1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Ceph msgr2 protocol implementation
4 *
5 * Copyright (C) 2020 Ilya Dryomov <idryomov@gmail.com>
6 */
7
8 #include <linux/ceph/ceph_debug.h>
9
10 #include <crypto/aead.h>
11 #include <crypto/sha2.h>
12 #include <crypto/utils.h>
13 #include <linux/bvec.h>
14 #include <linux/crc32c.h>
15 #include <linux/net.h>
16 #include <linux/scatterlist.h>
17 #include <linux/socket.h>
18 #include <linux/sched/mm.h>
19 #include <net/sock.h>
20 #include <net/tcp.h>
21
22 #include <linux/ceph/ceph_features.h>
23 #include <linux/ceph/decode.h>
24 #include <linux/ceph/libceph.h>
25 #include <linux/ceph/messenger.h>
26
27 #include "crypto.h" /* for CEPH_KEY_LEN and CEPH_MAX_CON_SECRET_LEN */
28
29 #define FRAME_TAG_HELLO 1
30 #define FRAME_TAG_AUTH_REQUEST 2
31 #define FRAME_TAG_AUTH_BAD_METHOD 3
32 #define FRAME_TAG_AUTH_REPLY_MORE 4
33 #define FRAME_TAG_AUTH_REQUEST_MORE 5
34 #define FRAME_TAG_AUTH_DONE 6
35 #define FRAME_TAG_AUTH_SIGNATURE 7
36 #define FRAME_TAG_CLIENT_IDENT 8
37 #define FRAME_TAG_SERVER_IDENT 9
38 #define FRAME_TAG_IDENT_MISSING_FEATURES 10
39 #define FRAME_TAG_SESSION_RECONNECT 11
40 #define FRAME_TAG_SESSION_RESET 12
41 #define FRAME_TAG_SESSION_RETRY 13
42 #define FRAME_TAG_SESSION_RETRY_GLOBAL 14
43 #define FRAME_TAG_SESSION_RECONNECT_OK 15
44 #define FRAME_TAG_WAIT 16
45 #define FRAME_TAG_MESSAGE 17
46 #define FRAME_TAG_KEEPALIVE2 18
47 #define FRAME_TAG_KEEPALIVE2_ACK 19
48 #define FRAME_TAG_ACK 20
49
50 #define FRAME_LATE_STATUS_ABORTED 0x1
51 #define FRAME_LATE_STATUS_COMPLETE 0xe
52 #define FRAME_LATE_STATUS_ABORTED_MASK 0xf
53
54 #define IN_S_HANDLE_PREAMBLE 1
55 #define IN_S_HANDLE_CONTROL 2
56 #define IN_S_HANDLE_CONTROL_REMAINDER 3
57 #define IN_S_PREPARE_READ_DATA 4
58 #define IN_S_PREPARE_READ_DATA_CONT 5
59 #define IN_S_PREPARE_READ_ENC_PAGE 6
60 #define IN_S_PREPARE_SPARSE_DATA 7
61 #define IN_S_PREPARE_SPARSE_DATA_CONT 8
62 #define IN_S_HANDLE_EPILOGUE 9
63 #define IN_S_FINISH_SKIP 10
64
65 #define OUT_S_QUEUE_DATA 1
66 #define OUT_S_QUEUE_DATA_CONT 2
67 #define OUT_S_QUEUE_ENC_PAGE 3
68 #define OUT_S_QUEUE_ZEROS 4
69 #define OUT_S_FINISH_MESSAGE 5
70 #define OUT_S_GET_NEXT 6
71
72 #define CTRL_BODY(p) ((void *)(p) + CEPH_PREAMBLE_LEN)
73 #define FRONT_PAD(p) ((void *)(p) + CEPH_EPILOGUE_SECURE_LEN)
74 #define MIDDLE_PAD(p) (FRONT_PAD(p) + CEPH_GCM_BLOCK_LEN)
75 #define DATA_PAD(p) (MIDDLE_PAD(p) + CEPH_GCM_BLOCK_LEN)
76
77 #define CEPH_MSG_FLAGS (MSG_DONTWAIT | MSG_NOSIGNAL)
78
do_recvmsg(struct socket * sock,struct iov_iter * it)79 static int do_recvmsg(struct socket *sock, struct iov_iter *it)
80 {
81 struct msghdr msg = { .msg_flags = CEPH_MSG_FLAGS };
82 int ret;
83
84 msg.msg_iter = *it;
85 while (iov_iter_count(it)) {
86 ret = sock_recvmsg(sock, &msg, msg.msg_flags);
87 if (ret <= 0) {
88 if (ret == -EAGAIN)
89 ret = 0;
90 return ret;
91 }
92
93 iov_iter_advance(it, ret);
94 }
95
96 WARN_ON(msg_data_left(&msg));
97 return 1;
98 }
99
100 /*
101 * Read as much as possible.
102 *
103 * Return:
104 * 1 - done, nothing (else) to read
105 * 0 - socket is empty, need to wait
106 * <0 - error
107 */
ceph_tcp_recv(struct ceph_connection * con)108 static int ceph_tcp_recv(struct ceph_connection *con)
109 {
110 int ret;
111
112 dout("%s con %p %s %zu\n", __func__, con,
113 iov_iter_is_discard(&con->v2.in_iter) ? "discard" : "need",
114 iov_iter_count(&con->v2.in_iter));
115 ret = do_recvmsg(con->sock, &con->v2.in_iter);
116 dout("%s con %p ret %d left %zu\n", __func__, con, ret,
117 iov_iter_count(&con->v2.in_iter));
118 return ret;
119 }
120
do_sendmsg(struct socket * sock,struct iov_iter * it)121 static int do_sendmsg(struct socket *sock, struct iov_iter *it)
122 {
123 struct msghdr msg = { .msg_flags = CEPH_MSG_FLAGS };
124 int ret;
125
126 msg.msg_iter = *it;
127 while (iov_iter_count(it)) {
128 ret = sock_sendmsg(sock, &msg);
129 if (ret <= 0) {
130 if (ret == -EAGAIN)
131 ret = 0;
132 return ret;
133 }
134
135 iov_iter_advance(it, ret);
136 }
137
138 WARN_ON(msg_data_left(&msg));
139 return 1;
140 }
141
do_try_sendpage(struct socket * sock,struct iov_iter * it)142 static int do_try_sendpage(struct socket *sock, struct iov_iter *it)
143 {
144 struct msghdr msg = { .msg_flags = CEPH_MSG_FLAGS };
145 struct bio_vec bv;
146 int ret;
147
148 if (WARN_ON(!iov_iter_is_bvec(it)))
149 return -EINVAL;
150
151 while (iov_iter_count(it)) {
152 /* iov_iter_iovec() for ITER_BVEC */
153 bvec_set_page(&bv, it->bvec->bv_page,
154 min(iov_iter_count(it),
155 it->bvec->bv_len - it->iov_offset),
156 it->bvec->bv_offset + it->iov_offset);
157
158 /*
159 * MSG_SPLICE_PAGES cannot properly handle pages with
160 * page_count == 0, we need to fall back to sendmsg if
161 * that's the case.
162 *
163 * Same goes for slab pages: skb_can_coalesce() allows
164 * coalescing neighboring slab objects into a single frag
165 * which triggers one of hardened usercopy checks.
166 */
167 if (sendpage_ok(bv.bv_page))
168 msg.msg_flags |= MSG_SPLICE_PAGES;
169 else
170 msg.msg_flags &= ~MSG_SPLICE_PAGES;
171
172 iov_iter_bvec(&msg.msg_iter, ITER_SOURCE, &bv, 1, bv.bv_len);
173 ret = sock_sendmsg(sock, &msg);
174 if (ret <= 0) {
175 if (ret == -EAGAIN)
176 ret = 0;
177 return ret;
178 }
179
180 iov_iter_advance(it, ret);
181 }
182
183 return 1;
184 }
185
186 /*
187 * Write as much as possible. The socket is expected to be corked,
188 * so we don't bother with MSG_MORE here.
189 *
190 * Return:
191 * 1 - done, nothing (else) to write
192 * 0 - socket is full, need to wait
193 * <0 - error
194 */
ceph_tcp_send(struct ceph_connection * con)195 static int ceph_tcp_send(struct ceph_connection *con)
196 {
197 int ret;
198
199 dout("%s con %p have %zu try_sendpage %d\n", __func__, con,
200 iov_iter_count(&con->v2.out_iter), con->v2.out_iter_sendpage);
201 if (con->v2.out_iter_sendpage)
202 ret = do_try_sendpage(con->sock, &con->v2.out_iter);
203 else
204 ret = do_sendmsg(con->sock, &con->v2.out_iter);
205 dout("%s con %p ret %d left %zu\n", __func__, con, ret,
206 iov_iter_count(&con->v2.out_iter));
207 return ret;
208 }
209
add_in_kvec(struct ceph_connection * con,void * buf,int len)210 static void add_in_kvec(struct ceph_connection *con, void *buf, int len)
211 {
212 BUG_ON(con->v2.in_kvec_cnt >= ARRAY_SIZE(con->v2.in_kvecs));
213 WARN_ON(!iov_iter_is_kvec(&con->v2.in_iter));
214
215 con->v2.in_kvecs[con->v2.in_kvec_cnt].iov_base = buf;
216 con->v2.in_kvecs[con->v2.in_kvec_cnt].iov_len = len;
217 con->v2.in_kvec_cnt++;
218
219 con->v2.in_iter.nr_segs++;
220 con->v2.in_iter.count += len;
221 }
222
reset_in_kvecs(struct ceph_connection * con)223 static void reset_in_kvecs(struct ceph_connection *con)
224 {
225 WARN_ON(iov_iter_count(&con->v2.in_iter));
226
227 con->v2.in_kvec_cnt = 0;
228 iov_iter_kvec(&con->v2.in_iter, ITER_DEST, con->v2.in_kvecs, 0, 0);
229 }
230
set_in_bvec(struct ceph_connection * con,const struct bio_vec * bv)231 static void set_in_bvec(struct ceph_connection *con, const struct bio_vec *bv)
232 {
233 WARN_ON(iov_iter_count(&con->v2.in_iter));
234
235 con->v2.in_bvec = *bv;
236 iov_iter_bvec(&con->v2.in_iter, ITER_DEST, &con->v2.in_bvec, 1, bv->bv_len);
237 }
238
set_in_skip(struct ceph_connection * con,int len)239 static void set_in_skip(struct ceph_connection *con, int len)
240 {
241 WARN_ON(iov_iter_count(&con->v2.in_iter));
242
243 dout("%s con %p len %d\n", __func__, con, len);
244 iov_iter_discard(&con->v2.in_iter, ITER_DEST, len);
245 }
246
add_out_kvec(struct ceph_connection * con,void * buf,int len)247 static void add_out_kvec(struct ceph_connection *con, void *buf, int len)
248 {
249 BUG_ON(con->v2.out_kvec_cnt >= ARRAY_SIZE(con->v2.out_kvecs));
250 WARN_ON(!iov_iter_is_kvec(&con->v2.out_iter));
251 WARN_ON(con->v2.out_zero);
252
253 con->v2.out_kvecs[con->v2.out_kvec_cnt].iov_base = buf;
254 con->v2.out_kvecs[con->v2.out_kvec_cnt].iov_len = len;
255 con->v2.out_kvec_cnt++;
256
257 con->v2.out_iter.nr_segs++;
258 con->v2.out_iter.count += len;
259 }
260
reset_out_kvecs(struct ceph_connection * con)261 static void reset_out_kvecs(struct ceph_connection *con)
262 {
263 WARN_ON(iov_iter_count(&con->v2.out_iter));
264 WARN_ON(con->v2.out_zero);
265
266 con->v2.out_kvec_cnt = 0;
267
268 iov_iter_kvec(&con->v2.out_iter, ITER_SOURCE, con->v2.out_kvecs, 0, 0);
269 con->v2.out_iter_sendpage = false;
270 }
271
set_out_bvec(struct ceph_connection * con,const struct bio_vec * bv,bool zerocopy)272 static void set_out_bvec(struct ceph_connection *con, const struct bio_vec *bv,
273 bool zerocopy)
274 {
275 WARN_ON(iov_iter_count(&con->v2.out_iter));
276 WARN_ON(con->v2.out_zero);
277
278 con->v2.out_bvec = *bv;
279 con->v2.out_iter_sendpage = zerocopy;
280 iov_iter_bvec(&con->v2.out_iter, ITER_SOURCE, &con->v2.out_bvec, 1,
281 con->v2.out_bvec.bv_len);
282 }
283
set_out_bvec_zero(struct ceph_connection * con)284 static void set_out_bvec_zero(struct ceph_connection *con)
285 {
286 WARN_ON(iov_iter_count(&con->v2.out_iter));
287 WARN_ON(!con->v2.out_zero);
288
289 bvec_set_page(&con->v2.out_bvec, ceph_zero_page,
290 min(con->v2.out_zero, (int)PAGE_SIZE), 0);
291 con->v2.out_iter_sendpage = true;
292 iov_iter_bvec(&con->v2.out_iter, ITER_SOURCE, &con->v2.out_bvec, 1,
293 con->v2.out_bvec.bv_len);
294 }
295
out_zero_add(struct ceph_connection * con,int len)296 static void out_zero_add(struct ceph_connection *con, int len)
297 {
298 dout("%s con %p len %d\n", __func__, con, len);
299 con->v2.out_zero += len;
300 }
301
alloc_conn_buf(struct ceph_connection * con,int len)302 static void *alloc_conn_buf(struct ceph_connection *con, int len)
303 {
304 void *buf;
305
306 dout("%s con %p len %d\n", __func__, con, len);
307
308 if (WARN_ON(con->v2.conn_buf_cnt >= ARRAY_SIZE(con->v2.conn_bufs)))
309 return NULL;
310
311 buf = kvmalloc(len, GFP_NOIO);
312 if (!buf)
313 return NULL;
314
315 con->v2.conn_bufs[con->v2.conn_buf_cnt++] = buf;
316 return buf;
317 }
318
free_conn_bufs(struct ceph_connection * con)319 static void free_conn_bufs(struct ceph_connection *con)
320 {
321 while (con->v2.conn_buf_cnt)
322 kvfree(con->v2.conn_bufs[--con->v2.conn_buf_cnt]);
323 }
324
add_in_sign_kvec(struct ceph_connection * con,void * buf,int len)325 static void add_in_sign_kvec(struct ceph_connection *con, void *buf, int len)
326 {
327 BUG_ON(con->v2.in_sign_kvec_cnt >= ARRAY_SIZE(con->v2.in_sign_kvecs));
328
329 con->v2.in_sign_kvecs[con->v2.in_sign_kvec_cnt].iov_base = buf;
330 con->v2.in_sign_kvecs[con->v2.in_sign_kvec_cnt].iov_len = len;
331 con->v2.in_sign_kvec_cnt++;
332 }
333
clear_in_sign_kvecs(struct ceph_connection * con)334 static void clear_in_sign_kvecs(struct ceph_connection *con)
335 {
336 con->v2.in_sign_kvec_cnt = 0;
337 }
338
add_out_sign_kvec(struct ceph_connection * con,void * buf,int len)339 static void add_out_sign_kvec(struct ceph_connection *con, void *buf, int len)
340 {
341 BUG_ON(con->v2.out_sign_kvec_cnt >= ARRAY_SIZE(con->v2.out_sign_kvecs));
342
343 con->v2.out_sign_kvecs[con->v2.out_sign_kvec_cnt].iov_base = buf;
344 con->v2.out_sign_kvecs[con->v2.out_sign_kvec_cnt].iov_len = len;
345 con->v2.out_sign_kvec_cnt++;
346 }
347
clear_out_sign_kvecs(struct ceph_connection * con)348 static void clear_out_sign_kvecs(struct ceph_connection *con)
349 {
350 con->v2.out_sign_kvec_cnt = 0;
351 }
352
con_secure(struct ceph_connection * con)353 static bool con_secure(struct ceph_connection *con)
354 {
355 return con->v2.con_mode == CEPH_CON_MODE_SECURE;
356 }
357
front_len(const struct ceph_msg * msg)358 static int front_len(const struct ceph_msg *msg)
359 {
360 return le32_to_cpu(msg->hdr.front_len);
361 }
362
middle_len(const struct ceph_msg * msg)363 static int middle_len(const struct ceph_msg *msg)
364 {
365 return le32_to_cpu(msg->hdr.middle_len);
366 }
367
data_len(const struct ceph_msg * msg)368 static int data_len(const struct ceph_msg *msg)
369 {
370 return le32_to_cpu(msg->hdr.data_len);
371 }
372
need_padding(int len)373 static bool need_padding(int len)
374 {
375 return !IS_ALIGNED(len, CEPH_GCM_BLOCK_LEN);
376 }
377
padded_len(int len)378 static int padded_len(int len)
379 {
380 return ALIGN(len, CEPH_GCM_BLOCK_LEN);
381 }
382
padding_len(int len)383 static int padding_len(int len)
384 {
385 return padded_len(len) - len;
386 }
387
388 /* preamble + control segment */
head_onwire_len(int ctrl_len,bool secure)389 static int head_onwire_len(int ctrl_len, bool secure)
390 {
391 int head_len;
392 int rem_len;
393
394 BUG_ON(ctrl_len < 1 || ctrl_len > CEPH_MSG_MAX_CONTROL_LEN);
395
396 if (secure) {
397 head_len = CEPH_PREAMBLE_SECURE_LEN;
398 if (ctrl_len > CEPH_PREAMBLE_INLINE_LEN) {
399 rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN;
400 head_len += padded_len(rem_len) + CEPH_GCM_TAG_LEN;
401 }
402 } else {
403 head_len = CEPH_PREAMBLE_PLAIN_LEN + ctrl_len + CEPH_CRC_LEN;
404 }
405 return head_len;
406 }
407
408 /* front, middle and data segments + epilogue */
__tail_onwire_len(int front_len,int middle_len,int data_len,bool secure)409 static int __tail_onwire_len(int front_len, int middle_len, int data_len,
410 bool secure)
411 {
412 BUG_ON(front_len < 0 || front_len > CEPH_MSG_MAX_FRONT_LEN ||
413 middle_len < 0 || middle_len > CEPH_MSG_MAX_MIDDLE_LEN ||
414 data_len < 0 || data_len > CEPH_MSG_MAX_DATA_LEN);
415
416 if (!front_len && !middle_len && !data_len)
417 return 0;
418
419 if (!secure)
420 return front_len + middle_len + data_len +
421 CEPH_EPILOGUE_PLAIN_LEN;
422
423 return padded_len(front_len) + padded_len(middle_len) +
424 padded_len(data_len) + CEPH_EPILOGUE_SECURE_LEN;
425 }
426
tail_onwire_len(const struct ceph_msg * msg,bool secure)427 static int tail_onwire_len(const struct ceph_msg *msg, bool secure)
428 {
429 return __tail_onwire_len(front_len(msg), middle_len(msg),
430 data_len(msg), secure);
431 }
432
433 /* head_onwire_len(sizeof(struct ceph_msg_header2), false) */
434 #define MESSAGE_HEAD_PLAIN_LEN (CEPH_PREAMBLE_PLAIN_LEN + \
435 sizeof(struct ceph_msg_header2) + \
436 CEPH_CRC_LEN)
437
438 static const int frame_aligns[] = {
439 sizeof(void *),
440 sizeof(void *),
441 sizeof(void *),
442 PAGE_SIZE
443 };
444
445 /*
446 * Discards trailing empty segments, unless there is just one segment.
447 * A frame always has at least one (possibly empty) segment.
