hole_start)
799 		hugetlbfs_zero_partial_page(h, mapping,
800 				hole_end, offset + len);
801 
802 	i_mmap_unlock_write(mapping);
803 
804 	/* Remove full pages from the file. */
805 	if (hole_end > hole_start)
806 		remove_inode_hugepages(inode, hole_start, hole_end);
807 
808 	inode_unlock(inode);
809 
810 	return 0;
811 }
812 
813 static long hugetlbfs_fallocate(struct file *file, int mode, loff_t offset,
814 				loff_t len)
815 {
816 	struct inode *inode = file_inode(file);
817 	struct hugetlbfs_inode_info *info = HUGETLBFS_I(inode);
818 	struct address_space *mapping = inode->i_mapping;
819 	struct hstate *h = hstate_inode(inode);
820 	struct vm_area_struct pseudo_vma;
821 	struct mm_struct *mm = current->mm;
822 	loff_t hpage_size = huge_page_size(h);
823 	unsigned long hpage_shift = huge_page_shift(h);
824 	pgoff_t start, index, end;
825 	int error;
826 	u32 hash;
827 
828 	if (mode & ~(FALLOC_FL_KEEP_SIZE | FALLOC_FL_PUNCH_HOLE))
829 		return -EOPNOTSUPP;
830 
831 	if (mode & FALLOC_FL_PUNCH_HOLE)
832 		return hugetlbfs_punch_hole(inode, offset, len);
833 
834 	/*
835 	 * Default preallocate case.
836 	 * For this range, start is rounded down and end is rounded up
837 	 * as well as being converted to page offsets.
838 	 */
839 	start = offset >> hpage_shift;
840 	end = (offset + len + hpage_size - 1) >> hpage_shift;
841 
842 	inode_lock(inode);
843 
844 	/* We need to check rlimit even when FALLOC_FL_KEEP_SIZE */
845 	error = inode_newsize_ok(inode, offset + len);
846 	if (error)
847 		goto out;
848 
849 	if ((info->seals & F_SEAL_GROW) && offset + len > inode->i_size) {
850 		error = -EPERM;
851 		goto out;
852 	}
853 
854 	/*
855 	 * Initialize a pseudo vma as this is required by the huge page
856 	 * allocation routines.  If NUMA is configured, use page index
857 	 * as input to create an allocation policy.
858 	 */
859 	vma_init(&pseudo_vma, mm);
860 	vm_flags_init(&pseudo_vma, VM_HUGETLB | VM_MAYSHARE | VM_SHARED);
861 	pseudo_vma.vm_file = file;
862 
863 	for (index = start; index < end; index++) {
864 		/*
865 		 * This is supposed to be the vaddr where the page is being
866 		 * faulted in, but we have no vaddr here.
867 		 */
868 		struct folio *folio;
869 		unsigned long addr;
870 
871 		cond_resched();
872 
873 		/*
874 		 * fallocate(2) manpage permits EINTR; we may have been
875 		 * interrupted because we are using up too much memory.
876 		 */
877 		if (signal_pending(current)) {
878 			error = -EINTR;
879 			break;
880 		}
881 
882 		/* addr is the offset within the file (zero based) */
883 		addr = index * hpage_size;
884 
885 		/* mutex taken here, fault path and hole punch */
886 		hash = hugetlb_fault_mutex_hash(mapping, index);
887 		mutex_lock(&hugetlb_fault_mutex_table[hash]);
888 
889 		/* See if already present in mapping to avoid alloc/free */
890 		folio = filemap_get_folio(mapping, index << huge_page_order(h));
891 		if (!IS_ERR(folio)) {
892 			folio_put(folio);
893 			mutex_unlock(&hugetlb_fault_mutex_table[hash]);
894 			continue;
895 		}
896 
897 		/*
898 		 * Allocate folio without setting the avoid_reserve argument.
899 		 * There certainly are no reserves associated with the
900 		 * pseudo_vma.  However, there could be shared mappings with
901 		 * reserves for the file at the inode level.  If we fallocate
902 		 * folios in these areas, we need to consume the reserves
903 		 * to keep reservation accounting consistent.
