1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Thunderbolt driver - Tunneling support
4 *
5 * Copyright (c) 2014 Andreas Noever <andreas.noever@gmail.com>
6 * Copyright (C) 2019, Intel Corporation
7 */
8
9 #include <linux/delay.h>
10 #include <linux/slab.h>
11 #include <linux/list.h>
12 #include <linux/ktime.h>
13 #include <linux/string_helpers.h>
14
15 #include "tunnel.h"
16 #include "tb.h"
17
18 /* PCIe adapters use always HopID of 8 for both directions */
19 #define TB_PCI_HOPID 8
20
21 #define TB_PCI_PATH_DOWN 0
22 #define TB_PCI_PATH_UP 1
23
24 #define TB_PCI_PRIORITY 3
25 #define TB_PCI_WEIGHT 1
26
27 /* USB3 adapters use always HopID of 8 for both directions */
28 #define TB_USB3_HOPID 8
29
30 #define TB_USB3_PATH_DOWN 0
31 #define TB_USB3_PATH_UP 1
32
33 #define TB_USB3_PRIORITY 3
34 #define TB_USB3_WEIGHT 2
35
36 /* DP adapters use HopID 8 for AUX and 9 for Video */
37 #define TB_DP_AUX_TX_HOPID 8
38 #define TB_DP_AUX_RX_HOPID 8
39 #define TB_DP_VIDEO_HOPID 9
40
41 #define TB_DP_VIDEO_PATH_OUT 0
42 #define TB_DP_AUX_PATH_OUT 1
43 #define TB_DP_AUX_PATH_IN 2
44
45 #define TB_DP_VIDEO_PRIORITY 1
46 #define TB_DP_VIDEO_WEIGHT 1
47
48 #define TB_DP_AUX_PRIORITY 2
49 #define TB_DP_AUX_WEIGHT 1
50
51 /* Minimum number of credits needed for PCIe path */
52 #define TB_MIN_PCIE_CREDITS 6U
53 /*
54 * Number of credits we try to allocate for each DMA path if not limited
55 * by the host router baMaxHI.
56 */
57 #define TB_DMA_CREDITS 14
58 /* Minimum number of credits for DMA path */
59 #define TB_MIN_DMA_CREDITS 1
60
61 #define TB_DMA_PRIORITY 5
62 #define TB_DMA_WEIGHT 1
63
64 /*
65 * Reserve additional bandwidth for USB 3.x and PCIe bulk traffic
66 * according to USB4 v2 Connection Manager guide. This ends up reserving
67 * 1500 Mb/s for PCIe and 3000 Mb/s for USB 3.x taking weights into
68 * account.
69 */
70 #define USB4_V2_PCI_MIN_BANDWIDTH (1500 * TB_PCI_WEIGHT)
71 #define USB4_V2_USB3_MIN_BANDWIDTH (1500 * TB_USB3_WEIGHT)
72
73 /*
74 * According to VESA spec, the DPRX negotiation shall compete in 5
75 * seconds after tunnel is established. Since at least i915 can runtime
76 * suspend if there is nothing connected, and that it polls any new
77 * connections every 10 seconds, we use 12 seconds here.
78 *
79 * These are in ms.
80 */
81 #define TB_DPRX_TIMEOUT 12000
82 #define TB_DPRX_WAIT_TIMEOUT 25
83 #define TB_DPRX_POLL_DELAY 50
84
85 static int dprx_timeout = TB_DPRX_TIMEOUT;
86 module_param(dprx_timeout, int, 0444);
87 MODULE_PARM_DESC(dprx_timeout,
88 "DPRX capability read timeout in ms, -1 waits forever (default: "
89 __MODULE_STRING(TB_DPRX_TIMEOUT) ")");
90
91 static unsigned int dma_credits = TB_DMA_CREDITS;
92 module_param(dma_credits, uint, 0444);
93 MODULE_PARM_DESC(dma_credits, "specify custom credits for DMA tunnels (default: "
94 __MODULE_STRING(TB_DMA_CREDITS) ")");
95
96 static bool bw_alloc_mode = true;
97 module_param(bw_alloc_mode, bool, 0444);
98 MODULE_PARM_DESC(bw_alloc_mode,
99 "enable bandwidth allocation mode if supported (default: true)");
100
101 static const char * const tb_tunnel_names[] = { "PCI", "DP", "DMA", "USB3" };
102
103 static const char * const tb_event_names[] = {
104 [TB_TUNNEL_ACTIVATED] = "activated",
105 [TB_TUNNEL_CHANGED] = "changed",
106 [TB_TUNNEL_DEACTIVATED] = "deactivated",
107 [TB_TUNNEL_LOW_BANDWIDTH] = "low bandwidth",
108 [TB_TUNNEL_NO_BANDWIDTH] = "insufficient bandwidth",
109 };
110
111 /* Synchronizes kref_get()/put() of struct tb_tunnel */
112 static DEFINE_MUTEX(tb_tunnel_lock);
113
tb_usable_credits(const struct tb_port * port)114 static inline unsigned int tb_usable_credits(const struct tb_port *port)
115 {
116 return port->total_credits - port->ctl_credits;
117 }
118
119 /**
120 * tb_available_credits() - Available credits for PCIe and DMA
121 * @port: Lane adapter to check
122 * @max_dp_streams: If non-%NULL stores maximum number of simultaneous DP
123 * streams possible through this lane adapter
124 */
tb_available_credits(const struct tb_port * port,size_t * max_dp_streams)125 static unsigned int tb_available_credits(const struct tb_port *port,
126 size_t *max_dp_streams)
127 {
128 const struct tb_switch *sw = port->sw;
129 int credits, usb3, pcie, spare;
130 size_t ndp;
131
132 usb3 = tb_acpi_may_tunnel_usb3() ? sw->max_usb3_credits : 0;
133 pcie = tb_acpi_may_tunnel_pcie() ? sw->max_pcie_credits : 0;
134
135 if (tb_acpi_is_xdomain_allowed()) {
136 spare = min_not_zero(sw->max_dma_credits, dma_credits);
137 /* Add some credits for potential second DMA tunnel */
138 spare += TB_MIN_DMA_CREDITS;
139 } else {
140 spare = 0;
141 }
142
143 credits = tb_usable_credits(port);
144 if (tb_acpi_may_tunnel_dp()) {
145 /*
146 * Maximum number of DP streams possible through the
147 * lane adapter.
148 */
149 if (sw->min_dp_aux_credits + sw->min_dp_main_credits)
150 ndp = (credits - (usb3 + pcie + spare)) /
151 (sw->min_dp_aux_credits + sw->min_dp_main_credits);
152 else
153 ndp = 0;
154 } else {
155 ndp = 0;
156 }
157 credits -= ndp * (sw->min_dp_aux_credits + sw->min_dp_main_credits);
158 credits -= usb3;
159
160 if (max_dp_streams)
161 *max_dp_streams = ndp;
162
163 return credits > 0 ? credits : 0;
164 }
165
tb_init_pm_support(struct tb_path_hop * hop)166 static void tb_init_pm_support(struct tb_path_hop *hop)
167 {
168 struct tb_port *out_port = hop->out_port;
169 struct tb_port *in_port = hop->in_port;
170
171 if (tb_port_is_null(in_port) && tb_port_is_null(out_port) &&
172 usb4_switch_version(in_port->sw) >= 2)
173 hop->pm_support = true;
174 }
175
tb_tunnel_alloc(struct tb * tb,size_t npaths,enum tb_tunnel_type type)176 static struct tb_tunnel *tb_tunnel_alloc(struct tb *tb, size_t npaths,
177 enum tb_tunnel_type type)
178 {
179 struct tb_tunnel *tunnel;
180
181 tunnel = kzalloc(sizeof(*tunnel), GFP_KERNEL);
182 if (!tunnel)
183 return NULL;
184
185 tunnel->paths = kcalloc(npaths, sizeof(tunnel->paths[0]), GFP_KERNEL);
186 if (!tunnel->paths) {
187 kfree(tunnel);
188 return NULL;
189 }
190
191 INIT_LIST_HEAD(&tunnel->list);
192 tunnel->tb = tb;
193 tunnel->npaths = npaths;
194 tunnel->type = type;
195 kref_init(&tunnel->kref);
196
197 return tunnel;
198 }
199
tb_tunnel_get(struct tb_tunnel * tunnel)200 static void tb_tunnel_get(struct tb_tunnel *tunnel)
201 {
202 mutex_lock(&tb_tunnel_lock);
203 kref_get(&tunnel->kref);
204 mutex_unlock(&tb_tunnel_lock);
205 }
206
tb_tunnel_destroy(struct kref * kref)207 static void tb_tunnel_destroy(struct kref *kref)
208 {
209 struct tb_tunnel *tunnel = container_of(kref, typeof(*tunnel), kref);
210 int i;
211
212 if (tunnel->destroy)
213 tunnel->destroy(tunnel);
214
215 for (i = 0; i < tunnel->npaths; i++) {
216 if (tunnel->paths[i])
217 tb_path_free(tunnel->paths[i]);
218 }
219
220 kfree(tunnel->paths);
221 kfree(tunnel);
222 }
223
tb_tunnel_put(struct tb_tunnel * tunnel)224 void tb_tunnel_put(struct tb_tunnel *tunnel)
225 {
226 mutex_lock(&tb_tunnel_lock);
227 kref_put(&tunnel->kref, tb_tunnel_destroy);
228 mutex_unlock(&tb_tunnel_lock);
229 }
230
231 /**
232 * tb_tunnel_event() - Notify userspace about tunneling event
233 * @tb: Domain where the event occurred
234 * @event: Event that happened
235 * @type: Type of the tunnel in question
236 * @src_port: Tunnel source port (can be %NULL)
237 * @dst_port: Tunnel destination port (can be %NULL)
238 *
239 * Notifies userspace about tunneling @event in the domain. The tunnel
240 * does not need to exist (e.g the tunnel was not activated because
241 * there is not enough bandwidth). If the @src_port and @dst_port are
242 * given fill in full %TUNNEL_DETAILS environment variable. Otherwise
243 * uses the shorter one (just the tunnel type).
244 */
tb_tunnel_event(struct tb * tb,enum tb_tunnel_event event,enum tb_tunnel_type type,const struct tb_port * src_port,const struct tb_port * dst_port)245 void tb_tunnel_event(struct tb *tb, enum tb_tunnel_event event,
246 enum tb_tunnel_type type,
247 const struct tb_port *src_port,
248 const struct tb_port *dst_port)
249 {
250 char *envp[3] = { NULL };
251
252 if (WARN_ON_ONCE(event >= ARRAY_SIZE(tb_event_names)))
253 return;
254 if (WARN_ON_ONCE(type >= ARRAY_SIZE(tb_tunnel_names)))
255 return;
256
257 envp[0] = kasprintf(GFP_KERNEL, "TUNNEL_EVENT=%s", tb_event_names[event]);
258 if (!envp[0])
259 return;
260
261 if (src_port != NULL && dst_port != NULL) {
262 envp[1] = kasprintf(GFP_KERNEL, "TUNNEL_DETAILS=%llx:%u <-> %llx:%u (%s)",
263 tb_route(src_port->sw), src_port->port,
264 tb_route(dst_port->sw), dst_port->port,
265 tb_tunnel_names[type]);
266 } else {
267 envp[1] = kasprintf(GFP_KERNEL, "TUNNEL_DETAILS=(%s)",
268 tb_tunnel_names[type]);
269 }
270
271 if (envp[1])
272 tb_domain_event(tb, envp);
273
274 kfree(envp[1]);
275 kfree(envp[0]);
276 }
277
tb_tunnel_set_active(struct tb_tunnel * tunnel,bool active)278 static inline void tb_tunnel_set_active(struct tb_tunnel *tunnel, bool active)
279 {
280 if (active) {
281 tunnel->state = TB_TUNNEL_ACTIVE;
282 tb_tunnel_event(tunnel->tb, TB_TUNNEL_ACTIVATED, tunnel->type,
283 tunnel->src_port, tunnel->dst_port);
284 } else {
285 tunnel->state = TB_TUNNEL_INACTIVE;
286 tb_tunnel_event(tunnel->tb, TB_TUNNEL_DEACTIVATED, tunnel->type,
287 tunnel->src_port, tunnel->dst_port);
288 }
289 }
290
tb_tunnel_changed(struct tb_tunnel * tunnel)291 static inline void tb_tunnel_changed(struct tb_tunnel *tunnel)
292 {
293 tb_tunnel_event(tunnel->tb, TB_TUNNEL_CHANGED, tunnel->type,
294 tunnel->src_port, tunnel->dst_port);
295 }
296
tb_pci_set_ext_encapsulation(struct tb_tunnel * tunnel,bool enable)297 static int tb_pci_set_ext_encapsulation(struct tb_tunnel *tunnel, bool enable)
298 {
299 struct tb_port *port = tb_upstream_port(tunnel->dst_port->sw);
300 int ret;
301
302 /* Only supported of both routers are at least USB4 v2 */
303 if ((usb4_switch_version(tunnel->src_port->sw) < 2) ||
304 (usb4_switch_version(tunnel->dst_port->sw) < 2))
305 return 0;
306
307 if (enable && tb_port_get_link_generation(port) < 4)
308 return 0;
309
310 ret = usb4_pci_port_set_ext_encapsulation(tunnel->src_port, enable);
311 if (ret)
312 return ret;
313
314 /*
315 * Downstream router could be unplugged so disable of encapsulation
316 * in upstream router is still possible.
