xref: /linux/net/ceph/osdmap.c (revision fcbf68d32ff732b78122690e862d260b000e19e2)
1 // SPDX-License-Identifier: GPL-2.0
2 
3 #include <linux/ceph/ceph_debug.h>
4 
5 #include <linux/module.h>
6 #include <linux/slab.h>
7 
8 #include <linux/ceph/libceph.h>
9 #include <linux/ceph/osdmap.h>
10 #include <linux/ceph/decode.h>
11 #include <linux/crush/hash.h>
12 #include <linux/crush/mapper.h>
13 
14 static __printf(2, 3)
osdmap_info(const struct ceph_osdmap * map,const char * fmt,...)15 void osdmap_info(const struct ceph_osdmap *map, const char *fmt, ...)
16 {
17 	struct va_format vaf;
18 	va_list args;
19 
20 	va_start(args, fmt);
21 	vaf.fmt = fmt;
22 	vaf.va = &args;
23 
24 	printk(KERN_INFO "%s (%pU e%u): %pV", KBUILD_MODNAME, &map->fsid,
25 	       map->epoch, &vaf);
26 
27 	va_end(args);
28 }
29 
ceph_osdmap_state_str(char * str,int len,u32 state)30 char *ceph_osdmap_state_str(char *str, int len, u32 state)
31 {
32 	if (!len)
33 		return str;
34 
35 	if ((state & CEPH_OSD_EXISTS) && (state & CEPH_OSD_UP))
36 		snprintf(str, len, "exists, up");
37 	else if (state & CEPH_OSD_EXISTS)
38 		snprintf(str, len, "exists");
39 	else if (state & CEPH_OSD_UP)
40 		snprintf(str, len, "up");
41 	else
42 		snprintf(str, len, "doesn't exist");
43 
44 	return str;
45 }
46 
47 /* maps */
48 
calc_bits_of(unsigned int t)49 static int calc_bits_of(unsigned int t)
50 {
51 	int b = 0;
52 	while (t) {
53 		t = t >> 1;
54 		b++;
55 	}
56 	return b;
57 }
58 
59 /*
60  * the foo_mask is the smallest value 2^n-1 that is >= foo.
61  */
calc_pg_masks(struct ceph_pg_pool_info * pi)62 static void calc_pg_masks(struct ceph_pg_pool_info *pi)
63 {
64 	pi->pg_num_mask = (1 << calc_bits_of(pi->pg_num-1)) - 1;
65 	pi->pgp_num_mask = (1 << calc_bits_of(pi->pgp_num-1)) - 1;
66 }
67 
68 /*
69  * decode crush map
70  */
crush_decode_uniform_bucket(void ** p,void * end,struct crush_bucket_uniform * b)71 static int crush_decode_uniform_bucket(void **p, void *end,
72 				       struct crush_bucket_uniform *b)
73 {
74 	dout("crush_decode_uniform_bucket %p to %p\n", *p, end);
75 	ceph_decode_32_safe(p, end, b->item_weight, bad);
76 	return 0;
77 bad:
78 	return -EINVAL;
79 }
80 
crush_decode_list_bucket(void ** p,void * end,struct crush_bucket_list * b)81 static int crush_decode_list_bucket(void **p, void *end,
82 				    struct crush_bucket_list *b)
83 {
84 	int j;
85 	dout("crush_decode_list_bucket %p to %p\n", *p, end);
86 	b->item_weights = kcalloc(b->h.size, sizeof(u32), GFP_NOFS);
87 	if (b->item_weights == NULL)
88 		return -ENOMEM;
89 	b->sum_weights = kcalloc(b->h.size, sizeof(u32), GFP_NOFS);
90 	if (b->sum_weights == NULL)
91 		return -ENOMEM;
92 	ceph_decode_need(p, end, 2 * b->h.size * sizeof(u32), bad);
93 	for (j = 0; j < b->h.size; j++) {
94 		b->item_weights[j] = ceph_decode_32(p);
95 		b->sum_weights[j] = ceph_decode_32(p);
96 	}
97 	return 0;
98 bad:
99 	return -EINVAL;
100 }
101 
crush_decode_tree_bucket(void ** p,void * end,struct crush_bucket_tree * b)102 static int crush_decode_tree_bucket(void **p, void *end,
103 				    struct crush_bucket_tree *b)
104 {
105 	int j;
106 	dout("crush_decode_tree_bucket %p to %p\n", *p, end);
107 	ceph_decode_8_safe(p, end, b->num_nodes, bad);
108 	b->node_weights = kcalloc(b->num_nodes, sizeof(u32), GFP_NOFS);
109 	if (b->node_weights == NULL)
110 		return -ENOMEM;
111 	ceph_decode_need(p, end, b->num_nodes * sizeof(u32), bad);
112 	for (j = 0; j < b->num_nodes; j++)
113 		b->node_weights[j] = ceph_decode_32(p);
114 	return 0;
115 bad:
116 	return -EINVAL;
117 }
118 
crush_decode_straw_bucket(void ** p,void * end,struct crush_bucket_straw * b)119 static int crush_decode_straw_bucket(void **p, void *end,
120 				     struct crush_bucket_straw *b)
121 {
122 	int j;
123 	dout("crush_decode_straw_bucket %p to %p\n", *p, end);
124 	b->item_weights = kcalloc(b->h.size, sizeof(u32), GFP_NOFS);
125 	if (b->item_weights == NULL)
126 		return -ENOMEM;
127 	b->straws = kcalloc(b->h.size, sizeof(u32), GFP_NOFS);
128 	if (b->straws == NULL)
129 		return -ENOMEM;
130 	ceph_decode_need(p, end, 2 * b->h.size * sizeof(u32), bad);
131 	for (j = 0; j < b->h.size; j++) {
132 		b->item_weights[j] = ceph_decode_32(p);
133 		b->straws[j] = ceph_decode_32(p);
134 	}
135 	return 0;
136 bad:
137 	return -EINVAL;
138 }
139 
crush_decode_straw2_bucket(void ** p,void * end,struct crush_bucket_straw2 * b)140 static int crush_decode_straw2_bucket(void **p, void *end,
141 				      struct crush_bucket_straw2 *b)
142 {
143 	int j;
144 	dout("crush_decode_straw2_bucket %p to %p\n", *p, end);
145 	b->item_weights = kcalloc(b->h.size, sizeof(u32), GFP_NOFS);
146 	if (b->item_weights == NULL)
147 		return -ENOMEM;
148 	ceph_decode_need(p, end, b->h.size * sizeof(u32), bad);
149 	for (j = 0; j < b->h.size; j++)
150 		b->item_weights[j] = ceph_decode_32(p);
151 	return 0;
152 bad:
153 	return -EINVAL;
154 }
155 
156 struct crush_name_node {
157 	struct rb_node cn_node;
158 	int cn_id;
159 	char cn_name[];
160 };
161 
alloc_crush_name(size_t name_len)162 static struct crush_name_node *alloc_crush_name(size_t name_len)
163 {
164 	struct crush_name_node *cn;
165 
166 	cn = kmalloc(sizeof(*cn) + name_len + 1, GFP_NOIO);
167 	if (!cn)
168 		return NULL;
169 
170 	RB_CLEAR_NODE(&cn->cn_node);
171 	return cn;
172 }
173 
free_crush_name(struct crush_name_node * cn)174 static void free_crush_name(struct crush_name_node *cn)
175 {
176 	WARN_ON(!RB_EMPTY_NODE(&cn->cn_node));
177 
178 	kfree(cn);
179 }
180 
DEFINE_RB_FUNCS(crush_name,struct crush_name_node,cn_id,cn_node)181 DEFINE_RB_FUNCS(crush_name, struct crush_name_node, cn_id, cn_node)
182 
183 static int decode_crush_names(void **p, void *end, struct rb_root *root)
184 {
185 	u32 n;
186 
187 	ceph_decode_32_safe(p, end, n, e_inval);
188 	while (n--) {
189 		struct crush_name_node *cn;
190 		int id;
191 		u32 name_len;
192 
193 		ceph_decode_32_safe(p, end, id, e_inval);
194 		ceph_decode_32_safe(p, end, name_len, e_inval);
195 		ceph_decode_need(p, end, name_len, e_inval);
196 
197 		cn = alloc_crush_name(name_len);
198 		if (!cn)
199 			return -ENOMEM;
200 
201 		cn->cn_id = id;
202 		memcpy(cn->cn_name, *p, name_len);
203 		cn->cn_name[name_len] = '\0';
204 		*p += name_len;
205 
206 		if (!__insert_crush_name(root, cn)) {
207 			free_crush_name(cn);
208 			return -EEXIST;
209 		}
210 	}
211 
212 	return 0;
213 
214 e_inval:
215 	return -EINVAL;
216 }
217 
clear_crush_names(struct rb_root * root)218 void clear_crush_names(struct rb_root *root)
219 {
220 	while (!RB_EMPTY_ROOT(root)) {
221 		struct crush_name_node *cn =
222 		    rb_entry(rb_first(root), struct crush_name_node, cn_node);
223 
224 		erase_crush_name(root, cn);
225 		free_crush_name(cn);
226 	}
227 }
228 
alloc_choose_arg_map(void)229 static struct crush_choose_arg_map *alloc_choose_arg_map(void)
230 {
231 	struct crush_choose_arg_map *arg_map;
232 
233 	arg_map = kzalloc_obj(*arg_map, GFP_NOIO);
234 	if (!arg_map)
235 		return NULL;
236 
237 	RB_CLEAR_NODE(&arg_map->node);
238 	return arg_map;
239 }
240 
free_choose_arg_map(struct crush_choose_arg_map * arg_map)241 static void free_choose_arg_map(struct crush_choose_arg_map *arg_map)
242 {
243 	int i, j;
244 
245 	if (!arg_map)
246 		return;
247 
248 	WARN_ON(!RB_EMPTY_NODE(&arg_map->node));
249 
250 	if (arg_map->args) {
251 		for (i = 0; i < arg_map->size; i++) {
252 			struct crush_choose_arg *arg = &arg_map->args[i];
253 			if (arg->weight_set) {
254 				for (j = 0; j < arg->weight_set_size; j++)
255 					kfree(arg->weight_set[j].weights);
256 				kfree(arg->weight_set);
257 			}
258 			kfree(arg->ids);
259 		}
260 		kfree(arg_map->args);
261 	}
262 	kfree(arg_map);
263 }
264 
265 DEFINE_RB_FUNCS(choose_arg_map, struct crush_choose_arg_map, choose_args_index,
266 		node);
267 
clear_choose_args(struct crush_map * c)268 void clear_choose_args(struct crush_map *c)
269 {
270 	while (!RB_EMPTY_ROOT(&c->choose_args)) {
271 		struct crush_choose_arg_map *arg_map =
272 		    rb_entry(rb_first(&c->choose_args),
273 			     struct crush_choose_arg_map, node);
274 
275 		erase_choose_arg_map(&c->choose_args, arg_map);
276 		free_choose_arg_map(arg_map);
277 	}
278 }
279 
decode_array_32_alloc(void ** p,void * end,u32 * plen)280 static u32 *decode_array_32_alloc(void **p, void *end, u32 *plen)
281 {
282 	u32 *a = NULL;
283 	u32 len;
284 	int ret;
285 
286 	ceph_decode_32_safe(p, end, len, e_inval);
287 	if (len) {
288 		u32 i;
289 
290 		a = kmalloc_array(len, sizeof(u32), GFP_NOIO);
291 		if (!a) {
292 			ret = -ENOMEM;
293 			goto fail;
294 		}
295 
296 		ceph_decode_need(p, end, len * sizeof(u32), e_inval);
297 		for (i = 0; i < len; i++)
298 			a[i] = ceph_decode_32(p);
299 	}
300 
301 	*plen = len;
302 	return a;
303 
304 e_inval:
305 	ret = -EINVAL;
306 fail:
307 	kfree(a);
308 	return ERR_PTR(ret);
309 }
310 
311 /*
312  * Assumes @arg is zero-initialized.
313  */
decode_choose_arg(void ** p,void * end,struct crush_choose_arg * arg)314 static int decode_choose_arg(void **p, void *end, struct crush_choose_arg *arg)
315 {
316 	int ret;
317 
318 	ceph_decode_32_safe(p, end, arg->weight_set_size, e_inval);
319 	if (arg->weight_set_size) {
320 		u32 i;
321 
322 		arg->weight_set = kmalloc_objs(*arg->weight_set,
323 					       arg->weight_set_size, GFP_NOIO);
324 		if (!arg->weight_set)
325 			return -ENOMEM;
326 
327 		for (i = 0; i < arg->weight_set_size; i++) {
328 			struct crush_weight_set *w = &arg->weight_set[i];
329 
330 			w->weights = decode_array_32_alloc(p, end, &w->size);
331 			if (IS_ERR(w->weights)) {
332 				ret = PTR_ERR(w->weights);
333 				w->weights = NULL;
334 				return ret;
335 			}
336 		}
337 	}
338 
339 	arg->ids = decode_array_32_alloc(p, end, &arg->ids_size);
340 	if (IS_ERR(arg->ids)) {
341 		ret = PTR_ERR(arg->ids);
342 		arg->ids = NULL;
343 		return ret;
344 	}
345 
346 	return 0;
347 
348 e_inval:
349 	return -EINVAL;
350 }
351 
decode_choose_args(void ** p,void * end,struct crush_map * c)352 static int decode_choose_args(void **p, void *end, struct crush_map *c)
353 {
354 	struct crush_choose_arg_map *arg_map = NULL;
355 	u32 num_choose_arg_maps, num_buckets;
356 	int ret;
357 
358 	ceph_decode_32_safe(p, end, num_choose_arg_maps, e_inval);
359 	while (num_choose_arg_maps--) {
360 		arg_map = alloc_choose_arg_map();
361 		if (!arg_map) {
362 			ret = -ENOMEM;
363 			goto fail;
364 		}
365 
366 		ceph_decode_64_safe(p, end, arg_map->choose_args_index,
367 				    e_inval);
368 		arg_map->size = c->max_buckets;
369 		arg_map->args = kzalloc_objs(*arg_map->args, arg_map->size,
370 					     GFP_NOIO);
371 		if (!arg_map->args) {
372 			ret = -ENOMEM;
373 			goto fail;
374 		}
375 
376 		ceph_decode_32_safe(p, end, num_buckets, e_inval);
377 		while (num_buckets--) {
378 			struct crush_choose_arg *arg;
379 			u32 bucket_index;
380 
381 			ceph_decode_32_safe(p, end, bucket_index, e_inval);
382 			if (bucket_index >= arg_map->size)
383 				goto e_inval;
384 
385 			arg = &arg_map->args[bucket_index];
386 			ret = decode_choose_arg(p, end, arg);
387 			if (ret)
388 				goto fail;
389 
390 			if (arg->ids_size &&
391 			    (!c->buckets[bucket_index] ||
392 			     arg->ids_size != c->buckets[bucket_index]->size))
393 				goto e_inval;
394 		}
395 
396 		if (!__insert_choose_arg_map(&c->choose_args, arg_map)) {
397 			ret = -EEXIST;
398 			goto fail;
399 		}
400 	}
401 
402 	return 0;
403 
404 e_inval:
405 	ret = -EINVAL;
406 fail:
407 	free_choose_arg_map(arg_map);
408 	return ret;
409 }
410 
crush_finalize(struct crush_map * c)411 static void crush_finalize(struct crush_map *c)
412 {
413 	__s32 b;
414 
415 	/* Space for the array of pointers to per-bucket workspace */
416 	c->working_size = sizeof(struct crush_work) +
417 	    c->max_buckets * sizeof(struct crush_work_bucket *);
418 
419 	for (b = 0; b < c->max_buckets; b++) {
420 		if (!c->buckets[b])
421 			continue;
422 
423 		switch (c->buckets[b]->alg) {
424 		default:
425 			/*
426 			 * The base case, permutation variables and
427 			 * the pointer to the permutation array.