904 		 */
905 		hugetlb_set_vma_policy(&pseudo_vma, inode, index);
906 		folio = alloc_hugetlb_folio(&pseudo_vma, addr, 0);
907 		hugetlb_drop_vma_policy(&pseudo_vma);
908 		if (IS_ERR(folio)) {
909 			mutex_unlock(&hugetlb_fault_mutex_table[hash]);
910 			error = PTR_ERR(folio);
911 			goto out;
912 		}
913 		clear_huge_page(&folio->page, addr, pages_per_huge_page(h));
914 		__folio_mark_uptodate(folio);
915 		error = hugetlb_add_to_page_cache(folio, mapping, index);
916 		if (unlikely(error)) {
917 			restore_reserve_on_error(h, &pseudo_vma, addr, folio);
918 			folio_put(folio);
919 			mutex_unlock(&hugetlb_fault_mutex_table[hash]);
920 			goto out;
921 		}
922 
923 		mutex_unlock(&hugetlb_fault_mutex_table[hash]);
924 
925 		folio_set_hugetlb_migratable(folio);
926 		/*
927 		 * folio_unlock because locked by hugetlb_add_to_page_cache()
928 		 * folio_put() due to reference from alloc_hugetlb_folio()
929 		 */
930 		folio_unlock(folio);
931 		folio_put(folio);
932 	}
933 
934 	if (!(mode & FALLOC_FL_KEEP_SIZE) && offset + len > inode->i_size)
935 		i_size_write(inode, offset + len);
936 	inode_set_ctime_current(inode);
937 out:
938 	inode_unlock(inode);
939 	return error;
940 }
941 
942 static int hugetlbfs_setattr(struct mnt_idmap *idmap,
943 			     struct dentry *dentry, struct iattr *attr)
944 {
945 	struct inode *inode = d_inode(dentry);
946 	struct hstate *h = hstate_inode(inode);
947 	int error;
948 	unsigned int ia_valid = attr->ia_valid;
949 	struct hugetlbfs_inode_info *info = HUGETLBFS_I(inode);
950 
951 	error = setattr_prepare(&nop_mnt_idmap, dentry, attr);
952 	if (error)
953 		return error;
954 
955 	if (ia_valid & ATTR_SIZE) {
956 		loff_t oldsize = inode->i_size;
957 		loff_t newsize = attr->ia_size;
958 
959 		if (newsize & ~huge_page_mask(h))
960 			return -EINVAL;
961 		/* protected by i_rwsem */
962 		if ((newsize < oldsize && (info->seals & F_SEAL_SHRINK)) ||
963 		    (newsize > oldsize && (info->seals & F_SEAL_GROW)))
964 			return -EPERM;
965 		hugetlb_vmtruncate(inode, newsize);
966 	}
967 
968 	setattr_copy(&nop_mnt_idmap, inode, attr);
969 	mark_inode_dirty(inode);
970 	return 0;
971 }
972 
973 static struct inode *hugetlbfs_get_root(struct super_block *sb,
974 					struct hugetlbfs_fs_context *ctx)
975 {
976 	struct inode *inode;
977 
978 	inode = new_inode(sb);
979 	if (inode) {
980 		inode->i_ino = get_next_ino();
981 		inode->i_mode = S_IFDIR | ctx->mode;
982 		inode->i_uid = ctx->uid;
983 		inode->i_gid = ctx->gid;
984 		inode->i_atime = inode->i_mtime = inode_set_ctime_current(inode);
985 		inode->i_op = &hugetlbfs_dir_inode_operations;
986 		inode->i_fop = &simple_dir_operations;
987 		/* directory inodes start off with i_nlink == 2 (for "." entry) */
988 		inc_nlink(inode);
989 		lockdep_annotate_inode_mutex_key(inode);
990 	}
991 	return inode;
992 }
993 
994 /*
995  * Hugetlbfs is not reclaimable; therefore its i_mmap_rwsem will never
996  * be taken from reclaim -- unlike regular filesystems. This needs an
997  * annotation because huge_pmd_share() does an allocation under hugetlb's
998  * i_mmap_rwsem.
999  */
1000 static struct lock_class_key hugetlbfs_i_mmap_rwsem_key;
1001 
1002 static struct inode *hugetlbfs_get_inode(struct super_block *sb,
1003 					struct inode *dir,
1004 					umode_t mode, dev_t dev)
1005 {
1006 	struct inode *inode;
1007 	struct resv_map *resv_map = NULL;
1008 
1009 	/*
1010 	 * Reserve maps are only needed for inodes that can have associated
1011 	 * page allocations.
1012 	 */
1013 	if (S_ISREG(mode) || S_ISLNK(mode)) {
1014 		resv_map = resv_map_alloc();
1015 		if (!resv_map)
1016 			return NULL;
1017 	}
1018 
1019 	inode = new_inode(sb);
1020 	if (inode) {
1021 		struct hugetlbfs_inode_info *info = HUGETLBFS_I(inode);
1022 
1023 		inode->i_ino = get_next_ino();
1024 		inode_init_owner(&nop_mnt_idmap, inode, dir, mode);
1025 		lockdep_set_class(&inode->i_mapping->i_mmap_rwsem,
1026 				&hugetlbfs_i_mmap_rwsem_key);
1027 		inode->i_mapping->a_ops = &hugetlbfs_aops;
1028 		inode->i_atime = inode->i_mtime = inode_set_ctime_current(inode);
1029 		inode->i_mapping->private_data = resv_map;
1030 		info->seals = F_SEAL_SEAL;
1031 		switch (mode & S_IFMT) {
1032 		default:
1033 			init_special_inode(inode, mode, dev);
1034 			break;
1035 		case S_IFREG:
1036 			inode->i_op = &hugetlbfs_inode_operations;
1037 			inode->i_fop = &hugetlbfs_file_operations;
1038 			break;
1039 		case S_IFDIR:
1040 			inode->i_op = &hugetlbfs_dir_inode_operations;
1041 			inode->i_fop = &simple_dir_operations;
1042 
1043 			/* directory inodes start off with i_nlink == 2 (for "." entry) */
1044 			inc_nlink(inode);
1045 			break;
1046 		case S_IFLNK:
1047 			inode->i_op = &page_symlink_inode_operations;
1048 			inode_nohighmem(inode);
1049 			break;
1050 		}
1051 		lockdep_annotate_inode_mutex_key(inode);
1052 	} else {
1053 		if (resv_map)
1054 			kref_put(&resv_map->refs, resv_map_release);
1055 	}
1056 
1057 	return inode;
1058 }
1059 
1060 /*
1061  * File creation. Allocate an inode, and we're done..