317 */
318 ret = usb4_pci_port_set_ext_encapsulation(tunnel->dst_port, enable);
319 if (ret) {
320 if (enable)
321 return ret;
322 if (ret != -ENODEV)
323 return ret;
324 }
325
326 tb_tunnel_dbg(tunnel, "extended encapsulation %s\n",
327 str_enabled_disabled(enable));
328 return 0;
329 }
330
tb_pci_activate(struct tb_tunnel * tunnel,bool activate)331 static int tb_pci_activate(struct tb_tunnel *tunnel, bool activate)
332 {
333 int res;
334
335 if (activate) {
336 res = tb_pci_set_ext_encapsulation(tunnel, activate);
337 if (res)
338 return res;
339 }
340
341 if (activate)
342 res = tb_pci_port_enable(tunnel->dst_port, activate);
343 else
344 res = tb_pci_port_enable(tunnel->src_port, activate);
345 if (res)
346 return res;
347
348
349 if (activate) {
350 res = tb_pci_port_enable(tunnel->src_port, activate);
351 if (res)
352 return res;
353 } else {
354 /* Downstream router could be unplugged */
355 tb_pci_port_enable(tunnel->dst_port, activate);
356 }
357
358 return activate ? 0 : tb_pci_set_ext_encapsulation(tunnel, activate);
359 }
360
tb_pci_init_credits(struct tb_path_hop * hop)361 static int tb_pci_init_credits(struct tb_path_hop *hop)
362 {
363 struct tb_port *port = hop->in_port;
364 struct tb_switch *sw = port->sw;
365 unsigned int credits;
366
367 if (tb_port_use_credit_allocation(port)) {
368 unsigned int available;
369
370 available = tb_available_credits(port, NULL);
371 credits = min(sw->max_pcie_credits, available);
372
373 if (credits < TB_MIN_PCIE_CREDITS)
374 return -ENOSPC;
375
376 credits = max(TB_MIN_PCIE_CREDITS, credits);
377 } else {
378 if (tb_port_is_null(port))
379 credits = port->bonded ? 32 : 16;
380 else
381 credits = 7;
382 }
383
384 hop->initial_credits = credits;
385 return 0;
386 }
387
tb_pci_init_path(struct tb_path * path)388 static int tb_pci_init_path(struct tb_path *path)
389 {
390 struct tb_path_hop *hop;
391
392 path->egress_fc_enable = TB_PATH_SOURCE | TB_PATH_INTERNAL;
393 path->egress_shared_buffer = TB_PATH_NONE;
394 path->ingress_fc_enable = TB_PATH_ALL;
395 path->ingress_shared_buffer = TB_PATH_NONE;
396 path->priority = TB_PCI_PRIORITY;
397 path->weight = TB_PCI_WEIGHT;
398 path->drop_packages = 0;
399
400 tb_path_for_each_hop(path, hop) {
401 int ret;
402
403 ret = tb_pci_init_credits(hop);
404 if (ret)
405 return ret;
406 }
407
408 return 0;
409 }
410
411 /**
412 * tb_tunnel_discover_pci() - Discover existing PCIe tunnels
413 * @tb: Pointer to the domain structure
414 * @down: PCIe downstream adapter
415 * @alloc_hopid: Allocate HopIDs from visited ports
416 *
417 * If @down adapter is active, follows the tunnel to the PCIe upstream
418 * adapter and back. Returns the discovered tunnel or %NULL if there was
419 * no tunnel.
420 */
tb_tunnel_discover_pci(struct tb * tb,struct tb_port * down,bool alloc_hopid)421 struct tb_tunnel *tb_tunnel_discover_pci(struct tb *tb, struct tb_port *down,
422 bool alloc_hopid)
423 {
424 struct tb_tunnel *tunnel;
425 struct tb_path *path;
426
427 if (!tb_pci_port_is_enabled(down))
428 return NULL;
429
430 tunnel = tb_tunnel_alloc(tb, 2, TB_TUNNEL_PCI);
431 if (!tunnel)
432 return NULL;
433
434 tunnel->activate = tb_pci_activate;
435 tunnel->src_port = down;
436
437 /*
438 * Discover both paths even if they are not complete. We will
439 * clean them up by calling tb_tunnel_deactivate() below in that
440 * case.
441 */
442 path = tb_path_discover(down, TB_PCI_HOPID, NULL, -1,
443 &tunnel->dst_port, "PCIe Up", alloc_hopid);
444 if (!path) {
445 /* Just disable the downstream port */
446 tb_pci_port_enable(down, false);
447 goto err_free;
448 }
449 tunnel->paths[TB_PCI_PATH_UP] = path;
450 if (tb_pci_init_path(tunnel->paths[TB_PCI_PATH_UP]))
451 goto err_free;
452
453 path = tb_path_discover(tunnel->dst_port, -1, down, TB_PCI_HOPID, NULL,
454 "PCIe Down", alloc_hopid);
455 if (!path)
456 goto err_deactivate;
457 tunnel->paths[TB_PCI_PATH_DOWN] = path;
458 if (tb_pci_init_path(tunnel->paths[TB_PCI_PATH_DOWN]))
459 goto err_deactivate;
460
461 /* Validate that the tunnel is complete */
462 if (!tb_port_is_pcie_up(tunnel->dst_port)) {
463 tb_port_warn(tunnel->dst_port,
464 "path does not end on a PCIe adapter, cleaning up\n");
465 goto err_deactivate;
466 }
467
468 if (down != tunnel->src_port) {
469 tb_tunnel_warn(tunnel, "path is not complete, cleaning up\n");
470 goto err_deactivate;
471 }
472
473 if (!tb_pci_port_is_enabled(tunnel->dst_port)) {
474 tb_tunnel_warn(tunnel,
475 "tunnel is not fully activated, cleaning up\n");
476 goto err_deactivate;
477 }
478
479 tb_tunnel_dbg(tunnel, "discovered\n");
480 return tunnel;
481
482 err_deactivate:
483 tb_tunnel_deactivate(tunnel);
484 err_free:
485 tb_tunnel_put(tunnel);
486
487 return NULL;
488 }
489
490 /**
491 * tb_tunnel_alloc_pci() - allocate a pci tunnel
492 * @tb: Pointer to the domain structure
493 * @up: PCIe upstream adapter port
494 * @down: PCIe downstream adapter port
495 *
496 * Allocate a PCI tunnel. The ports must be of type TB_TYPE_PCIE_UP and
497 * TB_TYPE_PCIE_DOWN.
498 *
499 * Return: Returns a tb_tunnel on success or NULL on failure.
500 */
tb_tunnel_alloc_pci(struct tb * tb,struct tb_port * up,struct tb_port * down)501 struct tb_tunnel *tb_tunnel_alloc_pci(struct tb *tb, struct tb_port *up,
502 struct tb_port *down)
503 {
504 struct tb_tunnel *tunnel;
505 struct tb_path *path;
506
507 tunnel = tb_tunnel_alloc(tb, 2, TB_TUNNEL_PCI);
508 if (!tunnel)
509 return NULL;
510
511 tunnel->activate = tb_pci_activate;
512 tunnel->src_port = down;
513 tunnel->dst_port = up;
514
515 path = tb_path_alloc(tb, down, TB_PCI_HOPID, up, TB_PCI_HOPID, 0,
516 "PCIe Down");
517 if (!path)
518 goto err_free;
519 tunnel->paths[TB_PCI_PATH_DOWN] = path;
520 if (tb_pci_init_path(path))
521 goto err_free;
522
523 path = tb_path_alloc(tb, up, TB_PCI_HOPID, down, TB_PCI_HOPID, 0,
524 "PCIe Up");
525 if (!path)
526 goto err_free;
527 tunnel->paths[TB_PCI_PATH_UP] = path;
528 if (tb_pci_init_path(path))
529 goto err_free;
530
531 return tunnel;
532
533 err_free:
534 tb_tunnel_put(tunnel);
535 return NULL;
536 }
537
538 /**
539 * tb_tunnel_reserved_pci() - Amount of bandwidth to reserve for PCIe
540 * @port: Lane 0 adapter
541 * @reserved_up: Upstream bandwidth in Mb/s to reserve
542 * @reserved_down: Downstream bandwidth in Mb/s to reserve
543 *
544 * Can be called to any connected lane 0 adapter to find out how much
545 * bandwidth needs to be left in reserve for possible PCIe bulk traffic.
546 * Returns true if there is something to be reserved and writes the
547 * amount to @reserved_down/@reserved_up. Otherwise returns false and
548 * does not touch the parameters.
549 */
tb_tunnel_reserved_pci(struct tb_port * port,int * reserved_up,int * reserved_down)550 bool tb_tunnel_reserved_pci(struct tb_port *port, int *reserved_up,
551 int *reserved_down)
552 {
553 if (WARN_ON_ONCE(!port->remote))
554 return false;
555
556 if (!tb_acpi_may_tunnel_pcie())
557 return false;
558
559 if (tb_port_get_link_generation(port) < 4)
560 return false;
561
562 /* Must have PCIe adapters */
563 if (tb_is_upstream_port(port)) {
564 if (!tb_switch_find_port(port->sw, TB_TYPE_PCIE_UP))
565 return false;
566 if (!tb_switch_find_port(port->remote->sw, TB_TYPE_PCIE_DOWN))
567 return false;
568 } else {
569 if (!tb_switch_find_port(port->sw, TB_TYPE_PCIE_DOWN))
570 return false;
571 if (!tb_switch_find_port(port->remote->sw, TB_TYPE_PCIE_UP))
572 return false;
573 }
574
575 *reserved_up = USB4_V2_PCI_MIN_BANDWIDTH;
576 *reserved_down = USB4_V2_PCI_MIN_BANDWIDTH;
577
578 tb_port_dbg(port, "reserving %u/%u Mb/s for PCIe\n", *reserved_up,
579 *reserved_down);
580 return true;
581 }
582
tb_dp_is_usb4(const struct tb_switch * sw)583 static bool tb_dp_is_usb4(const struct tb_switch *sw)
584 {
585 /* Titan Ridge DP adapters need the same treatment as USB4 */
586 return tb_switch_is_usb4(sw) || tb_switch_is_titan_ridge(sw);
587 }
588
tb_dp_cm_handshake(struct tb_port * in,struct tb_port * out,int timeout_msec)589 static int tb_dp_cm_handshake(struct tb_port *in, struct tb_port *out,
590 int timeout_msec)
591 {
592 ktime_t timeout = ktime_add_ms(ktime_get(), timeout_msec);
593 u32 val;
594 int ret;
595
596 /* Both ends need to support this */
597 if (!tb_dp_is_usb4(in->sw) || !tb_dp_is_usb4(out->sw))
598 return 0;
599
600 ret = tb_port_read(out, &val, TB_CFG_PORT,
601 out->cap_adap + DP_STATUS_CTRL, 1);
602 if (ret)
603 return ret;
604
605 val |= DP_STATUS_CTRL_UF | DP_STATUS_CTRL_CMHS;
606
607 ret = tb_port_write(out, &val, TB_CFG_PORT,
608 out->cap_adap + DP_STATUS_CTRL, 1);
609 if (ret)
610 return ret;
611
612 do {
613 ret = tb_port_read(out, &val, TB_CFG_PORT,
614 out->cap_adap + DP_STATUS_CTRL, 1);
615 if (ret)
616 return ret;
617 if (!(val & DP_STATUS_CTRL_CMHS))
618 return 0;
619 usleep_range(100, 150);
620 } while (ktime_before(ktime_get(), timeout));
621
622 return -ETIMEDOUT;
623 }
624
625 /*
626 * Returns maximum possible rate from capability supporting only DP 2.0
627 * and below. Used when DP BW allocation mode is not enabled.
628 */
tb_dp_cap_get_rate(u32 val)629 static inline u32 tb_dp_cap_get_rate(u32 val)
630 {
631 u32 rate = (val & DP_COMMON_CAP_RATE_MASK) >> DP_COMMON_CAP_RATE_SHIFT;
632
633 switch (rate) {
634 case DP_COMMON_CAP_RATE_RBR:
635 return 1620;
636 case DP_COMMON_CAP_RATE_HBR:
637 return 2700;
638 case DP_COMMON_CAP_RATE_HBR2:
639 return 5400;
640 case DP_COMMON_CAP_RATE_HBR3:
641 return 8100;
642 default:
643 return 0;
644 }
645 }
646
647 /*
648 * Returns maximum possible rate from capability supporting DP 2.1
649 * UHBR20, 13.5 and 10 rates as well. Use only when DP BW allocation
650 * mode is enabled.
