1// SPDX-License-Identifier: GPL-2.0-or-later
2/*
3   drbd.c
4
5   This file is part of DRBD by Philipp Reisner and Lars Ellenberg.
6
7   Copyright (C) 2001-2008, LINBIT Information Technologies GmbH.
8   Copyright (C) 1999-2008, Philipp Reisner <philipp.reisner@linbit.com>.
9   Copyright (C) 2002-2008, Lars Ellenberg <lars.ellenberg@linbit.com>.
10
11   Thanks to Carter Burden, Bart Grantham and Gennadiy Nerubayev
12   from Logicworks, Inc. for making SDP replication support possible.
13
14
15 */
16
17#define pr_fmt(fmt)	KBUILD_MODNAME ": " fmt
18
19#include <linux/module.h>
20#include <linux/jiffies.h>
21#include <linux/drbd.h>
22#include <linux/uaccess.h>
23#include <asm/types.h>
24#include <net/sock.h>
25#include <linux/ctype.h>
26#include <linux/mutex.h>
27#include <linux/fs.h>
28#include <linux/file.h>
29#include <linux/proc_fs.h>
30#include <linux/init.h>
31#include <linux/mm.h>
32#include <linux/memcontrol.h>
33#include <linux/mm_inline.h>
34#include <linux/slab.h>
35#include <linux/random.h>
36#include <linux/reboot.h>
37#include <linux/notifier.h>
38#include <linux/kthread.h>
39#include <linux/workqueue.h>
40#define __KERNEL_SYSCALLS__
41#include <linux/unistd.h>
42#include <linux/vmalloc.h>
43#include <linux/sched/signal.h>
44
45#include <linux/drbd_limits.h>
46#include "drbd_int.h"
47#include "drbd_protocol.h"
48#include "drbd_req.h" /* only for _req_mod in tl_release and tl_clear */
49#include "drbd_vli.h"
50#include "drbd_debugfs.h"
51
52static DEFINE_MUTEX(drbd_main_mutex);
53static int drbd_open(struct block_device *bdev, fmode_t mode);
54static void drbd_release(struct gendisk *gd, fmode_t mode);
55static void md_sync_timer_fn(struct timer_list *t);
56static int w_bitmap_io(struct drbd_work *w, int unused);
57
58MODULE_AUTHOR("Philipp Reisner <phil@linbit.com>, "
59	      "Lars Ellenberg <lars@linbit.com>");
60MODULE_DESCRIPTION("drbd - Distributed Replicated Block Device v" REL_VERSION);
61MODULE_VERSION(REL_VERSION);
62MODULE_LICENSE("GPL");
63MODULE_PARM_DESC(minor_count, "Approximate number of drbd devices ("
64		 __stringify(DRBD_MINOR_COUNT_MIN) "-" __stringify(DRBD_MINOR_COUNT_MAX) ")");
65MODULE_ALIAS_BLOCKDEV_MAJOR(DRBD_MAJOR);
66
67#include <linux/moduleparam.h>
68/* thanks to these macros, if compiled into the kernel (not-module),
69 * these become boot parameters (e.g., drbd.minor_count) */
70
71#ifdef CONFIG_DRBD_FAULT_INJECTION
72int drbd_enable_faults;
73int drbd_fault_rate;
74static int drbd_fault_count;
75static int drbd_fault_devs;
76/* bitmap of enabled faults */
77module_param_named(enable_faults, drbd_enable_faults, int, 0664);
78/* fault rate % value - applies to all enabled faults */
79module_param_named(fault_rate, drbd_fault_rate, int, 0664);
80/* count of faults inserted */
81module_param_named(fault_count, drbd_fault_count, int, 0664);
82/* bitmap of devices to insert faults on */
83module_param_named(fault_devs, drbd_fault_devs, int, 0644);
84#endif
85
86/* module parameters we can keep static */
87static bool drbd_allow_oos; /* allow_open_on_secondary */
88static bool drbd_disable_sendpage;
89MODULE_PARM_DESC(allow_oos, "DONT USE!");
90module_param_named(allow_oos, drbd_allow_oos, bool, 0);
91module_param_named(disable_sendpage, drbd_disable_sendpage, bool, 0644);
92
93/* module parameters we share */
94int drbd_proc_details; /* Detail level in proc drbd*/
95module_param_named(proc_details, drbd_proc_details, int, 0644);
96/* module parameters shared with defaults */
97unsigned int drbd_minor_count = DRBD_MINOR_COUNT_DEF;
98/* Module parameter for setting the user mode helper program
99 * to run. Default is /sbin/drbdadm */
100char drbd_usermode_helper[80] = "/sbin/drbdadm";
101module_param_named(minor_count, drbd_minor_count, uint, 0444);
102module_param_string(usermode_helper, drbd_usermode_helper, sizeof(drbd_usermode_helper), 0644);
103
104/* in 2.6.x, our device mapping and config info contains our virtual gendisks
105 * as member "struct gendisk *vdisk;"
106 */
107struct idr drbd_devices;
108struct list_head drbd_resources;
109struct mutex resources_mutex;
110
111struct kmem_cache *drbd_request_cache;
112struct kmem_cache *drbd_ee_cache;	/* peer requests */
113struct kmem_cache *drbd_bm_ext_cache;	/* bitmap extents */
114struct kmem_cache *drbd_al_ext_cache;	/* activity log extents */
115mempool_t drbd_request_mempool;
116mempool_t drbd_ee_mempool;
117mempool_t drbd_md_io_page_pool;
118struct bio_set drbd_md_io_bio_set;
119struct bio_set drbd_io_bio_set;
120
121/* I do not use a standard mempool, because:
122   1) I want to hand out the pre-allocated objects first.
123   2) I want to be able to interrupt sleeping allocation with a signal.
124   Note: This is a single linked list, the next pointer is the private
125	 member of struct page.
126 */
127struct page *drbd_pp_pool;
128spinlock_t   drbd_pp_lock;
129int          drbd_pp_vacant;
130wait_queue_head_t drbd_pp_wait;
131
132DEFINE_RATELIMIT_STATE(drbd_ratelimit_state, 5 * HZ, 5);
133
134static const struct block_device_operations drbd_ops = {
135	.owner		= THIS_MODULE,
136	.submit_bio	= drbd_submit_bio,
137	.open		= drbd_open,
138	.release	= drbd_release,
139};
140
141struct bio *bio_alloc_drbd(gfp_t gfp_mask)
142{
143	struct bio *bio;
144
145	if (!bioset_initialized(&drbd_md_io_bio_set))
146		return bio_alloc(gfp_mask, 1);
147
148	bio = bio_alloc_bioset(gfp_mask, 1, &drbd_md_io_bio_set);
149	if (!bio)
150		return NULL;
151	return bio;
152}
153
154#ifdef __CHECKER__
155/* When checking with sparse, and this is an inline function, sparse will
156   give tons of false positives. When this is a real functions sparse works.
157 */
158int _get_ldev_if_state(struct drbd_device *device, enum drbd_disk_state mins)
159{
160	int io_allowed;
161
162	atomic_inc(&device->local_cnt);
163	io_allowed = (device->state.disk >= mins);
164	if (!io_allowed) {
165		if (atomic_dec_and_test(&device->local_cnt))
166			wake_up(&device->misc_wait);
167	}
168	return io_allowed;
169}
170
171#endif
172
173/**
174 * tl_release() - mark as BARRIER_ACKED all requests in the corresponding transfer log epoch
175 * @connection:	DRBD connection.
176 * @barrier_nr:	Expected identifier of the DRBD write barrier packet.
177 * @set_size:	Expected number of requests before that barrier.
178 *
179 * In case the passed barrier_nr or set_size does not match the oldest
180 * epoch of not yet barrier-acked requests, this function will cause a
181 * termination of the connection.
182 */
183void tl_release(struct drbd_connection *connection, unsigned int barrier_nr,
184		unsigned int set_size)
185{
186	struct drbd_request *r;
187	struct drbd_request *req = NULL, *tmp = NULL;
188	int expect_epoch = 0;
189	int expect_size = 0;
190
191	spin_lock_irq(&connection->resource->req_lock);
192
193	/* find oldest not yet barrier-acked write request,
194	 * count writes in its epoch. */
195	list_for_each_entry(r, &connection->transfer_log, tl_requests) {
196		const unsigned s = r->rq_state;
197		if (!req) {
198			if (!(s & RQ_WRITE))
199				continue;
200			if (!(s & RQ_NET_MASK))
201				continue;
202			if (s & RQ_NET_DONE)
203				continue;
204			req = r;
205			expect_epoch = req->epoch;
206			expect_size ++;
207		} else {
208			if (r->epoch != expect_epoch)
209				break;
210			if (!(s & RQ_WRITE))
211				continue;
212			/* if (s & RQ_DONE): not expected */
213			/* if (!(s & RQ_NET_MASK)): not expected */
214			expect_size++;
215		}
216	}
217
218	/* first some paranoia code */
219	if (req == NULL) {
220		drbd_err(connection, "BAD! BarrierAck #%u received, but no epoch in tl!?\n",
221			 barrier_nr);
222		goto bail;
223	}
224	if (expect_epoch != barrier_nr) {
225		drbd_err(connection, "BAD! BarrierAck #%u received, expected #%u!\n",
226			 barrier_nr, expect_epoch);
227		goto bail;
228	}
229
230	if (expect_size != set_size) {
231		drbd_err(connection, "BAD! BarrierAck #%u received with n_writes=%u, expected n_writes=%u!\n",
232			 barrier_nr, set_size, expect_size);
233		goto bail;
234	}
235
236	/* Clean up list of requests processed during current epoch. */
237	/* this extra list walk restart is paranoia,
238	 * to catch requests being barrier-acked "unexpectedly".
239	 * It usually should find the same req again, or some READ preceding it. */
240	list_for_each_entry(req, &connection->transfer_log, tl_requests)
241		if (req->epoch == expect_epoch) {
242			tmp = req;
243			break;
244		}
245	req = list_prepare_entry(tmp, &connection->transfer_log, tl_requests);
246	list_for_each_entry_safe_from(req, r, &connection->transfer_log, tl_requests) {
247		if (req->epoch != expect_epoch)
248			break;
249		_req_mod(req, BARRIER_ACKED);
250	}
251	spin_unlock_irq(&connection->resource->req_lock);
252
253	return;
254
255bail:
256	spin_unlock_irq(&connection->resource->req_lock);
257	conn_request_state(connection, NS(conn, C_PROTOCOL_ERROR), CS_HARD);
258}
259
260
261/**
262 * _tl_restart() - Walks the transfer log, and applies an action to all requests
263 * @connection:	DRBD connection to operate on.
264 * @what:       The action/event to perform with all request objects
265 *
266 * @what might be one of CONNECTION_LOST_WHILE_PENDING, RESEND, FAIL_FROZEN_DISK_IO,
267 * RESTART_FROZEN_DISK_IO.
268 */
269/* must hold resource->req_lock */
270void _tl_restart(struct drbd_connection *connection, enum drbd_req_event what)
271{
272	struct drbd_request *req, *r;
273
274	list_for_each_entry_safe(req, r, &connection->transfer_log, tl_requests)
275		_req_mod(req, what);
276}
277
278void tl_restart(struct drbd_connection *connection, enum drbd_req_event what)
279{
280	spin_lock_irq(&connection->resource->req_lock);
281	_tl_restart(connection, what);
282	spin_unlock_irq(&connection->resource->req_lock);
283}
284
285/**
286 * tl_clear() - Clears all requests and &struct drbd_tl_epoch objects out of the TL
287 * @device:	DRBD device.
288 *
289 * This is called after the connection to the peer was lost. The storage covered
290 * by the requests on the transfer gets marked as our of sync. Called from the
291 * receiver thread and the worker thread.
292 */
293void tl_clear(struct drbd_connection *connection)
294{
295	tl_restart(connection, CONNECTION_LOST_WHILE_PENDING);
296}
297
298/**
299 * tl_abort_disk_io() - Abort disk I/O for all requests for a certain device in the TL
300 * @device:	DRBD device.
301 */
302void tl_abort_disk_io(struct drbd_device *device)
303{
304	struct drbd_connection *connection = first_peer_device(device)->connection;
305	struct drbd_request *req, *r;
306
307	spin_lock_irq(&connection->resource->req_lock);
308	list_for_each_entry_safe(req, r, &connection->transfer_log, tl_requests) {
309		if (!(req->rq_state & RQ_LOCAL_PENDING))
310			continue;
311		if (req->device != device)
312			continue;
313		_req_mod(req, ABORT_DISK_IO);
314	}
315	spin_unlock_irq(&connection->resource->req_lock);
316}
317
318static int drbd_thread_setup(void *arg)
319{
320	struct drbd_thread *thi = (struct drbd_thread *) arg;
321	struct drbd_resource *resource = thi->resource;
322	unsigned long flags;
323	int retval;
324
325	snprintf(current->comm, sizeof(current->comm), "drbd_%c_%s",
326		 thi->name[0],
327		 resource->name);
328
329	allow_kernel_signal(DRBD_SIGKILL);
330	allow_kernel_signal(SIGXCPU);
331restart:
332	retval = thi->function(thi);
333
334	spin_lock_irqsave(&thi->t_lock, flags);
335
336	/* if the receiver has been "EXITING", the last thing it did
337	 * was set the conn state to "StandAlone",
338	 * if now a re-connect request comes in, conn state goes C_UNCONNECTED,
339	 * and receiver thread will be "started".
340	 * drbd_thread_start needs to set "RESTARTING" in that case.
341	 * t_state check and assignment needs to be within the same spinlock,
342	 * so either thread_start sees EXITING, and can remap to RESTARTING,
343	 * or thread_start see NONE, and can proceed as normal.
344	 */
345
346	if (thi->t_state == RESTARTING) {
347		drbd_info(resource, "Restarting %s thread\n", thi->name);
348		thi->t_state = RUNNING;
349		spin_unlock_irqrestore(&thi->t_lock, flags);
350		goto restart;
351	}
352
353	thi->task = NULL;
354	thi->t_state = NONE;
355	smp_mb();
356	complete_all(&thi->stop);
357	spin_unlock_irqrestore(&thi->t_lock, flags);
358
359	drbd_info(resource, "Terminating %s\n", current->comm);
360
361	/* Release mod reference taken when thread was started */
362
363	if (thi->connection)
364		kref_put(&thi->connection->kref, drbd_destroy_connection);
365	kref_put(&resource->kref, drbd_destroy_resource);
366	module_put(THIS_MODULE);
367	return retval;
368}
369
370static void drbd_thread_init(struct drbd_resource *resource, struct drbd_thread *thi,
371			     int (*func) (struct drbd_thread *), const char *name)
372{
373	spin_lock_init(&thi->t_lock);
374	thi->task    = NULL;
375	thi->t_state = NONE;
376	thi->function = func;
377	thi->resource = resource;
378	thi->connection = NULL;
379	thi->name = name;
380}
381
382int drbd_thread_start(struct drbd_thread *thi)
383{
384	struct drbd_resource *resource = thi->resource;
385	struct task_struct *nt;
386	unsigned long flags;
387
388	/* is used from state engine doing drbd_thread_stop_nowait,
389	 * while holding the req lock irqsave */
390	spin_lock_irqsave(&thi->t_lock, flags);
391
392	switch (thi->t_state) {
393	case NONE:
394		drbd_info(resource, "Starting %s thread (from %s [%d])\n",
395			 thi->name, current->comm, current->pid);
396
397		/* Get ref on module for thread - this is released when thread exits */
398		if (!try_module_get(THIS_MODULE)) {
399			drbd_err(resource, "Failed to get module reference in drbd_thread_start\n");
400			spin_unlock_irqrestore(&thi->t_lock, flags);
401			return false;
402		}
403
404		kref_get(&resource->kref);
405		if (thi->connection)
406			kref_get(&thi->connection->kref);
407
408		init_completion(&thi->stop);
409		thi->reset_cpu_mask = 1;
410		thi->t_state = RUNNING;
411		spin_unlock_irqrestore(&thi->t_lock, flags);
412		flush_signals(current); /* otherw. may get -ERESTARTNOINTR */
413
414		nt = kthread_create(drbd_thread_setup, (void *) thi,
415				    "drbd_%c_%s", thi->name[0], thi->resource->name);
416
417		if (IS_ERR(nt)) {
418			drbd_err(resource, "Couldn't start thread\n");
419
420			if (thi->connection)
421				kref_put(&thi->connection->kref, drbd_destroy_connection);
422			kref_put(&resource->kref, drbd_destroy_resource);
423			module_put(THIS_MODULE);
424			return false;
425		}
426		spin_lock_irqsave(&thi->t_lock, flags);
427		thi->task = nt;
428		thi->t_state = RUNNING;
429		spin_unlock_irqrestore(&thi->t_lock, flags);
430		wake_up_process(nt);
431		break;
432	case EXITING:
433		thi->t_state = RESTARTING;
434		drbd_info(resource, "Restarting %s thread (from %s [%d])\n",
435				thi->name, current->comm, current->pid);
436		fallthrough;
437	case RUNNING:
438	case RESTARTING:
439	default:
440		spin_unlock_irqrestore(&thi->t_lock, flags);
441		break;
442	}
443
444	return true;
445}
446
447
448void _drbd_thread_stop(struct drbd_thread *thi, int restart, int wait)
449{
450	unsigned long flags;
451
452	enum drbd_thread_state ns = restart ? RESTARTING : EXITING;
453
454	/* may be called from state engine, holding the req lock irqsave */
455	spin_lock_irqsave(&thi->t_lock, flags);
456
457	if (thi->t_state == NONE) {
458		spin_unlock_irqrestore(&thi->t_lock, flags);
459		if (restart)
460			drbd_thread_start(thi);
461		return;
462	}
463
464	if (thi->t_state != ns) {
465		if (thi->task == NULL) {
466			spin_unlock_irqrestore(&thi->t_lock, flags);
467			return;
468		}
469
470		thi->t_state = ns;
471		smp_mb();
472		init_completion(&thi->stop);
473		if (thi->task != current)
474			send_sig(DRBD_SIGKILL, thi->task, 1);
475	}
476
477	spin_unlock_irqrestore(&thi->t_lock, flags);
478
479	if (wait)
480		wait_for_completion(&thi->stop);
481}
482
483int conn_lowest_minor(struct drbd_connection *connection)
484{
485	struct drbd_peer_device *peer_device;
486	int vnr = 0, minor = -1;
487
488	rcu_read_lock();
489	peer_device = idr_get_next(&connection->peer_devices, &vnr);
490	if (peer_device)
491		minor = device_to_minor(peer_device->device);
492	rcu_read_unlock();
493
494	return minor;
495}
496
497#ifdef CONFIG_SMP
498/**
499 * drbd_calc_cpu_mask() - Generate CPU masks, spread over all CPUs
500 *
501 * Forces all threads of a resource onto the same CPU. This is beneficial for
502 * DRBD's performance. May be overwritten by user's configuration.
