1 /*
2  * Copyright (c) 2011-2015 The DragonFly Project.  All rights reserved.
3  *
4  * This code is derived from software contributed to The DragonFly Project
5  * by Matthew Dillon <dillon@dragonflybsd.org>
6  *
7  * Redistribution and use in source and binary forms, with or without
8  * modification, are permitted provided that the following conditions
9  * are met:
10  *
11  * 1. Redistributions of source code must retain the above copyright
12  *    notice, this list of conditions and the following disclaimer.
13  * 2. Redistributions in binary form must reproduce the above copyright
14  *    notice, this list of conditions and the following disclaimer in
15  *    the documentation and/or other materials provided with the
16  *    distribution.
17  * 3. Neither the name of The DragonFly Project nor the names of its
18  *    contributors may be used to endorse or promote products derived
19  *    from this software without specific, prior written permission.
20  *
21  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
22  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
23  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
24  * FOR A PARTICULAR PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE
25  * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
26  * INCIDENTAL, SPECIAL, EXEMPLARY OR CONSEQUENTIAL DAMAGES (INCLUDING,
27  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
28  * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
29  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
30  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT
31  * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
32  * SUCH DAMAGE.
33  */
34 
35 #include <sys/types.h>
36 #include <sys/diskslice.h>
37 #include <sys/diskmbr.h>
38 #include <sys/stat.h>
39 #include <sys/time.h>
40 #include <sys/sysctl.h>
41 #include <vfs/hammer2/hammer2_xxhash.h>
42 #include <vfs/hammer2/hammer2_disk.h>
43 
44 #include <stdio.h>
45 #include <stdlib.h>
46 #include <stdarg.h>
47 #include <stddef.h>
48 #include <unistd.h>
49 #include <string.h>
50 #include <errno.h>
51 #include <fcntl.h>
52 #include <assert.h>
53 #include <err.h>
54 #include <uuid.h>
55 
56 #define MAXLABELS	HAMMER2_SET_COUNT
57 
58 #define hammer2_icrc32(buf, size)	iscsi_crc32((buf), (size))
59 #define hammer2_icrc32c(buf, size, crc)	iscsi_crc32_ext((buf), (size), (crc))
60 uint32_t iscsi_crc32(const void *buf, size_t size);
61 uint32_t iscsi_crc32_ext(const void *buf, size_t size, uint32_t ocrc);
62 
63 static hammer2_off_t check_volume(const char *path, int *fdp);
64 static int64_t getsize(const char *str, int64_t minval, int64_t maxval, int pw);
65 static const char *sizetostr(hammer2_off_t size);
66 static uint64_t nowtime(void);
67 static int blkrefary_cmp(const void *b1, const void *b2);
68 static void usage(void);
69 
70 static void format_hammer2(int fd, hammer2_off_t total_space,
71 				hammer2_off_t free_space);
72 static void alloc_direct(hammer2_off_t *basep, hammer2_blockref_t *bref,
73 				size_t bytes);
74 static hammer2_key_t dirhash(const unsigned char *name, size_t len);
75 
76 static int Hammer2Version = -1;
77 static int ForceOpt = 0;
78 static uuid_t Hammer2_FSType;	/* static filesystem type id for HAMMER2 */
79 static uuid_t Hammer2_VolFSID;	/* unique filesystem id in volu header */
80 static uuid_t Hammer2_SupCLID;	/* PFS cluster id in super-root inode */
81 static uuid_t Hammer2_SupFSID;	/* PFS unique id in super-root inode */
82 static uuid_t Hammer2_PfsCLID[MAXLABELS];
83 static uuid_t Hammer2_PfsFSID[MAXLABELS];
84 static const char *Label[MAXLABELS];
85 static hammer2_off_t BootAreaSize;
86 static hammer2_off_t AuxAreaSize;
87 static int NLabels;
88 
89 #define GIG	((hammer2_off_t)1024*1024*1024)
90 
91 int
92 main(int ac, char **av)
93 {
94 	uint32_t status;
95 	hammer2_off_t total_space;
96 	hammer2_off_t free_space;
97 	hammer2_off_t reserved_space;
98 	int ch;
99 	int fd = -1;
100 	int i;
101 	int defaultlabels = 1;
102 	char *vol_fsid;
103 	char *sup_clid_name;
104 	char *sup_fsid_name;
105 	char *pfs_clid_name;
106 	char *pfs_fsid_name;
107 
108 	Label[NLabels++] = "LOCAL";
109 
110 	/*
111 	 * Sanity check basic filesystem structures.  No cookies for us
112 	 * if it gets broken!