428 			 */
429 			c->working_size += sizeof(struct crush_work_bucket);
430 			break;
431 		}
432 		/* Every bucket has a permutation array. */
433 		c->working_size += c->buckets[b]->size * sizeof(__u32);
434 	}
435 }
436 
crush_decode(void * pbyval,void * end)437 static struct crush_map *crush_decode(void *pbyval, void *end)
438 {
439 	struct crush_map *c;
440 	int err;
441 	int i, j;
442 	void **p = &pbyval;
443 	void *start = pbyval;
444 	u32 magic;
445 
446 	dout("crush_decode %p to %p len %d\n", *p, end, (int)(end - *p));
447 
448 	c = kzalloc_obj(*c, GFP_NOFS);
449 	if (c == NULL)
450 		return ERR_PTR(-ENOMEM);
451 
452 	c->type_names = RB_ROOT;
453 	c->names = RB_ROOT;
454 	c->choose_args = RB_ROOT;
455 
456         /* set tunables to default values */
457         c->choose_local_tries = 2;
458         c->choose_local_fallback_tries = 5;
459         c->choose_total_tries = 19;
460 	c->chooseleaf_descend_once = 0;
461 
462 	ceph_decode_need(p, end, 4*sizeof(u32), bad);
463 	magic = ceph_decode_32(p);
464 	if (magic != CRUSH_MAGIC) {
465 		pr_err("crush_decode magic %x != current %x\n",
466 		       (unsigned int)magic, (unsigned int)CRUSH_MAGIC);
467 		goto bad;
468 	}
469 	c->max_buckets = ceph_decode_32(p);
470 	c->max_rules = ceph_decode_32(p);
471 	c->max_devices = ceph_decode_32(p);
472 
473 	c->buckets = kzalloc_objs(*c->buckets, c->max_buckets, GFP_NOFS);
474 	if (c->buckets == NULL)
475 		goto badmem;
476 	c->rules = kzalloc_objs(*c->rules, c->max_rules, GFP_NOFS);
477 	if (c->rules == NULL)
478 		goto badmem;
479 
480 	/* buckets */
481 	for (i = 0; i < c->max_buckets; i++) {
482 		int size = 0;
483 		u32 alg;
484 		struct crush_bucket *b;
485 
486 		ceph_decode_32_safe(p, end, alg, bad);
487 		if (alg == 0) {
488 			c->buckets[i] = NULL;
489 			continue;
490 		}
491 		dout("crush_decode bucket %d off %x %p to %p\n",
492 		     i, (int)(*p-start), *p, end);
493 
494 		switch (alg) {
495 		case CRUSH_BUCKET_UNIFORM:
496 			size = sizeof(struct crush_bucket_uniform);
497 			break;
498 		case CRUSH_BUCKET_LIST:
499 			size = sizeof(struct crush_bucket_list);
500 			break;
501 		case CRUSH_BUCKET_TREE:
502 			size = sizeof(struct crush_bucket_tree);
503 			break;
504 		case CRUSH_BUCKET_STRAW:
505 			size = sizeof(struct crush_bucket_straw);
506 			break;
507 		case CRUSH_BUCKET_STRAW2:
508 			size = sizeof(struct crush_bucket_straw2);
509 			break;
510 		default:
511 			goto bad;
512 		}
513 		BUG_ON(size == 0);
514 		b = c->buckets[i] = kzalloc(size, GFP_NOFS);
515 		if (b == NULL)
516 			goto badmem;
517 
518 		ceph_decode_need(p, end, 4*sizeof(u32), bad);
519 		b->id = ceph_decode_32(p);
520 		b->type = ceph_decode_16(p);
521 		b->alg = ceph_decode_8(p);
522 		if (b->alg != alg) {
523 			b->alg = 0;
524 			goto bad;
525 		}
526 		b->hash = ceph_decode_8(p);
527 		b->weight = ceph_decode_32(p);
528 		b->size = ceph_decode_32(p);
529 
530 		dout("crush_decode bucket size %d off %x %p to %p\n",
531 		     b->size, (int)(*p-start), *p, end);
532 
533 		b->items = kzalloc_objs(__s32, b->size, GFP_NOFS);
534 		if (b->items == NULL)
535 			goto badmem;
536 
537 		ceph_decode_need(p, end, b->size*sizeof(u32), bad);
538 		for (j = 0; j < b->size; j++)
539 			b->items[j] = ceph_decode_32(p);
540 
541 		switch (b->alg) {
542 		case CRUSH_BUCKET_UNIFORM:
543 			err = crush_decode_uniform_bucket(p, end,
544 				  (struct crush_bucket_uniform *)b);
545 			if (err < 0)
546 				goto fail;
547 			break;
548 		case CRUSH_BUCKET_LIST:
549 			err = crush_decode_list_bucket(p, end,
550 			       (struct crush_bucket_list *)b);
551 			if (err < 0)
552 				goto fail;
553 			break;
554 		case CRUSH_BUCKET_TREE:
555 			err = crush_decode_tree_bucket(p, end,
556 				(struct crush_bucket_tree *)b);
557 			if (err < 0)
558 				goto fail;
559 			break;
560 		case CRUSH_BUCKET_STRAW:
561 			err = crush_decode_straw_bucket(p, end,
562 				(struct crush_bucket_straw *)b);
563 			if (err < 0)
564 				goto fail;
565 			break;
566 		case CRUSH_BUCKET_STRAW2:
567 			err = crush_decode_straw2_bucket(p, end,
568 				(struct crush_bucket_straw2 *)b);
569 			if (err < 0)
570 				goto fail;
571 			break;
572 		}
573 	}
574 
575 	/* rules */
576 	dout("rule vec is %p\n", c->rules);
577 	for (i = 0; i < c->max_rules; i++) {
578 		u32 yes;
579 		struct crush_rule *r;
580 
581 		ceph_decode_32_safe(p, end, yes, bad);
582 		if (!yes) {
583 			dout("crush_decode NO rule %d off %x %p to %p\n",
584 			     i, (int)(*p-start), *p, end);
585 			c->rules[i] = NULL;
586 			continue;
587 		}
588 
589 		dout("crush_decode rule %d off %x %p to %p\n",
590 		     i, (int)(*p-start), *p, end);
591 
592 		/* len */
593 		ceph_decode_32_safe(p, end, yes, bad);
594 #if BITS_PER_LONG == 32
595 		if (yes > (ULONG_MAX - sizeof(*r))
596 			  / sizeof(struct crush_rule_step))
597 			goto bad;
598 #endif
599 		r = kmalloc_flex(*r, steps, yes, GFP_NOFS);
600 		if (r == NULL)
601 			goto badmem;
602 		dout(" rule %d is at %p\n", i, r);
603 		c->rules[i] = r;
604 		r->len = yes;
605 		ceph_decode_copy_safe(p, end, &r->mask, 4, bad); /* 4 u8's */
606 		ceph_decode_need(p, end, r->len*3*sizeof(u32), bad);
607 		for (j = 0; j < r->len; j++) {
608 			r->steps[j].op = ceph_decode_32(p);
609 			r->steps[j].arg1 = ceph_decode_32(p);
610 			r->steps[j].arg2 = ceph_decode_32(p);
611 		}
612 	}
613 
614 	err = decode_crush_names(p, end, &c->type_names);
615 	if (err)
616 		goto fail;
617 
618 	err = decode_crush_names(p, end, &c->names);
619 	if (err)
620 		goto fail;
621 
622 	ceph_decode_skip_map(p, end, 32, string, bad); /* rule_name_map */
623 
624         /* tunables */
625         ceph_decode_need(p, end, 3*sizeof(u32), done);
626         c->choose_local_tries = ceph_decode_32(p);
627         c->choose_local_fallback_tries =  ceph_decode_32(p);
628         c->choose_total_tries = ceph_decode_32(p);
629         dout("crush decode tunable choose_local_tries = %d\n",
630              c->choose_local_tries);
631         dout("crush decode tunable choose_local_fallback_tries = %d\n",
632              c->choose_local_fallback_tries);
633         dout("crush decode tunable choose_total_tries = %d\n",
634              c->choose_total_tries);
635 
636 	ceph_decode_need(p, end, sizeof(u32), done);
637 	c->chooseleaf_descend_once = ceph_decode_32(p);
638 	dout("crush decode tunable chooseleaf_descend_once = %d\n",
639 	     c->chooseleaf_descend_once);
640 
641 	ceph_decode_need(p, end, sizeof(u8), done);
642 	c->chooseleaf_vary_r = ceph_decode_8(p);
643 	dout("crush decode tunable chooseleaf_vary_r = %d\n",
644 	     c->chooseleaf_vary_r);
645 
646 	/* skip straw_calc_version, allowed_bucket_algs */
647 	ceph_decode_need(p, end, sizeof(u8) + sizeof(u32), done);
648 	*p += sizeof(u8) + sizeof(u32);
649 
650 	ceph_decode_need(p, end, sizeof(u8), done);
651 	c->chooseleaf_stable = ceph_decode_8(p);
652 	dout("crush decode tunable chooseleaf_stable = %d\n",
653 	     c->chooseleaf_stable);
654 
655 	if (*p != end) {
656 		/* class_map */
657 		ceph_decode_skip_map(p, end, 32, 32, bad);
658 		/* class_name */
659 		ceph_decode_skip_map(p, end, 32, string, bad);
660 		/* class_bucket */
661 		ceph_decode_skip_map_of_map(p, end, 32, 32, 32, bad);
662 	}
663 
664 	if (*p != end) {
665 		err = decode_choose_args(p, end, c);
666 		if (err)
667 			goto fail;
668 	}
669 
670 done:
671 	crush_finalize(c);
672 	dout("crush_decode success\n");
673 	return c;
674 
675 badmem:
676 	err = -ENOMEM;
677 fail:
678 	dout("crush_decode fail %d\n", err);
679 	crush_destroy(c);
680 	return ERR_PTR(err);
681 
682 bad:
683 	err = -EINVAL;
684 	goto fail;
685 }
686 
ceph_pg_compare(const struct ceph_pg * lhs,const struct ceph_pg * rhs)687 int ceph_pg_compare(const struct ceph_pg *lhs, const struct ceph_pg *rhs)
688 {
689 	if (lhs->pool < rhs->pool)
690 		return -1;
691 	if (lhs->pool > rhs->pool)
692 		return 1;
693 	if (lhs->seed < rhs->seed)
694 		return -1;
695 	if (lhs->seed > rhs->seed)
696 		return 1;
697 
698 	return 0;
699 }
700 
ceph_spg_compare(const struct ceph_spg * lhs,const struct ceph_spg * rhs)701 int ceph_spg_compare(const struct ceph_spg *lhs, const struct ceph_spg *rhs)
702 {
703 	int ret;
704 
705 	ret = ceph_pg_compare(&lhs->pgid, &rhs->pgid);
706 	if (ret)
707 		return ret;
708 
709 	if (lhs->shard < rhs->shard)
710 		return -1;
711 	if (lhs->shard > rhs->shard)
712 		return 1;
713 
714 	return 0;
715 }
716 
alloc_pg_mapping(size_t payload_len)717 static struct ceph_pg_mapping *alloc_pg_mapping(size_t payload_len)
718 {
719 	struct ceph_pg_mapping *pg;
720 
721 	pg = kmalloc(sizeof(*pg) + payload_len, GFP_NOIO);
722 	if (!pg)
723 		return NULL;
724 
725 	RB_CLEAR_NODE(&pg->node);
726 	return pg;
727 }
728 
free_pg_mapping(struct ceph_pg_mapping * pg)729 static void free_pg_mapping(struct ceph_pg_mapping *pg)
730 {
731 	WARN_ON(!RB_EMPTY_NODE(&pg->node));
732 
733 	kfree(pg);
734 }
735 
736 /*
737  * rbtree of pg_mapping for handling pg_temp (explicit mapping of pgid
738  * to a set of osds) and primary_temp (explicit primary setting)
739  */
DEFINE_RB_FUNCS2(pg_mapping,struct ceph_pg_mapping,pgid,ceph_pg_compare,RB_BYPTR,const struct ceph_pg *,node)740 DEFINE_RB_FUNCS2(pg_mapping, struct ceph_pg_mapping, pgid, ceph_pg_compare,
741 		 RB_BYPTR, const struct ceph_pg *, node)
742 
743 /*
744  * rbtree of pg pool info
745  */
746 DEFINE_RB_FUNCS(pg_pool, struct ceph_pg_pool_info, id, node)
747 
748 struct ceph_pg_pool_info *ceph_pg_pool_by_id(struct ceph_osdmap *map, u64 id)
749 {
750 	return lookup_pg_pool(&map->pg_pools, id);
751 }
752 
ceph_pg_pool_name_by_id(struct ceph_osdmap * map,u64 id)753 const char *ceph_pg_pool_name_by_id(struct ceph_osdmap *map, u64 id)
754 {
755 	struct ceph_pg_pool_info *pi;
756 
757 	if (id == CEPH_NOPOOL)
758 		return NULL;
759 
760 	if (WARN_ON_ONCE(id > (u64) INT_MAX))
761 		return NULL;
762 
763 	pi = lookup_pg_pool(&map->pg_pools, id);
764 	return pi ? pi->name : NULL;
765 }
766 EXPORT_SYMBOL(ceph_pg_pool_name_by_id);
767 
ceph_pg_poolid_by_name(struct ceph_osdmap * map,const char * name)768 int ceph_pg_poolid_by_name(struct ceph_osdmap *map, const char *name)
769 {
770 	struct rb_node *rbp;
771 
772 	for (rbp = rb_first(&map->pg_pools); rbp; rbp = rb_next(rbp)) {
773 		struct ceph_pg_pool_info *pi =
774 			rb_entry(rbp, struct ceph_pg_pool_info, node);
775 		if (pi->name && strcmp(pi->name, name) == 0)
776 			return pi->id;
777 	}
778 	return -ENOENT;
779 }
780 EXPORT_SYMBOL(ceph_pg_poolid_by_name);
781 
ceph_pg_pool_flags(struct ceph_osdmap * map,u64 id)782 u64 ceph_pg_pool_flags(struct ceph_osdmap *map, u64 id)
783 {
784 	struct ceph_pg_pool_info *pi;
785 
786 	pi = lookup_pg_pool(&map->pg_pools, id);
787 	return pi ? pi->flags : 0;
788 }
789 EXPORT_SYMBOL(ceph_pg_pool_flags);
790 
__remove_pg_pool(struct rb_root * root,struct ceph_pg_pool_info * pi)791 static void __remove_pg_pool(struct rb_root *root, struct ceph_pg_pool_info *pi)
792 {
793 	erase_pg_pool(root, pi);
794 	kfree(pi->name);
795 	kfree(pi);
796 }
797 
decode_pool(void ** p,void * end,struct ceph_pg_pool_info * pi)798 static int decode_pool(void **p, void *end, struct ceph_pg_pool_info *pi)
799 {
800 	u8 ev, cv;
801 	unsigned len, num;
802 	void *pool_end;
803 
804 	ceph_decode_need(p, end, 2 + 4, bad);
805 	ev = ceph_decode_8(p);  /* encoding version */
806 	cv = ceph_decode_8(p); /* compat version */
