mm/memory.c: recheck page table entry with page table lock held
[linux-2.6-block.git] / fs / afs / rxrpc.c
CommitLineData
08e0e7c8
DH
1/* Maintain an RxRPC server socket to do AFS communications through
2 *
3 * Copyright (C) 2007 Red Hat, Inc. All Rights Reserved.
4 * Written by David Howells (dhowells@redhat.com)
5 *
6 * This program is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU General Public License
8 * as published by the Free Software Foundation; either version
9 * 2 of the License, or (at your option) any later version.
10 */
11
5a0e3ad6 12#include <linux/slab.h>
174cd4b1
IM
13#include <linux/sched/signal.h>
14
08e0e7c8
DH
15#include <net/sock.h>
16#include <net/af_rxrpc.h>
08e0e7c8
DH
17#include "internal.h"
18#include "afs_cm.h"
19
f044c884 20struct workqueue_struct *afs_async_calls;
08e0e7c8 21
d001648e 22static void afs_wake_up_call_waiter(struct sock *, struct rxrpc_call *, unsigned long);
d2ddc776 23static long afs_wait_for_call_to_complete(struct afs_call *, struct afs_addr_cursor *);
d001648e 24static void afs_wake_up_async_call(struct sock *, struct rxrpc_call *, unsigned long);
d001648e 25static void afs_process_async_call(struct work_struct *);
00e90712
DH
26static void afs_rx_new_call(struct sock *, struct rxrpc_call *, unsigned long);
27static void afs_rx_discard_new_call(struct rxrpc_call *, unsigned long);
d001648e 28static int afs_deliver_cm_op_id(struct afs_call *);
08e0e7c8 29
08e0e7c8
DH
30/* asynchronous incoming call initial processing */
31static const struct afs_call_type afs_RXCMxxxx = {
00d3b7a4 32 .name = "CB.xxxx",
08e0e7c8 33 .deliver = afs_deliver_cm_op_id,
08e0e7c8
DH
34};
35
08e0e7c8
DH
36/*
37 * open an RxRPC socket and bind it to be a server for callback notifications
38 * - the socket is left in blocking mode and non-blocking ops use MSG_DONTWAIT
39 */
f044c884 40int afs_open_socket(struct afs_net *net)
08e0e7c8
DH
41{
42 struct sockaddr_rxrpc srx;
43 struct socket *socket;
4776cab4 44 unsigned int min_level;
08e0e7c8
DH
45 int ret;
46
47 _enter("");
48
5b86d4ff 49 ret = sock_create_kern(net->net, AF_RXRPC, SOCK_DGRAM, PF_INET6, &socket);
0e119b41
DH
50 if (ret < 0)
51 goto error_1;
08e0e7c8
DH
52
53 socket->sk->sk_allocation = GFP_NOFS;
54
55 /* bind the callback manager's address to make this a server socket */
3838d3ec 56 memset(&srx, 0, sizeof(srx));
08e0e7c8
DH
57 srx.srx_family = AF_RXRPC;
58 srx.srx_service = CM_SERVICE;
59 srx.transport_type = SOCK_DGRAM;
3838d3ec
DH
60 srx.transport_len = sizeof(srx.transport.sin6);
61 srx.transport.sin6.sin6_family = AF_INET6;
62 srx.transport.sin6.sin6_port = htons(AFS_CM_PORT);
08e0e7c8 63
4776cab4
DH
64 min_level = RXRPC_SECURITY_ENCRYPT;
65 ret = kernel_setsockopt(socket, SOL_RXRPC, RXRPC_MIN_SECURITY_LEVEL,
66 (void *)&min_level, sizeof(min_level));
67 if (ret < 0)
68 goto error_2;
69
08e0e7c8 70 ret = kernel_bind(socket, (struct sockaddr *) &srx, sizeof(srx));
83732ec5
MD
71 if (ret == -EADDRINUSE) {
72 srx.transport.sin6.sin6_port = 0;
73 ret = kernel_bind(socket, (struct sockaddr *) &srx, sizeof(srx));
74 }
0e119b41
DH
75 if (ret < 0)
76 goto error_2;
77
00e90712
DH
78 rxrpc_kernel_new_call_notification(socket, afs_rx_new_call,
79 afs_rx_discard_new_call);
d001648e 80
0e119b41
DH
81 ret = kernel_listen(socket, INT_MAX);
82 if (ret < 0)
83 goto error_2;
08e0e7c8 84
f044c884
DH
85 net->socket = socket;
86 afs_charge_preallocation(&net->charge_preallocation_work);
08e0e7c8
DH
87 _leave(" = 0");
88 return 0;
0e119b41
DH
89
90error_2:
91 sock_release(socket);
92error_1:
0e119b41
DH
93 _leave(" = %d", ret);
94 return ret;
08e0e7c8
DH
95}
96
97/*
98 * close the RxRPC socket AFS was using
99 */
f044c884 100void afs_close_socket(struct afs_net *net)
08e0e7c8
DH
101{
102 _enter("");
103
f044c884 104 kernel_listen(net->socket, 0);
341f741f
DH
105 flush_workqueue(afs_async_calls);
106
f044c884
DH
107 if (net->spare_incoming_call) {
108 afs_put_call(net->spare_incoming_call);
109 net->spare_incoming_call = NULL;
00e90712
DH
110 }
111
f044c884 112 _debug("outstanding %u", atomic_read(&net->nr_outstanding_calls));
ab1fbe32
PZ
113 wait_var_event(&net->nr_outstanding_calls,
114 !atomic_read(&net->nr_outstanding_calls));
2f02f7ae
DH
115 _debug("no outstanding calls");
116
f044c884 117 kernel_sock_shutdown(net->socket, SHUT_RDWR);
d001648e 118 flush_workqueue(afs_async_calls);
f044c884 119 sock_release(net->socket);
08e0e7c8
DH
120
121 _debug("dework");
08e0e7c8
DH
122 _leave("");
123}
124
00d3b7a4 125/*
341f741f 126 * Allocate a call.