448 */
calc_segment_count(const int * lens,int len_cnt)449 static int calc_segment_count(const int *lens, int len_cnt)
450 {
451 int i;
452
453 for (i = len_cnt - 1; i >= 0; i--) {
454 if (lens[i])
455 return i + 1;
456 }
457
458 return 1;
459 }
460
init_frame_desc(struct ceph_frame_desc * desc,int tag,const int * lens,int len_cnt)461 static void init_frame_desc(struct ceph_frame_desc *desc, int tag,
462 const int *lens, int len_cnt)
463 {
464 int i;
465
466 memset(desc, 0, sizeof(*desc));
467
468 desc->fd_tag = tag;
469 desc->fd_seg_cnt = calc_segment_count(lens, len_cnt);
470 BUG_ON(desc->fd_seg_cnt > CEPH_FRAME_MAX_SEGMENT_COUNT);
471 for (i = 0; i < desc->fd_seg_cnt; i++) {
472 desc->fd_lens[i] = lens[i];
473 desc->fd_aligns[i] = frame_aligns[i];
474 }
475 }
476
477 /*
478 * Preamble crc covers everything up to itself (28 bytes) and
479 * is calculated and verified irrespective of the connection mode
480 * (i.e. even if the frame is encrypted).
481 */
encode_preamble(const struct ceph_frame_desc * desc,void * p)482 static void encode_preamble(const struct ceph_frame_desc *desc, void *p)
483 {
484 void *crcp = p + CEPH_PREAMBLE_LEN - CEPH_CRC_LEN;
485 void *start = p;
486 int i;
487
488 memset(p, 0, CEPH_PREAMBLE_LEN);
489
490 ceph_encode_8(&p, desc->fd_tag);
491 ceph_encode_8(&p, desc->fd_seg_cnt);
492 for (i = 0; i < desc->fd_seg_cnt; i++) {
493 ceph_encode_32(&p, desc->fd_lens[i]);
494 ceph_encode_16(&p, desc->fd_aligns[i]);
495 }
496
497 put_unaligned_le32(crc32c(0, start, crcp - start), crcp);
498 }
499
decode_preamble(void * p,struct ceph_frame_desc * desc)500 static int decode_preamble(void *p, struct ceph_frame_desc *desc)
501 {
502 void *crcp = p + CEPH_PREAMBLE_LEN - CEPH_CRC_LEN;
503 u32 crc, expected_crc;
504 int i;
505
506 crc = crc32c(0, p, crcp - p);
507 expected_crc = get_unaligned_le32(crcp);
508 if (crc != expected_crc) {
509 pr_err("bad preamble crc, calculated %u, expected %u\n",
510 crc, expected_crc);
511 return -EBADMSG;
512 }
513
514 memset(desc, 0, sizeof(*desc));
515
516 desc->fd_tag = ceph_decode_8(&p);
517 desc->fd_seg_cnt = ceph_decode_8(&p);
518 if (desc->fd_seg_cnt < 1 ||
519 desc->fd_seg_cnt > CEPH_FRAME_MAX_SEGMENT_COUNT) {
520 pr_err("bad segment count %d\n", desc->fd_seg_cnt);
521 return -EINVAL;
522 }
523 for (i = 0; i < desc->fd_seg_cnt; i++) {
524 desc->fd_lens[i] = ceph_decode_32(&p);
525 desc->fd_aligns[i] = ceph_decode_16(&p);
526 }
527
528 /*
529 * This would fire for FRAME_TAG_WAIT (it has one empty
530 * segment), but we should never get it as client.
531 */
532 if (desc->fd_lens[0] < 1 ||
533 desc->fd_lens[0] > CEPH_MSG_MAX_CONTROL_LEN) {
534 pr_err("bad control segment length %d\n", desc->fd_lens[0]);
535 return -EINVAL;
536 }
537
538 if (desc->fd_lens[1] < 0 ||
539 desc->fd_lens[1] > CEPH_MSG_MAX_FRONT_LEN) {
540 pr_err("bad front segment length %d\n", desc->fd_lens[1]);
541 return -EINVAL;
542 }
543 if (desc->fd_lens[2] < 0 ||
544 desc->fd_lens[2] > CEPH_MSG_MAX_MIDDLE_LEN) {
545 pr_err("bad middle segment length %d\n", desc->fd_lens[2]);
546 return -EINVAL;
547 }
548 if (desc->fd_lens[3] < 0 ||
549 desc->fd_lens[3] > CEPH_MSG_MAX_DATA_LEN) {
550 pr_err("bad data segment length %d\n", desc->fd_lens[3]);
551 return -EINVAL;
552 }
553
554 if (!desc->fd_lens[desc->fd_seg_cnt - 1]) {
555 pr_err("last segment empty, segment count %d\n",
556 desc->fd_seg_cnt);
557 return -EINVAL;
558 }
559
560 return 0;
561 }
562
encode_epilogue_plain(struct ceph_connection * con,bool aborted)563 static void encode_epilogue_plain(struct ceph_connection *con, bool aborted)
564 {
565 con->v2.out_epil.late_status = aborted ? FRAME_LATE_STATUS_ABORTED :
566 FRAME_LATE_STATUS_COMPLETE;
567 cpu_to_le32s(&con->v2.out_epil.front_crc);
568 cpu_to_le32s(&con->v2.out_epil.middle_crc);
569 cpu_to_le32s(&con->v2.out_epil.data_crc);
570 }
571
encode_epilogue_secure(struct ceph_connection * con,bool aborted)572 static void encode_epilogue_secure(struct ceph_connection *con, bool aborted)
573 {
574 memset(&con->v2.out_epil, 0, sizeof(con->v2.out_epil));
575 con->v2.out_epil.late_status = aborted ? FRAME_LATE_STATUS_ABORTED :
576 FRAME_LATE_STATUS_COMPLETE;
577 }
578
decode_epilogue(void * p,u32 * front_crc,u32 * middle_crc,u32 * data_crc)579 static int decode_epilogue(void *p, u32 *front_crc, u32 *middle_crc,
580 u32 *data_crc)
581 {
582 u8 late_status;
583
584 late_status = ceph_decode_8(&p);
585 if ((late_status & FRAME_LATE_STATUS_ABORTED_MASK) !=
586 FRAME_LATE_STATUS_COMPLETE) {
587 /* we should never get an aborted message as client */
588 pr_err("bad late_status 0x%x\n", late_status);
589 return -EINVAL;
590 }
591
592 if (front_crc && middle_crc && data_crc) {
593 *front_crc = ceph_decode_32(&p);
594 *middle_crc = ceph_decode_32(&p);
595 *data_crc = ceph_decode_32(&p);
596 }
597
598 return 0;
599 }
600
fill_header(struct ceph_msg_header * hdr,const struct ceph_msg_header2 * hdr2,int front_len,int middle_len,int data_len,const struct ceph_entity_name * peer_name)601 static void fill_header(struct ceph_msg_header *hdr,
602 const struct ceph_msg_header2 *hdr2,
603 int front_len, int middle_len, int data_len,
604 const struct ceph_entity_name *peer_name)
605 {
606 hdr->seq = hdr2->seq;
607 hdr->tid = hdr2->tid;
608 hdr->type = hdr2->type;
609 hdr->priority = hdr2->priority;
610 hdr->version = hdr2->version;
611 hdr->front_len = cpu_to_le32(front_len);
612 hdr->middle_len = cpu_to_le32(middle_len);
613 hdr->data_len = cpu_to_le32(data_len);
614 hdr->data_off = hdr2->data_off;
615 hdr->src = *peer_name;
616 hdr->compat_version = hdr2->compat_version;
617 hdr->reserved = 0;
618 hdr->crc = 0;
619 }
620
fill_header2(struct ceph_msg_header2 * hdr2,const struct ceph_msg_header * hdr,u64 ack_seq)621 static void fill_header2(struct ceph_msg_header2 *hdr2,
622 const struct ceph_msg_header *hdr, u64 ack_seq)
623 {
624 hdr2->seq = hdr->seq;
625 hdr2->tid = hdr->tid;
626 hdr2->type = hdr->type;
627 hdr2->priority = hdr->priority;
628 hdr2->version = hdr->version;
629 hdr2->data_pre_padding_len = 0;
630 hdr2->data_off = hdr->data_off;
631 hdr2->ack_seq = cpu_to_le64(ack_seq);
632 hdr2->flags = 0;
633 hdr2->compat_version = hdr->compat_version;
634 hdr2->reserved = 0;
635 }
636
verify_control_crc(struct ceph_connection * con)637 static int verify_control_crc(struct ceph_connection *con)
638 {
639 int ctrl_len = con->v2.in_desc.fd_lens[0];
640 u32 crc, expected_crc;
641
642 WARN_ON(con->v2.in_kvecs[0].iov_len != ctrl_len);
643 WARN_ON(con->v2.in_kvecs[1].iov_len != CEPH_CRC_LEN);
644
645 crc = crc32c(-1, con->v2.in_kvecs[0].iov_base, ctrl_len);
646 expected_crc = get_unaligned_le32(con->v2.in_kvecs[1].iov_base);
647 if (crc != expected_crc) {
648 pr_err("bad control crc, calculated %u, expected %u\n",
649 crc, expected_crc);
650 return -EBADMSG;
651 }
652
653 return 0;
654 }
655
verify_epilogue_crcs(struct ceph_connection * con,u32 front_crc,u32 middle_crc,u32 data_crc)656 static int verify_epilogue_crcs(struct ceph_connection *con, u32 front_crc,
657 u32 middle_crc, u32 data_crc)
658 {
659 if (front_len(con->in_msg)) {
660 con->in_front_crc = crc32c(-1, con->in_msg->front.iov_base,
661 front_len(con->in_msg));
662 } else {
663 WARN_ON(!middle_len(con->in_msg) && !data_len(con->in_msg));
664 con->in_front_crc = -1;
665 }
666
667 if (middle_len(con->in_msg))
668 con->in_middle_crc = crc32c(-1,
669 con->in_msg->middle->vec.iov_base,
670 middle_len(con->in_msg));
671 else if (data_len(con->in_msg))
672 con->in_middle_crc = -1;
673 else
674 con->in_middle_crc = 0;
675
676 if (!data_len(con->in_msg))
677 con->in_data_crc = 0;
678
679 dout("%s con %p msg %p crcs %u %u %u\n", __func__, con, con->in_msg,
680 con->in_front_crc, con->in_middle_crc, con->in_data_crc);
681
682 if (con->in_front_crc != front_crc) {
683 pr_err("bad front crc, calculated %u, expected %u\n",
684 con->in_front_crc, front_crc);
685 return -EBADMSG;
686 }
687 if (con->in_middle_crc != middle_crc) {
688 pr_err("bad middle crc, calculated %u, expected %u\n",
689 con->in_middle_crc, middle_crc);
690 return -EBADMSG;
691 }
692 if (con->in_data_crc != data_crc) {
693 pr_err("bad data crc, calculated %u, expected %u\n",
694 con->in_data_crc, data_crc);
695 return -EBADMSG;
696 }
697
698 return 0;
699 }
700
setup_crypto(struct ceph_connection * con,const u8 * session_key,int session_key_len,const u8 * con_secret,int con_secret_len)701 static int setup_crypto(struct ceph_connection *con,
702 const u8 *session_key, int session_key_len,
703 const u8 *con_secret, int con_secret_len)
704 {
705 unsigned int noio_flag;
706 int ret;
707
708 dout("%s con %p con_mode %d session_key_len %d con_secret_len %d\n",
709 __func__, con, con->v2.con_mode, session_key_len, con_secret_len);
710 WARN_ON(con->v2.hmac_key_set || con->v2.gcm_tfm || con->v2.gcm_req);
711
712 if (con->v2.con_mode != CEPH_CON_MODE_CRC &&
713 con->v2.con_mode != CEPH_CON_MODE_SECURE) {
714 pr_err("bad con_mode %d\n", con->v2.con_mode);
715 return -EINVAL;
716 }
717
718 if (!session_key_len) {
719 WARN_ON(con->v2.con_mode != CEPH_CON_MODE_CRC);
720 WARN_ON(con_secret_len);
721 return 0; /* auth_none */
722 }
723
724 hmac_sha256_preparekey(&con->v2.hmac_key, session_key, session_key_len);
725 con->v2.hmac_key_set = true;
726
727 if (con->v2.con_mode == CEPH_CON_MODE_CRC) {
728 WARN_ON(con_secret_len);
729 return 0; /* auth_x, plain mode */
730 }
731
732 if (con_secret_len < CEPH_GCM_KEY_LEN + 2 * CEPH_GCM_IV_LEN) {
733 pr_err("con_secret too small %d\n", con_secret_len);
734 return -EINVAL;
735 }
736
737 noio_flag = memalloc_noio_save();
738 con->v2.gcm_tfm = crypto_alloc_aead("gcm(aes)", 0, 0);
739 memalloc_noio_restore(noio_flag);
740 if (IS_ERR(con->v2.gcm_tfm)) {
741 ret = PTR_ERR(con->v2.gcm_tfm);
742 con->v2.gcm_tfm = NULL;
743 pr_err("failed to allocate gcm tfm context: %d\n", ret);
744 return ret;
745 }
746
747 WARN_ON((unsigned long)con_secret &
748 crypto_aead_alignmask(con->v2.gcm_tfm));
749 ret = crypto_aead_setkey(con->v2.gcm_tfm, con_secret, CEPH_GCM_KEY_LEN);
750 if (ret) {
751 pr_err("failed to set gcm key: %d\n", ret);
752 return ret;
753 }
754
755 WARN_ON(crypto_aead_ivsize(con->v2.gcm_tfm) != CEPH_GCM_IV_LEN);
756 ret = crypto_aead_setauthsize(con->v2.gcm_tfm, CEPH_GCM_TAG_LEN);
757 if (ret) {
758 pr_err("failed to set gcm tag size: %d\n", ret);
759 return ret;
760 }
761
762 con->v2.gcm_req = aead_request_alloc(con->v2.gcm_tfm, GFP_NOIO);
763 if (!con->v2.gcm_req) {
764 pr_err("failed to allocate gcm request\n");
765 return -ENOMEM;
766 }
767
768 crypto_init_wait(&con->v2.gcm_wait);
769 aead_request_set_callback(con->v2.gcm_req, CRYPTO_TFM_REQ_MAY_BACKLOG,
770 crypto_req_done, &con->v2.gcm_wait);
771
772 memcpy(&con->v2.in_gcm_nonce, con_secret + CEPH_GCM_KEY_LEN,
773 CEPH_GCM_IV_LEN);
774 memcpy(&con->v2.out_gcm_nonce,
775 con_secret + CEPH_GCM_KEY_LEN + CEPH_GCM_IV_LEN,
776 CEPH_GCM_IV_LEN);
777 return 0; /* auth_x, secure mode */
778 }
779
con_hmac_sha256(struct ceph_connection * con,const struct kvec * kvecs,int kvec_cnt,u8 hmac[SHA256_DIGEST_SIZE])780 static void con_hmac_sha256(struct ceph_connection *con,
781 const struct kvec *kvecs, int kvec_cnt,
782 u8 hmac[SHA256_DIGEST_SIZE])
783 {
784 struct hmac_sha256_ctx ctx;
785 int i;
786
787 dout("%s con %p hmac_key_set %d kvec_cnt %d\n", __func__, con,
788 con->v2.hmac_key_set, kvec_cnt);
789
790 if (!con->v2.hmac_key_set) {
791 memset(hmac, 0, SHA256_DIGEST_SIZE);
792 return; /* auth_none */
793 }
794
795 /* auth_x, both plain and secure modes */
796 hmac_sha256_init(&ctx, &con->v2.hmac_key);
797 for (i = 0; i < kvec_cnt; i++)
798 hmac_sha256_update(&ctx, kvecs[i].iov_base, kvecs[i].iov_len);
799 hmac_sha256_final(&ctx, hmac);
800 }
801
gcm_inc_nonce(struct ceph_gcm_nonce * nonce)802 static void gcm_inc_nonce(struct ceph_gcm_nonce *nonce)
803 {
804 u64 counter;
805
806 counter = le64_to_cpu(nonce->counter);
807 nonce->counter = cpu_to_le64(counter + 1);
808 }
809
gcm_crypt(struct ceph_connection * con,bool encrypt,struct scatterlist * src,struct scatterlist * dst,int src_len)810 static int gcm_crypt(struct ceph_connection *con, bool encrypt,
811 struct scatterlist *src, struct scatterlist *dst,
812 int src_len)
813 {
814 struct ceph_gcm_nonce *nonce;
815 int ret;
816
817 nonce = encrypt ? &con->v2.out_gcm_nonce : &con->v2.in_gcm_nonce;
818
819 aead_request_set_ad(con->v2.gcm_req, 0); /* no AAD */
820 aead_request_set_crypt(con->v2.gcm_req, src, dst, src_len, (u8 *)nonce);
821 ret = crypto_wait_req(encrypt ? crypto_aead_encrypt(con->v2.gcm_req) :
822 crypto_aead_decrypt(con->v2.gcm_req),
823 &con->v2.gcm_wait);
824 if (ret)
825 return ret;
826
827 gcm_inc_nonce(nonce);
828 return 0;
829 }
830
get_bvec_at(struct ceph_msg_data_cursor * cursor,struct bio_vec * bv)831 static void get_bvec_at(struct ceph_msg_data_cursor *cursor,
832 struct bio_vec *bv)
833 {
834 struct page *page;
835 size_t off, len;
836
837 WARN_ON(!cursor->total_resid);
838
839 /* skip zero-length data items */
840 while (!cursor->resid)
841 ceph_msg_data_advance(cursor, 0);
842
843 /* get a piece of data, cursor isn't advanced */
844 page = ceph_msg_data_next(cursor, &off, &len);
845 bvec_set_page(bv, page, len, off);
846 }
847
calc_sg_cnt(void * buf,int buf_len)848 static int calc_sg_cnt(void *buf, int buf_len)
849 {
850 int sg_cnt;
851
852 if (!buf_len)
853 return 0;
854
855 sg_cnt = need_padding(buf_len) ? 1 : 0;
856 if (is_vmalloc_addr(buf)) {
857 WARN_ON(offset_in_page(buf));
858 sg_cnt += PAGE_ALIGN(buf_len) >> PAGE_SHIFT;
859 } else {
860 sg_cnt++;
861 }
862
863 return sg_cnt;
864 }
865
calc_sg_cnt_cursor(struct ceph_msg_data_cursor * cursor)866 static int calc_sg_cnt_cursor(struct ceph_msg_data_cursor *cursor)
867 {
868 int data_len = cursor->total_resid;
869 struct bio_vec bv;
870 int sg_cnt;
871
872 if (!data_len)
873 return 0;
874
875 sg_cnt = need_padding(data_len) ? 1 : 0;
876 do {
877 get_bvec_at(cursor, &bv);
878 sg_cnt++;
879
880 ceph_msg_data_advance(cursor, bv.bv_len);
881 } while (cursor->total_resid);
882
883 return sg_cnt;
884 }
885
init_sgs(struct scatterlist ** sg,void * buf,int buf_len,u8 * pad)886 static void init_sgs(struct scatterlist **sg, void *buf, int buf_len, u8 *pad)
887 {
888 void *end = buf + buf_len;
889 struct page *page;
890 int len;
891 void *p;
892
893 if (!buf_len)
894 return;
895
896 if (is_vmalloc_addr(buf)) {
897 p = buf;
898 do {
899 page = vmalloc_to_page(p);
900 len = min_t(int, end - p, PAGE_SIZE);
901 WARN_ON(!page || !len || offset_in_page(p));
902 sg_set_page(*sg, page, len, 0);
903 *sg = sg_next(*sg);
904 p += len;
905 } while (p != end);
906 } else {
907 sg_set_buf(*sg, buf, buf_len);
908 *sg = sg_next(*sg);
909 }
910
911 if (need_padding(buf_len)) {
912 sg_set_buf(*sg, pad, padding_len(buf_len));
913 *sg = sg_next(*sg);
914 }
915 }
916
init_sgs_cursor(struct scatterlist ** sg,struct ceph_msg_data_cursor * cursor,u8 * pad)917 static void init_sgs_cursor(struct scatterlist **sg,
918 struct ceph_msg_data_cursor *cursor, u8 *pad)
919 {
920 int data_len = cursor->total_resid;
921 struct bio_vec bv;
922
923 if (!data_len)
924 return;
925
926 do {
927 get_bvec_at(cursor, &bv);
928 sg_set_page(*sg, bv.bv_page, bv.bv_len, bv.bv_offset);
929 *sg = sg_next(*sg);
930
931 ceph_msg_data_advance(cursor, bv.bv_len);
932 } while (cursor->total_resid);
933
934 if (need_padding(data_len)) {
935 sg_set_buf(*sg, pad, padding_len(data_len));
936 *sg = sg_next(*sg);
937 }
938 }
939
940 /**
941 * init_sgs_pages: set up scatterlist on an array of page pointers
942 * @sg: scatterlist to populate
943 * @pages: pointer to page array
944 * @dpos: position in the array to start (bytes)
945 * @dlen: len to add to sg (bytes)
946 * @pad: pointer to pad destination (if any)
947 *
948 * Populate the scatterlist from the page array, starting at an arbitrary
949 * byte in the array and running for a specified length.