807 	if (ev < 5) {
808 		pr_warn("got v %d < 5 cv %d of ceph_pg_pool\n", ev, cv);
809 		return -EINVAL;
810 	}
811 	if (cv > 9) {
812 		pr_warn("got v %d cv %d > 9 of ceph_pg_pool\n", ev, cv);
813 		return -EINVAL;
814 	}
815 	len = ceph_decode_32(p);
816 	ceph_decode_need(p, end, len, bad);
817 	pool_end = *p + len;
818 
819 	ceph_decode_need(p, end, 4 + 4 + 4, bad);
820 	pi->type = ceph_decode_8(p);
821 	pi->size = ceph_decode_8(p);
822 	pi->crush_ruleset = ceph_decode_8(p);
823 	pi->object_hash = ceph_decode_8(p);
824 	pi->pg_num = ceph_decode_32(p);
825 	pi->pgp_num = ceph_decode_32(p);
826 
827 	/* lpg*, last_change, snap_seq, snap_epoch */
828 	ceph_decode_skip_n(p, end, 8 + 4 + 8 + 4, bad);
829 
830 	/* skip snaps */
831 	ceph_decode_32_safe(p, end, num, bad);
832 	while (num--) {
833 		/* snapid key, pool snap (with versions) */
834 		ceph_decode_skip_n(p, end, 8 + 2, bad);
835 		ceph_decode_skip_string(p, end, bad);
836 	}
837 
838 	/* removed_snaps */
839 	ceph_decode_skip_map(p, end, 64, 64, bad);
840 
841 	ceph_decode_need(p, end, 8 + 8 + 4, bad);
842 	*p += 8;  /* skip auid */
843 	pi->flags = ceph_decode_64(p);
844 	*p += 4;  /* skip crash_replay_interval */
845 
846 	if (ev >= 7)
847 		ceph_decode_8_safe(p, end, pi->min_size, bad);
848 	else
849 		pi->min_size = pi->size - pi->size / 2;
850 
851 	if (ev >= 8)
852 		/* quota_max_* */
853 		ceph_decode_skip_n(p, end, 8 + 8, bad);
854 
855 	if (ev >= 9) {
856 		/* tiers */
857 		ceph_decode_skip_set(p, end, 64, bad);
858 
859 		ceph_decode_need(p, end, 8 + 1 + 8 + 8, bad);
860 		*p += 8;  /* skip tier_of */
861 		*p += 1;  /* skip cache_mode */
862 		pi->read_tier = ceph_decode_64(p);
863 		pi->write_tier = ceph_decode_64(p);
864 	} else {
865 		pi->read_tier = -1;
866 		pi->write_tier = -1;
867 	}
868 
869 	if (ev >= 10)
870 		/* properties */
871 		ceph_decode_skip_map(p, end, string, string, bad);
872 
873 	if (ev >= 11) {
874 		/* hit_set_params (with versions) */
875 		ceph_decode_skip_n(p, end, 2, bad);
876 		ceph_decode_skip_string(p, end, bad);
877 
878 		/* hit_set_period, hit_set_count */
879 		ceph_decode_skip_n(p, end, 4 + 4, bad);
880 	}
881 
882 	if (ev >= 12)
883 		/* stripe_width */
884 		ceph_decode_skip_32(p, end, bad);
885 
886 	if (ev >= 13)
887 		/* target_max_*, cache_target_*, cache_min_* */
888 		ceph_decode_skip_n(p, end, 16 + 8 + 8, bad);
889 
890 	if (ev >= 14)
891 		/* erasure_code_profile */
892 		ceph_decode_skip_string(p, end, bad);
893 
894 	/*
895 	 * last_force_op_resend_preluminous, will be overridden if the
896 	 * map was encoded with RESEND_ON_SPLIT
897 	 */
898 	if (ev >= 15)
899 		ceph_decode_32_safe(p, end, pi->last_force_request_resend, bad);
900 	else
901 		pi->last_force_request_resend = 0;
902 
903 	if (ev >= 16)
904 		/* min_read_recency_for_promote */
905 		ceph_decode_skip_32(p, end, bad);
906 
907 	if (ev >= 17)
908 		/* expected_num_objects */
909 		ceph_decode_skip_64(p, end, bad);
910 
911 	if (ev >= 19)
912 		/* cache_target_dirty_high_ratio_micro */
913 		ceph_decode_skip_32(p, end, bad);
914 
915 	if (ev >= 20)
916 		/* min_write_recency_for_promote */
917 		ceph_decode_skip_32(p, end, bad);
918 
919 	if (ev >= 21)
920 		/* use_gmt_hitset */
921 		ceph_decode_skip_8(p, end, bad);
922 
923 	if (ev >= 22)
924 		/* fast_read */
925 		ceph_decode_skip_8(p, end, bad);
926 
927 	if (ev >= 23)
928 		/* hit_set_grade_decay_rate, hit_set_search_last_n */
929 		ceph_decode_skip_n(p, end, 4 + 4, bad);
930 
931 	if (ev >= 24) {
932 		/* opts (with versions) */
933 		ceph_decode_skip_n(p, end, 2, bad);
934 		ceph_decode_skip_string(p, end, bad);
935 	}
936 
937 	if (ev >= 25)
938 		ceph_decode_32_safe(p, end, pi->last_force_request_resend, bad);
939 
940 	/* ignore the rest */
941 
942 	*p = pool_end;
943 	calc_pg_masks(pi);
944 	return 0;
945 
946 bad:
947 	return -EINVAL;
948 }
949 
decode_pool_names(void ** p,void * end,struct ceph_osdmap * map)950 static int decode_pool_names(void **p, void *end, struct ceph_osdmap *map)
951 {
952 	struct ceph_pg_pool_info *pi;
953 	u32 num, len;
954 	u64 pool;
955 
956 	ceph_decode_32_safe(p, end, num, bad);
957 	dout(" %d pool names\n", num);
958 	while (num--) {
959 		ceph_decode_64_safe(p, end, pool, bad);
960 		ceph_decode_32_safe(p, end, len, bad);
961 		dout("  pool %llu len %d\n", pool, len);
962 		ceph_decode_need(p, end, len, bad);
963 		pi = lookup_pg_pool(&map->pg_pools, pool);
964 		if (pi) {
965 			char *name = kstrndup(*p, len, GFP_NOFS);
966 
967 			if (!name)
968 				return -ENOMEM;
969 			kfree(pi->name);
970 			pi->name = name;
971 			dout("  name is %s\n", pi->name);
972 		}
973 		*p += len;
974 	}
975 	return 0;
976 
977 bad:
978 	return -EINVAL;
979 }
980 
981 /*
982  * CRUSH workspaces
983  *
984  * workspace_manager framework borrowed from fs/btrfs/compression.c.
985  * Two simplifications: there is only one type of workspace and there
986  * is always at least one workspace.
987  */
alloc_workspace(const struct crush_map * c)988 static struct crush_work *alloc_workspace(const struct crush_map *c)
989 {
990 	struct crush_work *work;
991 	size_t work_size;
992 
993 	WARN_ON(!c->working_size);
994 	work_size = crush_work_size(c, CEPH_PG_MAX_SIZE);
995 	dout("%s work_size %zu bytes\n", __func__, work_size);
996 
997 	work = kvmalloc(work_size, GFP_NOIO);
998 	if (!work)
999 		return NULL;
1000 
1001 	INIT_LIST_HEAD(&work->item);
1002 	crush_init_workspace(c, work);
1003 	return work;
1004 }
1005 
free_workspace(struct crush_work * work)1006 static void free_workspace(struct crush_work *work)
1007 {
1008 	WARN_ON(!list_empty(&work->item));
1009 	kvfree(work);
1010 }
1011 
init_workspace_manager(struct workspace_manager * wsm)1012 static void init_workspace_manager(struct workspace_manager *wsm)
1013 {
1014 	INIT_LIST_HEAD(&wsm->idle_ws);
1015 	spin_lock_init(&wsm->ws_lock);
1016 	atomic_set(&wsm->total_ws, 0);
1017 	wsm->free_ws = 0;
1018 	init_waitqueue_head(&wsm->ws_wait);
1019 }
1020 
add_initial_workspace(struct workspace_manager * wsm,struct crush_work * work)1021 static void add_initial_workspace(struct workspace_manager *wsm,
1022 				  struct crush_work *work)
1023 {
1024 	WARN_ON(!list_empty(&wsm->idle_ws));
1025 
1026 	list_add(&work->item, &wsm->idle_ws);
1027 	atomic_set(&wsm->total_ws, 1);
1028 	wsm->free_ws = 1;
1029 }
1030 
cleanup_workspace_manager(struct workspace_manager * wsm)1031 static void cleanup_workspace_manager(struct workspace_manager *wsm)
1032 {
1033 	struct crush_work *work;
1034 
1035 	while (!list_empty(&wsm->idle_ws)) {
1036 		work = list_first_entry(&wsm->idle_ws, struct crush_work,
1037 					item);
1038 		list_del_init(&work->item);
1039 		free_workspace(work);
1040 	}
1041 	atomic_set(&wsm->total_ws, 0);
1042 	wsm->free_ws = 0;
1043 }
1044 
1045 /*
1046  * Finds an available workspace or allocates a new one.  If it's not
1047  * possible to allocate a new one, waits until there is one.
1048  */
get_workspace(struct workspace_manager * wsm,const struct crush_map * c)1049 static struct crush_work *get_workspace(struct workspace_manager *wsm,
1050 					const struct crush_map *c)
1051 {
1052 	struct crush_work *work;
1053 	int cpus = num_online_cpus();
1054 
1055 again:
1056 	spin_lock(&wsm->ws_lock);
1057 	if (!list_empty(&wsm->idle_ws)) {
1058 		work = list_first_entry(&wsm->idle_ws, struct crush_work,
1059 					item);
1060 		list_del_init(&work->item);
1061 		wsm->free_ws--;
1062 		spin_unlock(&wsm->ws_lock);
1063 		return work;
1064 
1065 	}
1066 	if (atomic_read(&wsm->total_ws) > cpus) {
1067 		DEFINE_WAIT(wait);
1068 
1069 		spin_unlock(&wsm->ws_lock);
1070 		prepare_to_wait(&wsm->ws_wait, &wait, TASK_UNINTERRUPTIBLE);
1071 		if (atomic_read(&wsm->total_ws) > cpus && !wsm->free_ws)
1072 			schedule();
1073 		finish_wait(&wsm->ws_wait, &wait);
1074 		goto again;
1075 	}
1076 	atomic_inc(&wsm->total_ws);
1077 	spin_unlock(&wsm->ws_lock);
1078 
1079 	work = alloc_workspace(c);
1080 	if (!work) {
1081 		atomic_dec(&wsm->total_ws);
1082 		wake_up(&wsm->ws_wait);
1083 
1084 		/*
1085 		 * Do not return the error but go back to waiting.  We
1086 		 * have the initial workspace and the CRUSH computation
1087 		 * time is bounded so we will get it eventually.
1088 		 */
1089 		WARN_ON(atomic_read(&wsm->total_ws) < 1);
1090 		goto again;
1091 	}
1092 	return work;
1093 }
1094 
1095 /*
1096  * Puts a workspace back on the list or frees it if we have enough
1097  * idle ones sitting around.
1098  */
put_workspace(struct workspace_manager * wsm,struct crush_work * work)1099 static void put_workspace(struct workspace_manager *wsm,
1100 			  struct crush_work *work)
1101 {
1102 	spin_lock(&wsm->ws_lock);
1103 	if (wsm->free_ws <= num_online_cpus()) {
1104 		list_add(&work->item, &wsm->idle_ws);
1105 		wsm->free_ws++;
1106 		spin_unlock(&wsm->ws_lock);
1107 		goto wake;
1108 	}
1109 	spin_unlock(&wsm->ws_lock);
1110 
1111 	free_workspace(work);
1112 	atomic_dec(&wsm->total_ws);
1113 wake:
1114 	if (wq_has_sleeper(&wsm->ws_wait))
1115 		wake_up(&wsm->ws_wait);
1116 }
1117 
1118 /*
1119  * osd map
1120  */
ceph_osdmap_alloc(void)1121 struct ceph_osdmap *ceph_osdmap_alloc(void)
1122 {
1123 	struct ceph_osdmap *map;
1124 
1125 	map = kzalloc_obj(*map, GFP_NOIO);
1126 	if (!map)
1127 		return NULL;
1128 
1129 	map->pg_pools = RB_ROOT;
1130 	map->pool_max = -1;
1131 	map->pg_temp = RB_ROOT;
1132 	map->primary_temp = RB_ROOT;
1133 	map->pg_upmap = RB_ROOT;
1134 	map->pg_upmap_items = RB_ROOT;
1135 
1136 	init_workspace_manager(&map->crush_wsm);
1137 
1138 	return map;
1139 }
1140 
ceph_osdmap_destroy(struct ceph_osdmap * map)1141 void ceph_osdmap_destroy(struct ceph_osdmap *map)
1142 {
1143 	dout("osdmap_destroy %p\n", map);
1144 
1145 	if (map->crush)
1146 		crush_destroy(map->crush);
1147 	cleanup_workspace_manager(&map->crush_wsm);
1148 
1149 	while (!RB_EMPTY_ROOT(&map->pg_temp)) {
1150 		struct ceph_pg_mapping *pg =
1151 			rb_entry(rb_first(&map->pg_temp),
1152 				 struct ceph_pg_mapping, node);
1153 		erase_pg_mapping(&map->pg_temp, pg);
1154 		free_pg_mapping(pg);
1155 	}
1156 	while (!RB_EMPTY_ROOT(&map->primary_temp)) {
1157 		struct ceph_pg_mapping *pg =
1158 			rb_entry(rb_first(&map->primary_temp),
1159 				 struct ceph_pg_mapping, node);
1160 		erase_pg_mapping(&map->primary_temp, pg);
1161 		free_pg_mapping(pg);
1162 	}
1163 	while (!RB_EMPTY_ROOT(&map->pg_upmap)) {
1164 		struct ceph_pg_mapping *pg =
1165 			rb_entry(rb_first(&map->pg_upmap),
1166 				 struct ceph_pg_mapping, node);
1167 		rb_erase(&pg->node, &map->pg_upmap);
1168 		kfree(pg);
1169 	}
1170 	while (!RB_EMPTY_ROOT(&map->pg_upmap_items)) {
1171 		struct ceph_pg_mapping *pg =
1172 			rb_entry(rb_first(&map->pg_upmap_items),
1173 				 struct ceph_pg_mapping, node);
1174 		rb_erase(&pg->node, &map->pg_upmap_items);
1175 		kfree(pg);
1176 	}
1177 	while (!RB_EMPTY_ROOT(&map->pg_pools)) {
1178 		struct ceph_pg_pool_info *pi =
1179 			rb_entry(rb_first(&map->pg_pools),
1180 				 struct ceph_pg_pool_info, node);
1181 		__remove_pg_pool(&map->pg_pools, pi);
1182 	}
1183 	kvfree(map->osd_state);
1184 	kvfree(map->osd_weight);
1185 	kvfree(map->osd_addr);
1186 	kvfree(map->osd_primary_affinity);
1187 	kfree(map);
1188 }
1189 
1190 /*
1191  * Adjust max_osd value, (re)allocate arrays.
1192  *
1193  * The new elements are properly initialized.