00d3b7a4 127 */
f044c884
DH
128static struct afs_call *afs_alloc_call(struct afs_net *net,
129 const struct afs_call_type *type,
341f741f 130 gfp_t gfp)
00d3b7a4 131{
341f741f
DH
132 struct afs_call *call;
133 int o;
00d3b7a4 134
341f741f
DH
135 call = kzalloc(sizeof(*call), gfp);
136 if (!call)
137 return NULL;
00d3b7a4 138
341f741f 139 call->type = type;
f044c884 140 call->net = net;
a25e21f0 141 call->debug_id = atomic_inc_return(&rxrpc_debug_id);
341f741f
DH
142 atomic_set(&call->usage, 1);
143 INIT_WORK(&call->async_work, afs_process_async_call);
144 init_waitqueue_head(&call->waitq);
98bf40cd 145 spin_lock_init(&call->state_lock);
2f02f7ae 146
f044c884 147 o = atomic_inc_return(&net->nr_outstanding_calls);
341f741f
DH
148 trace_afs_call(call, afs_call_trace_alloc, 1, o,
149 __builtin_return_address(0));
150 return call;
00d3b7a4
DH
151}
152
6c67c7c3 153/*
341f741f 154 * Dispose of a reference on a call.
6c67c7c3 155 */
341f741f 156void afs_put_call(struct afs_call *call)
6c67c7c3 157{
f044c884 158 struct afs_net *net = call->net;
341f741f 159 int n = atomic_dec_return(&call->usage);
f044c884 160 int o = atomic_read(&net->nr_outstanding_calls);
341f741f
DH
161
162 trace_afs_call(call, afs_call_trace_put, n + 1, o,
163 __builtin_return_address(0));
164
165 ASSERTCMP(n, >=, 0);
166 if (n == 0) {
167 ASSERT(!work_pending(&call->async_work));
168 ASSERT(call->type->name != NULL);
169
170 if (call->rxcall) {
f044c884 171 rxrpc_kernel_end_call(net->socket, call->rxcall);
341f741f
DH
172 call->rxcall = NULL;
173 }
174 if (call->type->destructor)
175 call->type->destructor(call);
176
d0676a16 177 afs_put_server(call->net, call->cm_server);
d2ddc776 178 afs_put_cb_interest(call->net, call->cbi);
341f741f 179 kfree(call->request);
341f741f 180
341f741f
DH
181 trace_afs_call(call, afs_call_trace_free, 0, o,
182 __builtin_return_address(0));
a25e21f0
DH
183 kfree(call);
184
185 o = atomic_dec_return(&net->nr_outstanding_calls);
341f741f 186 if (o == 0)
ab1fbe32 187 wake_up_var(&net->nr_outstanding_calls);
6c67c7c3 188 }
6cf12869
NWF
189}
190
191/*
341f741f 192 * Queue the call for actual work. Returns 0 unconditionally for convenience.
6cf12869 193 */
341f741f 194int afs_queue_call_work(struct afs_call *call)
6cf12869 195{
341f741f
DH
196 int u = atomic_inc_return(&call->usage);
197
198 trace_afs_call(call, afs_call_trace_work, u,
f044c884 199 atomic_read(&call->net->nr_outstanding_calls),
341f741f
DH
200 __builtin_return_address(0));
201
202 INIT_WORK(&call->work, call->type->work);
203
204 if (!queue_work(afs_wq, &call->work))
205 afs_put_call(call);
206 return 0;
6c67c7c3
DH
207}
208
08e0e7c8
DH
209/*
210 * allocate a call with flat request and reply buffers
211 */
f044c884
DH
212struct afs_call *afs_alloc_flat_call(struct afs_net *net,
213 const struct afs_call_type *type,
d001648e 214 size_t request_size, size_t reply_max)
08e0e7c8
DH
215{
216 struct afs_call *call;
217
f044c884 218 call = afs_alloc_call(net, type, GFP_NOFS);
08e0e7c8
DH
219 if (!call)
220 goto nomem_call;
221
222 if (request_size) {
341f741f 223 call->request_size = request_size;
08e0e7c8
DH
224 call->request = kmalloc(request_size, GFP_NOFS);
225 if (!call->request)
00d3b7a4 226 goto nomem_free;
08e0e7c8
DH
227 }
228
d001648e 229 if (reply_max) {
341f741f 230 call->reply_max = reply_max;
d001648e 231 call->buffer = kmalloc(reply_max, GFP_NOFS);
08e0e7c8 232 if (!call->buffer)
00d3b7a4 233 goto nomem_free;
08e0e7c8
DH
234 }
235
025db80c 236 call->operation_ID = type->op;
08e0e7c8 237 init_waitqueue_head(&call->waitq);
08e0e7c8
DH
238 return call;
239
00d3b7a4 240nomem_free:
341f741f 241 afs_put_call(call);
08e0e7c8
DH
242nomem_call:
243 return NULL;
244}
245
246/*
247 * clean up a call with flat buffer
248 */
249void afs_flat_call_destructor(struct afs_call *call)
250{
251 _enter("");
252
253 kfree(call->request);
254 call->request = NULL;
255 kfree(call->buffer);
256 call->buffer = NULL;
257}
258
2f5705a5
DH
259#define AFS_BVEC_MAX 8
260
261/*
262 * Load the given bvec with the next few pages.