651 */
tb_dp_cap_get_rate_ext(u32 val)652 static inline u32 tb_dp_cap_get_rate_ext(u32 val)
653 {
654 if (val & DP_COMMON_CAP_UHBR20)
655 return 20000;
656 else if (val & DP_COMMON_CAP_UHBR13_5)
657 return 13500;
658 else if (val & DP_COMMON_CAP_UHBR10)
659 return 10000;
660
661 return tb_dp_cap_get_rate(val);
662 }
663
tb_dp_is_uhbr_rate(unsigned int rate)664 static inline bool tb_dp_is_uhbr_rate(unsigned int rate)
665 {
666 return rate >= 10000;
667 }
668
tb_dp_cap_set_rate(u32 val,u32 rate)669 static inline u32 tb_dp_cap_set_rate(u32 val, u32 rate)
670 {
671 val &= ~DP_COMMON_CAP_RATE_MASK;
672 switch (rate) {
673 default:
674 WARN(1, "invalid rate %u passed, defaulting to 1620 MB/s\n", rate);
675 fallthrough;
676 case 1620:
677 val |= DP_COMMON_CAP_RATE_RBR << DP_COMMON_CAP_RATE_SHIFT;
678 break;
679 case 2700:
680 val |= DP_COMMON_CAP_RATE_HBR << DP_COMMON_CAP_RATE_SHIFT;
681 break;
682 case 5400:
683 val |= DP_COMMON_CAP_RATE_HBR2 << DP_COMMON_CAP_RATE_SHIFT;
684 break;
685 case 8100:
686 val |= DP_COMMON_CAP_RATE_HBR3 << DP_COMMON_CAP_RATE_SHIFT;
687 break;
688 }
689 return val;
690 }
691
tb_dp_cap_get_lanes(u32 val)692 static inline u32 tb_dp_cap_get_lanes(u32 val)
693 {
694 u32 lanes = (val & DP_COMMON_CAP_LANES_MASK) >> DP_COMMON_CAP_LANES_SHIFT;
695
696 switch (lanes) {
697 case DP_COMMON_CAP_1_LANE:
698 return 1;
699 case DP_COMMON_CAP_2_LANES:
700 return 2;
701 case DP_COMMON_CAP_4_LANES:
702 return 4;
703 default:
704 return 0;
705 }
706 }
707
tb_dp_cap_set_lanes(u32 val,u32 lanes)708 static inline u32 tb_dp_cap_set_lanes(u32 val, u32 lanes)
709 {
710 val &= ~DP_COMMON_CAP_LANES_MASK;
711 switch (lanes) {
712 default:
713 WARN(1, "invalid number of lanes %u passed, defaulting to 1\n",
714 lanes);
715 fallthrough;
716 case 1:
717 val |= DP_COMMON_CAP_1_LANE << DP_COMMON_CAP_LANES_SHIFT;
718 break;
719 case 2:
720 val |= DP_COMMON_CAP_2_LANES << DP_COMMON_CAP_LANES_SHIFT;
721 break;
722 case 4:
723 val |= DP_COMMON_CAP_4_LANES << DP_COMMON_CAP_LANES_SHIFT;
724 break;
725 }
726 return val;
727 }
728
tb_dp_bandwidth(unsigned int rate,unsigned int lanes)729 static unsigned int tb_dp_bandwidth(unsigned int rate, unsigned int lanes)
730 {
731 /* Tunneling removes the DP 8b/10b 128/132b encoding */
732 if (tb_dp_is_uhbr_rate(rate))
733 return rate * lanes * 128 / 132;
734 return rate * lanes * 8 / 10;
735 }
736
tb_dp_reduce_bandwidth(int max_bw,u32 in_rate,u32 in_lanes,u32 out_rate,u32 out_lanes,u32 * new_rate,u32 * new_lanes)737 static int tb_dp_reduce_bandwidth(int max_bw, u32 in_rate, u32 in_lanes,
738 u32 out_rate, u32 out_lanes, u32 *new_rate,
739 u32 *new_lanes)
740 {
741 static const u32 dp_bw[][2] = {
742 /* Mb/s, lanes */
743 { 8100, 4 }, /* 25920 Mb/s */
744 { 5400, 4 }, /* 17280 Mb/s */
745 { 8100, 2 }, /* 12960 Mb/s */
746 { 2700, 4 }, /* 8640 Mb/s */
747 { 5400, 2 }, /* 8640 Mb/s */
748 { 8100, 1 }, /* 6480 Mb/s */
749 { 1620, 4 }, /* 5184 Mb/s */
750 { 5400, 1 }, /* 4320 Mb/s */
751 { 2700, 2 }, /* 4320 Mb/s */
752 { 1620, 2 }, /* 2592 Mb/s */
753 { 2700, 1 }, /* 2160 Mb/s */
754 { 1620, 1 }, /* 1296 Mb/s */
755 };
756 unsigned int i;
757
758 /*
759 * Find a combination that can fit into max_bw and does not
760 * exceed the maximum rate and lanes supported by the DP OUT and
761 * DP IN adapters.
762 */
763 for (i = 0; i < ARRAY_SIZE(dp_bw); i++) {
764 if (dp_bw[i][0] > out_rate || dp_bw[i][1] > out_lanes)
765 continue;
766
767 if (dp_bw[i][0] > in_rate || dp_bw[i][1] > in_lanes)
768 continue;
769
770 if (tb_dp_bandwidth(dp_bw[i][0], dp_bw[i][1]) <= max_bw) {
771 *new_rate = dp_bw[i][0];
772 *new_lanes = dp_bw[i][1];
773 return 0;
774 }
775 }
776
777 return -ENOSR;
778 }
779
tb_dp_xchg_caps(struct tb_tunnel * tunnel)780 static int tb_dp_xchg_caps(struct tb_tunnel *tunnel)
781 {
782 u32 out_dp_cap, out_rate, out_lanes, in_dp_cap, in_rate, in_lanes, bw;
783 struct tb_port *out = tunnel->dst_port;
784 struct tb_port *in = tunnel->src_port;
785 int ret, max_bw;
786
787 /*
788 * Copy DP_LOCAL_CAP register to DP_REMOTE_CAP register for
789 * newer generation hardware.
790 */
791 if (in->sw->generation < 2 || out->sw->generation < 2)
792 return 0;
793
794 /*
795 * Perform connection manager handshake between IN and OUT ports
796 * before capabilities exchange can take place.
797 */
798 ret = tb_dp_cm_handshake(in, out, 3000);
799 if (ret)
800 return ret;
801
802 /* Read both DP_LOCAL_CAP registers */
803 ret = tb_port_read(in, &in_dp_cap, TB_CFG_PORT,
804 in->cap_adap + DP_LOCAL_CAP, 1);
805 if (ret)
806 return ret;
807
808 ret = tb_port_read(out, &out_dp_cap, TB_CFG_PORT,
809 out->cap_adap + DP_LOCAL_CAP, 1);
810 if (ret)
811 return ret;
812
813 /* Write IN local caps to OUT remote caps */
814 ret = tb_port_write(out, &in_dp_cap, TB_CFG_PORT,
815 out->cap_adap + DP_REMOTE_CAP, 1);
816 if (ret)
817 return ret;
818
819 in_rate = tb_dp_cap_get_rate(in_dp_cap);
820 in_lanes = tb_dp_cap_get_lanes(in_dp_cap);
821 tb_tunnel_dbg(tunnel,
822 "DP IN maximum supported bandwidth %u Mb/s x%u = %u Mb/s\n",
823 in_rate, in_lanes, tb_dp_bandwidth(in_rate, in_lanes));
824
825 /*
826 * If the tunnel bandwidth is limited (max_bw is set) then see
827 * if we need to reduce bandwidth to fit there.
828 */
829 out_rate = tb_dp_cap_get_rate(out_dp_cap);
830 out_lanes = tb_dp_cap_get_lanes(out_dp_cap);
831 bw = tb_dp_bandwidth(out_rate, out_lanes);
832 tb_tunnel_dbg(tunnel,
833 "DP OUT maximum supported bandwidth %u Mb/s x%u = %u Mb/s\n",
834 out_rate, out_lanes, bw);
835
836 if (tb_tunnel_direction_downstream(tunnel))
837 max_bw = tunnel->max_down;
838 else
839 max_bw = tunnel->max_up;
840
841 if (max_bw && bw > max_bw) {
842 u32 new_rate, new_lanes, new_bw;
843
844 ret = tb_dp_reduce_bandwidth(max_bw, in_rate, in_lanes,
845 out_rate, out_lanes, &new_rate,
846 &new_lanes);
847 if (ret) {
848 tb_tunnel_info(tunnel, "not enough bandwidth\n");
849 return ret;
850 }
851
852 new_bw = tb_dp_bandwidth(new_rate, new_lanes);
853 tb_tunnel_dbg(tunnel,
854 "bandwidth reduced to %u Mb/s x%u = %u Mb/s\n",
855 new_rate, new_lanes, new_bw);
856
857 /*
858 * Set new rate and number of lanes before writing it to
859 * the IN port remote caps.
860 */
861 out_dp_cap = tb_dp_cap_set_rate(out_dp_cap, new_rate);
862 out_dp_cap = tb_dp_cap_set_lanes(out_dp_cap, new_lanes);
863 }
864
865 /*
866 * Titan Ridge does not disable AUX timers when it gets
867 * SET_CONFIG with SET_LTTPR_MODE set. This causes problems with
868 * DP tunneling.
869 */
870 if (tb_route(out->sw) && tb_switch_is_titan_ridge(out->sw)) {
871 out_dp_cap |= DP_COMMON_CAP_LTTPR_NS;
872 tb_tunnel_dbg(tunnel, "disabling LTTPR\n");
873 }
874
875 return tb_port_write(in, &out_dp_cap, TB_CFG_PORT,
876 in->cap_adap + DP_REMOTE_CAP, 1);
877 }
878
tb_dp_bandwidth_alloc_mode_enable(struct tb_tunnel * tunnel)879 static int tb_dp_bandwidth_alloc_mode_enable(struct tb_tunnel *tunnel)
880 {
881 int ret, estimated_bw, granularity, tmp;
882 struct tb_port *out = tunnel->dst_port;
883 struct tb_port *in = tunnel->src_port;
884 u32 out_dp_cap, out_rate, out_lanes;
885 u32 in_dp_cap, in_rate, in_lanes;
886 u32 rate, lanes;
887
888 if (!bw_alloc_mode)
889 return 0;
890
891 ret = usb4_dp_port_set_cm_bandwidth_mode_supported(in, true);
892 if (ret)
893 return ret;
894
895 ret = usb4_dp_port_set_group_id(in, in->group->index);
896 if (ret)
897 return ret;
898
899 /*
900 * Get the non-reduced rate and lanes based on the lowest
901 * capability of both adapters.
902 */
903 ret = tb_port_read(in, &in_dp_cap, TB_CFG_PORT,
904 in->cap_adap + DP_LOCAL_CAP, 1);
905 if (ret)
906 return ret;
907
908 ret = tb_port_read(out, &out_dp_cap, TB_CFG_PORT,
909 out->cap_adap + DP_LOCAL_CAP, 1);
910 if (ret)
911 return ret;
912
913 in_rate = tb_dp_cap_get_rate(in_dp_cap);
914 in_lanes = tb_dp_cap_get_lanes(in_dp_cap);
915 out_rate = tb_dp_cap_get_rate(out_dp_cap);
916 out_lanes = tb_dp_cap_get_lanes(out_dp_cap);
917
918 rate = min(in_rate, out_rate);
919 lanes = min(in_lanes, out_lanes);
920 tmp = tb_dp_bandwidth(rate, lanes);
921
922 tb_tunnel_dbg(tunnel, "non-reduced bandwidth %u Mb/s x%u = %u Mb/s\n",
923 rate, lanes, tmp);
924
925 ret = usb4_dp_port_set_nrd(in, rate, lanes);
926 if (ret)
927 return ret;
928
929 /*
930 * Pick up granularity that supports maximum possible bandwidth.
931 * For that we use the UHBR rates too.
932 */
933 in_rate = tb_dp_cap_get_rate_ext(in_dp_cap);
934 out_rate = tb_dp_cap_get_rate_ext(out_dp_cap);
935 rate = min(in_rate, out_rate);
936 tmp = tb_dp_bandwidth(rate, lanes);
937
938 tb_tunnel_dbg(tunnel,
939 "maximum bandwidth through allocation mode %u Mb/s x%u = %u Mb/s\n",
940 rate, lanes, tmp);
941
942 for (granularity = 250; tmp / granularity > 255 && granularity <= 1000;
943 granularity *= 2)
944 ;
945
946 tb_tunnel_dbg(tunnel, "granularity %d Mb/s\n", granularity);
947
948 /*
949 * Returns -EINVAL if granularity above is outside of the
950 * accepted ranges.
951 */
952 ret = usb4_dp_port_set_granularity(in, granularity);
953 if (ret)
954 return ret;
955
956 /*
957 * Bandwidth estimation is pretty much what we have in
958 * max_up/down fields. For discovery we just read what the
959 * estimation was set to.
960 */
961 if (tb_tunnel_direction_downstream(tunnel))
962 estimated_bw = tunnel->max_down;
963 else
964 estimated_bw = tunnel->max_up;
965
966 tb_tunnel_dbg(tunnel, "estimated bandwidth %d Mb/s\n", estimated_bw);
967
968 ret = usb4_dp_port_set_estimated_bandwidth(in, estimated_bw);
969 if (ret)
970 return ret;
971
972 /* Initial allocation should be 0 according the spec */
973 ret = usb4_dp_port_allocate_bandwidth(in, 0);
974 if (ret)
975 return ret;
976
977 tb_tunnel_dbg(tunnel, "bandwidth allocation mode enabled\n");
978 return 0;
979 }
980
tb_dp_pre_activate(struct tb_tunnel * tunnel)981 static int tb_dp_pre_activate(struct tb_tunnel *tunnel)
982 {
983 struct tb_port *in = tunnel->src_port;
984 struct tb_switch *sw = in->sw;
985 struct tb *tb = in->sw->tb;
986 int ret;
987
988 ret = tb_dp_xchg_caps(tunnel);
989 if (ret)
990 return ret;
991
992 if (!tb_switch_is_usb4(sw))
993 return 0;
994
995 if (!usb4_dp_port_bandwidth_mode_supported(in))
996 return 0;
997
998 tb_tunnel_dbg(tunnel, "bandwidth allocation mode supported\n");
999
1000 ret = usb4_dp_port_set_cm_id(in, tb->index);
1001 if (ret)
1002 return ret;
1003
1004 return tb_dp_bandwidth_alloc_mode_enable(tunnel);
1005 }
1006
tb_dp_post_deactivate(struct tb_tunnel * tunnel)1007 static void tb_dp_post_deactivate(struct tb_tunnel *tunnel)
1008 {
1009 struct tb_port *in = tunnel->src_port;
1010
1011 if (!usb4_dp_port_bandwidth_mode_supported(in))
1012 return;
1013 if (usb4_dp_port_bandwidth_mode_enabled(in)) {
1014 usb4_dp_port_set_cm_bandwidth_mode_supported(in, false);
1015 tb_tunnel_dbg(tunnel, "bandwidth allocation mode disabled\n");
1016 }
1017 }
1018
dprx_timeout_to_ktime(int timeout_msec)1019 static ktime_t dprx_timeout_to_ktime(int timeout_msec)
1020 {
1021 return timeout_msec >= 0 ?
