net/mlx5: Support extended destination format in flow steering command
[linux-2.6-block.git] / drivers / thunderbolt / xdomain.c
CommitLineData
fd3b339c 1// SPDX-License-Identifier: GPL-2.0
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2/*
3 * Thunderbolt XDomain discovery protocol support
4 *
5 * Copyright (C) 2017, Intel Corporation
6 * Authors: Michael Jamet <michael.jamet@intel.com>
7 * Mika Westerberg <mika.westerberg@linux.intel.com>
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8 */
9
10#include <linux/device.h>
11#include <linux/kmod.h>
12#include <linux/module.h>
2d8ff0b5 13#include <linux/pm_runtime.h>
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14#include <linux/utsname.h>
15#include <linux/uuid.h>
16#include <linux/workqueue.h>
17
18#include "tb.h"
19
20#define XDOMAIN_DEFAULT_TIMEOUT 5000 /* ms */
21#define XDOMAIN_PROPERTIES_RETRIES 60
22#define XDOMAIN_PROPERTIES_CHANGED_RETRIES 10
23
24struct xdomain_request_work {
25 struct work_struct work;
26 struct tb_xdp_header *pkg;
27 struct tb *tb;
28};
29
30/* Serializes access to the properties and protocol handlers below */
31static DEFINE_MUTEX(xdomain_lock);
32
33/* Properties exposed to the remote domains */
34static struct tb_property_dir *xdomain_property_dir;
35static u32 *xdomain_property_block;
36static u32 xdomain_property_block_len;
37static u32 xdomain_property_block_gen;
38
39/* Additional protocol handlers */
40static LIST_HEAD(protocol_handlers);
41
42/* UUID for XDomain discovery protocol: b638d70e-42ff-40bb-97c2-90e2c0b2ff07 */
43static const uuid_t tb_xdp_uuid =
44 UUID_INIT(0xb638d70e, 0x42ff, 0x40bb,
45 0x97, 0xc2, 0x90, 0xe2, 0xc0, 0xb2, 0xff, 0x07);
46
47static bool tb_xdomain_match(const struct tb_cfg_request *req,
48 const struct ctl_pkg *pkg)
49{
50 switch (pkg->frame.eof) {
51 case TB_CFG_PKG_ERROR:
52 return true;
53
54 case TB_CFG_PKG_XDOMAIN_RESP: {
55 const struct tb_xdp_header *res_hdr = pkg->buffer;
56 const struct tb_xdp_header *req_hdr = req->request;
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57
58 if (pkg->frame.size < req->response_size / 4)
59 return false;
60
61 /* Make sure route matches */
62 if ((res_hdr->xd_hdr.route_hi & ~BIT(31)) !=
63 req_hdr->xd_hdr.route_hi)
64 return false;
65 if ((res_hdr->xd_hdr.route_lo) != req_hdr->xd_hdr.route_lo)
66 return false;
67
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68 /* Check that the XDomain protocol matches */
69 if (!uuid_equal(&res_hdr->uuid, &req_hdr->uuid))
70 return false;
71
72 return true;
73 }
74
75 default:
76 return false;
77 }
78}
79
80static bool tb_xdomain_copy(struct tb_cfg_request *req,
81 const struct ctl_pkg *pkg)
82{
83 memcpy(req->response, pkg->buffer, req->response_size);
84 req->result.err = 0;
85 return true;
86}
87
88static void response_ready(void *data)
89{
90 tb_cfg_request_put(data);
91}
92
93static int __tb_xdomain_response(struct tb_ctl *ctl, const void *response,
94 size_t size, enum tb_cfg_pkg_type type)
95{
96 struct tb_cfg_request *req;
97
98 req = tb_cfg_request_alloc();
99 if (!req)
100 return -ENOMEM;
101
102 req->match = tb_xdomain_match;
103 req->copy = tb_xdomain_copy;
104 req->request = response;
105 req->request_size = size;
106 req->request_type = type;
107
108 return tb_cfg_request(ctl, req, response_ready, req);
109}
110
111/**
112 * tb_xdomain_response() - Send a XDomain response message
113 * @xd: XDomain to send the message
114 * @response: Response to send
115 * @size: Size of the response
116 * @type: PDF type of the response
117 *
118 * This can be used to send a XDomain response message to the other
119 * domain. No response for the message is expected.
120 *
121 * Return: %0 in case of success and negative errno in case of failure
122 */
123int tb_xdomain_response(struct tb_xdomain *xd, const void *response,
124 size_t size, enum tb_cfg_pkg_type type)
125{
126 return __tb_xdomain_response(xd->tb->ctl, response, size, type);
127}
128EXPORT_SYMBOL_GPL(tb_xdomain_response);
129
130static int __tb_xdomain_request(struct tb_ctl *ctl, const void *request,
131 size_t request_size, enum tb_cfg_pkg_type request_type, void *response,
132 size_t response_size, enum tb_cfg_pkg_type response_type,
133 unsigned int timeout_msec)
134{
135 struct tb_cfg_request *req;
136 struct tb_cfg_result res;
137
138 req = tb_cfg_request_alloc();
139 if (!req)
140 return -ENOMEM;
141
142 req->match = tb_xdomain_match;
143 req->copy = tb_xdomain_copy;
144 req->request = request;
145 req->request_size = request_size;
146 req->request_type = request_type;
147 req->response = response;
148 req->response_size = response_size;
149 req->response_type = response_type;
150
151 res = tb_cfg_request_sync(ctl, req, timeout_msec);
152
153 tb_cfg_request_put(req);
154
155 return res.err == 1 ? -EIO : res.err;
156}
157
158/**
159 * tb_xdomain_request() - Send a XDomain request
160 * @xd: XDomain to send the request
161 * @request: Request to send
162 * @request_size: Size of the request in bytes
163 * @request_type: PDF type of the request
164 * @response: Response is copied here
165 * @response_size: Expected size of the response in bytes
166 * @response_type: Expected PDF type of the response
167 * @timeout_msec: Timeout in milliseconds to wait for the response
168 *
169 * This function can be used to send XDomain control channel messages to
170 * the other domain. The function waits until the response is received
171 * or when timeout triggers. Whichever comes first.