950 */
init_sgs_pages(struct scatterlist ** sg,struct page ** pages,int dpos,int dlen,u8 * pad)951 static void init_sgs_pages(struct scatterlist **sg, struct page **pages,
952 int dpos, int dlen, u8 *pad)
953 {
954 int idx = dpos >> PAGE_SHIFT;
955 int off = offset_in_page(dpos);
956 int resid = dlen;
957
958 do {
959 int len = min(resid, (int)PAGE_SIZE - off);
960
961 sg_set_page(*sg, pages[idx], len, off);
962 *sg = sg_next(*sg);
963 off = 0;
964 ++idx;
965 resid -= len;
966 } while (resid);
967
968 if (need_padding(dlen)) {
969 sg_set_buf(*sg, pad, padding_len(dlen));
970 *sg = sg_next(*sg);
971 }
972 }
973
setup_message_sgs(struct sg_table * sgt,struct ceph_msg * msg,u8 * front_pad,u8 * middle_pad,u8 * data_pad,void * epilogue,struct page ** pages,int dpos,bool add_tag)974 static int setup_message_sgs(struct sg_table *sgt, struct ceph_msg *msg,
975 u8 *front_pad, u8 *middle_pad, u8 *data_pad,
976 void *epilogue, struct page **pages, int dpos,
977 bool add_tag)
978 {
979 struct ceph_msg_data_cursor cursor;
980 struct scatterlist *cur_sg;
981 int dlen = data_len(msg);
982 int sg_cnt;
983 int ret;
984
985 if (!front_len(msg) && !middle_len(msg) && !data_len(msg))
986 return 0;
987
988 sg_cnt = 1; /* epilogue + [auth tag] */
989 if (front_len(msg))
990 sg_cnt += calc_sg_cnt(msg->front.iov_base,
991 front_len(msg));
992 if (middle_len(msg))
993 sg_cnt += calc_sg_cnt(msg->middle->vec.iov_base,
994 middle_len(msg));
995 if (dlen) {
996 if (pages) {
997 sg_cnt += calc_pages_for(dpos, dlen);
998 if (need_padding(dlen))
999 sg_cnt++;
1000 } else {
1001 ceph_msg_data_cursor_init(&cursor, msg, dlen);
1002 sg_cnt += calc_sg_cnt_cursor(&cursor);
1003 }
1004 }
1005
1006 ret = sg_alloc_table(sgt, sg_cnt, GFP_NOIO);
1007 if (ret)
1008 return ret;
1009
1010 cur_sg = sgt->sgl;
1011 if (front_len(msg))
1012 init_sgs(&cur_sg, msg->front.iov_base, front_len(msg),
1013 front_pad);
1014 if (middle_len(msg))
1015 init_sgs(&cur_sg, msg->middle->vec.iov_base, middle_len(msg),
1016 middle_pad);
1017 if (dlen) {
1018 if (pages) {
1019 init_sgs_pages(&cur_sg, pages, dpos, dlen, data_pad);
1020 } else {
1021 ceph_msg_data_cursor_init(&cursor, msg, dlen);
1022 init_sgs_cursor(&cur_sg, &cursor, data_pad);
1023 }
1024 }
1025
1026 WARN_ON(!sg_is_last(cur_sg));
1027 sg_set_buf(cur_sg, epilogue,
1028 CEPH_GCM_BLOCK_LEN + (add_tag ? CEPH_GCM_TAG_LEN : 0));
1029 return 0;
1030 }
1031
decrypt_preamble(struct ceph_connection * con)1032 static int decrypt_preamble(struct ceph_connection *con)
1033 {
1034 struct scatterlist sg;
1035
1036 sg_init_one(&sg, con->v2.in_buf, CEPH_PREAMBLE_SECURE_LEN);
1037 return gcm_crypt(con, false, &sg, &sg, CEPH_PREAMBLE_SECURE_LEN);
1038 }
1039
decrypt_control_remainder(struct ceph_connection * con)1040 static int decrypt_control_remainder(struct ceph_connection *con)
1041 {
1042 int ctrl_len = con->v2.in_desc.fd_lens[0];
1043 int rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN;
1044 int pt_len = padding_len(rem_len) + CEPH_GCM_TAG_LEN;
1045 struct scatterlist sgs[2];
1046
1047 WARN_ON(con->v2.in_kvecs[0].iov_len != rem_len);
1048 WARN_ON(con->v2.in_kvecs[1].iov_len != pt_len);
1049
1050 sg_init_table(sgs, 2);
1051 sg_set_buf(&sgs[0], con->v2.in_kvecs[0].iov_base, rem_len);
1052 sg_set_buf(&sgs[1], con->v2.in_buf, pt_len);
1053
1054 return gcm_crypt(con, false, sgs, sgs,
1055 padded_len(rem_len) + CEPH_GCM_TAG_LEN);
1056 }
1057
1058 /* Process sparse read data that lives in a buffer */
process_v2_sparse_read(struct ceph_connection * con,struct page ** pages,int spos)1059 static int process_v2_sparse_read(struct ceph_connection *con,
1060 struct page **pages, int spos)
1061 {
1062 struct ceph_msg_data_cursor cursor;
1063 int ret;
1064
1065 ceph_msg_data_cursor_init(&cursor, con->in_msg,
1066 con->in_msg->sparse_read_total);
1067
1068 for (;;) {
1069 char *buf = NULL;
1070
1071 ret = con->ops->sparse_read(con, &cursor, &buf);
1072 if (ret <= 0)
1073 return ret;
1074
1075 dout("%s: sparse_read return %x buf %p\n", __func__, ret, buf);
1076
1077 do {
1078 int idx = spos >> PAGE_SHIFT;
1079 int soff = offset_in_page(spos);
1080 struct page *spage = con->v2.in_enc_pages[idx];
1081 int len = min_t(int, ret, PAGE_SIZE - soff);
1082
1083 if (buf) {
1084 memcpy_from_page(buf, spage, soff, len);
1085 buf += len;
1086 } else {
1087 struct bio_vec bv;
1088
1089 get_bvec_at(&cursor, &bv);
1090 len = min_t(int, len, bv.bv_len);
1091 memcpy_page(bv.bv_page, bv.bv_offset,
1092 spage, soff, len);
1093 ceph_msg_data_advance(&cursor, len);
1094 }
1095 spos += len;
1096 ret -= len;
1097 } while (ret);
1098 }
1099 }
1100
decrypt_tail(struct ceph_connection * con)1101 static int decrypt_tail(struct ceph_connection *con)
1102 {
1103 struct sg_table enc_sgt = {};
1104 struct sg_table sgt = {};
1105 struct page **pages = NULL;
1106 bool sparse = !!con->in_msg->sparse_read_total;
1107 int dpos = 0;
1108 int tail_len;
1109 int ret;
1110
1111 tail_len = tail_onwire_len(con->in_msg, true);
1112 ret = sg_alloc_table_from_pages(&enc_sgt, con->v2.in_enc_pages,
1113 con->v2.in_enc_page_cnt, 0, tail_len,
1114 GFP_NOIO);
1115 if (ret)
1116 goto out;
1117
1118 if (sparse) {
1119 dpos = padded_len(front_len(con->in_msg) + padded_len(middle_len(con->in_msg)));
1120 pages = con->v2.in_enc_pages;
1121 }
1122
1123 ret = setup_message_sgs(&sgt, con->in_msg, FRONT_PAD(con->v2.in_buf),
1124 MIDDLE_PAD(con->v2.in_buf), DATA_PAD(con->v2.in_buf),
1125 con->v2.in_buf, pages, dpos, true);
1126 if (ret)
1127 goto out;
1128
1129 dout("%s con %p msg %p enc_page_cnt %d sg_cnt %d\n", __func__, con,
1130 con->in_msg, con->v2.in_enc_page_cnt, sgt.orig_nents);
1131 ret = gcm_crypt(con, false, enc_sgt.sgl, sgt.sgl, tail_len);
1132 if (ret)
1133 goto out;
1134
1135 if (sparse && data_len(con->in_msg)) {
1136 ret = process_v2_sparse_read(con, con->v2.in_enc_pages, dpos);
1137 if (ret)
1138 goto out;
1139 }
1140
1141 WARN_ON(!con->v2.in_enc_page_cnt);
1142 ceph_release_page_vector(con->v2.in_enc_pages,
1143 con->v2.in_enc_page_cnt);
1144 con->v2.in_enc_pages = NULL;
1145 con->v2.in_enc_page_cnt = 0;
1146
1147 out:
1148 sg_free_table(&sgt);
1149 sg_free_table(&enc_sgt);
1150 return ret;
1151 }
1152
prepare_banner(struct ceph_connection * con)1153 static int prepare_banner(struct ceph_connection *con)
1154 {
1155 int buf_len = CEPH_BANNER_V2_LEN + 2 + 8 + 8;
1156 void *buf, *p;
1157
1158 buf = alloc_conn_buf(con, buf_len);
1159 if (!buf)
1160 return -ENOMEM;
1161
1162 p = buf;
1163 ceph_encode_copy(&p, CEPH_BANNER_V2, CEPH_BANNER_V2_LEN);
1164 ceph_encode_16(&p, sizeof(u64) + sizeof(u64));
1165 ceph_encode_64(&p, CEPH_MSGR2_SUPPORTED_FEATURES);
1166 ceph_encode_64(&p, CEPH_MSGR2_REQUIRED_FEATURES);
1167 WARN_ON(p != buf + buf_len);
1168
1169 add_out_kvec(con, buf, buf_len);
1170 add_out_sign_kvec(con, buf, buf_len);
1171 ceph_con_flag_set(con, CEPH_CON_F_WRITE_PENDING);
1172 return 0;
1173 }
1174
1175 /*
1176 * base:
1177 * preamble
1178 * control body (ctrl_len bytes)
1179 * space for control crc
1180 *
1181 * extdata (optional):
1182 * control body (extdata_len bytes)
1183 *
1184 * Compute control crc and gather base and extdata into:
1185 *
1186 * preamble
1187 * control body (ctrl_len + extdata_len bytes)
1188 * control crc
1189 *
1190 * Preamble should already be encoded at the start of base.
1191 */
prepare_head_plain(struct ceph_connection * con,void * base,int ctrl_len,void * extdata,int extdata_len,bool to_be_signed)1192 static void prepare_head_plain(struct ceph_connection *con, void *base,
1193 int ctrl_len, void *extdata, int extdata_len,
1194 bool to_be_signed)
1195 {
1196 int base_len = CEPH_PREAMBLE_LEN + ctrl_len + CEPH_CRC_LEN;
1197 void *crcp = base + base_len - CEPH_CRC_LEN;
1198 u32 crc;
1199
1200 crc = crc32c(-1, CTRL_BODY(base), ctrl_len);
1201 if (extdata_len)
1202 crc = crc32c(crc, extdata, extdata_len);
1203 put_unaligned_le32(crc, crcp);
1204
1205 if (!extdata_len) {
1206 add_out_kvec(con, base, base_len);
1207 if (to_be_signed)
1208 add_out_sign_kvec(con, base, base_len);
1209 return;
1210 }
1211
1212 add_out_kvec(con, base, crcp - base);
1213 add_out_kvec(con, extdata, extdata_len);
1214 add_out_kvec(con, crcp, CEPH_CRC_LEN);
1215 if (to_be_signed) {
1216 add_out_sign_kvec(con, base, crcp - base);
1217 add_out_sign_kvec(con, extdata, extdata_len);
1218 add_out_sign_kvec(con, crcp, CEPH_CRC_LEN);
1219 }
1220 }
1221
prepare_head_secure_small(struct ceph_connection * con,void * base,int ctrl_len)1222 static int prepare_head_secure_small(struct ceph_connection *con,
1223 void *base, int ctrl_len)
1224 {
1225 struct scatterlist sg;
1226 int ret;
1227
1228 /* inline buffer padding? */
1229 if (ctrl_len < CEPH_PREAMBLE_INLINE_LEN)
1230 memset(CTRL_BODY(base) + ctrl_len, 0,
1231 CEPH_PREAMBLE_INLINE_LEN - ctrl_len);
1232
1233 sg_init_one(&sg, base, CEPH_PREAMBLE_SECURE_LEN);
1234 ret = gcm_crypt(con, true, &sg, &sg,
1235 CEPH_PREAMBLE_SECURE_LEN - CEPH_GCM_TAG_LEN);
1236 if (ret)
1237 return ret;
1238
1239 add_out_kvec(con, base, CEPH_PREAMBLE_SECURE_LEN);
1240 return 0;
1241 }
1242
1243 /*
1244 * base:
1245 * preamble
1246 * control body (ctrl_len bytes)
1247 * space for padding, if needed
1248 * space for control remainder auth tag
1249 * space for preamble auth tag
1250 *
1251 * Encrypt preamble and the inline portion, then encrypt the remainder
1252 * and gather into:
1253 *
1254 * preamble
1255 * control body (48 bytes)
1256 * preamble auth tag
1257 * control body (ctrl_len - 48 bytes)
1258 * zero padding, if needed
1259 * control remainder auth tag
1260 *
1261 * Preamble should already be encoded at the start of base.
1262 */
prepare_head_secure_big(struct ceph_connection * con,void * base,int ctrl_len)1263 static int prepare_head_secure_big(struct ceph_connection *con,
1264 void *base, int ctrl_len)
1265 {
1266 int rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN;
1267 void *rem = CTRL_BODY(base) + CEPH_PREAMBLE_INLINE_LEN;
1268 void *rem_tag = rem + padded_len(rem_len);
1269 void *pmbl_tag = rem_tag + CEPH_GCM_TAG_LEN;
1270 struct scatterlist sgs[2];
1271 int ret;
1272
1273 sg_init_table(sgs, 2);
1274 sg_set_buf(&sgs[0], base, rem - base);
1275 sg_set_buf(&sgs[1], pmbl_tag, CEPH_GCM_TAG_LEN);
1276 ret = gcm_crypt(con, true, sgs, sgs, rem - base);
1277 if (ret)
1278 return ret;
1279
1280 /* control remainder padding? */
1281 if (need_padding(rem_len))
1282 memset(rem + rem_len, 0, padding_len(rem_len));
1283
1284 sg_init_one(&sgs[0], rem, pmbl_tag - rem);
1285 ret = gcm_crypt(con, true, sgs, sgs, rem_tag - rem);
1286 if (ret)
1287 return ret;
1288
1289 add_out_kvec(con, base, rem - base);
1290 add_out_kvec(con, pmbl_tag, CEPH_GCM_TAG_LEN);
1291 add_out_kvec(con, rem, pmbl_tag - rem);
1292 return 0;
1293 }
1294
__prepare_control(struct ceph_connection * con,int tag,void * base,int ctrl_len,void * extdata,int extdata_len,bool to_be_signed)1295 static int __prepare_control(struct ceph_connection *con, int tag,
1296 void *base, int ctrl_len, void *extdata,
1297 int extdata_len, bool to_be_signed)
1298 {
1299 int total_len = ctrl_len + extdata_len;
1300 struct ceph_frame_desc desc;
1301 int ret;
1302
1303 dout("%s con %p tag %d len %d (%d+%d)\n", __func__, con, tag,
1304 total_len, ctrl_len, extdata_len);
1305
1306 /* extdata may be vmalloc'ed but not base */
1307 if (WARN_ON(is_vmalloc_addr(base) || !ctrl_len))
1308 return -EINVAL;
1309
1310 init_frame_desc(&desc, tag, &total_len, 1);
1311 encode_preamble(&desc, base);
1312
1313 if (con_secure(con)) {
1314 if (WARN_ON(extdata_len || to_be_signed))
1315 return -EINVAL;
1316
1317 if (ctrl_len <= CEPH_PREAMBLE_INLINE_LEN)
1318 /* fully inlined, inline buffer may need padding */
1319 ret = prepare_head_secure_small(con, base, ctrl_len);
1320 else
1321 /* partially inlined, inline buffer is full */
1322 ret = prepare_head_secure_big(con, base, ctrl_len);
1323 if (ret)
1324 return ret;
1325 } else {
1326 prepare_head_plain(con, base, ctrl_len, extdata, extdata_len,
1327 to_be_signed);
1328 }
1329
1330 ceph_con_flag_set(con, CEPH_CON_F_WRITE_PENDING);
1331 return 0;
1332 }
1333
prepare_control(struct ceph_connection * con,int tag,void * base,int ctrl_len)1334 static int prepare_control(struct ceph_connection *con, int tag,
1335 void *base, int ctrl_len)
1336 {
1337 return __prepare_control(con, tag, base, ctrl_len, NULL, 0, false);
1338 }
1339
prepare_hello(struct ceph_connection * con)1340 static int prepare_hello(struct ceph_connection *con)
1341 {
1342 void *buf, *p;
1343 int ctrl_len;
1344
1345 ctrl_len = 1 + ceph_entity_addr_encoding_len(&con->peer_addr);
1346 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, false));
1347 if (!buf)
1348 return -ENOMEM;
1349
1350 p = CTRL_BODY(buf);
1351 ceph_encode_8(&p, CEPH_ENTITY_TYPE_CLIENT);
1352 ceph_encode_entity_addr(&p, &con->peer_addr);
1353 WARN_ON(p != CTRL_BODY(buf) + ctrl_len);
1354
1355 return __prepare_control(con, FRAME_TAG_HELLO, buf, ctrl_len,
1356 NULL, 0, true);
1357 }
1358
1359 /* so that head_onwire_len(AUTH_BUF_LEN, false) is 512 */
1360 #define AUTH_BUF_LEN (512 - CEPH_CRC_LEN - CEPH_PREAMBLE_PLAIN_LEN)
1361
prepare_auth_request(struct ceph_connection * con)1362 static int prepare_auth_request(struct ceph_connection *con)
1363 {
1364 void *authorizer, *authorizer_copy;
1365 int ctrl_len, authorizer_len;
1366 void *buf;
1367 int ret;
1368
1369 ctrl_len = AUTH_BUF_LEN;
1370 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, false));
1371 if (!buf)
1372 return -ENOMEM;
1373
1374 mutex_unlock(&con->mutex);
1375 ret = con->ops->get_auth_request(con, CTRL_BODY(buf), &ctrl_len,
1376 &authorizer, &authorizer_len);
1377 mutex_lock(&con->mutex);
1378 if (con->state != CEPH_CON_S_V2_HELLO) {
1379 dout("%s con %p state changed to %d\n", __func__, con,
1380 con->state);
1381 return -EAGAIN;
1382 }
1383
1384 dout("%s con %p get_auth_request ret %d\n", __func__, con, ret);
1385 if (ret)
1386 return ret;
1387
1388 authorizer_copy = alloc_conn_buf(con, authorizer_len);
1389 if (!authorizer_copy)
1390 return -ENOMEM;
1391
1392 memcpy(authorizer_copy, authorizer, authorizer_len);
1393
1394 return __prepare_control(con, FRAME_TAG_AUTH_REQUEST, buf, ctrl_len,
1395 authorizer_copy, authorizer_len, true);
1396 }
1397
prepare_auth_request_more(struct ceph_connection * con,void * reply,int reply_len)1398 static int prepare_auth_request_more(struct ceph_connection *con,
1399 void *reply, int reply_len)
1400 {
1401 int ctrl_len, authorizer_len;
1402 void *authorizer;
1403 void *buf;
1404 int ret;
1405
1406 ctrl_len = AUTH_BUF_LEN;
1407 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, false));
1408 if (!buf)
1409 return -ENOMEM;
1410
1411 mutex_unlock(&con->mutex);
1412 ret = con->ops->handle_auth_reply_more(con, reply, reply_len,
1413 CTRL_BODY(buf), &ctrl_len,
1414 &authorizer, &authorizer_len);
1415 mutex_lock(&con->mutex);
1416 if (con->state != CEPH_CON_S_V2_AUTH) {
1417 dout("%s con %p state changed to %d\n", __func__, con,
1418 con->state);
1419 return -EAGAIN;
1420 }
1421
1422 dout("%s con %p handle_auth_reply_more ret %d\n", __func__, con, ret);
1423 if (ret)
1424 return ret;
1425
1426 return __prepare_control(con, FRAME_TAG_AUTH_REQUEST_MORE, buf,
1427 ctrl_len, authorizer, authorizer_len, true);
1428 }
1429
prepare_auth_signature(struct ceph_connection * con)1430 static int prepare_auth_signature(struct ceph_connection *con)