113 	 */
114 	assert(sizeof(hammer2_volume_data_t) == HAMMER2_VOLUME_BYTES);
115 	assert(sizeof(hammer2_inode_data_t) == HAMMER2_INODE_BYTES);
116 	assert(sizeof(hammer2_blockref_t) == HAMMER2_BLOCKREF_BYTES);
117 
118 	/*
119 	 * Generate a filesystem id and lookup the filesystem type
120 	 */
121 	srandomdev();
122 	uuidgen(&Hammer2_VolFSID, 1);
123 	uuidgen(&Hammer2_SupCLID, 1);
124 	uuidgen(&Hammer2_SupFSID, 1);
125 	uuid_from_string(HAMMER2_UUID_STRING, &Hammer2_FSType, &status);
126 	/*uuid_name_lookup(&Hammer2_FSType, "DragonFly HAMMER2", &status);*/
127 	if (status != uuid_s_ok) {
128 		errx(1, "uuids file does not have the DragonFly "
129 			"HAMMER2 filesystem type");
130 	}
131 
132 	/*
133 	 * Parse arguments
134 	 */
135 	while ((ch = getopt(ac, av, "fL:b:m:r:V:")) != -1) {
136 		switch(ch) {
137 		case 'f':
138 			ForceOpt = 1;
139 			break;
140 		case 'L':
141 			defaultlabels = 0;
142 			if (strcasecmp(optarg, "none") == 0) {
143 				break;
144 			}
145 			if (NLabels >= MAXLABELS) {
146 				errx(1,
147 				     "Limit of %d local labels",
148 				     MAXLABELS - 1);
149 			}
150 			Label[NLabels++] = optarg;
151 			if (strlen(Label[NLabels-1]) > HAMMER2_INODE_MAXNAME) {
152 				errx(1, "Root directory label too long "
153 					"(64 chars max)\n");
154 			}
155 			break;
156 		case 'b':
157 			BootAreaSize = getsize(optarg,
158 					 HAMMER2_NEWFS_ALIGN,
159 					 HAMMER2_BOOT_MAX_BYTES, 2);
160 			break;
161 		case 'r':
162 			AuxAreaSize = getsize(optarg,
163 					 HAMMER2_NEWFS_ALIGN,
164 					 HAMMER2_REDO_MAX_BYTES, 2);
165 			break;
166 		case 'V':
167 			Hammer2Version = strtol(optarg, NULL, 0);
168 			if (Hammer2Version < HAMMER2_VOL_VERSION_MIN ||
169 			    Hammer2Version >= HAMMER2_VOL_VERSION_WIP) {
170 				errx(1,
171 				     "I don't understand how to format "
172 				     "HAMMER2 version %d\n",
173 				     Hammer2Version);
174 			}
175 			break;
176 		default:
177 			usage();
178 			break;
179 		}
180 	}
181 
182 	/*
183 	 * Check Hammer2 version
184 	 */
185 	if (Hammer2Version < 0) {
186 		size_t olen = sizeof(Hammer2Version);
187 		Hammer2Version = HAMMER2_VOL_VERSION_DEFAULT;
188 		if (sysctlbyname("vfs.hammer2.supported_version",
189 				 &Hammer2Version, &olen, NULL, 0) == 0) {
190 			if (Hammer2Version >= HAMMER2_VOL_VERSION_WIP) {
191 				Hammer2Version = HAMMER2_VOL_VERSION_WIP - 1;
192 				fprintf(stderr,
193 					"newfs_hammer2: WARNING: HAMMER2 VFS "
194 					"supports higher version than I "
195 					"understand,\n"
196 					"using version %d\n",
197 					Hammer2Version);
198 			}
199 		} else {
200 			fprintf(stderr,
201 				"newfs_hammer2: WARNING: HAMMER2 VFS not "
202 				"loaded, cannot get version info.\n"
203 				"Using version %d\n",
204 				HAMMER2_VOL_VERSION_DEFAULT);
205 		}
206 	}
207 
208 	ac -= optind;
209 	av += optind;
210 
211 	if (ac != 1 || av[0][0] == 0) {
212 		fprintf(stderr, "Exactly one disk device must be specified\n");
213 		exit(1);
214 	}
215 
216 	/*
217 	 * Adjust Label[] and NLabels.
218 	 */
219 	if (defaultlabels == 0) {
220 		NLabels = 1;
221 	} else {
222 		char c = av[0][strlen(av[0]) - 1];
223 		if (c == 'a')
224 			Label[NLabels++] = "BOOT";
225 		else if (c == 'd')
226 			Label[NLabels++] = "ROOT";
227 		else
228 			Label[NLabels++] = "DATA";
229 	}
230 
231 	/*
232 	 * Collect volume information.
233 	 */
234 	total_space = check_volume(av[0], &fd);
235 
236 	/*
237 	 * ~typically 8MB alignment to avoid edge cases for reserved blocks
238 	 * and so raid stripes (if any) operate efficiently.