172 *
173 * Return: %0 in case of success and negative errno in case of failure
174 */
175int tb_xdomain_request(struct tb_xdomain *xd, const void *request,
176 size_t request_size, enum tb_cfg_pkg_type request_type,
177 void *response, size_t response_size,
178 enum tb_cfg_pkg_type response_type, unsigned int timeout_msec)
179{
180 return __tb_xdomain_request(xd->tb->ctl, request, request_size,
181 request_type, response, response_size,
182 response_type, timeout_msec);
183}
184EXPORT_SYMBOL_GPL(tb_xdomain_request);
185
186static inline void tb_xdp_fill_header(struct tb_xdp_header *hdr, u64 route,
187 u8 sequence, enum tb_xdp_type type, size_t size)
188{
189 u32 length_sn;
190
191 length_sn = (size - sizeof(hdr->xd_hdr)) / 4;
192 length_sn |= (sequence << TB_XDOMAIN_SN_SHIFT) & TB_XDOMAIN_SN_MASK;
193
194 hdr->xd_hdr.route_hi = upper_32_bits(route);
195 hdr->xd_hdr.route_lo = lower_32_bits(route);
196 hdr->xd_hdr.length_sn = length_sn;
197 hdr->type = type;
198 memcpy(&hdr->uuid, &tb_xdp_uuid, sizeof(tb_xdp_uuid));
199}
200
201static int tb_xdp_handle_error(const struct tb_xdp_header *hdr)
202{
203 const struct tb_xdp_error_response *error;
204
205 if (hdr->type != ERROR_RESPONSE)
206 return 0;
207
208 error = (const struct tb_xdp_error_response *)hdr;
209
210 switch (error->error) {
211 case ERROR_UNKNOWN_PACKET:
212 case ERROR_UNKNOWN_DOMAIN:
213 return -EIO;
214 case ERROR_NOT_SUPPORTED:
215 return -ENOTSUPP;
216 case ERROR_NOT_READY:
217 return -EAGAIN;
218 default:
219 break;
220 }
221
222 return 0;
223}
224
225static int tb_xdp_error_response(struct tb_ctl *ctl, u64 route, u8 sequence,
226 enum tb_xdp_error error)
227{
228 struct tb_xdp_error_response res;
229
230 memset(&res, 0, sizeof(res));
231 tb_xdp_fill_header(&res.hdr, route, sequence, ERROR_RESPONSE,
232 sizeof(res));
233 res.error = error;
234
235 return __tb_xdomain_response(ctl, &res, sizeof(res),
236 TB_CFG_PKG_XDOMAIN_RESP);
237}
238
239static int tb_xdp_properties_request(struct tb_ctl *ctl, u64 route,
240 const uuid_t *src_uuid, const uuid_t *dst_uuid, int retry,
241 u32 **block, u32 *generation)
242{
243 struct tb_xdp_properties_response *res;
244 struct tb_xdp_properties req;
245 u16 data_len, len;
246 size_t total_size;
247 u32 *data = NULL;
248 int ret;
249
250 total_size = sizeof(*res) + TB_XDP_PROPERTIES_MAX_DATA_LENGTH * 4;
251 res = kzalloc(total_size, GFP_KERNEL);
252 if (!res)
253 return -ENOMEM;
254
255 memset(&req, 0, sizeof(req));
256 tb_xdp_fill_header(&req.hdr, route, retry % 4, PROPERTIES_REQUEST,
257 sizeof(req));
258 memcpy(&req.src_uuid, src_uuid, sizeof(*src_uuid));
259 memcpy(&req.dst_uuid, dst_uuid, sizeof(*dst_uuid));
260
261 len = 0;
262 data_len = 0;
263
264 do {
265 ret = __tb_xdomain_request(ctl, &req, sizeof(req),
266 TB_CFG_PKG_XDOMAIN_REQ, res,
267 total_size, TB_CFG_PKG_XDOMAIN_RESP,
268 XDOMAIN_DEFAULT_TIMEOUT);
269 if (ret)
270 goto err;
271
272 ret = tb_xdp_handle_error(&res->hdr);
273 if (ret)
274 goto err;
275
276 /*
277 * Package length includes the whole payload without the
278 * XDomain header. Validate first that the package is at
279 * least size of the response structure.
280 */
281 len = res->hdr.xd_hdr.length_sn & TB_XDOMAIN_LENGTH_MASK;
282 if (len < sizeof(*res) / 4) {
283 ret = -EINVAL;
284 goto err;
285 }
286
287 len += sizeof(res->hdr.xd_hdr) / 4;
288 len -= sizeof(*res) / 4;
289
290 if (res->offset != req.offset) {
291 ret = -EINVAL;
292 goto err;
293 }
294
295 /*
296 * First time allocate block that has enough space for
297 * the whole properties block.
298 */
299 if (!data) {
300 data_len = res->data_length;
301 if (data_len > TB_XDP_PROPERTIES_MAX_LENGTH) {
302 ret = -E2BIG;
303 goto err;
304 }
305
306 data = kcalloc(data_len, sizeof(u32), GFP_KERNEL);
307 if (!data) {
308 ret = -ENOMEM;
309 goto err;
310 }
311 }
312
313 memcpy(data + req.offset, res->data, len * 4);
314 req.offset += len;
315 } while (!data_len || req.offset < data_len);
316
317 *block = data;
318 *generation = res->generation;
319
320 kfree(res);
321
322 return data_len;
323
324err:
325 kfree(data);
326 kfree(res);
327
328 return ret;
329}
330
331static int tb_xdp_properties_response(struct tb *tb, struct tb_ctl *ctl,
332 u64 route, u8 sequence, const uuid_t *src_uuid,
333 const struct tb_xdp_properties *req)
334{
335 struct tb_xdp_properties_response *res;
336 size_t total_size;
337 u16 len;
338 int ret;
339
340 /*
341 * Currently we expect all requests to be directed to us. The
342 * protocol supports forwarding, though which we might add
343 * support later on.
344 */
345 if (!uuid_equal(src_uuid, &req->dst_uuid)) {
346 tb_xdp_error_response(ctl, route, sequence,
347 ERROR_UNKNOWN_DOMAIN);
348 return 0;
349 }
350
351 mutex_lock(&xdomain_lock);
352
353 if (req->offset >= xdomain_property_block_len) {
354 mutex_unlock(&xdomain_lock);
355 return -EINVAL;
356 }
357
358 len = xdomain_property_block_len - req->offset;
359 len = min_t(u16, len, TB_XDP_PROPERTIES_MAX_DATA_LENGTH);
360 total_size = sizeof(*res) + len * 4;
361
362 res = kzalloc(total_size, GFP_KERNEL);
363 if (!res) {
364 mutex_unlock(&xdomain_lock);
365 return -ENOMEM;
366 }
367
368 tb_xdp_fill_header(&res->hdr, route, sequence, PROPERTIES_RESPONSE,
369 total_size);
370 res->generation = xdomain_property_block_gen;
371 res->data_length = xdomain_property_block_len;
372 res->offset = req->offset;
373 uuid_copy(&res->src_uuid, src_uuid);
374 uuid_copy(&res->dst_uuid, &req->src_uuid);
375 memcpy(res->data, &xdomain_property_block[req->offset], len * 4);
376
377 mutex_unlock(&xdomain_lock);
378
379 ret = __tb_xdomain_response(ctl, res, total_size,
380 TB_CFG_PKG_XDOMAIN_RESP);
381
382 kfree(res);
383 return ret;
384}
385
386static int tb_xdp_properties_changed_request(struct tb_ctl *ctl, u64 route,
387 int retry, const uuid_t *uuid)
388{
389 struct tb_xdp_properties_changed_response res;
390 struct tb_xdp_properties_changed req;
391 int ret;
392
393 memset(&req, 0, sizeof(req));
394 tb_xdp_fill_header(&req.hdr, route, retry % 4,
395 PROPERTIES_CHANGED_REQUEST, sizeof(req));
396 uuid_copy(&req.src_uuid, uuid);
397
398 memset(&res, 0, sizeof(res));
399 ret = __tb_xdomain_request(ctl, &req, sizeof(req),
400 TB_CFG_PKG_XDOMAIN_REQ, &res, sizeof(res),
401 TB_CFG_PKG_XDOMAIN_RESP,
402 XDOMAIN_DEFAULT_TIMEOUT);
403 if (ret)
404 return ret;
405
406 return tb_xdp_handle_error(&res.hdr);
407}
408
409static int
410tb_xdp_properties_changed_response(struct tb_ctl *ctl, u64 route, u8 sequence)
411{
412 struct tb_xdp_properties_changed_response res;
413
414 memset(&res, 0, sizeof(res));
415 tb_xdp_fill_header(&res.hdr, route, sequence,
416 PROPERTIES_CHANGED_RESPONSE, sizeof(res));
417 return __tb_xdomain_response(ctl, &res, sizeof(res),
418 TB_CFG_PKG_XDOMAIN_RESP);
419}
420
421/**
422 * tb_register_protocol_handler() - Register protocol handler
423 * @handler: Handler to register
424 *
425 * This allows XDomain service drivers to hook into incoming XDomain
426 * messages. After this function is called the service driver needs to
427 * be able to handle calls to callback whenever a package with the
428 * registered protocol is received.
