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v4.10.11
 
  1/*
  2 * super.c
  3 *
  4 * Copyright (c) 1999 Al Smith
  5 *
  6 * Portions derived from work (c) 1995,1996 Christian Vogelgsang.
  7 */
  8
  9#include <linux/init.h>
 10#include <linux/module.h>
 11#include <linux/exportfs.h>
 12#include <linux/slab.h>
 13#include <linux/buffer_head.h>
 14#include <linux/vfs.h>
 15
 
 16#include "efs.h"
 17#include <linux/efs_vh.h>
 18#include <linux/efs_fs_sb.h>
 19
 20static int efs_statfs(struct dentry *dentry, struct kstatfs *buf);
 21static int efs_fill_super(struct super_block *s, void *d, int silent);
 22
 23static struct dentry *efs_mount(struct file_system_type *fs_type,
 24	int flags, const char *dev_name, void *data)
 25{
 26	return mount_bdev(fs_type, flags, dev_name, data, efs_fill_super);
 27}
 28
 29static void efs_kill_sb(struct super_block *s)
 30{
 31	struct efs_sb_info *sbi = SUPER_INFO(s);
 32	kill_block_super(s);
 33	kfree(sbi);
 34}
 35
 36static struct file_system_type efs_fs_type = {
 37	.owner		= THIS_MODULE,
 38	.name		= "efs",
 39	.mount		= efs_mount,
 40	.kill_sb	= efs_kill_sb,
 41	.fs_flags	= FS_REQUIRES_DEV,
 42};
 43MODULE_ALIAS_FS("efs");
 44
 45static struct pt_types sgi_pt_types[] = {
 46	{0x00,		"SGI vh"},
 47	{0x01,		"SGI trkrepl"},
 48	{0x02,		"SGI secrepl"},
 49	{0x03,		"SGI raw"},
 50	{0x04,		"SGI bsd"},
 51	{SGI_SYSV,	"SGI sysv"},
 52	{0x06,		"SGI vol"},
 53	{SGI_EFS,	"SGI efs"},
 54	{0x08,		"SGI lv"},
 55	{0x09,		"SGI rlv"},
 56	{0x0A,		"SGI xfs"},
 57	{0x0B,		"SGI xfslog"},
 58	{0x0C,		"SGI xlv"},
 59	{0x82,		"Linux swap"},
 60	{0x83,		"Linux native"},
 61	{0,		NULL}
 62};
 63
 
 
 
 
 
 
 
 
 
 
 
 64
 65static struct kmem_cache * efs_inode_cachep;
 66
 67static struct inode *efs_alloc_inode(struct super_block *sb)
 68{
 69	struct efs_inode_info *ei;
 70	ei = kmem_cache_alloc(efs_inode_cachep, GFP_KERNEL);
 71	if (!ei)
 72		return NULL;
 73	return &ei->vfs_inode;
 74}
 75
 76static void efs_i_callback(struct rcu_head *head)
 77{
 78	struct inode *inode = container_of(head, struct inode, i_rcu);
 79	kmem_cache_free(efs_inode_cachep, INODE_INFO(inode));
 80}
 81
 82static void efs_destroy_inode(struct inode *inode)
 83{
 84	call_rcu(&inode->i_rcu, efs_i_callback);
 85}
 86
 87static void init_once(void *foo)
 88{
 89	struct efs_inode_info *ei = (struct efs_inode_info *) foo;
 90
 91	inode_init_once(&ei->vfs_inode);
 92}
 93
 94static int __init init_inodecache(void)
 95{
 96	efs_inode_cachep = kmem_cache_create("efs_inode_cache",
 97				sizeof(struct efs_inode_info), 0,
 98				SLAB_RECLAIM_ACCOUNT|SLAB_MEM_SPREAD|
 99				SLAB_ACCOUNT, init_once);
100	if (efs_inode_cachep == NULL)
101		return -ENOMEM;
102	return 0;
103}
104
105static void destroy_inodecache(void)
106{
107	/*
108	 * Make sure all delayed rcu free inodes are flushed before we
109	 * destroy cache.
110	 */
111	rcu_barrier();
112	kmem_cache_destroy(efs_inode_cachep);
113}
114
115static int efs_remount(struct super_block *sb, int *flags, char *data)
116{
117	sync_filesystem(sb);
118	*flags |= MS_RDONLY;
119	return 0;
120}
121
122static const struct super_operations efs_superblock_operations = {
123	.alloc_inode	= efs_alloc_inode,
124	.destroy_inode	= efs_destroy_inode,
125	.statfs		= efs_statfs,
126	.remount_fs	= efs_remount,
127};
128
129static const struct export_operations efs_export_ops = {
 