239 	 */
240 	total_space &= ~HAMMER2_VOLUME_ALIGNMASK64;
241 
242 	/*
243 	 * Calculate defaults for the boot area size and round to the
244 	 * volume alignment boundary.
245 	 *
246 	 * NOTE: These areas are currently not used for booting but are
247 	 *	 reserved for future filesystem expansion.
248 	 */
249 	if (BootAreaSize == 0) {
250 		BootAreaSize = HAMMER2_BOOT_NOM_BYTES;
251 		while (BootAreaSize > total_space / 20)
252 			BootAreaSize >>= 1;
253 		if (BootAreaSize < HAMMER2_BOOT_MIN_BYTES)
254 			BootAreaSize = HAMMER2_BOOT_MIN_BYTES;
255 	} else if (BootAreaSize < HAMMER2_BOOT_MIN_BYTES) {
256 		BootAreaSize = HAMMER2_BOOT_MIN_BYTES;
257 	}
258 	BootAreaSize = (BootAreaSize + HAMMER2_VOLUME_ALIGNMASK64) &
259 		       ~HAMMER2_VOLUME_ALIGNMASK64;
260 
261 	/*
262 	 * Calculate defaults for the redo area size and round to the
263 	 * volume alignment boundary.
264 	 *
265 	 * NOTE: These areas are currently not used for logging but are
266 	 *	 reserved for future filesystem expansion.
267 	 */
268 	if (AuxAreaSize == 0) {
269 		AuxAreaSize = HAMMER2_REDO_NOM_BYTES;
270 		while (AuxAreaSize > total_space / 20)
271 			AuxAreaSize >>= 1;
272 		if (AuxAreaSize < HAMMER2_REDO_MIN_BYTES)
273 			AuxAreaSize = HAMMER2_REDO_MIN_BYTES;
274 	} else if (AuxAreaSize < HAMMER2_REDO_MIN_BYTES) {
275 		AuxAreaSize = HAMMER2_REDO_MIN_BYTES;
276 	}
277 	AuxAreaSize = (AuxAreaSize + HAMMER2_VOLUME_ALIGNMASK64) &
278 		       ~HAMMER2_VOLUME_ALIGNMASK64;
279 
280 	/*
281 	 * We'll need to stuff this in the volume header soon.
282 	 */
283 	uuid_to_string(&Hammer2_VolFSID, &vol_fsid, &status);
284 	uuid_to_string(&Hammer2_SupCLID, &sup_clid_name, &status);
285 	uuid_to_string(&Hammer2_SupFSID, &sup_fsid_name, &status);
286 
287 	/*
288 	 * Calculate the amount of reserved space.  HAMMER2_ZONE_SEG (4MB)
289 	 * is reserved at the beginning of every 2GB of storage, rounded up.
290 	 * Thus a 200MB filesystem will still have a 4MB reserve area.
291 	 *
292 	 * We also include the boot and redo areas in the reserve.  The
293 	 * reserve is used to help 'df' calculate the amount of available
294 	 * space.
295 	 */
296 	reserved_space = ((total_space + HAMMER2_ZONE_MASK64) /
297 			  HAMMER2_ZONE_BYTES64) * HAMMER2_ZONE_SEG64;
298 
299 	free_space = total_space - reserved_space -
300 		     BootAreaSize - AuxAreaSize;
301 
302 	format_hammer2(fd, total_space, free_space);
303 	fsync(fd);
304 	close(fd);
305 
306 	printf("---------------------------------------------\n");
307 	printf("version:          %d\n", Hammer2Version);
308 	printf("total-size:       %s (%jd bytes)\n",
309 	       sizetostr(total_space),
310 	       (intmax_t)total_space);
311 	printf("boot-area-size:   %s\n", sizetostr(BootAreaSize));
312 	printf("aux-area-size:    %s\n", sizetostr(AuxAreaSize));
313 	printf("topo-reserved:	  %s\n", sizetostr(reserved_space));
314 	printf("free-space:       %s\n", sizetostr(free_space));
315 	printf("vol-fsid:         %s\n", vol_fsid);
316 	printf("sup-clid:         %s\n", sup_clid_name);
317 	printf("sup-fsid:         %s\n", sup_fsid_name);
318 	for (i = 0; i < NLabels; ++i) {
319 		printf("PFS \"%s\"\n", Label[i]);
320 		uuid_to_string(&Hammer2_PfsCLID[i], &pfs_clid_name, &status);
321 		uuid_to_string(&Hammer2_PfsFSID[i], &pfs_fsid_name, &status);
322 		printf("    clid %s\n", pfs_clid_name);
323 		printf("    fsid %s\n", pfs_fsid_name);
324 	}
325 	printf("\n");
326 
327 	return(0);
328 }
329 
330 static
331 void
332 usage(void)
333 {
334 	fprintf(stderr,
335 		"usage: newfs_hammer2 -L label [-f] [-b bootsize] "
336 		"[-r redosize] [-V version] special ...\n"
337 	);
338 	exit(1);
339 }
340 
341 /*
342  * Convert the size in bytes to a human readable string.