429 */
430int tb_register_protocol_handler(struct tb_protocol_handler *handler)
431{
432 if (!handler->uuid || !handler->callback)
433 return -EINVAL;
434 if (uuid_equal(handler->uuid, &tb_xdp_uuid))
435 return -EINVAL;
436
437 mutex_lock(&xdomain_lock);
438 list_add_tail(&handler->list, &protocol_handlers);
439 mutex_unlock(&xdomain_lock);
440
441 return 0;
442}
443EXPORT_SYMBOL_GPL(tb_register_protocol_handler);
444
445/**
446 * tb_unregister_protocol_handler() - Unregister protocol handler
447 * @handler: Handler to unregister
448 *
449 * Removes the previously registered protocol handler.
450 */
451void tb_unregister_protocol_handler(struct tb_protocol_handler *handler)
452{
453 mutex_lock(&xdomain_lock);
454 list_del_init(&handler->list);
455 mutex_unlock(&xdomain_lock);
456}
457EXPORT_SYMBOL_GPL(tb_unregister_protocol_handler);
458
459static void tb_xdp_handle_request(struct work_struct *work)
460{
461 struct xdomain_request_work *xw = container_of(work, typeof(*xw), work);
462 const struct tb_xdp_header *pkg = xw->pkg;
463 const struct tb_xdomain_header *xhdr = &pkg->xd_hdr;
464 struct tb *tb = xw->tb;
465 struct tb_ctl *ctl = tb->ctl;
466 const uuid_t *uuid;
467 int ret = 0;
9a03c3d3 468 u32 sequence;
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469 u64 route;
470
471 route = ((u64)xhdr->route_hi << 32 | xhdr->route_lo) & ~BIT_ULL(63);
472 sequence = xhdr->length_sn & TB_XDOMAIN_SN_MASK;
473 sequence >>= TB_XDOMAIN_SN_SHIFT;
474
475 mutex_lock(&tb->lock);
476 if (tb->root_switch)
477 uuid = tb->root_switch->uuid;
478 else
479 uuid = NULL;
480 mutex_unlock(&tb->lock);
481
482 if (!uuid) {
483 tb_xdp_error_response(ctl, route, sequence, ERROR_NOT_READY);
484 goto out;
485 }
486
487 switch (pkg->type) {
488 case PROPERTIES_REQUEST:
489 ret = tb_xdp_properties_response(tb, ctl, route, sequence, uuid,
490 (const struct tb_xdp_properties *)pkg);
491 break;
492
493 case PROPERTIES_CHANGED_REQUEST: {
494 const struct tb_xdp_properties_changed *xchg =
495 (const struct tb_xdp_properties_changed *)pkg;
496 struct tb_xdomain *xd;
497
498 ret = tb_xdp_properties_changed_response(ctl, route, sequence);
499
500 /*
501 * Since the properties have been changed, let's update
502 * the xdomain related to this connection as well in
503 * case there is a change in services it offers.
504 */
505 xd = tb_xdomain_find_by_uuid_locked(tb, &xchg->src_uuid);
506 if (xd) {
507 queue_delayed_work(tb->wq, &xd->get_properties_work,
508 msecs_to_jiffies(50));
509 tb_xdomain_put(xd);
510 }
511
512 break;
513 }
514
515 default:
516 break;
517 }
518
519 if (ret) {
520 tb_warn(tb, "failed to send XDomain response for %#x\n",
521 pkg->type);
522 }
523
524out:
525 kfree(xw->pkg);
526 kfree(xw);
527}
528
529static void
530tb_xdp_schedule_request(struct tb *tb, const struct tb_xdp_header *hdr,
531 size_t size)
532{
533 struct xdomain_request_work *xw;
534
535 xw = kmalloc(sizeof(*xw), GFP_KERNEL);
536 if (!xw)
537 return;
538
539 INIT_WORK(&xw->work, tb_xdp_handle_request);
540 xw->pkg = kmemdup(hdr, size, GFP_KERNEL);
541 xw->tb = tb;
542
543 queue_work(tb->wq, &xw->work);
544}
545
546/**
547 * tb_register_service_driver() - Register XDomain service driver
548 * @drv: Driver to register
549 *
550 * Registers new service driver from @drv to the bus.
551 */
552int tb_register_service_driver(struct tb_service_driver *drv)
553{
554 drv->driver.bus = &tb_bus_type;
555 return driver_register(&drv->driver);
556}
557EXPORT_SYMBOL_GPL(tb_register_service_driver);
558
559/**
560 * tb_unregister_service_driver() - Unregister XDomain service driver
561 * @xdrv: Driver to unregister
562 *
563 * Unregisters XDomain service driver from the bus.
564 */
565void tb_unregister_service_driver(struct tb_service_driver *drv)
566{
567 driver_unregister(&drv->driver);
568}
569EXPORT_SYMBOL_GPL(tb_unregister_service_driver);
570
571static ssize_t key_show(struct device *dev, struct device_attribute *attr,
572 char *buf)
573{
574 struct tb_service *svc = container_of(dev, struct tb_service, dev);
575
576 /*
577 * It should be null terminated but anything else is pretty much
578 * allowed.