503 */
504static void drbd_calc_cpu_mask(cpumask_var_t *cpu_mask)
505{
506	unsigned int *resources_per_cpu, min_index = ~0;
507
508	resources_per_cpu = kcalloc(nr_cpu_ids, sizeof(*resources_per_cpu),
509				    GFP_KERNEL);
510	if (resources_per_cpu) {
511		struct drbd_resource *resource;
512		unsigned int cpu, min = ~0;
513
514		rcu_read_lock();
515		for_each_resource_rcu(resource, &drbd_resources) {
516			for_each_cpu(cpu, resource->cpu_mask)
517				resources_per_cpu[cpu]++;
518		}
519		rcu_read_unlock();
520		for_each_online_cpu(cpu) {
521			if (resources_per_cpu[cpu] < min) {
522				min = resources_per_cpu[cpu];
523				min_index = cpu;
524			}
525		}
526		kfree(resources_per_cpu);
527	}
528	if (min_index == ~0) {
529		cpumask_setall(*cpu_mask);
530		return;
531	}
532	cpumask_set_cpu(min_index, *cpu_mask);
533}
534
535/**
536 * drbd_thread_current_set_cpu() - modifies the cpu mask of the _current_ thread
537 * @device:	DRBD device.
538 * @thi:	drbd_thread object
539 *
540 * call in the "main loop" of _all_ threads, no need for any mutex, current won't die
541 * prematurely.
542 */
543void drbd_thread_current_set_cpu(struct drbd_thread *thi)
544{
545	struct drbd_resource *resource = thi->resource;
546	struct task_struct *p = current;
547
548	if (!thi->reset_cpu_mask)
549		return;
550	thi->reset_cpu_mask = 0;
551	set_cpus_allowed_ptr(p, resource->cpu_mask);
552}
553#else
554#define drbd_calc_cpu_mask(A) ({})
555#endif
556
557/**
558 * drbd_header_size  -  size of a packet header
559 *
560 * The header size is a multiple of 8, so any payload following the header is
561 * word aligned on 64-bit architectures.  (The bitmap send and receive code
562 * relies on this.)
563 */
564unsigned int drbd_header_size(struct drbd_connection *connection)
565{
566	if (connection->agreed_pro_version >= 100) {
567		BUILD_BUG_ON(!IS_ALIGNED(sizeof(struct p_header100), 8));
568		return sizeof(struct p_header100);
569	} else {
570		BUILD_BUG_ON(sizeof(struct p_header80) !=
571			     sizeof(struct p_header95));
572		BUILD_BUG_ON(!IS_ALIGNED(sizeof(struct p_header80), 8));
573		return sizeof(struct p_header80);
574	}
575}
576
577static unsigned int prepare_header80(struct p_header80 *h, enum drbd_packet cmd, int size)
578{
579	h->magic   = cpu_to_be32(DRBD_MAGIC);
580	h->command = cpu_to_be16(cmd);
581	h->length  = cpu_to_be16(size);
582	return sizeof(struct p_header80);
583}
584
585static unsigned int prepare_header95(struct p_header95 *h, enum drbd_packet cmd, int size)
586{
587	h->magic   = cpu_to_be16(DRBD_MAGIC_BIG);
588	h->command = cpu_to_be16(cmd);
589	h->length = cpu_to_be32(size);
590	return sizeof(struct p_header95);
591}
592
593static unsigned int prepare_header100(struct p_header100 *h, enum drbd_packet cmd,
594				      int size, int vnr)
595{
596	h->magic = cpu_to_be32(DRBD_MAGIC_100);
597	h->volume = cpu_to_be16(vnr);
598	h->command = cpu_to_be16(cmd);
599	h->length = cpu_to_be32(size);
600	h->pad = 0;
601	return sizeof(struct p_header100);
602}
603
604static unsigned int prepare_header(struct drbd_connection *connection, int vnr,
605				   void *buffer, enum drbd_packet cmd, int size)
606{
607	if (connection->agreed_pro_version >= 100)
608		return prepare_header100(buffer, cmd, size, vnr);
609	else if (connection->agreed_pro_version >= 95 &&
610		 size > DRBD_MAX_SIZE_H80_PACKET)
611		return prepare_header95(buffer, cmd, size);
612	else
613		return prepare_header80(buffer, cmd, size);
614}
615
616static void *__conn_prepare_command(struct drbd_connection *connection,
617				    struct drbd_socket *sock)
618{
619	if (!sock->socket)
620		return NULL;
621	return sock->sbuf + drbd_header_size(connection);
622}
623
624void *conn_prepare_command(struct drbd_connection *connection, struct drbd_socket *sock)
625{
626	void *p;
627
628	mutex_lock(&sock->mutex);
629	p = __conn_prepare_command(connection, sock);
630	if (!p)
631		mutex_unlock(&sock->mutex);
632
633	return p;
634}
635
636void *drbd_prepare_command(struct drbd_peer_device *peer_device, struct drbd_socket *sock)
637{
638	return conn_prepare_command(peer_device->connection, sock);
639}
640
641static int __send_command(struct drbd_connection *connection, int vnr,
642			  struct drbd_socket *sock, enum drbd_packet cmd,
643			  unsigned int header_size, void *data,
644			  unsigned int size)
645{
646	int msg_flags;
647	int err;
648
649	/*
650	 * Called with @data == NULL and the size of the data blocks in @size
651	 * for commands that send data blocks.  For those commands, omit the
652	 * MSG_MORE flag: this will increase the likelihood that data blocks
653	 * which are page aligned on the sender will end up page aligned on the
654	 * receiver.
655	 */
656	msg_flags = data ? MSG_MORE : 0;
657
658	header_size += prepare_header(connection, vnr, sock->sbuf, cmd,
659				      header_size + size);
660	err = drbd_send_all(connection, sock->socket, sock->sbuf, header_size,
661			    msg_flags);
662	if (data && !err)
663		err = drbd_send_all(connection, sock->socket, data, size, 0);
664	/* DRBD protocol "pings" are latency critical.
665	 * This is supposed to trigger tcp_push_pending_frames() */
666	if (!err && (cmd == P_PING || cmd == P_PING_ACK))
667		tcp_sock_set_nodelay(sock->socket->sk);
668
669	return err;
670}
671
672static int __conn_send_command(struct drbd_connection *connection, struct drbd_socket *sock,
673			       enum drbd_packet cmd, unsigned int header_size,
674			       void *data, unsigned int size)
675{
676	return __send_command(connection, 0, sock, cmd, header_size, data, size);
677}
678
679int conn_send_command(struct drbd_connection *connection, struct drbd_socket *sock,
680		      enum drbd_packet cmd, unsigned int header_size,
681		      void *data, unsigned int size)
682{
683	int err;
684
685	err = __conn_send_command(connection, sock, cmd, header_size, data, size);
686	mutex_unlock(&sock->mutex);
687	return err;
688}
689
690int drbd_send_command(struct drbd_peer_device *peer_device, struct drbd_socket *sock,
691		      enum drbd_packet cmd, unsigned int header_size,
692		      void *data, unsigned int size)
693{
694	int err;
695
696	err = __send_command(peer_device->connection, peer_device->device->vnr,
697			     sock, cmd, header_size, data, size);
698	mutex_unlock(&sock->mutex);
699	return err;
700}
701
702int drbd_send_ping(struct drbd_connection *connection)
703{
704	struct drbd_socket *sock;
705
706	sock = &connection->meta;
707	if (!conn_prepare_command(connection, sock))
708		return -EIO;
709	return conn_send_command(connection, sock, P_PING, 0, NULL, 0);
710}
711
712int drbd_send_ping_ack(struct drbd_connection *connection)
713{
714	struct drbd_socket *sock;
715
716	sock = &connection->meta;
717	if (!conn_prepare_command(connection, sock))
718		return -EIO;
719	return conn_send_command(connection, sock, P_PING_ACK, 0, NULL, 0);
720}
721
722int drbd_send_sync_param(struct drbd_peer_device *peer_device)
723{
724	struct drbd_socket *sock;
725	struct p_rs_param_95 *p;
726	int size;
727	const int apv = peer_device->connection->agreed_pro_version;
728	enum drbd_packet cmd;
729	struct net_conf *nc;
730	struct disk_conf *dc;
731
732	sock = &peer_device->connection->data;
733	p = drbd_prepare_command(peer_device, sock);
734	if (!p)
735		return -EIO;
736
737	rcu_read_lock();
738	nc = rcu_dereference(peer_device->connection->net_conf);
739
740	size = apv <= 87 ? sizeof(struct p_rs_param)
741		: apv == 88 ? sizeof(struct p_rs_param)
742			+ strlen(nc->verify_alg) + 1
743		: apv <= 94 ? sizeof(struct p_rs_param_89)
744		: /* apv >= 95 */ sizeof(struct p_rs_param_95);
745
746	cmd = apv >= 89 ? P_SYNC_PARAM89 : P_SYNC_PARAM;
747
748	/* initialize verify_alg and csums_alg */
749	memset(p->verify_alg, 0, 2 * SHARED_SECRET_MAX);
750
751	if (get_ldev(peer_device->device)) {
752		dc = rcu_dereference(peer_device->device->ldev->disk_conf);
753		p->resync_rate = cpu_to_be32(dc->resync_rate);
754		p->c_plan_ahead = cpu_to_be32(dc->c_plan_ahead);
755		p->c_delay_target = cpu_to_be32(dc->c_delay_target);
756		p->c_fill_target = cpu_to_be32(dc->c_fill_target);
757		p->c_max_rate = cpu_to_be32(dc->c_max_rate);
758		put_ldev(peer_device->device);
759	} else {
760		p->resync_rate = cpu_to_be32(DRBD_RESYNC_RATE_DEF);
761		p->c_plan_ahead = cpu_to_be32(DRBD_C_PLAN_AHEAD_DEF);
762		p->c_delay_target = cpu_to_be32(DRBD_C_DELAY_TARGET_DEF);
763		p->c_fill_target = cpu_to_be32(DRBD_C_FILL_TARGET_DEF);
764		p->c_max_rate = cpu_to_be32(DRBD_C_MAX_RATE_DEF);
765	}
766
767	if (apv >= 88)
768		strcpy(p->verify_alg, nc->verify_alg);
769	if (apv >= 89)
770		strcpy(p->csums_alg, nc->csums_alg);
771	rcu_read_unlock();
772
773	return drbd_send_command(peer_device, sock, cmd, size, NULL, 0);
774}
775
776int __drbd_send_protocol(struct drbd_connection *connection, enum drbd_packet cmd)
777{
778	struct drbd_socket *sock;
779	struct p_protocol *p;
780	struct net_conf *nc;
781	int size, cf;
782
783	sock = &connection->data;
784	p = __conn_prepare_command(connection, sock);
785	if (!p)
786		return -EIO;
787
788	rcu_read_lock();
789	nc = rcu_dereference(connection->net_conf);
790
791	if (nc->tentative && connection->agreed_pro_version < 92) {
792		rcu_read_unlock();
793		drbd_err(connection, "--dry-run is not supported by peer");
794		return -EOPNOTSUPP;
795	}
796
797	size = sizeof(*p);
798	if (connection->agreed_pro_version >= 87)
799		size += strlen(nc->integrity_alg) + 1;
800
801	p->protocol      = cpu_to_be32(nc->wire_protocol);
802	p->after_sb_0p   = cpu_to_be32(nc->after_sb_0p);
803	p->after_sb_1p   = cpu_to_be32(nc->after_sb_1p);
804	p->after_sb_2p   = cpu_to_be32(nc->after_sb_2p);
805	p->two_primaries = cpu_to_be32(nc->two_primaries);
806	cf = 0;
807	if (nc->discard_my_data)
808		cf |= CF_DISCARD_MY_DATA;
809	if (nc->tentative)
810		cf |= CF_DRY_RUN;
811	p->conn_flags    = cpu_to_be32(cf);
812
813	if (connection->agreed_pro_version >= 87)
814		strcpy(p->integrity_alg, nc->integrity_alg);
815	rcu_read_unlock();
816
817	return __conn_send_command(connection, sock, cmd, size, NULL, 0);
818}
819
820int drbd_send_protocol(struct drbd_connection *connection)
821{
822	int err;
823
824	mutex_lock(&connection->data.mutex);
825	err = __drbd_send_protocol(connection, P_PROTOCOL);
826	mutex_unlock(&connection->data.mutex);
827
828	return err;
829}
830
831static int _drbd_send_uuids(struct drbd_peer_device *peer_device, u64 uuid_flags)
832{
833	struct drbd_device *device = peer_device->device;
834	struct drbd_socket *sock;
835	struct p_uuids *p;
836	int i;
837
838	if (!get_ldev_if_state(device, D_NEGOTIATING))
839		return 0;
840
841	sock = &peer_device->connection->data;
842	p = drbd_prepare_command(peer_device, sock);
843	if (!p) {
844		put_ldev(device);
845		return -EIO;
846	}
847	spin_lock_irq(&device->ldev->md.uuid_lock);
848	for (i = UI_CURRENT; i < UI_SIZE; i++)
849		p->uuid[i] = cpu_to_be64(device->ldev->md.uuid[i]);
850	spin_unlock_irq(&device->ldev->md.uuid_lock);
851
852	device->comm_bm_set = drbd_bm_total_weight(device);
853	p->uuid[UI_SIZE] = cpu_to_be64(device->comm_bm_set);
854	rcu_read_lock();
855	uuid_flags |= rcu_dereference(peer_device->connection->net_conf)->discard_my_data ? 1 : 0;
856	rcu_read_unlock();
857	uuid_flags |= test_bit(CRASHED_PRIMARY, &device->flags) ? 2 : 0;
858	uuid_flags |= device->new_state_tmp.disk == D_INCONSISTENT ? 4 : 0;
859	p->uuid[UI_FLAGS] = cpu_to_be64(uuid_flags);
860
861	put_ldev(device);
862	return drbd_send_command(peer_device, sock, P_UUIDS, sizeof(*p), NULL, 0);
863}
864
865int drbd_send_uuids(struct drbd_peer_device *peer_device)
866{
867	return _drbd_send_uuids(peer_device, 0);
868}
869
870int drbd_send_uuids_skip_initial_sync(struct drbd_peer_device *peer_device)
871{
872	return _drbd_send_uuids(peer_device, 8);
873}
874
875void drbd_print_uuids(struct drbd_device *device, const char *text)
876{
877	if (get_ldev_if_state(device, D_NEGOTIATING)) {
878		u64 *uuid = device->ldev->md.uuid;
879		drbd_info(device, "%s %016llX:%016llX:%016llX:%016llX\n",
880		     text,
881		     (unsigned long long)uuid[UI_CURRENT],
882		     (unsigned long long)uuid[UI_BITMAP],
883		     (unsigned long long)uuid[UI_HISTORY_START],
884		     (unsigned long long)uuid[UI_HISTORY_END]);
885		put_ldev(device);
886	} else {
887		drbd_info(device, "%s effective data uuid: %016llX\n",
888				text,
889				(unsigned long long)device->ed_uuid);
890	}
891}
892
893void drbd_gen_and_send_sync_uuid(struct drbd_peer_device *peer_device)
894{
895	struct drbd_device *device = peer_device->device;
896	struct drbd_socket *sock;
897	struct p_rs_uuid *p;
898	u64 uuid;
899
900	D_ASSERT(device, device->state.disk == D_UP_TO_DATE);
901
902	uuid = device->ldev->md.uuid[UI_BITMAP];
903	if (uuid && uuid != UUID_JUST_CREATED)
904		uuid = uuid + UUID_NEW_BM_OFFSET;
905	else
906		get_random_bytes(&uuid, sizeof(u64));
907	drbd_uuid_set(device, UI_BITMAP, uuid);
908	drbd_print_uuids(device, "updated sync UUID");
909	drbd_md_sync(device);
910
911	sock = &peer_device->connection->data;
912	p = drbd_prepare_command(peer_device, sock);
913	if (p) {
914		p->uuid = cpu_to_be64(uuid);
915		drbd_send_command(peer_device, sock, P_SYNC_UUID, sizeof(*p), NULL, 0);
916	}
917}
918
919/* communicated if (agreed_features & DRBD_FF_WSAME) */
920static void
921assign_p_sizes_qlim(struct drbd_device *device, struct p_sizes *p,
922					struct request_queue *q)
923{
924	if (q) {
925		p->qlim->physical_block_size = cpu_to_be32(queue_physical_block_size(q));
926		p->qlim->logical_block_size = cpu_to_be32(queue_logical_block_size(q));
927		p->qlim->alignment_offset = cpu_to_be32(queue_alignment_offset(q));
928		p->qlim->io_min = cpu_to_be32(queue_io_min(q));
929		p->qlim->io_opt = cpu_to_be32(queue_io_opt(q));
930		p->qlim->discard_enabled = blk_queue_discard(q);
931		p->qlim->write_same_capable = !!q->limits.max_write_same_sectors;
932	} else {
933		q = device->rq_queue;
934		p->qlim->physical_block_size = cpu_to_be32(queue_physical_block_size(q));
935		p->qlim->logical_block_size = cpu_to_be32(queue_logical_block_size(q));
936		p->qlim->alignment_offset = 0;
937		p->qlim->io_min = cpu_to_be32(queue_io_min(q));
938		p->qlim->io_opt = cpu_to_be32(queue_io_opt(q));
939		p->qlim->discard_enabled = 0;
940		p->qlim->write_same_capable = 0;
941	}
942}
943
944int drbd_send_sizes(struct drbd_peer_device *peer_device, int trigger_reply, enum dds_flags flags)
945{
946	struct drbd_device *device = peer_device->device;
947	struct drbd_socket *sock;
948	struct p_sizes *p;
949	sector_t d_size, u_size;
950	int q_order_type;
951	unsigned int max_bio_size;
952	unsigned int packet_size;
953
954	sock = &peer_device->connection->data;
955	p = drbd_prepare_command(peer_device, sock);
956	if (!p)
957		return -EIO;
958
959	packet_size = sizeof(*p);
960	if (peer_device->connection->agreed_features & DRBD_FF_WSAME)
961		packet_size += sizeof(p->qlim[0]);
962
963	memset(p, 0, packet_size);
964	if (get_ldev_if_state(device, D_NEGOTIATING)) {
965		struct request_queue *q = bdev_get_queue(device->ldev->backing_bdev);
966		d_size = drbd_get_max_capacity(device->ldev);
967		rcu_read_lock();
968		u_size = rcu_dereference(device->ldev->disk_conf)->disk_size;
969		rcu_read_unlock();
970		q_order_type = drbd_queue_order_type(device);
971		max_bio_size = queue_max_hw_sectors(q) << 9;
972		max_bio_size = min(max_bio_size, DRBD_MAX_BIO_SIZE);
973		assign_p_sizes_qlim(device, p, q);
974		put_ldev(device);
975	} else {
976		d_size = 0;
977		u_size = 0;
978		q_order_type = QUEUE_ORDERED_NONE;
979		max_bio_size = DRBD_MAX_BIO_SIZE; /* ... multiple BIOs per peer_request */
980		assign_p_sizes_qlim(device, p, NULL);
981	}
982
983	if (peer_device->connection->agreed_pro_version <= 94)
984		max_bio_size = min(max_bio_size, DRBD_MAX_SIZE_H80_PACKET);
985	else if (peer_device->connection->agreed_pro_version < 100)
986		max_bio_size = min(max_bio_size, DRBD_MAX_BIO_SIZE_P95);
987
988	p->d_size = cpu_to_be64(d_size);
989	p->u_size = cpu_to_be64(u_size);
990	if (trigger_reply)
991		p->c_size = 0;
992	else
993		p->c_size = cpu_to_be64(get_capacity(device->vdisk));
994	p->max_bio_size = cpu_to_be32(max_bio_size);
995	p->queue_order_type = cpu_to_be16(q_order_type);
996	p->dds_flags = cpu_to_be16(flags);
997
998	return drbd_send_command(peer_device, sock, P_SIZES, packet_size, NULL, 0);
999}
1000
1001/**
1002 * drbd_send_current_state() - Sends the drbd state to the peer
1003 * @peer_device:	DRBD peer device.