130	.fh_to_dentry	= efs_fh_to_dentry,
131	.fh_to_parent	= efs_fh_to_parent,
132	.get_parent	= efs_get_parent,
133};
134
135static int __init init_efs_fs(void) {
136	int err;
137	pr_info(EFS_VERSION" - http://aeschi.ch.eu.org/efs/\n");
138	err = init_inodecache();
139	if (err)
140		goto out1;
141	err = register_filesystem(&efs_fs_type);
142	if (err)
143		goto out;
144	return 0;
145out:
146	destroy_inodecache();
147out1:
148	return err;
149}
150
151static void __exit exit_efs_fs(void) {
152	unregister_filesystem(&efs_fs_type);
153	destroy_inodecache();
154}
155
156module_init(init_efs_fs)
157module_exit(exit_efs_fs)
158
159static efs_block_t efs_validate_vh(struct volume_header *vh) {
160	int		i;
161	__be32		cs, *ui;
162	int		csum;
163	efs_block_t	sblock = 0; /* shuts up gcc */
164	struct pt_types	*pt_entry;
165	int		pt_type, slice = -1;
166
167	if (be32_to_cpu(vh->vh_magic) != VHMAGIC) {
168		/*
169		 * assume that we're dealing with a partition and allow
170		 * read_super() to try and detect a valid superblock
171		 * on the next block.
172		 */
173		return 0;
174	}
175
176	ui = ((__be32 *) (vh + 1)) - 1;
177	for(csum = 0; ui >= ((__be32 *) vh);) {
178		cs = *ui--;
179		csum += be32_to_cpu(cs);
180	}
181	if (csum) {
182		pr_warn("SGI disklabel: checksum bad, label corrupted\n");
183		return 0;
184	}
185
186#ifdef DEBUG
187	pr_debug("bf: \"%16s\"\n", vh->vh_bootfile);
188
189	for(i = 0; i < NVDIR; i++) {
190		int	j;
191		char	name[VDNAMESIZE+1];
192
193		for(j = 0; j < VDNAMESIZE; j++) {
194			name[j] = vh->vh_vd[i].vd_name[j];
195		}
196		name[j] = (char) 0;
197
198		if (name[0]) {
199			pr_debug("vh: %8s block: 0x%08x size: 0x%08x\n",
200				name, (int) be32_to_cpu(vh->vh_vd[i].vd_lbn),
201				(int) be32_to_cpu(vh->vh_vd[i].vd_nbytes));
202		}
203	}
204#endif
205
206	for(i = 0; i < NPARTAB; i++) {
207		pt_type = (int) be32_to_cpu(vh->vh_pt[i].pt_type);
208		for(pt_entry = sgi_pt_types; pt_entry->pt_name; pt_entry++) {
209			if (pt_type == pt_entry->pt_type) break;
210		}
211#ifdef DEBUG
212		if (be32_to_cpu(vh->vh_pt[i].pt_nblks)) {
213			pr_debug("pt %2d: start: %08d size: %08d type: 0x%02x (%s)\n",
214				 i, (int)be32_to_cpu(vh->vh_pt[i].pt_firstlbn),
215				 (int)be32_to_cpu(vh->vh_pt[i].pt_nblks),
216				 pt_type, (pt_entry->pt_name) ?
217				 pt_entry->pt_name : "unknown");
218		}
219#endif
220		if (IS_EFS(pt_type)) {
221			sblock = be32_to_cpu(vh->vh_pt[i].pt_firstlbn);
222			slice = i;
223		}
224	}
225
226	if (slice == -1) {
227		pr_notice("partition table contained no EFS partitions\n");
228#ifdef DEBUG
229	} else {
230		pr_info("using slice %d (type %s, offset 0x%x)\n", slice,
231			(pt_entry->pt_name) ? pt_entry->pt_name : "unknown",
232			sblock);
233#endif
234	}
235	return sblock;
236}
237
238static int efs_validate_super(struct efs_sb_info *sb, struct efs_super *super) {
239
240	if (!IS_EFS_MAGIC(be32_to_cpu(super->fs_magic)))
241		return -1;
242
243	sb->fs_magic     = be32_to_cpu(super->fs_magic);
244	sb->total_blocks = be32_to_cpu(super->fs_size);
245	sb->first_block  = be32_to_cpu(super->fs_firstcg);
246	sb->group_size   = be32_to_cpu(super->fs_cgfsize);
247	sb->data_free    = be32_to_cpu(super->fs_tfree);
248	sb->inode_free   = be32_to_cpu(super->fs_tinode);
249	sb->inode_blocks = be16_to_cpu(super->fs_cgisize);
250	sb->total_groups = be16_to_cpu(super->fs_ncg);
251    
252	return 0;    
253}
254
255static int efs_fill_super(struct super_block *s, void *d, int silent)
256{
257	struct efs_sb_info *sb;
258	struct buffer_head *bh;
259	struct inode *root;
260
261 	sb = kzalloc(sizeof(struct efs_sb_info), GFP_KERNEL);
262	if (!sb)
263		return -ENOMEM;
264	s->s_fs_info = sb;
265 
 