1194  */
osdmap_set_max_osd(struct ceph_osdmap * map,u32 max)1195 static int osdmap_set_max_osd(struct ceph_osdmap *map, u32 max)
1196 {
1197 	u32 *state;
1198 	u32 *weight;
1199 	struct ceph_entity_addr *addr;
1200 	u32 to_copy;
1201 	int i;
1202 
1203 	dout("%s old %u new %u\n", __func__, map->max_osd, max);
1204 	if (max == map->max_osd)
1205 		return 0;
1206 
1207 	state = kvmalloc(array_size(max, sizeof(*state)), GFP_NOFS);
1208 	weight = kvmalloc(array_size(max, sizeof(*weight)), GFP_NOFS);
1209 	addr = kvmalloc(array_size(max, sizeof(*addr)), GFP_NOFS);
1210 	if (!state || !weight || !addr) {
1211 		kvfree(state);
1212 		kvfree(weight);
1213 		kvfree(addr);
1214 		return -ENOMEM;
1215 	}
1216 
1217 	to_copy = min(map->max_osd, max);
1218 	if (map->osd_state) {
1219 		memcpy(state, map->osd_state, to_copy * sizeof(*state));
1220 		memcpy(weight, map->osd_weight, to_copy * sizeof(*weight));
1221 		memcpy(addr, map->osd_addr, to_copy * sizeof(*addr));
1222 		kvfree(map->osd_state);
1223 		kvfree(map->osd_weight);
1224 		kvfree(map->osd_addr);
1225 	}
1226 
1227 	map->osd_state = state;
1228 	map->osd_weight = weight;
1229 	map->osd_addr = addr;
1230 	for (i = map->max_osd; i < max; i++) {
1231 		map->osd_state[i] = 0;
1232 		map->osd_weight[i] = CEPH_OSD_OUT;
1233 		memset(map->osd_addr + i, 0, sizeof(*map->osd_addr));
1234 	}
1235 
1236 	if (map->osd_primary_affinity) {
1237 		u32 *affinity;
1238 
1239 		affinity = kvmalloc(array_size(max, sizeof(*affinity)),
1240 					 GFP_NOFS);
1241 		if (!affinity)
1242 			return -ENOMEM;
1243 
1244 		memcpy(affinity, map->osd_primary_affinity,
1245 		       to_copy * sizeof(*affinity));
1246 		kvfree(map->osd_primary_affinity);
1247 
1248 		map->osd_primary_affinity = affinity;
1249 		for (i = map->max_osd; i < max; i++)
1250 			map->osd_primary_affinity[i] =
1251 			    CEPH_OSD_DEFAULT_PRIMARY_AFFINITY;
1252 	}
1253 
1254 	map->max_osd = max;
1255 
1256 	return 0;
1257 }
1258 
osdmap_set_crush(struct ceph_osdmap * map,struct crush_map * crush)1259 static int osdmap_set_crush(struct ceph_osdmap *map, struct crush_map *crush)
1260 {
1261 	struct crush_work *work;
1262 
1263 	if (IS_ERR(crush))
1264 		return PTR_ERR(crush);
1265 
1266 	work = alloc_workspace(crush);
1267 	if (!work) {
1268 		crush_destroy(crush);
1269 		return -ENOMEM;
1270 	}
1271 
1272 	if (map->crush)
1273 		crush_destroy(map->crush);
1274 	cleanup_workspace_manager(&map->crush_wsm);
1275 	map->crush = crush;
1276 	add_initial_workspace(&map->crush_wsm, work);
1277 	return 0;
1278 }
1279 
1280 #define OSDMAP_WRAPPER_COMPAT_VER	7
1281 #define OSDMAP_CLIENT_DATA_COMPAT_VER	1
1282 
1283 /*
1284  * Return 0 or error.  On success, *v is set to 0 for old (v6) osdmaps,
1285  * to struct_v of the client_data section for new (v7 and above)
1286  * osdmaps.
1287  */
get_osdmap_client_data_v(void ** p,void * end,const char * prefix,u8 * v)1288 static int get_osdmap_client_data_v(void **p, void *end,
1289 				    const char *prefix, u8 *v)
1290 {
1291 	u8 struct_v;
1292 
1293 	ceph_decode_8_safe(p, end, struct_v, e_inval);
1294 	if (struct_v >= 7) {
1295 		u8 struct_compat;
1296 
1297 		ceph_decode_8_safe(p, end, struct_compat, e_inval);
1298 		if (struct_compat > OSDMAP_WRAPPER_COMPAT_VER) {
1299 			pr_warn("got v %d cv %d > %d of %s ceph_osdmap\n",
1300 				struct_v, struct_compat,
1301 				OSDMAP_WRAPPER_COMPAT_VER, prefix);
1302 			return -EINVAL;
1303 		}
1304 		*p += 4; /* ignore wrapper struct_len */
1305 
1306 		ceph_decode_8_safe(p, end, struct_v, e_inval);
1307 		ceph_decode_8_safe(p, end, struct_compat, e_inval);
1308 		if (struct_compat > OSDMAP_CLIENT_DATA_COMPAT_VER) {
1309 			pr_warn("got v %d cv %d > %d of %s ceph_osdmap client data\n",
1310 				struct_v, struct_compat,
1311 				OSDMAP_CLIENT_DATA_COMPAT_VER, prefix);
1312 			return -EINVAL;
1313 		}
1314 		*p += 4; /* ignore client data struct_len */
1315 	} else {
1316 		u16 version;
1317 
1318 		*p -= 1;
1319 		ceph_decode_16_safe(p, end, version, e_inval);
1320 		if (version < 6) {
1321 			pr_warn("got v %d < 6 of %s ceph_osdmap\n",
1322 				version, prefix);
1323 			return -EINVAL;
1324 		}
1325 
1326 		/* old osdmap encoding */
1327 		struct_v = 0;
1328 	}
1329 
1330 	*v = struct_v;
1331 	return 0;
1332 
1333 e_inval:
1334 	return -EINVAL;
1335 }
1336 
__decode_pools(void ** p,void * end,struct ceph_osdmap * map,bool incremental)1337 static int __decode_pools(void **p, void *end, struct ceph_osdmap *map,
1338 			  bool incremental)
1339 {
1340 	u32 n;
1341 
1342 	ceph_decode_32_safe(p, end, n, e_inval);
1343 	while (n--) {
1344 		struct ceph_pg_pool_info *pi;
1345 		u64 pool;
1346 		int ret;
1347 
1348 		ceph_decode_64_safe(p, end, pool, e_inval);
1349 
1350 		pi = lookup_pg_pool(&map->pg_pools, pool);
1351 		if (!incremental || !pi) {
1352 			pi = kzalloc_obj(*pi, GFP_NOFS);
1353 			if (!pi)
1354 				return -ENOMEM;
1355 
1356 			RB_CLEAR_NODE(&pi->node);
1357 			pi->id = pool;
1358 
1359 			if (!__insert_pg_pool(&map->pg_pools, pi)) {
1360 				kfree(pi);
1361 				return -EEXIST;
1362 			}
1363 		}
1364 
1365 		ret = decode_pool(p, end, pi);
1366 		if (ret)
1367 			return ret;
1368 	}
1369 
1370 	return 0;
1371 
1372 e_inval:
1373 	return -EINVAL;
1374 }
1375 
decode_pools(void ** p,void * end,struct ceph_osdmap * map)1376 static int decode_pools(void **p, void *end, struct ceph_osdmap *map)
1377 {
1378 	return __decode_pools(p, end, map, false);
1379 }
1380 
decode_new_pools(void ** p,void * end,struct ceph_osdmap * map)1381 static int decode_new_pools(void **p, void *end, struct ceph_osdmap *map)
1382 {
1383 	return __decode_pools(p, end, map, true);
1384 }
1385 
1386 typedef struct ceph_pg_mapping *(*decode_mapping_fn_t)(void **, void *, bool);
1387 
decode_pg_mapping(void ** p,void * end,struct rb_root * mapping_root,decode_mapping_fn_t fn,bool incremental)1388 static int decode_pg_mapping(void **p, void *end, struct rb_root *mapping_root,
1389 			     decode_mapping_fn_t fn, bool incremental)
1390 {
1391 	u32 n;
1392 
1393 	WARN_ON(!incremental && !fn);
1394 
1395 	ceph_decode_32_safe(p, end, n, e_inval);
1396 	while (n--) {
1397 		struct ceph_pg_mapping *pg;
1398 		struct ceph_pg pgid;
1399 		int ret;
1400 
1401 		ret = ceph_decode_pgid(p, end, &pgid);
1402 		if (ret)
1403 			return ret;
1404 
1405 		pg = lookup_pg_mapping(mapping_root, &pgid);
1406 		if (pg) {
1407 			WARN_ON(!incremental);
1408 			erase_pg_mapping(mapping_root, pg);
1409 			free_pg_mapping(pg);
1410 		}
1411 
1412 		if (fn) {
1413 			pg = fn(p, end, incremental);
1414 			if (IS_ERR(pg))
1415 				return PTR_ERR(pg);
1416 
1417 			if (pg) {
1418 				pg->pgid = pgid; /* struct */
1419 				insert_pg_mapping(mapping_root, pg);
1420 			}
1421 		}
1422 	}
1423 
1424 	return 0;
1425 
1426 e_inval:
1427 	return -EINVAL;
1428 }
1429 
__decode_pg_temp(void ** p,void * end,bool incremental)1430 static struct ceph_pg_mapping *__decode_pg_temp(void **p, void *end,
1431 						bool incremental)
1432 {
1433 	struct ceph_pg_mapping *pg;
1434 	u32 len, i;
1435 
1436 	ceph_decode_32_safe(p, end, len, e_inval);
1437 	if (len == 0 && incremental)
1438 		return NULL;	/* new_pg_temp: [] to remove */
1439 	if ((size_t)len > (SIZE_MAX - sizeof(*pg)) / sizeof(u32))
1440 		return ERR_PTR(-EINVAL);
1441 
1442 	ceph_decode_need(p, end, len * sizeof(u32), e_inval);
1443 	pg = alloc_pg_mapping(len * sizeof(u32));
1444 	if (!pg)
1445 		return ERR_PTR(-ENOMEM);
1446 
1447 	pg->pg_temp.len = len;
1448 	for (i = 0; i < len; i++)
1449 		pg->pg_temp.osds[i] = ceph_decode_32(p);
1450 
1451 	return pg;
1452 
1453 e_inval:
1454 	return ERR_PTR(-EINVAL);
1455 }
1456 
decode_pg_temp(void ** p,void * end,struct ceph_osdmap * map)1457 static int decode_pg_temp(void **p, void *end, struct ceph_osdmap *map)
1458 {
1459 	return decode_pg_mapping(p, end, &map->pg_temp, __decode_pg_temp,
1460 				 false);
1461 }
1462 
decode_new_pg_temp(void ** p,void * end,struct ceph_osdmap * map)1463 static int decode_new_pg_temp(void **p, void *end, struct ceph_osdmap *map)
1464 {
1465 	return decode_pg_mapping(p, end, &map->pg_temp, __decode_pg_temp,
1466 				 true);
1467 }
1468 
__decode_primary_temp(void ** p,void * end,bool incremental)1469 static struct ceph_pg_mapping *__decode_primary_temp(void **p, void *end,
1470 						     bool incremental)
1471 {
1472 	struct ceph_pg_mapping *pg;
1473 	u32 osd;
1474 
1475 	ceph_decode_32_safe(p, end, osd, e_inval);
1476 	if (osd == (u32)-1 && incremental)
1477 		return NULL;	/* new_primary_temp: -1 to remove */
1478 
1479 	pg = alloc_pg_mapping(0);
1480 	if (!pg)
1481 		return ERR_PTR(-ENOMEM);
1482 
1483 	pg->primary_temp.osd = osd;
1484 	return pg;
1485 
1486 e_inval:
1487 	return ERR_PTR(-EINVAL);
1488 }
1489 
decode_primary_temp(void ** p,void * end,struct ceph_osdmap * map)1490 static int decode_primary_temp(void **p, void *end, struct ceph_osdmap *map)
1491 {
1492 	return decode_pg_mapping(p, end, &map->primary_temp,
1493 				 __decode_primary_temp, false);
1494 }
1495 
decode_new_primary_temp(void ** p,void * end,struct ceph_osdmap * map)1496 static int decode_new_primary_temp(void **p, void *end,
1497 				   struct ceph_osdmap *map)
1498 {
1499 	return decode_pg_mapping(p, end, &map->primary_temp,
1500 				 __decode_primary_temp, true);
1501 }
1502 
ceph_get_primary_affinity(struct ceph_osdmap * map,int osd)1503 u32 ceph_get_primary_affinity(struct ceph_osdmap *map, int osd)
1504 {
1505 	if (!map->osd_primary_affinity)
1506 		return CEPH_OSD_DEFAULT_PRIMARY_AFFINITY;
1507 
1508 	return map->osd_primary_affinity[osd];
1509 }
1510 
set_primary_affinity(struct ceph_osdmap * map,int osd,u32 aff)1511 static int set_primary_affinity(struct ceph_osdmap *map, int osd, u32 aff)
1512 {
1513 	if (!map->osd_primary_affinity) {
1514 		int i;
1515 
1516 		map->osd_primary_affinity = kvmalloc(
1517 		    array_size(map->max_osd, sizeof(*map->osd_primary_affinity)),
1518 		    GFP_NOFS);
1519 		if (!map->osd_primary_affinity)
1520 			return -ENOMEM;
1521 
1522 		for (i = 0; i < map->max_osd; i++)
1523 			map->osd_primary_affinity[i] =
1524 			    CEPH_OSD_DEFAULT_PRIMARY_AFFINITY;
1525 	}
1526 
1527 	map->osd_primary_affinity[osd] = aff;
1528 
1529 	return 0;
1530 }
1531 
decode_primary_affinity(void ** p,void * end,struct ceph_osdmap * map)1532 static int decode_primary_affinity(void **p, void *end,
1533 				   struct ceph_osdmap *map)
1534 {
1535 	u32 len, i;
1536 
1537 	ceph_decode_32_safe(p, end, len, e_inval);
1538 	if (len == 0) {
1539 		kvfree(map->osd_primary_affinity);
1540 		map->osd_primary_affinity = NULL;
1541 		return 0;
1542 	}
1543 	if (len != map->max_osd)
1544 		goto e_inval;
1545 
1546 	ceph_decode_need(p, end, map->max_osd*sizeof(u32), e_inval);
1547 
1548 	for (i = 0; i < map->max_osd; i++) {
1549 		int ret;
1550 
1551 		ret = set_primary_affinity(map, i, ceph_decode_32(p));
1552 		if (ret)
1553 			return ret;
1554 	}
1555 
1556 	return 0;
1557 
1558 e_inval:
1559 	return -EINVAL;
1560 }
1561 
decode_new_primary_affinity(void ** p,void * end,struct ceph_osdmap * map)1562 static int decode_new_primary_affinity(void **p, void *end,
1563 				       struct ceph_osdmap *map)
1564 {
1565 	u32 n;
1566 
1567 	ceph_decode_32_safe(p, end, n, e_inval);
1568 	while (n--) {
1569 		u32 osd, aff;
1570 		int ret;
1571 
1572 		ceph_decode_32_safe(p, end, osd, e_inval);
1573 		ceph_decode_32_safe(p, end, aff, e_inval);
1574 		if (osd >= map->max_osd)
1575 			goto e_inval;
1576 
1577 		ret = set_primary_affinity(map, osd, aff);
1578 		if (ret)
1579 			return ret;
1580 
1581 		osdmap_info(map, "osd%d primary-affinity 0x%x\n", osd, aff);
1582 	}
1583 
1584 	return 0;
1585 
1586 e_inval:
1587 	return -EINVAL;
1588 }
1589 
__decode_pg_upmap(void ** p,void * end,bool __unused)1590 static struct ceph_pg_mapping *__decode_pg_upmap(void **p, void *end,
1591 						 bool __unused)
1592 {
1593 	return __decode_pg_temp(p, end, false);
1594 }
1595 
decode_pg_upmap(void ** p,void * end,struct ceph_osdmap * map)1596 static int decode_pg_upmap(void **p, void *end, struct ceph_osdmap *map)
1597 {
1598 	return decode_pg_mapping(p, end, &map->pg_upmap, __decode_pg_upmap,
1599 				 false);
1600 }
1601 
decode_new_pg_upmap(void ** p,void * end,struct ceph_osdmap * map)1602 static int decode_new_pg_upmap(void **p, void *end, struct ceph_osdmap *map)
1603 {
1604 	return decode_pg_mapping(p, end, &map->pg_upmap, __decode_pg_upmap,
1605 				 true);
1606 }
1607 
decode_old_pg_upmap(void ** p,void * end,struct ceph_osdmap * map)1608 static int decode_old_pg_upmap(void **p, void *end, struct ceph_osdmap *map)
1609 {
1610 	return decode_pg_mapping(p, end, &map->pg_upmap, NULL, true);
1611 }
1612 
__decode_pg_upmap_items(void ** p,void * end,bool __unused)1613 static struct ceph_pg_mapping *__decode_pg_upmap_items(void **p, void *end,
1614 						       bool __unused)
1615 {
1616 	struct ceph_pg_mapping *pg;
1617 	u32 len, i;
1618 
1619 	ceph_decode_32_safe(p, end, len, e_inval);
1620 	if ((size_t)len > (SIZE_MAX - sizeof(*pg)) / (2 * sizeof(u32)))
1621 		return ERR_PTR(-EINVAL);
1622 
1623 	ceph_decode_need(p, end, 2 * len * sizeof(u32), e_inval);
1624 	pg = alloc_pg_mapping(2 * len * sizeof(u32));
1625 	if (!pg)
1626 		return ERR_PTR(-ENOMEM);
1627 
1628 	pg->pg_upmap_items.len = len;
1629 	for (i = 0; i < len; i++) {
1630 		pg->pg_upmap_items.from_to[i][0] = ceph_decode_32(p);
1631 		pg->pg_upmap_items.from_to[i][1] = ceph_decode_32(p);
1632 	}
1633 
1634 	return pg;
1635 
1636 e_inval:
1637 	return ERR_PTR(-EINVAL);
1638 }
1639 
decode_pg_upmap_items(void ** p,void * end,struct ceph_osdmap * map)1640 static int decode_pg_upmap_items(void **p, void *end, struct ceph_osdmap *map)
1641 {
1642 	return decode_pg_mapping(p, end, &map->pg_upmap_items,
1643 				 __decode_pg_upmap_items, false);
1644 }
1645 
decode_new_pg_upmap_items(void ** p,void * end,struct ceph_osdmap * map)1646 static int decode_new_pg_upmap_items(void **p, void *end,
1647 				     struct ceph_osdmap *map)
1648 {
1649 	return decode_pg_mapping(p, end, &map->pg_upmap_items,
1650 				 __decode_pg_upmap_items, true);
1651 }
1652 
decode_old_pg_upmap_items(void ** p,void * end,struct ceph_osdmap * map)1653 static int decode_old_pg_upmap_items(void **p, void *end,
1654 				     struct ceph_osdmap *map)
1655 {
1656 	return decode_pg_mapping(p, end, &map->pg_upmap_items, NULL, true);
1657 }
1658 
1659 /*
1660  * decode a full map.