1431 {
1432 void *buf;
1433
1434 buf = alloc_conn_buf(con, head_onwire_len(SHA256_DIGEST_SIZE,
1435 con_secure(con)));
1436 if (!buf)
1437 return -ENOMEM;
1438
1439 con_hmac_sha256(con, con->v2.in_sign_kvecs, con->v2.in_sign_kvec_cnt,
1440 CTRL_BODY(buf));
1441
1442 return prepare_control(con, FRAME_TAG_AUTH_SIGNATURE, buf,
1443 SHA256_DIGEST_SIZE);
1444 }
1445
prepare_client_ident(struct ceph_connection * con)1446 static int prepare_client_ident(struct ceph_connection *con)
1447 {
1448 struct ceph_entity_addr *my_addr = &con->msgr->inst.addr;
1449 struct ceph_client *client = from_msgr(con->msgr);
1450 u64 global_id = ceph_client_gid(client);
1451 void *buf, *p;
1452 int ctrl_len;
1453
1454 WARN_ON(con->v2.server_cookie);
1455 WARN_ON(con->v2.connect_seq);
1456 WARN_ON(con->v2.peer_global_seq);
1457
1458 if (!con->v2.client_cookie) {
1459 do {
1460 get_random_bytes(&con->v2.client_cookie,
1461 sizeof(con->v2.client_cookie));
1462 } while (!con->v2.client_cookie);
1463 dout("%s con %p generated cookie 0x%llx\n", __func__, con,
1464 con->v2.client_cookie);
1465 } else {
1466 dout("%s con %p cookie already set 0x%llx\n", __func__, con,
1467 con->v2.client_cookie);
1468 }
1469
1470 dout("%s con %p my_addr %s/%u peer_addr %s/%u global_id %llu global_seq %llu features 0x%llx required_features 0x%llx cookie 0x%llx\n",
1471 __func__, con, ceph_pr_addr(my_addr), le32_to_cpu(my_addr->nonce),
1472 ceph_pr_addr(&con->peer_addr), le32_to_cpu(con->peer_addr.nonce),
1473 global_id, con->v2.global_seq, client->supported_features,
1474 client->required_features, con->v2.client_cookie);
1475
1476 ctrl_len = 1 + 4 + ceph_entity_addr_encoding_len(my_addr) +
1477 ceph_entity_addr_encoding_len(&con->peer_addr) + 6 * 8;
1478 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, con_secure(con)));
1479 if (!buf)
1480 return -ENOMEM;
1481
1482 p = CTRL_BODY(buf);
1483 ceph_encode_8(&p, 2); /* addrvec marker */
1484 ceph_encode_32(&p, 1); /* addr_cnt */
1485 ceph_encode_entity_addr(&p, my_addr);
1486 ceph_encode_entity_addr(&p, &con->peer_addr);
1487 ceph_encode_64(&p, global_id);
1488 ceph_encode_64(&p, con->v2.global_seq);
1489 ceph_encode_64(&p, client->supported_features);
1490 ceph_encode_64(&p, client->required_features);
1491 ceph_encode_64(&p, 0); /* flags */
1492 ceph_encode_64(&p, con->v2.client_cookie);
1493 WARN_ON(p != CTRL_BODY(buf) + ctrl_len);
1494
1495 return prepare_control(con, FRAME_TAG_CLIENT_IDENT, buf, ctrl_len);
1496 }
1497
prepare_session_reconnect(struct ceph_connection * con)1498 static int prepare_session_reconnect(struct ceph_connection *con)
1499 {
1500 struct ceph_entity_addr *my_addr = &con->msgr->inst.addr;
1501 void *buf, *p;
1502 int ctrl_len;
1503
1504 WARN_ON(!con->v2.client_cookie);
1505 WARN_ON(!con->v2.server_cookie);
1506 WARN_ON(!con->v2.connect_seq);
1507 WARN_ON(!con->v2.peer_global_seq);
1508
1509 dout("%s con %p my_addr %s/%u client_cookie 0x%llx server_cookie 0x%llx global_seq %llu connect_seq %llu in_seq %llu\n",
1510 __func__, con, ceph_pr_addr(my_addr), le32_to_cpu(my_addr->nonce),
1511 con->v2.client_cookie, con->v2.server_cookie, con->v2.global_seq,
1512 con->v2.connect_seq, con->in_seq);
1513
1514 ctrl_len = 1 + 4 + ceph_entity_addr_encoding_len(my_addr) + 5 * 8;
1515 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, con_secure(con)));
1516 if (!buf)
1517 return -ENOMEM;
1518
1519 p = CTRL_BODY(buf);
1520 ceph_encode_8(&p, 2); /* entity_addrvec_t marker */
1521 ceph_encode_32(&p, 1); /* my_addrs len */
1522 ceph_encode_entity_addr(&p, my_addr);
1523 ceph_encode_64(&p, con->v2.client_cookie);
1524 ceph_encode_64(&p, con->v2.server_cookie);
1525 ceph_encode_64(&p, con->v2.global_seq);
1526 ceph_encode_64(&p, con->v2.connect_seq);
1527 ceph_encode_64(&p, con->in_seq);
1528 WARN_ON(p != CTRL_BODY(buf) + ctrl_len);
1529
1530 return prepare_control(con, FRAME_TAG_SESSION_RECONNECT, buf, ctrl_len);
1531 }
1532
prepare_keepalive2(struct ceph_connection * con)1533 static int prepare_keepalive2(struct ceph_connection *con)
1534 {
1535 struct ceph_timespec *ts = CTRL_BODY(con->v2.out_buf);
1536 struct timespec64 now;
1537
1538 ktime_get_real_ts64(&now);
1539 dout("%s con %p timestamp %ptSp\n", __func__, con, &now);
1540
1541 ceph_encode_timespec64(ts, &now);
1542
1543 reset_out_kvecs(con);
1544 return prepare_control(con, FRAME_TAG_KEEPALIVE2, con->v2.out_buf,
1545 sizeof(struct ceph_timespec));
1546 }
1547
prepare_ack(struct ceph_connection * con)1548 static int prepare_ack(struct ceph_connection *con)
1549 {
1550 void *p;
1551
1552 dout("%s con %p in_seq_acked %llu -> %llu\n", __func__, con,
1553 con->in_seq_acked, con->in_seq);
1554 con->in_seq_acked = con->in_seq;
1555
1556 p = CTRL_BODY(con->v2.out_buf);
1557 ceph_encode_64(&p, con->in_seq_acked);
1558
1559 reset_out_kvecs(con);
1560 return prepare_control(con, FRAME_TAG_ACK, con->v2.out_buf, 8);
1561 }
1562
prepare_epilogue_plain(struct ceph_connection * con,struct ceph_msg * msg,bool aborted)1563 static void prepare_epilogue_plain(struct ceph_connection *con,
1564 struct ceph_msg *msg, bool aborted)
1565 {
1566 dout("%s con %p msg %p aborted %d crcs %u %u %u\n", __func__, con,
1567 msg, aborted, con->v2.out_epil.front_crc,
1568 con->v2.out_epil.middle_crc, con->v2.out_epil.data_crc);
1569
1570 encode_epilogue_plain(con, aborted);
1571 add_out_kvec(con, &con->v2.out_epil, CEPH_EPILOGUE_PLAIN_LEN);
1572 }
1573
1574 /*
1575 * For "used" empty segments, crc is -1. For unused (trailing)
1576 * segments, crc is 0.
1577 */
prepare_message_plain(struct ceph_connection * con,struct ceph_msg * msg)1578 static void prepare_message_plain(struct ceph_connection *con,
1579 struct ceph_msg *msg)
1580 {
1581 prepare_head_plain(con, con->v2.out_buf,
1582 sizeof(struct ceph_msg_header2), NULL, 0, false);
1583
1584 if (!front_len(msg) && !middle_len(msg)) {
1585 if (!data_len(msg)) {
1586 /*
1587 * Empty message: once the head is written,
1588 * we are done -- there is no epilogue.
1589 */
1590 con->v2.out_state = OUT_S_FINISH_MESSAGE;
1591 return;
1592 }
1593
1594 con->v2.out_epil.front_crc = -1;
1595 con->v2.out_epil.middle_crc = -1;
1596 con->v2.out_state = OUT_S_QUEUE_DATA;
1597 return;
1598 }
1599
1600 if (front_len(msg)) {
1601 con->v2.out_epil.front_crc = crc32c(-1, msg->front.iov_base,
1602 front_len(msg));
1603 add_out_kvec(con, msg->front.iov_base, front_len(msg));
1604 } else {
1605 /* middle (at least) is there, checked above */
1606 con->v2.out_epil.front_crc = -1;
1607 }
1608
1609 if (middle_len(msg)) {
1610 con->v2.out_epil.middle_crc =
1611 crc32c(-1, msg->middle->vec.iov_base, middle_len(msg));
1612 add_out_kvec(con, msg->middle->vec.iov_base, middle_len(msg));
1613 } else {
1614 con->v2.out_epil.middle_crc = data_len(msg) ? -1 : 0;
1615 }
1616
1617 if (data_len(msg)) {
1618 con->v2.out_state = OUT_S_QUEUE_DATA;
1619 } else {
1620 con->v2.out_epil.data_crc = 0;
1621 prepare_epilogue_plain(con, msg, false);
1622 con->v2.out_state = OUT_S_FINISH_MESSAGE;
1623 }
1624 }
1625
1626 /*
1627 * Unfortunately the kernel crypto API doesn't support streaming
1628 * (piecewise) operation for AEAD algorithms, so we can't get away
1629 * with a fixed size buffer and a couple sgs. Instead, we have to
1630 * allocate pages for the entire tail of the message (currently up
1631 * to ~32M) and two sgs arrays (up to ~256K each)...
1632 */
prepare_message_secure(struct ceph_connection * con,struct ceph_msg * msg)1633 static int prepare_message_secure(struct ceph_connection *con,
1634 struct ceph_msg *msg)
1635 {
1636 void *zerop = page_address(ceph_zero_page);
1637 struct sg_table enc_sgt = {};
1638 struct sg_table sgt = {};
1639 struct page **enc_pages;
1640 int enc_page_cnt;
1641 int tail_len;
1642 int ret;
1643
1644 ret = prepare_head_secure_small(con, con->v2.out_buf,
1645 sizeof(struct ceph_msg_header2));
1646 if (ret)
1647 return ret;
1648
1649 tail_len = tail_onwire_len(msg, true);
1650 if (!tail_len) {
1651 /*
1652 * Empty message: once the head is written,
1653 * we are done -- there is no epilogue.
1654 */
1655 con->v2.out_state = OUT_S_FINISH_MESSAGE;
1656 return 0;
1657 }
1658
1659 encode_epilogue_secure(con, false);
1660 ret = setup_message_sgs(&sgt, msg, zerop, zerop, zerop,
1661 &con->v2.out_epil, NULL, 0, false);
1662 if (ret)
1663 goto out;
1664
1665 enc_page_cnt = calc_pages_for(0, tail_len);
1666 enc_pages = ceph_alloc_page_vector(enc_page_cnt, GFP_NOIO);
1667 if (IS_ERR(enc_pages)) {
1668 ret = PTR_ERR(enc_pages);
1669 goto out;
1670 }
1671
1672 WARN_ON(con->v2.out_enc_pages || con->v2.out_enc_page_cnt);
1673 con->v2.out_enc_pages = enc_pages;
1674 con->v2.out_enc_page_cnt = enc_page_cnt;
1675 con->v2.out_enc_resid = tail_len;
1676 con->v2.out_enc_i = 0;
1677
1678 ret = sg_alloc_table_from_pages(&enc_sgt, enc_pages, enc_page_cnt,
1679 0, tail_len, GFP_NOIO);
1680 if (ret)
1681 goto out;
1682
1683 ret = gcm_crypt(con, true, sgt.sgl, enc_sgt.sgl,
1684 tail_len - CEPH_GCM_TAG_LEN);
1685 if (ret)
1686 goto out;
1687
1688 dout("%s con %p msg %p sg_cnt %d enc_page_cnt %d\n", __func__, con,
1689 msg, sgt.orig_nents, enc_page_cnt);
1690 con->v2.out_state = OUT_S_QUEUE_ENC_PAGE;
1691
1692 out:
1693 sg_free_table(&sgt);
1694 sg_free_table(&enc_sgt);
1695 return ret;
1696 }
1697
prepare_message(struct ceph_connection * con,struct ceph_msg * msg)1698 static int prepare_message(struct ceph_connection *con, struct ceph_msg *msg)
1699 {
1700 int lens[] = {
1701 sizeof(struct ceph_msg_header2),
1702 front_len(msg),
1703 middle_len(msg),
1704 data_len(msg)
1705 };
1706 struct ceph_frame_desc desc;
1707 int ret;
1708
1709 dout("%s con %p msg %p logical %d+%d+%d+%d\n", __func__, con,
1710 msg, lens[0], lens[1], lens[2], lens[3]);
1711
1712 if (con->in_seq > con->in_seq_acked) {
1713 dout("%s con %p in_seq_acked %llu -> %llu\n", __func__, con,
1714 con->in_seq_acked, con->in_seq);
1715 con->in_seq_acked = con->in_seq;
1716 }
1717
1718 reset_out_kvecs(con);
1719 init_frame_desc(&desc, FRAME_TAG_MESSAGE, lens, 4);
1720 encode_preamble(&desc, con->v2.out_buf);
1721 fill_header2(CTRL_BODY(con->v2.out_buf), &msg->hdr,
1722 con->in_seq_acked);
1723
1724 if (con_secure(con)) {
1725 ret = prepare_message_secure(con, msg);
1726 if (ret)
1727 return ret;
1728 } else {
1729 prepare_message_plain(con, msg);
1730 }
1731
1732 ceph_con_flag_set(con, CEPH_CON_F_WRITE_PENDING);
1733 return 0;
1734 }
1735
prepare_read_banner_prefix(struct ceph_connection * con)1736 static int prepare_read_banner_prefix(struct ceph_connection *con)
1737 {
1738 void *buf;
1739
1740 buf = alloc_conn_buf(con, CEPH_BANNER_V2_PREFIX_LEN);
1741 if (!buf)
1742 return -ENOMEM;
1743
1744 reset_in_kvecs(con);
1745 add_in_kvec(con, buf, CEPH_BANNER_V2_PREFIX_LEN);
1746 add_in_sign_kvec(con, buf, CEPH_BANNER_V2_PREFIX_LEN);
1747 con->state = CEPH_CON_S_V2_BANNER_PREFIX;
1748 return 0;
1749 }
1750
prepare_read_banner_payload(struct ceph_connection * con,int payload_len)1751 static int prepare_read_banner_payload(struct ceph_connection *con,
1752 int payload_len)
1753 {
1754 void *buf;
1755
1756 buf = alloc_conn_buf(con, payload_len);
1757 if (!buf)
1758 return -ENOMEM;
1759
1760 reset_in_kvecs(con);
1761 add_in_kvec(con, buf, payload_len);
1762 add_in_sign_kvec(con, buf, payload_len);
1763 con->state = CEPH_CON_S_V2_BANNER_PAYLOAD;
1764 return 0;
1765 }
1766
prepare_read_preamble(struct ceph_connection * con)1767 static void prepare_read_preamble(struct ceph_connection *con)
1768 {
1769 reset_in_kvecs(con);
1770 add_in_kvec(con, con->v2.in_buf,
1771 con_secure(con) ? CEPH_PREAMBLE_SECURE_LEN :
1772 CEPH_PREAMBLE_PLAIN_LEN);
1773 con->v2.in_state = IN_S_HANDLE_PREAMBLE;
1774 }
1775
prepare_read_control(struct ceph_connection * con)1776 static int prepare_read_control(struct ceph_connection *con)
1777 {
1778 int ctrl_len = con->v2.in_desc.fd_lens[0];
1779 int head_len;
1780 void *buf;
1781
1782 reset_in_kvecs(con);
1783 if (con->state == CEPH_CON_S_V2_HELLO ||
1784 con->state == CEPH_CON_S_V2_AUTH) {
1785 head_len = head_onwire_len(ctrl_len, false);
1786 buf = alloc_conn_buf(con, head_len);
1787 if (!buf)
1788 return -ENOMEM;
1789
1790 /* preserve preamble */
1791 memcpy(buf, con->v2.in_buf, CEPH_PREAMBLE_LEN);
1792
1793 add_in_kvec(con, CTRL_BODY(buf), ctrl_len);
1794 add_in_kvec(con, CTRL_BODY(buf) + ctrl_len, CEPH_CRC_LEN);
1795 add_in_sign_kvec(con, buf, head_len);
1796 } else {
1797 if (ctrl_len > CEPH_PREAMBLE_INLINE_LEN) {
1798 buf = alloc_conn_buf(con, ctrl_len);
1799 if (!buf)
1800 return -ENOMEM;
1801
1802 add_in_kvec(con, buf, ctrl_len);
1803 } else {
1804 add_in_kvec(con, CTRL_BODY(con->v2.in_buf), ctrl_len);
1805 }
1806 add_in_kvec(con, con->v2.in_buf, CEPH_CRC_LEN);
1807 }
1808 con->v2.in_state = IN_S_HANDLE_CONTROL;
1809 return 0;
1810 }
1811
prepare_read_control_remainder(struct ceph_connection * con)1812 static int prepare_read_control_remainder(struct ceph_connection *con)
1813 {
1814 int ctrl_len = con->v2.in_desc.fd_lens[0];
1815 int rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN;
1816 void *buf;
1817
1818 buf = alloc_conn_buf(con, ctrl_len);
1819 if (!buf)
1820 return -ENOMEM;
1821
1822 memcpy(buf, CTRL_BODY(con->v2.in_buf), CEPH_PREAMBLE_INLINE_LEN);
1823
1824 reset_in_kvecs(con);
1825 add_in_kvec(con, buf + CEPH_PREAMBLE_INLINE_LEN, rem_len);
1826 add_in_kvec(con, con->v2.in_buf,
1827 padding_len(rem_len) + CEPH_GCM_TAG_LEN);
1828 con->v2.in_state = IN_S_HANDLE_CONTROL_REMAINDER;
1829 return 0;
1830 }
1831
prepare_read_data(struct ceph_connection * con)1832 static int prepare_read_data(struct ceph_connection *con)
1833 {
1834 struct bio_vec bv;
1835
1836 con->in_data_crc = -1;
1837 ceph_msg_data_cursor_init(&con->v2.in_cursor, con->in_msg,
1838 data_len(con->in_msg));
1839
1840 get_bvec_at(&con->v2.in_cursor, &bv);
1841 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) {
1842 if (unlikely(!con->bounce_page)) {
1843 con->bounce_page = alloc_page(GFP_NOIO);
1844 if (!con->bounce_page) {
1845 pr_err("failed to allocate bounce page\n");
1846 return -ENOMEM;
1847 }
1848 }
1849
1850 bv.bv_page = con->bounce_page;
1851 bv.bv_offset = 0;
1852 }
1853 set_in_bvec(con, &bv);
1854 con->v2.in_state = IN_S_PREPARE_READ_DATA_CONT;
1855 return 0;
1856 }
1857
prepare_read_data_cont(struct ceph_connection * con)1858 static void prepare_read_data_cont(struct ceph_connection *con)
1859 {
1860 struct bio_vec bv;
1861
1862 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) {
1863 con->in_data_crc = crc32c(con->in_data_crc,
1864 page_address(con->bounce_page),
1865 con->v2.in_bvec.bv_len);
1866
1867 get_bvec_at(&con->v2.in_cursor, &bv);
1868 memcpy_to_page(bv.bv_page, bv.bv_offset,
1869 page_address(con->bounce_page),
1870 con->v2.in_bvec.bv_len);
1871 } else {
1872 con->in_data_crc = ceph_crc32c_page(con->in_data_crc,
1873 con->v2.in_bvec.bv_page,
1874 con->v2.in_bvec.bv_offset,
1875 con->v2.in_bvec.bv_len);
1876 }
1877
1878 ceph_msg_data_advance(&con->v2.in_cursor, con->v2.in_bvec.bv_len);
1879 if (con->v2.in_cursor.total_resid) {
1880 get_bvec_at(&con->v2.in_cursor, &bv);
1881 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) {
1882 bv.bv_page = con->bounce_page;
1883 bv.bv_offset = 0;
1884 }
1885 set_in_bvec(con, &bv);
1886 WARN_ON(con->v2.in_state != IN_S_PREPARE_READ_DATA_CONT);
1887 return;
1888 }
1889
1890 /*
1891 * We've read all data. Prepare to read epilogue.