1004 */
1005int drbd_send_current_state(struct drbd_peer_device *peer_device)
1006{
1007	struct drbd_socket *sock;
1008	struct p_state *p;
1009
1010	sock = &peer_device->connection->data;
1011	p = drbd_prepare_command(peer_device, sock);
1012	if (!p)
1013		return -EIO;
1014	p->state = cpu_to_be32(peer_device->device->state.i); /* Within the send mutex */
1015	return drbd_send_command(peer_device, sock, P_STATE, sizeof(*p), NULL, 0);
1016}
1017
1018/**
1019 * drbd_send_state() - After a state change, sends the new state to the peer
1020 * @peer_device:      DRBD peer device.
1021 * @state:     the state to send, not necessarily the current state.
1022 *
1023 * Each state change queues an "after_state_ch" work, which will eventually
1024 * send the resulting new state to the peer. If more state changes happen
1025 * between queuing and processing of the after_state_ch work, we still
1026 * want to send each intermediary state in the order it occurred.
1027 */
1028int drbd_send_state(struct drbd_peer_device *peer_device, union drbd_state state)
1029{
1030	struct drbd_socket *sock;
1031	struct p_state *p;
1032
1033	sock = &peer_device->connection->data;
1034	p = drbd_prepare_command(peer_device, sock);
1035	if (!p)
1036		return -EIO;
1037	p->state = cpu_to_be32(state.i); /* Within the send mutex */
1038	return drbd_send_command(peer_device, sock, P_STATE, sizeof(*p), NULL, 0);
1039}
1040
1041int drbd_send_state_req(struct drbd_peer_device *peer_device, union drbd_state mask, union drbd_state val)
1042{
1043	struct drbd_socket *sock;
1044	struct p_req_state *p;
1045
1046	sock = &peer_device->connection->data;
1047	p = drbd_prepare_command(peer_device, sock);
1048	if (!p)
1049		return -EIO;
1050	p->mask = cpu_to_be32(mask.i);
1051	p->val = cpu_to_be32(val.i);
1052	return drbd_send_command(peer_device, sock, P_STATE_CHG_REQ, sizeof(*p), NULL, 0);
1053}
1054
1055int conn_send_state_req(struct drbd_connection *connection, union drbd_state mask, union drbd_state val)
1056{
1057	enum drbd_packet cmd;
1058	struct drbd_socket *sock;
1059	struct p_req_state *p;
1060
1061	cmd = connection->agreed_pro_version < 100 ? P_STATE_CHG_REQ : P_CONN_ST_CHG_REQ;
1062	sock = &connection->data;
1063	p = conn_prepare_command(connection, sock);
1064	if (!p)
1065		return -EIO;
1066	p->mask = cpu_to_be32(mask.i);
1067	p->val = cpu_to_be32(val.i);
1068	return conn_send_command(connection, sock, cmd, sizeof(*p), NULL, 0);
1069}
1070
1071void drbd_send_sr_reply(struct drbd_peer_device *peer_device, enum drbd_state_rv retcode)
1072{
1073	struct drbd_socket *sock;
1074	struct p_req_state_reply *p;
1075
1076	sock = &peer_device->connection->meta;
1077	p = drbd_prepare_command(peer_device, sock);
1078	if (p) {
1079		p->retcode = cpu_to_be32(retcode);
1080		drbd_send_command(peer_device, sock, P_STATE_CHG_REPLY, sizeof(*p), NULL, 0);
1081	}
1082}
1083
1084void conn_send_sr_reply(struct drbd_connection *connection, enum drbd_state_rv retcode)
1085{
1086	struct drbd_socket *sock;
1087	struct p_req_state_reply *p;
1088	enum drbd_packet cmd = connection->agreed_pro_version < 100 ? P_STATE_CHG_REPLY : P_CONN_ST_CHG_REPLY;
1089
1090	sock = &connection->meta;
1091	p = conn_prepare_command(connection, sock);
1092	if (p) {
1093		p->retcode = cpu_to_be32(retcode);
1094		conn_send_command(connection, sock, cmd, sizeof(*p), NULL, 0);
1095	}
1096}
1097
1098static void dcbp_set_code(struct p_compressed_bm *p, enum drbd_bitmap_code code)
1099{
1100	BUG_ON(code & ~0xf);
1101	p->encoding = (p->encoding & ~0xf) | code;
1102}
1103
1104static void dcbp_set_start(struct p_compressed_bm *p, int set)
1105{
1106	p->encoding = (p->encoding & ~0x80) | (set ? 0x80 : 0);
1107}
1108
1109static void dcbp_set_pad_bits(struct p_compressed_bm *p, int n)
1110{
1111	BUG_ON(n & ~0x7);
1112	p->encoding = (p->encoding & (~0x7 << 4)) | (n << 4);
1113}
1114
1115static int fill_bitmap_rle_bits(struct drbd_device *device,
1116			 struct p_compressed_bm *p,
1117			 unsigned int size,
1118			 struct bm_xfer_ctx *c)
1119{
1120	struct bitstream bs;
1121	unsigned long plain_bits;
1122	unsigned long tmp;
1123	unsigned long rl;
1124	unsigned len;
1125	unsigned toggle;
1126	int bits, use_rle;
1127
1128	/* may we use this feature? */
1129	rcu_read_lock();
1130	use_rle = rcu_dereference(first_peer_device(device)->connection->net_conf)->use_rle;
1131	rcu_read_unlock();
1132	if (!use_rle || first_peer_device(device)->connection->agreed_pro_version < 90)
1133		return 0;
1134
1135	if (c->bit_offset >= c->bm_bits)
1136		return 0; /* nothing to do. */
1137
1138	/* use at most thus many bytes */
1139	bitstream_init(&bs, p->code, size, 0);
1140	memset(p->code, 0, size);
1141	/* plain bits covered in this code string */
1142	plain_bits = 0;
1143
1144	/* p->encoding & 0x80 stores whether the first run length is set.
1145	 * bit offset is implicit.
1146	 * start with toggle == 2 to be able to tell the first iteration */
1147	toggle = 2;
1148
1149	/* see how much plain bits we can stuff into one packet
1150	 * using RLE and VLI. */
1151	do {
1152		tmp = (toggle == 0) ? _drbd_bm_find_next_zero(device, c->bit_offset)
1153				    : _drbd_bm_find_next(device, c->bit_offset);
1154		if (tmp == -1UL)
1155			tmp = c->bm_bits;
1156		rl = tmp - c->bit_offset;
1157
1158		if (toggle == 2) { /* first iteration */
1159			if (rl == 0) {
1160				/* the first checked bit was set,
1161				 * store start value, */
1162				dcbp_set_start(p, 1);
1163				/* but skip encoding of zero run length */
1164				toggle = !toggle;
1165				continue;
1166			}
1167			dcbp_set_start(p, 0);
1168		}
1169
1170		/* paranoia: catch zero runlength.
1171		 * can only happen if bitmap is modified while we scan it. */
1172		if (rl == 0) {
1173			drbd_err(device, "unexpected zero runlength while encoding bitmap "
1174			    "t:%u bo:%lu\n", toggle, c->bit_offset);
1175			return -1;
1176		}
1177
1178		bits = vli_encode_bits(&bs, rl);
1179		if (bits == -ENOBUFS) /* buffer full */
1180			break;
1181		if (bits <= 0) {
1182			drbd_err(device, "error while encoding bitmap: %d\n", bits);
1183			return 0;
1184		}
1185
1186		toggle = !toggle;
1187		plain_bits += rl;
1188		c->bit_offset = tmp;
1189	} while (c->bit_offset < c->bm_bits);
1190
1191	len = bs.cur.b - p->code + !!bs.cur.bit;
1192
1193	if (plain_bits < (len << 3)) {
1194		/* incompressible with this method.
1195		 * we need to rewind both word and bit position. */
1196		c->bit_offset -= plain_bits;
1197		bm_xfer_ctx_bit_to_word_offset(c);
1198		c->bit_offset = c->word_offset * BITS_PER_LONG;
1199		return 0;
1200	}
1201
1202	/* RLE + VLI was able to compress it just fine.
1203	 * update c->word_offset. */
1204	bm_xfer_ctx_bit_to_word_offset(c);
1205
1206	/* store pad_bits */
1207	dcbp_set_pad_bits(p, (8 - bs.cur.bit) & 0x7);
1208
1209	return len;
1210}
1211
1212/**
1213 * send_bitmap_rle_or_plain
1214 *
1215 * Return 0 when done, 1 when another iteration is needed, and a negative error
1216 * code upon failure.
1217 */
1218static int
1219send_bitmap_rle_or_plain(struct drbd_device *device, struct bm_xfer_ctx *c)
1220{
1221	struct drbd_socket *sock = &first_peer_device(device)->connection->data;
1222	unsigned int header_size = drbd_header_size(first_peer_device(device)->connection);
1223	struct p_compressed_bm *p = sock->sbuf + header_size;
1224	int len, err;
1225
1226	len = fill_bitmap_rle_bits(device, p,
1227			DRBD_SOCKET_BUFFER_SIZE - header_size - sizeof(*p), c);
1228	if (len < 0)
1229		return -EIO;
1230
1231	if (len) {
1232		dcbp_set_code(p, RLE_VLI_Bits);
1233		err = __send_command(first_peer_device(device)->connection, device->vnr, sock,
1234				     P_COMPRESSED_BITMAP, sizeof(*p) + len,
1235				     NULL, 0);
1236		c->packets[0]++;
1237		c->bytes[0] += header_size + sizeof(*p) + len;
1238
1239		if (c->bit_offset >= c->bm_bits)
1240			len = 0; /* DONE */
1241	} else {
1242		/* was not compressible.
1243		 * send a buffer full of plain text bits instead. */
1244		unsigned int data_size;
1245		unsigned long num_words;
1246		unsigned long *p = sock->sbuf + header_size;
1247
1248		data_size = DRBD_SOCKET_BUFFER_SIZE - header_size;
1249		num_words = min_t(size_t, data_size / sizeof(*p),
1250				  c->bm_words - c->word_offset);
1251		len = num_words * sizeof(*p);
1252		if (len)
1253			drbd_bm_get_lel(device, c->word_offset, num_words, p);
1254		err = __send_command(first_peer_device(device)->connection, device->vnr, sock, P_BITMAP, len, NULL, 0);
1255		c->word_offset += num_words;
1256		c->bit_offset = c->word_offset * BITS_PER_LONG;
1257
1258		c->packets[1]++;
1259		c->bytes[1] += header_size + len;
1260
1261		if (c->bit_offset > c->bm_bits)
1262			c->bit_offset = c->bm_bits;
1263	}
1264	if (!err) {
1265		if (len == 0) {
1266			INFO_bm_xfer_stats(device, "send", c);
1267			return 0;
1268		} else
1269			return 1;
1270	}
1271	return -EIO;
1272}
1273
1274/* See the comment at receive_bitmap() */
1275static int _drbd_send_bitmap(struct drbd_device *device)
1276{
1277	struct bm_xfer_ctx c;
1278	int err;
1279
1280	if (!expect(device->bitmap))
1281		return false;
1282
1283	if (get_ldev(device)) {
1284		if (drbd_md_test_flag(device->ldev, MDF_FULL_SYNC)) {
1285			drbd_info(device, "Writing the whole bitmap, MDF_FullSync was set.\n");
1286			drbd_bm_set_all(device);
1287			if (drbd_bm_write(device)) {
1288				/* write_bm did fail! Leave full sync flag set in Meta P_DATA
1289				 * but otherwise process as per normal - need to tell other
1290				 * side that a full resync is required! */
1291				drbd_err(device, "Failed to write bitmap to disk!\n");
1292			} else {
1293				drbd_md_clear_flag(device, MDF_FULL_SYNC);
1294				drbd_md_sync(device);
1295			}
1296		}
1297		put_ldev(device);
1298	}
1299
1300	c = (struct bm_xfer_ctx) {
1301		.bm_bits = drbd_bm_bits(device),
1302		.bm_words = drbd_bm_words(device),
1303	};
1304
1305	do {
1306		err = send_bitmap_rle_or_plain(device, &c);
1307	} while (err > 0);
1308
1309	return err == 0;
1310}
1311
1312int drbd_send_bitmap(struct drbd_device *device)
1313{
1314	struct drbd_socket *sock = &first_peer_device(device)->connection->data;
1315	int err = -1;
1316
1317	mutex_lock(&sock->mutex);
1318	if (sock->socket)
1319		err = !_drbd_send_bitmap(device);
1320	mutex_unlock(&sock->mutex);
1321	return err;
1322}
1323
1324void drbd_send_b_ack(struct drbd_connection *connection, u32 barrier_nr, u32 set_size)
1325{
1326	struct drbd_socket *sock;
1327	struct p_barrier_ack *p;
1328
1329	if (connection->cstate < C_WF_REPORT_PARAMS)
1330		return;
1331
1332	sock = &connection->meta;
1333	p = conn_prepare_command(connection, sock);
1334	if (!p)
1335		return;
1336	p->barrier = barrier_nr;
1337	p->set_size = cpu_to_be32(set_size);
1338	conn_send_command(connection, sock, P_BARRIER_ACK, sizeof(*p), NULL, 0);
1339}
1340
1341/**
1342 * _drbd_send_ack() - Sends an ack packet
1343 * @device:	DRBD device.
1344 * @cmd:	Packet command code.
1345 * @sector:	sector, needs to be in big endian byte order
1346 * @blksize:	size in byte, needs to be in big endian byte order
1347 * @block_id:	Id, big endian byte order
1348 */
1349static int _drbd_send_ack(struct drbd_peer_device *peer_device, enum drbd_packet cmd,
1350			  u64 sector, u32 blksize, u64 block_id)
1351{
1352	struct drbd_socket *sock;
1353	struct p_block_ack *p;
1354
1355	if (peer_device->device->state.conn < C_CONNECTED)
1356		return -EIO;
1357
1358	sock = &peer_device->connection->meta;
1359	p = drbd_prepare_command(peer_device, sock);
1360	if (!p)
1361		return -EIO;
1362	p->sector = sector;
1363	p->block_id = block_id;
1364	p->blksize = blksize;
1365	p->seq_num = cpu_to_be32(atomic_inc_return(&peer_device->device->packet_seq));
1366	return drbd_send_command(peer_device, sock, cmd, sizeof(*p), NULL, 0);
1367}
1368
1369/* dp->sector and dp->block_id already/still in network byte order,
1370 * data_size is payload size according to dp->head,
1371 * and may need to be corrected for digest size. */
1372void drbd_send_ack_dp(struct drbd_peer_device *peer_device, enum drbd_packet cmd,
1373		      struct p_data *dp, int data_size)
1374{
1375	if (peer_device->connection->peer_integrity_tfm)
1376		data_size -= crypto_shash_digestsize(peer_device->connection->peer_integrity_tfm);
1377	_drbd_send_ack(peer_device, cmd, dp->sector, cpu_to_be32(data_size),
1378		       dp->block_id);
1379}
1380
1381void drbd_send_ack_rp(struct drbd_peer_device *peer_device, enum drbd_packet cmd,
1382		      struct p_block_req *rp)
1383{
1384	_drbd_send_ack(peer_device, cmd, rp->sector, rp->blksize, rp->block_id);
1385}
1386
1387/**
1388 * drbd_send_ack() - Sends an ack packet
1389 * @device:	DRBD device
1390 * @cmd:	packet command code
1391 * @peer_req:	peer request
1392 */
1393int drbd_send_ack(struct drbd_peer_device *peer_device, enum drbd_packet cmd,
1394		  struct drbd_peer_request *peer_req)
1395{
1396	return _drbd_send_ack(peer_device, cmd,
1397			      cpu_to_be64(peer_req->i.sector),
1398			      cpu_to_be32(peer_req->i.size),
1399			      peer_req->block_id);
1400}
1401
1402/* This function misuses the block_id field to signal if the blocks
1403 * are is sync or not. */
1404int drbd_send_ack_ex(struct drbd_peer_device *peer_device, enum drbd_packet cmd,
1405		     sector_t sector, int blksize, u64 block_id)
1406{
1407	return _drbd_send_ack(peer_device, cmd,
1408			      cpu_to_be64(sector),
1409			      cpu_to_be32(blksize),
1410			      cpu_to_be64(block_id));
1411}
1412
1413int drbd_send_rs_deallocated(struct drbd_peer_device *peer_device,
1414			     struct drbd_peer_request *peer_req)
1415{
1416	struct drbd_socket *sock;
1417	struct p_block_desc *p;
1418
1419	sock = &peer_device->connection->data;
1420	p = drbd_prepare_command(peer_device, sock);
1421	if (!p)
1422		return -EIO;
1423	p->sector = cpu_to_be64(peer_req->i.sector);
1424	p->blksize = cpu_to_be32(peer_req->i.size);
1425	p->pad = 0;
1426	return drbd_send_command(peer_device, sock, P_RS_DEALLOCATED, sizeof(*p), NULL, 0);
1427}
1428
1429int drbd_send_drequest(struct drbd_peer_device *peer_device, int cmd,
1430		       sector_t sector, int size, u64 block_id)
1431{
1432	struct drbd_socket *sock;
1433	struct p_block_req *p;
1434
1435	sock = &peer_device->connection->data;
1436	p = drbd_prepare_command(peer_device, sock);
1437	if (!p)
1438		return -EIO;
1439	p->sector = cpu_to_be64(sector);
1440	p->block_id = block_id;
1441	p->blksize = cpu_to_be32(size);
1442	return drbd_send_command(peer_device, sock, cmd, sizeof(*p), NULL, 0);
1443}
1444
1445int drbd_send_drequest_csum(struct drbd_peer_device *peer_device, sector_t sector, int size,
1446			    void *digest, int digest_size, enum drbd_packet cmd)
1447{
1448	struct drbd_socket *sock;
1449	struct p_block_req *p;
1450
1451	/* FIXME: Put the digest into the preallocated socket buffer.  */
1452
1453	sock = &peer_device->connection->data;
1454	p = drbd_prepare_command(peer_device, sock);
1455	if (!p)
1456		return -EIO;
1457	p->sector = cpu_to_be64(sector);
1458	p->block_id = ID_SYNCER /* unused */;
1459	p->blksize = cpu_to_be32(size);
1460	return drbd_send_command(peer_device, sock, cmd, sizeof(*p), digest, digest_size);
1461}
1462
1463int drbd_send_ov_request(struct drbd_peer_device *peer_device, sector_t sector, int size)
1464{
1465	struct drbd_socket *sock;
1466	struct p_block_req *p;
1467
1468	sock = &peer_device->connection->data;
1469	p = drbd_prepare_command(peer_device, sock);
1470	if (!p)
1471		return -EIO;
1472	p->sector = cpu_to_be64(sector);
1473	p->block_id = ID_SYNCER /* unused */;
1474	p->blksize = cpu_to_be32(size);
1475	return drbd_send_command(peer_device, sock, P_OV_REQUEST, sizeof(*p), NULL, 0);
1476}
1477
1478/* called on sndtimeo
1479 * returns false if we should retry,
1480 * true if we think connection is dead
1481 */
1482static int we_should_drop_the_connection(struct drbd_connection *connection, struct socket *sock)
1483{
1484	int drop_it;
1485	/* long elapsed = (long)(jiffies - device->last_received); */
1486
1487	drop_it =   connection->meta.socket == sock
1488		|| !connection->ack_receiver.task
1489		|| get_t_state(&connection->ack_receiver) != RUNNING
1490		|| connection->cstate < C_WF_REPORT_PARAMS;
1491
1492	if (drop_it)
1493		return true;
1494
1495	drop_it = !--connection->ko_count;
1496	if (!drop_it) {
1497		drbd_err(connection, "[%s/%d] sock_sendmsg time expired, ko = %u\n",
1498			 current->comm, current->pid, connection->ko_count);
1499		request_ping(connection);
1500	}
1501
1502	return drop_it; /* && (device->state == R_PRIMARY) */;
1503}
1504
1505static void drbd_update_congested(struct drbd_connection *connection)
1506{
1507	struct sock *sk = connection->data.socket->sk;
1508	if (sk->sk_wmem_queued > sk->sk_sndbuf * 4 / 5)
1509		set_bit(NET_CONGESTED, &connection->flags);
1510}
1511
1512/* The idea of sendpage seems to be to put some kind of reference
1513 * to the page into the skb, and to hand it over to the NIC. In
1514 * this process get_page() gets called.