1661  */
osdmap_decode(void ** p,void * end,bool msgr2,struct ceph_osdmap * map)1662 static int osdmap_decode(void **p, void *end, bool msgr2,
1663 			 struct ceph_osdmap *map)
1664 {
1665 	u8 struct_v;
1666 	u32 epoch = 0;
1667 	void *start = *p;
1668 	u32 max;
1669 	u32 len, i;
1670 	int err;
1671 
1672 	dout("%s %p to %p len %d\n", __func__, *p, end, (int)(end - *p));
1673 
1674 	err = get_osdmap_client_data_v(p, end, "full", &struct_v);
1675 	if (err)
1676 		goto bad;
1677 
1678 	/* fsid, epoch, created, modified */
1679 	ceph_decode_need(p, end, sizeof(map->fsid) + sizeof(u32) +
1680 			 sizeof(map->created) + sizeof(map->modified), e_inval);
1681 	ceph_decode_copy(p, &map->fsid, sizeof(map->fsid));
1682 	epoch = map->epoch = ceph_decode_32(p);
1683 	ceph_decode_copy(p, &map->created, sizeof(map->created));
1684 	ceph_decode_copy(p, &map->modified, sizeof(map->modified));
1685 
1686 	/* pools */
1687 	err = decode_pools(p, end, map);
1688 	if (err)
1689 		goto bad;
1690 
1691 	/* pool_name */
1692 	err = decode_pool_names(p, end, map);
1693 	if (err)
1694 		goto bad;
1695 
1696 	ceph_decode_32_safe(p, end, map->pool_max, e_inval);
1697 
1698 	ceph_decode_32_safe(p, end, map->flags, e_inval);
1699 
1700 	/* max_osd */
1701 	ceph_decode_32_safe(p, end, max, e_inval);
1702 
1703 	/* (re)alloc osd arrays */
1704 	err = osdmap_set_max_osd(map, max);
1705 	if (err)
1706 		goto bad;
1707 
1708 	/* osd_state, osd_weight, osd_addrs->client_addr */
1709 	ceph_decode_need(p, end, 3*sizeof(u32) +
1710 			 map->max_osd*(struct_v >= 5 ? sizeof(u32) :
1711 						       sizeof(u8)) +
1712 			 map->max_osd*sizeof(*map->osd_weight), e_inval);
1713 	if (ceph_decode_32(p) != map->max_osd)
1714 		goto e_inval;
1715 
1716 	if (struct_v >= 5) {
1717 		for (i = 0; i < map->max_osd; i++)
1718 			map->osd_state[i] = ceph_decode_32(p);
1719 	} else {
1720 		for (i = 0; i < map->max_osd; i++)
1721 			map->osd_state[i] = ceph_decode_8(p);
1722 	}
1723 
1724 	if (ceph_decode_32(p) != map->max_osd)
1725 		goto e_inval;
1726 
1727 	for (i = 0; i < map->max_osd; i++)
1728 		map->osd_weight[i] = ceph_decode_32(p);
1729 
1730 	if (ceph_decode_32(p) != map->max_osd)
1731 		goto e_inval;
1732 
1733 	for (i = 0; i < map->max_osd; i++) {
1734 		struct ceph_entity_addr *addr = &map->osd_addr[i];
1735 
1736 		if (struct_v >= 8)
1737 			err = ceph_decode_entity_addrvec(p, end, msgr2, addr);
1738 		else
1739 			err = ceph_decode_entity_addr(p, end, addr);
1740 		if (err)
1741 			goto bad;
1742 
1743 		dout("%s osd%d addr %s\n", __func__, i, ceph_pr_addr(addr));
1744 	}
1745 
1746 	/* pg_temp */
1747 	err = decode_pg_temp(p, end, map);
1748 	if (err)
1749 		goto bad;
1750 
1751 	/* primary_temp */
1752 	if (struct_v >= 1) {
1753 		err = decode_primary_temp(p, end, map);
1754 		if (err)
1755 			goto bad;
1756 	}
1757 
1758 	/* primary_affinity */
1759 	if (struct_v >= 2) {
1760 		err = decode_primary_affinity(p, end, map);
1761 		if (err)
1762 			goto bad;
1763 	} else {
1764 		WARN_ON(map->osd_primary_affinity);
1765 	}
1766 
1767 	/* crush */
1768 	ceph_decode_32_safe(p, end, len, e_inval);
1769 	err = osdmap_set_crush(map, crush_decode(*p, min(*p + len, end)));
1770 	if (err)
1771 		goto bad;
1772 
1773 	*p += len;
1774 	if (struct_v >= 3) {
1775 		/* erasure_code_profiles */
1776 		ceph_decode_skip_map_of_map(p, end, string, string, string,
1777 					    e_inval);
1778 	}
1779 
1780 	if (struct_v >= 4) {
1781 		err = decode_pg_upmap(p, end, map);
1782 		if (err)
1783 			goto bad;
1784 
1785 		err = decode_pg_upmap_items(p, end, map);
1786 		if (err)
1787 			goto bad;
1788 	} else {
1789 		WARN_ON(!RB_EMPTY_ROOT(&map->pg_upmap));
1790 		WARN_ON(!RB_EMPTY_ROOT(&map->pg_upmap_items));
1791 	}
1792 
1793 	/* ignore the rest */
1794 	*p = end;
1795 
1796 	dout("full osdmap epoch %d max_osd %d\n", map->epoch, map->max_osd);
1797 	return 0;
1798 
1799 e_inval:
1800 	err = -EINVAL;
1801 bad:
1802 	pr_err("corrupt full osdmap (%d) epoch %d off %d (%p of %p-%p)\n",
1803 	       err, epoch, (int)(*p - start), *p, start, end);
1804 	print_hex_dump(KERN_DEBUG, "osdmap: ",
1805 		       DUMP_PREFIX_OFFSET, 16, 1,
1806 		       start, end - start, true);
1807 	return err;
1808 }
1809 
1810 /*
1811  * Allocate and decode a full map.
1812  */
ceph_osdmap_decode(void ** p,void * end,bool msgr2)1813 struct ceph_osdmap *ceph_osdmap_decode(void **p, void *end, bool msgr2)
1814 {
1815 	struct ceph_osdmap *map;
1816 	int ret;
1817 
1818 	map = ceph_osdmap_alloc();
1819 	if (!map)
1820 		return ERR_PTR(-ENOMEM);
1821 
1822 	ret = osdmap_decode(p, end, msgr2, map);
1823 	if (ret) {
1824 		ceph_osdmap_destroy(map);
1825 		return ERR_PTR(ret);
1826 	}
1827 
1828 	return map;
1829 }
1830 
1831 /*
1832  * Encoding order is (new_up_client, new_state, new_weight).  Need to
1833  * apply in the (new_weight, new_state, new_up_client) order, because
1834  * an incremental map may look like e.g.
1835  *
1836  *     new_up_client: { osd=6, addr=... } # set osd_state and addr
1837  *     new_state: { osd=6, xorstate=EXISTS } # clear osd_state
1838  */
decode_new_up_state_weight(void ** p,void * end,u8 struct_v,bool msgr2,struct ceph_osdmap * map)1839 static int decode_new_up_state_weight(void **p, void *end, u8 struct_v,
1840 				      bool msgr2, struct ceph_osdmap *map)
1841 {
1842 	void *new_up_client;
1843 	void *new_state;
1844 	void *new_weight_end;
1845 	u32 len;
1846 	int ret;
1847 	int i;
1848 
1849 	new_up_client = *p;
1850 	ceph_decode_32_safe(p, end, len, e_inval);
1851 	for (i = 0; i < len; ++i) {
1852 		struct ceph_entity_addr addr;
1853 
1854 		ceph_decode_skip_32(p, end, e_inval);
1855 		if (struct_v >= 7)
1856 			ret = ceph_decode_entity_addrvec(p, end, msgr2, &addr);
1857 		else
1858 			ret = ceph_decode_entity_addr(p, end, &addr);
1859 		if (ret)
1860 			return ret;
1861 	}
1862 
1863 	new_state = *p;
1864 	ceph_decode_32_safe(p, end, len, e_inval);
1865 	len *= sizeof(u32) + (struct_v >= 5 ? sizeof(u32) : sizeof(u8));
1866 	ceph_decode_need(p, end, len, e_inval);
1867 	*p += len;
1868 
1869 	/* new_weight */
1870 	ceph_decode_32_safe(p, end, len, e_inval);
1871 	while (len--) {
1872 		s32 osd;
1873 		u32 w;
1874 
1875 		ceph_decode_need(p, end, 2*sizeof(u32), e_inval);
1876 		osd = ceph_decode_32(p);
1877 		w = ceph_decode_32(p);
1878 		if (osd >= map->max_osd)
1879 			goto e_inval;
1880 
1881 		osdmap_info(map, "osd%d weight 0x%x %s\n", osd, w,
1882 			    w == CEPH_OSD_IN ? "(in)" :
1883 			    (w == CEPH_OSD_OUT ? "(out)" : ""));
1884 		map->osd_weight[osd] = w;
1885 
1886 		/*
1887 		 * If we are marking in, set the EXISTS, and clear the
1888 		 * AUTOOUT and NEW bits.
1889 		 */
1890 		if (w) {
1891 			map->osd_state[osd] |= CEPH_OSD_EXISTS;
1892 			map->osd_state[osd] &= ~(CEPH_OSD_AUTOOUT |
1893 						 CEPH_OSD_NEW);
1894 		}
1895 	}
1896 	new_weight_end = *p;
1897 
1898 	/* new_state (up/down) */
1899 	*p = new_state;
1900 	len = ceph_decode_32(p);
1901 	while (len--) {
1902 		s32 osd;
1903 		u32 xorstate;
1904 
1905 		osd = ceph_decode_32(p);
1906 		if (osd >= map->max_osd)
1907 			goto e_inval;
1908 
1909 		if (struct_v >= 5)
1910 			xorstate = ceph_decode_32(p);
1911 		else
1912 			xorstate = ceph_decode_8(p);
1913 		if (xorstate == 0)
1914 			xorstate = CEPH_OSD_UP;
1915 		if ((map->osd_state[osd] & CEPH_OSD_UP) &&
1916 		    (xorstate & CEPH_OSD_UP))
1917 			osdmap_info(map, "osd%d down\n", osd);
1918 		if ((map->osd_state[osd] & CEPH_OSD_EXISTS) &&
1919 		    (xorstate & CEPH_OSD_EXISTS)) {
1920 			osdmap_info(map, "osd%d does not exist\n", osd);
1921 			ret = set_primary_affinity(map, osd,
1922 						   CEPH_OSD_DEFAULT_PRIMARY_AFFINITY);
1923 			if (ret)
1924 				return ret;
1925 			memset(map->osd_addr + osd, 0, sizeof(*map->osd_addr));
1926 			map->osd_state[osd] = 0;
1927 		} else {
1928 			map->osd_state[osd] ^= xorstate;
1929 		}
1930 	}
1931 
1932 	/* new_up_client */
1933 	*p = new_up_client;
1934 	len = ceph_decode_32(p);
1935 	while (len--) {
1936 		s32 osd;
1937 		struct ceph_entity_addr addr;
1938 
1939 		osd = ceph_decode_32(p);
1940 		if (osd >= map->max_osd)
1941 			goto e_inval;
1942 
1943 		if (struct_v >= 7)
1944 			ret = ceph_decode_entity_addrvec(p, end, msgr2, &addr);
1945 		else
1946 			ret = ceph_decode_entity_addr(p, end, &addr);
1947 		if (ret)
1948 			return ret;
1949 
1950 		dout("%s osd%d addr %s\n", __func__, osd, ceph_pr_addr(&addr));
1951 
1952 		osdmap_info(map, "osd%d up\n", osd);
1953 		map->osd_state[osd] |= CEPH_OSD_EXISTS | CEPH_OSD_UP;
1954 		map->osd_addr[osd] = addr;
1955 	}
1956 
1957 	*p = new_weight_end;
1958 	return 0;
1959 
1960 e_inval:
1961 	return -EINVAL;
1962 }
1963 
1964 /*
1965  * decode and apply an incremental map update.