1892 */
1893 reset_in_kvecs(con);
1894 add_in_kvec(con, con->v2.in_buf, CEPH_EPILOGUE_PLAIN_LEN);
1895 con->v2.in_state = IN_S_HANDLE_EPILOGUE;
1896 }
1897
prepare_sparse_read_cont(struct ceph_connection * con)1898 static int prepare_sparse_read_cont(struct ceph_connection *con)
1899 {
1900 int ret;
1901 struct bio_vec bv;
1902 char *buf = NULL;
1903 struct ceph_msg_data_cursor *cursor = &con->v2.in_cursor;
1904
1905 WARN_ON(con->v2.in_state != IN_S_PREPARE_SPARSE_DATA_CONT);
1906
1907 if (iov_iter_is_bvec(&con->v2.in_iter)) {
1908 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) {
1909 con->in_data_crc = crc32c(con->in_data_crc,
1910 page_address(con->bounce_page),
1911 con->v2.in_bvec.bv_len);
1912 get_bvec_at(cursor, &bv);
1913 memcpy_to_page(bv.bv_page, bv.bv_offset,
1914 page_address(con->bounce_page),
1915 con->v2.in_bvec.bv_len);
1916 } else {
1917 con->in_data_crc = ceph_crc32c_page(con->in_data_crc,
1918 con->v2.in_bvec.bv_page,
1919 con->v2.in_bvec.bv_offset,
1920 con->v2.in_bvec.bv_len);
1921 }
1922
1923 ceph_msg_data_advance(cursor, con->v2.in_bvec.bv_len);
1924 cursor->sr_resid -= con->v2.in_bvec.bv_len;
1925 dout("%s: advance by 0x%x sr_resid 0x%x\n", __func__,
1926 con->v2.in_bvec.bv_len, cursor->sr_resid);
1927 WARN_ON_ONCE(cursor->sr_resid > cursor->total_resid);
1928 if (cursor->sr_resid) {
1929 get_bvec_at(cursor, &bv);
1930 if (bv.bv_len > cursor->sr_resid)
1931 bv.bv_len = cursor->sr_resid;
1932 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) {
1933 bv.bv_page = con->bounce_page;
1934 bv.bv_offset = 0;
1935 }
1936 set_in_bvec(con, &bv);
1937 con->v2.data_len_remain -= bv.bv_len;
1938 return 0;
1939 }
1940 } else if (iov_iter_is_kvec(&con->v2.in_iter)) {
1941 /* On first call, we have no kvec so don't compute crc */
1942 if (con->v2.in_kvec_cnt) {
1943 WARN_ON_ONCE(con->v2.in_kvec_cnt > 1);
1944 con->in_data_crc = crc32c(con->in_data_crc,
1945 con->v2.in_kvecs[0].iov_base,
1946 con->v2.in_kvecs[0].iov_len);
1947 }
1948 } else {
1949 return -EIO;
1950 }
1951
1952 /* get next extent */
1953 ret = con->ops->sparse_read(con, cursor, &buf);
1954 if (ret <= 0) {
1955 if (ret < 0)
1956 return ret;
1957
1958 reset_in_kvecs(con);
1959 add_in_kvec(con, con->v2.in_buf, CEPH_EPILOGUE_PLAIN_LEN);
1960 con->v2.in_state = IN_S_HANDLE_EPILOGUE;
1961 return 0;
1962 }
1963
1964 if (buf) {
1965 /* receive into buffer */
1966 reset_in_kvecs(con);
1967 add_in_kvec(con, buf, ret);
1968 con->v2.data_len_remain -= ret;
1969 return 0;
1970 }
1971
1972 if (ret > cursor->total_resid) {
1973 pr_warn("%s: ret 0x%x total_resid 0x%zx resid 0x%zx\n",
1974 __func__, ret, cursor->total_resid, cursor->resid);
1975 return -EIO;
1976 }
1977 get_bvec_at(cursor, &bv);
1978 if (bv.bv_len > cursor->sr_resid)
1979 bv.bv_len = cursor->sr_resid;
1980 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) {
1981 if (unlikely(!con->bounce_page)) {
1982 con->bounce_page = alloc_page(GFP_NOIO);
1983 if (!con->bounce_page) {
1984 pr_err("failed to allocate bounce page\n");
1985 return -ENOMEM;
1986 }
1987 }
1988
1989 bv.bv_page = con->bounce_page;
1990 bv.bv_offset = 0;
1991 }
1992 set_in_bvec(con, &bv);
1993 con->v2.data_len_remain -= ret;
1994 return ret;
1995 }
1996
prepare_sparse_read_data(struct ceph_connection * con)1997 static int prepare_sparse_read_data(struct ceph_connection *con)
1998 {
1999 struct ceph_msg *msg = con->in_msg;
2000
2001 dout("%s: starting sparse read\n", __func__);
2002
2003 if (WARN_ON_ONCE(!con->ops->sparse_read))
2004 return -EOPNOTSUPP;
2005
2006 if (!con_secure(con))
2007 con->in_data_crc = -1;
2008
2009 ceph_msg_data_cursor_init(&con->v2.in_cursor, msg,
2010 msg->sparse_read_total);
2011
2012 reset_in_kvecs(con);
2013 con->v2.in_state = IN_S_PREPARE_SPARSE_DATA_CONT;
2014 con->v2.data_len_remain = data_len(msg);
2015 return prepare_sparse_read_cont(con);
2016 }
2017
prepare_read_tail_plain(struct ceph_connection * con)2018 static int prepare_read_tail_plain(struct ceph_connection *con)
2019 {
2020 struct ceph_msg *msg = con->in_msg;
2021
2022 if (!front_len(msg) && !middle_len(msg)) {
2023 WARN_ON(!data_len(msg));
2024 return prepare_read_data(con);
2025 }
2026
2027 reset_in_kvecs(con);
2028 if (front_len(msg)) {
2029 add_in_kvec(con, msg->front.iov_base, front_len(msg));
2030 WARN_ON(msg->front.iov_len != front_len(msg));
2031 }
2032 if (middle_len(msg)) {
2033 add_in_kvec(con, msg->middle->vec.iov_base, middle_len(msg));
2034 WARN_ON(msg->middle->vec.iov_len != middle_len(msg));
2035 }
2036
2037 if (data_len(msg)) {
2038 if (msg->sparse_read_total)
2039 con->v2.in_state = IN_S_PREPARE_SPARSE_DATA;
2040 else
2041 con->v2.in_state = IN_S_PREPARE_READ_DATA;
2042 } else {
2043 add_in_kvec(con, con->v2.in_buf, CEPH_EPILOGUE_PLAIN_LEN);
2044 con->v2.in_state = IN_S_HANDLE_EPILOGUE;
2045 }
2046 return 0;
2047 }
2048
prepare_read_enc_page(struct ceph_connection * con)2049 static void prepare_read_enc_page(struct ceph_connection *con)
2050 {
2051 struct bio_vec bv;
2052
2053 dout("%s con %p i %d resid %d\n", __func__, con, con->v2.in_enc_i,
2054 con->v2.in_enc_resid);
2055 WARN_ON(!con->v2.in_enc_resid);
2056
2057 bvec_set_page(&bv, con->v2.in_enc_pages[con->v2.in_enc_i],
2058 min(con->v2.in_enc_resid, (int)PAGE_SIZE), 0);
2059
2060 set_in_bvec(con, &bv);
2061 con->v2.in_enc_i++;
2062 con->v2.in_enc_resid -= bv.bv_len;
2063
2064 if (con->v2.in_enc_resid) {
2065 con->v2.in_state = IN_S_PREPARE_READ_ENC_PAGE;
2066 return;
2067 }
2068
2069 /*
2070 * We are set to read the last piece of ciphertext (ending
2071 * with epilogue) + auth tag.
2072 */
2073 WARN_ON(con->v2.in_enc_i != con->v2.in_enc_page_cnt);
2074 con->v2.in_state = IN_S_HANDLE_EPILOGUE;
2075 }
2076
prepare_read_tail_secure(struct ceph_connection * con)2077 static int prepare_read_tail_secure(struct ceph_connection *con)
2078 {
2079 struct page **enc_pages;
2080 int enc_page_cnt;
2081 int tail_len;
2082
2083 tail_len = tail_onwire_len(con->in_msg, true);
2084 WARN_ON(!tail_len);
2085
2086 enc_page_cnt = calc_pages_for(0, tail_len);
2087 enc_pages = ceph_alloc_page_vector(enc_page_cnt, GFP_NOIO);
2088 if (IS_ERR(enc_pages))
2089 return PTR_ERR(enc_pages);
2090
2091 WARN_ON(con->v2.in_enc_pages || con->v2.in_enc_page_cnt);
2092 con->v2.in_enc_pages = enc_pages;
2093 con->v2.in_enc_page_cnt = enc_page_cnt;
2094 con->v2.in_enc_resid = tail_len;
2095 con->v2.in_enc_i = 0;
2096
2097 prepare_read_enc_page(con);
2098 return 0;
2099 }
2100
__finish_skip(struct ceph_connection * con)2101 static void __finish_skip(struct ceph_connection *con)
2102 {
2103 con->in_seq++;
2104 prepare_read_preamble(con);
2105 }
2106
prepare_skip_message(struct ceph_connection * con)2107 static void prepare_skip_message(struct ceph_connection *con)
2108 {
2109 struct ceph_frame_desc *desc = &con->v2.in_desc;
2110 int tail_len;
2111
2112 dout("%s con %p %d+%d+%d\n", __func__, con, desc->fd_lens[1],
2113 desc->fd_lens[2], desc->fd_lens[3]);
2114
2115 tail_len = __tail_onwire_len(desc->fd_lens[1], desc->fd_lens[2],
2116 desc->fd_lens[3], con_secure(con));
2117 if (!tail_len) {
2118 __finish_skip(con);
2119 } else {
2120 set_in_skip(con, tail_len);
2121 con->v2.in_state = IN_S_FINISH_SKIP;
2122 }
2123 }
2124
process_banner_prefix(struct ceph_connection * con)2125 static int process_banner_prefix(struct ceph_connection *con)
2126 {
2127 int payload_len;
2128 void *p;
2129
2130 WARN_ON(con->v2.in_kvecs[0].iov_len != CEPH_BANNER_V2_PREFIX_LEN);
2131
2132 p = con->v2.in_kvecs[0].iov_base;
2133 if (memcmp(p, CEPH_BANNER_V2, CEPH_BANNER_V2_LEN)) {
2134 if (!memcmp(p, CEPH_BANNER, CEPH_BANNER_LEN))
2135 con->error_msg = "server is speaking msgr1 protocol";
2136 else
2137 con->error_msg = "protocol error, bad banner";
2138 return -EINVAL;
2139 }
2140
2141 p += CEPH_BANNER_V2_LEN;
2142 payload_len = ceph_decode_16(&p);
2143 dout("%s con %p payload_len %d\n", __func__, con, payload_len);
2144
2145 if (payload_len < sizeof(u64) + sizeof(u64)) {
2146 con->error_msg = "protocol error, bad banner payload len";
2147 return -EINVAL;
2148 }
2149
2150 return prepare_read_banner_payload(con, payload_len);
2151 }
2152
process_banner_payload(struct ceph_connection * con)2153 static int process_banner_payload(struct ceph_connection *con)
2154 {
2155 void *end = con->v2.in_kvecs[0].iov_base + con->v2.in_kvecs[0].iov_len;
2156 u64 feat = CEPH_MSGR2_SUPPORTED_FEATURES;
2157 u64 req_feat = CEPH_MSGR2_REQUIRED_FEATURES;
2158 u64 server_feat, server_req_feat;
2159 void *p;
2160 int ret;
2161
2162 p = con->v2.in_kvecs[0].iov_base;
2163 ceph_decode_64_safe(&p, end, server_feat, bad);
2164 ceph_decode_64_safe(&p, end, server_req_feat, bad);
2165
2166 dout("%s con %p server_feat 0x%llx server_req_feat 0x%llx\n",
2167 __func__, con, server_feat, server_req_feat);
2168
2169 if (req_feat & ~server_feat) {
2170 pr_err("msgr2 feature set mismatch: my required > server's supported 0x%llx, need 0x%llx\n",
2171 server_feat, req_feat & ~server_feat);
2172 con->error_msg = "missing required protocol features";
2173 return -EINVAL;
2174 }
2175 if (server_req_feat & ~feat) {
2176 pr_err("msgr2 feature set mismatch: server's required > my supported 0x%llx, missing 0x%llx\n",
2177 feat, server_req_feat & ~feat);
2178 con->error_msg = "missing required protocol features";
2179 return -EINVAL;
2180 }
2181
2182 /* no reset_out_kvecs() as our banner may still be pending */
2183 ret = prepare_hello(con);
2184 if (ret) {
2185 pr_err("prepare_hello failed: %d\n", ret);
2186 return ret;
2187 }
2188
2189 con->state = CEPH_CON_S_V2_HELLO;
2190 prepare_read_preamble(con);
2191 return 0;
2192
2193 bad:
2194 pr_err("failed to decode banner payload\n");
2195 return -EINVAL;
2196 }
2197
process_hello(struct ceph_connection * con,void * p,void * end)2198 static int process_hello(struct ceph_connection *con, void *p, void *end)
2199 {
2200 struct ceph_entity_addr *my_addr = &con->msgr->inst.addr;
2201 struct ceph_entity_addr addr_for_me;
2202 u8 entity_type;
2203 int ret;
2204
2205 if (con->state != CEPH_CON_S_V2_HELLO) {
2206 con->error_msg = "protocol error, unexpected hello";
2207 return -EINVAL;
2208 }
2209
2210 ceph_decode_8_safe(&p, end, entity_type, bad);
2211 ret = ceph_decode_entity_addr(&p, end, &addr_for_me);
2212 if (ret) {
2213 pr_err("failed to decode addr_for_me: %d\n", ret);
2214 return ret;
2215 }
2216
2217 dout("%s con %p entity_type %d addr_for_me %s\n", __func__, con,
2218 entity_type, ceph_pr_addr(&addr_for_me));
2219
2220 if (entity_type != con->peer_name.type) {
2221 pr_err("bad peer type, want %d, got %d\n",
2222 con->peer_name.type, entity_type);
2223 con->error_msg = "wrong peer at address";
2224 return -EINVAL;
2225 }
2226
2227 /*
2228 * Set our address to the address our first peer (i.e. monitor)
2229 * sees that we are connecting from. If we are behind some sort
2230 * of NAT and want to be identified by some private (not NATed)
2231 * address, ip option should be used.
2232 */
2233 if (ceph_addr_is_blank(my_addr)) {
2234 memcpy(&my_addr->in_addr, &addr_for_me.in_addr,
2235 sizeof(my_addr->in_addr));
2236 ceph_addr_set_port(my_addr, 0);
2237 dout("%s con %p set my addr %s, as seen by peer %s\n",
2238 __func__, con, ceph_pr_addr(my_addr),
2239 ceph_pr_addr(&con->peer_addr));
2240 } else {
2241 dout("%s con %p my addr already set %s\n",
2242 __func__, con, ceph_pr_addr(my_addr));
2243 }
2244
2245 WARN_ON(ceph_addr_is_blank(my_addr) || ceph_addr_port(my_addr));
2246 WARN_ON(my_addr->type != CEPH_ENTITY_ADDR_TYPE_ANY);
2247 WARN_ON(!my_addr->nonce);
2248
2249 /* no reset_out_kvecs() as our hello may still be pending */
2250 ret = prepare_auth_request(con);
2251 if (ret) {
2252 if (ret != -EAGAIN)
2253 pr_err("prepare_auth_request failed: %d\n", ret);
2254 return ret;
2255 }
2256
2257 con->state = CEPH_CON_S_V2_AUTH;
2258 return 0;
2259
2260 bad:
2261 pr_err("failed to decode hello\n");
2262 return -EINVAL;
2263 }
2264
process_auth_bad_method(struct ceph_connection * con,void * p,void * end)2265 static int process_auth_bad_method(struct ceph_connection *con,
2266 void *p, void *end)
2267 {
2268 int allowed_protos[8], allowed_modes[8];
2269 int allowed_proto_cnt, allowed_mode_cnt;
2270 int used_proto, result;
2271 int ret;
2272 int i;
2273
2274 if (con->state != CEPH_CON_S_V2_AUTH) {
2275 con->error_msg = "protocol error, unexpected auth_bad_method";
2276 return -EINVAL;
2277 }
2278
2279 ceph_decode_32_safe(&p, end, used_proto, bad);
2280 ceph_decode_32_safe(&p, end, result, bad);
2281 dout("%s con %p used_proto %d result %d\n", __func__, con, used_proto,
2282 result);
2283
2284 ceph_decode_32_safe(&p, end, allowed_proto_cnt, bad);
2285 if (allowed_proto_cnt > ARRAY_SIZE(allowed_protos)) {
2286 pr_err("allowed_protos too big %d\n", allowed_proto_cnt);
2287 return -EINVAL;
2288 }
2289 for (i = 0; i < allowed_proto_cnt; i++) {
2290 ceph_decode_32_safe(&p, end, allowed_protos[i], bad);
2291 dout("%s con %p allowed_protos[%d] %d\n", __func__, con,
2292 i, allowed_protos[i]);
2293 }
2294
2295 ceph_decode_32_safe(&p, end, allowed_mode_cnt, bad);
2296 if (allowed_mode_cnt > ARRAY_SIZE(allowed_modes)) {
2297 pr_err("allowed_modes too big %d\n", allowed_mode_cnt);
2298 return -EINVAL;
2299 }
2300 for (i = 0; i < allowed_mode_cnt; i++) {
2301 ceph_decode_32_safe(&p, end, allowed_modes[i], bad);
2302 dout("%s con %p allowed_modes[%d] %d\n", __func__, con,
2303 i, allowed_modes[i]);
2304 }
2305
2306 mutex_unlock(&con->mutex);
2307 ret = con->ops->handle_auth_bad_method(con, used_proto, result,
2308 allowed_protos,
2309 allowed_proto_cnt,
2310 allowed_modes,
2311 allowed_mode_cnt);
2312 mutex_lock(&con->mutex);
2313 if (con->state != CEPH_CON_S_V2_AUTH) {
2314 dout("%s con %p state changed to %d\n", __func__, con,
2315 con->state);
2316 return -EAGAIN;
2317 }
2318
2319 dout("%s con %p handle_auth_bad_method ret %d\n", __func__, con, ret);
2320 return ret;
2321
2322 bad:
2323 pr_err("failed to decode auth_bad_method\n");
2324 return -EINVAL;
2325 }
2326
process_auth_reply_more(struct ceph_connection * con,void * p,void * end)2327 static int process_auth_reply_more(struct ceph_connection *con,
2328 void *p, void *end)
2329 {
2330 int payload_len;
2331 int ret;
2332
2333 if (con->state != CEPH_CON_S_V2_AUTH) {
2334 con->error_msg = "protocol error, unexpected auth_reply_more";
2335 return -EINVAL;
2336 }
2337
2338 ceph_decode_32_safe(&p, end, payload_len, bad);
2339 ceph_decode_need(&p, end, payload_len, bad);
2340
2341 dout("%s con %p payload_len %d\n", __func__, con, payload_len);
2342
2343 reset_out_kvecs(con);
2344 ret = prepare_auth_request_more(con, p, payload_len);
2345 if (ret) {
2346 if (ret != -EAGAIN)
2347 pr_err("prepare_auth_request_more failed: %d\n", ret);
2348 return ret;
2349 }
2350
2351 return 0;
2352
2353 bad:
2354 pr_err("failed to decode auth_reply_more\n");
2355 return -EINVAL;
2356 }
2357
2358 /*
2359 * Align con_secret to avoid GFP_ATOMIC allocation inside
2360 * crypto_aead_setkey() called from setup_crypto(). __aligned(16)
2361 * isn't guaranteed to work for stack objects, so do it by hand.