 
266	s->s_magic		= EFS_SUPER_MAGIC;
267	if (!sb_set_blocksize(s, EFS_BLOCKSIZE)) {
268		pr_err("device does not support %d byte blocks\n",
269			EFS_BLOCKSIZE);
270		return -EINVAL;
 
271	}
272  
273	/* read the vh (volume header) block */
274	bh = sb_bread(s, 0);
275
276	if (!bh) {
277		pr_err("cannot read volume header\n");
278		return -EIO;
279	}
280
281	/*
282	 * if this returns zero then we didn't find any partition table.
283	 * this isn't (yet) an error - just assume for the moment that
284	 * the device is valid and go on to search for a superblock.
285	 */
286	sb->fs_start = efs_validate_vh((struct volume_header *) bh->b_data);
287	brelse(bh);
288
289	if (sb->fs_start == -1) {
290		return -EINVAL;
291	}
292
293	bh = sb_bread(s, sb->fs_start + EFS_SUPER);
294	if (!bh) {
295		pr_err("cannot read superblock\n");
296		return -EIO;
297	}
298		
299	if (efs_validate_super(sb, (struct efs_super *) bh->b_data)) {
300#ifdef DEBUG
301		pr_warn("invalid superblock at block %u\n",
302			sb->fs_start + EFS_SUPER);
303#endif
304		brelse(bh);
305		return -EINVAL;
306	}
307	brelse(bh);
308
309	if (!(s->s_flags & MS_RDONLY)) {
310#ifdef DEBUG
311		pr_info("forcing read-only mode\n");
312#endif
313		s->s_flags |= MS_RDONLY;
314	}
315	s->s_op   = &efs_superblock_operations;
316	s->s_export_op = &efs_export_ops;
317	root = efs_iget(s, EFS_ROOTINODE);
318	if (IS_ERR(root)) {
319		pr_err("get root inode failed\n");
320		return PTR_ERR(root);
321	}
322
323	s->s_root = d_make_root(root);
324	if (!(s->s_root)) {
325		pr_err("get root dentry failed\n");
326		return -ENOMEM;
327	}
328
329	return 0;
330}
331
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
332static int efs_statfs(struct dentry *dentry, struct kstatfs *buf) {
333	struct super_block *sb = dentry->d_sb;
334	struct efs_sb_info *sbi = SUPER_INFO(sb);
335	u64 id = huge_encode_dev(sb->s_bdev->bd_dev);
336
337	buf->f_type    = EFS_SUPER_MAGIC;	/* efs magic number */
338	buf->f_bsize   = EFS_BLOCKSIZE;		/* blocksize */
339	buf->f_blocks  = sbi->total_groups *	/* total data blocks */
340			(sbi->group_size - sbi->inode_blocks);
341	buf->f_bfree   = sbi->data_free;	/* free data blocks */
342	buf->f_bavail  = sbi->data_free;	/* free blocks for non-root */
343	buf->f_files   = sbi->total_groups *	/* total inodes */
344			sbi->inode_blocks *
345			(EFS_BLOCKSIZE / sizeof(struct efs_dinode));
346	buf->f_ffree   = sbi->inode_free;	/* free inodes */
347	buf->f_fsid.val[0] = (u32)id;
348	buf->f_fsid.val[1] = (u32)(id >> 32);
349	buf->f_namelen = EFS_MAXNAMELEN;	/* max filename length */
350
351	return 0;
352}
353
v6.13.7
  1// SPDX-License-Identifier: GPL-2.0
  2/*
  3 * super.c
  4 *
  5 * Copyright (c) 1999 Al Smith
  6 *
  7 * Portions derived from work (c) 1995,1996 Christian Vogelgsang.
  8 */
  9
 10#include <linux/init.h>
 11#include <linux/module.h>
 12#include <linux/exportfs.h>
 13#include <linux/slab.h>
 14#include <linux/buffer_head.h>
 15#include <linux/vfs.h>
 16#include <linux/blkdev.h>
 17#include <linux/fs_context.h>
 18#include "efs.h"
 19#include <linux/efs_vh.h>
 20#include <linux/efs_fs_sb.h>
 21
 22static int efs_statfs(struct dentry *dentry, struct kstatfs *buf);
 23static int efs_init_fs_context(struct fs_context *fc);
 