1966  */
osdmap_apply_incremental(void ** p,void * end,bool msgr2,struct ceph_osdmap * map)1967 struct ceph_osdmap *osdmap_apply_incremental(void **p, void *end, bool msgr2,
1968 					     struct ceph_osdmap *map)
1969 {
1970 	struct ceph_fsid fsid;
1971 	u32 epoch = 0;
1972 	struct ceph_timespec modified;
1973 	s32 len;
1974 	u64 pool;
1975 	__s64 new_pool_max;
1976 	__s32 new_flags, max;
1977 	void *start = *p;
1978 	int err;
1979 	u8 struct_v;
1980 
1981 	dout("%s %p to %p len %d\n", __func__, *p, end, (int)(end - *p));
1982 
1983 	err = get_osdmap_client_data_v(p, end, "inc", &struct_v);
1984 	if (err)
1985 		goto bad;
1986 
1987 	/* fsid, epoch, modified, new_pool_max, new_flags */
1988 	ceph_decode_need(p, end, sizeof(fsid) + sizeof(u32) + sizeof(modified) +
1989 			 sizeof(u64) + sizeof(u32), e_inval);
1990 	ceph_decode_copy(p, &fsid, sizeof(fsid));
1991 	epoch = ceph_decode_32(p);
1992 	ceph_decode_copy(p, &modified, sizeof(modified));
1993 	new_pool_max = ceph_decode_64(p);
1994 	new_flags = ceph_decode_32(p);
1995 
1996 	if (epoch != map->epoch + 1)
1997 		goto e_inval;
1998 
1999 	/* full map? */
2000 	ceph_decode_32_safe(p, end, len, e_inval);
2001 	if (len > 0) {
2002 		dout("apply_incremental full map len %d, %p to %p\n",
2003 		     len, *p, end);
2004 		return ceph_osdmap_decode(p, min(*p+len, end), msgr2);
2005 	}
2006 
2007 	/* new crush? */
2008 	ceph_decode_32_safe(p, end, len, e_inval);
2009 	if (len > 0) {
2010 		err = osdmap_set_crush(map,
2011 				       crush_decode(*p, min(*p + len, end)));
2012 		if (err)
2013 			goto bad;
2014 		*p += len;
2015 	}
2016 
2017 	/* new flags? */
2018 	if (new_flags >= 0)
2019 		map->flags = new_flags;
2020 	if (new_pool_max >= 0)
2021 		map->pool_max = new_pool_max;
2022 
2023 	/* new max? */
2024 	ceph_decode_32_safe(p, end, max, e_inval);
2025 	if (max >= 0) {
2026 		err = osdmap_set_max_osd(map, max);
2027 		if (err)
2028 			goto bad;
2029 	}
2030 
2031 	map->epoch++;
2032 	map->modified = modified;
2033 
2034 	/* new_pools */
2035 	err = decode_new_pools(p, end, map);
2036 	if (err)
2037 		goto bad;
2038 
2039 	/* new_pool_names */
2040 	err = decode_pool_names(p, end, map);
2041 	if (err)
2042 		goto bad;
2043 
2044 	/* old_pool */
2045 	ceph_decode_32_safe(p, end, len, e_inval);
2046 	while (len--) {
2047 		struct ceph_pg_pool_info *pi;
2048 
2049 		ceph_decode_64_safe(p, end, pool, e_inval);
2050 		pi = lookup_pg_pool(&map->pg_pools, pool);
2051 		if (pi)
2052 			__remove_pg_pool(&map->pg_pools, pi);
2053 	}
2054 
2055 	/* new_up_client, new_state, new_weight */
2056 	err = decode_new_up_state_weight(p, end, struct_v, msgr2, map);
2057 	if (err)
2058 		goto bad;
2059 
2060 	/* new_pg_temp */
2061 	err = decode_new_pg_temp(p, end, map);
2062 	if (err)
2063 		goto bad;
2064 
2065 	/* new_primary_temp */
2066 	if (struct_v >= 1) {
2067 		err = decode_new_primary_temp(p, end, map);
2068 		if (err)
2069 			goto bad;
2070 	}
2071 
2072 	/* new_primary_affinity */
2073 	if (struct_v >= 2) {
2074 		err = decode_new_primary_affinity(p, end, map);
2075 		if (err)
2076 			goto bad;
2077 	}
2078 
2079 	if (struct_v >= 3) {
2080 		/* new_erasure_code_profiles */
2081 		ceph_decode_skip_map_of_map(p, end, string, string, string,
2082 					    e_inval);
2083 		/* old_erasure_code_profiles */
2084 		ceph_decode_skip_set(p, end, string, e_inval);
2085 	}
2086 
2087 	if (struct_v >= 4) {
2088 		err = decode_new_pg_upmap(p, end, map);
2089 		if (err)
2090 			goto bad;
2091 
2092 		err = decode_old_pg_upmap(p, end, map);
2093 		if (err)
2094 			goto bad;
2095 
2096 		err = decode_new_pg_upmap_items(p, end, map);
2097 		if (err)
2098 			goto bad;
2099 
2100 		err = decode_old_pg_upmap_items(p, end, map);
2101 		if (err)
2102 			goto bad;
2103 	}
2104 
2105 	/* ignore the rest */
2106 	*p = end;
2107 
2108 	dout("inc osdmap epoch %d max_osd %d\n", map->epoch, map->max_osd);
2109 	return map;
2110 
2111 e_inval:
2112 	err = -EINVAL;
2113 bad:
2114 	pr_err("corrupt inc osdmap (%d) epoch %d off %d (%p of %p-%p)\n",
2115 	       err, epoch, (int)(*p - start), *p, start, end);
2116 	print_hex_dump(KERN_DEBUG, "osdmap: ",
2117 		       DUMP_PREFIX_OFFSET, 16, 1,
2118 		       start, end - start, true);
2119 	return ERR_PTR(err);
2120 }
2121 
ceph_oloc_copy(struct ceph_object_locator * dest,const struct ceph_object_locator * src)2122 void ceph_oloc_copy(struct ceph_object_locator *dest,
2123 		    const struct ceph_object_locator *src)
2124 {
2125 	ceph_oloc_destroy(dest);
2126 
2127 	dest->pool = src->pool;
2128 	if (src->pool_ns)
2129 		dest->pool_ns = ceph_get_string(src->pool_ns);
2130 	else
2131 		dest->pool_ns = NULL;
2132 }
2133 EXPORT_SYMBOL(ceph_oloc_copy);
2134 
ceph_oloc_destroy(struct ceph_object_locator * oloc)2135 void ceph_oloc_destroy(struct ceph_object_locator *oloc)
2136 {
2137 	ceph_put_string(oloc->pool_ns);
2138 }
2139 EXPORT_SYMBOL(ceph_oloc_destroy);
2140 
ceph_oid_copy(struct ceph_object_id * dest,const struct ceph_object_id * src)2141 void ceph_oid_copy(struct ceph_object_id *dest,
2142 		   const struct ceph_object_id *src)
2143 {
2144 	ceph_oid_destroy(dest);
2145 
2146 	if (src->name != src->inline_name) {
2147 		/* very rare, see ceph_object_id definition */
2148 		dest->name = kmalloc(src->name_len + 1,
2149 				     GFP_NOIO | __GFP_NOFAIL);
2150 	} else {
2151 		dest->name = dest->inline_name;
2152 	}
2153 	memcpy(dest->name, src->name, src->name_len + 1);
2154 	dest->name_len = src->name_len;
2155 }
2156 EXPORT_SYMBOL(ceph_oid_copy);
2157 
2158 static __printf(2, 0)
oid_printf_vargs(struct ceph_object_id * oid,const char * fmt,va_list ap)2159 int oid_printf_vargs(struct ceph_object_id *oid, const char *fmt, va_list ap)
2160 {
2161 	int len;
2162 
2163 	WARN_ON(!ceph_oid_empty(oid));
2164 
2165 	len = vsnprintf(oid->inline_name, sizeof(oid->inline_name), fmt, ap);
2166 	if (len >= sizeof(oid->inline_name))
2167 		return len;
2168 
2169 	oid->name_len = len;
2170 	return 0;
2171 }
2172 
2173 /*
2174  * If oid doesn't fit into inline buffer, BUG.
2175  */
ceph_oid_printf(struct ceph_object_id * oid,const char * fmt,...)2176 void ceph_oid_printf(struct ceph_object_id *oid, const char *fmt, ...)
2177 {
2178 	va_list ap;
2179 
2180 	va_start(ap, fmt);
2181 	BUG_ON(oid_printf_vargs(oid, fmt, ap));
2182 	va_end(ap);
2183 }
2184 EXPORT_SYMBOL(ceph_oid_printf);
2185 
2186 static __printf(3, 0)
oid_aprintf_vargs(struct ceph_object_id * oid,gfp_t gfp,const char * fmt,va_list ap)2187 int oid_aprintf_vargs(struct ceph_object_id *oid, gfp_t gfp,
2188 		      const char *fmt, va_list ap)
2189 {
2190 	va_list aq;
2191 	int len;
2192 
2193 	va_copy(aq, ap);
2194 	len = oid_printf_vargs(oid, fmt, aq);
2195 	va_end(aq);
2196 
2197 	if (len) {
2198 		char *external_name;
2199 
2200 		external_name = kmalloc(len + 1, gfp);
2201 		if (!external_name)
2202 			return -ENOMEM;
2203 
2204 		oid->name = external_name;
2205 		WARN_ON(vsnprintf(oid->name, len + 1, fmt, ap) != len);
2206 		oid->name_len = len;
2207 	}
2208 
2209 	return 0;
2210 }
2211 
2212 /*
2213  * If oid doesn't fit into inline buffer, allocate.
2214  */
ceph_oid_aprintf(struct ceph_object_id * oid,gfp_t gfp,const char * fmt,...)2215 int ceph_oid_aprintf(struct ceph_object_id *oid, gfp_t gfp,
2216 		     const char *fmt, ...)
2217 {
2218 	va_list ap;
2219 	int ret;
2220 
2221 	va_start(ap, fmt);
2222 	ret = oid_aprintf_vargs(oid, gfp, fmt, ap);
2223 	va_end(ap);
2224 
2225 	return ret;
2226 }
2227 EXPORT_SYMBOL(ceph_oid_aprintf);
2228 
ceph_oid_destroy(struct ceph_object_id * oid)2229 void ceph_oid_destroy(struct ceph_object_id *oid)
2230 {
2231 	if (oid->name != oid->inline_name)
2232 		kfree(oid->name);
2233 }
2234 EXPORT_SYMBOL(ceph_oid_destroy);
2235 
2236 /*
2237  * osds only
2238  */
__osds_equal(const struct ceph_osds * lhs,const struct ceph_osds * rhs)2239 static bool __osds_equal(const struct ceph_osds *lhs,
2240 			 const struct ceph_osds *rhs)
2241 {
2242 	if (lhs->size == rhs->size &&
2243 	    !memcmp(lhs->osds, rhs->osds, rhs->size * sizeof(rhs->osds[0])))
2244 		return true;
2245 
2246 	return false;
2247 }
2248 
2249 /*
2250  * osds + primary
2251  */
osds_equal(const struct ceph_osds * lhs,const struct ceph_osds * rhs)2252 static bool osds_equal(const struct ceph_osds *lhs,
2253 		       const struct ceph_osds *rhs)
2254 {
2255 	if (__osds_equal(lhs, rhs) &&
2256 	    lhs->primary == rhs->primary)
2257 		return true;
2258 
2259 	return false;
2260 }
2261 
osds_valid(const struct ceph_osds * set)2262 static bool osds_valid(const struct ceph_osds *set)
2263 {
2264 	/* non-empty set */
2265 	if (set->size > 0 && set->primary >= 0)
2266 		return true;
2267 
2268 	/* empty can_shift_osds set */
2269 	if (!set->size && set->primary == -1)
2270 		return true;
2271 
2272 	/* empty !can_shift_osds set - all NONE */
2273 	if (set->size > 0 && set->primary == -1) {
2274 		int i;
2275 
2276 		for (i = 0; i < set->size; i++) {
2277 			if (set->osds[i] != CRUSH_ITEM_NONE)
2278 				break;
2279 		}
2280 		if (i == set->size)
2281 			return true;
2282 	}
2283 
2284 	return false;
2285 }
2286 
ceph_osds_copy(struct ceph_osds * dest,const struct ceph_osds * src)2287 void ceph_osds_copy(struct ceph_osds *dest, const struct ceph_osds *src)
2288 {
2289 	memcpy(dest->osds, src->osds, src->size * sizeof(src->osds[0]));
2290 	dest->size = src->size;
2291 	dest->primary = src->primary;
2292 }
2293 
ceph_pg_is_split(const struct ceph_pg * pgid,u32 old_pg_num,u32 new_pg_num)2294 bool ceph_pg_is_split(const struct ceph_pg *pgid, u32 old_pg_num,
2295 		      u32 new_pg_num)
2296 {
2297 	int old_bits = calc_bits_of(old_pg_num);
2298 	int old_mask = (1 << old_bits) - 1;
2299 	int n;
2300 
2301 	WARN_ON(pgid->seed >= old_pg_num);
2302 	if (new_pg_num <= old_pg_num)
2303 		return false;
2304 
2305 	for (n = 1; ; n++) {
2306 		int next_bit = n << (old_bits - 1);
2307 		u32 s = next_bit | pgid->seed;
2308 
2309 		if (s < old_pg_num || s == pgid->seed)
2310 			continue;
2311 		if (s >= new_pg_num)
2312 			break;
2313 
2314 		s = ceph_stable_mod(s, old_pg_num, old_mask);
2315 		if (s == pgid->seed)
2316 			return true;
2317 	}
2318 
2319 	return false;
2320 }
2321 
ceph_is_new_interval(const struct ceph_osds * old_acting,const struct ceph_osds * new_acting,const struct ceph_osds * old_up,const struct ceph_osds * new_up,int old_size,int new_size,int old_min_size,int new_min_size,u32 old_pg_num,u32 new_pg_num,bool old_sort_bitwise,bool new_sort_bitwise,bool old_recovery_deletes,bool new_recovery_deletes,const struct ceph_pg * pgid)2322 bool ceph_is_new_interval(const struct ceph_osds *old_acting,
2323 			  const struct ceph_osds *new_acting,
2324 			  const struct ceph_osds *old_up,
2325 			  const struct ceph_osds *new_up,
2326 			  int old_size,
2327 			  int new_size,
2328 			  int old_min_size,
2329 			  int new_min_size,
2330 			  u32 old_pg_num,
2331 			  u32 new_pg_num,
2332 			  bool old_sort_bitwise,
2333 			  bool new_sort_bitwise,
2334 			  bool old_recovery_deletes,
2335 			  bool new_recovery_deletes,
2336 			  const struct ceph_pg *pgid)
2337 {
2338 	return !osds_equal(old_acting, new_acting) ||
2339 	       !osds_equal(old_up, new_up) ||
2340 	       old_size != new_size ||
2341 	       old_min_size != new_min_size ||
2342 	       ceph_pg_is_split(pgid, old_pg_num, new_pg_num) ||
2343 	       old_sort_bitwise != new_sort_bitwise ||
2344 	       old_recovery_deletes != new_recovery_deletes;
2345 }
2346 
calc_pg_rank(int osd,const struct ceph_osds * acting)2347 static int calc_pg_rank(int osd, const struct ceph_osds *acting)
2348 {
2349 	int i;
2350 
2351 	for (i = 0; i < acting->size; i++) {
2352 		if (acting->osds[i] == osd)
2353 			return i;
2354 	}
2355 
2356 	return -1;
2357 }
2358 
primary_changed(const struct ceph_osds * old_acting,const struct ceph_osds * new_acting)2359 static bool primary_changed(const struct ceph_osds *old_acting,
2360 			    const struct ceph_osds *new_acting)
2361 {
2362 	if (!old_acting->size && !new_acting->size)
2363 		return false; /* both still empty */
2364 
2365 	if (!old_acting->size ^ !new_acting->size)
2366 		return true; /* was empty, now not, or vice versa */
2367 
2368 	if (old_acting->primary != new_acting->primary)
2369 		return true; /* primary changed */
2370 
2371 	if (calc_pg_rank(old_acting->primary, old_acting) !=
2372 	    calc_pg_rank(new_acting->primary, new_acting))
2373 		return true;
2374 
2375 	return false; /* same primary (tho replicas may have changed) */
2376 }
2377 
ceph_osds_changed(const struct ceph_osds * old_acting,const struct ceph_osds * new_acting,bool any_change)2378 bool ceph_osds_changed(const struct ceph_osds *old_acting,
2379 		       const struct ceph_osds *new_acting,
2380 		       bool any_change)
2381 {
2382 	if (primary_changed(old_acting, new_acting))
2383 		return true;
2384 
2385 	if (any_change && !__osds_equal(old_acting, new_acting))
2386 		return true;
2387 
2388 	return false;
2389 }
2390 
2391 /*
2392  * Map an object into a PG.
2393  *
2394  * Should only be called with target_oid and target_oloc (as opposed to
2395  * base_oid and base_oloc), since tiering isn't taken into account.