1022 ktime_add_ms(ktime_get(), timeout_msec) : KTIME_MAX;
1023 }
1024
tb_dp_wait_dprx(struct tb_tunnel * tunnel,int timeout_msec)1025 static int tb_dp_wait_dprx(struct tb_tunnel *tunnel, int timeout_msec)
1026 {
1027 ktime_t timeout = dprx_timeout_to_ktime(timeout_msec);
1028 struct tb_port *in = tunnel->src_port;
1029
1030 /*
1031 * Wait for DPRX done. Normally it should be already set for
1032 * active tunnel.
1033 */
1034 do {
1035 u32 val;
1036 int ret;
1037
1038 ret = tb_port_read(in, &val, TB_CFG_PORT,
1039 in->cap_adap + DP_COMMON_CAP, 1);
1040 if (ret)
1041 return ret;
1042
1043 if (val & DP_COMMON_CAP_DPRX_DONE)
1044 return 0;
1045
1046 usleep_range(100, 150);
1047 } while (ktime_before(ktime_get(), timeout));
1048
1049 tb_tunnel_dbg(tunnel, "DPRX read timeout\n");
1050 return -ETIMEDOUT;
1051 }
1052
tb_dp_dprx_work(struct work_struct * work)1053 static void tb_dp_dprx_work(struct work_struct *work)
1054 {
1055 struct tb_tunnel *tunnel = container_of(work, typeof(*tunnel), dprx_work.work);
1056 struct tb *tb = tunnel->tb;
1057
1058 if (!tunnel->dprx_canceled) {
1059 mutex_lock(&tb->lock);
1060 if (tb_dp_is_usb4(tunnel->src_port->sw) &&
1061 tb_dp_wait_dprx(tunnel, TB_DPRX_WAIT_TIMEOUT)) {
1062 if (ktime_before(ktime_get(), tunnel->dprx_timeout)) {
1063 queue_delayed_work(tb->wq, &tunnel->dprx_work,
1064 msecs_to_jiffies(TB_DPRX_POLL_DELAY));
1065 mutex_unlock(&tb->lock);
1066 return;
1067 }
1068 } else {
1069 tb_tunnel_set_active(tunnel, true);
1070 }
1071 mutex_unlock(&tb->lock);
1072 }
1073
1074 if (tunnel->callback)
1075 tunnel->callback(tunnel, tunnel->callback_data);
1076 }
1077
tb_dp_dprx_start(struct tb_tunnel * tunnel)1078 static int tb_dp_dprx_start(struct tb_tunnel *tunnel)
1079 {
1080 /*
1081 * Bump up the reference to keep the tunnel around. It will be
1082 * dropped in tb_dp_dprx_stop() once the tunnel is deactivated.
1083 */
1084 tb_tunnel_get(tunnel);
1085
1086 tunnel->dprx_started = true;
1087
1088 if (tunnel->callback) {
1089 tunnel->dprx_timeout = dprx_timeout_to_ktime(dprx_timeout);
1090 queue_delayed_work(tunnel->tb->wq, &tunnel->dprx_work, 0);
1091 return -EINPROGRESS;
1092 }
1093
1094 return tb_dp_is_usb4(tunnel->src_port->sw) ?
1095 tb_dp_wait_dprx(tunnel, dprx_timeout) : 0;
1096 }
1097
tb_dp_dprx_stop(struct tb_tunnel * tunnel)1098 static void tb_dp_dprx_stop(struct tb_tunnel *tunnel)
1099 {
1100 if (tunnel->dprx_started) {
1101 tunnel->dprx_started = false;
1102 tunnel->dprx_canceled = true;
1103 cancel_delayed_work(&tunnel->dprx_work);
1104 tb_tunnel_put(tunnel);
1105 }
1106 }
1107
tb_dp_activate(struct tb_tunnel * tunnel,bool active)1108 static int tb_dp_activate(struct tb_tunnel *tunnel, bool active)
1109 {
1110 int ret;
1111
1112 if (active) {
1113 struct tb_path **paths;
1114 int last;
1115
1116 paths = tunnel->paths;
1117 last = paths[TB_DP_VIDEO_PATH_OUT]->path_length - 1;
1118
1119 tb_dp_port_set_hops(tunnel->src_port,
1120 paths[TB_DP_VIDEO_PATH_OUT]->hops[0].in_hop_index,
1121 paths[TB_DP_AUX_PATH_OUT]->hops[0].in_hop_index,
1122 paths[TB_DP_AUX_PATH_IN]->hops[last].next_hop_index);
1123
1124 tb_dp_port_set_hops(tunnel->dst_port,
1125 paths[TB_DP_VIDEO_PATH_OUT]->hops[last].next_hop_index,
1126 paths[TB_DP_AUX_PATH_IN]->hops[0].in_hop_index,
1127 paths[TB_DP_AUX_PATH_OUT]->hops[last].next_hop_index);
1128 } else {
1129 tb_dp_dprx_stop(tunnel);
1130 tb_dp_port_hpd_clear(tunnel->src_port);
1131 tb_dp_port_set_hops(tunnel->src_port, 0, 0, 0);
1132 if (tb_port_is_dpout(tunnel->dst_port))
1133 tb_dp_port_set_hops(tunnel->dst_port, 0, 0, 0);
1134 }
1135
1136 ret = tb_dp_port_enable(tunnel->src_port, active);
1137 if (ret)
1138 return ret;
1139
1140 if (tb_port_is_dpout(tunnel->dst_port)) {
1141 ret = tb_dp_port_enable(tunnel->dst_port, active);
1142 if (ret)
1143 return ret;
1144 }
1145
1146 return active ? tb_dp_dprx_start(tunnel) : 0;
1147 }
1148
1149 /**
1150 * tb_dp_bandwidth_mode_maximum_bandwidth() - Maximum possible bandwidth
1151 * @tunnel: DP tunnel to check
1152 * @max_bw_rounded: Maximum bandwidth in Mb/s rounded up to the next granularity
1153 *
1154 * Returns maximum possible bandwidth for this tunnel in Mb/s.
1155 */
tb_dp_bandwidth_mode_maximum_bandwidth(struct tb_tunnel * tunnel,int * max_bw_rounded)1156 static int tb_dp_bandwidth_mode_maximum_bandwidth(struct tb_tunnel *tunnel,
1157 int *max_bw_rounded)
1158 {
1159 struct tb_port *in = tunnel->src_port;
1160 int ret, rate, lanes, max_bw;
1161 u32 cap;
1162
1163 /*
1164 * DP IN adapter DP_LOCAL_CAP gets updated to the lowest AUX
1165 * read parameter values so this so we can use this to determine
1166 * the maximum possible bandwidth over this link.
1167 *
1168 * See USB4 v2 spec 1.0 10.4.4.5.
1169 */
1170 ret = tb_port_read(in, &cap, TB_CFG_PORT,
1171 in->cap_adap + DP_LOCAL_CAP, 1);
1172 if (ret)
1173 return ret;
1174
1175 rate = tb_dp_cap_get_rate_ext(cap);
1176 lanes = tb_dp_cap_get_lanes(cap);
1177
1178 max_bw = tb_dp_bandwidth(rate, lanes);
1179
1180 if (max_bw_rounded) {
1181 ret = usb4_dp_port_granularity(in);
1182 if (ret < 0)
1183 return ret;
1184 *max_bw_rounded = roundup(max_bw, ret);
1185 }
1186
1187 return max_bw;
1188 }
1189
tb_dp_bandwidth_mode_consumed_bandwidth(struct tb_tunnel * tunnel,int * consumed_up,int * consumed_down)1190 static int tb_dp_bandwidth_mode_consumed_bandwidth(struct tb_tunnel *tunnel,
1191 int *consumed_up,
1192 int *consumed_down)
1193 {
1194 struct tb_port *in = tunnel->src_port;
1195 int ret, allocated_bw, max_bw_rounded;
1196
1197 if (!usb4_dp_port_bandwidth_mode_enabled(in))
1198 return -EOPNOTSUPP;
1199
1200 if (!tunnel->bw_mode)
1201 return -EOPNOTSUPP;
1202
1203 /* Read what was allocated previously if any */
1204 ret = usb4_dp_port_allocated_bandwidth(in);
1205 if (ret < 0)
1206 return ret;
1207 allocated_bw = ret;
1208
1209 ret = tb_dp_bandwidth_mode_maximum_bandwidth(tunnel, &max_bw_rounded);
1210 if (ret < 0)
1211 return ret;
1212 if (allocated_bw == max_bw_rounded)
1213 allocated_bw = ret;
1214
1215 if (tb_tunnel_direction_downstream(tunnel)) {
1216 *consumed_up = 0;
1217 *consumed_down = allocated_bw;
1218 } else {
1219 *consumed_up = allocated_bw;
1220 *consumed_down = 0;
1221 }
1222
1223 return 0;
1224 }
1225
tb_dp_allocated_bandwidth(struct tb_tunnel * tunnel,int * allocated_up,int * allocated_down)1226 static int tb_dp_allocated_bandwidth(struct tb_tunnel *tunnel, int *allocated_up,
1227 int *allocated_down)
1228 {
1229 struct tb_port *in = tunnel->src_port;
1230
1231 /*
1232 * If we have already set the allocated bandwidth then use that.
1233 * Otherwise we read it from the DPRX.
1234 */
1235 if (usb4_dp_port_bandwidth_mode_enabled(in) && tunnel->bw_mode) {
1236 int ret, allocated_bw, max_bw_rounded;
1237
1238 ret = usb4_dp_port_allocated_bandwidth(in);
1239 if (ret < 0)
1240 return ret;
1241 allocated_bw = ret;
1242
1243 ret = tb_dp_bandwidth_mode_maximum_bandwidth(tunnel,
1244 &max_bw_rounded);
1245 if (ret < 0)
1246 return ret;
1247 if (allocated_bw == max_bw_rounded)
1248 allocated_bw = ret;
1249
1250 if (tb_tunnel_direction_downstream(tunnel)) {
1251 *allocated_up = 0;
1252 *allocated_down = allocated_bw;
1253 } else {
1254 *allocated_up = allocated_bw;
1255 *allocated_down = 0;
1256 }
1257 return 0;
1258 }
1259
1260 return tunnel->consumed_bandwidth(tunnel, allocated_up,
1261 allocated_down);
1262 }
1263
tb_dp_alloc_bandwidth(struct tb_tunnel * tunnel,int * alloc_up,int * alloc_down)1264 static int tb_dp_alloc_bandwidth(struct tb_tunnel *tunnel, int *alloc_up,
1265 int *alloc_down)
1266 {
1267 struct tb_port *in = tunnel->src_port;
1268 int max_bw_rounded, ret, tmp;
1269
1270 if (!usb4_dp_port_bandwidth_mode_enabled(in))
1271 return -EOPNOTSUPP;
1272
1273 ret = tb_dp_bandwidth_mode_maximum_bandwidth(tunnel, &max_bw_rounded);
1274 if (ret < 0)
1275 return ret;
1276
1277 if (tb_tunnel_direction_downstream(tunnel)) {
1278 tmp = min(*alloc_down, max_bw_rounded);
1279 ret = usb4_dp_port_allocate_bandwidth(in, tmp);
1280 if (ret)
1281 return ret;
1282 *alloc_down = tmp;
1283 *alloc_up = 0;
1284 } else {
1285 tmp = min(*alloc_up, max_bw_rounded);
1286 ret = usb4_dp_port_allocate_bandwidth(in, tmp);
1287 if (ret)
1288 return ret;
1289 *alloc_down = 0;
1290 *alloc_up = tmp;
1291 }
1292
1293 /* Now we can use BW mode registers to figure out the bandwidth */
1294 /* TODO: need to handle discovery too */
1295 tunnel->bw_mode = true;
1296 return 0;
1297 }
1298
1299 /* Read cap from tunnel DP IN */
tb_dp_read_cap(struct tb_tunnel * tunnel,unsigned int cap,u32 * rate,u32 * lanes)1300 static int tb_dp_read_cap(struct tb_tunnel *tunnel, unsigned int cap, u32 *rate,
1301 u32 *lanes)
1302 {
1303 struct tb_port *in = tunnel->src_port;
1304 u32 val;
1305 int ret;
1306
1307 switch (cap) {
1308 case DP_LOCAL_CAP:
1309 case DP_REMOTE_CAP:
1310 case DP_COMMON_CAP:
1311 break;
1312
1313 default:
1314 tb_tunnel_WARN(tunnel, "invalid capability index %#x\n", cap);
1315 return -EINVAL;
1316 }
1317
1318 /*
1319 * Read from the copied remote cap so that we take into account
1320 * if capabilities were reduced during exchange.