263 */
264static void afs_load_bvec(struct afs_call *call, struct msghdr *msg,
265 struct bio_vec *bv, pgoff_t first, pgoff_t last,
266 unsigned offset)
267{
268 struct page *pages[AFS_BVEC_MAX];
269 unsigned int nr, n, i, to, bytes = 0;
270
271 nr = min_t(pgoff_t, last - first + 1, AFS_BVEC_MAX);
272 n = find_get_pages_contig(call->mapping, first, nr, pages);
273 ASSERTCMP(n, ==, nr);
274
275 msg->msg_flags |= MSG_MORE;
276 for (i = 0; i < nr; i++) {
277 to = PAGE_SIZE;
278 if (first + i >= last) {
279 to = call->last_to;
280 msg->msg_flags &= ~MSG_MORE;
281 }
282 bv[i].bv_page = pages[i];
283 bv[i].bv_len = to - offset;
284 bv[i].bv_offset = offset;
285 bytes += to - offset;
286 offset = 0;
287 }
288
289 iov_iter_bvec(&msg->msg_iter, WRITE | ITER_BVEC, bv, nr, bytes);
290}
291
e833251a
DH
292/*
293 * Advance the AFS call state when the RxRPC call ends the transmit phase.
294 */
295static void afs_notify_end_request_tx(struct sock *sock,
296 struct rxrpc_call *rxcall,
297 unsigned long call_user_ID)
298{
299 struct afs_call *call = (struct afs_call *)call_user_ID;
300
98bf40cd 301 afs_set_call_state(call, AFS_CALL_CL_REQUESTING, AFS_CALL_CL_AWAIT_REPLY);
e833251a
DH
302}
303
31143d5d
DH
304/*
305 * attach the data from a bunch of pages on an inode to a call
306 */
39c6acea 307static int afs_send_pages(struct afs_call *call, struct msghdr *msg)
31143d5d 308{
2f5705a5
DH
309 struct bio_vec bv[AFS_BVEC_MAX];
310 unsigned int bytes, nr, loop, offset;
31143d5d
DH
311 pgoff_t first = call->first, last = call->last;
312 int ret;
313
31143d5d
DH
314 offset = call->first_offset;
315 call->first_offset = 0;
316
317 do {
2f5705a5 318 afs_load_bvec(call, msg, bv, first, last, offset);
2c099014
DH
319 trace_afs_send_pages(call, msg, first, last, offset);
320
2f5705a5
DH
321 offset = 0;
322 bytes = msg->msg_iter.count;
323 nr = msg->msg_iter.nr_segs;
324
f044c884 325 ret = rxrpc_kernel_send_data(call->net->socket, call->rxcall, msg,
e833251a 326 bytes, afs_notify_end_request_tx);
2f5705a5
DH
327 for (loop = 0; loop < nr; loop++)
328 put_page(bv[loop].bv_page);
31143d5d
DH
329 if (ret < 0)
330 break;
2f5705a5
DH
331
332 first += nr;
5bbf5d39 333 } while (first <= last);
31143d5d 334
2c099014 335 trace_afs_sent_pages(call, call->first, last, first, ret);
31143d5d
DH
336 return ret;
337}
338
08e0e7c8
DH
339/*
340 * initiate a call
341 */
8b2a464c 342long afs_make_call(struct afs_addr_cursor *ac, struct afs_call *call,
33cd7f2b 343 gfp_t gfp, bool async)
08e0e7c8 344{
8b2a464c 345 struct sockaddr_rxrpc *srx = ac->addr;
08e0e7c8
DH
346 struct rxrpc_call *rxcall;
347 struct msghdr msg;
348 struct kvec iov[1];
e754eba6 349 s64 tx_total_len;
08e0e7c8
DH
350 int ret;
351
4d9df986 352 _enter(",{%pISp},", &srx->transport);
08e0e7c8 353
00d3b7a4
DH
354 ASSERT(call->type != NULL);
355 ASSERT(call->type->name != NULL);
356
31143d5d
DH
357 _debug("____MAKE %p{%s,%x} [%d]____",
358 call, call->type->name, key_serial(call->key),
f044c884 359 atomic_read(&call->net->nr_outstanding_calls));
00d3b7a4 360
56ff9c83 361 call->async = async;
08e0e7c8 362
e754eba6
DH
363 /* Work out the length we're going to transmit. This is awkward for
364 * calls such as FS.StoreData where there's an extra injection of data
365 * after the initial fixed part.