1062  */
1063 static int hugetlbfs_mknod(struct mnt_idmap *idmap, struct inode *dir,
1064 			   struct dentry *dentry, umode_t mode, dev_t dev)
1065 {
1066 	struct inode *inode;
1067 
1068 	inode = hugetlbfs_get_inode(dir->i_sb, dir, mode, dev);
1069 	if (!inode)
1070 		return -ENOSPC;
1071 	dir->i_mtime = inode_set_ctime_current(dir);
1072 	d_instantiate(dentry, inode);
1073 	dget(dentry);/* Extra count - pin the dentry in core */
1074 	return 0;
1075 }
1076 
1077 static int hugetlbfs_mkdir(struct mnt_idmap *idmap, struct inode *dir,
1078 			   struct dentry *dentry, umode_t mode)
1079 {
1080 	int retval = hugetlbfs_mknod(&nop_mnt_idmap, dir, dentry,
1081 				     mode | S_IFDIR, 0);
1082 	if (!retval)
1083 		inc_nlink(dir);
1084 	return retval;
1085 }
1086 
1087 static int hugetlbfs_create(struct mnt_idmap *idmap,
1088 			    struct inode *dir, struct dentry *dentry,
1089 			    umode_t mode, bool excl)
1090 {
1091 	return hugetlbfs_mknod(&nop_mnt_idmap, dir, dentry, mode | S_IFREG, 0);
1092 }
1093 
1094 static int hugetlbfs_tmpfile(struct mnt_idmap *idmap,
1095 			     struct inode *dir, struct file *file,
1096 			     umode_t mode)
1097 {
1098 	struct inode *inode;
1099 
1100 	inode = hugetlbfs_get_inode(dir->i_sb, dir, mode | S_IFREG, 0);
1101 	if (!inode)
1102 		return -ENOSPC;
1103 	dir->i_mtime = inode_set_ctime_current(dir);
1104 	d_tmpfile(file, inode);
1105 	return finish_open_simple(file, 0);
1106 }
1107 
1108 static int hugetlbfs_symlink(struct mnt_idmap *idmap,
1109 			     struct inode *dir, struct dentry *dentry,
1110 			     const char *symname)
1111 {
1112 	struct inode *inode;
1113 	int error = -ENOSPC;
1114 
1115 	inode = hugetlbfs_get_inode(dir->i_sb, dir, S_IFLNK|S_IRWXUGO, 0);
1116 	if (inode) {
1117 		int l = strlen(symname)+1;
1118 		error = page_symlink(inode, symname, l);
1119 		if (!error) {
1120 			d_instantiate(dentry, inode);
1121 			dget(dentry);
1122 		} else
1123 			iput(inode);
1124 	}
1125 	dir->i_mtime = inode_set_ctime_current(dir);
1126 
1127 	return error;
1128 }
1129 
1130 #ifdef CONFIG_MIGRATION
1131 static int hugetlbfs_migrate_folio(struct address_space *mapping,
1132 				struct folio *dst, struct folio *src,
1133 				enum migrate_mode mode)
1134 {
1135 	int rc;
1136 
1137 	rc = migrate_huge_page_move_mapping(mapping, dst, src);
1138 	if (rc != MIGRATEPAGE_SUCCESS)
1139 		return rc;
1140 
1141 	if (hugetlb_folio_subpool(src)) {
1142 		hugetlb_set_folio_subpool(dst,
1143 					hugetlb_folio_subpool(src));
1144 		hugetlb_set_folio_subpool(src, NULL);
1145 	}
1146 
1147 	if (mode != MIGRATE_SYNC_NO_COPY)
1148 		folio_migrate_copy(dst, src);
1149 	else
1150 		folio_migrate_flags(dst, src);
1151 
1152 	return MIGRATEPAGE_SUCCESS;
1153 }
1154 #else
1155 #define hugetlbfs_migrate_folio NULL
1156 #endif
1157 
1158 static int hugetlbfs_error_remove_page(struct address_space *mapping,
1159 				struct page *page)
1160 {
1161 	return 0;
1162 }
1163 
1164 /*
1165  * Display the mount options in /proc/mounts.