579 */
580 return sprintf(buf, "%*pEp\n", (int)strlen(svc->key), svc->key);
581}
582static DEVICE_ATTR_RO(key);
583
584static int get_modalias(struct tb_service *svc, char *buf, size_t size)
585{
586 return snprintf(buf, size, "tbsvc:k%sp%08Xv%08Xr%08X", svc->key,
587 svc->prtcid, svc->prtcvers, svc->prtcrevs);
588}
589
590static ssize_t modalias_show(struct device *dev, struct device_attribute *attr,
591 char *buf)
592{
593 struct tb_service *svc = container_of(dev, struct tb_service, dev);
594
595 /* Full buffer size except new line and null termination */
596 get_modalias(svc, buf, PAGE_SIZE - 2);
597 return sprintf(buf, "%s\n", buf);
598}
599static DEVICE_ATTR_RO(modalias);
600
601static ssize_t prtcid_show(struct device *dev, struct device_attribute *attr,
602 char *buf)
603{
604 struct tb_service *svc = container_of(dev, struct tb_service, dev);
605
606 return sprintf(buf, "%u\n", svc->prtcid);
607}
608static DEVICE_ATTR_RO(prtcid);
609
610static ssize_t prtcvers_show(struct device *dev, struct device_attribute *attr,
611 char *buf)
612{
613 struct tb_service *svc = container_of(dev, struct tb_service, dev);
614
615 return sprintf(buf, "%u\n", svc->prtcvers);
616}
617static DEVICE_ATTR_RO(prtcvers);
618
619static ssize_t prtcrevs_show(struct device *dev, struct device_attribute *attr,
620 char *buf)
621{
622 struct tb_service *svc = container_of(dev, struct tb_service, dev);
623
624 return sprintf(buf, "%u\n", svc->prtcrevs);
625}
626static DEVICE_ATTR_RO(prtcrevs);
627
628static ssize_t prtcstns_show(struct device *dev, struct device_attribute *attr,
629 char *buf)
630{
631 struct tb_service *svc = container_of(dev, struct tb_service, dev);
632
633 return sprintf(buf, "0x%08x\n", svc->prtcstns);
634}
635static DEVICE_ATTR_RO(prtcstns);
636
637static struct attribute *tb_service_attrs[] = {
638 &dev_attr_key.attr,
639 &dev_attr_modalias.attr,
640 &dev_attr_prtcid.attr,
641 &dev_attr_prtcvers.attr,
642 &dev_attr_prtcrevs.attr,
643 &dev_attr_prtcstns.attr,
644 NULL,
645};
646
647static struct attribute_group tb_service_attr_group = {
648 .attrs = tb_service_attrs,
649};
650
651static const struct attribute_group *tb_service_attr_groups[] = {
652 &tb_service_attr_group,
653 NULL,
654};
655
656static int tb_service_uevent(struct device *dev, struct kobj_uevent_env *env)
657{
658 struct tb_service *svc = container_of(dev, struct tb_service, dev);
659 char modalias[64];
660
661 get_modalias(svc, modalias, sizeof(modalias));
662 return add_uevent_var(env, "MODALIAS=%s", modalias);
663}
664
665static void tb_service_release(struct device *dev)
666{
667 struct tb_service *svc = container_of(dev, struct tb_service, dev);
668 struct tb_xdomain *xd = tb_service_parent(svc);
669
670 ida_simple_remove(&xd->service_ids, svc->id);
671 kfree(svc->key);
672 kfree(svc);
673}
674
675struct device_type tb_service_type = {
676 .name = "thunderbolt_service",
677 .groups = tb_service_attr_groups,
678 .uevent = tb_service_uevent,
679 .release = tb_service_release,
680};
681EXPORT_SYMBOL_GPL(tb_service_type);
682
683static int remove_missing_service(struct device *dev, void *data)
684{
685 struct tb_xdomain *xd = data;
686 struct tb_service *svc;
687
688 svc = tb_to_service(dev);
689 if (!svc)
690 return 0;
691
692 if (!tb_property_find(xd->properties, svc->key,
693 TB_PROPERTY_TYPE_DIRECTORY))
694 device_unregister(dev);
695
696 return 0;
697}
698
699static int find_service(struct device *dev, void *data)
700{
701 const struct tb_property *p = data;
702 struct tb_service *svc;
703
704 svc = tb_to_service(dev);
705 if (!svc)
706 return 0;
707
708 return !strcmp(svc->key, p->key);
709}
710
711static int populate_service(struct tb_service *svc,
712 struct tb_property *property)
713{
714 struct tb_property_dir *dir = property->value.dir;
715 struct tb_property *p;
716
717 /* Fill in standard properties */
718 p = tb_property_find(dir, "prtcid", TB_PROPERTY_TYPE_VALUE);
719 if (p)
720 svc->prtcid = p->value.immediate;
721 p = tb_property_find(dir, "prtcvers", TB_PROPERTY_TYPE_VALUE);
722 if (p)
723 svc->prtcvers = p->value.immediate;
724 p = tb_property_find(dir, "prtcrevs", TB_PROPERTY_TYPE_VALUE);
725 if (p)
726 svc->prtcrevs = p->value.immediate;
727 p = tb_property_find(dir, "prtcstns", TB_PROPERTY_TYPE_VALUE);
728 if (p)
729 svc->prtcstns = p->value.immediate;
730
731 svc->key = kstrdup(property->key, GFP_KERNEL);
732 if (!svc->key)
733 return -ENOMEM;
734
735 return 0;
736}
737
738static void enumerate_services(struct tb_xdomain *xd)
739{
740 struct tb_service *svc;
741 struct tb_property *p;
742 struct device *dev;
743
744 /*
745 * First remove all services that are not available anymore in
746 * the updated property block.
747 */
748 device_for_each_child_reverse(&xd->dev, xd, remove_missing_service);
749
750 /* Then re-enumerate properties creating new services as we go */
751 tb_property_for_each(xd->properties, p) {
752 if (p->type != TB_PROPERTY_TYPE_DIRECTORY)
753 continue;
754
755 /* If the service exists already we are fine */
756 dev = device_find_child(&xd->dev, p, find_service);
757 if (dev) {
758 put_device(dev);
759 continue;
760 }
761
762 svc = kzalloc(sizeof(*svc), GFP_KERNEL);
763 if (!svc)
764 break;
765
766 if (populate_service(svc, p)) {
767 kfree(svc);
768 break;
769 }
770
771 svc->id = ida_simple_get(&xd->service_ids, 0, 0, GFP_KERNEL);
772 svc->dev.bus = &tb_bus_type;
773 svc->dev.type = &tb_service_type;
774 svc->dev.parent = &xd->dev;
775 dev_set_name(&svc->dev, "%s.%d", dev_name(&xd->dev), svc->id);
776
777 if (device_register(&svc->dev)) {
778 put_device(&svc->dev);
779 break;
780 }
781 }
782}
783
784static int populate_properties(struct tb_xdomain *xd,
785 struct tb_property_dir *dir)
786{
787 const struct tb_property *p;
788
789 /* Required properties */
790 p = tb_property_find(dir, "deviceid", TB_PROPERTY_TYPE_VALUE);
791 if (!p)
792 return -EINVAL;
793 xd->device = p->value.immediate;
794
795 p = tb_property_find(dir, "vendorid", TB_PROPERTY_TYPE_VALUE);
796 if (!p)
797 return -EINVAL;
798 xd->vendor = p->value.immediate;
799
800 kfree(xd->device_name);
801 xd->device_name = NULL;
802 kfree(xd->vendor_name);
803 xd->vendor_name = NULL;
804
805 /* Optional properties */
806 p = tb_property_find(dir, "deviceid", TB_PROPERTY_TYPE_TEXT);
807 if (p)
808 xd->device_name = kstrdup(p->value.text, GFP_KERNEL);
809 p = tb_property_find(dir, "vendorid", TB_PROPERTY_TYPE_TEXT);
810 if (p)
811 xd->vendor_name = kstrdup(p->value.text, GFP_KERNEL);
812
813 return 0;
814}
815
816/* Called with @xd->lock held */
817static void tb_xdomain_restore_paths(struct tb_xdomain *xd)
818{
819 if (!xd->resume)
820 return;
821
822 xd->resume = false;
823 if (xd->transmit_path) {
824 dev_dbg(&xd->dev, "re-establishing DMA path\n");
825 tb_domain_approve_xdomain_paths(xd->tb, xd);
826 }
827}
828
829static void tb_xdomain_get_properties(struct work_struct *work)
830{
831 struct tb_xdomain *xd = container_of(work, typeof(*xd),
832 get_properties_work.work);
833 struct tb_property_dir *dir;
834 struct tb *tb = xd->tb;
835 bool update = false;
836 u32 *block = NULL;
837 u32 gen = 0;
838 int ret;
839
840 ret = tb_xdp_properties_request(tb->ctl, xd->route, xd->local_uuid,
841 xd->remote_uuid, xd->properties_retries,
842 &block, &gen);
843 if (ret < 0) {
844 if (xd->properties_retries-- > 0) {
845 queue_delayed_work(xd->tb->wq, &xd->get_properties_work,
846 msecs_to_jiffies(1000));
847 } else {
848 /* Give up now */
849 dev_err(&xd->dev,
850 "failed read XDomain properties from %pUb\n",
851 xd->remote_uuid);
852 }
853 return;
854 }
855
856 xd->properties_retries = XDOMAIN_PROPERTIES_RETRIES;
857
858 mutex_lock(&xd->lock);
859
860 /* Only accept newer generation properties */
861 if (xd->properties && gen <= xd->property_block_gen) {
862 /*
863 * On resume it is likely that the properties block is
864 * not changed (unless the other end added or removed
865 * services). However, we need to make sure the existing
866 * DMA paths are restored properly.