1515 *
1516 * As soon as the page was really sent over the network put_page()
1517 * gets called by some part of the network layer. [ NIC driver? ]
1518 *
1519 * [ get_page() / put_page() increment/decrement the count. If count
1520 *   reaches 0 the page will be freed. ]
1521 *
1522 * This works nicely with pages from FSs.
1523 * But this means that in protocol A we might signal IO completion too early!
1524 *
1525 * In order not to corrupt data during a resync we must make sure
1526 * that we do not reuse our own buffer pages (EEs) to early, therefore
1527 * we have the net_ee list.
1528 *
1529 * XFS seems to have problems, still, it submits pages with page_count == 0!
1530 * As a workaround, we disable sendpage on pages
1531 * with page_count == 0 or PageSlab.
1532 */
1533static int _drbd_no_send_page(struct drbd_peer_device *peer_device, struct page *page,
1534			      int offset, size_t size, unsigned msg_flags)
1535{
1536	struct socket *socket;
1537	void *addr;
1538	int err;
1539
1540	socket = peer_device->connection->data.socket;
1541	addr = kmap(page) + offset;
1542	err = drbd_send_all(peer_device->connection, socket, addr, size, msg_flags);
1543	kunmap(page);
1544	if (!err)
1545		peer_device->device->send_cnt += size >> 9;
1546	return err;
1547}
1548
1549static int _drbd_send_page(struct drbd_peer_device *peer_device, struct page *page,
1550		    int offset, size_t size, unsigned msg_flags)
1551{
1552	struct socket *socket = peer_device->connection->data.socket;
1553	int len = size;
1554	int err = -EIO;
1555
1556	/* e.g. XFS meta- & log-data is in slab pages, which have a
1557	 * page_count of 0 and/or have PageSlab() set.
1558	 * we cannot use send_page for those, as that does get_page();
1559	 * put_page(); and would cause either a VM_BUG directly, or
1560	 * __page_cache_release a page that would actually still be referenced
1561	 * by someone, leading to some obscure delayed Oops somewhere else. */
1562	if (drbd_disable_sendpage || !sendpage_ok(page))
1563		return _drbd_no_send_page(peer_device, page, offset, size, msg_flags);
1564
1565	msg_flags |= MSG_NOSIGNAL;
1566	drbd_update_congested(peer_device->connection);
1567	do {
1568		int sent;
1569
1570		sent = socket->ops->sendpage(socket, page, offset, len, msg_flags);
1571		if (sent <= 0) {
1572			if (sent == -EAGAIN) {
1573				if (we_should_drop_the_connection(peer_device->connection, socket))
1574					break;
1575				continue;
1576			}
1577			drbd_warn(peer_device->device, "%s: size=%d len=%d sent=%d\n",
1578			     __func__, (int)size, len, sent);
1579			if (sent < 0)
1580				err = sent;
1581			break;
1582		}
1583		len    -= sent;
1584		offset += sent;
1585	} while (len > 0 /* THINK && device->cstate >= C_CONNECTED*/);
1586	clear_bit(NET_CONGESTED, &peer_device->connection->flags);
1587
1588	if (len == 0) {
1589		err = 0;
1590		peer_device->device->send_cnt += size >> 9;
1591	}
1592	return err;
1593}
1594
1595static int _drbd_send_bio(struct drbd_peer_device *peer_device, struct bio *bio)
1596{
1597	struct bio_vec bvec;
1598	struct bvec_iter iter;
1599
1600	/* hint all but last page with MSG_MORE */
1601	bio_for_each_segment(bvec, bio, iter) {
1602		int err;
1603
1604		err = _drbd_no_send_page(peer_device, bvec.bv_page,
1605					 bvec.bv_offset, bvec.bv_len,
1606					 bio_iter_last(bvec, iter)
1607					 ? 0 : MSG_MORE);
1608		if (err)
1609			return err;
1610		/* REQ_OP_WRITE_SAME has only one segment */
1611		if (bio_op(bio) == REQ_OP_WRITE_SAME)
1612			break;
1613	}
1614	return 0;
1615}
1616
1617static int _drbd_send_zc_bio(struct drbd_peer_device *peer_device, struct bio *bio)
1618{
1619	struct bio_vec bvec;
1620	struct bvec_iter iter;
1621
1622	/* hint all but last page with MSG_MORE */
1623	bio_for_each_segment(bvec, bio, iter) {
1624		int err;
1625
1626		err = _drbd_send_page(peer_device, bvec.bv_page,
1627				      bvec.bv_offset, bvec.bv_len,
1628				      bio_iter_last(bvec, iter) ? 0 : MSG_MORE);
1629		if (err)
1630			return err;
1631		/* REQ_OP_WRITE_SAME has only one segment */
1632		if (bio_op(bio) == REQ_OP_WRITE_SAME)
1633			break;
1634	}
1635	return 0;
1636}
1637
1638static int _drbd_send_zc_ee(struct drbd_peer_device *peer_device,
1639			    struct drbd_peer_request *peer_req)
1640{
1641	struct page *page = peer_req->pages;
1642	unsigned len = peer_req->i.size;
1643	int err;
1644
1645	/* hint all but last page with MSG_MORE */
1646	page_chain_for_each(page) {
1647		unsigned l = min_t(unsigned, len, PAGE_SIZE);
1648
1649		err = _drbd_send_page(peer_device, page, 0, l,
1650				      page_chain_next(page) ? MSG_MORE : 0);
1651		if (err)
1652			return err;
1653		len -= l;
1654	}
1655	return 0;
1656}
1657
1658static u32 bio_flags_to_wire(struct drbd_connection *connection,
1659			     struct bio *bio)
1660{
1661	if (connection->agreed_pro_version >= 95)
1662		return  (bio->bi_opf & REQ_SYNC ? DP_RW_SYNC : 0) |
1663			(bio->bi_opf & REQ_FUA ? DP_FUA : 0) |
1664			(bio->bi_opf & REQ_PREFLUSH ? DP_FLUSH : 0) |
1665			(bio_op(bio) == REQ_OP_WRITE_SAME ? DP_WSAME : 0) |
1666			(bio_op(bio) == REQ_OP_DISCARD ? DP_DISCARD : 0) |
1667			(bio_op(bio) == REQ_OP_WRITE_ZEROES ?
1668			  ((connection->agreed_features & DRBD_FF_WZEROES) ?
1669			   (DP_ZEROES |(!(bio->bi_opf & REQ_NOUNMAP) ? DP_DISCARD : 0))
1670			   : DP_DISCARD)
1671			: 0);
1672	else
1673		return bio->bi_opf & REQ_SYNC ? DP_RW_SYNC : 0;
1674}
1675
1676/* Used to send write or TRIM aka REQ_OP_DISCARD requests
1677 * R_PRIMARY -> Peer	(P_DATA, P_TRIM)
1678 */
1679int drbd_send_dblock(struct drbd_peer_device *peer_device, struct drbd_request *req)
1680{
1681	struct drbd_device *device = peer_device->device;
1682	struct drbd_socket *sock;
1683	struct p_data *p;
1684	struct p_wsame *wsame = NULL;
1685	void *digest_out;
1686	unsigned int dp_flags = 0;
1687	int digest_size;
1688	int err;
1689
1690	sock = &peer_device->connection->data;
1691	p = drbd_prepare_command(peer_device, sock);
1692	digest_size = peer_device->connection->integrity_tfm ?
1693		      crypto_shash_digestsize(peer_device->connection->integrity_tfm) : 0;
1694
1695	if (!p)
1696		return -EIO;
1697	p->sector = cpu_to_be64(req->i.sector);
1698	p->block_id = (unsigned long)req;
1699	p->seq_num = cpu_to_be32(atomic_inc_return(&device->packet_seq));
1700	dp_flags = bio_flags_to_wire(peer_device->connection, req->master_bio);
1701	if (device->state.conn >= C_SYNC_SOURCE &&
1702	    device->state.conn <= C_PAUSED_SYNC_T)
1703		dp_flags |= DP_MAY_SET_IN_SYNC;
1704	if (peer_device->connection->agreed_pro_version >= 100) {
1705		if (req->rq_state & RQ_EXP_RECEIVE_ACK)
1706			dp_flags |= DP_SEND_RECEIVE_ACK;
1707		/* During resync, request an explicit write ack,
1708		 * even in protocol != C */
1709		if (req->rq_state & RQ_EXP_WRITE_ACK
1710		|| (dp_flags & DP_MAY_SET_IN_SYNC))
1711			dp_flags |= DP_SEND_WRITE_ACK;
1712	}
1713	p->dp_flags = cpu_to_be32(dp_flags);
1714
1715	if (dp_flags & (DP_DISCARD|DP_ZEROES)) {
1716		enum drbd_packet cmd = (dp_flags & DP_ZEROES) ? P_ZEROES : P_TRIM;
1717		struct p_trim *t = (struct p_trim*)p;
1718		t->size = cpu_to_be32(req->i.size);
1719		err = __send_command(peer_device->connection, device->vnr, sock, cmd, sizeof(*t), NULL, 0);
1720		goto out;
1721	}
1722	if (dp_flags & DP_WSAME) {
1723		/* this will only work if DRBD_FF_WSAME is set AND the
1724		 * handshake agreed that all nodes and backend devices are
1725		 * WRITE_SAME capable and agree on logical_block_size */
1726		wsame = (struct p_wsame*)p;
1727		digest_out = wsame + 1;
1728		wsame->size = cpu_to_be32(req->i.size);
1729	} else
1730		digest_out = p + 1;
1731
1732	/* our digest is still only over the payload.
1733	 * TRIM does not carry any payload. */
1734	if (digest_size)
1735		drbd_csum_bio(peer_device->connection->integrity_tfm, req->master_bio, digest_out);
1736	if (wsame) {
1737		err =
1738		    __send_command(peer_device->connection, device->vnr, sock, P_WSAME,
1739				   sizeof(*wsame) + digest_size, NULL,
1740				   bio_iovec(req->master_bio).bv_len);
1741	} else
1742		err =
1743		    __send_command(peer_device->connection, device->vnr, sock, P_DATA,
1744				   sizeof(*p) + digest_size, NULL, req->i.size);
1745	if (!err) {
1746		/* For protocol A, we have to memcpy the payload into
1747		 * socket buffers, as we may complete right away
1748		 * as soon as we handed it over to tcp, at which point the data
1749		 * pages may become invalid.
1750		 *
1751		 * For data-integrity enabled, we copy it as well, so we can be
1752		 * sure that even if the bio pages may still be modified, it
1753		 * won't change the data on the wire, thus if the digest checks
1754		 * out ok after sending on this side, but does not fit on the
1755		 * receiving side, we sure have detected corruption elsewhere.
1756		 */
1757		if (!(req->rq_state & (RQ_EXP_RECEIVE_ACK | RQ_EXP_WRITE_ACK)) || digest_size)
1758			err = _drbd_send_bio(peer_device, req->master_bio);
1759		else
1760			err = _drbd_send_zc_bio(peer_device, req->master_bio);
1761
1762		/* double check digest, sometimes buffers have been modified in flight. */
1763		if (digest_size > 0 && digest_size <= 64) {
1764			/* 64 byte, 512 bit, is the largest digest size
1765			 * currently supported in kernel crypto. */
1766			unsigned char digest[64];
1767			drbd_csum_bio(peer_device->connection->integrity_tfm, req->master_bio, digest);
1768			if (memcmp(p + 1, digest, digest_size)) {
1769				drbd_warn(device,
1770					"Digest mismatch, buffer modified by upper layers during write: %llus +%u\n",
1771					(unsigned long long)req->i.sector, req->i.size);
1772			}
1773		} /* else if (digest_size > 64) {
1774		     ... Be noisy about digest too large ...
1775		} */
1776	}
1777out:
1778	mutex_unlock(&sock->mutex);  /* locked by drbd_prepare_command() */
1779
1780	return err;
1781}
1782
1783/* answer packet, used to send data back for read requests:
1784 *  Peer       -> (diskless) R_PRIMARY   (P_DATA_REPLY)
1785 *  C_SYNC_SOURCE -> C_SYNC_TARGET         (P_RS_DATA_REPLY)
1786 */
1787int drbd_send_block(struct drbd_peer_device *peer_device, enum drbd_packet cmd,
1788		    struct drbd_peer_request *peer_req)
1789{
1790	struct drbd_device *device = peer_device->device;
1791	struct drbd_socket *sock;
1792	struct p_data *p;
1793	int err;
1794	int digest_size;
1795
1796	sock = &peer_device->connection->data;
1797	p = drbd_prepare_command(peer_device, sock);
1798
1799	digest_size = peer_device->connection->integrity_tfm ?
1800		      crypto_shash_digestsize(peer_device->connection->integrity_tfm) : 0;
1801
1802	if (!p)
1803		return -EIO;
1804	p->sector = cpu_to_be64(peer_req->i.sector);
1805	p->block_id = peer_req->block_id;
1806	p->seq_num = 0;  /* unused */
1807	p->dp_flags = 0;
1808	if (digest_size)
1809		drbd_csum_ee(peer_device->connection->integrity_tfm, peer_req, p + 1);
1810	err = __send_command(peer_device->connection, device->vnr, sock, cmd, sizeof(*p) + digest_size, NULL, peer_req->i.size);
1811	if (!err)
1812		err = _drbd_send_zc_ee(peer_device, peer_req);
1813	mutex_unlock(&sock->mutex);  /* locked by drbd_prepare_command() */
1814
1815	return err;
1816}
1817
1818int drbd_send_out_of_sync(struct drbd_peer_device *peer_device, struct drbd_request *req)
1819{
1820	struct drbd_socket *sock;
1821	struct p_block_desc *p;
1822
1823	sock = &peer_device->connection->data;
1824	p = drbd_prepare_command(peer_device, sock);
1825	if (!p)
1826		return -EIO;
1827	p->sector = cpu_to_be64(req->i.sector);
1828	p->blksize = cpu_to_be32(req->i.size);
1829	return drbd_send_command(peer_device, sock, P_OUT_OF_SYNC, sizeof(*p), NULL, 0);
1830}
1831
1832/*
1833  drbd_send distinguishes two cases:
1834
1835  Packets sent via the data socket "sock"
1836  and packets sent via the meta data socket "msock"
1837
1838		    sock                      msock
1839  -----------------+-------------------------+------------------------------
1840  timeout           conf.timeout / 2          conf.timeout / 2
1841  timeout action    send a ping via msock     Abort communication
1842					      and close all sockets
1843*/
1844
1845/*
1846 * you must have down()ed the appropriate [m]sock_mutex elsewhere!
1847 */
1848int drbd_send(struct drbd_connection *connection, struct socket *sock,
1849	      void *buf, size_t size, unsigned msg_flags)
1850{
1851	struct kvec iov = {.iov_base = buf, .iov_len = size};
1852	struct msghdr msg = {.msg_flags = msg_flags | MSG_NOSIGNAL};
1853	int rv, sent = 0;
1854
1855	if (!sock)
1856		return -EBADR;
1857
1858	/* THINK  if (signal_pending) return ... ? */
1859
1860	iov_iter_kvec(&msg.msg_iter, WRITE, &iov, 1, size);
1861
1862	if (sock == connection->data.socket) {
1863		rcu_read_lock();
1864		connection->ko_count = rcu_dereference(connection->net_conf)->ko_count;
1865		rcu_read_unlock();
1866		drbd_update_congested(connection);
1867	}
1868	do {
1869		rv = sock_sendmsg(sock, &msg);
1870		if (rv == -EAGAIN) {
1871			if (we_should_drop_the_connection(connection, sock))
1872				break;
1873			else
1874				continue;
1875		}
1876		if (rv == -EINTR) {
1877			flush_signals(current);
1878			rv = 0;
1879		}
1880		if (rv < 0)
1881			break;
1882		sent += rv;
1883	} while (sent < size);
1884
1885	if (sock == connection->data.socket)
1886		clear_bit(NET_CONGESTED, &connection->flags);
1887
1888	if (rv <= 0) {
1889		if (rv != -EAGAIN) {
1890			drbd_err(connection, "%s_sendmsg returned %d\n",
1891				 sock == connection->meta.socket ? "msock" : "sock",
1892				 rv);
1893			conn_request_state(connection, NS(conn, C_BROKEN_PIPE), CS_HARD);
1894		} else
1895			conn_request_state(connection, NS(conn, C_TIMEOUT), CS_HARD);
1896	}
1897
1898	return sent;
1899}
1900
1901/**
1902 * drbd_send_all  -  Send an entire buffer
1903 *
1904 * Returns 0 upon success and a negative error value otherwise.
1905 */
1906int drbd_send_all(struct drbd_connection *connection, struct socket *sock, void *buffer,
1907		  size_t size, unsigned msg_flags)
1908{
1909	int err;
1910
1911	err = drbd_send(connection, sock, buffer, size, msg_flags);
1912	if (err < 0)
1913		return err;
1914	if (err != size)
1915		return -EIO;
1916	return 0;
1917}
1918
1919static int drbd_open(struct block_device *bdev, fmode_t mode)
1920{
1921	struct drbd_device *device = bdev->bd_disk->private_data;
1922	unsigned long flags;
1923	int rv = 0;
1924
1925	mutex_lock(&drbd_main_mutex);
1926	spin_lock_irqsave(&device->resource->req_lock, flags);
1927	/* to have a stable device->state.role
1928	 * and no race with updating open_cnt */
1929
1930	if (device->state.role != R_PRIMARY) {
1931		if (mode & FMODE_WRITE)
1932			rv = -EROFS;
1933		else if (!drbd_allow_oos)
1934			rv = -EMEDIUMTYPE;
1935	}
1936
1937	if (!rv)
1938		device->open_cnt++;
1939	spin_unlock_irqrestore(&device->resource->req_lock, flags);
1940	mutex_unlock(&drbd_main_mutex);
1941
1942	return rv;
1943}
1944
1945static void drbd_release(struct gendisk *gd, fmode_t mode)
1946{
1947	struct drbd_device *device = gd->private_data;
1948	mutex_lock(&drbd_main_mutex);
1949	device->open_cnt--;
1950	mutex_unlock(&drbd_main_mutex);
1951}
1952
1953/* need to hold resource->req_lock */
1954void drbd_queue_unplug(struct drbd_device *device)
1955{
1956	if (device->state.pdsk >= D_INCONSISTENT && device->state.conn >= C_CONNECTED) {
1957		D_ASSERT(device, device->state.role == R_PRIMARY);
1958		if (test_and_clear_bit(UNPLUG_REMOTE, &device->flags)) {
1959			drbd_queue_work_if_unqueued(
1960				&first_peer_device(device)->connection->sender_work,
1961				&device->unplug_work);
1962		}
1963	}
1964}
1965
1966static void drbd_set_defaults(struct drbd_device *device)
1967{
1968	/* Beware! The actual layout differs
1969	 * between big endian and little endian */
1970	device->state = (union drbd_dev_state) {
1971		{ .role = R_SECONDARY,
1972		  .peer = R_UNKNOWN,
1973		  .conn = C_STANDALONE,
1974		  .disk = D_DISKLESS,
1975		  .pdsk = D_UNKNOWN,
1976		} };
1977}
1978
1979void drbd_init_set_defaults(struct drbd_device *device)
1980{
1981	/* the memset(,0,) did most of this.