343  */
344 static
345 const char *
346 sizetostr(hammer2_off_t size)
347 {
348 	static char buf[32];
349 
350 	if (size < 1024 / 2) {
351 		snprintf(buf, sizeof(buf), "%6.2f", (double)size);
352 	} else if (size < 1024 * 1024 / 2) {
353 		snprintf(buf, sizeof(buf), "%6.2fKB",
354 			(double)size / 1024);
355 	} else if (size < 1024 * 1024 * 1024LL / 2) {
356 		snprintf(buf, sizeof(buf), "%6.2fMB",
357 			(double)size / (1024 * 1024));
358 	} else if (size < 1024 * 1024 * 1024LL * 1024LL / 2) {
359 		snprintf(buf, sizeof(buf), "%6.2fGB",
360 			(double)size / (1024 * 1024 * 1024LL));
361 	} else {
362 		snprintf(buf, sizeof(buf), "%6.2fTB",
363 			(double)size / (1024 * 1024 * 1024LL * 1024LL));
364 	}
365 	return(buf);
366 }
367 
368 /*
369  * Convert a string to a 64 bit signed integer with various requirements.
370  */
371 static int64_t
372 getsize(const char *str, int64_t minval, int64_t maxval, int powerof2)
373 {
374 	int64_t val;
375 	char *ptr;
376 
377 	val = strtoll(str, &ptr, 0);
378 	switch(*ptr) {
379 	case 't':
380 	case 'T':
381 		val *= 1024;
382 		/* fall through */
383 	case 'g':
384 	case 'G':
385 		val *= 1024;
386 		/* fall through */
387 	case 'm':
388 	case 'M':
389 		val *= 1024;
390 		/* fall through */
391 	case 'k':
392 	case 'K':
393 		val *= 1024;
394 		break;
395 	default:
396 		errx(1, "Unknown suffix in number '%s'\n", str);
397 		/* not reached */
398 	}
399 	if (ptr[1]) {
400 		errx(1, "Unknown suffix in number '%s'\n", str);
401 		/* not reached */
402 	}
403 	if (val < minval) {
404 		errx(1, "Value too small: %s, min is %s\n",
405 		     str, sizetostr(minval));
406 		/* not reached */
407 	}
408 	if (val > maxval) {
409 		errx(1, "Value too large: %s, max is %s\n",
410 		     str, sizetostr(maxval));
411 		/* not reached */
412 	}
413 	if ((powerof2 & 1) && (val ^ (val - 1)) != ((val << 1) - 1)) {
414 		errx(1, "Value not power of 2: %s\n", str);
415 		/* not reached */
416 	}
417 	if ((powerof2 & 2) && (val & HAMMER2_NEWFS_ALIGNMASK)) {
418 		errx(1, "Value not an integral multiple of %dK: %s",
419 		     HAMMER2_NEWFS_ALIGN / 1024, str);
420 		/* not reached */
421 	}
422 	return(val);
423 }
424 
425 static uint64_t
426 nowtime(void)
427 {
428 	struct timeval tv;
429 	uint64_t xtime;
430 
431 	gettimeofday(&tv, NULL);
432 	xtime = tv.tv_sec * 1000000LL + tv.tv_usec;
433 	return(xtime);
434 }
435 
436 /*
437  * Figure out how big the volume is.
438  */
439 static
440 hammer2_off_t
441 check_volume(const char *path, int *fdp)
442 {
443 	struct partinfo pinfo;
444 	struct stat st;
445 	hammer2_off_t size;
446 
447 	/*
448 	 * Get basic information about the volume
449 	 */
450 	*fdp = open(path, O_RDWR);
451 	if (*fdp < 0)
452 		err(1, "Unable to open %s R+W", path);
453 	if (ioctl(*fdp, DIOCGPART, &pinfo) < 0) {
454 		/*
455 		 * Allow the formatting of regular files as HAMMER2 volumes
456 		 */
457 		if (fstat(*fdp, &st) < 0)
458 			err(1, "Unable to stat %s", path);
459 		size = st.st_size;
460 	} else {
461 		/*
462 		 * When formatting a block device as a HAMMER2 volume the
463 		 * sector size must be compatible.  HAMMER2 uses 64K
464 		 * filesystem buffers but logical buffers for direct I/O
465 		 * can be as small as HAMMER2_LOGSIZE (16KB).