867 */
868 tb_xdomain_restore_paths(xd);
869 goto err_free_block;
870 }
871
872 dir = tb_property_parse_dir(block, ret);
873 if (!dir) {
874 dev_err(&xd->dev, "failed to parse XDomain properties\n");
875 goto err_free_block;
876 }
877
878 ret = populate_properties(xd, dir);
879 if (ret) {
880 dev_err(&xd->dev, "missing XDomain properties in response\n");
881 goto err_free_dir;
882 }
883
884 /* Release the existing one */
885 if (xd->properties) {
886 tb_property_free_dir(xd->properties);
887 update = true;
888 }
889
890 xd->properties = dir;
891 xd->property_block_gen = gen;
892
893 tb_xdomain_restore_paths(xd);
894
895 mutex_unlock(&xd->lock);
896
897 kfree(block);
898
899 /*
900 * Now the device should be ready enough so we can add it to the
901 * bus and let userspace know about it. If the device is already
902 * registered, we notify the userspace that it has changed.
903 */
904 if (!update) {
905 if (device_add(&xd->dev)) {
906 dev_err(&xd->dev, "failed to add XDomain device\n");
907 return;
908 }
909 } else {
910 kobject_uevent(&xd->dev.kobj, KOBJ_CHANGE);
911 }
912
913 enumerate_services(xd);
914 return;
915
916err_free_dir:
917 tb_property_free_dir(dir);
918err_free_block:
919 kfree(block);
920 mutex_unlock(&xd->lock);
921}
922
923static void tb_xdomain_properties_changed(struct work_struct *work)
924{
925 struct tb_xdomain *xd = container_of(work, typeof(*xd),
926 properties_changed_work.work);
927 int ret;
928
929 ret = tb_xdp_properties_changed_request(xd->tb->ctl, xd->route,
930 xd->properties_changed_retries, xd->local_uuid);
931 if (ret) {
932 if (xd->properties_changed_retries-- > 0)
933 queue_delayed_work(xd->tb->wq,
934 &xd->properties_changed_work,
935 msecs_to_jiffies(1000));
936 return;
937 }
938
939 xd->properties_changed_retries = XDOMAIN_PROPERTIES_CHANGED_RETRIES;
940}
941
942static ssize_t device_show(struct device *dev, struct device_attribute *attr,
943 char *buf)
944{
945 struct tb_xdomain *xd = container_of(dev, struct tb_xdomain, dev);
946
947 return sprintf(buf, "%#x\n", xd->device);
948}
949static DEVICE_ATTR_RO(device);
950
951static ssize_t
952device_name_show(struct device *dev, struct device_attribute *attr, char *buf)
953{
954 struct tb_xdomain *xd = container_of(dev, struct tb_xdomain, dev);
955 int ret;
956
957 if (mutex_lock_interruptible(&xd->lock))
958 return -ERESTARTSYS;
959 ret = sprintf(buf, "%s\n", xd->device_name ? xd->device_name : "");
960 mutex_unlock(&xd->lock);
961
962 return ret;
963}
964static DEVICE_ATTR_RO(device_name);
965
966static ssize_t vendor_show(struct device *dev, struct device_attribute *attr,
967 char *buf)
968{
969 struct tb_xdomain *xd = container_of(dev, struct tb_xdomain, dev);
970
971 return sprintf(buf, "%#x\n", xd->vendor);
972}
973static DEVICE_ATTR_RO(vendor);
974
975static ssize_t
976vendor_name_show(struct device *dev, struct device_attribute *attr, char *buf)
977{
978 struct tb_xdomain *xd = container_of(dev, struct tb_xdomain, dev);
979 int ret;
980
981 if (mutex_lock_interruptible(&xd->lock))
982 return -ERESTARTSYS;
983 ret = sprintf(buf, "%s\n", xd->vendor_name ? xd->vendor_name : "");
984 mutex_unlock(&xd->lock);
985
986 return ret;
987}
988static DEVICE_ATTR_RO(vendor_name);
989
990static ssize_t unique_id_show(struct device *dev, struct device_attribute *attr,
991 char *buf)
992{
993 struct tb_xdomain *xd = container_of(dev, struct tb_xdomain, dev);
994
995 return sprintf(buf, "%pUb\n", xd->remote_uuid);
996}
997static DEVICE_ATTR_RO(unique_id);
998
999static struct attribute *xdomain_attrs[] = {
1000 &dev_attr_device.attr,
1001 &dev_attr_device_name.attr,
1002 &dev_attr_unique_id.attr,
1003 &dev_attr_vendor.attr,
1004 &dev_attr_vendor_name.attr,
1005 NULL,
1006};
1007
1008static struct attribute_group xdomain_attr_group = {
1009 .attrs = xdomain_attrs,
1010};
1011
1012static const struct attribute_group *xdomain_attr_groups[] = {
1013 &xdomain_attr_group,
1014 NULL,
1015};
1016
1017static void tb_xdomain_release(struct device *dev)
1018{
1019 struct tb_xdomain *xd = container_of(dev, struct tb_xdomain, dev);
1020
1021 put_device(xd->dev.parent);
1022
1023 tb_property_free_dir(xd->properties);
1024 ida_destroy(&xd->service_ids);
1025
1026 kfree(xd->local_uuid);
1027 kfree(xd->remote_uuid);
1028 kfree(xd->device_name);
1029 kfree(xd->vendor_name);
1030 kfree(xd);
1031}
1032
1033static void start_handshake(struct tb_xdomain *xd)
1034{
1035 xd->properties_retries = XDOMAIN_PROPERTIES_RETRIES;
1036 xd->properties_changed_retries = XDOMAIN_PROPERTIES_CHANGED_RETRIES;
1037
1038 /* Start exchanging properties with the other host */
1039 queue_delayed_work(xd->tb->wq, &xd->properties_changed_work,
1040 msecs_to_jiffies(100));
1041 queue_delayed_work(xd->tb->wq, &xd->get_properties_work,
1042 msecs_to_jiffies(1000));
1043}
1044
1045static void stop_handshake(struct tb_xdomain *xd)
1046{
1047 xd->properties_retries = 0;
1048 xd->properties_changed_retries = 0;
1049
1050 cancel_delayed_work_sync(&xd->get_properties_work);
1051 cancel_delayed_work_sync(&xd->properties_changed_work);
1052}
1053
1054static int __maybe_unused tb_xdomain_suspend(struct device *dev)
1055{
1056 stop_handshake(tb_to_xdomain(dev));
1057 return 0;
1058}
1059
1060static int __maybe_unused tb_xdomain_resume(struct device *dev)
1061{
1062 struct tb_xdomain *xd = tb_to_xdomain(dev);
1063
1064 /*
1065 * Ask tb_xdomain_get_properties() restore any existing DMA
1066 * paths after properties are re-read.