 
 
 
 
 
 24
 25static void efs_kill_sb(struct super_block *s)
 26{
 27	struct efs_sb_info *sbi = SUPER_INFO(s);
 28	kill_block_super(s);
 29	kfree(sbi);
 30}
 31
 
 
 
 
 
 
 
 
 
 32static struct pt_types sgi_pt_types[] = {
 33	{0x00,		"SGI vh"},
 34	{0x01,		"SGI trkrepl"},
 35	{0x02,		"SGI secrepl"},
 36	{0x03,		"SGI raw"},
 37	{0x04,		"SGI bsd"},
 38	{SGI_SYSV,	"SGI sysv"},
 39	{0x06,		"SGI vol"},
 40	{SGI_EFS,	"SGI efs"},
 41	{0x08,		"SGI lv"},
 42	{0x09,		"SGI rlv"},
 43	{0x0A,		"SGI xfs"},
 44	{0x0B,		"SGI xfslog"},
 45	{0x0C,		"SGI xlv"},
 46	{0x82,		"Linux swap"},
 47	{0x83,		"Linux native"},
 48	{0,		NULL}
 49};
 50
 51/*
 52 * File system definition and registration.
 53 */
 54static struct file_system_type efs_fs_type = {
 55	.owner			= THIS_MODULE,
 56	.name			= "efs",
 57	.kill_sb		= efs_kill_sb,
 58	.fs_flags		= FS_REQUIRES_DEV,
 59	.init_fs_context	= efs_init_fs_context,
 60};
 61MODULE_ALIAS_FS("efs");
 62
 63static struct kmem_cache * efs_inode_cachep;
 64
 65static struct inode *efs_alloc_inode(struct super_block *sb)
 66{
 67	struct efs_inode_info *ei;
 68	ei = alloc_inode_sb(sb, efs_inode_cachep, GFP_KERNEL);
 69	if (!ei)
 70		return NULL;
 71	return &ei->vfs_inode;
 72}
 73
 74static void efs_free_inode(struct inode *inode)
 75{
 
 76	kmem_cache_free(efs_inode_cachep, INODE_INFO(inode));
 77}
 78
 
 
 
 
 
 79static void init_once(void *foo)
 80{
 81	struct efs_inode_info *ei = (struct efs_inode_info *) foo;
 82
 83	inode_init_once(&ei->vfs_inode);
 84}
 85
 86static int __init init_inodecache(void)
 87{
 88	efs_inode_cachep = kmem_cache_create("efs_inode_cache",
 89				sizeof(struct efs_inode_info), 0,
 90				SLAB_RECLAIM_ACCOUNT|SLAB_ACCOUNT,
 91				init_once);
 92	if (efs_inode_cachep == NULL)
 93		return -ENOMEM;
 94	return 0;
 95}
 96
 97static void destroy_inodecache(void)
 98{
 99	/*
100	 * Make sure all delayed rcu free inodes are flushed before we
101	 * destroy cache.
102	 */
103	rcu_barrier();
104	kmem_cache_destroy(efs_inode_cachep);
105}
106
 
 
 
 
 
 
 
107static const struct super_operations efs_superblock_operations = {
108	.alloc_inode	= efs_alloc_inode,
109	.free_inode	= efs_free_inode,
110	.statfs		= efs_statfs,
 