466 		 */
467 		if (pinfo.reserved_blocks) {
468 			errx(1, "HAMMER2 cannot be placed in a partition "
469 				"which overlaps the disklabel or MBR");
470 		}
471 		if (pinfo.media_blksize > HAMMER2_PBUFSIZE ||
472 		    HAMMER2_PBUFSIZE % pinfo.media_blksize) {
473 			errx(1, "A media sector size of %d is not supported",
474 			     pinfo.media_blksize);
475 		}
476 		size = pinfo.media_size;
477 	}
478 	printf("Volume %-15s size %s\n", path, sizetostr(size));
479 	return (size);
480 }
481 
482 /*
483  * Create the volume header, the super-root directory inode, and
484  * the writable snapshot subdirectory (named via the label) which
485  * is to be the initial mount point, or at least the first mount point.
486  *
487  * [----reserved_area----][boot_area][aux_area]
488  * [[vol_hdr]...         ]                     [sroot][root]...
489  *
490  * The sroot and root inodes eat 512 bytes each.  newfs labels can only be
491  * 64 bytes so the root (snapshot) inode does not need to extend past 512
492  * bytes.  We use the correct hash slot correct but note that because
493  * directory hashes are chained 16x, any slot in the inode will work.
494  *
495  * Also format the allocation map.
496  *
497  * NOTE: The passed total_space is 8MB-aligned to avoid edge cases.
498  */
499 static
500 void
501 format_hammer2(int fd, hammer2_off_t total_space, hammer2_off_t free_space)
502 {
503 	char *buf = malloc(HAMMER2_PBUFSIZE);
504 	hammer2_volume_data_t *vol;
505 	hammer2_inode_data_t *rawip;
506 	hammer2_blockref_t sroot_blockref;
507 	hammer2_blockref_t root_blockref[MAXLABELS];
508 	uint64_t now;
509 	hammer2_off_t volu_base = 0;
510 	hammer2_off_t boot_base = HAMMER2_ZONE_SEG;
511 	hammer2_off_t aux_base = boot_base + BootAreaSize;
512 	hammer2_off_t alloc_base = aux_base + AuxAreaSize;
513 	hammer2_off_t tmp_base;
514 	size_t n;
515 	int i;
516 
517 	/*
518 	 * Clear the entire reserve for the first 2G segment and
519 	 * make sure we can write to the last block.
520 	 */
521 	bzero(buf, HAMMER2_PBUFSIZE);
522 	tmp_base = volu_base;
523 	for (i = 0; i < HAMMER2_ZONE_BLOCKS_SEG; ++i) {
524 		n = pwrite(fd, buf, HAMMER2_PBUFSIZE, tmp_base);
525 		if (n != HAMMER2_PBUFSIZE) {
526 			perror("write");
527 			exit(1);
528 		}
529 		tmp_base += HAMMER2_PBUFSIZE;
530 	}
531 
532 	n = pwrite(fd, buf, HAMMER2_PBUFSIZE,
533 		   volu_base + total_space - HAMMER2_PBUFSIZE);
534 	if (n != HAMMER2_PBUFSIZE) {
535 		perror("write (at-end-of-volume)");
536 		exit(1);
537 	}
538 
539 	/*
540 	 * Make sure alloc_base won't cross the reserved area at the
541 	 * beginning of each 2GB zone.
542 	 *
543 	 * Reserve space for the super-root inode and the root inode.
544 	 * Make sure they are in the same 64K block to simplify our code.
545 	 */
546 	assert((alloc_base & HAMMER2_PBUFMASK) == 0);
547 	assert(alloc_base < HAMMER2_ZONE_BYTES64 - HAMMER2_ZONE_SEG);
548 	now = nowtime();
549 	bzero(buf, HAMMER2_PBUFSIZE);
550 
551 	alloc_base &= ~HAMMER2_PBUFMASK64;
552 	alloc_direct(&alloc_base, &sroot_blockref, HAMMER2_INODE_BYTES);
553 
554 	for (i = 0; i < NLabels; ++i) {
555 		uuidgen(&Hammer2_PfsCLID[i], 1);
556 		uuidgen(&Hammer2_PfsFSID[i], 1);
557 
558 		alloc_direct(&alloc_base, &root_blockref[i],
559 			     HAMMER2_INODE_BYTES);
560 		assert(((sroot_blockref.data_off ^ root_blockref[i].data_off) &
561 			HAMMER2_OFF_MASK_HI) == 0);
562 
563 		/*
564 		 * Format the root directory inode, which is left empty.