1067 */
1068 xd->resume = true;
1069 start_handshake(xd);
1070
1071 return 0;
1072}
1073
1074static const struct dev_pm_ops tb_xdomain_pm_ops = {
1075 SET_SYSTEM_SLEEP_PM_OPS(tb_xdomain_suspend, tb_xdomain_resume)
1076};
1077
1078struct device_type tb_xdomain_type = {
1079 .name = "thunderbolt_xdomain",
1080 .release = tb_xdomain_release,
1081 .pm = &tb_xdomain_pm_ops,
1082};
1083EXPORT_SYMBOL_GPL(tb_xdomain_type);
1084
1085/**
1086 * tb_xdomain_alloc() - Allocate new XDomain object
1087 * @tb: Domain where the XDomain belongs
1088 * @parent: Parent device (the switch through the connection to the
1089 * other domain is reached).
1090 * @route: Route string used to reach the other domain
1091 * @local_uuid: Our local domain UUID
1092 * @remote_uuid: UUID of the other domain
1093 *
1094 * Allocates new XDomain structure and returns pointer to that. The
1095 * object must be released by calling tb_xdomain_put().
1096 */
1097struct tb_xdomain *tb_xdomain_alloc(struct tb *tb, struct device *parent,
1098 u64 route, const uuid_t *local_uuid,
1099 const uuid_t *remote_uuid)
1100{
1101 struct tb_xdomain *xd;
1102
1103 xd = kzalloc(sizeof(*xd), GFP_KERNEL);
1104 if (!xd)
1105 return NULL;
1106
1107 xd->tb = tb;
1108 xd->route = route;
1109 ida_init(&xd->service_ids);
1110 mutex_init(&xd->lock);
1111 INIT_DELAYED_WORK(&xd->get_properties_work, tb_xdomain_get_properties);
1112 INIT_DELAYED_WORK(&xd->properties_changed_work,
1113 tb_xdomain_properties_changed);
1114
1115 xd->local_uuid = kmemdup(local_uuid, sizeof(uuid_t), GFP_KERNEL);
1116 if (!xd->local_uuid)
1117 goto err_free;
1118
1119 xd->remote_uuid = kmemdup(remote_uuid, sizeof(uuid_t), GFP_KERNEL);
1120 if (!xd->remote_uuid)
1121 goto err_free_local_uuid;
1122
1123 device_initialize(&xd->dev);
1124 xd->dev.parent = get_device(parent);
1125 xd->dev.bus = &tb_bus_type;
1126 xd->dev.type = &tb_xdomain_type;
1127 xd->dev.groups = xdomain_attr_groups;
1128 dev_set_name(&xd->dev, "%u-%llx", tb->index, route);
1129
2d8ff0b5
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1130 /*
1131 * This keeps the DMA powered on as long as we have active
1132 * connection to another host.
1133 */
1134 pm_runtime_set_active(&xd->dev);
1135 pm_runtime_get_noresume(&xd->dev);
1136 pm_runtime_enable(&xd->dev);
1137
d1ff7024
MW
1138 return xd;
1139
1140err_free_local_uuid:
1141 kfree(xd->local_uuid);
1142err_free:
1143 kfree(xd);
1144
1145 return NULL;
1146}
1147
1148/**
1149 * tb_xdomain_add() - Add XDomain to the bus
1150 * @xd: XDomain to add
1151 *
1152 * This function starts XDomain discovery protocol handshake and
1153 * eventually adds the XDomain to the bus. After calling this function
1154 * the caller needs to call tb_xdomain_remove() in order to remove and
1155 * release the object regardless whether the handshake succeeded or not.
1156 */
1157void tb_xdomain_add(struct tb_xdomain *xd)
1158{
1159 /* Start exchanging properties with the other host */
1160 start_handshake(xd);
1161}
1162
1163static int unregister_service(struct device *dev, void *data)
1164{
1165 device_unregister(dev);
1166 return 0;
1167}
1168
1169/**
1170 * tb_xdomain_remove() - Remove XDomain from the bus
1171 * @xd: XDomain to remove
1172 *
1173 * This will stop all ongoing configuration work and remove the XDomain
1174 * along with any services from the bus. When the last reference to @xd
1175 * is released the object will be released as well.
1176 */
1177void tb_xdomain_remove(struct tb_xdomain *xd)
1178{
1179 stop_handshake(xd);
1180
1181 device_for_each_child_reverse(&xd->dev, xd, unregister_service);
1182
2d8ff0b5
MW
1183 /*
1184 * Undo runtime PM here explicitly because it is possible that
1185 * the XDomain was never added to the bus and thus device_del()
1186 * is not called for it (device_del() would handle this otherwise).
1187 */
1188 pm_runtime_disable(&xd->dev);
1189 pm_runtime_put_noidle(&xd->dev);
1190 pm_runtime_set_suspended(&xd->dev);
1191
d1ff7024
MW
1192 if (!device_is_registered(&xd->dev))
1193 put_device(&xd->dev);
1194 else
1195 device_unregister(&xd->dev);
1196}
1197
1198/**
1199 * tb_xdomain_enable_paths() - Enable DMA paths for XDomain connection
1200 * @xd: XDomain connection
1201 * @transmit_path: HopID of the transmit path the other end is using to
1202 * send packets
1203 * @transmit_ring: DMA ring used to receive packets from the other end
1204 * @receive_path: HopID of the receive path the other end is using to
1205 * receive packets
1206 * @receive_ring: DMA ring used to send packets to the other end
1207 *
1208 * The function enables DMA paths accordingly so that after successful
1209 * return the caller can send and receive packets using high-speed DMA
1210 * path.