1321 */
1322 ret = tb_port_read(in, &val, TB_CFG_PORT, in->cap_adap + cap, 1);
1323 if (ret)
1324 return ret;
1325
1326 *rate = tb_dp_cap_get_rate(val);
1327 *lanes = tb_dp_cap_get_lanes(val);
1328 return 0;
1329 }
1330
tb_dp_maximum_bandwidth(struct tb_tunnel * tunnel,int * max_up,int * max_down)1331 static int tb_dp_maximum_bandwidth(struct tb_tunnel *tunnel, int *max_up,
1332 int *max_down)
1333 {
1334 int ret;
1335
1336 if (!usb4_dp_port_bandwidth_mode_enabled(tunnel->src_port))
1337 return -EOPNOTSUPP;
1338
1339 ret = tb_dp_bandwidth_mode_maximum_bandwidth(tunnel, NULL);
1340 if (ret < 0)
1341 return ret;
1342
1343 if (tb_tunnel_direction_downstream(tunnel)) {
1344 *max_up = 0;
1345 *max_down = ret;
1346 } else {
1347 *max_up = ret;
1348 *max_down = 0;
1349 }
1350
1351 return 0;
1352 }
1353
tb_dp_consumed_bandwidth(struct tb_tunnel * tunnel,int * consumed_up,int * consumed_down)1354 static int tb_dp_consumed_bandwidth(struct tb_tunnel *tunnel, int *consumed_up,
1355 int *consumed_down)
1356 {
1357 const struct tb_switch *sw = tunnel->src_port->sw;
1358 u32 rate = 0, lanes = 0;
1359 int ret;
1360
1361 if (tb_dp_is_usb4(sw)) {
1362 ret = tb_dp_wait_dprx(tunnel, 0);
1363 if (ret) {
1364 if (ret == -ETIMEDOUT) {
1365 /*
1366 * While we wait for DPRX complete the
1367 * tunnel consumes as much as it had
1368 * been reserved initially.
1369 */
1370 ret = tb_dp_read_cap(tunnel, DP_REMOTE_CAP,
1371 &rate, &lanes);
1372 if (ret)
1373 return ret;
1374 } else {
1375 return ret;
1376 }
1377 } else {
1378 /*
1379 * On USB4 routers check if the bandwidth allocation
1380 * mode is enabled first and then read the bandwidth
1381 * through those registers.
1382 */
1383 ret = tb_dp_bandwidth_mode_consumed_bandwidth(tunnel, consumed_up,
1384 consumed_down);
1385 if (ret < 0) {
1386 if (ret != -EOPNOTSUPP)
1387 return ret;
1388 } else if (!ret) {
1389 return 0;
1390 }
1391 ret = tb_dp_read_cap(tunnel, DP_COMMON_CAP, &rate, &lanes);
1392 if (ret)
1393 return ret;
1394 }
1395 } else if (sw->generation >= 2) {
1396 ret = tb_dp_read_cap(tunnel, DP_REMOTE_CAP, &rate, &lanes);
1397 if (ret)
1398 return ret;
1399 } else {
1400 /* No bandwidth management for legacy devices */
1401 *consumed_up = 0;
1402 *consumed_down = 0;
1403 return 0;
1404 }
1405
1406 if (tb_tunnel_direction_downstream(tunnel)) {
1407 *consumed_up = 0;
1408 *consumed_down = tb_dp_bandwidth(rate, lanes);
1409 } else {
1410 *consumed_up = tb_dp_bandwidth(rate, lanes);
1411 *consumed_down = 0;
1412 }
1413
1414 return 0;
1415 }
1416
tb_dp_init_aux_credits(struct tb_path_hop * hop)1417 static void tb_dp_init_aux_credits(struct tb_path_hop *hop)
1418 {
1419 struct tb_port *port = hop->in_port;
1420 struct tb_switch *sw = port->sw;
1421
1422 if (tb_port_use_credit_allocation(port))
1423 hop->initial_credits = sw->min_dp_aux_credits;
1424 else
1425 hop->initial_credits = 1;
1426 }
1427
tb_dp_init_aux_path(struct tb_path * path,bool pm_support)1428 static void tb_dp_init_aux_path(struct tb_path *path, bool pm_support)
1429 {
1430 struct tb_path_hop *hop;
1431
1432 path->egress_fc_enable = TB_PATH_SOURCE | TB_PATH_INTERNAL;
1433 path->egress_shared_buffer = TB_PATH_NONE;
1434 path->ingress_fc_enable = TB_PATH_ALL;
1435 path->ingress_shared_buffer = TB_PATH_NONE;
1436 path->priority = TB_DP_AUX_PRIORITY;
1437 path->weight = TB_DP_AUX_WEIGHT;
1438
1439 tb_path_for_each_hop(path, hop) {
1440 tb_dp_init_aux_credits(hop);
1441 if (pm_support)
1442 tb_init_pm_support(hop);
1443 }
1444 }
1445
tb_dp_init_video_credits(struct tb_path_hop * hop)1446 static int tb_dp_init_video_credits(struct tb_path_hop *hop)
1447 {
1448 struct tb_port *port = hop->in_port;
1449 struct tb_switch *sw = port->sw;
1450
1451 if (tb_port_use_credit_allocation(port)) {
1452 unsigned int nfc_credits;
1453 size_t max_dp_streams;
1454
1455 tb_available_credits(port, &max_dp_streams);
1456 /*
1457 * Read the number of currently allocated NFC credits
1458 * from the lane adapter. Since we only use them for DP
1459 * tunneling we can use that to figure out how many DP
1460 * tunnels already go through the lane adapter.
1461 */
1462 nfc_credits = port->config.nfc_credits &
1463 ADP_CS_4_NFC_BUFFERS_MASK;
1464 if (nfc_credits / sw->min_dp_main_credits > max_dp_streams)
1465 return -ENOSPC;
1466
1467 hop->nfc_credits = sw->min_dp_main_credits;
1468 } else {
1469 hop->nfc_credits = min(port->total_credits - 2, 12U);
1470 }
1471
1472 return 0;
1473 }
1474
tb_dp_init_video_path(struct tb_path * path,bool pm_support)1475 static int tb_dp_init_video_path(struct tb_path *path, bool pm_support)
1476 {
1477 struct tb_path_hop *hop;
1478
1479 path->egress_fc_enable = TB_PATH_NONE;
1480 path->egress_shared_buffer = TB_PATH_NONE;
1481 path->ingress_fc_enable = TB_PATH_NONE;
1482 path->ingress_shared_buffer = TB_PATH_NONE;
1483 path->priority = TB_DP_VIDEO_PRIORITY;
1484 path->weight = TB_DP_VIDEO_WEIGHT;
1485
1486 tb_path_for_each_hop(path, hop) {
1487 int ret;
1488
1489 ret = tb_dp_init_video_credits(hop);
1490 if (ret)
1491 return ret;
1492 if (pm_support)
1493 tb_init_pm_support(hop);
1494 }
1495
1496 return 0;
1497 }
1498
tb_dp_dump(struct tb_tunnel * tunnel)1499 static void tb_dp_dump(struct tb_tunnel *tunnel)
1500 {
1501 struct tb_port *in, *out;
1502 u32 dp_cap, rate, lanes;
1503
1504 in = tunnel->src_port;
1505 out = tunnel->dst_port;
1506
1507 if (tb_port_read(in, &dp_cap, TB_CFG_PORT,
1508 in->cap_adap + DP_LOCAL_CAP, 1))
1509 return;
1510
1511 rate = tb_dp_cap_get_rate(dp_cap);
1512 lanes = tb_dp_cap_get_lanes(dp_cap);
1513
1514 tb_tunnel_dbg(tunnel,
1515 "DP IN maximum supported bandwidth %u Mb/s x%u = %u Mb/s\n",
1516 rate, lanes, tb_dp_bandwidth(rate, lanes));
1517
1518 if (tb_port_read(out, &dp_cap, TB_CFG_PORT,
1519 out->cap_adap + DP_LOCAL_CAP, 1))
1520 return;
1521
1522 rate = tb_dp_cap_get_rate(dp_cap);
1523 lanes = tb_dp_cap_get_lanes(dp_cap);
1524
1525 tb_tunnel_dbg(tunnel,
1526 "DP OUT maximum supported bandwidth %u Mb/s x%u = %u Mb/s\n",
1527 rate, lanes, tb_dp_bandwidth(rate, lanes));
1528
1529 if (tb_port_read(in, &dp_cap, TB_CFG_PORT,
1530 in->cap_adap + DP_REMOTE_CAP, 1))
1531 return;
1532
1533 rate = tb_dp_cap_get_rate(dp_cap);
1534 lanes = tb_dp_cap_get_lanes(dp_cap);
1535
1536 tb_tunnel_dbg(tunnel, "reduced bandwidth %u Mb/s x%u = %u Mb/s\n",
1537 rate, lanes, tb_dp_bandwidth(rate, lanes));
1538 }
1539
1540 /**
1541 * tb_tunnel_discover_dp() - Discover existing Display Port tunnels
1542 * @tb: Pointer to the domain structure
1543 * @in: DP in adapter
1544 * @alloc_hopid: Allocate HopIDs from visited ports
1545 *
1546 * If @in adapter is active, follows the tunnel to the DP out adapter
1547 * and back. Returns the discovered tunnel or %NULL if there was no
1548 * tunnel.
1549 *
1550 * Return: DP tunnel or %NULL if no tunnel found.
1551 */
tb_tunnel_discover_dp(struct tb * tb,struct tb_port * in,bool alloc_hopid)1552 struct tb_tunnel *tb_tunnel_discover_dp(struct tb *tb, struct tb_port *in,
1553 bool alloc_hopid)
1554 {
1555 struct tb_tunnel *tunnel;
1556 struct tb_port *port;
1557 struct tb_path *path;
1558
1559 if (!tb_dp_port_is_enabled(in))
1560 return NULL;
1561
1562 tunnel = tb_tunnel_alloc(tb, 3, TB_TUNNEL_DP);
1563 if (!tunnel)
1564 return NULL;
1565
1566 tunnel->pre_activate = tb_dp_pre_activate;
1567 tunnel->activate = tb_dp_activate;
1568 tunnel->post_deactivate = tb_dp_post_deactivate;
1569 tunnel->maximum_bandwidth = tb_dp_maximum_bandwidth;
1570 tunnel->allocated_bandwidth = tb_dp_allocated_bandwidth;
1571 tunnel->alloc_bandwidth = tb_dp_alloc_bandwidth;
1572 tunnel->consumed_bandwidth = tb_dp_consumed_bandwidth;
1573 tunnel->src_port = in;
1574
1575 path = tb_path_discover(in, TB_DP_VIDEO_HOPID, NULL, -1,
1576 &tunnel->dst_port, "Video", alloc_hopid);
1577 if (!path) {
1578 /* Just disable the DP IN port */
1579 tb_dp_port_enable(in, false);
1580 goto err_free;
1581 }
1582 tunnel->paths[TB_DP_VIDEO_PATH_OUT] = path;
1583 if (tb_dp_init_video_path(tunnel->paths[TB_DP_VIDEO_PATH_OUT], false))
1584 goto err_free;
1585
1586 path = tb_path_discover(in, TB_DP_AUX_TX_HOPID, NULL, -1, NULL, "AUX TX",
1587 alloc_hopid);
1588 if (!path)
1589 goto err_deactivate;
1590 tunnel->paths[TB_DP_AUX_PATH_OUT] = path;
1591 tb_dp_init_aux_path(tunnel->paths[TB_DP_AUX_PATH_OUT], false);
1592
1593 path = tb_path_discover(tunnel->dst_port, -1, in, TB_DP_AUX_RX_HOPID,
1594 &port, "AUX RX", alloc_hopid);
1595 if (!path)
1596 goto err_deactivate;
1597 tunnel->paths[TB_DP_AUX_PATH_IN] = path;
1598 tb_dp_init_aux_path(tunnel->paths[TB_DP_AUX_PATH_IN], false);
1599
1600 /* Validate that the tunnel is complete */
1601 if (!tb_port_is_dpout(tunnel->dst_port)) {
1602 tb_port_warn(in, "path does not end on a DP adapter, cleaning up\n");
1603 goto err_deactivate;
1604 }
1605
1606 if (!tb_dp_port_is_enabled(tunnel->dst_port))
1607 goto err_deactivate;
1608
1609 if (!tb_dp_port_hpd_is_active(tunnel->dst_port))
1610 goto err_deactivate;
1611
1612 if (port != tunnel->src_port) {
1613 tb_tunnel_warn(tunnel, "path is not complete, cleaning up\n");
1614 goto err_deactivate;
1615 }
1616
1617 tb_dp_dump(tunnel);
1618
1619 tb_tunnel_dbg(tunnel, "discovered\n");
1620 return tunnel;
1621
1622 err_deactivate:
1623 tb_tunnel_deactivate(tunnel);
1624 err_free:
1625 tb_tunnel_put(tunnel);
1626
1627 return NULL;
1628 }
1629
1630 /**
1631 * tb_tunnel_alloc_dp() - allocate a Display Port tunnel
1632 * @tb: Pointer to the domain structure
1633 * @in: DP in adapter port
1634 * @out: DP out adapter port
1635 * @link_nr: Preferred lane adapter when the link is not bonded
1636 * @max_up: Maximum available upstream bandwidth for the DP tunnel.
1637 * %0 if no available bandwidth.
1638 * @max_down: Maximum available downstream bandwidth for the DP tunnel.
1639 * %0 if no available bandwidth.
1640 * @callback: Optional callback that is called when the DP tunnel is
1641 * fully activated (or there is an error)
1642 * @callback_data: Optional data for @callback
1643 *
1644 * Allocates a tunnel between @in and @out that is capable of tunneling
1645 * Display Port traffic. If @callback is not %NULL it will be called
1646 * after tb_tunnel_activate() once the tunnel has been fully activated.
1647 * It can call tb_tunnel_is_active() to check if activation was
1648 * successful (or if it returns %false there was some sort of issue).
1649 * The @callback is called without @tb->lock held.