366 */
367 tx_total_len = call->request_size;
368 if (call->send_pages) {
1199db60
DH
369 if (call->last == call->first) {
370 tx_total_len += call->last_to - call->first_offset;
371 } else {
372 /* It looks mathematically like you should be able to
373 * combine the following lines with the ones above, but
374 * unsigned arithmetic is fun when it wraps...
375 */
376 tx_total_len += PAGE_SIZE - call->first_offset;
377 tx_total_len += call->last_to;
378 tx_total_len += (call->last - call->first - 1) * PAGE_SIZE;
379 }
e754eba6
DH
380 }
381
08e0e7c8 382 /* create a call */
4d9df986 383 rxcall = rxrpc_kernel_begin_call(call->net->socket, srx, call->key,
e754eba6
DH
384 (unsigned long)call,
385 tx_total_len, gfp,
56ff9c83
DH
386 (async ?
387 afs_wake_up_async_call :
a68f4a27 388 afs_wake_up_call_waiter),
a25e21f0
DH
389 call->upgrade,
390 call->debug_id);
08e0e7c8
DH
391 if (IS_ERR(rxcall)) {
392 ret = PTR_ERR(rxcall);
393 goto error_kill_call;
394 }
395
396 call->rxcall = rxcall;
397
398 /* send the request */
399 iov[0].iov_base = call->request;
400 iov[0].iov_len = call->request_size;
401
402 msg.msg_name = NULL;
403 msg.msg_namelen = 0;
2e90b1c4 404 iov_iter_kvec(&msg.msg_iter, WRITE | ITER_KVEC, iov, 1,
c0371da6 405 call->request_size);
08e0e7c8
DH
406 msg.msg_control = NULL;
407 msg.msg_controllen = 0;
bc5e3a54 408 msg.msg_flags = MSG_WAITALL | (call->send_pages ? MSG_MORE : 0);
08e0e7c8 409
f044c884 410 ret = rxrpc_kernel_send_data(call->net->socket, rxcall,
e833251a
DH
411 &msg, call->request_size,
412 afs_notify_end_request_tx);
08e0e7c8
DH
413 if (ret < 0)
414 goto error_do_abort;
415
31143d5d 416 if (call->send_pages) {
39c6acea 417 ret = afs_send_pages(call, &msg);
31143d5d
DH
418 if (ret < 0)
419 goto error_do_abort;
420 }
421
08e0e7c8
DH
422 /* at this point, an async call may no longer exist as it may have
423 * already completed */
56ff9c83
DH
424 if (call->async)
425 return -EINPROGRESS;
426
d2ddc776 427 return afs_wait_for_call_to_complete(call, ac);
08e0e7c8
DH
428
429error_do_abort:
70af0e3b
DH
430 call->state = AFS_CALL_COMPLETE;
431 if (ret != -ECONNABORTED) {
f044c884
DH
432 rxrpc_kernel_abort_call(call->net->socket, rxcall,
433 RX_USER_ABORT, ret, "KSD");
70af0e3b 434 } else {
eb9950eb
DH
435 iov_iter_kvec(&msg.msg_iter, READ | ITER_KVEC, NULL, 0, 0);
436 rxrpc_kernel_recv_data(call->net->socket, rxcall,
437 &msg.msg_iter, false,
438 &call->abort_code, &call->service_id);
d2ddc776
DH
439 ac->abort_code = call->abort_code;
440 ac->responded = true;
70af0e3b 441 }
025db80c
DH
442 call->error = ret;
443 trace_afs_call_done(call);
08e0e7c8 444error_kill_call:
341f741f 445 afs_put_call(call);
d2ddc776 446 ac->error = ret;
08e0e7c8
DH
447 _leave(" = %d", ret);
448 return ret;
449}
450
08e0e7c8
DH
451/*
452 * deliver messages to a call
453 */
454static void afs_deliver_to_call(struct afs_call *call)
455{
98bf40cd
DH
456 enum afs_call_state state;
457 u32 abort_code, remote_abort = 0;
08e0e7c8
DH
458 int ret;
459
d001648e
DH
460 _enter("%s", call->type->name);
461
98bf40cd
DH
462 while (state = READ_ONCE(call->state),
463 state == AFS_CALL_CL_AWAIT_REPLY ||
464 state == AFS_CALL_SV_AWAIT_OP_ID ||
465 state == AFS_CALL_SV_AWAIT_REQUEST ||
466 state == AFS_CALL_SV_AWAIT_ACK
d001648e 467 ) {
98bf40cd 468 if (state == AFS_CALL_SV_AWAIT_ACK) {
eb9950eb
DH
469 struct iov_iter iter;
470
471 iov_iter_kvec(&iter, READ | ITER_KVEC, NULL, 0, 0);
f044c884 472 ret = rxrpc_kernel_recv_data(call->net->socket,
eb9950eb 473 call->rxcall, &iter, false,
98bf40cd 474 &remote_abort,
a68f4a27 475 &call->service_id);
eb9950eb 476 trace_afs_recv_data(call, 0, 0, false, ret);