2362 */
process_auth_done(struct ceph_connection * con,void * p,void * end)2363 static int process_auth_done(struct ceph_connection *con, void *p, void *end)
2364 {
2365 u8 session_key[CEPH_MAX_KEY_LEN];
2366 u8 con_secret_buf[CEPH_MAX_CON_SECRET_LEN + 16];
2367 u8 *con_secret = PTR_ALIGN(&con_secret_buf[0], 16);
2368 int session_key_len, con_secret_len;
2369 int payload_len;
2370 u64 global_id;
2371 int ret;
2372
2373 if (con->state != CEPH_CON_S_V2_AUTH) {
2374 con->error_msg = "protocol error, unexpected auth_done";
2375 return -EINVAL;
2376 }
2377
2378 ceph_decode_64_safe(&p, end, global_id, bad);
2379 ceph_decode_32_safe(&p, end, con->v2.con_mode, bad);
2380
2381 ceph_decode_32_safe(&p, end, payload_len, bad);
2382 ceph_decode_need(&p, end, payload_len, bad);
2383
2384 dout("%s con %p global_id %llu con_mode %d payload_len %d\n",
2385 __func__, con, global_id, con->v2.con_mode, payload_len);
2386
2387 mutex_unlock(&con->mutex);
2388 session_key_len = 0;
2389 con_secret_len = 0;
2390 ret = con->ops->handle_auth_done(con, global_id, p, payload_len,
2391 session_key, &session_key_len,
2392 con_secret, &con_secret_len);
2393 mutex_lock(&con->mutex);
2394 if (con->state != CEPH_CON_S_V2_AUTH) {
2395 dout("%s con %p state changed to %d\n", __func__, con,
2396 con->state);
2397 ret = -EAGAIN;
2398 goto out;
2399 }
2400
2401 dout("%s con %p handle_auth_done ret %d\n", __func__, con, ret);
2402 if (ret)
2403 goto out;
2404
2405 ret = setup_crypto(con, session_key, session_key_len, con_secret,
2406 con_secret_len);
2407 if (ret)
2408 goto out;
2409
2410 reset_out_kvecs(con);
2411 ret = prepare_auth_signature(con);
2412 if (ret) {
2413 pr_err("prepare_auth_signature failed: %d\n", ret);
2414 goto out;
2415 }
2416
2417 con->state = CEPH_CON_S_V2_AUTH_SIGNATURE;
2418
2419 out:
2420 memzero_explicit(session_key, sizeof(session_key));
2421 memzero_explicit(con_secret_buf, sizeof(con_secret_buf));
2422 return ret;
2423
2424 bad:
2425 pr_err("failed to decode auth_done\n");
2426 return -EINVAL;
2427 }
2428
process_auth_signature(struct ceph_connection * con,void * p,void * end)2429 static int process_auth_signature(struct ceph_connection *con,
2430 void *p, void *end)
2431 {
2432 u8 hmac[SHA256_DIGEST_SIZE];
2433 int ret;
2434
2435 if (con->state != CEPH_CON_S_V2_AUTH_SIGNATURE) {
2436 con->error_msg = "protocol error, unexpected auth_signature";
2437 return -EINVAL;
2438 }
2439
2440 con_hmac_sha256(con, con->v2.out_sign_kvecs, con->v2.out_sign_kvec_cnt,
2441 hmac);
2442
2443 ceph_decode_need(&p, end, SHA256_DIGEST_SIZE, bad);
2444 if (crypto_memneq(p, hmac, SHA256_DIGEST_SIZE)) {
2445 con->error_msg = "integrity error, bad auth signature";
2446 return -EBADMSG;
2447 }
2448
2449 dout("%s con %p auth signature ok\n", __func__, con);
2450
2451 /* no reset_out_kvecs() as our auth_signature may still be pending */
2452 if (!con->v2.server_cookie) {
2453 ret = prepare_client_ident(con);
2454 if (ret) {
2455 pr_err("prepare_client_ident failed: %d\n", ret);
2456 return ret;
2457 }
2458
2459 con->state = CEPH_CON_S_V2_SESSION_CONNECT;
2460 } else {
2461 ret = prepare_session_reconnect(con);
2462 if (ret) {
2463 pr_err("prepare_session_reconnect failed: %d\n", ret);
2464 return ret;
2465 }
2466
2467 con->state = CEPH_CON_S_V2_SESSION_RECONNECT;
2468 }
2469
2470 return 0;
2471
2472 bad:
2473 pr_err("failed to decode auth_signature\n");
2474 return -EINVAL;
2475 }
2476
process_server_ident(struct ceph_connection * con,void * p,void * end)2477 static int process_server_ident(struct ceph_connection *con,
2478 void *p, void *end)
2479 {
2480 struct ceph_client *client = from_msgr(con->msgr);
2481 u64 features, required_features;
2482 struct ceph_entity_addr addr;
2483 u64 global_seq;
2484 u64 global_id;
2485 u64 cookie;
2486 u64 flags;
2487 int ret;
2488
2489 if (con->state != CEPH_CON_S_V2_SESSION_CONNECT) {
2490 con->error_msg = "protocol error, unexpected server_ident";
2491 return -EINVAL;
2492 }
2493
2494 ret = ceph_decode_entity_addrvec(&p, end, true, &addr);
2495 if (ret) {
2496 pr_err("failed to decode server addrs: %d\n", ret);
2497 return ret;
2498 }
2499
2500 ceph_decode_64_safe(&p, end, global_id, bad);
2501 ceph_decode_64_safe(&p, end, global_seq, bad);
2502 ceph_decode_64_safe(&p, end, features, bad);
2503 ceph_decode_64_safe(&p, end, required_features, bad);
2504 ceph_decode_64_safe(&p, end, flags, bad);
2505 ceph_decode_64_safe(&p, end, cookie, bad);
2506
2507 dout("%s con %p addr %s/%u global_id %llu global_seq %llu features 0x%llx required_features 0x%llx flags 0x%llx cookie 0x%llx\n",
2508 __func__, con, ceph_pr_addr(&addr), le32_to_cpu(addr.nonce),
2509 global_id, global_seq, features, required_features, flags, cookie);
2510
2511 /* is this who we intended to talk to? */
2512 if (memcmp(&addr, &con->peer_addr, sizeof(con->peer_addr))) {
2513 pr_err("bad peer addr/nonce, want %s/%u, got %s/%u\n",
2514 ceph_pr_addr(&con->peer_addr),
2515 le32_to_cpu(con->peer_addr.nonce),
2516 ceph_pr_addr(&addr), le32_to_cpu(addr.nonce));
2517 con->error_msg = "wrong peer at address";
2518 return -EINVAL;
2519 }
2520
2521 if (client->required_features & ~features) {
2522 pr_err("RADOS feature set mismatch: my required > server's supported 0x%llx, need 0x%llx\n",
2523 features, client->required_features & ~features);
2524 con->error_msg = "missing required protocol features";
2525 return -EINVAL;
2526 }
2527
2528 /*
2529 * Both name->type and name->num are set in ceph_con_open() but
2530 * name->num may be bogus in the initial monmap. name->type is
2531 * verified in handle_hello().
2532 */
2533 WARN_ON(!con->peer_name.type);
2534 con->peer_name.num = cpu_to_le64(global_id);
2535 con->v2.peer_global_seq = global_seq;
2536 con->peer_features = features;
2537 WARN_ON(required_features & ~client->supported_features);
2538 con->v2.server_cookie = cookie;
2539
2540 if (flags & CEPH_MSG_CONNECT_LOSSY) {
2541 ceph_con_flag_set(con, CEPH_CON_F_LOSSYTX);
2542 WARN_ON(con->v2.server_cookie);
2543 } else {
2544 WARN_ON(!con->v2.server_cookie);
2545 }
2546
2547 clear_in_sign_kvecs(con);
2548 clear_out_sign_kvecs(con);
2549 free_conn_bufs(con);
2550 con->delay = 0; /* reset backoff memory */
2551
2552 con->state = CEPH_CON_S_OPEN;
2553 con->v2.out_state = OUT_S_GET_NEXT;
2554 return 0;
2555
2556 bad:
2557 pr_err("failed to decode server_ident\n");
2558 return -EINVAL;
2559 }
2560
process_ident_missing_features(struct ceph_connection * con,void * p,void * end)2561 static int process_ident_missing_features(struct ceph_connection *con,
2562 void *p, void *end)
2563 {
2564 struct ceph_client *client = from_msgr(con->msgr);
2565 u64 missing_features;
2566
2567 if (con->state != CEPH_CON_S_V2_SESSION_CONNECT) {
2568 con->error_msg = "protocol error, unexpected ident_missing_features";
2569 return -EINVAL;
2570 }
2571
2572 ceph_decode_64_safe(&p, end, missing_features, bad);
2573 pr_err("RADOS feature set mismatch: server's required > my supported 0x%llx, missing 0x%llx\n",
2574 client->supported_features, missing_features);
2575 con->error_msg = "missing required protocol features";
2576 return -EINVAL;
2577
2578 bad:
2579 pr_err("failed to decode ident_missing_features\n");
2580 return -EINVAL;
2581 }
2582
process_session_reconnect_ok(struct ceph_connection * con,void * p,void * end)2583 static int process_session_reconnect_ok(struct ceph_connection *con,
2584 void *p, void *end)
2585 {
2586 u64 seq;
2587
2588 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) {
2589 con->error_msg = "protocol error, unexpected session_reconnect_ok";
2590 return -EINVAL;
2591 }
2592
2593 ceph_decode_64_safe(&p, end, seq, bad);
2594
2595 dout("%s con %p seq %llu\n", __func__, con, seq);
2596 ceph_con_discard_requeued(con, seq);
2597
2598 clear_in_sign_kvecs(con);
2599 clear_out_sign_kvecs(con);
2600 free_conn_bufs(con);
2601 con->delay = 0; /* reset backoff memory */
2602
2603 con->state = CEPH_CON_S_OPEN;
2604 con->v2.out_state = OUT_S_GET_NEXT;
2605 return 0;
2606
2607 bad:
2608 pr_err("failed to decode session_reconnect_ok\n");
2609 return -EINVAL;
2610 }
2611
process_session_retry(struct ceph_connection * con,void * p,void * end)2612 static int process_session_retry(struct ceph_connection *con,
2613 void *p, void *end)
2614 {
2615 u64 connect_seq;
2616 int ret;
2617
2618 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) {
2619 con->error_msg = "protocol error, unexpected session_retry";
2620 return -EINVAL;
2621 }
2622
2623 ceph_decode_64_safe(&p, end, connect_seq, bad);
2624
2625 dout("%s con %p connect_seq %llu\n", __func__, con, connect_seq);
2626 WARN_ON(connect_seq <= con->v2.connect_seq);
2627 con->v2.connect_seq = connect_seq + 1;
2628
2629 free_conn_bufs(con);
2630
2631 reset_out_kvecs(con);
2632 ret = prepare_session_reconnect(con);
2633 if (ret) {
2634 pr_err("prepare_session_reconnect (cseq) failed: %d\n", ret);
2635 return ret;
2636 }
2637
2638 return 0;
2639
2640 bad:
2641 pr_err("failed to decode session_retry\n");
2642 return -EINVAL;
2643 }
2644
process_session_retry_global(struct ceph_connection * con,void * p,void * end)2645 static int process_session_retry_global(struct ceph_connection *con,
2646 void *p, void *end)
2647 {
2648 u64 global_seq;
2649 int ret;
2650
2651 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) {
2652 con->error_msg = "protocol error, unexpected session_retry_global";
2653 return -EINVAL;
2654 }
2655
2656 ceph_decode_64_safe(&p, end, global_seq, bad);
2657
2658 dout("%s con %p global_seq %llu\n", __func__, con, global_seq);
2659 WARN_ON(global_seq <= con->v2.global_seq);
2660 con->v2.global_seq = ceph_get_global_seq(con->msgr, global_seq);
2661
2662 free_conn_bufs(con);
2663
2664 reset_out_kvecs(con);
2665 ret = prepare_session_reconnect(con);
2666 if (ret) {
2667 pr_err("prepare_session_reconnect (gseq) failed: %d\n", ret);
2668 return ret;
2669 }
2670
2671 return 0;
2672
2673 bad:
2674 pr_err("failed to decode session_retry_global\n");
2675 return -EINVAL;
2676 }
2677
process_session_reset(struct ceph_connection * con,void * p,void * end)2678 static int process_session_reset(struct ceph_connection *con,
2679 void *p, void *end)
2680 {
2681 bool full;
2682 int ret;
2683
2684 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) {
2685 con->error_msg = "protocol error, unexpected session_reset";
2686 return -EINVAL;
2687 }
2688
2689 ceph_decode_8_safe(&p, end, full, bad);
2690 if (!full) {
2691 con->error_msg = "protocol error, bad session_reset";
2692 return -EINVAL;
2693 }
2694
2695 pr_info("%s%lld %s session reset\n", ENTITY_NAME(con->peer_name),
2696 ceph_pr_addr(&con->peer_addr));
2697 ceph_con_reset_session(con);
2698
2699 mutex_unlock(&con->mutex);
2700 if (con->ops->peer_reset)
2701 con->ops->peer_reset(con);
2702 mutex_lock(&con->mutex);
2703 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) {
2704 dout("%s con %p state changed to %d\n", __func__, con,
2705 con->state);
2706 return -EAGAIN;
2707 }
2708
2709 free_conn_bufs(con);
2710
2711 reset_out_kvecs(con);
2712 ret = prepare_client_ident(con);
2713 if (ret) {
2714 pr_err("prepare_client_ident (rst) failed: %d\n", ret);
2715 return ret;
2716 }
2717
2718 con->state = CEPH_CON_S_V2_SESSION_CONNECT;
2719 return 0;
2720
2721 bad:
2722 pr_err("failed to decode session_reset\n");
2723 return -EINVAL;
2724 }
2725
process_keepalive2_ack(struct ceph_connection * con,void * p,void * end)2726 static int process_keepalive2_ack(struct ceph_connection *con,
2727 void *p, void *end)
2728 {
2729 if (con->state != CEPH_CON_S_OPEN) {
2730 con->error_msg = "protocol error, unexpected keepalive2_ack";
2731 return -EINVAL;
2732 }
2733
2734 ceph_decode_need(&p, end, sizeof(struct ceph_timespec), bad);
2735 ceph_decode_timespec64(&con->last_keepalive_ack, p);
2736
2737 dout("%s con %p timestamp %ptSp\n", __func__, con, &con->last_keepalive_ack);
2738
2739 return 0;
2740
2741 bad:
2742 pr_err("failed to decode keepalive2_ack\n");
2743 return -EINVAL;
2744 }
2745
process_ack(struct ceph_connection * con,void * p,void * end)2746 static int process_ack(struct ceph_connection *con, void *p, void *end)
2747 {
2748 u64 seq;
2749
2750 if (con->state != CEPH_CON_S_OPEN) {
2751 con->error_msg = "protocol error, unexpected ack";
2752 return -EINVAL;
2753 }
2754
2755 ceph_decode_64_safe(&p, end, seq, bad);
2756
2757 dout("%s con %p seq %llu\n", __func__, con, seq);
2758 ceph_con_discard_sent(con, seq);
2759 return 0;
2760
2761 bad:
2762 pr_err("failed to decode ack\n");
2763 return -EINVAL;
2764 }
2765
process_control(struct ceph_connection * con,void * p,void * end)2766 static int process_control(struct ceph_connection *con, void *p, void *end)
2767 {
2768 int tag = con->v2.in_desc.fd_tag;
2769 int ret;
2770
2771 dout("%s con %p tag %d len %d\n", __func__, con, tag, (int)(end - p));
2772
2773 switch (tag) {
2774 case FRAME_TAG_HELLO:
2775 ret = process_hello(con, p, end);
2776 break;
2777 case FRAME_TAG_AUTH_BAD_METHOD:
2778 ret = process_auth_bad_method(con, p, end);
2779 break;
2780 case FRAME_TAG_AUTH_REPLY_MORE:
2781 ret = process_auth_reply_more(con, p, end);
2782 break;
2783 case FRAME_TAG_AUTH_DONE:
2784 ret = process_auth_done(con, p, end);
2785 break;
2786 case FRAME_TAG_AUTH_SIGNATURE:
2787 ret = process_auth_signature(con, p, end);
2788 break;
2789 case FRAME_TAG_SERVER_IDENT:
2790 ret = process_server_ident(con, p, end);
2791 break;
2792 case FRAME_TAG_IDENT_MISSING_FEATURES:
2793 ret = process_ident_missing_features(con, p, end);
2794 break;
2795 case FRAME_TAG_SESSION_RECONNECT_OK:
2796 ret = process_session_reconnect_ok(con, p, end);
2797 break;
2798 case FRAME_TAG_SESSION_RETRY:
2799 ret = process_session_retry(con, p, end);
2800 break;
2801 case FRAME_TAG_SESSION_RETRY_GLOBAL:
2802 ret = process_session_retry_global(con, p, end);
2803 break;
2804 case FRAME_TAG_SESSION_RESET:
2805 ret = process_session_reset(con, p, end);
2806 break;
2807 case FRAME_TAG_KEEPALIVE2_ACK:
2808 ret = process_keepalive2_ack(con, p, end);
2809 break;
2810 case FRAME_TAG_ACK:
2811 ret = process_ack(con, p, end);
2812 break;
2813 default:
2814 pr_err("bad tag %d\n", tag);
2815 con->error_msg = "protocol error, bad tag";
2816 return -EINVAL;
2817 }
2818 if (ret) {
2819 dout("%s con %p error %d\n", __func__, con, ret);
2820 return ret;
2821 }
2822
2823 prepare_read_preamble(con);
2824 return 0;
2825 }
2826
2827 /*
2828 * Return:
2829 * 1 - con->in_msg set, read message
2830 * 0 - skip message
2831 * <0 - error
2832 */
process_message_header(struct ceph_connection * con,void * p,void * end)2833 static int process_message_header(struct ceph_connection *con,
2834 void *p, void *end)
2835 {
2836 struct ceph_frame_desc *desc = &con->v2.in_desc;
2837 struct ceph_msg_header2 *hdr2;
2838 struct ceph_msg_header hdr;
2839 int skip;
2840 int ret;
2841 u64 seq;
2842
2843 ceph_decode_need(&p, end, sizeof(*hdr2), bad);
2844 hdr2 = p;
2845
2846 /* verify seq# */
2847 seq = le64_to_cpu(hdr2->seq);
2848 if ((s64)seq - (s64)con->in_seq < 1) {
2849 pr_info("%s%lld %s skipping old message: seq %llu, expected %llu\n",
2850 ENTITY_NAME(con->peer_name),
2851 ceph_pr_addr(&con->peer_addr),
2852 seq, con->in_seq + 1);
2853 return 0;
2854 }
2855 if ((s64)seq - (s64)con->in_seq > 1) {
2856 pr_err("bad seq %llu, expected %llu\n", seq, con->in_seq + 1);
2857 con->error_msg = "bad message sequence # for incoming message";
2858 return -EBADE;
2859 }
2860
2861 ceph_con_discard_sent(con, le64_to_cpu(hdr2->ack_seq));
2862
2863 fill_header(&hdr, hdr2, desc->fd_lens[1], desc->fd_lens[2],
2864 desc->fd_lens[3], &con->peer_name);
2865 ret = ceph_con_in_msg_alloc(con, &hdr, &skip);
2866 if (ret)
2867 return ret;
2868
2869 WARN_ON(!con->in_msg ^ skip);
2870 if (skip)
2871 return 0;
2872
2873 WARN_ON(!con->in_msg);
2874 WARN_ON(con->in_msg->con != con);
2875 return 1;
2876
2877 bad:
2878 pr_err("failed to decode message header\n");
2879 return -EINVAL;
2880 }
2881
process_message(struct ceph_connection * con)2882 static int process_message(struct ceph_connection *con)
2883 {
2884 ceph_con_process_message(con);
2885
2886 /*
2887 * We could have been closed by ceph_con_close() because
2888 * ceph_con_process_message() temporarily drops con->mutex.