1982	 * note: only assignments, no allocation in here */
1983
1984	drbd_set_defaults(device);
1985
1986	atomic_set(&device->ap_bio_cnt, 0);
1987	atomic_set(&device->ap_actlog_cnt, 0);
1988	atomic_set(&device->ap_pending_cnt, 0);
1989	atomic_set(&device->rs_pending_cnt, 0);
1990	atomic_set(&device->unacked_cnt, 0);
1991	atomic_set(&device->local_cnt, 0);
1992	atomic_set(&device->pp_in_use_by_net, 0);
1993	atomic_set(&device->rs_sect_in, 0);
1994	atomic_set(&device->rs_sect_ev, 0);
1995	atomic_set(&device->ap_in_flight, 0);
1996	atomic_set(&device->md_io.in_use, 0);
1997
1998	mutex_init(&device->own_state_mutex);
1999	device->state_mutex = &device->own_state_mutex;
2000
2001	spin_lock_init(&device->al_lock);
2002	spin_lock_init(&device->peer_seq_lock);
2003
2004	INIT_LIST_HEAD(&device->active_ee);
2005	INIT_LIST_HEAD(&device->sync_ee);
2006	INIT_LIST_HEAD(&device->done_ee);
2007	INIT_LIST_HEAD(&device->read_ee);
2008	INIT_LIST_HEAD(&device->net_ee);
2009	INIT_LIST_HEAD(&device->resync_reads);
2010	INIT_LIST_HEAD(&device->resync_work.list);
2011	INIT_LIST_HEAD(&device->unplug_work.list);
2012	INIT_LIST_HEAD(&device->bm_io_work.w.list);
2013	INIT_LIST_HEAD(&device->pending_master_completion[0]);
2014	INIT_LIST_HEAD(&device->pending_master_completion[1]);
2015	INIT_LIST_HEAD(&device->pending_completion[0]);
2016	INIT_LIST_HEAD(&device->pending_completion[1]);
2017
2018	device->resync_work.cb  = w_resync_timer;
2019	device->unplug_work.cb  = w_send_write_hint;
2020	device->bm_io_work.w.cb = w_bitmap_io;
2021
2022	timer_setup(&device->resync_timer, resync_timer_fn, 0);
2023	timer_setup(&device->md_sync_timer, md_sync_timer_fn, 0);
2024	timer_setup(&device->start_resync_timer, start_resync_timer_fn, 0);
2025	timer_setup(&device->request_timer, request_timer_fn, 0);
2026
2027	init_waitqueue_head(&device->misc_wait);
2028	init_waitqueue_head(&device->state_wait);
2029	init_waitqueue_head(&device->ee_wait);
2030	init_waitqueue_head(&device->al_wait);
2031	init_waitqueue_head(&device->seq_wait);
2032
2033	device->resync_wenr = LC_FREE;
2034	device->peer_max_bio_size = DRBD_MAX_BIO_SIZE_SAFE;
2035	device->local_max_bio_size = DRBD_MAX_BIO_SIZE_SAFE;
2036}
2037
2038void drbd_set_my_capacity(struct drbd_device *device, sector_t size)
2039{
2040	char ppb[10];
2041
2042	set_capacity(device->vdisk, size);
2043	revalidate_disk_size(device->vdisk, false);
2044
2045	drbd_info(device, "size = %s (%llu KB)\n",
2046		ppsize(ppb, size>>1), (unsigned long long)size>>1);
2047}
2048
2049void drbd_device_cleanup(struct drbd_device *device)
2050{
2051	int i;
2052	if (first_peer_device(device)->connection->receiver.t_state != NONE)
2053		drbd_err(device, "ASSERT FAILED: receiver t_state == %d expected 0.\n",
2054				first_peer_device(device)->connection->receiver.t_state);
2055
2056	device->al_writ_cnt  =
2057	device->bm_writ_cnt  =
2058	device->read_cnt     =
2059	device->recv_cnt     =
2060	device->send_cnt     =
2061	device->writ_cnt     =
2062	device->p_size       =
2063	device->rs_start     =
2064	device->rs_total     =
2065	device->rs_failed    = 0;
2066	device->rs_last_events = 0;
2067	device->rs_last_sect_ev = 0;
2068	for (i = 0; i < DRBD_SYNC_MARKS; i++) {
2069		device->rs_mark_left[i] = 0;
2070		device->rs_mark_time[i] = 0;
2071	}
2072	D_ASSERT(device, first_peer_device(device)->connection->net_conf == NULL);
2073
2074	set_capacity(device->vdisk, 0);
2075	revalidate_disk_size(device->vdisk, false);
2076	if (device->bitmap) {
2077		/* maybe never allocated. */
2078		drbd_bm_resize(device, 0, 1);
2079		drbd_bm_cleanup(device);
2080	}
2081
2082	drbd_backing_dev_free(device, device->ldev);
2083	device->ldev = NULL;
2084
2085	clear_bit(AL_SUSPENDED, &device->flags);
2086
2087	D_ASSERT(device, list_empty(&device->active_ee));
2088	D_ASSERT(device, list_empty(&device->sync_ee));
2089	D_ASSERT(device, list_empty(&device->done_ee));
2090	D_ASSERT(device, list_empty(&device->read_ee));
2091	D_ASSERT(device, list_empty(&device->net_ee));
2092	D_ASSERT(device, list_empty(&device->resync_reads));
2093	D_ASSERT(device, list_empty(&first_peer_device(device)->connection->sender_work.q));
2094	D_ASSERT(device, list_empty(&device->resync_work.list));
2095	D_ASSERT(device, list_empty(&device->unplug_work.list));
2096
2097	drbd_set_defaults(device);
2098}
2099
2100
2101static void drbd_destroy_mempools(void)
2102{
2103	struct page *page;
2104
2105	while (drbd_pp_pool) {
2106		page = drbd_pp_pool;
2107		drbd_pp_pool = (struct page *)page_private(page);
2108		__free_page(page);
2109		drbd_pp_vacant--;
2110	}
2111
2112	/* D_ASSERT(device, atomic_read(&drbd_pp_vacant)==0); */
2113
2114	bioset_exit(&drbd_io_bio_set);
2115	bioset_exit(&drbd_md_io_bio_set);
2116	mempool_exit(&drbd_md_io_page_pool);
2117	mempool_exit(&drbd_ee_mempool);
2118	mempool_exit(&drbd_request_mempool);
2119	kmem_cache_destroy(drbd_ee_cache);
2120	kmem_cache_destroy(drbd_request_cache);
2121	kmem_cache_destroy(drbd_bm_ext_cache);
2122	kmem_cache_destroy(drbd_al_ext_cache);
2123
2124	drbd_ee_cache        = NULL;
2125	drbd_request_cache   = NULL;
2126	drbd_bm_ext_cache    = NULL;
2127	drbd_al_ext_cache    = NULL;
2128
2129	return;
2130}
2131
2132static int drbd_create_mempools(void)
2133{
2134	struct page *page;
2135	const int number = (DRBD_MAX_BIO_SIZE/PAGE_SIZE) * drbd_minor_count;
2136	int i, ret;
2137
2138	/* caches */
2139	drbd_request_cache = kmem_cache_create(
2140		"drbd_req", sizeof(struct drbd_request), 0, 0, NULL);
2141	if (drbd_request_cache == NULL)
2142		goto Enomem;
2143
2144	drbd_ee_cache = kmem_cache_create(
2145		"drbd_ee", sizeof(struct drbd_peer_request), 0, 0, NULL);
2146	if (drbd_ee_cache == NULL)
2147		goto Enomem;
2148
2149	drbd_bm_ext_cache = kmem_cache_create(
2150		"drbd_bm", sizeof(struct bm_extent), 0, 0, NULL);
2151	if (drbd_bm_ext_cache == NULL)
2152		goto Enomem;
2153
2154	drbd_al_ext_cache = kmem_cache_create(
2155		"drbd_al", sizeof(struct lc_element), 0, 0, NULL);
2156	if (drbd_al_ext_cache == NULL)
2157		goto Enomem;
2158
2159	/* mempools */
2160	ret = bioset_init(&drbd_io_bio_set, BIO_POOL_SIZE, 0, 0);
2161	if (ret)
2162		goto Enomem;
2163
2164	ret = bioset_init(&drbd_md_io_bio_set, DRBD_MIN_POOL_PAGES, 0,
2165			  BIOSET_NEED_BVECS);
2166	if (ret)
2167		goto Enomem;
2168
2169	ret = mempool_init_page_pool(&drbd_md_io_page_pool, DRBD_MIN_POOL_PAGES, 0);
2170	if (ret)
2171		goto Enomem;
2172
2173	ret = mempool_init_slab_pool(&drbd_request_mempool, number,
2174				     drbd_request_cache);
2175	if (ret)
2176		goto Enomem;
2177
2178	ret = mempool_init_slab_pool(&drbd_ee_mempool, number, drbd_ee_cache);
2179	if (ret)
2180		goto Enomem;
2181
2182	/* drbd's page pool */
2183	spin_lock_init(&drbd_pp_lock);
2184
2185	for (i = 0; i < number; i++) {
2186		page = alloc_page(GFP_HIGHUSER);
2187		if (!page)
2188			goto Enomem;
2189		set_page_private(page, (unsigned long)drbd_pp_pool);
2190		drbd_pp_pool = page;
2191	}
2192	drbd_pp_vacant = number;
2193
2194	return 0;
2195
2196Enomem:
2197	drbd_destroy_mempools(); /* in case we allocated some */
2198	return -ENOMEM;
2199}
2200
2201static void drbd_release_all_peer_reqs(struct drbd_device *device)
2202{
2203	int rr;
2204
2205	rr = drbd_free_peer_reqs(device, &device->active_ee);
2206	if (rr)
2207		drbd_err(device, "%d EEs in active list found!\n", rr);
2208
2209	rr = drbd_free_peer_reqs(device, &device->sync_ee);
2210	if (rr)
2211		drbd_err(device, "%d EEs in sync list found!\n", rr);
2212
2213	rr = drbd_free_peer_reqs(device, &device->read_ee);
2214	if (rr)
2215		drbd_err(device, "%d EEs in read list found!\n", rr);
2216
2217	rr = drbd_free_peer_reqs(device, &device->done_ee);
2218	if (rr)
2219		drbd_err(device, "%d EEs in done list found!\n", rr);
2220
2221	rr = drbd_free_peer_reqs(device, &device->net_ee);
2222	if (rr)
2223		drbd_err(device, "%d EEs in net list found!\n", rr);
2224}
2225
2226/* caution. no locking. */
2227void drbd_destroy_device(struct kref *kref)
2228{
2229	struct drbd_device *device = container_of(kref, struct drbd_device, kref);
2230	struct drbd_resource *resource = device->resource;
2231	struct drbd_peer_device *peer_device, *tmp_peer_device;
2232
2233	del_timer_sync(&device->request_timer);
2234
2235	/* paranoia asserts */
2236	D_ASSERT(device, device->open_cnt == 0);
2237	/* end paranoia asserts */
2238
2239	/* cleanup stuff that may have been allocated during
2240	 * device (re-)configuration or state changes */
2241
2242	drbd_backing_dev_free(device, device->ldev);
2243	device->ldev = NULL;
2244
2245	drbd_release_all_peer_reqs(device);
2246
2247	lc_destroy(device->act_log);
2248	lc_destroy(device->resync);
2249
2250	kfree(device->p_uuid);
2251	/* device->p_uuid = NULL; */
2252
2253	if (device->bitmap) /* should no longer be there. */
2254		drbd_bm_cleanup(device);
2255	__free_page(device->md_io.page);
2256	put_disk(device->vdisk);
2257	blk_cleanup_queue(device->rq_queue);
2258	kfree(device->rs_plan_s);
2259
2260	/* not for_each_connection(connection, resource):
2261	 * those may have been cleaned up and disassociated already.
2262	 */
2263	for_each_peer_device_safe(peer_device, tmp_peer_device, device) {
2264		kref_put(&peer_device->connection->kref, drbd_destroy_connection);
2265		kfree(peer_device);
2266	}
2267	memset(device, 0xfd, sizeof(*device));
2268	kfree(device);
2269	kref_put(&resource->kref, drbd_destroy_resource);
2270}
2271
2272/* One global retry thread, if we need to push back some bio and have it
2273 * reinserted through our make request function.
2274 */
2275static struct retry_worker {
2276	struct workqueue_struct *wq;
2277	struct work_struct worker;
2278
2279	spinlock_t lock;
2280	struct list_head writes;
2281} retry;
2282
2283static void do_retry(struct work_struct *ws)
2284{
2285	struct retry_worker *retry = container_of(ws, struct retry_worker, worker);
2286	LIST_HEAD(writes);
2287	struct drbd_request *req, *tmp;
2288
2289	spin_lock_irq(&retry->lock);
2290	list_splice_init(&retry->writes, &writes);
2291	spin_unlock_irq(&retry->lock);
2292
2293	list_for_each_entry_safe(req, tmp, &writes, tl_requests) {
2294		struct drbd_device *device = req->device;
2295		struct bio *bio = req->master_bio;
2296		unsigned long start_jif = req->start_jif;
2297		bool expected;
2298
2299		expected =
2300			expect(atomic_read(&req->completion_ref) == 0) &&
2301			expect(req->rq_state & RQ_POSTPONED) &&
2302			expect((req->rq_state & RQ_LOCAL_PENDING) == 0 ||
2303				(req->rq_state & RQ_LOCAL_ABORTED) != 0);
2304
2305		if (!expected)
2306			drbd_err(device, "req=%p completion_ref=%d rq_state=%x\n",
2307				req, atomic_read(&req->completion_ref),
2308				req->rq_state);
2309
2310		/* We still need to put one kref associated with the
2311		 * "completion_ref" going zero in the code path that queued it
2312		 * here.  The request object may still be referenced by a
2313		 * frozen local req->private_bio, in case we force-detached.
2314		 */
2315		kref_put(&req->kref, drbd_req_destroy);
2316
2317		/* A single suspended or otherwise blocking device may stall
2318		 * all others as well.  Fortunately, this code path is to
2319		 * recover from a situation that "should not happen":
2320		 * concurrent writes in multi-primary setup.
2321		 * In a "normal" lifecycle, this workqueue is supposed to be
2322		 * destroyed without ever doing anything.
2323		 * If it turns out to be an issue anyways, we can do per
2324		 * resource (replication group) or per device (minor) retry
2325		 * workqueues instead.
2326		 */
2327
2328		/* We are not just doing submit_bio_noacct(),
2329		 * as we want to keep the start_time information. */
2330		inc_ap_bio(device);
2331		__drbd_make_request(device, bio, start_jif);
2332	}
2333}
2334
2335/* called via drbd_req_put_completion_ref(),
2336 * holds resource->req_lock */
2337void drbd_restart_request(struct drbd_request *req)
2338{
2339	unsigned long flags;
2340	spin_lock_irqsave(&retry.lock, flags);
2341	list_move_tail(&req->tl_requests, &retry.writes);
2342	spin_unlock_irqrestore(&retry.lock, flags);
2343
2344	/* Drop the extra reference that would otherwise
2345	 * have been dropped by complete_master_bio.
2346	 * do_retry() needs to grab a new one. */
2347	dec_ap_bio(req->device);
2348
2349	queue_work(retry.wq, &retry.worker);
2350}
2351
2352void drbd_destroy_resource(struct kref *kref)
2353{
2354	struct drbd_resource *resource =
2355		container_of(kref, struct drbd_resource, kref);
2356
2357	idr_destroy(&resource->devices);
2358	free_cpumask_var(resource->cpu_mask);
2359	kfree(resource->name);
2360	memset(resource, 0xf2, sizeof(*resource));
2361	kfree(resource);
2362}
2363
2364void drbd_free_resource(struct drbd_resource *resource)
2365{
2366	struct drbd_connection *connection, *tmp;
2367
2368	for_each_connection_safe(connection, tmp, resource) {
2369		list_del(&connection->connections);
2370		drbd_debugfs_connection_cleanup(connection);
2371		kref_put(&connection->kref, drbd_destroy_connection);
2372	}
2373	drbd_debugfs_resource_cleanup(resource);
2374	kref_put(&resource->kref, drbd_destroy_resource);
2375}
2376
2377static void drbd_cleanup(void)
2378{
2379	unsigned int i;
2380	struct drbd_device *device;
2381	struct drbd_resource *resource, *tmp;
2382
2383	/* first remove proc,
2384	 * drbdsetup uses it's presence to detect
2385	 * whether DRBD is loaded.
2386	 * If we would get stuck in proc removal,
2387	 * but have netlink already deregistered,
2388	 * some drbdsetup commands may wait forever
2389	 * for an answer.