8e8d7f13 477
d001648e
DH
478 if (ret == -EINPROGRESS || ret == -EAGAIN)
479 return;
98bf40cd
DH
480 if (ret < 0 || ret == 1) {
481 if (ret == 1)
482 ret = 0;
025db80c 483 goto call_complete;
98bf40cd 484 }
d001648e 485 return;
08e0e7c8
DH
486 }
487
d001648e 488 ret = call->type->deliver(call);
98bf40cd 489 state = READ_ONCE(call->state);
d001648e
DH
490 switch (ret) {
491 case 0:
f2686b09
DH
492 if (state == AFS_CALL_CL_PROC_REPLY) {
493 if (call->cbi)
494 set_bit(AFS_SERVER_FL_MAY_HAVE_CB,
495 &call->cbi->server->flags);
025db80c 496 goto call_complete;
f2686b09 497 }
98bf40cd 498 ASSERTCMP(state, >, AFS_CALL_CL_PROC_REPLY);
d001648e
DH
499 goto done;
500 case -EINPROGRESS:
501 case -EAGAIN:
502 goto out;
98bf40cd 503 case -EIO:
70af0e3b 504 case -ECONNABORTED:
98bf40cd
DH
505 ASSERTCMP(state, ==, AFS_CALL_COMPLETE);
506 goto done;
d001648e 507 case -ENOTSUPP:
1157f153 508 abort_code = RXGEN_OPCODE;
f044c884 509 rxrpc_kernel_abort_call(call->net->socket, call->rxcall,
3a92789a 510 abort_code, ret, "KIV");
98bf40cd 511 goto local_abort;
d001648e
DH
512 case -ENODATA:
513 case -EBADMSG:
514 case -EMSGSIZE:
515 default:
516 abort_code = RXGEN_CC_UNMARSHAL;
98bf40cd 517 if (state != AFS_CALL_CL_AWAIT_REPLY)
d001648e 518 abort_code = RXGEN_SS_UNMARSHAL;
f044c884 519 rxrpc_kernel_abort_call(call->net->socket, call->rxcall,
3a92789a 520 abort_code, -EBADMSG, "KUM");
98bf40cd 521 goto local_abort;
d001648e 522 }
08e0e7c8
DH
523 }
524
d001648e 525done:
98bf40cd 526 if (state == AFS_CALL_COMPLETE && call->incoming)
341f741f 527 afs_put_call(call);
d001648e 528out:
08e0e7c8 529 _leave("");
d001648e
DH
530 return;
531
98bf40cd
DH
532local_abort:
533 abort_code = 0;
025db80c 534call_complete:
98bf40cd
DH
535 afs_set_call_complete(call, ret, remote_abort);
536 state = AFS_CALL_COMPLETE;
d001648e 537 goto done;
08e0e7c8
DH
538}
539
540/*
541 * wait synchronously for a call to complete
542 */
d2ddc776
DH
543static long afs_wait_for_call_to_complete(struct afs_call *call,
544 struct afs_addr_cursor *ac)
08e0e7c8 545{
bc5e3a54 546 signed long rtt2, timeout;
33cd7f2b 547 long ret;
bc5e3a54
DH
548 u64 rtt;
549 u32 life, last_life;
08e0e7c8
DH
550
551 DECLARE_WAITQUEUE(myself, current);
552
553 _enter("");
554
f044c884 555 rtt = rxrpc_kernel_get_rtt(call->net->socket, call->rxcall);
bc5e3a54
DH
556 rtt2 = nsecs_to_jiffies64(rtt) * 2;
557 if (rtt2 < 2)
558 rtt2 = 2;
559
560 timeout = rtt2;
f044c884 561 last_life = rxrpc_kernel_check_life(call->net->socket, call->rxcall);
bc5e3a54 562
08e0e7c8
DH
563 add_wait_queue(&call->waitq, &myself);
564 for (;;) {
bc5e3a54 565 set_current_state(TASK_UNINTERRUPTIBLE);
08e0e7c8
DH
566
567 /* deliver any messages that are in the queue */
98bf40cd
DH
568 if (!afs_check_call_state(call, AFS_CALL_COMPLETE) &&
569 call->need_attention) {
d001648e 570 call->need_attention = false;
08e0e7c8
DH
571 __set_current_state(TASK_RUNNING);
572 afs_deliver_to_call(call);
573 continue;
574 }
575
98bf40cd 576 if (afs_check_call_state(call, AFS_CALL_COMPLETE))
08e0e7c8 577 break;
bc5e3a54 578
f044c884 579 life = rxrpc_kernel_check_life(call->net->socket, call->rxcall);
bc5e3a54
DH
580 if (timeout == 0 &&
581 life == last_life && signal_pending(current))
582 break;
583
584 if (life != last_life) {
585 timeout = rtt2;
586 last_life = life;
587 }
588
589 timeout = schedule_timeout(timeout);
08e0e7c8
DH
590 }
591
592 remove_wait_queue(&call->waitq, &myself);
593 __set_current_state(TASK_RUNNING);
594
954cd6dc 595 /* Kill off the call if it's still live. */
98bf40cd 596 if (!afs_check_call_state(call, AFS_CALL_COMPLETE)) {
954cd6dc 597 _debug("call interrupted");