1211 *
1212 * Return: %0 in case of success and negative errno in case of error
1213 */
1214int tb_xdomain_enable_paths(struct tb_xdomain *xd, u16 transmit_path,
1215 u16 transmit_ring, u16 receive_path,
1216 u16 receive_ring)
1217{
1218 int ret;
1219
1220 mutex_lock(&xd->lock);
1221
1222 if (xd->transmit_path) {
1223 ret = xd->transmit_path == transmit_path ? 0 : -EBUSY;
1224 goto exit_unlock;
1225 }
1226
1227 xd->transmit_path = transmit_path;
1228 xd->transmit_ring = transmit_ring;
1229 xd->receive_path = receive_path;
1230 xd->receive_ring = receive_ring;
1231
1232 ret = tb_domain_approve_xdomain_paths(xd->tb, xd);
1233
1234exit_unlock:
1235 mutex_unlock(&xd->lock);
1236
1237 return ret;
1238}
1239EXPORT_SYMBOL_GPL(tb_xdomain_enable_paths);
1240
1241/**
1242 * tb_xdomain_disable_paths() - Disable DMA paths for XDomain connection
1243 * @xd: XDomain connection
1244 *
1245 * This does the opposite of tb_xdomain_enable_paths(). After call to
1246 * this the caller is not expected to use the rings anymore.
1247 *
1248 * Return: %0 in case of success and negative errno in case of error
1249 */
1250int tb_xdomain_disable_paths(struct tb_xdomain *xd)
1251{
1252 int ret = 0;
1253
1254 mutex_lock(&xd->lock);
1255 if (xd->transmit_path) {
1256 xd->transmit_path = 0;
1257 xd->transmit_ring = 0;
1258 xd->receive_path = 0;
1259 xd->receive_ring = 0;
1260
1261 ret = tb_domain_disconnect_xdomain_paths(xd->tb, xd);
1262 }
1263 mutex_unlock(&xd->lock);
1264
1265 return ret;
1266}
1267EXPORT_SYMBOL_GPL(tb_xdomain_disable_paths);
1268
1269struct tb_xdomain_lookup {
1270 const uuid_t *uuid;
1271 u8 link;
1272 u8 depth;
484cb153 1273 u64 route;
d1ff7024
MW
1274};
1275
1276static struct tb_xdomain *switch_find_xdomain(struct tb_switch *sw,
1277 const struct tb_xdomain_lookup *lookup)
1278{
1279 int i;
1280
1281 for (i = 1; i <= sw->config.max_port_number; i++) {
1282 struct tb_port *port = &sw->ports[i];
1283 struct tb_xdomain *xd;
1284
1285 if (tb_is_upstream_port(port))
1286 continue;
1287
1288 if (port->xdomain) {
1289 xd = port->xdomain;
1290
1291 if (lookup->uuid) {
1292 if (uuid_equal(xd->remote_uuid, lookup->uuid))
1293 return xd;
484cb153
RM
1294 } else if (lookup->link &&
1295 lookup->link == xd->link &&
d1ff7024
MW
1296 lookup->depth == xd->depth) {
1297 return xd;
484cb153
RM
1298 } else if (lookup->route &&
1299 lookup->route == xd->route) {
1300 return xd;
d1ff7024
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1301 }
1302 } else if (port->remote) {
1303 xd = switch_find_xdomain(port->remote->sw, lookup);
1304 if (xd)
1305 return xd;
1306 }
1307 }
1308
1309 return NULL;
1310}
1311
1312/**
1313 * tb_xdomain_find_by_uuid() - Find an XDomain by UUID
1314 * @tb: Domain where the XDomain belongs to
1315 * @uuid: UUID to look for
1316 *
1317 * Finds XDomain by walking through the Thunderbolt topology below @tb.
1318 * The returned XDomain will have its reference count increased so the
1319 * caller needs to call tb_xdomain_put() when it is done with the
1320 * object.
1321 *
1322 * This will find all XDomains including the ones that are not yet added
1323 * to the bus (handshake is still in progress).
1324 *
1325 * The caller needs to hold @tb->lock.
1326 */
1327struct tb_xdomain *tb_xdomain_find_by_uuid(struct tb *tb, const uuid_t *uuid)
1328{
1329 struct tb_xdomain_lookup lookup;
1330 struct tb_xdomain *xd;
1331
1332 memset(&lookup, 0, sizeof(lookup));
1333 lookup.uuid = uuid;
1334
1335 xd = switch_find_xdomain(tb->root_switch, &lookup);
484cb153 1336 return tb_xdomain_get(xd);
d1ff7024
MW
1337}
1338EXPORT_SYMBOL_GPL(tb_xdomain_find_by_uuid);
1339
1340/**
1341 * tb_xdomain_find_by_link_depth() - Find an XDomain by link and depth
1342 * @tb: Domain where the XDomain belongs to
1343 * @link: Root switch link number
1344 * @depth: Depth in the link
1345 *
1346 * Finds XDomain by walking through the Thunderbolt topology below @tb.
1347 * The returned XDomain will have its reference count increased so the
1348 * caller needs to call tb_xdomain_put() when it is done with the
1349 * object.
1350 *
1351 * This will find all XDomains including the ones that are not yet added
1352 * to the bus (handshake is still in progress).
1353 *
1354 * The caller needs to hold @tb->lock.
1355 */
1356struct tb_xdomain *tb_xdomain_find_by_link_depth(struct tb *tb, u8 link,
1357 u8 depth)
1358{
1359 struct tb_xdomain_lookup lookup;
1360 struct tb_xdomain *xd;
1361
1362 memset(&lookup, 0, sizeof(lookup));
1363 lookup.link = link;
1364 lookup.depth = depth;
1365
1366 xd = switch_find_xdomain(tb->root_switch, &lookup);
484cb153
RM
1367 return tb_xdomain_get(xd);
1368}
d1ff7024 1369
484cb153
RM
1370/**
1371 * tb_xdomain_find_by_route() - Find an XDomain by route string
1372 * @tb: Domain where the XDomain belongs to
1373 * @route: XDomain route string
1374 *
1375 * Finds XDomain by walking through the Thunderbolt topology below @tb.
1376 * The returned XDomain will have its reference count increased so the
1377 * caller needs to call tb_xdomain_put() when it is done with the
1378 * object.
1379 *
1380 * This will find all XDomains including the ones that are not yet added
1381 * to the bus (handshake is still in progress).
1382 *
1383 * The caller needs to hold @tb->lock.