2396  */
__ceph_object_locator_to_pg(struct ceph_pg_pool_info * pi,const struct ceph_object_id * oid,const struct ceph_object_locator * oloc,struct ceph_pg * raw_pgid)2397 void __ceph_object_locator_to_pg(struct ceph_pg_pool_info *pi,
2398 				 const struct ceph_object_id *oid,
2399 				 const struct ceph_object_locator *oloc,
2400 				 struct ceph_pg *raw_pgid)
2401 {
2402 	WARN_ON(pi->id != oloc->pool);
2403 
2404 	if (!oloc->pool_ns) {
2405 		raw_pgid->pool = oloc->pool;
2406 		raw_pgid->seed = ceph_str_hash(pi->object_hash, oid->name,
2407 					     oid->name_len);
2408 		dout("%s %s -> raw_pgid %llu.%x\n", __func__, oid->name,
2409 		     raw_pgid->pool, raw_pgid->seed);
2410 	} else {
2411 		char stack_buf[256];
2412 		char *buf = stack_buf;
2413 		int nsl = oloc->pool_ns->len;
2414 		size_t total = nsl + 1 + oid->name_len;
2415 
2416 		if (total > sizeof(stack_buf))
2417 			buf = kmalloc(total, GFP_NOIO | __GFP_NOFAIL);
2418 		memcpy(buf, oloc->pool_ns->str, nsl);
2419 		buf[nsl] = '\037';
2420 		memcpy(buf + nsl + 1, oid->name, oid->name_len);
2421 		raw_pgid->pool = oloc->pool;
2422 		raw_pgid->seed = ceph_str_hash(pi->object_hash, buf, total);
2423 		if (buf != stack_buf)
2424 			kfree(buf);
2425 		dout("%s %s ns %.*s -> raw_pgid %llu.%x\n", __func__,
2426 		     oid->name, nsl, oloc->pool_ns->str,
2427 		     raw_pgid->pool, raw_pgid->seed);
2428 	}
2429 }
2430 
ceph_object_locator_to_pg(struct ceph_osdmap * osdmap,const struct ceph_object_id * oid,const struct ceph_object_locator * oloc,struct ceph_pg * raw_pgid)2431 int ceph_object_locator_to_pg(struct ceph_osdmap *osdmap,
2432 			      const struct ceph_object_id *oid,
2433 			      const struct ceph_object_locator *oloc,
2434 			      struct ceph_pg *raw_pgid)
2435 {
2436 	struct ceph_pg_pool_info *pi;
2437 
2438 	pi = ceph_pg_pool_by_id(osdmap, oloc->pool);
2439 	if (!pi)
2440 		return -ENOENT;
2441 
2442 	__ceph_object_locator_to_pg(pi, oid, oloc, raw_pgid);
2443 	return 0;
2444 }
2445 EXPORT_SYMBOL(ceph_object_locator_to_pg);
2446 
2447 /*
2448  * Map a raw PG (full precision ps) into an actual PG.
2449  */
raw_pg_to_pg(struct ceph_pg_pool_info * pi,const struct ceph_pg * raw_pgid,struct ceph_pg * pgid)2450 static void raw_pg_to_pg(struct ceph_pg_pool_info *pi,
2451 			 const struct ceph_pg *raw_pgid,
2452 			 struct ceph_pg *pgid)
2453 {
2454 	pgid->pool = raw_pgid->pool;
2455 	pgid->seed = ceph_stable_mod(raw_pgid->seed, pi->pg_num,
2456 				     pi->pg_num_mask);
2457 }
2458 
2459 /*
2460  * Map a raw PG (full precision ps) into a placement ps (placement
2461  * seed).  Include pool id in that value so that different pools don't
2462  * use the same seeds.
2463  */
raw_pg_to_pps(struct ceph_pg_pool_info * pi,const struct ceph_pg * raw_pgid)2464 static u32 raw_pg_to_pps(struct ceph_pg_pool_info *pi,
2465 			 const struct ceph_pg *raw_pgid)
2466 {
2467 	if (pi->flags & CEPH_POOL_FLAG_HASHPSPOOL) {
2468 		/* hash pool id and seed so that pool PGs do not overlap */
2469 		return crush_hash32_2(CRUSH_HASH_RJENKINS1,
2470 				      ceph_stable_mod(raw_pgid->seed,
2471 						      pi->pgp_num,
2472 						      pi->pgp_num_mask),
2473 				      raw_pgid->pool);
2474 	} else {
2475 		/*
2476 		 * legacy behavior: add ps and pool together.  this is
2477 		 * not a great approach because the PGs from each pool
2478 		 * will overlap on top of each other: 0.5 == 1.4 ==
2479 		 * 2.3 == ...
2480 		 */
2481 		return ceph_stable_mod(raw_pgid->seed, pi->pgp_num,
2482 				       pi->pgp_num_mask) +
2483 		       (unsigned)raw_pgid->pool;
2484 	}
2485 }
2486 
2487 /*
2488  * Magic value used for a "default" fallback choose_args, used if the
2489  * crush_choose_arg_map passed to do_crush() does not exist.  If this
2490  * also doesn't exist, fall back to canonical weights.
2491  */
2492 #define CEPH_DEFAULT_CHOOSE_ARGS	-1
2493 
do_crush(struct ceph_osdmap * map,int ruleno,int x,int * result,int result_max,const __u32 * weight,int weight_max,s64 choose_args_index)2494 static int do_crush(struct ceph_osdmap *map, int ruleno, int x,
2495 		    int *result, int result_max,
2496 		    const __u32 *weight, int weight_max,
2497 		    s64 choose_args_index)
2498 {
2499 	struct crush_choose_arg_map *arg_map;
2500 	struct crush_work *work;
2501 	int r;
2502 
2503 	BUG_ON(result_max > CEPH_PG_MAX_SIZE);
2504 
2505 	arg_map = lookup_choose_arg_map(&map->crush->choose_args,
2506 					choose_args_index);
2507 	if (!arg_map)
2508 		arg_map = lookup_choose_arg_map(&map->crush->choose_args,
2509 						CEPH_DEFAULT_CHOOSE_ARGS);
2510 
2511 	work = get_workspace(&map->crush_wsm, map->crush);
2512 	r = crush_do_rule(map->crush, ruleno, x, result, result_max,
2513 			  weight, weight_max, work,
2514 			  arg_map ? arg_map->args : NULL);
2515 	put_workspace(&map->crush_wsm, work);
2516 	return r;
2517 }
2518 
remove_nonexistent_osds(struct ceph_osdmap * osdmap,struct ceph_pg_pool_info * pi,struct ceph_osds * set)2519 static void remove_nonexistent_osds(struct ceph_osdmap *osdmap,
2520 				    struct ceph_pg_pool_info *pi,
2521 				    struct ceph_osds *set)
2522 {
2523 	int i;
2524 
2525 	if (ceph_can_shift_osds(pi)) {
2526 		int removed = 0;
2527 
2528 		/* shift left */
2529 		for (i = 0; i < set->size; i++) {
2530 			if (!ceph_osd_exists(osdmap, set->osds[i])) {
2531 				removed++;
2532 				continue;
2533 			}
2534 			if (removed)
2535 				set->osds[i - removed] = set->osds[i];
2536 		}
2537 		set->size -= removed;
2538 	} else {
2539 		/* set dne devices to NONE */
2540 		for (i = 0; i < set->size; i++) {
2541 			if (!ceph_osd_exists(osdmap, set->osds[i]))
2542 				set->osds[i] = CRUSH_ITEM_NONE;
2543 		}
2544 	}
2545 }
2546 
2547 /*
2548  * Calculate raw set (CRUSH output) for given PG and filter out
2549  * nonexistent OSDs.  ->primary is undefined for a raw set.
2550  *
2551  * Placement seed (CRUSH input) is returned through @ppps.
2552  */
pg_to_raw_osds(struct ceph_osdmap * osdmap,struct ceph_pg_pool_info * pi,const struct ceph_pg * raw_pgid,struct ceph_osds * raw,u32 * ppps)2553 static void pg_to_raw_osds(struct ceph_osdmap *osdmap,
2554 			   struct ceph_pg_pool_info *pi,
2555 			   const struct ceph_pg *raw_pgid,
2556 			   struct ceph_osds *raw,
2557 			   u32 *ppps)
2558 {
2559 	u32 pps = raw_pg_to_pps(pi, raw_pgid);
2560 	int ruleno;
2561 	int len;
2562 
2563 	ceph_osds_init(raw);
2564 	if (ppps)
2565 		*ppps = pps;
2566 
2567 	ruleno = crush_find_rule(osdmap->crush, pi->crush_ruleset, pi->type,
2568 				 pi->size);
2569 	if (ruleno < 0) {
2570 		pr_err("no crush rule: pool %lld ruleset %d type %d size %d\n",
2571 		       pi->id, pi->crush_ruleset, pi->type, pi->size);
2572 		return;
2573 	}
2574 
2575 	if (pi->size > ARRAY_SIZE(raw->osds)) {
2576 		pr_err_ratelimited("pool %lld ruleset %d type %d too wide: size %d > %zu\n",
2577 		       pi->id, pi->crush_ruleset, pi->type, pi->size,
2578 		       ARRAY_SIZE(raw->osds));
2579 		return;
2580 	}
2581 
2582 	len = do_crush(osdmap, ruleno, pps, raw->osds, pi->size,
2583 		       osdmap->osd_weight, osdmap->max_osd, pi->id);
2584 	if (len < 0) {
2585 		pr_err("error %d from crush rule %d: pool %lld ruleset %d type %d size %d\n",
2586 		       len, ruleno, pi->id, pi->crush_ruleset, pi->type,
2587 		       pi->size);
2588 		return;
2589 	}
2590 
2591 	raw->size = len;
2592 	remove_nonexistent_osds(osdmap, pi, raw);
2593 }
2594 
2595 /* apply pg_upmap[_items] mappings */
apply_upmap(struct ceph_osdmap * osdmap,const struct ceph_pg * pgid,struct ceph_osds * raw)2596 static void apply_upmap(struct ceph_osdmap *osdmap,
2597 			const struct ceph_pg *pgid,
2598 			struct ceph_osds *raw)
2599 {
2600 	struct ceph_pg_mapping *pg;
2601 	int i, j;
2602 
2603 	pg = lookup_pg_mapping(&osdmap->pg_upmap, pgid);
2604 	if (pg) {
2605 		/* make sure targets aren't marked out */
2606 		for (i = 0; i < pg->pg_upmap.len; i++) {
2607 			int osd = pg->pg_upmap.osds[i];
2608 
2609 			if (osd != CRUSH_ITEM_NONE &&
2610 			    osd < osdmap->max_osd &&
2611 			    osdmap->osd_weight[osd] == 0) {
2612 				/* reject/ignore explicit mapping */
2613 				return;
2614 			}
2615 		}
2616 		for (i = 0; i < pg->pg_upmap.len; i++)
2617 			raw->osds[i] = pg->pg_upmap.osds[i];
2618 		raw->size = pg->pg_upmap.len;
2619 		/* check and apply pg_upmap_items, if any */
2620 	}
2621 
2622 	pg = lookup_pg_mapping(&osdmap->pg_upmap_items, pgid);
2623 	if (pg) {
2624 		/*
2625 		 * Note: this approach does not allow a bidirectional swap,
2626 		 * e.g., [[1,2],[2,1]] applied to [0,1,2] -> [0,2,1].
2627 		 */
2628 		for (i = 0; i < pg->pg_upmap_items.len; i++) {
2629 			int from = pg->pg_upmap_items.from_to[i][0];
2630 			int to = pg->pg_upmap_items.from_to[i][1];
2631 			int pos = -1;
2632 			bool exists = false;
2633 
2634 			/* make sure replacement doesn't already appear */
2635 			for (j = 0; j < raw->size; j++) {
2636 				int osd = raw->osds[j];
2637 
2638 				if (osd == to) {
2639 					exists = true;
2640 					break;
2641 				}
2642 				/* ignore mapping if target is marked out */
2643 				if (osd == from && pos < 0 &&
2644 				    !(to != CRUSH_ITEM_NONE &&
2645 				      to < osdmap->max_osd &&
2646 				      osdmap->osd_weight[to] == 0)) {
2647 					pos = j;
2648 				}
2649 			}
2650 			if (!exists && pos >= 0)
2651 				raw->osds[pos] = to;
2652 		}
2653 	}
2654 }
2655 
2656 /*
2657  * Given raw set, calculate up set and up primary.  By definition of an
2658  * up set, the result won't contain nonexistent or down OSDs.
2659  *
2660  * This is done in-place - on return @set is the up set.  If it's
2661  * empty, ->primary will remain undefined.
2662  */
raw_to_up_osds(struct ceph_osdmap * osdmap,struct ceph_pg_pool_info * pi,struct ceph_osds * set)2663 static void raw_to_up_osds(struct ceph_osdmap *osdmap,
2664 			   struct ceph_pg_pool_info *pi,
2665 			   struct ceph_osds *set)
2666 {
2667 	int i;
2668 
2669 	/* ->primary is undefined for a raw set */
2670 	BUG_ON(set->primary != -1);
2671 
2672 	if (ceph_can_shift_osds(pi)) {
2673 		int removed = 0;
2674 
2675 		/* shift left */
2676 		for (i = 0; i < set->size; i++) {
2677 			if (ceph_osd_is_down(osdmap, set->osds[i])) {
2678 				removed++;
2679 				continue;
2680 			}
2681 			if (removed)
2682 				set->osds[i - removed] = set->osds[i];
2683 		}
2684 		set->size -= removed;
2685 		if (set->size > 0)
2686 			set->primary = set->osds[0];
2687 	} else {
2688 		/* set down/dne devices to NONE */
2689 		for (i = set->size - 1; i >= 0; i--) {
2690 			if (ceph_osd_is_down(osdmap, set->osds[i]))
2691 				set->osds[i] = CRUSH_ITEM_NONE;
2692 			else
2693 				set->primary = set->osds[i];
2694 		}
2695 	}
2696 }
2697 
apply_primary_affinity(struct ceph_osdmap * osdmap,struct ceph_pg_pool_info * pi,u32 pps,struct ceph_osds * up)2698 static void apply_primary_affinity(struct ceph_osdmap *osdmap,
2699 				   struct ceph_pg_pool_info *pi,
2700 				   u32 pps,
2701 				   struct ceph_osds *up)
2702 {
2703 	int i;
2704 	int pos = -1;
2705 
2706 	/*
2707 	 * Do we have any non-default primary_affinity values for these
2708 	 * osds?
2709 	 */
2710 	if (!osdmap->osd_primary_affinity)
2711 		return;
2712 
2713 	for (i = 0; i < up->size; i++) {
2714 		int osd = up->osds[i];
2715 
2716 		if (osd != CRUSH_ITEM_NONE &&
2717 		    osdmap->osd_primary_affinity[osd] !=
2718 					CEPH_OSD_DEFAULT_PRIMARY_AFFINITY) {
2719 			break;
2720 		}
2721 	}
2722 	if (i == up->size)
2723 		return;
2724 
2725 	/*
2726 	 * Pick the primary.  Feed both the seed (for the pg) and the
2727 	 * osd into the hash/rng so that a proportional fraction of an
2728 	 * osd's pgs get rejected as primary.
2729 	 */
2730 	for (i = 0; i < up->size; i++) {
2731 		int osd = up->osds[i];
2732 		u32 aff;
2733 
2734 		if (osd == CRUSH_ITEM_NONE)
2735 			continue;
2736 
2737 		aff = osdmap->osd_primary_affinity[osd];
2738 		if (aff < CEPH_OSD_MAX_PRIMARY_AFFINITY &&
2739 		    (crush_hash32_2(CRUSH_HASH_RJENKINS1,
2740 				    pps, osd) >> 16) >= aff) {
2741 			/*
2742 			 * We chose not to use this primary.  Note it
2743 			 * anyway as a fallback in case we don't pick
2744 			 * anyone else, but keep looking.
