1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * u_serial.c - utilities for USB gadget "serial port"/TTY support
4 *
5 * Copyright (C) 2003 Al Borchers (alborchers@steinerpoint.com)
6 * Copyright (C) 2008 David Brownell
7 * Copyright (C) 2008 by Nokia Corporation
8 *
9 * This code also borrows from usbserial.c, which is
10 * Copyright (C) 1999 - 2002 Greg Kroah-Hartman (greg@kroah.com)
11 * Copyright (C) 2000 Peter Berger (pberger@brimson.com)
12 * Copyright (C) 2000 Al Borchers (alborchers@steinerpoint.com)
13 */
14
15 /* #define VERBOSE_DEBUG */
16
17 #include <linux/kernel.h>
18 #include <linux/sched.h>
19 #include <linux/interrupt.h>
20 #include <linux/device.h>
21 #include <linux/delay.h>
22 #include <linux/tty.h>
23 #include <linux/tty_flip.h>
24 #include <linux/slab.h>
25 #include <linux/export.h>
26 #include <linux/module.h>
27 #include <linux/console.h>
28 #include <linux/kthread.h>
29 #include <linux/kfifo.h>
30
31 #include "u_serial.h"
32
33
34 /*
35 * This component encapsulates the TTY layer glue needed to provide basic
36 * "serial port" functionality through the USB gadget stack. Each such
37 * port is exposed through a /dev/ttyGS* node.
38 *
39 * After this module has been loaded, the individual TTY port can be requested
40 * (gserial_alloc_line()) and it will stay available until they are removed
41 * (gserial_free_line()). Each one may be connected to a USB function
42 * (gserial_connect), or disconnected (with gserial_disconnect) when the USB
43 * host issues a config change event. Data can only flow when the port is
44 * connected to the host.
45 *
46 * A given TTY port can be made available in multiple configurations.
47 * For example, each one might expose a ttyGS0 node which provides a
48 * login application. In one case that might use CDC ACM interface 0,
49 * while another configuration might use interface 3 for that. The
50 * work to handle that (including descriptor management) is not part
51 * of this component.
52 *
53 * Configurations may expose more than one TTY port. For example, if
54 * ttyGS0 provides login service, then ttyGS1 might provide dialer access
55 * for a telephone or fax link. And ttyGS2 might be something that just
56 * needs a simple byte stream interface for some messaging protocol that
57 * is managed in userspace ... OBEX, PTP, and MTP have been mentioned.
58 *
59 *
60 * gserial is the lifecycle interface, used by USB functions
61 * gs_port is the I/O nexus, used by the tty driver
62 * tty_struct links to the tty/filesystem framework
63 *
64 * gserial <---> gs_port ... links will be null when the USB link is
65 * inactive; managed by gserial_{connect,disconnect}(). each gserial
66 * instance can wrap its own USB control protocol.
67 * gserial->ioport == usb_ep->driver_data ... gs_port
68 * gs_port->port_usb ... gserial
69 *
70 * gs_port <---> tty_struct ... links will be null when the TTY file
71 * isn't opened; managed by gs_open()/gs_close()
72 * gserial->port_tty ... tty_struct
73 * tty_struct->driver_data ... gserial
74 */
75
76 /* RX and TX queues can buffer QUEUE_SIZE packets before they hit the
77 * next layer of buffering. For TX that's a circular buffer; for RX
78 * consider it a NOP. A third layer is provided by the TTY code.
79 */
80 #define QUEUE_SIZE 16
81 #define WRITE_BUF_SIZE 8192 /* TX only */
82 #define GS_CONSOLE_BUF_SIZE 8192
83
84 /* console info */
85 struct gscons_info {
86 struct gs_port *port;
87 struct task_struct *console_thread;
88 struct kfifo con_buf;
89 /* protect the buf and busy flag */
90 spinlock_t con_lock;
91 int req_busy;
92 struct usb_request *console_req;
93 };
94
95 /*
96 * The port structure holds info for each port, one for each minor number
97 * (and thus for each /dev/ node).
98 */
99 struct gs_port {
100 struct tty_port port;
101 spinlock_t port_lock; /* guard port_* access */
102
103 struct gserial *port_usb;
104
105 bool openclose; /* open/close in progress */
106 u8 port_num;
107
108 struct list_head read_pool;
109 int read_started;
110 int read_allocated;
111 struct list_head read_queue;
112 unsigned n_read;
113 struct tasklet_struct push;
114
115 struct list_head write_pool;
116 int write_started;
117 int write_allocated;
118 struct kfifo port_write_buf;
119 wait_queue_head_t drain_wait; /* wait while writes drain */
120 bool write_busy;
121 wait_queue_head_t close_wait;
122
123 /* REVISIT this state ... */
124 struct usb_cdc_line_coding port_line_coding; /* 8-N-1 etc */
125 };
126
127 static struct portmaster {
128 struct mutex lock; /* protect open/close */
129 struct gs_port *port;
130 } ports[MAX_U_SERIAL_PORTS];
131
132 #define GS_CLOSE_TIMEOUT 15 /* seconds */
133
134
135
136 #ifdef VERBOSE_DEBUG
137 #ifndef pr_vdebug
138 #define pr_vdebug(fmt, arg...) \
139 pr_debug(fmt, ##arg)
140 #endif /* pr_vdebug */
141 #else
142 #ifndef pr_vdebug
143 #define pr_vdebug(fmt, arg...) \
144 ({ if (0) pr_debug(fmt, ##arg); })
145 #endif /* pr_vdebug */
146 #endif
147
148 /*-------------------------------------------------------------------------*/
149
150 /* I/O glue between TTY (upper) and USB function (lower) driver layers */
151
152 /*
153 * gs_alloc_req
154 *
155 * Allocate a usb_request and its buffer. Returns a pointer to the
156 * usb_request or NULL if there is an error.