d2ddc776 598 if (rxrpc_kernel_abort_call(call->net->socket, call->rxcall,
98bf40cd
DH
599 RX_USER_ABORT, -EINTR, "KWI"))
600 afs_set_call_complete(call, -EINTR, 0);
08e0e7c8
DH
601 }
602
98bf40cd 603 spin_lock_bh(&call->state_lock);
d2ddc776
DH
604 ac->abort_code = call->abort_code;
605 ac->error = call->error;
98bf40cd 606 spin_unlock_bh(&call->state_lock);
d2ddc776
DH
607
608 ret = ac->error;
609 switch (ret) {
610 case 0:
611 if (call->ret_reply0) {
612 ret = (long)call->reply[0];
613 call->reply[0] = NULL;
614 }
615 /* Fall through */
616 case -ECONNABORTED:
617 ac->responded = true;
618 break;
33cd7f2b
DH
619 }
620
08e0e7c8 621 _debug("call complete");
341f741f 622 afs_put_call(call);
33cd7f2b 623 _leave(" = %p", (void *)ret);
08e0e7c8
DH
624 return ret;
625}
626
627/*
628 * wake up a waiting call
629 */
d001648e
DH
630static void afs_wake_up_call_waiter(struct sock *sk, struct rxrpc_call *rxcall,
631 unsigned long call_user_ID)
08e0e7c8 632{
d001648e
DH
633 struct afs_call *call = (struct afs_call *)call_user_ID;
634
635 call->need_attention = true;
08e0e7c8
DH
636 wake_up(&call->waitq);
637}
638
639/*
640 * wake up an asynchronous call
641 */
d001648e
DH
642static void afs_wake_up_async_call(struct sock *sk, struct rxrpc_call *rxcall,
643 unsigned long call_user_ID)
08e0e7c8 644{
d001648e 645 struct afs_call *call = (struct afs_call *)call_user_ID;
341f741f 646 int u;
d001648e 647
8e8d7f13 648 trace_afs_notify_call(rxcall, call);
d001648e 649 call->need_attention = true;
341f741f 650
bfc18e38 651 u = atomic_fetch_add_unless(&call->usage, 1, 0);
341f741f
DH
652 if (u != 0) {
653 trace_afs_call(call, afs_call_trace_wake, u,
f044c884 654 atomic_read(&call->net->nr_outstanding_calls),
341f741f
DH
655 __builtin_return_address(0));
656
657 if (!queue_work(afs_async_calls, &call->async_work))
658 afs_put_call(call);
659 }
08e0e7c8
DH
660}
661
08e0e7c8 662/*
341f741f
DH
663 * Delete an asynchronous call. The work item carries a ref to the call struct
664 * that we need to release.
08e0e7c8 665 */
d001648e 666static void afs_delete_async_call(struct work_struct *work)
08e0e7c8 667{
d001648e
DH
668 struct afs_call *call = container_of(work, struct afs_call, async_work);
669
08e0e7c8
DH
670 _enter("");
671
341f741f 672 afs_put_call(call);
08e0e7c8
DH
673
674 _leave("");
675}
676
677/*
341f741f
DH
678 * Perform I/O processing on an asynchronous call. The work item carries a ref
679 * to the call struct that we either need to release or to pass on.
08e0e7c8 680 */
d001648e 681static void afs_process_async_call(struct work_struct *work)
08e0e7c8 682{
d001648e
DH
683 struct afs_call *call = container_of(work, struct afs_call, async_work);
684
08e0e7c8
DH
685 _enter("");
686
d001648e
DH
687 if (call->state < AFS_CALL_COMPLETE && call->need_attention) {
688 call->need_attention = false;
08e0e7c8 689 afs_deliver_to_call(call);
d001648e 690 }
08e0e7c8 691
56ff9c83 692 if (call->state == AFS_CALL_COMPLETE) {
341f741f
DH
693 /* We have two refs to release - one from the alloc and one
694 * queued with the work item - and we can't just deallocate the
695 * call because the work item may be queued again.
696 */
d001648e 697 call->async_work.func = afs_delete_async_call;
341f741f
DH
698 if (!queue_work(afs_async_calls, &call->async_work))
699 afs_put_call(call);
08e0e7c8
DH
700 }
701
341f741f 702 afs_put_call(call);
08e0e7c8
DH
703 _leave("");
704}
705
00e90712
DH
706static void afs_rx_attach(struct rxrpc_call *rxcall, unsigned long user_call_ID)
707{
708 struct afs_call *call = (struct afs_call *)user_call_ID;
709
710 call->rxcall = rxcall;
711}
712
713/*
714 * Charge the incoming call preallocation.