2745 			 */
2746 			if (pos < 0)
2747 				pos = i;
2748 		} else {
2749 			pos = i;
2750 			break;
2751 		}
2752 	}
2753 	if (pos < 0)
2754 		return;
2755 
2756 	up->primary = up->osds[pos];
2757 
2758 	if (ceph_can_shift_osds(pi) && pos > 0) {
2759 		/* move the new primary to the front */
2760 		for (i = pos; i > 0; i--)
2761 			up->osds[i] = up->osds[i - 1];
2762 		up->osds[0] = up->primary;
2763 	}
2764 }
2765 
2766 /*
2767  * Get pg_temp and primary_temp mappings for given PG.
2768  *
2769  * Note that a PG may have none, only pg_temp, only primary_temp or
2770  * both pg_temp and primary_temp mappings.  This means @temp isn't
2771  * always a valid OSD set on return: in the "only primary_temp" case,
2772  * @temp will have its ->primary >= 0 but ->size == 0.
2773  */
get_temp_osds(struct ceph_osdmap * osdmap,struct ceph_pg_pool_info * pi,const struct ceph_pg * pgid,struct ceph_osds * temp)2774 static void get_temp_osds(struct ceph_osdmap *osdmap,
2775 			  struct ceph_pg_pool_info *pi,
2776 			  const struct ceph_pg *pgid,
2777 			  struct ceph_osds *temp)
2778 {
2779 	struct ceph_pg_mapping *pg;
2780 	int i;
2781 
2782 	ceph_osds_init(temp);
2783 
2784 	/* pg_temp? */
2785 	pg = lookup_pg_mapping(&osdmap->pg_temp, pgid);
2786 	if (pg) {
2787 		for (i = 0; i < pg->pg_temp.len; i++) {
2788 			if (ceph_osd_is_down(osdmap, pg->pg_temp.osds[i])) {
2789 				if (ceph_can_shift_osds(pi))
2790 					continue;
2791 
2792 				temp->osds[temp->size++] = CRUSH_ITEM_NONE;
2793 			} else {
2794 				temp->osds[temp->size++] = pg->pg_temp.osds[i];
2795 			}
2796 		}
2797 
2798 		/* apply pg_temp's primary */
2799 		for (i = 0; i < temp->size; i++) {
2800 			if (temp->osds[i] != CRUSH_ITEM_NONE) {
2801 				temp->primary = temp->osds[i];
2802 				break;
2803 			}
2804 		}
2805 	}
2806 
2807 	/* primary_temp? */
2808 	pg = lookup_pg_mapping(&osdmap->primary_temp, pgid);
2809 	if (pg)
2810 		temp->primary = pg->primary_temp.osd;
2811 }
2812 
2813 /*
2814  * Map a PG to its acting set as well as its up set.
2815  *
2816  * Acting set is used for data mapping purposes, while up set can be
2817  * recorded for detecting interval changes and deciding whether to
2818  * resend a request.
2819  */
ceph_pg_to_up_acting_osds(struct ceph_osdmap * osdmap,struct ceph_pg_pool_info * pi,const struct ceph_pg * raw_pgid,struct ceph_osds * up,struct ceph_osds * acting)2820 void ceph_pg_to_up_acting_osds(struct ceph_osdmap *osdmap,
2821 			       struct ceph_pg_pool_info *pi,
2822 			       const struct ceph_pg *raw_pgid,
2823 			       struct ceph_osds *up,
2824 			       struct ceph_osds *acting)
2825 {
2826 	struct ceph_pg pgid;
2827 	u32 pps;
2828 
2829 	WARN_ON(pi->id != raw_pgid->pool);
2830 	raw_pg_to_pg(pi, raw_pgid, &pgid);
2831 
2832 	pg_to_raw_osds(osdmap, pi, raw_pgid, up, &pps);
2833 	apply_upmap(osdmap, &pgid, up);
2834 	raw_to_up_osds(osdmap, pi, up);
2835 	apply_primary_affinity(osdmap, pi, pps, up);
2836 	get_temp_osds(osdmap, pi, &pgid, acting);
2837 	if (!acting->size) {
2838 		memcpy(acting->osds, up->osds, up->size * sizeof(up->osds[0]));
2839 		acting->size = up->size;
2840 		if (acting->primary == -1)
2841 			acting->primary = up->primary;
2842 	}
2843 	WARN_ON(!osds_valid(up) || !osds_valid(acting));
2844 }
2845 
ceph_pg_to_primary_shard(struct ceph_osdmap * osdmap,struct ceph_pg_pool_info * pi,const struct ceph_pg * raw_pgid,struct ceph_spg * spgid)2846 bool ceph_pg_to_primary_shard(struct ceph_osdmap *osdmap,
2847 			      struct ceph_pg_pool_info *pi,
2848 			      const struct ceph_pg *raw_pgid,
2849 			      struct ceph_spg *spgid)
2850 {
2851 	struct ceph_pg pgid;
2852 	struct ceph_osds up, acting;
2853 	int i;
2854 
2855 	WARN_ON(pi->id != raw_pgid->pool);
2856 	raw_pg_to_pg(pi, raw_pgid, &pgid);
2857 
2858 	if (ceph_can_shift_osds(pi)) {
2859 		spgid->pgid = pgid; /* struct */
2860 		spgid->shard = CEPH_SPG_NOSHARD;
2861 		return true;
2862 	}
2863 
2864 	ceph_pg_to_up_acting_osds(osdmap, pi, &pgid, &up, &acting);
2865 	for (i = 0; i < acting.size; i++) {
2866 		if (acting.osds[i] == acting.primary) {
2867 			spgid->pgid = pgid; /* struct */
2868 			spgid->shard = i;
2869 			return true;
2870 		}
2871 	}
2872 
2873 	return false;
2874 }
2875 
2876 /*
2877  * Return acting primary for given PG, or -1 if none.
2878  */
ceph_pg_to_acting_primary(struct ceph_osdmap * osdmap,const struct ceph_pg * raw_pgid)2879 int ceph_pg_to_acting_primary(struct ceph_osdmap *osdmap,
2880 			      const struct ceph_pg *raw_pgid)
2881 {
2882 	struct ceph_pg_pool_info *pi;
2883 	struct ceph_osds up, acting;
2884 
2885 	pi = ceph_pg_pool_by_id(osdmap, raw_pgid->pool);
2886 	if (!pi)
2887 		return -1;
2888 
2889 	ceph_pg_to_up_acting_osds(osdmap, pi, raw_pgid, &up, &acting);
2890 	return acting.primary;
2891 }
2892 EXPORT_SYMBOL(ceph_pg_to_acting_primary);
2893 
alloc_crush_loc(size_t type_name_len,size_t name_len)2894 static struct crush_loc_node *alloc_crush_loc(size_t type_name_len,
2895 					      size_t name_len)
2896 {
2897 	struct crush_loc_node *loc;
2898 
2899 	loc = kmalloc(sizeof(*loc) + type_name_len + name_len + 2, GFP_NOIO);
2900 	if (!loc)
2901 		return NULL;
2902 
2903 	RB_CLEAR_NODE(&loc->cl_node);
2904 	return loc;
2905 }
2906 
free_crush_loc(struct crush_loc_node * loc)2907 static void free_crush_loc(struct crush_loc_node *loc)
2908 {
2909 	WARN_ON(!RB_EMPTY_NODE(&loc->cl_node));
2910 
2911 	kfree(loc);
2912 }
2913 
crush_loc_compare(const struct crush_loc * loc1,const struct crush_loc * loc2)2914 static int crush_loc_compare(const struct crush_loc *loc1,
2915 			     const struct crush_loc *loc2)
2916 {
2917 	return strcmp(loc1->cl_type_name, loc2->cl_type_name) ?:
2918 	       strcmp(loc1->cl_name, loc2->cl_name);
2919 }
2920 
DEFINE_RB_FUNCS2(crush_loc,struct crush_loc_node,cl_loc,crush_loc_compare,RB_BYPTR,const struct crush_loc *,cl_node)2921 DEFINE_RB_FUNCS2(crush_loc, struct crush_loc_node, cl_loc, crush_loc_compare,
2922 		 RB_BYPTR, const struct crush_loc *, cl_node)
2923 
2924 /*
2925  * Parses a set of <bucket type name>':'<bucket name> pairs separated
2926  * by '|', e.g. "rack:foo1|rack:foo2|datacenter:bar".
2927  *
2928  * Note that @crush_location is modified by strsep().
2929  */
2930 int ceph_parse_crush_location(char *crush_location, struct rb_root *locs)
2931 {
2932 	struct crush_loc_node *loc;
2933 	const char *type_name, *name, *colon;
2934 	size_t type_name_len, name_len;
2935 
2936 	dout("%s '%s'\n", __func__, crush_location);
2937 	while ((type_name = strsep(&crush_location, "|"))) {
2938 		colon = strchr(type_name, ':');
2939 		if (!colon)
2940 			return -EINVAL;
2941 
2942 		type_name_len = colon - type_name;
2943 		if (type_name_len == 0)
2944 			return -EINVAL;
2945 
2946 		name = colon + 1;
2947 		name_len = strlen(name);
2948 		if (name_len == 0)
2949 			return -EINVAL;
2950 
2951 		loc = alloc_crush_loc(type_name_len, name_len);
2952 		if (!loc)
2953 			return -ENOMEM;
2954 
2955 		loc->cl_loc.cl_type_name = loc->cl_data;
2956 		memcpy(loc->cl_loc.cl_type_name, type_name, type_name_len);
2957 		loc->cl_loc.cl_type_name[type_name_len] = '\0';
2958 
2959 		loc->cl_loc.cl_name = loc->cl_data + type_name_len + 1;
2960 		memcpy(loc->cl_loc.cl_name, name, name_len);
2961 		loc->cl_loc.cl_name[name_len] = '\0';
2962 
2963 		if (!__insert_crush_loc(locs, loc)) {
2964 			free_crush_loc(loc);
2965 			return -EEXIST;
2966 		}
2967 
2968 		dout("%s type_name '%s' name '%s'\n", __func__,
2969 		     loc->cl_loc.cl_type_name, loc->cl_loc.cl_name);
2970 	}
2971 
2972 	return 0;
2973 }
2974 
ceph_compare_crush_locs(struct rb_root * locs1,struct rb_root * locs2)2975 int ceph_compare_crush_locs(struct rb_root *locs1, struct rb_root *locs2)
2976 {
2977 	struct rb_node *n1 = rb_first(locs1);
2978 	struct rb_node *n2 = rb_first(locs2);
2979 	int ret;
2980 
2981 	for ( ; n1 && n2; n1 = rb_next(n1), n2 = rb_next(n2)) {
2982 		struct crush_loc_node *loc1 =
2983 		    rb_entry(n1, struct crush_loc_node, cl_node);
2984 		struct crush_loc_node *loc2 =
2985 		    rb_entry(n2, struct crush_loc_node, cl_node);
2986 
2987 		ret = crush_loc_compare(&loc1->cl_loc, &loc2->cl_loc);
2988 		if (ret)
2989 			return ret;
2990 	}
2991 
2992 	if (!n1 && n2)
2993 		return -1;
2994 	if (n1 && !n2)
2995 		return 1;
2996 	return 0;
2997 }
2998 
ceph_clear_crush_locs(struct rb_root * locs)2999 void ceph_clear_crush_locs(struct rb_root *locs)
3000 {
3001 	while (!RB_EMPTY_ROOT(locs)) {
3002 		struct crush_loc_node *loc =
3003 		    rb_entry(rb_first(locs), struct crush_loc_node, cl_node);
3004 
3005 		erase_crush_loc(locs, loc);
3006 		free_crush_loc(loc);
3007 	}
3008 }
3009 
3010 /*
3011  * [a-zA-Z0-9-_.]+
3012  */
is_valid_crush_name(const char * name)3013 static bool is_valid_crush_name(const char *name)
3014 {
3015 	do {
3016 		if (!('a' <= *name && *name <= 'z') &&
3017 		    !('A' <= *name && *name <= 'Z') &&
3018 		    !('0' <= *name && *name <= '9') &&
3019 		    *name != '-' && *name != '_' && *name != '.')
3020 			return false;
3021 	} while (*++name != '\0');
3022 
3023 	return true;
3024 }
3025 
3026 /*
3027  * Gets the parent of an item.  Returns its id (<0 because the
3028  * parent is always a bucket), type id (>0 for the same reason,
3029  * via @parent_type_id) and location (via @parent_loc).  If no
3030  * parent, returns 0.
3031  *
3032  * Does a linear search, as there are no parent pointers of any
3033  * kind.  Note that the result is ambiguous for items that occur
3034  * multiple times in the map.
3035  */
get_immediate_parent(struct crush_map * c,int id,u16 * parent_type_id,struct crush_loc * parent_loc)3036 static int get_immediate_parent(struct crush_map *c, int id,
3037 				u16 *parent_type_id,
3038 				struct crush_loc *parent_loc)
3039 {
3040 	struct crush_bucket *b;
3041 	struct crush_name_node *type_cn, *cn;
3042 	int i, j;
3043 
3044 	for (i = 0; i < c->max_buckets; i++) {
3045 		b = c->buckets[i];
3046 		if (!b)
3047 			continue;
3048 
3049 		/* ignore per-class shadow hierarchy */
3050 		cn = lookup_crush_name(&c->names, b->id);
3051 		if (!cn || !is_valid_crush_name(cn->cn_name))
3052 			continue;
3053 
3054 		for (j = 0; j < b->size; j++) {
3055 			if (b->items[j] != id)
3056 				continue;
3057 
3058 			*parent_type_id = b->type;
3059 			type_cn = lookup_crush_name(&c->type_names, b->type);
3060 			parent_loc->cl_type_name = type_cn->cn_name;
3061 			parent_loc->cl_name = cn->cn_name;
3062 			return b->id;
3063 		}
3064 	}
3065 
3066 	return 0;  /* no parent */
3067 }
3068 
3069 /*
3070  * Calculates the locality/distance from an item to a client
3071  * location expressed in terms of CRUSH hierarchy as a set of
3072  * (bucket type name, bucket name) pairs.  Specifically, looks
3073  * for the lowest-valued bucket type for which the location of
3074  * @id matches one of the locations in @locs, so for standard
3075  * bucket types (host = 1, rack = 3, datacenter = 8, zone = 9)
3076  * a matching host is closer than a matching rack and a matching
3077  * data center is closer than a matching zone.
3078  *
3079  * Specifying multiple locations (a "multipath" location) such
3080  * as "rack=foo1 rack=foo2 datacenter=bar" is allowed -- @locs
3081  * is a multimap.  The locality will be:
3082  *
3083  * - 3 for OSDs in racks foo1 and foo2
3084  * - 8 for OSDs in data center bar
3085  * - -1 for all other OSDs
3086  *
3087  * The lowest possible bucket type is 1, so the best locality
3088  * for an OSD is 1 (i.e. a matching host).  Locality 0 would be
3089  * the OSD itself.
3090  */
ceph_get_crush_locality(struct ceph_osdmap * osdmap,int id,struct rb_root * locs)3091 int ceph_get_crush_locality(struct ceph_osdmap *osdmap, int id,
3092 			    struct rb_root *locs)
3093 {
3094 	struct crush_loc loc;
3095 	u16 type_id;
3096 
3097 	/*
3098 	 * Instead of repeated get_immediate_parent() calls,
3099 	 * the location of @id could be obtained with a single
3100 	 * depth-first traversal.
3101 	 */
3102 	for (;;) {
3103 		id = get_immediate_parent(osdmap->crush, id, &type_id, &loc);
3104 		if (id >= 0)
3105 			return -1;  /* not local */
3106 
3107 		if (lookup_crush_loc(locs, &loc))
3108 			return type_id;
3109 	}
3110 }
3111