2889 */
2890 if (con->state != CEPH_CON_S_OPEN) {
2891 dout("%s con %p state changed to %d\n", __func__, con,
2892 con->state);
2893 return -EAGAIN;
2894 }
2895
2896 prepare_read_preamble(con);
2897 return 0;
2898 }
2899
__handle_control(struct ceph_connection * con,void * p)2900 static int __handle_control(struct ceph_connection *con, void *p)
2901 {
2902 void *end = p + con->v2.in_desc.fd_lens[0];
2903 struct ceph_msg *msg;
2904 int ret;
2905
2906 if (con->v2.in_desc.fd_tag != FRAME_TAG_MESSAGE)
2907 return process_control(con, p, end);
2908
2909 if (con->state != CEPH_CON_S_OPEN) {
2910 con->error_msg = "protocol error, unexpected message";
2911 return -EINVAL;
2912 }
2913
2914 ret = process_message_header(con, p, end);
2915 if (ret < 0)
2916 return ret;
2917 if (ret == 0) {
2918 prepare_skip_message(con);
2919 return 0;
2920 }
2921
2922 msg = con->in_msg; /* set in process_message_header() */
2923 if (front_len(msg)) {
2924 WARN_ON(front_len(msg) > msg->front_alloc_len);
2925 msg->front.iov_len = front_len(msg);
2926 } else {
2927 msg->front.iov_len = 0;
2928 }
2929 if (middle_len(msg)) {
2930 WARN_ON(middle_len(msg) > msg->middle->alloc_len);
2931 msg->middle->vec.iov_len = middle_len(msg);
2932 } else if (msg->middle) {
2933 msg->middle->vec.iov_len = 0;
2934 }
2935
2936 if (!front_len(msg) && !middle_len(msg) && !data_len(msg))
2937 return process_message(con);
2938
2939 if (con_secure(con))
2940 return prepare_read_tail_secure(con);
2941
2942 return prepare_read_tail_plain(con);
2943 }
2944
handle_preamble(struct ceph_connection * con)2945 static int handle_preamble(struct ceph_connection *con)
2946 {
2947 struct ceph_frame_desc *desc = &con->v2.in_desc;
2948 int ret;
2949
2950 if (con_secure(con)) {
2951 ret = decrypt_preamble(con);
2952 if (ret) {
2953 if (ret == -EBADMSG)
2954 con->error_msg = "integrity error, bad preamble auth tag";
2955 return ret;
2956 }
2957 }
2958
2959 ret = decode_preamble(con->v2.in_buf, desc);
2960 if (ret) {
2961 if (ret == -EBADMSG)
2962 con->error_msg = "integrity error, bad crc";
2963 else
2964 con->error_msg = "protocol error, bad preamble";
2965 return ret;
2966 }
2967
2968 dout("%s con %p tag %d seg_cnt %d %d+%d+%d+%d\n", __func__,
2969 con, desc->fd_tag, desc->fd_seg_cnt, desc->fd_lens[0],
2970 desc->fd_lens[1], desc->fd_lens[2], desc->fd_lens[3]);
2971
2972 if (!con_secure(con))
2973 return prepare_read_control(con);
2974
2975 if (desc->fd_lens[0] > CEPH_PREAMBLE_INLINE_LEN)
2976 return prepare_read_control_remainder(con);
2977
2978 return __handle_control(con, CTRL_BODY(con->v2.in_buf));
2979 }
2980
handle_control(struct ceph_connection * con)2981 static int handle_control(struct ceph_connection *con)
2982 {
2983 int ctrl_len = con->v2.in_desc.fd_lens[0];
2984 void *buf;
2985 int ret;
2986
2987 WARN_ON(con_secure(con));
2988
2989 ret = verify_control_crc(con);
2990 if (ret) {
2991 con->error_msg = "integrity error, bad crc";
2992 return ret;
2993 }
2994
2995 if (con->state == CEPH_CON_S_V2_AUTH) {
2996 buf = alloc_conn_buf(con, ctrl_len);
2997 if (!buf)
2998 return -ENOMEM;
2999
3000 memcpy(buf, con->v2.in_kvecs[0].iov_base, ctrl_len);
3001 return __handle_control(con, buf);
3002 }
3003
3004 return __handle_control(con, con->v2.in_kvecs[0].iov_base);
3005 }
3006
handle_control_remainder(struct ceph_connection * con)3007 static int handle_control_remainder(struct ceph_connection *con)
3008 {
3009 int ret;
3010
3011 WARN_ON(!con_secure(con));
3012
3013 ret = decrypt_control_remainder(con);
3014 if (ret) {
3015 if (ret == -EBADMSG)
3016 con->error_msg = "integrity error, bad control remainder auth tag";
3017 return ret;
3018 }
3019
3020 return __handle_control(con, con->v2.in_kvecs[0].iov_base -
3021 CEPH_PREAMBLE_INLINE_LEN);
3022 }
3023
handle_epilogue(struct ceph_connection * con)3024 static int handle_epilogue(struct ceph_connection *con)
3025 {
3026 u32 front_crc, middle_crc, data_crc;
3027 int ret;
3028
3029 if (con_secure(con)) {
3030 ret = decrypt_tail(con);
3031 if (ret) {
3032 if (ret == -EBADMSG)
3033 con->error_msg = "integrity error, bad epilogue auth tag";
3034 return ret;
3035 }
3036
3037 /* just late_status */
3038 ret = decode_epilogue(con->v2.in_buf, NULL, NULL, NULL);
3039 if (ret) {
3040 con->error_msg = "protocol error, bad epilogue";
3041 return ret;
3042 }
3043 } else {
3044 ret = decode_epilogue(con->v2.in_buf, &front_crc,
3045 &middle_crc, &data_crc);
3046 if (ret) {
3047 con->error_msg = "protocol error, bad epilogue";
3048 return ret;
3049 }
3050
3051 ret = verify_epilogue_crcs(con, front_crc, middle_crc,
3052 data_crc);
3053 if (ret) {
3054 con->error_msg = "integrity error, bad crc";
3055 return ret;
3056 }
3057 }
3058
3059 return process_message(con);
3060 }
3061
finish_skip(struct ceph_connection * con)3062 static void finish_skip(struct ceph_connection *con)
3063 {
3064 dout("%s con %p\n", __func__, con);
3065
3066 if (con_secure(con))
3067 gcm_inc_nonce(&con->v2.in_gcm_nonce);
3068
3069 __finish_skip(con);
3070 }
3071
populate_in_iter(struct ceph_connection * con)3072 static int populate_in_iter(struct ceph_connection *con)
3073 {
3074 int ret;
3075
3076 dout("%s con %p state %d in_state %d\n", __func__, con, con->state,
3077 con->v2.in_state);
3078 WARN_ON(iov_iter_count(&con->v2.in_iter));
3079
3080 if (con->state == CEPH_CON_S_V2_BANNER_PREFIX) {
3081 ret = process_banner_prefix(con);
3082 } else if (con->state == CEPH_CON_S_V2_BANNER_PAYLOAD) {
3083 ret = process_banner_payload(con);
3084 } else if ((con->state >= CEPH_CON_S_V2_HELLO &&
3085 con->state <= CEPH_CON_S_V2_SESSION_RECONNECT) ||
3086 con->state == CEPH_CON_S_OPEN) {
3087 switch (con->v2.in_state) {
3088 case IN_S_HANDLE_PREAMBLE:
3089 ret = handle_preamble(con);
3090 break;
3091 case IN_S_HANDLE_CONTROL:
3092 ret = handle_control(con);
3093 break;
3094 case IN_S_HANDLE_CONTROL_REMAINDER:
3095 ret = handle_control_remainder(con);
3096 break;
3097 case IN_S_PREPARE_READ_DATA:
3098 ret = prepare_read_data(con);
3099 break;
3100 case IN_S_PREPARE_READ_DATA_CONT:
3101 prepare_read_data_cont(con);
3102 ret = 0;
3103 break;
3104 case IN_S_PREPARE_READ_ENC_PAGE:
3105 prepare_read_enc_page(con);
3106 ret = 0;
3107 break;
3108 case IN_S_PREPARE_SPARSE_DATA:
3109 ret = prepare_sparse_read_data(con);
3110 break;
3111 case IN_S_PREPARE_SPARSE_DATA_CONT:
3112 ret = prepare_sparse_read_cont(con);
3113 break;
3114 case IN_S_HANDLE_EPILOGUE:
3115 ret = handle_epilogue(con);
3116 break;
3117 case IN_S_FINISH_SKIP:
3118 finish_skip(con);
3119 ret = 0;
3120 break;
3121 default:
3122 WARN(1, "bad in_state %d", con->v2.in_state);
3123 return -EINVAL;
3124 }
3125 } else {
3126 WARN(1, "bad state %d", con->state);
3127 return -EINVAL;
3128 }
3129 if (ret) {
3130 dout("%s con %p error %d\n", __func__, con, ret);
3131 return ret;
3132 }
3133
3134 if (WARN_ON(!iov_iter_count(&con->v2.in_iter)))
3135 return -ENODATA;
3136 dout("%s con %p populated %zu\n", __func__, con,
3137 iov_iter_count(&con->v2.in_iter));
3138 return 1;
3139 }
3140
ceph_con_v2_try_read(struct ceph_connection * con)3141 int ceph_con_v2_try_read(struct ceph_connection *con)
3142 {
3143 int ret;
3144
3145 dout("%s con %p state %d need %zu\n", __func__, con, con->state,
3146 iov_iter_count(&con->v2.in_iter));
3147
3148 if (con->state == CEPH_CON_S_PREOPEN)
3149 return 0;
3150
3151 /*
3152 * We should always have something pending here. If not,
3153 * avoid calling populate_in_iter() as if we read something
3154 * (ceph_tcp_recv() would immediately return 1).
3155 */
3156 if (WARN_ON(!iov_iter_count(&con->v2.in_iter)))
3157 return -ENODATA;
3158
3159 for (;;) {
3160 ret = ceph_tcp_recv(con);
3161 if (ret <= 0)
3162 return ret;
3163
3164 ret = populate_in_iter(con);
3165 if (ret <= 0) {
3166 if (ret && ret != -EAGAIN && !con->error_msg)
3167 con->error_msg = "read processing error";
3168 return ret;
3169 }
3170 }
3171 }
3172
queue_data(struct ceph_connection * con,struct ceph_msg * msg)3173 static void queue_data(struct ceph_connection *con, struct ceph_msg *msg)
3174 {
3175 struct bio_vec bv;
3176
3177 con->v2.out_epil.data_crc = -1;
3178 ceph_msg_data_cursor_init(&con->v2.out_cursor, msg,
3179 data_len(msg));
3180
3181 get_bvec_at(&con->v2.out_cursor, &bv);
3182 set_out_bvec(con, &bv, true);
3183 con->v2.out_state = OUT_S_QUEUE_DATA_CONT;
3184 }
3185
queue_data_cont(struct ceph_connection * con,struct ceph_msg * msg)3186 static void queue_data_cont(struct ceph_connection *con, struct ceph_msg *msg)
3187 {
3188 struct bio_vec bv;
3189
3190 con->v2.out_epil.data_crc = ceph_crc32c_page(
3191 con->v2.out_epil.data_crc, con->v2.out_bvec.bv_page,
3192 con->v2.out_bvec.bv_offset, con->v2.out_bvec.bv_len);
3193
3194 ceph_msg_data_advance(&con->v2.out_cursor, con->v2.out_bvec.bv_len);
3195 if (con->v2.out_cursor.total_resid) {
3196 get_bvec_at(&con->v2.out_cursor, &bv);
3197 set_out_bvec(con, &bv, true);
3198 WARN_ON(con->v2.out_state != OUT_S_QUEUE_DATA_CONT);
3199 return;
3200 }
3201
3202 /*
3203 * We've written all data. Queue epilogue. Once it's written,
3204 * we are done.
3205 */
3206 reset_out_kvecs(con);
3207 prepare_epilogue_plain(con, msg, false);
3208 con->v2.out_state = OUT_S_FINISH_MESSAGE;
3209 }
3210
queue_enc_page(struct ceph_connection * con)3211 static void queue_enc_page(struct ceph_connection *con)
3212 {
3213 struct bio_vec bv;
3214
3215 dout("%s con %p i %d resid %d\n", __func__, con, con->v2.out_enc_i,
3216 con->v2.out_enc_resid);
3217 WARN_ON(!con->v2.out_enc_resid);
3218
3219 bvec_set_page(&bv, con->v2.out_enc_pages[con->v2.out_enc_i],
3220 min(con->v2.out_enc_resid, (int)PAGE_SIZE), 0);
3221
3222 set_out_bvec(con, &bv, false);
3223 con->v2.out_enc_i++;
3224 con->v2.out_enc_resid -= bv.bv_len;
3225
3226 if (con->v2.out_enc_resid) {
3227 WARN_ON(con->v2.out_state != OUT_S_QUEUE_ENC_PAGE);
3228 return;
3229 }
3230
3231 /*
3232 * We've queued the last piece of ciphertext (ending with
3233 * epilogue) + auth tag. Once it's written, we are done.
3234 */
3235 WARN_ON(con->v2.out_enc_i != con->v2.out_enc_page_cnt);
3236 con->v2.out_state = OUT_S_FINISH_MESSAGE;
3237 }
3238
queue_zeros(struct ceph_connection * con,struct ceph_msg * msg)3239 static void queue_zeros(struct ceph_connection *con, struct ceph_msg *msg)
3240 {
3241 dout("%s con %p out_zero %d\n", __func__, con, con->v2.out_zero);
3242
3243 if (con->v2.out_zero) {
3244 set_out_bvec_zero(con);
3245 con->v2.out_zero -= con->v2.out_bvec.bv_len;
3246 con->v2.out_state = OUT_S_QUEUE_ZEROS;
3247 return;
3248 }
3249
3250 /*
3251 * We've zero-filled everything up to epilogue. Queue epilogue
3252 * with late_status set to ABORTED and crcs adjusted for zeros.
3253 * Once it's written, we are done patching up for the revoke.
3254 */
3255 reset_out_kvecs(con);
3256 prepare_epilogue_plain(con, msg, true);
3257 con->v2.out_state = OUT_S_FINISH_MESSAGE;
3258 }
3259
finish_message(struct ceph_connection * con)3260 static void finish_message(struct ceph_connection *con)
3261 {
3262 dout("%s con %p msg %p\n", __func__, con, con->out_msg);
3263
3264 /* we end up here both plain and secure modes */
3265 if (con->v2.out_enc_pages) {
3266 WARN_ON(!con->v2.out_enc_page_cnt);
3267 ceph_release_page_vector(con->v2.out_enc_pages,
3268 con->v2.out_enc_page_cnt);
3269 con->v2.out_enc_pages = NULL;
3270 con->v2.out_enc_page_cnt = 0;
3271 }
3272 /* message may have been revoked */
3273 if (con->out_msg) {
3274 ceph_msg_put(con->out_msg);
3275 con->out_msg = NULL;
3276 }
3277
3278 con->v2.out_state = OUT_S_GET_NEXT;
3279 }
3280
populate_out_iter(struct ceph_connection * con)3281 static int populate_out_iter(struct ceph_connection *con)
3282 {
3283 struct ceph_msg *msg;
3284 int ret;
3285
3286 dout("%s con %p state %d out_state %d\n", __func__, con, con->state,
3287 con->v2.out_state);
3288 WARN_ON(iov_iter_count(&con->v2.out_iter));
3289
3290 if (con->state != CEPH_CON_S_OPEN) {
3291 WARN_ON(con->state < CEPH_CON_S_V2_BANNER_PREFIX ||
3292 con->state > CEPH_CON_S_V2_SESSION_RECONNECT);
3293 goto nothing_pending;
3294 }
3295
3296 switch (con->v2.out_state) {
3297 case OUT_S_QUEUE_DATA:
3298 WARN_ON(!con->out_msg);
3299 queue_data(con, con->out_msg);
3300 goto populated;
3301 case OUT_S_QUEUE_DATA_CONT:
3302 WARN_ON(!con->out_msg);
3303 queue_data_cont(con, con->out_msg);
3304 goto populated;
3305 case OUT_S_QUEUE_ENC_PAGE:
3306 queue_enc_page(con);
3307 goto populated;
3308 case OUT_S_QUEUE_ZEROS:
3309 WARN_ON(con->out_msg); /* revoked */
3310 queue_zeros(con, con->out_msg);
3311 goto populated;
3312 case OUT_S_FINISH_MESSAGE:
3313 finish_message(con);
3314 break;
3315 case OUT_S_GET_NEXT:
3316 break;
3317 default:
3318 WARN(1, "bad out_state %d", con->v2.out_state);
3319 return -EINVAL;
3320 }
3321
3322 WARN_ON(con->v2.out_state != OUT_S_GET_NEXT);
3323 if (ceph_con_flag_test_and_clear(con, CEPH_CON_F_KEEPALIVE_PENDING)) {
3324 ret = prepare_keepalive2(con);
3325 if (ret) {
3326 pr_err("prepare_keepalive2 failed: %d\n", ret);
3327 return ret;
3328 }
3329 } else if ((msg = ceph_con_get_out_msg(con)) != NULL) {
3330 ret = prepare_message(con, msg);
3331 if (ret) {
3332 pr_err("prepare_message failed: %d\n", ret);
3333 return ret;
3334 }
3335 } else if (con->in_seq > con->in_seq_acked) {
3336 ret = prepare_ack(con);
3337 if (ret) {
3338 pr_err("prepare_ack failed: %d\n", ret);
3339 return ret;
3340 }
3341 } else {
3342 goto nothing_pending;
3343 }
3344
3345 populated:
3346 if (WARN_ON(!iov_iter_count(&con->v2.out_iter)))
3347 return -ENODATA;
3348 dout("%s con %p populated %zu\n", __func__, con,
3349 iov_iter_count(&con->v2.out_iter));
3350 return 1;
3351
3352 nothing_pending:
3353 WARN_ON(iov_iter_count(&con->v2.out_iter));
3354 dout("%s con %p nothing pending\n", __func__, con);
3355 ceph_con_flag_clear(con, CEPH_CON_F_WRITE_PENDING);
3356 return 0;
3357 }
3358
ceph_con_v2_try_write(struct ceph_connection * con)3359 int ceph_con_v2_try_write(struct ceph_connection *con)
3360 {
3361 int ret;
3362
3363 dout("%s con %p state %d have %zu\n", __func__, con, con->state,
3364 iov_iter_count(&con->v2.out_iter));
3365
3366 /* open the socket first? */
3367 if (con->state == CEPH_CON_S_PREOPEN) {
3368 WARN_ON(con->peer_addr.type != CEPH_ENTITY_ADDR_TYPE_MSGR2);
3369
3370 /*
3371 * Always bump global_seq. Bump connect_seq only if
3372 * there is a session (i.e. we are reconnecting and will
3373 * send session_reconnect instead of client_ident).