1650 *
1651 * Return: Returns a tb_tunnel on success or &NULL on failure.
1652 */
tb_tunnel_alloc_dp(struct tb * tb,struct tb_port * in,struct tb_port * out,int link_nr,int max_up,int max_down,void (* callback)(struct tb_tunnel *,void *),void * callback_data)1653 struct tb_tunnel *tb_tunnel_alloc_dp(struct tb *tb, struct tb_port *in,
1654 struct tb_port *out, int link_nr,
1655 int max_up, int max_down,
1656 void (*callback)(struct tb_tunnel *, void *),
1657 void *callback_data)
1658 {
1659 struct tb_tunnel *tunnel;
1660 struct tb_path **paths;
1661 struct tb_path *path;
1662 bool pm_support;
1663
1664 if (WARN_ON(!in->cap_adap || !out->cap_adap))
1665 return NULL;
1666
1667 tunnel = tb_tunnel_alloc(tb, 3, TB_TUNNEL_DP);
1668 if (!tunnel)
1669 return NULL;
1670
1671 tunnel->pre_activate = tb_dp_pre_activate;
1672 tunnel->activate = tb_dp_activate;
1673 tunnel->post_deactivate = tb_dp_post_deactivate;
1674 tunnel->maximum_bandwidth = tb_dp_maximum_bandwidth;
1675 tunnel->allocated_bandwidth = tb_dp_allocated_bandwidth;
1676 tunnel->alloc_bandwidth = tb_dp_alloc_bandwidth;
1677 tunnel->consumed_bandwidth = tb_dp_consumed_bandwidth;
1678 tunnel->src_port = in;
1679 tunnel->dst_port = out;
1680 tunnel->max_up = max_up;
1681 tunnel->max_down = max_down;
1682 tunnel->callback = callback;
1683 tunnel->callback_data = callback_data;
1684 INIT_DELAYED_WORK(&tunnel->dprx_work, tb_dp_dprx_work);
1685
1686 paths = tunnel->paths;
1687 pm_support = usb4_switch_version(in->sw) >= 2;
1688
1689 path = tb_path_alloc(tb, in, TB_DP_VIDEO_HOPID, out, TB_DP_VIDEO_HOPID,
1690 link_nr, "Video");
1691 if (!path)
1692 goto err_free;
1693 tb_dp_init_video_path(path, pm_support);
1694 paths[TB_DP_VIDEO_PATH_OUT] = path;
1695
1696 path = tb_path_alloc(tb, in, TB_DP_AUX_TX_HOPID, out,
1697 TB_DP_AUX_TX_HOPID, link_nr, "AUX TX");
1698 if (!path)
1699 goto err_free;
1700 tb_dp_init_aux_path(path, pm_support);
1701 paths[TB_DP_AUX_PATH_OUT] = path;
1702
1703 path = tb_path_alloc(tb, out, TB_DP_AUX_RX_HOPID, in,
1704 TB_DP_AUX_RX_HOPID, link_nr, "AUX RX");
1705 if (!path)
1706 goto err_free;
1707 tb_dp_init_aux_path(path, pm_support);
1708 paths[TB_DP_AUX_PATH_IN] = path;
1709
1710 return tunnel;
1711
1712 err_free:
1713 tb_tunnel_put(tunnel);
1714 return NULL;
1715 }
1716
tb_dma_available_credits(const struct tb_port * port)1717 static unsigned int tb_dma_available_credits(const struct tb_port *port)
1718 {
1719 const struct tb_switch *sw = port->sw;
1720 int credits;
1721
1722 credits = tb_available_credits(port, NULL);
1723 if (tb_acpi_may_tunnel_pcie())
1724 credits -= sw->max_pcie_credits;
1725 credits -= port->dma_credits;
1726
1727 return credits > 0 ? credits : 0;
1728 }
1729
tb_dma_reserve_credits(struct tb_path_hop * hop,unsigned int credits)1730 static int tb_dma_reserve_credits(struct tb_path_hop *hop, unsigned int credits)
1731 {
1732 struct tb_port *port = hop->in_port;
1733
1734 if (tb_port_use_credit_allocation(port)) {
1735 unsigned int available = tb_dma_available_credits(port);
1736
1737 /*
1738 * Need to have at least TB_MIN_DMA_CREDITS, otherwise
1739 * DMA path cannot be established.
1740 */
1741 if (available < TB_MIN_DMA_CREDITS)
1742 return -ENOSPC;
1743
1744 while (credits > available)
1745 credits--;
1746
1747 tb_port_dbg(port, "reserving %u credits for DMA path\n",
1748 credits);
1749
1750 port->dma_credits += credits;
1751 } else {
1752 if (tb_port_is_null(port))
1753 credits = port->bonded ? 14 : 6;
1754 else
1755 credits = min(port->total_credits, credits);
1756 }
1757
1758 hop->initial_credits = credits;
1759 return 0;
1760 }
1761
1762 /* Path from lane adapter to NHI */
tb_dma_init_rx_path(struct tb_path * path,unsigned int credits)1763 static int tb_dma_init_rx_path(struct tb_path *path, unsigned int credits)
1764 {
1765 struct tb_path_hop *hop;
1766 unsigned int i, tmp;
1767
1768 path->egress_fc_enable = TB_PATH_SOURCE | TB_PATH_INTERNAL;
1769 path->ingress_fc_enable = TB_PATH_ALL;
1770 path->egress_shared_buffer = TB_PATH_NONE;
1771 path->ingress_shared_buffer = TB_PATH_NONE;
1772 path->priority = TB_DMA_PRIORITY;
1773 path->weight = TB_DMA_WEIGHT;
1774 path->clear_fc = true;
1775
1776 /*
1777 * First lane adapter is the one connected to the remote host.
1778 * We don't tunnel other traffic over this link so can use all
1779 * the credits (except the ones reserved for control traffic).
1780 */
1781 hop = &path->hops[0];
1782 tmp = min(tb_usable_credits(hop->in_port), credits);
1783 hop->initial_credits = tmp;
1784 hop->in_port->dma_credits += tmp;
1785
1786 for (i = 1; i < path->path_length; i++) {
1787 int ret;
1788
1789 ret = tb_dma_reserve_credits(&path->hops[i], credits);
1790 if (ret)
1791 return ret;
1792 }
1793
1794 return 0;
1795 }
1796
1797 /* Path from NHI to lane adapter */
tb_dma_init_tx_path(struct tb_path * path,unsigned int credits)1798 static int tb_dma_init_tx_path(struct tb_path *path, unsigned int credits)
1799 {
1800 struct tb_path_hop *hop;
1801
1802 path->egress_fc_enable = TB_PATH_ALL;
1803 path->ingress_fc_enable = TB_PATH_ALL;
1804 path->egress_shared_buffer = TB_PATH_NONE;
1805 path->ingress_shared_buffer = TB_PATH_NONE;
1806 path->priority = TB_DMA_PRIORITY;
1807 path->weight = TB_DMA_WEIGHT;
1808 path->clear_fc = true;
1809
1810 tb_path_for_each_hop(path, hop) {
1811 int ret;
1812
1813 ret = tb_dma_reserve_credits(hop, credits);
1814 if (ret)
1815 return ret;
1816 }
1817
1818 return 0;
1819 }
1820
tb_dma_release_credits(struct tb_path_hop * hop)1821 static void tb_dma_release_credits(struct tb_path_hop *hop)
1822 {
1823 struct tb_port *port = hop->in_port;
1824
1825 if (tb_port_use_credit_allocation(port)) {
1826 port->dma_credits -= hop->initial_credits;
1827
1828 tb_port_dbg(port, "released %u DMA path credits\n",
1829 hop->initial_credits);
1830 }
1831 }
1832
tb_dma_destroy_path(struct tb_path * path)1833 static void tb_dma_destroy_path(struct tb_path *path)
1834 {
1835 struct tb_path_hop *hop;
1836
1837 tb_path_for_each_hop(path, hop)
1838 tb_dma_release_credits(hop);
1839 }
1840
tb_dma_destroy(struct tb_tunnel * tunnel)1841 static void tb_dma_destroy(struct tb_tunnel *tunnel)
1842 {
1843 int i;
1844
1845 for (i = 0; i < tunnel->npaths; i++) {
1846 if (!tunnel->paths[i])
1847 continue;
1848 tb_dma_destroy_path(tunnel->paths[i]);
1849 }
1850 }
1851
1852 /**
1853 * tb_tunnel_alloc_dma() - allocate a DMA tunnel
1854 * @tb: Pointer to the domain structure
1855 * @nhi: Host controller port
1856 * @dst: Destination null port which the other domain is connected to
1857 * @transmit_path: HopID used for transmitting packets
1858 * @transmit_ring: NHI ring number used to send packets towards the
1859 * other domain. Set to %-1 if TX path is not needed.
1860 * @receive_path: HopID used for receiving packets
1861 * @receive_ring: NHI ring number used to receive packets from the
1862 * other domain. Set to %-1 if RX path is not needed.
1863 *
1864 * Return: Returns a tb_tunnel on success or NULL on failure.
1865 */
tb_tunnel_alloc_dma(struct tb * tb,struct tb_port * nhi,struct tb_port * dst,int transmit_path,int transmit_ring,int receive_path,int receive_ring)1866 struct tb_tunnel *tb_tunnel_alloc_dma(struct tb *tb, struct tb_port *nhi,
1867 struct tb_port *dst, int transmit_path,
1868 int transmit_ring, int receive_path,
1869 int receive_ring)
1870 {
1871 struct tb_tunnel *tunnel;
1872 size_t npaths = 0, i = 0;
1873 struct tb_path *path;
1874 int credits;
1875
1876 /* Ring 0 is reserved for control channel */
1877 if (WARN_ON(!receive_ring || !transmit_ring))
1878 return NULL;
1879
1880 if (receive_ring > 0)
1881 npaths++;
1882 if (transmit_ring > 0)
1883 npaths++;
1884
1885 if (WARN_ON(!npaths))
1886 return NULL;
1887
1888 tunnel = tb_tunnel_alloc(tb, npaths, TB_TUNNEL_DMA);
1889 if (!tunnel)
1890 return NULL;
1891
1892 tunnel->src_port = nhi;
1893 tunnel->dst_port = dst;
1894 tunnel->destroy = tb_dma_destroy;
1895
1896 credits = min_not_zero(dma_credits, nhi->sw->max_dma_credits);
1897
1898 if (receive_ring > 0) {
1899 path = tb_path_alloc(tb, dst, receive_path, nhi, receive_ring, 0,
1900 "DMA RX");
1901 if (!path)
1902 goto err_free;
1903 tunnel->paths[i++] = path;
1904 if (tb_dma_init_rx_path(path, credits)) {
1905 tb_tunnel_dbg(tunnel, "not enough buffers for RX path\n");
1906 goto err_free;
1907 }
1908 }
1909
1910 if (transmit_ring > 0) {
1911 path = tb_path_alloc(tb, nhi, transmit_ring, dst, transmit_path, 0,
1912 "DMA TX");
1913 if (!path)
1914 goto err_free;
1915 tunnel->paths[i++] = path;
1916 if (tb_dma_init_tx_path(path, credits)) {
1917 tb_tunnel_dbg(tunnel, "not enough buffers for TX path\n");
1918 goto err_free;
1919 }
1920 }
1921
1922 return tunnel;
1923
1924 err_free:
1925 tb_tunnel_put(tunnel);
1926 return NULL;
1927 }
1928
1929 /**
1930 * tb_tunnel_match_dma() - Match DMA tunnel
1931 * @tunnel: Tunnel to match
1932 * @transmit_path: HopID used for transmitting packets. Pass %-1 to ignore.
1933 * @transmit_ring: NHI ring number used to send packets towards the
1934 * other domain. Pass %-1 to ignore.
1935 * @receive_path: HopID used for receiving packets. Pass %-1 to ignore.
1936 * @receive_ring: NHI ring number used to receive packets from the
1937 * other domain. Pass %-1 to ignore.
1938 *
1939 * This function can be used to match specific DMA tunnel, if there are
1940 * multiple DMA tunnels going through the same XDomain connection.
1941 * Returns true if there is match and false otherwise.