1166  */
1167 static int hugetlbfs_show_options(struct seq_file *m, struct dentry *root)
1168 {
1169 	struct hugetlbfs_sb_info *sbinfo = HUGETLBFS_SB(root->d_sb);
1170 	struct hugepage_subpool *spool = sbinfo->spool;
1171 	unsigned long hpage_size = huge_page_size(sbinfo->hstate);
1172 	unsigned hpage_shift = huge_page_shift(sbinfo->hstate);
1173 	char mod;
1174 
1175 	if (!uid_eq(sbinfo->uid, GLOBAL_ROOT_UID))
1176 		seq_printf(m, ",uid=%u",
1177 			   from_kuid_munged(&init_user_ns, sbinfo->uid));
1178 	if (!gid_eq(sbinfo->gid, GLOBAL_ROOT_GID))
1179 		seq_printf(m, ",gid=%u",
1180 			   from_kgid_munged(&init_user_ns, sbinfo->gid));
1181 	if (sbinfo->mode != 0755)
1182 		seq_printf(m, ",mode=%o", sbinfo->mode);
1183 	if (sbinfo->max_inodes != -1)
1184 		seq_printf(m, ",nr_inodes=%lu", sbinfo->max_inodes);
1185 
1186 	hpage_size /= 1024;
1187 	mod = 'K';
1188 	if (hpage_size >= 1024) {
1189 		hpage_size /= 1024;
1190 		mod = 'M';
1191 	}
1192 	seq_printf(m, ",pagesize=%lu%c", hpage_size, mod);
1193 	if (spool) {
1194 		if (spool->max_hpages != -1)
1195 			seq_printf(m, ",size=%llu",
1196 				   (unsigned long long)spool->max_hpages << hpage_shift);
1197 		if (spool->min_hpages != -1)
1198 			seq_printf(m, ",min_size=%llu",
1199 				   (unsigned long long)spool->min_hpages << hpage_shift);
1200 	}
1201 	return 0;
1202 }
1203 
1204 static int hugetlbfs_statfs(struct dentry *dentry, struct kstatfs *buf)
1205 {
1206 	struct hugetlbfs_sb_info *sbinfo = HUGETLBFS_SB(dentry->d_sb);
1207 	struct hstate *h = hstate_inode(d_inode(dentry));
1208 
1209 	buf->f_type = HUGETLBFS_MAGIC;
1210 	buf->f_bsize = huge_page_size(h);
1211 	if (sbinfo) {
1212 		spin_lock(&sbinfo->stat_lock);
1213 		/* If no limits set, just report 0 or -1 for max/free/used
1214 		 * blocks, like simple_statfs() */
1215 		if (sbinfo->spool) {
1216 			long free_pages;
1217 
1218 			spin_lock_irq(&sbinfo->spool->lock);
1219 			buf->f_blocks = sbinfo->spool->max_hpages;
1220 			free_pages = sbinfo->spool->max_hpages
1221 				- sbinfo->spool->used_hpages;
1222 			buf->f_bavail = buf->f_bfree = free_pages;
1223 			spin_unlock_irq(&sbinfo->spool->lock);
1224 			buf->f_files = sbinfo->max_inodes;
1225 			buf->f_ffree = sbinfo->free_inodes;
1226 		}
1227 		spin_unlock(&sbinfo->stat_lock);
1228 	}
1229 	buf->f_namelen = NAME_MAX;
1230 	return 0;
1231 }
1232 
1233 static void hugetlbfs_put_super(struct super_block *sb)
1234 {
1235 	struct hugetlbfs_sb_info *sbi = HUGETLBFS_SB(sb);
1236 
1237 	if (sbi) {
1238 		sb->s_fs_info = NULL;
1239 
1240 		if (sbi->spool)
1241 			hugepage_put_subpool(sbi->spool);
1242 
1243 		kfree(sbi);
1244 	}
1245 }
1246 
1247 static inline int hugetlbfs_dec_free_inodes(struct hugetlbfs_sb_info *sbinfo)
1248 {
1249 	if (sbinfo->free_inodes >= 0) {
1250 		spin_lock(&sbinfo->stat_lock);
1251 		if (unlikely(!sbinfo->free_inodes)) {
1252 			spin_unlock(&sbinfo->stat_lock);
1253 			return 0;
1254 		}
1255 		sbinfo->free_inodes--;
1256 		spin_unlock(&sbinfo->stat_lock);
1257 	}
1258 
1259 	return 1;
1260 }
1261 
1262 static void hugetlbfs_inc_free_inodes(struct hugetlbfs_sb_info *sbinfo)
1263 {
1264 	if (sbinfo->free_inodes >= 0) {
1265 		spin_lock(&sbinfo->stat_lock);
1266 		sbinfo->free_inodes++;
1267 		spin_unlock(&sbinfo->stat_lock);
1268 	}
1269 }
1270 
1271 
1272 static struct kmem_cache *hugetlbfs_inode_cachep;
1273 
1274 static struct inode *hugetlbfs_alloc_inode(struct super_block *sb)
1275 {
1276 	struct hugetlbfs_sb_info *sbinfo = HUGETLBFS_SB(sb);
1277 	struct hugetlbfs_inode_info *p;
1278 
1279 	if (unlikely(!hugetlbfs_dec_free_inodes(sbinfo)))
1280 		return NULL;
1281 	p = alloc_inode_sb(sb, hugetlbfs_inode_cachep, GFP_KERNEL);
1282 	if (unlikely(!p)) {
1283 		hugetlbfs_inc_free_inodes(sbinfo);
1284 		return NULL;
1285 	}
1286 
1287 	/*
1288 	 * Any time after allocation, hugetlbfs_destroy_inode can be called
1289 	 * for the inode.  mpol_free_shared_policy is unconditionally called
1290 	 * as part of hugetlbfs_destroy_inode.  So, initialize policy here
1291 	 * in case of a quick call to destroy.