111};
112
113static const struct export_operations efs_export_ops = {
114	.encode_fh	= generic_encode_ino32_fh,
115	.fh_to_dentry	= efs_fh_to_dentry,
116	.fh_to_parent	= efs_fh_to_parent,
117	.get_parent	= efs_get_parent,
118};
119
120static int __init init_efs_fs(void) {
121	int err;
122	pr_info(EFS_VERSION" - http://aeschi.ch.eu.org/efs/\n");
123	err = init_inodecache();
124	if (err)
125		goto out1;
126	err = register_filesystem(&efs_fs_type);
127	if (err)
128		goto out;
129	return 0;
130out:
131	destroy_inodecache();
132out1:
133	return err;
134}
135
136static void __exit exit_efs_fs(void) {
137	unregister_filesystem(&efs_fs_type);
138	destroy_inodecache();
139}
140
141module_init(init_efs_fs)
142module_exit(exit_efs_fs)
143
144static efs_block_t efs_validate_vh(struct volume_header *vh) {
145	int		i;
146	__be32		cs, *ui;
147	int		csum;
148	efs_block_t	sblock = 0; /* shuts up gcc */
149	struct pt_types	*pt_entry;
150	int		pt_type, slice = -1;
151
152	if (be32_to_cpu(vh->vh_magic) != VHMAGIC) {
153		/*
154		 * assume that we're dealing with a partition and allow
155		 * read_super() to try and detect a valid superblock
156		 * on the next block.
157		 */
158		return 0;
159	}
160
161	ui = ((__be32 *) (vh + 1)) - 1;
162	for(csum = 0; ui >= ((__be32 *) vh);) {
163		cs = *ui--;
164		csum += be32_to_cpu(cs);
165	}
166	if (csum) {
167		pr_warn("SGI disklabel: checksum bad, label corrupted\n");
168		return 0;
169	}
170
171#ifdef DEBUG
172	pr_debug("bf: \"%16s\"\n", vh->vh_bootfile);
173
174	for(i = 0; i < NVDIR; i++) {
175		int	j;
176		char	name[VDNAMESIZE+1];
177
178		for(j = 0; j < VDNAMESIZE; j++) {
179			name[j] = vh->vh_vd[i].vd_name[j];
180		}
181		name[j] = (char) 0;
182
183		if (name[0]) {
184			pr_debug("vh: %8s block: 0x%08x size: 0x%08x\n",
185				name, (int) be32_to_cpu(vh->vh_vd[i].vd_lbn),
186				(int) be32_to_cpu(vh->vh_vd[i].vd_nbytes));
187		}
188	}
189#endif
190
191	for(i = 0; i < NPARTAB; i++) {
192		pt_type = (int) be32_to_cpu(vh->vh_pt[i].pt_type);
193		for(pt_entry = sgi_pt_types; pt_entry->pt_name; pt_entry++) {
194			if (pt_type == pt_entry->pt_type) break;
195		}
196#ifdef DEBUG
197		if (be32_to_cpu(vh->vh_pt[i].pt_nblks)) {
198			pr_debug("pt %2d: start: %08d size: %08d type: 0x%02x (%s)\n",
199				 i, (int)be32_to_cpu(vh->vh_pt[i].pt_firstlbn),
200				 (int)be32_to_cpu(vh->vh_pt[i].pt_nblks),
201				 pt_type, (pt_entry->pt_name) ?
202				 pt_entry->pt_name : "unknown");
203		}
204#endif
205		if (IS_EFS(pt_type)) {
206			sblock = be32_to_cpu(vh->vh_pt[i].pt_firstlbn);
207			slice = i;
208		}
209	}
210
211	if (slice == -1) {
212		pr_notice("partition table contained no EFS partitions\n");
213#ifdef DEBUG
214	} else {
215		pr_info("using slice %d (type %s, offset 0x%x)\n", slice,
216			(pt_entry->pt_name) ? pt_entry->pt_name : "unknown",
217			sblock);
218#endif
219	}
220	return sblock;
221}
222
223static int efs_validate_super(struct efs_sb_info *sb, struct efs_super *super) {
224
225	if (!IS_EFS_MAGIC(be32_to_cpu(super->fs_magic)))
226		return -1;
227
228	sb->fs_magic     = be32_to_cpu(super->fs_magic);
229	sb->total_blocks = be32_to_cpu(super->fs_size);
230	sb->first_block  = be32_to_cpu(super->fs_firstcg);
231	sb->group_size   = be32_to_cpu(super->fs_cgfsize);
232	sb->data_free    = be32_to_cpu(super->fs_tfree);
233	sb->inode_free   = be32_to_cpu(super->fs_tinode);
234	sb->inode_blocks = be16_to_cpu(super->fs_cgisize);
235	sb->total_groups = be16_to_cpu(super->fs_ncg);
236    
237	return 0;    