2390	 */
2391	if (drbd_proc)
2392		remove_proc_entry("drbd", NULL);
2393
2394	if (retry.wq)
2395		destroy_workqueue(retry.wq);
2396
2397	drbd_genl_unregister();
2398
2399	idr_for_each_entry(&drbd_devices, device, i)
2400		drbd_delete_device(device);
2401
2402	/* not _rcu since, no other updater anymore. Genl already unregistered */
2403	for_each_resource_safe(resource, tmp, &drbd_resources) {
2404		list_del(&resource->resources);
2405		drbd_free_resource(resource);
2406	}
2407
2408	drbd_debugfs_cleanup();
2409
2410	drbd_destroy_mempools();
2411	unregister_blkdev(DRBD_MAJOR, "drbd");
2412
2413	idr_destroy(&drbd_devices);
2414
2415	pr_info("module cleanup done.\n");
2416}
2417
2418static void drbd_init_workqueue(struct drbd_work_queue* wq)
2419{
2420	spin_lock_init(&wq->q_lock);
2421	INIT_LIST_HEAD(&wq->q);
2422	init_waitqueue_head(&wq->q_wait);
2423}
2424
2425struct completion_work {
2426	struct drbd_work w;
2427	struct completion done;
2428};
2429
2430static int w_complete(struct drbd_work *w, int cancel)
2431{
2432	struct completion_work *completion_work =
2433		container_of(w, struct completion_work, w);
2434
2435	complete(&completion_work->done);
2436	return 0;
2437}
2438
2439void drbd_flush_workqueue(struct drbd_work_queue *work_queue)
2440{
2441	struct completion_work completion_work;
2442
2443	completion_work.w.cb = w_complete;
2444	init_completion(&completion_work.done);
2445	drbd_queue_work(work_queue, &completion_work.w);
2446	wait_for_completion(&completion_work.done);
2447}
2448
2449struct drbd_resource *drbd_find_resource(const char *name)
2450{
2451	struct drbd_resource *resource;
2452
2453	if (!name || !name[0])
2454		return NULL;
2455
2456	rcu_read_lock();
2457	for_each_resource_rcu(resource, &drbd_resources) {
2458		if (!strcmp(resource->name, name)) {
2459			kref_get(&resource->kref);
2460			goto found;
2461		}
2462	}
2463	resource = NULL;
2464found:
2465	rcu_read_unlock();
2466	return resource;
2467}
2468
2469struct drbd_connection *conn_get_by_addrs(void *my_addr, int my_addr_len,
2470				     void *peer_addr, int peer_addr_len)
2471{
2472	struct drbd_resource *resource;
2473	struct drbd_connection *connection;
2474
2475	rcu_read_lock();
2476	for_each_resource_rcu(resource, &drbd_resources) {
2477		for_each_connection_rcu(connection, resource) {
2478			if (connection->my_addr_len == my_addr_len &&
2479			    connection->peer_addr_len == peer_addr_len &&
2480			    !memcmp(&connection->my_addr, my_addr, my_addr_len) &&
2481			    !memcmp(&connection->peer_addr, peer_addr, peer_addr_len)) {
2482				kref_get(&connection->kref);
2483				goto found;
2484			}
2485		}
2486	}
2487	connection = NULL;
2488found:
2489	rcu_read_unlock();
2490	return connection;
2491}
2492
2493static int drbd_alloc_socket(struct drbd_socket *socket)
2494{
2495	socket->rbuf = (void *) __get_free_page(GFP_KERNEL);
2496	if (!socket->rbuf)
2497		return -ENOMEM;
2498	socket->sbuf = (void *) __get_free_page(GFP_KERNEL);
2499	if (!socket->sbuf)
2500		return -ENOMEM;
2501	return 0;
2502}
2503
2504static void drbd_free_socket(struct drbd_socket *socket)
2505{
2506	free_page((unsigned long) socket->sbuf);
2507	free_page((unsigned long) socket->rbuf);
2508}
2509
2510void conn_free_crypto(struct drbd_connection *connection)
2511{
2512	drbd_free_sock(connection);
2513
2514	crypto_free_shash(connection->csums_tfm);
2515	crypto_free_shash(connection->verify_tfm);
2516	crypto_free_shash(connection->cram_hmac_tfm);
2517	crypto_free_shash(connection->integrity_tfm);
2518	crypto_free_shash(connection->peer_integrity_tfm);
2519	kfree(connection->int_dig_in);
2520	kfree(connection->int_dig_vv);
2521
2522	connection->csums_tfm = NULL;
2523	connection->verify_tfm = NULL;
2524	connection->cram_hmac_tfm = NULL;
2525	connection->integrity_tfm = NULL;
2526	connection->peer_integrity_tfm = NULL;
2527	connection->int_dig_in = NULL;
2528	connection->int_dig_vv = NULL;
2529}
2530
2531int set_resource_options(struct drbd_resource *resource, struct res_opts *res_opts)
2532{
2533	struct drbd_connection *connection;
2534	cpumask_var_t new_cpu_mask;
2535	int err;
2536
2537	if (!zalloc_cpumask_var(&new_cpu_mask, GFP_KERNEL))
2538		return -ENOMEM;
2539
2540	/* silently ignore cpu mask on UP kernel */
2541	if (nr_cpu_ids > 1 && res_opts->cpu_mask[0] != 0) {
2542		err = bitmap_parse(res_opts->cpu_mask, DRBD_CPU_MASK_SIZE,
2543				   cpumask_bits(new_cpu_mask), nr_cpu_ids);
2544		if (err == -EOVERFLOW) {
2545			/* So what. mask it out. */
2546			cpumask_var_t tmp_cpu_mask;
2547			if (zalloc_cpumask_var(&tmp_cpu_mask, GFP_KERNEL)) {
2548				cpumask_setall(tmp_cpu_mask);
2549				cpumask_and(new_cpu_mask, new_cpu_mask, tmp_cpu_mask);
2550				drbd_warn(resource, "Overflow in bitmap_parse(%.12s%s), truncating to %u bits\n",
2551					res_opts->cpu_mask,
2552					strlen(res_opts->cpu_mask) > 12 ? "..." : "",
2553					nr_cpu_ids);
2554				free_cpumask_var(tmp_cpu_mask);
2555				err = 0;
2556			}
2557		}
2558		if (err) {
2559			drbd_warn(resource, "bitmap_parse() failed with %d\n", err);
2560			/* retcode = ERR_CPU_MASK_PARSE; */
2561			goto fail;
2562		}
2563	}
2564	resource->res_opts = *res_opts;
2565	if (cpumask_empty(new_cpu_mask))
2566		drbd_calc_cpu_mask(&new_cpu_mask);
2567	if (!cpumask_equal(resource->cpu_mask, new_cpu_mask)) {
2568		cpumask_copy(resource->cpu_mask, new_cpu_mask);
2569		for_each_connection_rcu(connection, resource) {
2570			connection->receiver.reset_cpu_mask = 1;
2571			connection->ack_receiver.reset_cpu_mask = 1;
2572			connection->worker.reset_cpu_mask = 1;
2573		}
2574	}
2575	err = 0;
2576
2577fail:
2578	free_cpumask_var(new_cpu_mask);
2579	return err;
2580
2581}
2582
2583struct drbd_resource *drbd_create_resource(const char *name)
2584{
2585	struct drbd_resource *resource;
2586
2587	resource = kzalloc(sizeof(struct drbd_resource), GFP_KERNEL);
2588	if (!resource)
2589		goto fail;
2590	resource->name = kstrdup(name, GFP_KERNEL);
2591	if (!resource->name)
2592		goto fail_free_resource;
2593	if (!zalloc_cpumask_var(&resource->cpu_mask, GFP_KERNEL))
2594		goto fail_free_name;
2595	kref_init(&resource->kref);
2596	idr_init(&resource->devices);
2597	INIT_LIST_HEAD(&resource->connections);
2598	resource->write_ordering = WO_BDEV_FLUSH;
2599	list_add_tail_rcu(&resource->resources, &drbd_resources);
2600	mutex_init(&resource->conf_update);
2601	mutex_init(&resource->adm_mutex);
2602	spin_lock_init(&resource->req_lock);
2603	drbd_debugfs_resource_add(resource);
2604	return resource;
2605
2606fail_free_name:
2607	kfree(resource->name);
2608fail_free_resource:
2609	kfree(resource);
2610fail:
2611	return NULL;
2612}
2613
2614/* caller must be under adm_mutex */
2615struct drbd_connection *conn_create(const char *name, struct res_opts *res_opts)
2616{
2617	struct drbd_resource *resource;
2618	struct drbd_connection *connection;
2619
2620	connection = kzalloc(sizeof(struct drbd_connection), GFP_KERNEL);
2621	if (!connection)
2622		return NULL;
2623
2624	if (drbd_alloc_socket(&connection->data))
2625		goto fail;
2626	if (drbd_alloc_socket(&connection->meta))
2627		goto fail;
2628
2629	connection->current_epoch = kzalloc(sizeof(struct drbd_epoch), GFP_KERNEL);
2630	if (!connection->current_epoch)
2631		goto fail;
2632
2633	INIT_LIST_HEAD(&connection->transfer_log);
2634
2635	INIT_LIST_HEAD(&connection->current_epoch->list);
2636	connection->epochs = 1;
2637	spin_lock_init(&connection->epoch_lock);
2638
2639	connection->send.seen_any_write_yet = false;
2640	connection->send.current_epoch_nr = 0;
2641	connection->send.current_epoch_writes = 0;
2642
2643	resource = drbd_create_resource(name);
2644	if (!resource)
2645		goto fail;
2646
2647	connection->cstate = C_STANDALONE;
2648	mutex_init(&connection->cstate_mutex);
2649	init_waitqueue_head(&connection->ping_wait);
2650	idr_init(&connection->peer_devices);
2651
2652	drbd_init_workqueue(&connection->sender_work);
2653	mutex_init(&connection->data.mutex);
2654	mutex_init(&connection->meta.mutex);
2655
2656	drbd_thread_init(resource, &connection->receiver, drbd_receiver, "receiver");
2657	connection->receiver.connection = connection;
2658	drbd_thread_init(resource, &connection->worker, drbd_worker, "worker");
2659	connection->worker.connection = connection;
2660	drbd_thread_init(resource, &connection->ack_receiver, drbd_ack_receiver, "ack_recv");
2661	connection->ack_receiver.connection = connection;
2662
2663	kref_init(&connection->kref);
2664
2665	connection->resource = resource;
2666
2667	if (set_resource_options(resource, res_opts))
2668		goto fail_resource;
2669
2670	kref_get(&resource->kref);
2671	list_add_tail_rcu(&connection->connections, &resource->connections);
2672	drbd_debugfs_connection_add(connection);
2673	return connection;
2674
2675fail_resource:
2676	list_del(&resource->resources);
2677	drbd_free_resource(resource);
2678fail:
2679	kfree(connection->current_epoch);
2680	drbd_free_socket(&connection->meta);
2681	drbd_free_socket(&connection->data);
2682	kfree(connection);
2683	return NULL;
2684}
2685
2686void drbd_destroy_connection(struct kref *kref)
2687{
2688	struct drbd_connection *connection = container_of(kref, struct drbd_connection, kref);
2689	struct drbd_resource *resource = connection->resource;
2690
2691	if (atomic_read(&connection->current_epoch->epoch_size) !=  0)
2692		drbd_err(connection, "epoch_size:%d\n", atomic_read(&connection->current_epoch->epoch_size));
2693	kfree(connection->current_epoch);
2694
2695	idr_destroy(&connection->peer_devices);
2696
2697	drbd_free_socket(&connection->meta);
2698	drbd_free_socket(&connection->data);
2699	kfree(connection->int_dig_in);
2700	kfree(connection->int_dig_vv);
2701	memset(connection, 0xfc, sizeof(*connection));
2702	kfree(connection);
2703	kref_put(&resource->kref, drbd_destroy_resource);
2704}
2705
2706static int init_submitter(struct drbd_device *device)
2707{
2708	/* opencoded create_singlethread_workqueue(),
2709	 * to be able to say "drbd%d", ..., minor */
2710	device->submit.wq =
2711		alloc_ordered_workqueue("drbd%u_submit", WQ_MEM_RECLAIM, device->minor);
2712	if (!device->submit.wq)
2713		return -ENOMEM;
2714
2715	INIT_WORK(&device->submit.worker, do_submit);
2716	INIT_LIST_HEAD(&device->submit.writes);
2717	return 0;
2718}
2719
2720enum drbd_ret_code drbd_create_device(struct drbd_config_context *adm_ctx, unsigned int minor)
2721{
2722	struct drbd_resource *resource = adm_ctx->resource;
2723	struct drbd_connection *connection, *n;
2724	struct drbd_device *device;
2725	struct drbd_peer_device *peer_device, *tmp_peer_device;
2726	struct gendisk *disk;
2727	struct request_queue *q;
2728	int id;
2729	int vnr = adm_ctx->volume;
2730	enum drbd_ret_code err = ERR_NOMEM;
2731
2732	device = minor_to_device(minor);
2733	if (device)
2734		return ERR_MINOR_OR_VOLUME_EXISTS;
2735
2736	/* GFP_KERNEL, we are outside of all write-out paths */
2737	device = kzalloc(sizeof(struct drbd_device), GFP_KERNEL);
2738	if (!device)
2739		return ERR_NOMEM;
2740	kref_init(&device->kref);
2741
2742	kref_get(&resource->kref);
2743	device->resource = resource;
2744	device->minor = minor;
2745	device->vnr = vnr;
2746
2747	drbd_init_set_defaults(device);
2748
2749	q = blk_alloc_queue(NUMA_NO_NODE);
2750	if (!q)
2751		goto out_no_q;
2752	device->rq_queue = q;
2753
2754	disk = alloc_disk(1);
2755	if (!disk)
2756		goto out_no_disk;
2757	device->vdisk = disk;
2758
2759	set_disk_ro(disk, true);
2760
2761	disk->queue = q;
2762	disk->major = DRBD_MAJOR;
2763	disk->first_minor = minor;
2764	disk->fops = &drbd_ops;
2765	sprintf(disk->disk_name, "drbd%d", minor);
2766	disk->private_data = device;
2767
2768	blk_queue_write_cache(q, true, true);
2769	/* Setting the max_hw_sectors to an odd value of 8kibyte here
2770	   This triggers a max_bio_size message upon first attach or connect */
2771	blk_queue_max_hw_sectors(q, DRBD_MAX_BIO_SIZE_SAFE >> 8);
2772
2773	device->md_io.page = alloc_page(GFP_KERNEL);
2774	if (!device->md_io.page)
2775		goto out_no_io_page;
2776
2777	if (drbd_bm_init(device))
2778		goto out_no_bitmap;
2779	device->read_requests = RB_ROOT;
2780	device->write_requests = RB_ROOT;
2781
2782	id = idr_alloc(&drbd_devices, device, minor, minor + 1, GFP_KERNEL);
2783	if (id < 0) {
2784		if (id == -ENOSPC)
2785			err = ERR_MINOR_OR_VOLUME_EXISTS;
2786		goto out_no_minor_idr;
2787	}
2788	kref_get(&device->kref);
2789
2790	id = idr_alloc(&resource->devices, device, vnr, vnr + 1, GFP_KERNEL);
2791	if (id < 0) {
2792		if (id == -ENOSPC)
2793			err = ERR_MINOR_OR_VOLUME_EXISTS;
2794		goto out_idr_remove_minor;
2795	}
2796	kref_get(&device->kref);
2797
2798	INIT_LIST_HEAD(&device->peer_devices);
2799	INIT_LIST_HEAD(&device->pending_bitmap_io);
2800	for_each_connection(connection, resource) {
2801		peer_device = kzalloc(sizeof(struct drbd_peer_device), GFP_KERNEL);
2802		if (!peer_device)
2803			goto out_idr_remove_from_resource;
2804		peer_device->connection = connection;
2805		peer_device->device = device;
2806
2807		list_add(&peer_device->peer_devices, &device->peer_devices);
2808		kref_get(&device->kref);
2809
2810		id = idr_alloc(&connection->peer_devices, peer_device, vnr, vnr + 1, GFP_KERNEL);
2811		if (id < 0) {
2812			if (id == -ENOSPC)
2813				err = ERR_INVALID_REQUEST;
2814			goto out_idr_remove_from_resource;
2815		}
2816		kref_get(&connection->kref);
2817		INIT_WORK(&peer_device->send_acks_work, drbd_send_acks_wf);
2818	}
2819
2820	if (init_submitter(device)) {
2821		err = ERR_NOMEM;
2822		goto out_idr_remove_from_resource;
2823	}
2824
2825	add_disk(disk);
2826
2827	/* inherit the connection state */
2828	device->state.conn = first_connection(resource)->cstate;
2829	if (device->state.conn == C_WF_REPORT_PARAMS) {
2830		for_each_peer_device(peer_device, device)
2831			drbd_connected(peer_device);
2832	}
2833	/* move to create_peer_device() */
2834	for_each_peer_device(peer_device, device)
2835		drbd_debugfs_peer_device_add(peer_device);
2836	drbd_debugfs_device_add(device);
2837	return NO_ERROR;
2838
2839out_idr_remove_from_resource:
2840	for_each_connection_safe(connection, n, resource) {
2841		peer_device = idr_remove(&connection->peer_devices, vnr);
2842		if (peer_device)
2843			kref_put(&connection->kref, drbd_destroy_connection);
2844	}
2845	for_each_peer_device_safe(peer_device, tmp_peer_device, device) {
2846		list_del(&peer_device->peer_devices);
2847		kfree(peer_device);
2848	}
2849	idr_remove(&resource->devices, vnr);
2850out_idr_remove_minor:
2851	idr_remove(&drbd_devices, minor);
2852	synchronize_rcu();
2853out_no_minor_idr:
2854	drbd_bm_cleanup(device);
2855out_no_bitmap:
2856	__free_page(device->md_io.page);
2857out_no_io_page:
2858	put_disk(disk);
2859out_no_disk:
2860	blk_cleanup_queue(q);
2861out_no_q:
2862	kref_put(&resource->kref, drbd_destroy_resource);
2863	kfree(device);
2864	return err;
2865}
2866
2867void drbd_delete_device(struct drbd_device *device)
2868{
2869	struct drbd_resource *resource = device->resource;
2870	struct drbd_connection *connection;
2871	struct drbd_peer_device *peer_device;
2872
2873	/* move to free_peer_device() */
2874	for_each_peer_device(peer_device, device)
2875		drbd_debugfs_peer_device_cleanup(peer_device);
2876	drbd_debugfs_device_cleanup(device);
2877	for_each_connection(connection, resource) {
2878		idr_remove(&connection->peer_devices, device->vnr);
2879		kref_put(&device->kref, drbd_destroy_device);
2880	}
2881	idr_remove(&resource->devices, device->vnr);
2882	kref_put(&device->kref, drbd_destroy_device);
2883	idr_remove(&drbd_devices, device_to_minor(device));
2884	kref_put(&device->kref, drbd_destroy_device);
2885	del_gendisk(device->vdisk);
2886	synchronize_rcu();
2887	kref_put(&device->kref, drbd_destroy_device);
2888}
2889
2890static int __init drbd_init(void)
2891{
2892	int err;
2893
2894	if (drbd_minor_count < DRBD_MINOR_COUNT_MIN || drbd_minor_count > DRBD_MINOR_COUNT_MAX) {
2895		pr_err("invalid minor_count (%d)\n", drbd_minor_count);
2896#ifdef MODULE
2897		return -EINVAL;
2898#else
2899		drbd_minor_count = DRBD_MINOR_COUNT_DEF;
2900#endif
2901	}
2902
2903	err = register_blkdev(DRBD_MAJOR, "drbd");
2904	if (err) {
2905		pr_err("unable to register block device major %d\n",
2906		       DRBD_MAJOR);
2907		return err;
2908	}
2909
2910	/*
2911	 * allocate all necessary structs
2912	 */
2913	init_waitqueue_head(&drbd_pp_wait);
2914
2915	drbd_proc = NULL; /* play safe for drbd_cleanup */
2916	idr_init(&drbd_devices);
2917
2918	mutex_init(&resources_mutex);
2919	INIT_LIST_HEAD(&drbd_resources);
2920
2921	err = drbd_genl_register();
2922	if (err) {
2923		pr_err("unable to register generic netlink family\n");
2924		goto fail;
2925	}
2926
2927	err = drbd_create_mempools();
2928	if (err)
2929		goto fail;
2930
2931	err = -ENOMEM;
2932	drbd_proc = proc_create_single("drbd", S_IFREG | 0444 , NULL, drbd_seq_show);
2933	if (!drbd_proc)	{
2934		pr_err("unable to register proc file\n");
2935		goto fail;
2936	}
2937
2938	retry.wq = create_singlethread_workqueue("drbd-reissue");
2939	if (!retry.wq) {
2940		pr_err("unable to create retry workqueue\n");
2941		goto fail;
2942	}
2943	INIT_WORK(&retry.worker, do_retry);
2944	spin_lock_init(&retry.lock);
2945	INIT_LIST_HEAD(&retry.writes);
2946
2947	drbd_debugfs_init();
2948
2949	pr_info("initialized. "
2950	       "Version: " REL_VERSION " (api:%d/proto:%d-%d)\n",
2951	       API_VERSION, PRO_VERSION_MIN, PRO_VERSION_MAX);
2952	pr_info("%s\n", drbd_buildtag());
2953	pr_info("registered as block device major %d\n", DRBD_MAJOR);
2954	return 0; /* Success! */
2955
2956fail:
2957	drbd_cleanup();
2958	if (err == -ENOMEM)
2959		pr_err("ran out of memory\n");
2960	else
2961		pr_err("initialization failure\n");
2962	return err;
2963}
2964
2965static void drbd_free_one_sock(struct drbd_socket *ds)
2966{
2967	struct socket *s;
2968	mutex_lock(&ds->mutex);
2969	s = ds->socket;
2970	ds->socket = NULL;
2971	mutex_unlock(&ds->mutex);
2972	if (s) {
2973		/* so debugfs does not need to mutex_lock() */
2974		synchronize_rcu();
2975		kernel_sock_shutdown(s, SHUT_RDWR);
2976		sock_release(s);
2977	}
2978}
2979
2980void drbd_free_sock(struct drbd_connection *connection)
2981{
2982	if (connection->data.socket)
2983		drbd_free_one_sock(&connection->data);
2984	if (connection->meta.socket)
2985		drbd_free_one_sock(&connection->meta);
2986}
2987
2988/* meta data management */
2989
2990void conn_md_sync(struct drbd_connection *connection)
2991{
2992	struct drbd_peer_device *peer_device;
2993	int vnr;
2994
2995	rcu_read_lock();
2996	idr_for_each_entry(&connection->peer_devices, peer_device, vnr) {
2997		struct drbd_device *device = peer_device->device;
2998
2999		kref_get(&device->kref);
3000		rcu_read_unlock();
3001		drbd_md_sync(device);
3002		kref_put(&device->kref, drbd_destroy_device);
3003		rcu_read_lock();
3004	}
3005	rcu_read_unlock();
3006}
3007
3008/* aligned 4kByte */
3009struct meta_data_on_disk {
3010	u64 la_size_sect;      /* last agreed size. */
3011	u64 uuid[UI_SIZE];   /* UUIDs. */
3012	u64 device_uuid;
3013	u64 reserved_u64_1;
3014	u32 flags;             /* MDF */
3015	u32 magic;
3016	u32 md_size_sect;
3017	u32 al_offset;         /* offset to this block */
3018	u32 al_nr_extents;     /* important for restoring the AL (userspace) */
3019	      /* `-- act_log->nr_elements <-- ldev->dc.al_extents */
3020	u32 bm_offset;         /* offset to the bitmap, from here */
3021	u32 bm_bytes_per_bit;  /* BM_BLOCK_SIZE */
3022	u32 la_peer_max_bio_size;   /* last peer max_bio_size */
3023
3024	/* see al_tr_number_to_on_disk_sector() */
3025	u32 al_stripes;
3026	u32 al_stripe_size_4k;
3027
3028	u8 reserved_u8[4096 - (7*8 + 10*4)];
3029} __packed;
3030
3031
3032
3033void drbd_md_write(struct drbd_device *device, void *b)
3034{
3035	struct meta_data_on_disk *buffer = b;
3036	sector_t sector;
3037	int i;
3038
3039	memset(buffer, 0, sizeof(*buffer));
3040
3041	buffer->la_size_sect = cpu_to_be64(get_capacity(device->vdisk));
3042	for (i = UI_CURRENT; i < UI_SIZE; i++)
3043		buffer->uuid[i] = cpu_to_be64(device->ldev->md.uuid[i]);
3044	buffer->flags = cpu_to_be32(device->ldev->md.flags);
3045	buffer->magic = cpu_to_be32(DRBD_MD_MAGIC_84_UNCLEAN);
3046
3047	buffer->md_size_sect  = cpu_to_be32(device->ldev->md.md_size_sect);
3048	buffer->al_offset     = cpu_to_be32(device->ldev->md.al_offset);
3049	buffer->al_nr_extents = cpu_to_be32(device->act_log->nr_elements);
3050	buffer->bm_bytes_per_bit = cpu_to_be32(BM_BLOCK_SIZE);
3051	buffer->device_uuid = cpu_to_be64(device->ldev->md.device_uuid);
3052
3053	buffer->bm_offset = cpu_to_be32(device->ldev->md.bm_offset);
3054	buffer->la_peer_max_bio_size = cpu_to_be32(device->peer_max_bio_size);
3055
3056	buffer->al_stripes = cpu_to_be32(device->ldev->md.al_stripes);
3057	buffer->al_stripe_size_4k = cpu_to_be32(device->ldev->md.al_stripe_size_4k);
3058
3059	D_ASSERT(device, drbd_md_ss(device->ldev) == device->ldev->md.md_offset);
3060	sector = device->ldev->md.md_offset;
3061
3062	if (drbd_md_sync_page_io(device, device->ldev, sector, REQ_OP_WRITE)) {
3063		/* this was a try anyways ... */
3064		drbd_err(device, "meta data update failed!\n");
3065		drbd_chk_io_error(device, 1, DRBD_META_IO_ERROR);
3066	}
3067}
3068
3069/**
3070 * drbd_md_sync() - Writes the meta data super block if the MD_DIRTY flag bit is set
3071 * @device:	DRBD device.