565 		 */
566 		rawip = (void *)(buf + (HAMMER2_OFF_MASK_LO &
567 					root_blockref[i].data_off));
568 		rawip->meta.version = HAMMER2_INODE_VERSION_ONE;
569 		rawip->meta.ctime = now;
570 		rawip->meta.mtime = now;
571 		/* rawip->atime = now; NOT IMPL MUST BE ZERO */
572 		rawip->meta.btime = now;
573 		rawip->meta.type = HAMMER2_OBJTYPE_DIRECTORY;
574 		rawip->meta.mode = 0755;
575 		rawip->meta.inum = 1;	/* root inode, inumber 1 */
576 		rawip->meta.nlinks = 1;	/* directory link count compat */
577 
578 		rawip->meta.name_len = strlen(Label[i]);
579 		bcopy(Label[i], rawip->filename, rawip->meta.name_len);
580 		rawip->meta.name_key =
581 				dirhash(rawip->filename, rawip->meta.name_len);
582 
583 		/*
584 		 * Compression mode and supported copyids.
585 		 *
586 		 * Do not allow compression when creating any "BOOT" label
587 		 * (pfs-create also does the same if the pfs is named "BOOT")
588 		 */
589 		if (strcasecmp(Label[i], "BOOT") == 0) {
590 			rawip->meta.comp_algo = HAMMER2_ENC_ALGO(
591 						    HAMMER2_COMP_AUTOZERO);
592 			rawip->meta.check_algo = HAMMER2_ENC_ALGO(
593 						    HAMMER2_CHECK_XXHASH64);
594 		} else  {
595 			rawip->meta.comp_algo = HAMMER2_ENC_ALGO(
596 						    HAMMER2_COMP_NEWFS_DEFAULT);
597 			rawip->meta.check_algo = HAMMER2_ENC_ALGO(
598 						    HAMMER2_CHECK_XXHASH64);
599 		}
600 
601 		/*
602 		 * NOTE: We leave nmasters set to 0, which means that we
603 		 *	 don't know how many masters there are.  The quorum
604 		 *	 calculation will effectively be 1 ( 0 / 2 + 1 ).
605 		 */
606 		rawip->meta.pfs_clid = Hammer2_PfsCLID[i];
607 		rawip->meta.pfs_fsid = Hammer2_PfsFSID[i];
608 		rawip->meta.pfs_type = HAMMER2_PFSTYPE_MASTER;
609 		rawip->meta.op_flags |= HAMMER2_OPFLAG_PFSROOT;
610 
611 		/* first allocatable inode number */
612 		rawip->meta.pfs_inum = 16;
613 
614 		/* rawip->u.blockset is left empty */
615 
616 		/*
617 		 * The root blockref will be stored in the super-root inode as
618 		 * the only directory entry.  The copyid here is the actual
619 		 * copyid of the storage ref.
620 		 *
621 		 * The key field for a directory entry's blockref is
622 		 * essentially the name key for the entry.
623 		 */
624 		root_blockref[i].key = rawip->meta.name_key;
625 		root_blockref[i].copyid = HAMMER2_COPYID_LOCAL;
626 		root_blockref[i].keybits = 0;
627 		root_blockref[i].check.xxhash64.value =
628 				XXH64(rawip, sizeof(*rawip), XXH_HAMMER2_SEED);
629 		root_blockref[i].type = HAMMER2_BREF_TYPE_INODE;
630 		root_blockref[i].methods =
631 				HAMMER2_ENC_CHECK(HAMMER2_CHECK_XXHASH64) |
632 				HAMMER2_ENC_COMP(HAMMER2_COMP_NONE);
633 		root_blockref[i].mirror_tid = 16;
634 		root_blockref[i].flags = HAMMER2_BREF_FLAG_PFSROOT;
635 	}
636 
637 	/*
638 	 * Format the super-root directory inode, giving it one directory
639 	 * entry (root_blockref) and fixup the icrc method.
640 	 *
641 	 * The superroot contains one directory entry pointing at the root
642 	 * inode (named via the label).  Inodes contain one blockset which
643 	 * is fully associative so we can put the entry anywhere without
644 	 * having to worry about the hash.  Use index 0.
645 	 */
646 	rawip = (void *)(buf + (HAMMER2_OFF_MASK_LO & sroot_blockref.data_off));
647 	rawip->meta.version = HAMMER2_INODE_VERSION_ONE;
648 	rawip->meta.ctime = now;
649 	rawip->meta.mtime = now;
650 	/* rawip->meta.atime = now; NOT IMPL MUST BE ZERO */
651 	rawip->meta.btime = now;
652 	rawip->meta.type = HAMMER2_OBJTYPE_DIRECTORY;
653 	rawip->meta.mode = 0700;	/* super-root - root only */
654 	rawip->meta.inum = 0;		/* super root inode, inumber 0 */
655 	rawip->meta.nlinks = 2; 	/* directory link count compat */
656 
657 	rawip->meta.name_len = 0;	/* super-root is unnamed */
658 	rawip->meta.name_key = 0;
659 
660 	rawip->meta.comp_algo = HAMMER2_ENC_ALGO(HAMMER2_COMP_AUTOZERO);
661 	rawip->meta.check_algo = HAMMER2_ENC_ALGO(HAMMER2_CHECK_XXHASH64);
662 
663 	/*
664 	 * The super-root is flagged as a PFS and typically given its own
665 	 * random FSID, making it possible to mirror an entire HAMMER2 disk
666 	 * snapshots and all if desired.  PFS ids are used to match up
667 	 * mirror sources and targets and cluster copy sources and targets.