1292 	 *
1293 	 * Note that the policy is initialized even if we are creating a
1294 	 * private inode.  This simplifies hugetlbfs_destroy_inode.
1295 	 */
1296 	mpol_shared_policy_init(&p->policy, NULL);
1297 
1298 	return &p->vfs_inode;
1299 }
1300 
1301 static void hugetlbfs_free_inode(struct inode *inode)
1302 {
1303 	kmem_cache_free(hugetlbfs_inode_cachep, HUGETLBFS_I(inode));
1304 }
1305 
1306 static void hugetlbfs_destroy_inode(struct inode *inode)
1307 {
1308 	hugetlbfs_inc_free_inodes(HUGETLBFS_SB(inode->i_sb));
1309 	mpol_free_shared_policy(&HUGETLBFS_I(inode)->policy);
1310 }
1311 
1312 static const struct address_space_operations hugetlbfs_aops = {
1313 	.write_begin	= hugetlbfs_write_begin,
1314 	.write_end	= hugetlbfs_write_end,
1315 	.dirty_folio	= noop_dirty_folio,
1316 	.migrate_folio  = hugetlbfs_migrate_folio,
1317 	.error_remove_page	= hugetlbfs_error_remove_page,
1318 };
1319 
1320 
1321 static void init_once(void *foo)
1322 {
1323 	struct hugetlbfs_inode_info *ei = foo;
1324 
1325 	inode_init_once(&ei->vfs_inode);
1326 }
1327 
1328 const struct file_operations hugetlbfs_file_operations = {
1329 	.read_iter		= hugetlbfs_read_iter,
1330 	.mmap			= hugetlbfs_file_mmap,
1331 	.fsync			= noop_fsync,
1332 	.get_unmapped_area	= hugetlb_get_unmapped_area,
1333 	.llseek			= default_llseek,
1334 	.fallocate		= hugetlbfs_fallocate,
1335 };
1336 
1337 static const struct inode_operations hugetlbfs_dir_inode_operations = {
1338 	.create		= hugetlbfs_create,
1339 	.lookup		= simple_lookup,
1340 	.link		= simple_link,
1341 	.unlink		= simple_unlink,
1342 	.symlink	= hugetlbfs_symlink,
1343 	.mkdir		= hugetlbfs_mkdir,
1344 	.rmdir		= simple_rmdir,
1345 	.mknod		= hugetlbfs_mknod,
1346 	.rename		= simple_rename,
1347 	.setattr	= hugetlbfs_setattr,
1348 	.tmpfile	= hugetlbfs_tmpfile,
1349 };
1350 
1351 static const struct inode_operations hugetlbfs_inode_operations = {
1352 	.setattr	= hugetlbfs_setattr,
1353 };
1354 
1355 static const struct super_operations hugetlbfs_ops = {
1356 	.alloc_inode    = hugetlbfs_alloc_inode,
1357 	.free_inode     = hugetlbfs_free_inode,
1358 	.destroy_inode  = hugetlbfs_destroy_inode,
1359 	.evict_inode	= hugetlbfs_evict_inode,
1360 	.statfs		= hugetlbfs_statfs,
1361 	.put_super	= hugetlbfs_put_super,
1362 	.show_options	= hugetlbfs_show_options,
1363 };
1364 
1365 /*
1366  * Convert size option passed from command line to number of huge pages
1367  * in the pool specified by hstate.  Size option could be in bytes
1368  * (val_type == SIZE_STD) or percentage of the pool (val_type == SIZE_PERCENT).
1369  */
1370 static long
1371 hugetlbfs_size_to_hpages(struct hstate *h, unsigned long long size_opt,
1372 			 enum hugetlbfs_size_type val_type)
1373 {
1374 	if (val_type == NO_SIZE)
1375 		return -1;
1376 
1377 	if (val_type == SIZE_PERCENT) {
1378 		size_opt <<= huge_page_shift(h);
1379 		size_opt *= h->max_huge_pages;
1380 		do_div(size_opt, 100);
1381 	}
1382 
1383 	size_opt >>= huge_page_shift(h);
1384 	return size_opt;
1385 }
1386 
1387 /*
1388  * Parse one mount parameter.