3072 */
3073void drbd_md_sync(struct drbd_device *device)
3074{
3075	struct meta_data_on_disk *buffer;
3076
3077	/* Don't accidentally change the DRBD meta data layout. */
3078	BUILD_BUG_ON(UI_SIZE != 4);
3079	BUILD_BUG_ON(sizeof(struct meta_data_on_disk) != 4096);
3080
3081	del_timer(&device->md_sync_timer);
3082	/* timer may be rearmed by drbd_md_mark_dirty() now. */
3083	if (!test_and_clear_bit(MD_DIRTY, &device->flags))
3084		return;
3085
3086	/* We use here D_FAILED and not D_ATTACHING because we try to write
3087	 * metadata even if we detach due to a disk failure! */
3088	if (!get_ldev_if_state(device, D_FAILED))
3089		return;
3090
3091	buffer = drbd_md_get_buffer(device, __func__);
3092	if (!buffer)
3093		goto out;
3094
3095	drbd_md_write(device, buffer);
3096
3097	/* Update device->ldev->md.la_size_sect,
3098	 * since we updated it on metadata. */
3099	device->ldev->md.la_size_sect = get_capacity(device->vdisk);
3100
3101	drbd_md_put_buffer(device);
3102out:
3103	put_ldev(device);
3104}
3105
3106static int check_activity_log_stripe_size(struct drbd_device *device,
3107		struct meta_data_on_disk *on_disk,
3108		struct drbd_md *in_core)
3109{
3110	u32 al_stripes = be32_to_cpu(on_disk->al_stripes);
3111	u32 al_stripe_size_4k = be32_to_cpu(on_disk->al_stripe_size_4k);
3112	u64 al_size_4k;
3113
3114	/* both not set: default to old fixed size activity log */
3115	if (al_stripes == 0 && al_stripe_size_4k == 0) {
3116		al_stripes = 1;
3117		al_stripe_size_4k = MD_32kB_SECT/8;
3118	}
3119
3120	/* some paranoia plausibility checks */
3121
3122	/* we need both values to be set */
3123	if (al_stripes == 0 || al_stripe_size_4k == 0)
3124		goto err;
3125
3126	al_size_4k = (u64)al_stripes * al_stripe_size_4k;
3127
3128	/* Upper limit of activity log area, to avoid potential overflow
3129	 * problems in al_tr_number_to_on_disk_sector(). As right now, more
3130	 * than 72 * 4k blocks total only increases the amount of history,
3131	 * limiting this arbitrarily to 16 GB is not a real limitation ;-)  */
3132	if (al_size_4k > (16 * 1024 * 1024/4))
3133		goto err;
3134
3135	/* Lower limit: we need at least 8 transaction slots (32kB)
3136	 * to not break existing setups */
3137	if (al_size_4k < MD_32kB_SECT/8)
3138		goto err;
3139
3140	in_core->al_stripe_size_4k = al_stripe_size_4k;
3141	in_core->al_stripes = al_stripes;
3142	in_core->al_size_4k = al_size_4k;
3143
3144	return 0;
3145err:
3146	drbd_err(device, "invalid activity log striping: al_stripes=%u, al_stripe_size_4k=%u\n",
3147			al_stripes, al_stripe_size_4k);
3148	return -EINVAL;
3149}
3150
3151static int check_offsets_and_sizes(struct drbd_device *device, struct drbd_backing_dev *bdev)
3152{
3153	sector_t capacity = drbd_get_capacity(bdev->md_bdev);
3154	struct drbd_md *in_core = &bdev->md;
3155	s32 on_disk_al_sect;
3156	s32 on_disk_bm_sect;
3157
3158	/* The on-disk size of the activity log, calculated from offsets, and
3159	 * the size of the activity log calculated from the stripe settings,
3160	 * should match.
3161	 * Though we could relax this a bit: it is ok, if the striped activity log
3162	 * fits in the available on-disk activity log size.
3163	 * Right now, that would break how resize is implemented.
3164	 * TODO: make drbd_determine_dev_size() (and the drbdmeta tool) aware
3165	 * of possible unused padding space in the on disk layout. */
3166	if (in_core->al_offset < 0) {
3167		if (in_core->bm_offset > in_core->al_offset)
3168			goto err;
3169		on_disk_al_sect = -in_core->al_offset;
3170		on_disk_bm_sect = in_core->al_offset - in_core->bm_offset;
3171	} else {
3172		if (in_core->al_offset != MD_4kB_SECT)
3173			goto err;
3174		if (in_core->bm_offset < in_core->al_offset + in_core->al_size_4k * MD_4kB_SECT)
3175			goto err;
3176
3177		on_disk_al_sect = in_core->bm_offset - MD_4kB_SECT;
3178		on_disk_bm_sect = in_core->md_size_sect - in_core->bm_offset;
3179	}
3180
3181	/* old fixed size meta data is exactly that: fixed. */
3182	if (in_core->meta_dev_idx >= 0) {
3183		if (in_core->md_size_sect != MD_128MB_SECT
3184		||  in_core->al_offset != MD_4kB_SECT
3185		||  in_core->bm_offset != MD_4kB_SECT + MD_32kB_SECT
3186		||  in_core->al_stripes != 1
3187		||  in_core->al_stripe_size_4k != MD_32kB_SECT/8)
3188			goto err;
3189	}
3190
3191	if (capacity < in_core->md_size_sect)
3192		goto err;
3193	if (capacity - in_core->md_size_sect < drbd_md_first_sector(bdev))
3194		goto err;
3195
3196	/* should be aligned, and at least 32k */
3197	if ((on_disk_al_sect & 7) || (on_disk_al_sect < MD_32kB_SECT))
3198		goto err;
3199
3200	/* should fit (for now: exactly) into the available on-disk space;
3201	 * overflow prevention is in check_activity_log_stripe_size() above. */
3202	if (on_disk_al_sect != in_core->al_size_4k * MD_4kB_SECT)
3203		goto err;
3204
3205	/* again, should be aligned */
3206	if (in_core->bm_offset & 7)
3207		goto err;
3208
3209	/* FIXME check for device grow with flex external meta data? */
3210
3211	/* can the available bitmap space cover the last agreed device size? */
3212	if (on_disk_bm_sect < (in_core->la_size_sect+7)/MD_4kB_SECT/8/512)
3213		goto err;
3214
3215	return 0;
3216
3217err:
3218	drbd_err(device, "meta data offsets don't make sense: idx=%d "
3219			"al_s=%u, al_sz4k=%u, al_offset=%d, bm_offset=%d, "
3220			"md_size_sect=%u, la_size=%llu, md_capacity=%llu\n",
3221			in_core->meta_dev_idx,
3222			in_core->al_stripes, in_core->al_stripe_size_4k,
3223			in_core->al_offset, in_core->bm_offset, in_core->md_size_sect,
3224			(unsigned long long)in_core->la_size_sect,
3225			(unsigned long long)capacity);
3226
3227	return -EINVAL;
3228}
3229
3230
3231/**
3232 * drbd_md_read() - Reads in the meta data super block
3233 * @device:	DRBD device.
3234 * @bdev:	Device from which the meta data should be read in.
3235 *
3236 * Return NO_ERROR on success, and an enum drbd_ret_code in case
3237 * something goes wrong.
3238 *
3239 * Called exactly once during drbd_adm_attach(), while still being D_DISKLESS,
3240 * even before @bdev is assigned to @device->ldev.
3241 */
3242int drbd_md_read(struct drbd_device *device, struct drbd_backing_dev *bdev)
3243{
3244	struct meta_data_on_disk *buffer;
3245	u32 magic, flags;
3246	int i, rv = NO_ERROR;
3247
3248	if (device->state.disk != D_DISKLESS)
3249		return ERR_DISK_CONFIGURED;
3250
3251	buffer = drbd_md_get_buffer(device, __func__);
3252	if (!buffer)
3253		return ERR_NOMEM;
3254
3255	/* First, figure out where our meta data superblock is located,
3256	 * and read it. */
3257	bdev->md.meta_dev_idx = bdev->disk_conf->meta_dev_idx;
3258	bdev->md.md_offset = drbd_md_ss(bdev);
3259	/* Even for (flexible or indexed) external meta data,
3260	 * initially restrict us to the 4k superblock for now.
3261	 * Affects the paranoia out-of-range access check in drbd_md_sync_page_io(). */
3262	bdev->md.md_size_sect = 8;
3263
3264	if (drbd_md_sync_page_io(device, bdev, bdev->md.md_offset,
3265				 REQ_OP_READ)) {
3266		/* NOTE: can't do normal error processing here as this is
3267		   called BEFORE disk is attached */
3268		drbd_err(device, "Error while reading metadata.\n");
3269		rv = ERR_IO_MD_DISK;
3270		goto err;
3271	}
3272
3273	magic = be32_to_cpu(buffer->magic);
3274	flags = be32_to_cpu(buffer->flags);
3275	if (magic == DRBD_MD_MAGIC_84_UNCLEAN ||
3276	    (magic == DRBD_MD_MAGIC_08 && !(flags & MDF_AL_CLEAN))) {
3277			/* btw: that's Activity Log clean, not "all" clean. */
3278		drbd_err(device, "Found unclean meta data. Did you \"drbdadm apply-al\"?\n");
3279		rv = ERR_MD_UNCLEAN;
3280		goto err;
3281	}
3282
3283	rv = ERR_MD_INVALID;
3284	if (magic != DRBD_MD_MAGIC_08) {
3285		if (magic == DRBD_MD_MAGIC_07)
3286			drbd_err(device, "Found old (0.7) meta data magic. Did you \"drbdadm create-md\"?\n");
3287		else
3288			drbd_err(device, "Meta data magic not found. Did you \"drbdadm create-md\"?\n");
3289		goto err;
3290	}
3291
3292	if (be32_to_cpu(buffer->bm_bytes_per_bit) != BM_BLOCK_SIZE) {
3293		drbd_err(device, "unexpected bm_bytes_per_bit: %u (expected %u)\n",
3294		    be32_to_cpu(buffer->bm_bytes_per_bit), BM_BLOCK_SIZE);
3295		goto err;
3296	}
3297
3298
3299	/* convert to in_core endian */
3300	bdev->md.la_size_sect = be64_to_cpu(buffer->la_size_sect);
3301	for (i = UI_CURRENT; i < UI_SIZE; i++)
3302		bdev->md.uuid[i] = be64_to_cpu(buffer->uuid[i]);
3303	bdev->md.flags = be32_to_cpu(buffer->flags);
3304	bdev->md.device_uuid = be64_to_cpu(buffer->device_uuid);
3305
3306	bdev->md.md_size_sect = be32_to_cpu(buffer->md_size_sect);
3307	bdev->md.al_offset = be32_to_cpu(buffer->al_offset);
3308	bdev->md.bm_offset = be32_to_cpu(buffer->bm_offset);
3309
3310	if (check_activity_log_stripe_size(device, buffer, &bdev->md))
3311		goto err;
3312	if (check_offsets_and_sizes(device, bdev))
3313		goto err;
3314
3315	if (be32_to_cpu(buffer->bm_offset) != bdev->md.bm_offset) {
3316		drbd_err(device, "unexpected bm_offset: %d (expected %d)\n",
3317		    be32_to_cpu(buffer->bm_offset), bdev->md.bm_offset);
3318		goto err;
3319	}
3320	if (be32_to_cpu(buffer->md_size_sect) != bdev->md.md_size_sect) {
3321		drbd_err(device, "unexpected md_size: %u (expected %u)\n",
3322		    be32_to_cpu(buffer->md_size_sect), bdev->md.md_size_sect);
3323		goto err;
3324	}
3325
3326	rv = NO_ERROR;
3327
3328	spin_lock_irq(&device->resource->req_lock);
3329	if (device->state.conn < C_CONNECTED) {
3330		unsigned int peer;
3331		peer = be32_to_cpu(buffer->la_peer_max_bio_size);
3332		peer = max(peer, DRBD_MAX_BIO_SIZE_SAFE);
3333		device->peer_max_bio_size = peer;
3334	}
3335	spin_unlock_irq(&device->resource->req_lock);
3336
3337 err:
3338	drbd_md_put_buffer(device);
3339
3340	return rv;
3341}
3342
3343/**
3344 * drbd_md_mark_dirty() - Mark meta data super block as dirty
3345 * @device:	DRBD device.
3346 *
3347 * Call this function if you change anything that should be written to
3348 * the meta-data super block. This function sets MD_DIRTY, and starts a
3349 * timer that ensures that within five seconds you have to call drbd_md_sync().
3350 */
3351void drbd_md_mark_dirty(struct drbd_device *device)
3352{
3353	if (!test_and_set_bit(MD_DIRTY, &device->flags))
3354		mod_timer(&device->md_sync_timer, jiffies + 5*HZ);
3355}
3356
3357void drbd_uuid_move_history(struct drbd_device *device) __must_hold(local)
3358{
3359	int i;
3360
3361	for (i = UI_HISTORY_START; i < UI_HISTORY_END; i++)
3362		device->ldev->md.uuid[i+1] = device->ldev->md.uuid[i];
3363}
3364
3365void __drbd_uuid_set(struct drbd_device *device, int idx, u64 val) __must_hold(local)
3366{
3367	if (idx == UI_CURRENT) {
3368		if (device->state.role == R_PRIMARY)
3369			val |= 1;
3370		else
3371			val &= ~((u64)1);
3372
3373		drbd_set_ed_uuid(device, val);
3374	}
3375
3376	device->ldev->md.uuid[idx] = val;
3377	drbd_md_mark_dirty(device);
3378}
3379
3380void _drbd_uuid_set(struct drbd_device *device, int idx, u64 val) __must_hold(local)
3381{
3382	unsigned long flags;
3383	spin_lock_irqsave(&device->ldev->md.uuid_lock, flags);
3384	__drbd_uuid_set(device, idx, val);
3385	spin_unlock_irqrestore(&device->ldev->md.uuid_lock, flags);
3386}
3387
3388void drbd_uuid_set(struct drbd_device *device, int idx, u64 val) __must_hold(local)
3389{
3390	unsigned long flags;
3391	spin_lock_irqsave(&device->ldev->md.uuid_lock, flags);
3392	if (device->ldev->md.uuid[idx]) {
3393		drbd_uuid_move_history(device);
3394		device->ldev->md.uuid[UI_HISTORY_START] = device->ldev->md.uuid[idx];
3395	}
3396	__drbd_uuid_set(device, idx, val);
3397	spin_unlock_irqrestore(&device->ldev->md.uuid_lock, flags);
3398}
3399
3400/**
3401 * drbd_uuid_new_current() - Creates a new current UUID
3402 * @device:	DRBD device.