668 	 *
669 	 * (XXX whole-disk logical mirroring is not really supported in
670 	 *  the first attempt because each PFS is in its own modify/mirror
671 	 *  transaction id domain, so normal mechanics cannot cross a PFS
672 	 *  boundary).
673 	 */
674 	rawip->meta.pfs_clid = Hammer2_SupCLID;
675 	rawip->meta.pfs_fsid = Hammer2_SupFSID;
676 	rawip->meta.pfs_type = HAMMER2_PFSTYPE_SUPROOT;
677 	snprintf(rawip->filename, sizeof(rawip->filename), "SUPROOT");
678 	rawip->meta.name_key = 0;
679 	rawip->meta.name_len = strlen(rawip->filename);
680 
681 	/* The super-root has an inode number of 0 */
682 	rawip->meta.pfs_inum = 0;
683 
684 	/*
685 	 * Currently newfs_hammer2 just throws the PFS inodes into the
686 	 * top-level block table at the volume root and doesn't try to
687 	 * create an indirect block, so we are limited to ~4 at filesystem
688 	 * creation time.  More can be added after mounting.
689 	 */
690 	qsort(root_blockref, NLabels, sizeof(root_blockref[0]), blkrefary_cmp);
691 	for (i = 0; i < NLabels; ++i)
692 		rawip->u.blockset.blockref[i] = root_blockref[i];
693 
694 	/*
695 	 * The sroot blockref will be stored in the volume header.
696 	 */
697 	sroot_blockref.copyid = HAMMER2_COPYID_LOCAL;
698 	sroot_blockref.keybits = 0;
699 	sroot_blockref.check.xxhash64.value =
700 					XXH64(rawip, sizeof(*rawip), XXH_HAMMER2_SEED);
701 	sroot_blockref.type = HAMMER2_BREF_TYPE_INODE;
702 	sroot_blockref.methods = HAMMER2_ENC_CHECK(HAMMER2_CHECK_XXHASH64) |
703 			         HAMMER2_ENC_COMP(HAMMER2_COMP_AUTOZERO);
704 	sroot_blockref.mirror_tid = 16;
705 	rawip = NULL;
706 
707 	/*
708 	 * Write out the 64K HAMMER2 block containing the root and sroot.
709 	 */
710 	n = pwrite(fd, buf, HAMMER2_PBUFSIZE,
711 		   sroot_blockref.data_off & HAMMER2_OFF_MASK_HI);
712 	if (n != HAMMER2_PBUFSIZE) {
713 		perror("write");
714 		exit(1);
715 	}
716 
717 	/*
718 	 * Format the volume header.
719 	 *
720 	 * The volume header points to sroot_blockref.  Also be absolutely
721 	 * sure that allocator_beg is set.
722 	 */
723 	bzero(buf, HAMMER2_PBUFSIZE);
724 	vol = (void *)buf;
725 
726 	vol->magic = HAMMER2_VOLUME_ID_HBO;
727 	vol->boot_beg = boot_base;
728 	vol->boot_end = boot_base + BootAreaSize;
729 	vol->aux_beg = aux_base;
730 	vol->aux_end = aux_base + AuxAreaSize;
731 	vol->volu_size = total_space;
732 	vol->version = Hammer2Version;
733 	vol->flags = 0;
734 
735 	vol->fsid = Hammer2_VolFSID;
736 	vol->fstype = Hammer2_FSType;
737 
738 	vol->peer_type = DMSG_PEER_HAMMER2;	/* LNK_CONN identification */
739 
740 	vol->allocator_size = free_space;
741 	vol->allocator_free = free_space;
742 	vol->allocator_beg = alloc_base;
743 
744 	vol->sroot_blockset.blockref[0] = sroot_blockref;
745 	vol->mirror_tid = 16;	/* all blockref mirror TIDs set to 16 */
746 	vol->freemap_tid = 16;	/* all blockref mirror TIDs set to 16 */
747 	vol->icrc_sects[HAMMER2_VOL_ICRC_SECT1] =
748 			hammer2_icrc32((char *)vol + HAMMER2_VOLUME_ICRC1_OFF,
749 				       HAMMER2_VOLUME_ICRC1_SIZE);
750 
751 	/*
752 	 * Set ICRC_SECT0 after all remaining elements of sect0 have been
753 	 * populated in the volume header.  Note hat ICRC_SECT* (except for
754 	 * SECT0) are part of sect0.