1389  */
1390 static int hugetlbfs_parse_param(struct fs_context *fc, struct fs_parameter *param)
1391 {
1392 	struct hugetlbfs_fs_context *ctx = fc->fs_private;
1393 	struct fs_parse_result result;
1394 	char *rest;
1395 	unsigned long ps;
1396 	int opt;
1397 
1398 	opt = fs_parse(fc, hugetlb_fs_parameters, param, &result);
1399 	if (opt < 0)
1400 		return opt;
1401 
1402 	switch (opt) {
1403 	case Opt_uid:
1404 		ctx->uid = make_kuid(current_user_ns(), result.uint_32);
1405 		if (!uid_valid(ctx->uid))
1406 			goto bad_val;
1407 		return 0;
1408 
1409 	case Opt_gid:
1410 		ctx->gid = make_kgid(current_user_ns(), result.uint_32);
1411 		if (!gid_valid(ctx->gid))
1412 			goto bad_val;
1413 		return 0;
1414 
1415 	case Opt_mode:
1416 		ctx->mode = result.uint_32 & 01777U;
1417 		return 0;
1418 
1419 	case Opt_size:
1420 		/* memparse() will accept a K/M/G without a digit */
1421 		if (!param->string || !isdigit(param->string[0]))
1422 			goto bad_val;
1423 		ctx->max_size_opt = memparse(param->string, &rest);
1424 		ctx->max_val_type = SIZE_STD;
1425 		if (*rest == '%')
1426 			ctx->max_val_type = SIZE_PERCENT;
1427 		return 0;
1428 
1429 	case Opt_nr_inodes:
1430 		/* memparse() will accept a K/M/G without a digit */
1431 		if (!param->string || !isdigit(param->string[0]))
1432 			goto bad_val;
1433 		ctx->nr_inodes = memparse(param->string, &rest);
1434 		return 0;
1435 
1436 	case Opt_pagesize:
1437 		ps = memparse(param->string, &rest);
1438 		ctx->hstate = size_to_hstate(ps);
1439 		if (!ctx->hstate) {
1440 			pr_err("Unsupported page size %lu MB\n", ps / SZ_1M);
1441 			return -EINVAL;
1442 		}
1443 		return 0;
1444 
1445 	case Opt_min_size:
1446 		/* memparse() will accept a K/M/G without a digit */
1447 		if (!param->string || !isdigit(param->string[0]))
1448 			goto bad_val;
1449 		ctx->min_size_opt = memparse(param->string, &rest);
1450 		ctx->min_val_type = SIZE_STD;
1451 		if (*rest == '%')
1452 			ctx->min_val_type = SIZE_PERCENT;
1453 		return 0;
1454 
1455 	default:
1456 		return -EINVAL;
1457 	}
1458 
1459 bad_val:
1460 	return invalfc(fc, "Bad value '%s' for mount option '%s'\n",
1461 		      param->string, param->key);
1462 }
1463 
1464 /*
1465  * Validate the parsed options.
1466  */
1467 static int hugetlbfs_validate(struct fs_context *fc)
1468 {
1469 	struct hugetlbfs_fs_context *ctx = fc->fs_private;
1470 
1471 	/*
1472 	 * Use huge page pool size (in hstate) to convert the size
1473 	 * options to number of huge pages.  If NO_SIZE, -1 is returned.
1474 	 */
1475 	ctx->max_hpages = hugetlbfs_size_to_hpages(ctx->hstate,
1476 						   ctx->max_size_opt,
1477 						   ctx->max_val_type);
1478 	ctx->min_hpages = hugetlbfs_size_to_hpages(ctx->hstate,
1479 						   ctx->min_size_opt,
1480 						   ctx->min_val_type);
1481 
1482 	/*
1483 	 * If max_size was specified, then min_size must be smaller
1484 	 */
1485 	if (ctx->max_val_type > NO_SIZE &&
1486 	    ctx->min_hpages > ctx->max_hpages) {
1487 		pr_err("Minimum size can not be greater than maximum size\n");
1488 		return -EINVAL;
1489 	}
1490 
1491 	return 0;
1492 }
1493 
1494 static int
1495 hugetlbfs_fill_super(struct super_block *sb, struct fs_context *fc)
1496 {
1497 	struct hugetlbfs_fs_context *ctx = fc->fs_private;
1498 	struct hugetlbfs_sb_info *sbinfo;
1499 
1500 	sbinfo = kmalloc(sizeof(struct hugetlbfs_sb_info), GFP_KERNEL);
1501 	if (!sbinfo)
1502 		return -ENOMEM;
1503 	sb->s_fs_info = sbinfo;
1504 	spin_lock_init(&sbinfo->stat_lock);
1505 	sbinfo->hstate		= ctx->hstate;
1506 	sbinfo->max_inodes	= ctx->nr_inodes;
1507 	sbinfo->free_inodes	= ctx->nr_inodes;
1508 	sbinfo->spool		= NULL;
1509 	sbinfo->uid		= ctx->uid;
1510 	sbinfo->gid		= ctx->gid;
1511 	sbinfo->mode		= ctx->mode;
1512 
1513 	/*
1514 	 * Allocate and initialize subpool if maximum or minimum size is
1515 	 * specified.  Any needed reservations (for minimum size) are taken
1516 	 * when the subpool is created.