3403 *
3404 * Creates a new current UUID, and rotates the old current UUID into
3405 * the bitmap slot. Causes an incremental resync upon next connect.
3406 */
3407void drbd_uuid_new_current(struct drbd_device *device) __must_hold(local)
3408{
3409	u64 val;
3410	unsigned long long bm_uuid;
3411
3412	get_random_bytes(&val, sizeof(u64));
3413
3414	spin_lock_irq(&device->ldev->md.uuid_lock);
3415	bm_uuid = device->ldev->md.uuid[UI_BITMAP];
3416
3417	if (bm_uuid)
3418		drbd_warn(device, "bm UUID was already set: %llX\n", bm_uuid);
3419
3420	device->ldev->md.uuid[UI_BITMAP] = device->ldev->md.uuid[UI_CURRENT];
3421	__drbd_uuid_set(device, UI_CURRENT, val);
3422	spin_unlock_irq(&device->ldev->md.uuid_lock);
3423
3424	drbd_print_uuids(device, "new current UUID");
3425	/* get it to stable storage _now_ */
3426	drbd_md_sync(device);
3427}
3428
3429void drbd_uuid_set_bm(struct drbd_device *device, u64 val) __must_hold(local)
3430{
3431	unsigned long flags;
3432	if (device->ldev->md.uuid[UI_BITMAP] == 0 && val == 0)
3433		return;
3434
3435	spin_lock_irqsave(&device->ldev->md.uuid_lock, flags);
3436	if (val == 0) {
3437		drbd_uuid_move_history(device);
3438		device->ldev->md.uuid[UI_HISTORY_START] = device->ldev->md.uuid[UI_BITMAP];
3439		device->ldev->md.uuid[UI_BITMAP] = 0;
3440	} else {
3441		unsigned long long bm_uuid = device->ldev->md.uuid[UI_BITMAP];
3442		if (bm_uuid)
3443			drbd_warn(device, "bm UUID was already set: %llX\n", bm_uuid);
3444
3445		device->ldev->md.uuid[UI_BITMAP] = val & ~((u64)1);
3446	}
3447	spin_unlock_irqrestore(&device->ldev->md.uuid_lock, flags);
3448
3449	drbd_md_mark_dirty(device);
3450}
3451
3452/**
3453 * drbd_bmio_set_n_write() - io_fn for drbd_queue_bitmap_io() or drbd_bitmap_io()
3454 * @device:	DRBD device.
3455 *
3456 * Sets all bits in the bitmap and writes the whole bitmap to stable storage.
3457 */
3458int drbd_bmio_set_n_write(struct drbd_device *device) __must_hold(local)
3459{
3460	int rv = -EIO;
3461
3462	drbd_md_set_flag(device, MDF_FULL_SYNC);
3463	drbd_md_sync(device);
3464	drbd_bm_set_all(device);
3465
3466	rv = drbd_bm_write(device);
3467
3468	if (!rv) {
3469		drbd_md_clear_flag(device, MDF_FULL_SYNC);
3470		drbd_md_sync(device);
3471	}
3472
3473	return rv;
3474}
3475
3476/**
3477 * drbd_bmio_clear_n_write() - io_fn for drbd_queue_bitmap_io() or drbd_bitmap_io()
3478 * @device:	DRBD device.
3479 *
3480 * Clears all bits in the bitmap and writes the whole bitmap to stable storage.
3481 */
3482int drbd_bmio_clear_n_write(struct drbd_device *device) __must_hold(local)
3483{
3484	drbd_resume_al(device);
3485	drbd_bm_clear_all(device);
3486	return drbd_bm_write(device);
3487}
3488
3489static int w_bitmap_io(struct drbd_work *w, int unused)
3490{
3491	struct drbd_device *device =
3492		container_of(w, struct drbd_device, bm_io_work.w);
3493	struct bm_io_work *work = &device->bm_io_work;
3494	int rv = -EIO;
3495
3496	if (work->flags != BM_LOCKED_CHANGE_ALLOWED) {
3497		int cnt = atomic_read(&device->ap_bio_cnt);
3498		if (cnt)
3499			drbd_err(device, "FIXME: ap_bio_cnt %d, expected 0; queued for '%s'\n",
3500					cnt, work->why);
3501	}
3502
3503	if (get_ldev(device)) {
3504		drbd_bm_lock(device, work->why, work->flags);
3505		rv = work->io_fn(device);
3506		drbd_bm_unlock(device);
3507		put_ldev(device);
3508	}
3509
3510	clear_bit_unlock(BITMAP_IO, &device->flags);
3511	wake_up(&device->misc_wait);
3512
3513	if (work->done)
3514		work->done(device, rv);
3515
3516	clear_bit(BITMAP_IO_QUEUED, &device->flags);
3517	work->why = NULL;
3518	work->flags = 0;
3519
3520	return 0;
3521}
3522
3523/**
3524 * drbd_queue_bitmap_io() - Queues an IO operation on the whole bitmap
3525 * @device:	DRBD device.
3526 * @io_fn:	IO callback to be called when bitmap IO is possible
3527 * @done:	callback to be called after the bitmap IO was performed
3528 * @why:	Descriptive text of the reason for doing the IO
3529 *
3530 * While IO on the bitmap happens we freeze application IO thus we ensure
3531 * that drbd_set_out_of_sync() can not be called. This function MAY ONLY be
3532 * called from worker context. It MUST NOT be used while a previous such
3533 * work is still pending!
3534 *
3535 * Its worker function encloses the call of io_fn() by get_ldev() and
3536 * put_ldev().
3537 */
3538void drbd_queue_bitmap_io(struct drbd_device *device,
3539			  int (*io_fn)(struct drbd_device *),
3540			  void (*done)(struct drbd_device *, int),
3541			  char *why, enum bm_flag flags)
3542{
3543	D_ASSERT(device, current == first_peer_device(device)->connection->worker.task);
3544
3545	D_ASSERT(device, !test_bit(BITMAP_IO_QUEUED, &device->flags));
3546	D_ASSERT(device, !test_bit(BITMAP_IO, &device->flags));
3547	D_ASSERT(device, list_empty(&device->bm_io_work.w.list));
3548	if (device->bm_io_work.why)
3549		drbd_err(device, "FIXME going to queue '%s' but '%s' still pending?\n",
3550			why, device->bm_io_work.why);
3551
3552	device->bm_io_work.io_fn = io_fn;
3553	device->bm_io_work.done = done;
3554	device->bm_io_work.why = why;
3555	device->bm_io_work.flags = flags;
3556
3557	spin_lock_irq(&device->resource->req_lock);
3558	set_bit(BITMAP_IO, &device->flags);
3559	/* don't wait for pending application IO if the caller indicates that
3560	 * application IO does not conflict anyways. */
3561	if (flags == BM_LOCKED_CHANGE_ALLOWED || atomic_read(&device->ap_bio_cnt) == 0) {
3562		if (!test_and_set_bit(BITMAP_IO_QUEUED, &device->flags))
3563			drbd_queue_work(&first_peer_device(device)->connection->sender_work,
3564					&device->bm_io_work.w);
3565	}
3566	spin_unlock_irq(&device->resource->req_lock);
3567}
3568
3569/**
3570 * drbd_bitmap_io() -  Does an IO operation on the whole bitmap
3571 * @device:	DRBD device.
3572 * @io_fn:	IO callback to be called when bitmap IO is possible
3573 * @why:	Descriptive text of the reason for doing the IO
3574 *
3575 * freezes application IO while that the actual IO operations runs. This
3576 * functions MAY NOT be called from worker context.
3577 */
3578int drbd_bitmap_io(struct drbd_device *device, int (*io_fn)(struct drbd_device *),
3579		char *why, enum bm_flag flags)
3580{
3581	/* Only suspend io, if some operation is supposed to be locked out */
3582	const bool do_suspend_io = flags & (BM_DONT_CLEAR|BM_DONT_SET|BM_DONT_TEST);
3583	int rv;
3584
3585	D_ASSERT(device, current != first_peer_device(device)->connection->worker.task);
3586
3587	if (do_suspend_io)
3588		drbd_suspend_io(device);
3589
3590	drbd_bm_lock(device, why, flags);
3591	rv = io_fn(device);
3592	drbd_bm_unlock(device);
3593
3594	if (do_suspend_io)
3595		drbd_resume_io(device);
3596
3597	return rv;
3598}
3599
3600void drbd_md_set_flag(struct drbd_device *device, int flag) __must_hold(local)
3601{
3602	if ((device->ldev->md.flags & flag) != flag) {
3603		drbd_md_mark_dirty(device);
3604		device->ldev->md.flags |= flag;
3605	}
3606}
3607
3608void drbd_md_clear_flag(struct drbd_device *device, int flag) __must_hold(local)
3609{
3610	if ((device->ldev->md.flags & flag) != 0) {
3611		drbd_md_mark_dirty(device);
3612		device->ldev->md.flags &= ~flag;
3613	}
3614}
3615int drbd_md_test_flag(struct drbd_backing_dev *bdev, int flag)
3616{
3617	return (bdev->md.flags & flag) != 0;
3618}
3619
3620static void md_sync_timer_fn(struct timer_list *t)
3621{
3622	struct drbd_device *device = from_timer(device, t, md_sync_timer);
3623	drbd_device_post_work(device, MD_SYNC);
3624}
3625
3626const char *cmdname(enum drbd_packet cmd)
3627{
3628	/* THINK may need to become several global tables
3629	 * when we want to support more than
3630	 * one PRO_VERSION */
3631	static const char *cmdnames[] = {
3632
3633		[P_DATA]	        = "Data",
3634		[P_DATA_REPLY]	        = "DataReply",
3635		[P_RS_DATA_REPLY]	= "RSDataReply",
3636		[P_BARRIER]	        = "Barrier",
3637		[P_BITMAP]	        = "ReportBitMap",
3638		[P_BECOME_SYNC_TARGET]  = "BecomeSyncTarget",
3639		[P_BECOME_SYNC_SOURCE]  = "BecomeSyncSource",
3640		[P_UNPLUG_REMOTE]	= "UnplugRemote",
3641		[P_DATA_REQUEST]	= "DataRequest",
3642		[P_RS_DATA_REQUEST]     = "RSDataRequest",
3643		[P_SYNC_PARAM]	        = "SyncParam",
3644		[P_PROTOCOL]            = "ReportProtocol",
3645		[P_UUIDS]	        = "ReportUUIDs",
3646		[P_SIZES]	        = "ReportSizes",
3647		[P_STATE]	        = "ReportState",
3648		[P_SYNC_UUID]           = "ReportSyncUUID",
3649		[P_AUTH_CHALLENGE]      = "AuthChallenge",
3650		[P_AUTH_RESPONSE]	= "AuthResponse",
3651		[P_STATE_CHG_REQ]       = "StateChgRequest",
3652		[P_PING]		= "Ping",
3653		[P_PING_ACK]	        = "PingAck",
3654		[P_RECV_ACK]	        = "RecvAck",
3655		[P_WRITE_ACK]	        = "WriteAck",
3656		[P_RS_WRITE_ACK]	= "RSWriteAck",
3657		[P_SUPERSEDED]          = "Superseded",
3658		[P_NEG_ACK]	        = "NegAck",
3659		[P_NEG_DREPLY]	        = "NegDReply",
3660		[P_NEG_RS_DREPLY]	= "NegRSDReply",
3661		[P_BARRIER_ACK]	        = "BarrierAck",
3662		[P_STATE_CHG_REPLY]     = "StateChgReply",
3663		[P_OV_REQUEST]          = "OVRequest",
3664		[P_OV_REPLY]            = "OVReply",
3665		[P_OV_RESULT]           = "OVResult",
3666		[P_CSUM_RS_REQUEST]     = "CsumRSRequest",
3667		[P_RS_IS_IN_SYNC]	= "CsumRSIsInSync",
3668		[P_SYNC_PARAM89]	= "SyncParam89",
3669		[P_COMPRESSED_BITMAP]   = "CBitmap",
3670		[P_DELAY_PROBE]         = "DelayProbe",
3671		[P_OUT_OF_SYNC]		= "OutOfSync",
3672		[P_RS_CANCEL]		= "RSCancel",
3673		[P_CONN_ST_CHG_REQ]	= "conn_st_chg_req",
3674		[P_CONN_ST_CHG_REPLY]	= "conn_st_chg_reply",
3675		[P_RETRY_WRITE]		= "retry_write",
3676		[P_PROTOCOL_UPDATE]	= "protocol_update",
3677		[P_TRIM]	        = "Trim",
3678		[P_RS_THIN_REQ]         = "rs_thin_req",
3679		[P_RS_DEALLOCATED]      = "rs_deallocated",
3680		[P_WSAME]	        = "WriteSame",
3681		[P_ZEROES]		= "Zeroes",
3682
3683		/* enum drbd_packet, but not commands - obsoleted flags:
3684		 *	P_MAY_IGNORE
3685		 *	P_MAX_OPT_CMD
3686		 */
3687	};
3688
3689	/* too big for the array: 0xfffX */
3690	if (cmd == P_INITIAL_META)
3691		return "InitialMeta";
3692	if (cmd == P_INITIAL_DATA)
3693		return "InitialData";
3694	if (cmd == P_CONNECTION_FEATURES)
3695		return "ConnectionFeatures";
3696	if (cmd >= ARRAY_SIZE(cmdnames))
3697		return "Unknown";
3698	return cmdnames[cmd];
3699}
3700
3701/**
3702 * drbd_wait_misc  -  wait for a request to make progress
3703 * @device:	device associated with the request
3704 * @i:		the struct drbd_interval embedded in struct drbd_request or
3705 *		struct drbd_peer_request
3706 */
3707int drbd_wait_misc(struct drbd_device *device, struct drbd_interval *i)
3708{
3709	struct net_conf *nc;
3710	DEFINE_WAIT(wait);
3711	long timeout;
3712
3713	rcu_read_lock();
3714	nc = rcu_dereference(first_peer_device(device)->connection->net_conf);
3715	if (!nc) {
3716		rcu_read_unlock();
3717		return -ETIMEDOUT;
3718	}
3719	timeout = nc->ko_count ? nc->timeout * HZ / 10 * nc->ko_count : MAX_SCHEDULE_TIMEOUT;
3720	rcu_read_unlock();
3721
3722	/* Indicate to wake up device->misc_wait on progress.  */
3723	i->waiting = true;
3724	prepare_to_wait(&device->misc_wait, &wait, TASK_INTERRUPTIBLE);
3725	spin_unlock_irq(&device->resource->req_lock);
3726	timeout = schedule_timeout(timeout);
3727	finish_wait(&device->misc_wait, &wait);
3728	spin_lock_irq(&device->resource->req_lock);
3729	if (!timeout || device->state.conn < C_CONNECTED)
3730		return -ETIMEDOUT;
3731	if (signal_pending(current))
3732		return -ERESTARTSYS;
3733	return 0;
3734}
3735
3736void lock_all_resources(void)
3737{
3738	struct drbd_resource *resource;
3739	int __maybe_unused i = 0;
3740
3741	mutex_lock(&resources_mutex);
3742	local_irq_disable();
3743	for_each_resource(resource, &drbd_resources)
3744		spin_lock_nested(&resource->req_lock, i++);
3745}
3746
3747void unlock_all_resources(void)
3748{
3749	struct drbd_resource *resource;
3750
3751	for_each_resource(resource, &drbd_resources)
3752		spin_unlock(&resource->req_lock);
3753	local_irq_enable();
3754	mutex_unlock(&resources_mutex);
3755}
3756
3757#ifdef CONFIG_DRBD_FAULT_INJECTION
3758/* Fault insertion support including random number generator shamelessly
3759 * stolen from kernel/rcutorture.c */
3760struct fault_random_state {
3761	unsigned long state;
3762	unsigned long count;
3763};
3764
3765#define FAULT_RANDOM_MULT 39916801  /* prime */
3766#define FAULT_RANDOM_ADD	479001701 /* prime */
3767#define FAULT_RANDOM_REFRESH 10000
3768
3769/*
3770 * Crude but fast random-number generator.  Uses a linear congruential
3771 * generator, with occasional help from get_random_bytes().
3772 */
3773static unsigned long
3774_drbd_fault_random(struct fault_random_state *rsp)
3775{
3776	long refresh;
3777
3778	if (!rsp->count--) {
3779		get_random_bytes(&refresh, sizeof(refresh));
3780		rsp->state += refresh;
3781		rsp->count = FAULT_RANDOM_REFRESH;
3782	}
3783	rsp->state = rsp->state * FAULT_RANDOM_MULT + FAULT_RANDOM_ADD;
3784	return swahw32(rsp->state);
3785}
3786
3787static char *
3788_drbd_fault_str(unsigned int type) {
3789	static char *_faults[] = {
3790		[DRBD_FAULT_MD_WR] = "Meta-data write",
3791		[DRBD_FAULT_MD_RD] = "Meta-data read",
3792		[DRBD_FAULT_RS_WR] = "Resync write",
3793		[DRBD_FAULT_RS_RD] = "Resync read",
3794		[DRBD_FAULT_DT_WR] = "Data write",
3795		[DRBD_FAULT_DT_RD] = "Data read",
3796		[DRBD_FAULT_DT_RA] = "Data read ahead",
3797		[DRBD_FAULT_BM_ALLOC] = "BM allocation",
3798		[DRBD_FAULT_AL_EE] = "EE allocation",
3799		[DRBD_FAULT_RECEIVE] = "receive data corruption",
3800	};
3801
3802	return (type < DRBD_FAULT_MAX) ? _faults[type] : "**Unknown**";
3803}
3804
3805unsigned int
3806_drbd_insert_fault(struct drbd_device *device, unsigned int type)
3807{
3808	static struct fault_random_state rrs = {0, 0};
3809
3810	unsigned int ret = (
3811		(drbd_fault_devs == 0 ||
3812			((1 << device_to_minor(device)) & drbd_fault_devs) != 0) &&
3813		(((_drbd_fault_random(&rrs) % 100) + 1) <= drbd_fault_rate));
3814
3815	if (ret) {
3816		drbd_fault_count++;
3817
3818		if (__ratelimit(&drbd_ratelimit_state))
3819			drbd_warn(device, "***Simulating %s failure\n",
3820				_drbd_fault_str(type));
3821	}
3822
3823	return ret;
3824}
3825#endif
3826
3827const char *drbd_buildtag(void)
3828{
3829	/* DRBD built from external sources has here a reference to the
3830	   git hash of the source code. */
3831
3832	static char buildtag[38] = "\0uilt-in";
3833
3834	if (buildtag[0] == 0) {
3835#ifdef MODULE
3836		sprintf(buildtag, "srcversion: %-24s", THIS_MODULE->srcversion);
3837#else
3838		buildtag[0] = 'b';
3839#endif
3840	}
3841
3842	return buildtag;
3843}
3844
3845module_init(drbd_init)
3846module_exit(drbd_cleanup)
3847
3848EXPORT_SYMBOL(drbd_conn_str);
3849EXPORT_SYMBOL(drbd_role_str);
3850EXPORT_SYMBOL(drbd_disk_str);
3851EXPORT_SYMBOL(drbd_set_st_err_str);
3852