238}
239
240static int efs_fill_super(struct super_block *s, struct fs_context *fc)
241{
242	struct efs_sb_info *sb;
243	struct buffer_head *bh;
244	struct inode *root;
245
246	sb = kzalloc(sizeof(struct efs_sb_info), GFP_KERNEL);
247	if (!sb)
248		return -ENOMEM;
249	s->s_fs_info = sb;
250	s->s_time_min = 0;
251	s->s_time_max = U32_MAX;
252
253	s->s_magic		= EFS_SUPER_MAGIC;
254	if (!sb_set_blocksize(s, EFS_BLOCKSIZE)) {
255		pr_err("device does not support %d byte blocks\n",
256			EFS_BLOCKSIZE);
257		return invalf(fc, "device does not support %d byte blocks\n",
258			      EFS_BLOCKSIZE);
259	}
260
261	/* read the vh (volume header) block */
262	bh = sb_bread(s, 0);
263
264	if (!bh) {
265		pr_err("cannot read volume header\n");
266		return -EIO;
267	}
268
269	/*
270	 * if this returns zero then we didn't find any partition table.
271	 * this isn't (yet) an error - just assume for the moment that
272	 * the device is valid and go on to search for a superblock.
273	 */
274	sb->fs_start = efs_validate_vh((struct volume_header *) bh->b_data);
275	brelse(bh);
276
277	if (sb->fs_start == -1) {
278		return -EINVAL;
279	}
280
281	bh = sb_bread(s, sb->fs_start + EFS_SUPER);
282	if (!bh) {
283		pr_err("cannot read superblock\n");
284		return -EIO;
285	}
286
287	if (efs_validate_super(sb, (struct efs_super *) bh->b_data)) {
288#ifdef DEBUG
289		pr_warn("invalid superblock at block %u\n",
290			sb->fs_start + EFS_SUPER);
291#endif
292		brelse(bh);
293		return -EINVAL;
294	}
295	brelse(bh);
296
297	if (!sb_rdonly(s)) {
298#ifdef DEBUG
299		pr_info("forcing read-only mode\n");
300#endif
301		s->s_flags |= SB_RDONLY;
302	}
303	s->s_op   = &efs_superblock_operations;
304	s->s_export_op = &efs_export_ops;
305	root = efs_iget(s, EFS_ROOTINODE);
306	if (IS_ERR(root)) {
307		pr_err("get root inode failed\n");
308		return PTR_ERR(root);
309	}
310
311	s->s_root = d_make_root(root);
312	if (!(s->s_root)) {
313		pr_err("get root dentry failed\n");
314		return -ENOMEM;
315	}
316
317	return 0;
318}
319
320static int efs_get_tree(struct fs_context *fc)
321{
322	return get_tree_bdev(fc, efs_fill_super);
323}
324
325static int efs_reconfigure(struct fs_context *fc)
326{
327	sync_filesystem(fc->root->d_sb);
328	fc->sb_flags |= SB_RDONLY;
329
330	return 0;
331}
332
333static const struct fs_context_operations efs_context_opts = {
334	.get_tree	= efs_get_tree,
335	.reconfigure	= efs_reconfigure,
336};
337
338/*
339 * Set up the filesystem mount context.
340 */
341static int efs_init_fs_context(struct fs_context *fc)
342{
343	fc->ops = &efs_context_opts;
344
345	return 0;
346}
347
348static int efs_statfs(struct dentry *dentry, struct kstatfs *buf) {
349	struct super_block *sb = dentry->d_sb;
350	struct efs_sb_info *sbi = SUPER_INFO(sb);
351	u64 id = huge_encode_dev(sb->s_bdev->bd_dev);
352
353	buf->f_type    = EFS_SUPER_MAGIC;	/* efs magic number */
354	buf->f_bsize   = EFS_BLOCKSIZE;		/* blocksize */
355	buf->f_blocks  = sbi->total_groups *	/* total data blocks */
356			(sbi->group_size - sbi->inode_blocks);
357	buf->f_bfree   = sbi->data_free;	/* free data blocks */
358	buf->f_bavail  = sbi->data_free;	/* free blocks for non-root */
359	buf->f_files   = sbi->total_groups *	/* total inodes */
360			sbi->inode_blocks *
361			(EFS_BLOCKSIZE / sizeof(struct efs_dinode));
362	buf->f_ffree   = sbi->inode_free;	/* free inodes */
363	buf->f_fsid    = u64_to_fsid(id);
 
364	buf->f_namelen = EFS_MAXNAMELEN;	/* max filename length */
365
366	return 0;
367}
368