1517 	 */
1518 	if (ctx->max_hpages != -1 || ctx->min_hpages != -1) {
1519 		sbinfo->spool = hugepage_new_subpool(ctx->hstate,
1520 						     ctx->max_hpages,
1521 						     ctx->min_hpages);
1522 		if (!sbinfo->spool)
1523 			goto out_free;
1524 	}
1525 	sb->s_maxbytes = MAX_LFS_FILESIZE;
1526 	sb->s_blocksize = huge_page_size(ctx->hstate);
1527 	sb->s_blocksize_bits = huge_page_shift(ctx->hstate);
1528 	sb->s_magic = HUGETLBFS_MAGIC;
1529 	sb->s_op = &hugetlbfs_ops;
1530 	sb->s_time_gran = 1;
1531 
1532 	/*
1533 	 * Due to the special and limited functionality of hugetlbfs, it does
1534 	 * not work well as a stacking filesystem.
1535 	 */
1536 	sb->s_stack_depth = FILESYSTEM_MAX_STACK_DEPTH;
1537 	sb->s_root = d_make_root(hugetlbfs_get_root(sb, ctx));
1538 	if (!sb->s_root)
1539 		goto out_free;
1540 	return 0;
1541 out_free:
1542 	kfree(sbinfo->spool);
1543 	kfree(sbinfo);
1544 	return -ENOMEM;
1545 }
1546 
1547 static int hugetlbfs_get_tree(struct fs_context *fc)
1548 {
1549 	int err = hugetlbfs_validate(fc);
1550 	if (err)
1551 		return err;
1552 	return get_tree_nodev(fc, hugetlbfs_fill_super);
1553 }
1554 
1555 static void hugetlbfs_fs_context_free(struct fs_context *fc)
1556 {
1557 	kfree(fc->fs_private);
1558 }
1559 
1560 static const struct fs_context_operations hugetlbfs_fs_context_ops = {
1561 	.free		= hugetlbfs_fs_context_free,
1562 	.parse_param	= hugetlbfs_parse_param,
1563 	.get_tree	= hugetlbfs_get_tree,
1564 };
1565 
1566 static int hugetlbfs_init_fs_context(struct fs_context *fc)
1567 {
1568 	struct hugetlbfs_fs_context *ctx;
1569 
1570 	ctx = kzalloc(sizeof(struct hugetlbfs_fs_context), GFP_KERNEL);
1571 	if (!ctx)
1572 		return -ENOMEM;
1573 
1574 	ctx->max_hpages	= -1; /* No limit on size by default */
1575 	ctx->nr_inodes	= -1; /* No limit on number of inodes by default */
1576 	ctx->uid	= current_fsuid();
1577 	ctx->gid	= current_fsgid();
1578 	ctx->mode	= 0755;
1579 	ctx->hstate	= &default_hstate;
1580 	ctx->min_hpages	= -1; /* No default minimum size */
1581 	ctx->max_val_type = NO_SIZE;
1582 	ctx->min_val_type = NO_SIZE;
1583 	fc->fs_private = ctx;
1584 	fc->ops	= &hugetlbfs_fs_context_ops;
1585 	return 0;
1586 }
1587 
1588 static struct file_system_type hugetlbfs_fs_type = {
1589 	.name			= "hugetlbfs",
1590 	.init_fs_context	= hugetlbfs_init_fs_context,
1591 	.parameters		= hugetlb_fs_parameters,
1592 	.kill_sb		= kill_litter_super,
1593 };
1594 
1595 static struct vfsmount *hugetlbfs_vfsmount[HUGE_MAX_HSTATE];
1596 
1597 static int can_do_hugetlb_shm(void)
1598 {
1599 	kgid_t shm_group;
1600 	shm_group = make_kgid(&init_user_ns, sysctl_hugetlb_shm_group);
1601 	return capable(CAP_IPC_LOCK) || in_group_p(shm_group);
1602 }
1603 
1604 static int get_hstate_idx(int page_size_log)
1605 {
1606 	struct hstate *h = hstate_sizelog(page_size_log);
1607 
1608 	if (!h)
1609 		return -1;
1610 	return hstate_index(h);
1611 }
1612 
1613 /*
1614  * Note that size should be aligned to proper hugepage size in caller side,
1615  * otherwise hugetlb_reserve_pages reserves one less hugepages than intended.