1942 */
tb_tunnel_match_dma(const struct tb_tunnel * tunnel,int transmit_path,int transmit_ring,int receive_path,int receive_ring)1943 bool tb_tunnel_match_dma(const struct tb_tunnel *tunnel, int transmit_path,
1944 int transmit_ring, int receive_path, int receive_ring)
1945 {
1946 const struct tb_path *tx_path = NULL, *rx_path = NULL;
1947 int i;
1948
1949 if (!receive_ring || !transmit_ring)
1950 return false;
1951
1952 for (i = 0; i < tunnel->npaths; i++) {
1953 const struct tb_path *path = tunnel->paths[i];
1954
1955 if (!path)
1956 continue;
1957
1958 if (tb_port_is_nhi(path->hops[0].in_port))
1959 tx_path = path;
1960 else if (tb_port_is_nhi(path->hops[path->path_length - 1].out_port))
1961 rx_path = path;
1962 }
1963
1964 if (transmit_ring > 0 || transmit_path > 0) {
1965 if (!tx_path)
1966 return false;
1967 if (transmit_ring > 0 &&
1968 (tx_path->hops[0].in_hop_index != transmit_ring))
1969 return false;
1970 if (transmit_path > 0 &&
1971 (tx_path->hops[tx_path->path_length - 1].next_hop_index != transmit_path))
1972 return false;
1973 }
1974
1975 if (receive_ring > 0 || receive_path > 0) {
1976 if (!rx_path)
1977 return false;
1978 if (receive_path > 0 &&
1979 (rx_path->hops[0].in_hop_index != receive_path))
1980 return false;
1981 if (receive_ring > 0 &&
1982 (rx_path->hops[rx_path->path_length - 1].next_hop_index != receive_ring))
1983 return false;
1984 }
1985
1986 return true;
1987 }
1988
tb_usb3_max_link_rate(struct tb_port * up,struct tb_port * down)1989 static int tb_usb3_max_link_rate(struct tb_port *up, struct tb_port *down)
1990 {
1991 int ret, up_max_rate, down_max_rate;
1992
1993 ret = usb4_usb3_port_max_link_rate(up);
1994 if (ret < 0)
1995 return ret;
1996 up_max_rate = ret;
1997
1998 ret = usb4_usb3_port_max_link_rate(down);
1999 if (ret < 0)
2000 return ret;
2001 down_max_rate = ret;
2002
2003 return min(up_max_rate, down_max_rate);
2004 }
2005
tb_usb3_pre_activate(struct tb_tunnel * tunnel)2006 static int tb_usb3_pre_activate(struct tb_tunnel *tunnel)
2007 {
2008 tb_tunnel_dbg(tunnel, "allocating initial bandwidth %d/%d Mb/s\n",
2009 tunnel->allocated_up, tunnel->allocated_down);
2010
2011 return usb4_usb3_port_allocate_bandwidth(tunnel->src_port,
2012 &tunnel->allocated_up,
2013 &tunnel->allocated_down);
2014 }
2015
tb_usb3_activate(struct tb_tunnel * tunnel,bool activate)2016 static int tb_usb3_activate(struct tb_tunnel *tunnel, bool activate)
2017 {
2018 int res;
2019
2020 res = tb_usb3_port_enable(tunnel->src_port, activate);
2021 if (res)
2022 return res;
2023
2024 if (tb_port_is_usb3_up(tunnel->dst_port))
2025 return tb_usb3_port_enable(tunnel->dst_port, activate);
2026
2027 return 0;
2028 }
2029
tb_usb3_consumed_bandwidth(struct tb_tunnel * tunnel,int * consumed_up,int * consumed_down)2030 static int tb_usb3_consumed_bandwidth(struct tb_tunnel *tunnel,
2031 int *consumed_up, int *consumed_down)
2032 {
2033 struct tb_port *port = tb_upstream_port(tunnel->dst_port->sw);
2034 int pcie_weight = tb_acpi_may_tunnel_pcie() ? TB_PCI_WEIGHT : 0;
2035
2036 /*
2037 * PCIe tunneling, if enabled, affects the USB3 bandwidth so
2038 * take that it into account here.
2039 */
2040 *consumed_up = tunnel->allocated_up *
2041 (TB_USB3_WEIGHT + pcie_weight) / TB_USB3_WEIGHT;
2042 *consumed_down = tunnel->allocated_down *
2043 (TB_USB3_WEIGHT + pcie_weight) / TB_USB3_WEIGHT;
2044
2045 if (tb_port_get_link_generation(port) >= 4) {
2046 *consumed_up = max(*consumed_up, USB4_V2_USB3_MIN_BANDWIDTH);
2047 *consumed_down = max(*consumed_down, USB4_V2_USB3_MIN_BANDWIDTH);
2048 }
2049
2050 return 0;
2051 }
2052
tb_usb3_release_unused_bandwidth(struct tb_tunnel * tunnel)2053 static int tb_usb3_release_unused_bandwidth(struct tb_tunnel *tunnel)
2054 {
2055 int ret;
2056
2057 ret = usb4_usb3_port_release_bandwidth(tunnel->src_port,
2058 &tunnel->allocated_up,
2059 &tunnel->allocated_down);
2060 if (ret)
2061 return ret;
2062
2063 tb_tunnel_dbg(tunnel, "decreased bandwidth allocation to %d/%d Mb/s\n",
2064 tunnel->allocated_up, tunnel->allocated_down);
2065 return 0;
2066 }
2067
tb_usb3_reclaim_available_bandwidth(struct tb_tunnel * tunnel,int * available_up,int * available_down)2068 static void tb_usb3_reclaim_available_bandwidth(struct tb_tunnel *tunnel,
2069 int *available_up,
2070 int *available_down)
2071 {
2072 int ret, max_rate, allocate_up, allocate_down;
2073
2074 ret = tb_usb3_max_link_rate(tunnel->dst_port, tunnel->src_port);
2075 if (ret < 0) {
2076 tb_tunnel_warn(tunnel, "failed to read maximum link rate\n");
2077 return;
2078 }
2079
2080 /*
2081 * 90% of the max rate can be allocated for isochronous
2082 * transfers.
2083 */
2084 max_rate = ret * 90 / 100;
2085
2086 /* No need to reclaim if already at maximum */
2087 if (tunnel->allocated_up >= max_rate &&
2088 tunnel->allocated_down >= max_rate)
2089 return;
2090
2091 /* Don't go lower than what is already allocated */
2092 allocate_up = min(max_rate, *available_up);
2093 if (allocate_up < tunnel->allocated_up)
2094 allocate_up = tunnel->allocated_up;
2095
2096 allocate_down = min(max_rate, *available_down);
2097 if (allocate_down < tunnel->allocated_down)
2098 allocate_down = tunnel->allocated_down;
2099
2100 /* If no changes no need to do more */
2101 if (allocate_up == tunnel->allocated_up &&
2102 allocate_down == tunnel->allocated_down)
2103 return;
2104
2105 ret = usb4_usb3_port_allocate_bandwidth(tunnel->src_port, &allocate_up,
2106 &allocate_down);
2107 if (ret) {
2108 tb_tunnel_info(tunnel, "failed to allocate bandwidth\n");
2109 return;
2110 }
2111
2112 tunnel->allocated_up = allocate_up;
2113 *available_up -= tunnel->allocated_up;
2114
2115 tunnel->allocated_down = allocate_down;
2116 *available_down -= tunnel->allocated_down;
2117
2118 tb_tunnel_dbg(tunnel, "increased bandwidth allocation to %d/%d Mb/s\n",
2119 tunnel->allocated_up, tunnel->allocated_down);
2120 }
2121
tb_usb3_init_credits(struct tb_path_hop * hop)2122 static void tb_usb3_init_credits(struct tb_path_hop *hop)
2123 {
2124 struct tb_port *port = hop->in_port;
2125 struct tb_switch *sw = port->sw;
2126 unsigned int credits;
2127
2128 if (tb_port_use_credit_allocation(port)) {
2129 credits = sw->max_usb3_credits;
2130 } else {
2131 if (tb_port_is_null(port))
2132 credits = port->bonded ? 32 : 16;
2133 else
2134 credits = 7;
2135 }
2136
2137 hop->initial_credits = credits;
2138 }
2139
tb_usb3_init_path(struct tb_path * path)2140 static void tb_usb3_init_path(struct tb_path *path)
2141 {
2142 struct tb_path_hop *hop;
2143
2144 path->egress_fc_enable = TB_PATH_SOURCE | TB_PATH_INTERNAL;
2145 path->egress_shared_buffer = TB_PATH_NONE;
2146 path->ingress_fc_enable = TB_PATH_ALL;
2147 path->ingress_shared_buffer = TB_PATH_NONE;
2148 path->priority = TB_USB3_PRIORITY;
2149 path->weight = TB_USB3_WEIGHT;
2150 path->drop_packages = 0;
2151
2152 tb_path_for_each_hop(path, hop)
2153 tb_usb3_init_credits(hop);
2154 }
2155
2156 /**
2157 * tb_tunnel_discover_usb3() - Discover existing USB3 tunnels
2158 * @tb: Pointer to the domain structure
2159 * @down: USB3 downstream adapter
2160 * @alloc_hopid: Allocate HopIDs from visited ports
2161 *
2162 * If @down adapter is active, follows the tunnel to the USB3 upstream
2163 * adapter and back. Returns the discovered tunnel or %NULL if there was
2164 * no tunnel.
2165 */
tb_tunnel_discover_usb3(struct tb * tb,struct tb_port * down,bool alloc_hopid)2166 struct tb_tunnel *tb_tunnel_discover_usb3(struct tb *tb, struct tb_port *down,
2167 bool alloc_hopid)
2168 {
2169 struct tb_tunnel *tunnel;
2170 struct tb_path *path;
2171
2172 if (!tb_usb3_port_is_enabled(down))
2173 return NULL;
2174
2175 tunnel = tb_tunnel_alloc(tb, 2, TB_TUNNEL_USB3);
2176 if (!tunnel)
2177 return NULL;
2178
2179 tunnel->activate = tb_usb3_activate;
2180 tunnel->src_port = down;
2181
2182 /*
2183 * Discover both paths even if they are not complete. We will
2184 * clean them up by calling tb_tunnel_deactivate() below in that
2185 * case.
2186 */
2187 path = tb_path_discover(down, TB_USB3_HOPID, NULL, -1,
2188 &tunnel->dst_port, "USB3 Down", alloc_hopid);
2189 if (!path) {
2190 /* Just disable the downstream port */
2191 tb_usb3_port_enable(down, false);
2192 goto err_free;
2193 }
2194 tunnel->paths[TB_USB3_PATH_DOWN] = path;
2195 tb_usb3_init_path(tunnel->paths[TB_USB3_PATH_DOWN]);
2196
2197 path = tb_path_discover(tunnel->dst_port, -1, down, TB_USB3_HOPID, NULL,
2198 "USB3 Up", alloc_hopid);
2199 if (!path)
2200 goto err_deactivate;
2201 tunnel->paths[TB_USB3_PATH_UP] = path;
2202 tb_usb3_init_path(tunnel->paths[TB_USB3_PATH_UP]);
2203
2204 /* Validate that the tunnel is complete */
2205 if (!tb_port_is_usb3_up(tunnel->dst_port)) {
2206 tb_port_warn(tunnel->dst_port,
2207 "path does not end on an USB3 adapter, cleaning up\n");
2208 goto err_deactivate;
2209 }
2210
2211 if (down != tunnel->src_port) {
2212 tb_tunnel_warn(tunnel, "path is not complete, cleaning up\n");
2213 goto err_deactivate;
2214 }
2215
2216 if (!tb_usb3_port_is_enabled(tunnel->dst_port)) {
2217 tb_tunnel_warn(tunnel,
2218 "tunnel is not fully activated, cleaning up\n");
2219 goto err_deactivate;
2220 }
2221
2222 if (!tb_route(down->sw)) {
2223 int ret;
2224
2225 /*
2226 * Read the initial bandwidth allocation for the first
2227 * hop tunnel.
2228 */
2229 ret = usb4_usb3_port_allocated_bandwidth(down,
2230 &tunnel->allocated_up, &tunnel->allocated_down);
2231 if (ret)
2232 goto err_deactivate;
2233
2234 tb_tunnel_dbg(tunnel, "currently allocated bandwidth %d/%d Mb/s\n",
2235 tunnel->allocated_up, tunnel->allocated_down);
2236
2237 tunnel->pre_activate = tb_usb3_pre_activate;
2238 tunnel->consumed_bandwidth = tb_usb3_consumed_bandwidth;
2239 tunnel->release_unused_bandwidth =
2240 tb_usb3_release_unused_bandwidth;
2241 tunnel->reclaim_available_bandwidth =
2242 tb_usb3_reclaim_available_bandwidth;
2243 }
2244
2245 tb_tunnel_dbg(tunnel, "discovered\n");
2246 return tunnel;
2247
2248 err_deactivate:
2249 tb_tunnel_deactivate(tunnel);
2250 err_free:
2251 tb_tunnel_put(tunnel);
2252
2253 return NULL;
2254 }
2255
2256 /**
2257 * tb_tunnel_alloc_usb3() - allocate a USB3 tunnel
2258 * @tb: Pointer to the domain structure
2259 * @up: USB3 upstream adapter port
2260 * @down: USB3 downstream adapter port
2261 * @max_up: Maximum available upstream bandwidth for the USB3 tunnel.
2262 * %0 if no available bandwidth.
2263 * @max_down: Maximum available downstream bandwidth for the USB3 tunnel.
2264 * %0 if no available bandwidth.
2265 *
2266 * Allocate an USB3 tunnel. The ports must be of type @TB_TYPE_USB3_UP and
2267 * @TB_TYPE_USB3_DOWN.
2268 *
2269 * Return: Returns a tb_tunnel on success or %NULL on failure.
2270 */
tb_tunnel_alloc_usb3(struct tb * tb,struct tb_port * up,struct tb_port * down,int max_up,int max_down)2271 struct tb_tunnel *tb_tunnel_alloc_usb3(struct tb *tb, struct tb_port *up,
2272 struct tb_port *down, int max_up,
2273 int max_down)
2274 {
2275 struct tb_tunnel *tunnel;
2276 struct tb_path *path;
2277 int max_rate = 0;
2278
2279 if (!tb_route(down->sw) && (max_up > 0 || max_down > 0)) {
2280 /*
2281 * For USB3 isochronous transfers, we allow bandwidth which is
2282 * not higher than 90% of maximum supported bandwidth by USB3
2283 * adapters.