715 */
f044c884 716void afs_charge_preallocation(struct work_struct *work)
00e90712 717{
f044c884
DH
718 struct afs_net *net =
719 container_of(work, struct afs_net, charge_preallocation_work);
720 struct afs_call *call = net->spare_incoming_call;
00e90712
DH
721
722 for (;;) {
723 if (!call) {
f044c884 724 call = afs_alloc_call(net, &afs_RXCMxxxx, GFP_KERNEL);
00e90712
DH
725 if (!call)
726 break;
727
56ff9c83 728 call->async = true;
98bf40cd 729 call->state = AFS_CALL_SV_AWAIT_OP_ID;
56ff9c83 730 init_waitqueue_head(&call->waitq);
00e90712
DH
731 }
732
f044c884 733 if (rxrpc_kernel_charge_accept(net->socket,
00e90712
DH
734 afs_wake_up_async_call,
735 afs_rx_attach,
736 (unsigned long)call,
a25e21f0
DH
737 GFP_KERNEL,
738 call->debug_id) < 0)
00e90712
DH
739 break;
740 call = NULL;
741 }
f044c884 742 net->spare_incoming_call = call;
00e90712
DH
743}
744
745/*
746 * Discard a preallocated call when a socket is shut down.
747 */
748static void afs_rx_discard_new_call(struct rxrpc_call *rxcall,
749 unsigned long user_call_ID)
750{
751 struct afs_call *call = (struct afs_call *)user_call_ID;
752
00e90712 753 call->rxcall = NULL;
341f741f 754 afs_put_call(call);
00e90712
DH
755}
756
d001648e
DH
757/*
758 * Notification of an incoming call.
759 */
00e90712
DH
760static void afs_rx_new_call(struct sock *sk, struct rxrpc_call *rxcall,
761 unsigned long user_call_ID)
d001648e 762{
f044c884
DH
763 struct afs_net *net = afs_sock2net(sk);
764
765 queue_work(afs_wq, &net->charge_preallocation_work);
d001648e
DH
766}
767
08e0e7c8 768/*
372ee163
DH
769 * Grab the operation ID from an incoming cache manager call. The socket
770 * buffer is discarded on error or if we don't yet have sufficient data.
08e0e7c8 771 */
d001648e 772static int afs_deliver_cm_op_id(struct afs_call *call)
08e0e7c8 773{
d001648e 774 int ret;
08e0e7c8 775
d001648e 776 _enter("{%zu}", call->offset);
08e0e7c8
DH
777
778 ASSERTCMP(call->offset, <, 4);
779
780 /* the operation ID forms the first four bytes of the request data */
50a2c953 781 ret = afs_extract_data(call, &call->tmp, 4, true);
d001648e
DH
782 if (ret < 0)
783 return ret;
08e0e7c8 784
50a2c953 785 call->operation_ID = ntohl(call->tmp);
98bf40cd 786 afs_set_call_state(call, AFS_CALL_SV_AWAIT_OP_ID, AFS_CALL_SV_AWAIT_REQUEST);
d001648e 787 call->offset = 0;
08e0e7c8
DH
788
789 /* ask the cache manager to route the call (it'll change the call type
790 * if successful) */
791 if (!afs_cm_incoming_call(call))
792 return -ENOTSUPP;
793
8e8d7f13
DH
794 trace_afs_cb_call(call);
795
08e0e7c8
DH
796 /* pass responsibility for the remainer of this message off to the
797 * cache manager op */
d001648e 798 return call->type->deliver(call);
08e0e7c8
DH
799}
800
e833251a
DH
801/*
802 * Advance the AFS call state when an RxRPC service call ends the transmit
803 * phase.