1616  */
1617 struct file *hugetlb_file_setup(const char *name, size_t size,
1618 				vm_flags_t acctflag, int creat_flags,
1619 				int page_size_log)
1620 {
1621 	struct inode *inode;
1622 	struct vfsmount *mnt;
1623 	int hstate_idx;
1624 	struct file *file;
1625 
1626 	hstate_idx = get_hstate_idx(page_size_log);
1627 	if (hstate_idx < 0)
1628 		return ERR_PTR(-ENODEV);
1629 
1630 	mnt = hugetlbfs_vfsmount[hstate_idx];
1631 	if (!mnt)
1632 		return ERR_PTR(-ENOENT);
1633 
1634 	if (creat_flags == HUGETLB_SHMFS_INODE && !can_do_hugetlb_shm()) {
1635 		struct ucounts *ucounts = current_ucounts();
1636 
1637 		if (user_shm_lock(size, ucounts)) {
1638 			pr_warn_once("%s (%d): Using mlock ulimits for SHM_HUGETLB is obsolete\n",
1639 				current->comm, current->pid);
1640 			user_shm_unlock(size, ucounts);
1641 		}
1642 		return ERR_PTR(-EPERM);
1643 	}
1644 
1645 	file = ERR_PTR(-ENOSPC);
1646 	inode = hugetlbfs_get_inode(mnt->mnt_sb, NULL, S_IFREG | S_IRWXUGO, 0);
1647 	if (!inode)
1648 		goto out;
1649 	if (creat_flags == HUGETLB_SHMFS_INODE)
1650 		inode->i_flags |= S_PRIVATE;
1651 
1652 	inode->i_size = size;
1653 	clear_nlink(inode);
1654 
1655 	if (!hugetlb_reserve_pages(inode, 0,
1656 			size >> huge_page_shift(hstate_inode(inode)), NULL,
1657 			acctflag))
1658 		file = ERR_PTR(-ENOMEM);
1659 	else
1660 		file = alloc_file_pseudo(inode, mnt, name, O_RDWR,
1661 					&hugetlbfs_file_operations);
1662 	if (!IS_ERR(file))
1663 		return file;
1664 
1665 	iput(inode);
1666 out:
1667 	return file;
1668 }
1669 
1670 static struct vfsmount *__init mount_one_hugetlbfs(struct hstate *h)
1671 {
1672 	struct fs_context *fc;
1673 	struct vfsmount *mnt;
1674 
1675 	fc = fs_context_for_mount(&hugetlbfs_fs_type, SB_KERNMOUNT);
1676 	if (IS_ERR(fc)) {
1677 		mnt = ERR_CAST(fc);
1678 	} else {
1679 		struct hugetlbfs_fs_context *ctx = fc->fs_private;
1680 		ctx->hstate = h;
1681 		mnt = fc_mount(fc);
1682 		put_fs_context(fc);
1683 	}
1684 	if (IS_ERR(mnt))
1685 		pr_err("Cannot mount internal hugetlbfs for page size %luK",
1686 		       huge_page_size(h) / SZ_1K);
1687 	return mnt;
1688 }
1689 
1690 static int __init init_hugetlbfs_fs(void)
1691 {
1692 	struct vfsmount *mnt;
1693 	struct hstate *h;
1694 	int error;
1695 	int i;
1696 
1697 	if (!hugepages_supported()) {
1698 		pr_info("disabling because there are no supported hugepage sizes\n");
1699 		return -ENOTSUPP;
1700 	}
1701 
1702 	error = -ENOMEM;
1703 	hugetlbfs_inode_cachep = kmem_cache_create("hugetlbfs_inode_cache",
1704 					sizeof(struct hugetlbfs_inode_info),
1705 					0, SLAB_ACCOUNT, init_once);
1706 	if (hugetlbfs_inode_cachep == NULL)
1707 		goto out;
1708 
1709 	error = register_filesystem(&hugetlbfs_fs_type);
1710 	if (error)
1711 		goto out_free;
1712 
1713 	/* default hstate mount is required */
1714 	mnt = mount_one_hugetlbfs(&default_hstate);
1715 	if (IS_ERR(mnt)) {
1716 		error = PTR_ERR(mnt);
1717 		goto out_unreg;
1718 	}
1719 	hugetlbfs_vfsmount[default_hstate_idx] = mnt;
1720 
1721 	/* other hstates are optional */
1722 	i = 0;
1723 	for_each_hstate(h) {
1724 		if (i == default_hstate_idx) {
1725 			i++;
1726 			continue;
1727 		}
1728 
1729 		mnt = mount_one_hugetlbfs(h);
1730 		if (IS_ERR(mnt))
1731 			hugetlbfs_vfsmount[i] = NULL;
1732 		else
1733 			hugetlbfs_vfsmount[i] = mnt;
1734 		i++;
1735 	}
1736 
1737 	return 0;
1738 
1739  out_unreg:
1740 	(void)unregister_filesystem(&hugetlbfs_fs_type);
1741  out_free:
1742 	kmem_cache_destroy(hugetlbfs_inode_cachep);
1743  out:
1744 	return error;
1745 }
1746 fs_initcall(init_hugetlbfs_fs)
1747