1384 */
1385struct tb_xdomain *tb_xdomain_find_by_route(struct tb *tb, u64 route)
1386{
1387 struct tb_xdomain_lookup lookup;
1388 struct tb_xdomain *xd;
1389
1390 memset(&lookup, 0, sizeof(lookup));
1391 lookup.route = route;
1392
1393 xd = switch_find_xdomain(tb->root_switch, &lookup);
1394 return tb_xdomain_get(xd);
d1ff7024 1395}
484cb153 1396EXPORT_SYMBOL_GPL(tb_xdomain_find_by_route);
d1ff7024
MW
1397
1398bool tb_xdomain_handle_request(struct tb *tb, enum tb_cfg_pkg_type type,
1399 const void *buf, size_t size)
1400{
1401 const struct tb_protocol_handler *handler, *tmp;
1402 const struct tb_xdp_header *hdr = buf;
1403 unsigned int length;
1404 int ret = 0;
1405
1406 /* We expect the packet is at least size of the header */
1407 length = hdr->xd_hdr.length_sn & TB_XDOMAIN_LENGTH_MASK;
1408 if (length != size / 4 - sizeof(hdr->xd_hdr) / 4)
1409 return true;
1410 if (length < sizeof(*hdr) / 4 - sizeof(hdr->xd_hdr) / 4)
1411 return true;
1412
1413 /*
1414 * Handle XDomain discovery protocol packets directly here. For
1415 * other protocols (based on their UUID) we call registered
1416 * handlers in turn.
1417 */
1418 if (uuid_equal(&hdr->uuid, &tb_xdp_uuid)) {
1419 if (type == TB_CFG_PKG_XDOMAIN_REQ) {
1420 tb_xdp_schedule_request(tb, hdr, size);
1421 return true;
1422 }
1423 return false;
1424 }
1425
1426 mutex_lock(&xdomain_lock);
1427 list_for_each_entry_safe(handler, tmp, &protocol_handlers, list) {
1428 if (!uuid_equal(&hdr->uuid, handler->uuid))
1429 continue;
1430
1431 mutex_unlock(&xdomain_lock);
1432 ret = handler->callback(buf, size, handler->data);
1433 mutex_lock(&xdomain_lock);
1434
1435 if (ret)
1436 break;
1437 }
1438 mutex_unlock(&xdomain_lock);
1439
1440 return ret > 0;
1441}
1442
1443static int rebuild_property_block(void)
1444{
1445 u32 *block, len;
1446 int ret;
1447
1448 ret = tb_property_format_dir(xdomain_property_dir, NULL, 0);
1449 if (ret < 0)
1450 return ret;
1451
1452 len = ret;
1453
1454 block = kcalloc(len, sizeof(u32), GFP_KERNEL);
1455 if (!block)
1456 return -ENOMEM;
1457
1458 ret = tb_property_format_dir(xdomain_property_dir, block, len);
1459 if (ret) {
1460 kfree(block);
1461 return ret;
1462 }
1463
1464 kfree(xdomain_property_block);
1465 xdomain_property_block = block;
1466 xdomain_property_block_len = len;
1467 xdomain_property_block_gen++;
1468
1469 return 0;
1470}
1471
1472static int update_xdomain(struct device *dev, void *data)
1473{
1474 struct tb_xdomain *xd;
1475
1476 xd = tb_to_xdomain(dev);
1477 if (xd) {
1478 queue_delayed_work(xd->tb->wq, &xd->properties_changed_work,
1479 msecs_to_jiffies(50));
1480 }
1481
1482 return 0;
1483}
1484
1485static void update_all_xdomains(void)
1486{
1487 bus_for_each_dev(&tb_bus_type, NULL, NULL, update_xdomain);
1488}
1489
1490static bool remove_directory(const char *key, const struct tb_property_dir *dir)
1491{
1492 struct tb_property *p;
1493
1494 p = tb_property_find(xdomain_property_dir, key,
1495 TB_PROPERTY_TYPE_DIRECTORY);
1496 if (p && p->value.dir == dir) {
1497 tb_property_remove(p);
1498 return true;
1499 }
1500 return false;
1501}
1502
1503/**
1504 * tb_register_property_dir() - Register property directory to the host
1505 * @key: Key (name) of the directory to add
1506 * @dir: Directory to add
1507 *
1508 * Service drivers can use this function to add new property directory
1509 * to the host available properties. The other connected hosts are
1510 * notified so they can re-read properties of this host if they are
1511 * interested.
1512 *
1513 * Return: %0 on success and negative errno on failure
1514 */
1515int tb_register_property_dir(const char *key, struct tb_property_dir *dir)
1516{
1517 int ret;
1518
acb40d84
MW
1519 if (WARN_ON(!xdomain_property_dir))
1520 return -EAGAIN;
1521
d1ff7024
MW
1522 if (!key || strlen(key) > 8)
1523 return -EINVAL;
1524
1525 mutex_lock(&xdomain_lock);
1526 if (tb_property_find(xdomain_property_dir, key,
1527 TB_PROPERTY_TYPE_DIRECTORY)) {
1528 ret = -EEXIST;
1529 goto err_unlock;
1530 }
1531
1532 ret = tb_property_add_dir(xdomain_property_dir, key, dir);
1533 if (ret)
1534 goto err_unlock;
1535
1536 ret = rebuild_property_block();
1537 if (ret) {
1538 remove_directory(key, dir);
1539 goto err_unlock;
1540 }
1541
1542 mutex_unlock(&xdomain_lock);
1543 update_all_xdomains();
1544 return 0;
1545
1546err_unlock:
1547 mutex_unlock(&xdomain_lock);
1548 return ret;
1549}
1550EXPORT_SYMBOL_GPL(tb_register_property_dir);
1551
1552/**
1553 * tb_unregister_property_dir() - Removes property directory from host
1554 * @key: Key (name) of the directory
1555 * @dir: Directory to remove
1556 *
1557 * This will remove the existing directory from this host and notify the
1558 * connected hosts about the change.
1559 */
1560void tb_unregister_property_dir(const char *key, struct tb_property_dir *dir)
1561{
1562 int ret = 0;
1563
1564 mutex_lock(&xdomain_lock);
1565 if (remove_directory(key, dir))
1566 ret = rebuild_property_block();
1567 mutex_unlock(&xdomain_lock);
1568
1569 if (!ret)
1570 update_all_xdomains();
1571}
1572EXPORT_SYMBOL_GPL(tb_unregister_property_dir);
1573
1574int tb_xdomain_init(void)
1575{
1576 int ret;
1577
1578 xdomain_property_dir = tb_property_create_dir(NULL);
1579 if (!xdomain_property_dir)
1580 return -ENOMEM;
1581
1582 /*
1583 * Initialize standard set of properties without any service
1584 * directories. Those will be added by service drivers
1585 * themselves when they are loaded.
1586 */
1587 tb_property_add_immediate(xdomain_property_dir, "vendorid",
1588 PCI_VENDOR_ID_INTEL);
1589 tb_property_add_text(xdomain_property_dir, "vendorid", "Intel Corp.");
1590 tb_property_add_immediate(xdomain_property_dir, "deviceid", 0x1);
1591 tb_property_add_text(xdomain_property_dir, "deviceid",
1592 utsname()->nodename);
1593 tb_property_add_immediate(xdomain_property_dir, "devicerv", 0x80000100);
1594
1595 ret = rebuild_property_block();
1596 if (ret) {
1597 tb_property_free_dir(xdomain_property_dir);
1598 xdomain_property_dir = NULL;
1599 }
1600
1601 return ret;
1602}
1603
1604void tb_xdomain_exit(void)
1605{
1606 kfree(xdomain_property_block);
1607 tb_property_free_dir(xdomain_property_dir);
1608}