2284 */
2285 max_rate = tb_usb3_max_link_rate(down, up);
2286 if (max_rate < 0)
2287 return NULL;
2288
2289 max_rate = max_rate * 90 / 100;
2290 tb_port_dbg(up, "maximum required bandwidth for USB3 tunnel %d Mb/s\n",
2291 max_rate);
2292 }
2293
2294 tunnel = tb_tunnel_alloc(tb, 2, TB_TUNNEL_USB3);
2295 if (!tunnel)
2296 return NULL;
2297
2298 tunnel->activate = tb_usb3_activate;
2299 tunnel->src_port = down;
2300 tunnel->dst_port = up;
2301 tunnel->max_up = max_up;
2302 tunnel->max_down = max_down;
2303
2304 path = tb_path_alloc(tb, down, TB_USB3_HOPID, up, TB_USB3_HOPID, 0,
2305 "USB3 Down");
2306 if (!path)
2307 goto err_free;
2308 tb_usb3_init_path(path);
2309 tunnel->paths[TB_USB3_PATH_DOWN] = path;
2310
2311 path = tb_path_alloc(tb, up, TB_USB3_HOPID, down, TB_USB3_HOPID, 0,
2312 "USB3 Up");
2313 if (!path)
2314 goto err_free;
2315 tb_usb3_init_path(path);
2316 tunnel->paths[TB_USB3_PATH_UP] = path;
2317
2318 if (!tb_route(down->sw)) {
2319 tunnel->allocated_up = min(max_rate, max_up);
2320 tunnel->allocated_down = min(max_rate, max_down);
2321
2322 tunnel->pre_activate = tb_usb3_pre_activate;
2323 tunnel->consumed_bandwidth = tb_usb3_consumed_bandwidth;
2324 tunnel->release_unused_bandwidth =
2325 tb_usb3_release_unused_bandwidth;
2326 tunnel->reclaim_available_bandwidth =
2327 tb_usb3_reclaim_available_bandwidth;
2328 }
2329
2330 return tunnel;
2331
2332 err_free:
2333 tb_tunnel_put(tunnel);
2334 return NULL;
2335 }
2336
2337 /**
2338 * tb_tunnel_is_invalid - check whether an activated path is still valid
2339 * @tunnel: Tunnel to check
2340 */
tb_tunnel_is_invalid(struct tb_tunnel * tunnel)2341 bool tb_tunnel_is_invalid(struct tb_tunnel *tunnel)
2342 {
2343 int i;
2344
2345 for (i = 0; i < tunnel->npaths; i++) {
2346 WARN_ON(!tunnel->paths[i]->activated);
2347 if (tb_path_is_invalid(tunnel->paths[i]))
2348 return true;
2349 }
2350
2351 return false;
2352 }
2353
2354 /**
2355 * tb_tunnel_activate() - activate a tunnel
2356 * @tunnel: Tunnel to activate
2357 *
2358 * Return: 0 on success and negative errno in case if failure.
2359 * Specifically returns %-EINPROGRESS if the tunnel activation is still
2360 * in progress (that's for DP tunnels to complete DPRX capabilities
2361 * read).
2362 */
tb_tunnel_activate(struct tb_tunnel * tunnel)2363 int tb_tunnel_activate(struct tb_tunnel *tunnel)
2364 {
2365 int res, i;
2366
2367 tb_tunnel_dbg(tunnel, "activating\n");
2368
2369 /*
2370 * Make sure all paths are properly disabled before enabling
2371 * them again.
2372 */
2373 for (i = 0; i < tunnel->npaths; i++) {
2374 if (tunnel->paths[i]->activated) {
2375 tb_path_deactivate(tunnel->paths[i]);
2376 tunnel->paths[i]->activated = false;
2377 }
2378 }
2379
2380 tunnel->state = TB_TUNNEL_ACTIVATING;
2381
2382 if (tunnel->pre_activate) {
2383 res = tunnel->pre_activate(tunnel);
2384 if (res)
2385 return res;
2386 }
2387
2388 for (i = 0; i < tunnel->npaths; i++) {
2389 res = tb_path_activate(tunnel->paths[i]);
2390 if (res)
2391 goto err;
2392 }
2393
2394 if (tunnel->activate) {
2395 res = tunnel->activate(tunnel, true);
2396 if (res) {
2397 if (res == -EINPROGRESS)
2398 return res;
2399 goto err;
2400 }
2401 }
2402
2403 tb_tunnel_set_active(tunnel, true);
2404 return 0;
2405
2406 err:
2407 tb_tunnel_warn(tunnel, "activation failed\n");
2408 tb_tunnel_deactivate(tunnel);
2409 return res;
2410 }
2411
2412 /**
2413 * tb_tunnel_deactivate() - deactivate a tunnel
2414 * @tunnel: Tunnel to deactivate
2415 */
tb_tunnel_deactivate(struct tb_tunnel * tunnel)2416 void tb_tunnel_deactivate(struct tb_tunnel *tunnel)
2417 {
2418 int i;
2419
2420 tb_tunnel_dbg(tunnel, "deactivating\n");
2421
2422 if (tunnel->activate)
2423 tunnel->activate(tunnel, false);
2424
2425 for (i = 0; i < tunnel->npaths; i++) {
2426 if (tunnel->paths[i] && tunnel->paths[i]->activated)
2427 tb_path_deactivate(tunnel->paths[i]);
2428 }
2429
2430 if (tunnel->post_deactivate)
2431 tunnel->post_deactivate(tunnel);
2432
2433 tb_tunnel_set_active(tunnel, false);
2434 }
2435
2436 /**
2437 * tb_tunnel_port_on_path() - Does the tunnel go through port
2438 * @tunnel: Tunnel to check
2439 * @port: Port to check
2440 *
2441 * Returns true if @tunnel goes through @port (direction does not matter),
2442 * false otherwise.
2443 */
tb_tunnel_port_on_path(const struct tb_tunnel * tunnel,const struct tb_port * port)2444 bool tb_tunnel_port_on_path(const struct tb_tunnel *tunnel,
2445 const struct tb_port *port)
2446 {
2447 int i;
2448
2449 for (i = 0; i < tunnel->npaths; i++) {
2450 if (!tunnel->paths[i])
2451 continue;
2452
2453 if (tb_path_port_on_path(tunnel->paths[i], port))
2454 return true;
2455 }
2456
2457 return false;
2458 }
2459
2460 // Is tb_tunnel_activate() called for the tunnel
tb_tunnel_is_activated(const struct tb_tunnel * tunnel)2461 static bool tb_tunnel_is_activated(const struct tb_tunnel *tunnel)
2462 {
2463 return tunnel->state == TB_TUNNEL_ACTIVATING || tb_tunnel_is_active(tunnel);
2464 }
2465
2466 /**
2467 * tb_tunnel_maximum_bandwidth() - Return maximum possible bandwidth
2468 * @tunnel: Tunnel to check
2469 * @max_up: Maximum upstream bandwidth in Mb/s
2470 * @max_down: Maximum downstream bandwidth in Mb/s
2471 *
2472 * Returns maximum possible bandwidth this tunnel can go if not limited
2473 * by other bandwidth clients. If the tunnel does not support this
2474 * returns %-EOPNOTSUPP.
2475 */
tb_tunnel_maximum_bandwidth(struct tb_tunnel * tunnel,int * max_up,int * max_down)2476 int tb_tunnel_maximum_bandwidth(struct tb_tunnel *tunnel, int *max_up,
2477 int *max_down)
2478 {
2479 if (!tb_tunnel_is_active(tunnel))
2480 return -ENOTCONN;
2481
2482 if (tunnel->maximum_bandwidth)
2483 return tunnel->maximum_bandwidth(tunnel, max_up, max_down);
2484 return -EOPNOTSUPP;
2485 }
2486
2487 /**
2488 * tb_tunnel_allocated_bandwidth() - Return bandwidth allocated for the tunnel
2489 * @tunnel: Tunnel to check
2490 * @allocated_up: Currently allocated upstream bandwidth in Mb/s is stored here
2491 * @allocated_down: Currently allocated downstream bandwidth in Mb/s is
2492 * stored here
2493 *
2494 * Returns the bandwidth allocated for the tunnel. This may be higher
2495 * than what the tunnel actually consumes.
2496 */
tb_tunnel_allocated_bandwidth(struct tb_tunnel * tunnel,int * allocated_up,int * allocated_down)2497 int tb_tunnel_allocated_bandwidth(struct tb_tunnel *tunnel, int *allocated_up,
2498 int *allocated_down)
2499 {
2500 if (!tb_tunnel_is_active(tunnel))
2501 return -ENOTCONN;
2502
2503 if (tunnel->allocated_bandwidth)
2504 return tunnel->allocated_bandwidth(tunnel, allocated_up,
2505 allocated_down);
2506 return -EOPNOTSUPP;
2507 }
2508
2509 /**
2510 * tb_tunnel_alloc_bandwidth() - Change tunnel bandwidth allocation
2511 * @tunnel: Tunnel whose bandwidth allocation to change
2512 * @alloc_up: New upstream bandwidth in Mb/s
2513 * @alloc_down: New downstream bandwidth in Mb/s
2514 *
2515 * Tries to change tunnel bandwidth allocation. If succeeds returns %0
2516 * and updates @alloc_up and @alloc_down to that was actually allocated
2517 * (it may not be the same as passed originally). Returns negative errno
2518 * in case of failure.
2519 */
tb_tunnel_alloc_bandwidth(struct tb_tunnel * tunnel,int * alloc_up,int * alloc_down)2520 int tb_tunnel_alloc_bandwidth(struct tb_tunnel *tunnel, int *alloc_up,
2521 int *alloc_down)
2522 {
2523 if (!tb_tunnel_is_active(tunnel))
2524 return -ENOTCONN;
2525
2526 if (tunnel->alloc_bandwidth) {
2527 int ret;
2528
2529 ret = tunnel->alloc_bandwidth(tunnel, alloc_up, alloc_down);
2530 if (ret)
2531 return ret;
2532
2533 tb_tunnel_changed(tunnel);
2534 return 0;
2535 }
2536
2537 return -EOPNOTSUPP;
2538 }
2539
2540 /**
2541 * tb_tunnel_consumed_bandwidth() - Return bandwidth consumed by the tunnel
2542 * @tunnel: Tunnel to check
2543 * @consumed_up: Consumed bandwidth in Mb/s from @dst_port to @src_port.
2544 * Can be %NULL.
2545 * @consumed_down: Consumed bandwidth in Mb/s from @src_port to @dst_port.
2546 * Can be %NULL.
2547 *
2548 * Stores the amount of isochronous bandwidth @tunnel consumes in
2549 * @consumed_up and @consumed_down. In case of success returns %0,
2550 * negative errno otherwise.
2551 */
tb_tunnel_consumed_bandwidth(struct tb_tunnel * tunnel,int * consumed_up,int * consumed_down)2552 int tb_tunnel_consumed_bandwidth(struct tb_tunnel *tunnel, int *consumed_up,
2553 int *consumed_down)
2554 {
2555 int up_bw = 0, down_bw = 0;
2556
2557 /*
2558 * Here we need to distinguish between not active tunnel from
2559 * tunnels that are either fully active or activation started.
2560 * The latter is true for DP tunnels where we must report the
2561 * consumed to be the maximum we gave it until DPRX capabilities
2562 * read is done by the graphics driver.
2563 */
2564 if (tb_tunnel_is_activated(tunnel) && tunnel->consumed_bandwidth) {
2565 int ret;
2566
2567 ret = tunnel->consumed_bandwidth(tunnel, &up_bw, &down_bw);
2568 if (ret)
2569 return ret;
2570 }
2571
2572 if (consumed_up)
2573 *consumed_up = up_bw;
2574 if (consumed_down)
2575 *consumed_down = down_bw;
2576
2577 tb_tunnel_dbg(tunnel, "consumed bandwidth %d/%d Mb/s\n", up_bw, down_bw);
2578 return 0;
2579 }
2580
2581 /**
2582 * tb_tunnel_release_unused_bandwidth() - Release unused bandwidth
2583 * @tunnel: Tunnel whose unused bandwidth to release
2584 *
2585 * If tunnel supports dynamic bandwidth management (USB3 tunnels at the
2586 * moment) this function makes it to release all the unused bandwidth.
2587 *
2588 * Returns %0 in case of success and negative errno otherwise.
2589 */
tb_tunnel_release_unused_bandwidth(struct tb_tunnel * tunnel)2590 int tb_tunnel_release_unused_bandwidth(struct tb_tunnel *tunnel)
2591 {
2592 if (!tb_tunnel_is_active(tunnel))
2593 return -ENOTCONN;
2594
2595 if (tunnel->release_unused_bandwidth) {
2596 int ret;
2597
2598 ret = tunnel->release_unused_bandwidth(tunnel);
2599 if (ret)
2600 return ret;
2601 }
2602
2603 return 0;
2604 }
2605
2606 /**
2607 * tb_tunnel_reclaim_available_bandwidth() - Reclaim available bandwidth
2608 * @tunnel: Tunnel reclaiming available bandwidth
2609 * @available_up: Available upstream bandwidth (in Mb/s)
2610 * @available_down: Available downstream bandwidth (in Mb/s)
2611 *
2612 * Reclaims bandwidth from @available_up and @available_down and updates
2613 * the variables accordingly (e.g decreases both according to what was
2614 * reclaimed by the tunnel). If nothing was reclaimed the values are
2615 * kept as is.
2616 */
tb_tunnel_reclaim_available_bandwidth(struct tb_tunnel * tunnel,int * available_up,int * available_down)2617 void tb_tunnel_reclaim_available_bandwidth(struct tb_tunnel *tunnel,
2618 int *available_up,
2619 int *available_down)
2620 {
2621 if (!tb_tunnel_is_active(tunnel))
2622 return;
2623
2624 if (tunnel->reclaim_available_bandwidth)
2625 tunnel->reclaim_available_bandwidth(tunnel, available_up,
2626 available_down);
2627 }
2628
tb_tunnel_type_name(const struct tb_tunnel * tunnel)2629 const char *tb_tunnel_type_name(const struct tb_tunnel *tunnel)
2630 {
2631 return tb_tunnel_names[tunnel->type];
2632 }
2633