3374 */
3375 con->v2.global_seq = ceph_get_global_seq(con->msgr, 0);
3376 if (con->v2.server_cookie)
3377 con->v2.connect_seq++;
3378
3379 ret = prepare_read_banner_prefix(con);
3380 if (ret) {
3381 pr_err("prepare_read_banner_prefix failed: %d\n", ret);
3382 con->error_msg = "connect error";
3383 return ret;
3384 }
3385
3386 reset_out_kvecs(con);
3387 ret = prepare_banner(con);
3388 if (ret) {
3389 pr_err("prepare_banner failed: %d\n", ret);
3390 con->error_msg = "connect error";
3391 return ret;
3392 }
3393
3394 ret = ceph_tcp_connect(con);
3395 if (ret) {
3396 pr_err("ceph_tcp_connect failed: %d\n", ret);
3397 con->error_msg = "connect error";
3398 return ret;
3399 }
3400 }
3401
3402 if (!iov_iter_count(&con->v2.out_iter)) {
3403 ret = populate_out_iter(con);
3404 if (ret <= 0) {
3405 if (ret && ret != -EAGAIN && !con->error_msg)
3406 con->error_msg = "write processing error";
3407 return ret;
3408 }
3409 }
3410
3411 tcp_sock_set_cork(con->sock->sk, true);
3412 for (;;) {
3413 ret = ceph_tcp_send(con);
3414 if (ret <= 0)
3415 break;
3416
3417 ret = populate_out_iter(con);
3418 if (ret <= 0) {
3419 if (ret && ret != -EAGAIN && !con->error_msg)
3420 con->error_msg = "write processing error";
3421 break;
3422 }
3423 }
3424
3425 tcp_sock_set_cork(con->sock->sk, false);
3426 return ret;
3427 }
3428
crc32c_zeros(u32 crc,int zero_len)3429 static u32 crc32c_zeros(u32 crc, int zero_len)
3430 {
3431 int len;
3432
3433 while (zero_len) {
3434 len = min(zero_len, (int)PAGE_SIZE);
3435 crc = crc32c(crc, page_address(ceph_zero_page), len);
3436 zero_len -= len;
3437 }
3438
3439 return crc;
3440 }
3441
prepare_zero_front(struct ceph_connection * con,struct ceph_msg * msg,int resid)3442 static void prepare_zero_front(struct ceph_connection *con,
3443 struct ceph_msg *msg, int resid)
3444 {
3445 int sent;
3446
3447 WARN_ON(!resid || resid > front_len(msg));
3448 sent = front_len(msg) - resid;
3449 dout("%s con %p sent %d resid %d\n", __func__, con, sent, resid);
3450
3451 if (sent) {
3452 con->v2.out_epil.front_crc =
3453 crc32c(-1, msg->front.iov_base, sent);
3454 con->v2.out_epil.front_crc =
3455 crc32c_zeros(con->v2.out_epil.front_crc, resid);
3456 } else {
3457 con->v2.out_epil.front_crc = crc32c_zeros(-1, resid);
3458 }
3459
3460 con->v2.out_iter.count -= resid;
3461 out_zero_add(con, resid);
3462 }
3463
prepare_zero_middle(struct ceph_connection * con,struct ceph_msg * msg,int resid)3464 static void prepare_zero_middle(struct ceph_connection *con,
3465 struct ceph_msg *msg, int resid)
3466 {
3467 int sent;
3468
3469 WARN_ON(!resid || resid > middle_len(msg));
3470 sent = middle_len(msg) - resid;
3471 dout("%s con %p sent %d resid %d\n", __func__, con, sent, resid);
3472
3473 if (sent) {
3474 con->v2.out_epil.middle_crc =
3475 crc32c(-1, msg->middle->vec.iov_base, sent);
3476 con->v2.out_epil.middle_crc =
3477 crc32c_zeros(con->v2.out_epil.middle_crc, resid);
3478 } else {
3479 con->v2.out_epil.middle_crc = crc32c_zeros(-1, resid);
3480 }
3481
3482 con->v2.out_iter.count -= resid;
3483 out_zero_add(con, resid);
3484 }
3485
prepare_zero_data(struct ceph_connection * con,struct ceph_msg * msg)3486 static void prepare_zero_data(struct ceph_connection *con,
3487 struct ceph_msg *msg)
3488 {
3489 dout("%s con %p\n", __func__, con);
3490 con->v2.out_epil.data_crc = crc32c_zeros(-1, data_len(msg));
3491 out_zero_add(con, data_len(msg));
3492 }
3493
revoke_at_queue_data(struct ceph_connection * con,struct ceph_msg * msg)3494 static void revoke_at_queue_data(struct ceph_connection *con,
3495 struct ceph_msg *msg)
3496 {
3497 int boundary;
3498 int resid;
3499
3500 WARN_ON(!data_len(msg));
3501 WARN_ON(!iov_iter_is_kvec(&con->v2.out_iter));
3502 resid = iov_iter_count(&con->v2.out_iter);
3503
3504 boundary = front_len(msg) + middle_len(msg);
3505 if (resid > boundary) {
3506 resid -= boundary;
3507 WARN_ON(resid > MESSAGE_HEAD_PLAIN_LEN);
3508 dout("%s con %p was sending head\n", __func__, con);
3509 if (front_len(msg))
3510 prepare_zero_front(con, msg, front_len(msg));
3511 if (middle_len(msg))
3512 prepare_zero_middle(con, msg, middle_len(msg));
3513 prepare_zero_data(con, msg);
3514 WARN_ON(iov_iter_count(&con->v2.out_iter) != resid);
3515 con->v2.out_state = OUT_S_QUEUE_ZEROS;
3516 return;
3517 }
3518
3519 boundary = middle_len(msg);
3520 if (resid > boundary) {
3521 resid -= boundary;
3522 dout("%s con %p was sending front\n", __func__, con);
3523 prepare_zero_front(con, msg, resid);
3524 if (middle_len(msg))
3525 prepare_zero_middle(con, msg, middle_len(msg));
3526 prepare_zero_data(con, msg);
3527 queue_zeros(con, msg);
3528 return;
3529 }
3530
3531 WARN_ON(!resid);
3532 dout("%s con %p was sending middle\n", __func__, con);
3533 prepare_zero_middle(con, msg, resid);
3534 prepare_zero_data(con, msg);
3535 queue_zeros(con, msg);
3536 }
3537
revoke_at_queue_data_cont(struct ceph_connection * con,struct ceph_msg * msg)3538 static void revoke_at_queue_data_cont(struct ceph_connection *con,
3539 struct ceph_msg *msg)
3540 {
3541 int sent, resid; /* current piece of data */
3542
3543 WARN_ON(!data_len(msg));
3544 WARN_ON(!iov_iter_is_bvec(&con->v2.out_iter));
3545 resid = iov_iter_count(&con->v2.out_iter);
3546 WARN_ON(!resid || resid > con->v2.out_bvec.bv_len);
3547 sent = con->v2.out_bvec.bv_len - resid;
3548 dout("%s con %p sent %d resid %d\n", __func__, con, sent, resid);
3549
3550 if (sent) {
3551 con->v2.out_epil.data_crc = ceph_crc32c_page(
3552 con->v2.out_epil.data_crc, con->v2.out_bvec.bv_page,
3553 con->v2.out_bvec.bv_offset, sent);
3554 ceph_msg_data_advance(&con->v2.out_cursor, sent);
3555 }
3556 WARN_ON(resid > con->v2.out_cursor.total_resid);
3557 con->v2.out_epil.data_crc = crc32c_zeros(con->v2.out_epil.data_crc,
3558 con->v2.out_cursor.total_resid);
3559
3560 con->v2.out_iter.count -= resid;
3561 out_zero_add(con, con->v2.out_cursor.total_resid);
3562 queue_zeros(con, msg);
3563 }
3564
revoke_at_finish_message(struct ceph_connection * con,struct ceph_msg * msg)3565 static void revoke_at_finish_message(struct ceph_connection *con,
3566 struct ceph_msg *msg)
3567 {
3568 int boundary;
3569 int resid;
3570
3571 WARN_ON(!iov_iter_is_kvec(&con->v2.out_iter));
3572 resid = iov_iter_count(&con->v2.out_iter);
3573
3574 if (!front_len(msg) && !middle_len(msg) &&
3575 !data_len(msg)) {
3576 WARN_ON(!resid || resid > MESSAGE_HEAD_PLAIN_LEN);
3577 dout("%s con %p was sending head (empty message) - noop\n",
3578 __func__, con);
3579 return;
3580 }
3581
3582 boundary = front_len(msg) + middle_len(msg) +
3583 CEPH_EPILOGUE_PLAIN_LEN;
3584 if (resid > boundary) {
3585 resid -= boundary;
3586 WARN_ON(resid > MESSAGE_HEAD_PLAIN_LEN);
3587 dout("%s con %p was sending head\n", __func__, con);
3588 if (front_len(msg))
3589 prepare_zero_front(con, msg, front_len(msg));
3590 if (middle_len(msg))
3591 prepare_zero_middle(con, msg, middle_len(msg));
3592 con->v2.out_iter.count -= CEPH_EPILOGUE_PLAIN_LEN;
3593 WARN_ON(iov_iter_count(&con->v2.out_iter) != resid);
3594 con->v2.out_state = OUT_S_QUEUE_ZEROS;
3595 return;
3596 }
3597
3598 boundary = middle_len(msg) + CEPH_EPILOGUE_PLAIN_LEN;
3599 if (resid > boundary) {
3600 resid -= boundary;
3601 dout("%s con %p was sending front\n", __func__, con);
3602 prepare_zero_front(con, msg, resid);
3603 if (middle_len(msg))
3604 prepare_zero_middle(con, msg, middle_len(msg));
3605 con->v2.out_iter.count -= CEPH_EPILOGUE_PLAIN_LEN;
3606 queue_zeros(con, msg);
3607 return;
3608 }
3609
3610 boundary = CEPH_EPILOGUE_PLAIN_LEN;
3611 if (resid > boundary) {
3612 resid -= boundary;
3613 dout("%s con %p was sending middle\n", __func__, con);
3614 prepare_zero_middle(con, msg, resid);
3615 con->v2.out_iter.count -= CEPH_EPILOGUE_PLAIN_LEN;
3616 queue_zeros(con, msg);
3617 return;
3618 }
3619
3620 WARN_ON(!resid);
3621 dout("%s con %p was sending epilogue - noop\n", __func__, con);
3622 }
3623
ceph_con_v2_revoke(struct ceph_connection * con,struct ceph_msg * msg)3624 void ceph_con_v2_revoke(struct ceph_connection *con, struct ceph_msg *msg)
3625 {
3626 WARN_ON(con->v2.out_zero);
3627
3628 if (con_secure(con)) {
3629 WARN_ON(con->v2.out_state != OUT_S_QUEUE_ENC_PAGE &&
3630 con->v2.out_state != OUT_S_FINISH_MESSAGE);
3631 dout("%s con %p secure - noop\n", __func__, con);
3632 return;
3633 }
3634
3635 switch (con->v2.out_state) {
3636 case OUT_S_QUEUE_DATA:
3637 revoke_at_queue_data(con, msg);
3638 break;
3639 case OUT_S_QUEUE_DATA_CONT:
3640 revoke_at_queue_data_cont(con, msg);
3641 break;
3642 case OUT_S_FINISH_MESSAGE:
3643 revoke_at_finish_message(con, msg);
3644 break;
3645 default:
3646 WARN(1, "bad out_state %d", con->v2.out_state);
3647 break;
3648 }
3649 }
3650
revoke_at_prepare_read_data(struct ceph_connection * con)3651 static void revoke_at_prepare_read_data(struct ceph_connection *con)
3652 {
3653 int remaining;
3654 int resid;
3655
3656 WARN_ON(con_secure(con));
3657 WARN_ON(!data_len(con->in_msg));
3658 WARN_ON(!iov_iter_is_kvec(&con->v2.in_iter));
3659 resid = iov_iter_count(&con->v2.in_iter);
3660 WARN_ON(!resid);
3661
3662 remaining = data_len(con->in_msg) + CEPH_EPILOGUE_PLAIN_LEN;
3663 dout("%s con %p resid %d remaining %d\n", __func__, con, resid,
3664 remaining);
3665 con->v2.in_iter.count -= resid;
3666 set_in_skip(con, resid + remaining);
3667 con->v2.in_state = IN_S_FINISH_SKIP;
3668 }
3669
revoke_at_prepare_read_data_cont(struct ceph_connection * con)3670 static void revoke_at_prepare_read_data_cont(struct ceph_connection *con)
3671 {
3672 int recved, resid; /* current piece of data */
3673 int remaining;
3674
3675 WARN_ON(con_secure(con));
3676 WARN_ON(!data_len(con->in_msg));
3677 WARN_ON(!iov_iter_is_bvec(&con->v2.in_iter));
3678 resid = iov_iter_count(&con->v2.in_iter);
3679 WARN_ON(!resid || resid > con->v2.in_bvec.bv_len);
3680 recved = con->v2.in_bvec.bv_len - resid;
3681 dout("%s con %p recved %d resid %d\n", __func__, con, recved, resid);
3682
3683 if (recved)
3684 ceph_msg_data_advance(&con->v2.in_cursor, recved);
3685 WARN_ON(resid > con->v2.in_cursor.total_resid);
3686
3687 remaining = CEPH_EPILOGUE_PLAIN_LEN;
3688 dout("%s con %p total_resid %zu remaining %d\n", __func__, con,
3689 con->v2.in_cursor.total_resid, remaining);
3690 con->v2.in_iter.count -= resid;
3691 set_in_skip(con, con->v2.in_cursor.total_resid + remaining);
3692 con->v2.in_state = IN_S_FINISH_SKIP;
3693 }
3694
revoke_at_prepare_read_enc_page(struct ceph_connection * con)3695 static void revoke_at_prepare_read_enc_page(struct ceph_connection *con)
3696 {
3697 int resid; /* current enc page (not necessarily data) */
3698
3699 WARN_ON(!con_secure(con));
3700 WARN_ON(!iov_iter_is_bvec(&con->v2.in_iter));
3701 resid = iov_iter_count(&con->v2.in_iter);
3702 WARN_ON(!resid || resid > con->v2.in_bvec.bv_len);
3703
3704 dout("%s con %p resid %d enc_resid %d\n", __func__, con, resid,
3705 con->v2.in_enc_resid);
3706 con->v2.in_iter.count -= resid;
3707 set_in_skip(con, resid + con->v2.in_enc_resid);
3708 con->v2.in_state = IN_S_FINISH_SKIP;
3709 }
3710
revoke_at_prepare_sparse_data(struct ceph_connection * con)3711 static void revoke_at_prepare_sparse_data(struct ceph_connection *con)
3712 {
3713 int resid; /* current piece of data */
3714 int remaining;
3715
3716 WARN_ON(con_secure(con));
3717 WARN_ON(!data_len(con->in_msg));
3718 WARN_ON(!iov_iter_is_bvec(&con->v2.in_iter));
3719 resid = iov_iter_count(&con->v2.in_iter);
3720 dout("%s con %p resid %d\n", __func__, con, resid);
3721
3722 remaining = CEPH_EPILOGUE_PLAIN_LEN + con->v2.data_len_remain;
3723 con->v2.in_iter.count -= resid;
3724 set_in_skip(con, resid + remaining);
3725 con->v2.in_state = IN_S_FINISH_SKIP;
3726 }
3727
revoke_at_handle_epilogue(struct ceph_connection * con)3728 static void revoke_at_handle_epilogue(struct ceph_connection *con)
3729 {
3730 int resid;
3731
3732 resid = iov_iter_count(&con->v2.in_iter);
3733 WARN_ON(!resid);
3734
3735 dout("%s con %p resid %d\n", __func__, con, resid);
3736 con->v2.in_iter.count -= resid;
3737 set_in_skip(con, resid);
3738 con->v2.in_state = IN_S_FINISH_SKIP;
3739 }
3740
ceph_con_v2_revoke_incoming(struct ceph_connection * con)3741 void ceph_con_v2_revoke_incoming(struct ceph_connection *con)
3742 {
3743 switch (con->v2.in_state) {
3744 case IN_S_PREPARE_SPARSE_DATA:
3745 case IN_S_PREPARE_READ_DATA:
3746 revoke_at_prepare_read_data(con);
3747 break;
3748 case IN_S_PREPARE_READ_DATA_CONT:
3749 revoke_at_prepare_read_data_cont(con);
3750 break;
3751 case IN_S_PREPARE_READ_ENC_PAGE:
3752 revoke_at_prepare_read_enc_page(con);
3753 break;
3754 case IN_S_PREPARE_SPARSE_DATA_CONT:
3755 revoke_at_prepare_sparse_data(con);
3756 break;
3757 case IN_S_HANDLE_EPILOGUE:
3758 revoke_at_handle_epilogue(con);
3759 break;
3760 default:
3761 WARN(1, "bad in_state %d", con->v2.in_state);
3762 break;
3763 }
3764 }
3765
ceph_con_v2_opened(struct ceph_connection * con)3766 bool ceph_con_v2_opened(struct ceph_connection *con)
3767 {
3768 return con->v2.peer_global_seq;
3769 }
3770
ceph_con_v2_reset_session(struct ceph_connection * con)3771 void ceph_con_v2_reset_session(struct ceph_connection *con)
3772 {
3773 con->v2.client_cookie = 0;
3774 con->v2.server_cookie = 0;
3775 con->v2.global_seq = 0;
3776 con->v2.connect_seq = 0;
3777 con->v2.peer_global_seq = 0;
3778 }
3779
ceph_con_v2_reset_protocol(struct ceph_connection * con)3780 void ceph_con_v2_reset_protocol(struct ceph_connection *con)
3781 {
3782 iov_iter_truncate(&con->v2.in_iter, 0);
3783 iov_iter_truncate(&con->v2.out_iter, 0);
3784 con->v2.out_zero = 0;
3785
3786 clear_in_sign_kvecs(con);
3787 clear_out_sign_kvecs(con);
3788 free_conn_bufs(con);
3789
3790 if (con->v2.in_enc_pages) {
3791 WARN_ON(!con->v2.in_enc_page_cnt);
3792 ceph_release_page_vector(con->v2.in_enc_pages,
3793 con->v2.in_enc_page_cnt);
3794 con->v2.in_enc_pages = NULL;
3795 con->v2.in_enc_page_cnt = 0;
3796 }
3797 if (con->v2.out_enc_pages) {
3798 WARN_ON(!con->v2.out_enc_page_cnt);
3799 ceph_release_page_vector(con->v2.out_enc_pages,
3800 con->v2.out_enc_page_cnt);
3801 con->v2.out_enc_pages = NULL;
3802 con->v2.out_enc_page_cnt = 0;
3803 }
3804
3805 con->v2.con_mode = CEPH_CON_MODE_UNKNOWN;
3806 memzero_explicit(&con->v2.in_gcm_nonce, CEPH_GCM_IV_LEN);
3807 memzero_explicit(&con->v2.out_gcm_nonce, CEPH_GCM_IV_LEN);
3808
3809 memzero_explicit(&con->v2.hmac_key, sizeof(con->v2.hmac_key));
3810 con->v2.hmac_key_set = false;
3811 if (con->v2.gcm_req) {
3812 aead_request_free(con->v2.gcm_req);
3813 con->v2.gcm_req = NULL;
3814 }
3815 if (con->v2.gcm_tfm) {
3816 crypto_free_aead(con->v2.gcm_tfm);
3817 con->v2.gcm_tfm = NULL;
3818 }
3819 }
3820