804 */
805static void afs_notify_end_reply_tx(struct sock *sock,
806 struct rxrpc_call *rxcall,
807 unsigned long call_user_ID)
808{
809 struct afs_call *call = (struct afs_call *)call_user_ID;
810
98bf40cd 811 afs_set_call_state(call, AFS_CALL_SV_REPLYING, AFS_CALL_SV_AWAIT_ACK);
e833251a
DH
812}
813
08e0e7c8
DH
814/*
815 * send an empty reply
816 */
817void afs_send_empty_reply(struct afs_call *call)
818{
f044c884 819 struct afs_net *net = call->net;
08e0e7c8 820 struct msghdr msg;
08e0e7c8
DH
821
822 _enter("");
823
f044c884 824 rxrpc_kernel_set_tx_length(net->socket, call->rxcall, 0);
e754eba6 825
08e0e7c8
DH
826 msg.msg_name = NULL;
827 msg.msg_namelen = 0;
bfd4e956 828 iov_iter_kvec(&msg.msg_iter, WRITE | ITER_KVEC, NULL, 0, 0);
08e0e7c8
DH
829 msg.msg_control = NULL;
830 msg.msg_controllen = 0;
831 msg.msg_flags = 0;
832
f044c884 833 switch (rxrpc_kernel_send_data(net->socket, call->rxcall, &msg, 0,
e833251a 834 afs_notify_end_reply_tx)) {
08e0e7c8
DH
835 case 0:
836 _leave(" [replied]");
837 return;
838
839 case -ENOMEM:
840 _debug("oom");
f044c884 841 rxrpc_kernel_abort_call(net->socket, call->rxcall,
3a92789a 842 RX_USER_ABORT, -ENOMEM, "KOO");
08e0e7c8 843 default:
08e0e7c8
DH
844 _leave(" [error]");
845 return;
846 }
847}
848
b908fe6b
DH
849/*
850 * send a simple reply
851 */
852void afs_send_simple_reply(struct afs_call *call, const void *buf, size_t len)
853{
f044c884 854 struct afs_net *net = call->net;
b908fe6b 855 struct msghdr msg;
2e90b1c4 856 struct kvec iov[1];
bd6dc742 857 int n;
b908fe6b
DH
858
859 _enter("");
860
f044c884 861 rxrpc_kernel_set_tx_length(net->socket, call->rxcall, len);
e754eba6 862
b908fe6b
DH
863 iov[0].iov_base = (void *) buf;
864 iov[0].iov_len = len;
865 msg.msg_name = NULL;
866 msg.msg_namelen = 0;
2e90b1c4 867 iov_iter_kvec(&msg.msg_iter, WRITE | ITER_KVEC, iov, 1, len);
b908fe6b
DH
868 msg.msg_control = NULL;
869 msg.msg_controllen = 0;
870 msg.msg_flags = 0;
871
f044c884 872 n = rxrpc_kernel_send_data(net->socket, call->rxcall, &msg, len,
e833251a 873 afs_notify_end_reply_tx);
bd6dc742 874 if (n >= 0) {
6c67c7c3 875 /* Success */
b908fe6b
DH
876 _leave(" [replied]");
877 return;
bd6dc742 878 }
6c67c7c3 879
bd6dc742 880 if (n == -ENOMEM) {
b908fe6b 881 _debug("oom");
f044c884 882 rxrpc_kernel_abort_call(net->socket, call->rxcall,
3a92789a 883 RX_USER_ABORT, -ENOMEM, "KOO");
b908fe6b 884 }
bd6dc742 885 _leave(" [error]");
b908fe6b
DH
886}
887
08e0e7c8 888/*
372ee163 889 * Extract a piece of data from the received data socket buffers.
08e0e7c8 890 */
d001648e
DH
891int afs_extract_data(struct afs_call *call, void *buf, size_t count,
892 bool want_more)
08e0e7c8 893{
f044c884 894 struct afs_net *net = call->net;
eb9950eb
DH
895 struct iov_iter iter;
896 struct kvec iov;
98bf40cd 897 enum afs_call_state state;
7888da95 898 u32 remote_abort = 0;
d001648e 899 int ret;
08e0e7c8 900
d001648e
DH
901 _enter("{%s,%zu},,%zu,%d",
902 call->type->name, call->offset, count, want_more);
08e0e7c8 903
d001648e 904 ASSERTCMP(call->offset, <=, count);
08e0e7c8 905
eb9950eb
DH
906 iov.iov_base = buf + call->offset;
907 iov.iov_len = count - call->offset;
908 iov_iter_kvec(&iter, ITER_KVEC | READ, &iov, 1, count - call->offset);
909
910 ret = rxrpc_kernel_recv_data(net->socket, call->rxcall, &iter,
98bf40cd 911 want_more, &remote_abort,
a68f4a27 912 &call->service_id);
eb9950eb 913 call->offset += (count - call->offset) - iov_iter_count(&iter);
8e8d7f13 914 trace_afs_recv_data(call, count, call->offset, want_more, ret);
d001648e
DH
915 if (ret == 0 || ret == -EAGAIN)
916 return ret;
08e0e7c8 917
98bf40cd 918 state = READ_ONCE(call->state);
d001648e 919 if (ret == 1) {
98bf40cd
DH
920 switch (state) {
921 case AFS_CALL_CL_AWAIT_REPLY:
922 afs_set_call_state(call, state, AFS_CALL_CL_PROC_REPLY);
d001648e 923 break;
98bf40cd
DH
924 case AFS_CALL_SV_AWAIT_REQUEST:
925 afs_set_call_state(call, state, AFS_CALL_SV_REPLYING);
d001648e 926 break;
98bf40cd
DH
927 case AFS_CALL_COMPLETE:
928 kdebug("prem complete %d", call->error);
929 return -EIO;
d001648e
DH
930 default:
931 break;
932 }
933 return 0;
08e0e7c8 934 }
d001648e 935
98bf40cd 936 afs_set_call_complete(call, ret, remote_abort);
d001648e 937 return ret;
08e0e7c8 938}
5f702c8e
DH
939
940/*
941 * Log protocol error production.
942 */
943noinline int afs_protocol_error(struct afs_call *call, int error)
944{
945 trace_afs_protocol_error(call, error, __builtin_return_address(0));
946 return error;
947}