755 	 */
756 	vol->icrc_sects[HAMMER2_VOL_ICRC_SECT0] =
757 			hammer2_icrc32((char *)vol + HAMMER2_VOLUME_ICRC0_OFF,
758 				       HAMMER2_VOLUME_ICRC0_SIZE);
759 	vol->icrc_volheader =
760 			hammer2_icrc32((char *)vol + HAMMER2_VOLUME_ICRCVH_OFF,
761 				       HAMMER2_VOLUME_ICRCVH_SIZE);
762 
763 	/*
764 	 * Write the volume header and all alternates.
765 	 */
766 	for (i = 0; i < HAMMER2_NUM_VOLHDRS; ++i) {
767 		if (i * HAMMER2_ZONE_BYTES64 >= total_space)
768 			break;
769 		n = pwrite(fd, buf, HAMMER2_PBUFSIZE,
770 			   volu_base + i * HAMMER2_ZONE_BYTES64);
771 		if (n != HAMMER2_PBUFSIZE) {
772 			perror("write");
773 			exit(1);
774 		}
775 	}
776 
777 	/*
778 	 * Cleanup
779 	 */
780 	free(buf);
781 }
782 
783 static void
784 alloc_direct(hammer2_off_t *basep, hammer2_blockref_t *bref, size_t bytes)
785 {
786 	int radix;
787 
788 	radix = 0;
789 	assert(bytes);
790 	while ((bytes & 1) == 0) {
791 		bytes >>= 1;
792 		++radix;
793 	}
794 	assert(bytes == 1);
795 	if (radix < HAMMER2_RADIX_MIN)
796 		radix = HAMMER2_RADIX_MIN;
797 
798 	bzero(bref, sizeof(*bref));
799 	bref->data_off = *basep | radix;
800 	bref->vradix = radix;
801 
802 	*basep += 1U << radix;
803 }
804 
805 /*
806  * Borrow HAMMER1's directory hash algorithm #1 with a few modifications.
807  * The filename is split into fields which are hashed separately and then
808  * added together.
809  *
810  * Differences include: bit 63 must be set to 1 for HAMMER2 (HAMMER1 sets
811  * it to 0), this is because bit63=0 is used for hidden hardlinked inodes.
812  * (This means we do not need to do a 0-check/or-with-0x100000000 either).
813  *
814  * Also, the iscsi crc code is used instead of the old crc32 code.
815  */
816 static hammer2_key_t
817 dirhash(const unsigned char *name, size_t len)
818 {
819 	const unsigned char *aname = name;
820 	uint32_t crcx;
821 	uint64_t key;
822 	size_t i;
823 	size_t j;
824 
825 	/*
826 	 * Filesystem version 6 or better will create directories
827 	 * using the ALG1 dirhash.  This hash breaks the filename
828 	 * up into domains separated by special characters and
829 	 * hashes each domain independently.
830 	 *
831 	 * We also do a simple sub-sort using the first character
832 	 * of the filename in the top 5-bits.
833 	 */
834 	key = 0;
835 
836 	/*
837 	 * m32
838 	 */
839 	crcx = 0;
840 	for (i = j = 0; i < len; ++i) {
841 		if (aname[i] == '.' ||
842 		    aname[i] == '-' ||
843 		    aname[i] == '_' ||
844 		    aname[i] == '~') {
845 			if (i != j)
846 				crcx += hammer2_icrc32(aname + j, i - j);
847 			j = i + 1;
848 		}
849 	}
850 	if (i != j)
851 		crcx += hammer2_icrc32(aname + j, i - j);
852 
853 	/*
854 	 * The directory hash utilizes the top 32 bits of the 64-bit key.
855 	 * Bit 63 must be set to 1.
856 	 */
857 	crcx |= 0x80000000U;
858 	key |= (uint64_t)crcx << 32;
859 
860 	/*
861 	 * l16 - crc of entire filename
862 	 *
863 	 * This crc reduces degenerate hash collision conditions
864 	 */
865 	crcx = hammer2_icrc32(aname, len);
866 	crcx = crcx ^ (crcx << 16);
867 	key |= crcx & 0xFFFF0000U;
868 
869 	/*
870 	 * Set bit 15.  This allows readdir to strip bit 63 so a positive
871 	 * 64-bit cookie/offset can always be returned, and still guarantee
872 	 * that the values 0x0000-0x7FFF are available for artificial entries.
873 	 * ('.' and '..').
874 	 */
875 	key |= 0x8000U;
876 
877 	return (key);
878 }
879 
880 static int
881 blkrefary_cmp(const void *b1, const void *b2)
882 {
883 	const hammer2_blockref_t *bref1 = b1;
884 	const hammer2_blockref_t *bref2 = b2;
885 	if (bref1->key < bref2->key)
886 		return(-1);
887 	if (bref1->key > bref2->key)
888 		return(1);
889 	return 0;
890 }
891