157 */
158 struct usb_request *
gs_alloc_req(struct usb_ep * ep,unsigned len,gfp_t kmalloc_flags)159 gs_alloc_req(struct usb_ep *ep, unsigned len, gfp_t kmalloc_flags)
160 {
161 struct usb_request *req;
162
163 req = usb_ep_alloc_request(ep, kmalloc_flags);
164
165 if (req != NULL) {
166 req->length = len;
167 req->buf = kmalloc(len, kmalloc_flags);
168 if (req->buf == NULL) {
169 usb_ep_free_request(ep, req);
170 return NULL;
171 }
172 }
173
174 return req;
175 }
176 EXPORT_SYMBOL_GPL(gs_alloc_req);
177
178 /*
179 * gs_free_req
180 *
181 * Free a usb_request and its buffer.
182 */
gs_free_req(struct usb_ep * ep,struct usb_request * req)183 void gs_free_req(struct usb_ep *ep, struct usb_request *req)
184 {
185 kfree(req->buf);
186 usb_ep_free_request(ep, req);
187 }
188 EXPORT_SYMBOL_GPL(gs_free_req);
189
190 /*
191 * gs_send_packet
192 *
193 * If there is data to send, a packet is built in the given
194 * buffer and the size is returned. If there is no data to
195 * send, 0 is returned.
196 *
197 * Called with port_lock held.
198 */
199 static unsigned
gs_send_packet(struct gs_port * port,char * packet,unsigned size)200 gs_send_packet(struct gs_port *port, char *packet, unsigned size)
201 {
202 unsigned len;
203
204 len = kfifo_len(&port->port_write_buf);
205 if (len < size)
206 size = len;
207 if (size != 0)
208 size = kfifo_out(&port->port_write_buf, packet, size);
209 return size;
210 }
211
212 /*
213 * gs_start_tx
214 *
215 * This function finds available write requests, calls
216 * gs_send_packet to fill these packets with data, and
217 * continues until either there are no more write requests
218 * available or no more data to send. This function is
219 * run whenever data arrives or write requests are available.
220 *
221 * Context: caller owns port_lock; port_usb is non-null.
222 */
gs_start_tx(struct gs_port * port)223 static int gs_start_tx(struct gs_port *port)
224 /*
225 __releases(&port->port_lock)
226 __acquires(&port->port_lock)
227 */
228 {
229 struct list_head *pool = &port->write_pool;
230 struct usb_ep *in;
231 int status = 0;
232 bool do_tty_wake = false;
233
234 if (!port->port_usb)
235 return status;
236
237 in = port->port_usb->in;
238
239 while (!port->write_busy && !list_empty(pool)) {
240 struct usb_request *req;
241 int len;
242
243 if (port->write_started >= QUEUE_SIZE)
244 break;
245
246 req = list_entry(pool->next, struct usb_request, list);
247 len = gs_send_packet(port, req->buf, in->maxpacket);
248 if (len == 0) {
249 wake_up_interruptible(&port->drain_wait);
250 break;
251 }
252 do_tty_wake = true;
253
254 req->length = len;
255 list_del(&req->list);
256 req->zero = kfifo_is_empty(&port->port_write_buf);
257
258 pr_vdebug("ttyGS%d: tx len=%d, 0x%02x 0x%02x 0x%02x ...\n",
259 port->port_num, len, *((u8 *)req->buf),
260 *((u8 *)req->buf+1), *((u8 *)req->buf+2));
261
262 /* Drop lock while we call out of driver; completions
263 * could be issued while we do so. Disconnection may
264 * happen too; maybe immediately before we queue this!
265 *
266 * NOTE that we may keep sending data for a while after
267 * the TTY closed (dev->ioport->port_tty is NULL).
268 */
269 port->write_busy = true;
270 spin_unlock(&port->port_lock);
271 status = usb_ep_queue(in, req, GFP_ATOMIC);
272 spin_lock(&port->port_lock);
273 port->write_busy = false;
274
275 if (status) {
276 pr_debug("%s: %s %s err %d\n",
277 __func__, "queue", in->name, status);
278 list_add(&req->list, pool);
279 break;
280 }
281
282 port->write_started++;
283
284 /* abort immediately after disconnect */
285 if (!port->port_usb)
286 break;
287 }
288
289 if (do_tty_wake && port->port.tty)
290 tty_wakeup(port->port.tty);
291 return status;
292 }
293
294 /*
295 * Context: caller owns port_lock, and port_usb is set
296 */
gs_start_rx(struct gs_port * port)297 static unsigned gs_start_rx(struct gs_port *port)
298 /*
299 __releases(&port->port_lock)
300 __acquires(&port->port_lock)
301 */
302 {
303 struct list_head *pool = &port->read_pool;
304 struct usb_ep *out = port->port_usb->out;
305
306 while (!list_empty(pool)) {
307 struct usb_request *req;
308 int status;
309 struct tty_struct *tty;
310
311 /* no more rx if closed */
312 tty = port->port.tty;
313 if (!tty)
314 break;
315
316 if (port->read_started >= QUEUE_SIZE)
317 break;
318
319 req = list_entry(pool->next, struct usb_request, list);
320 list_del(&req->list);
321 req->length = out->maxpacket;
322
323 /* drop lock while we call out; the controller driver
324 * may need to call us back (e.g. for disconnect)
325 */
326 spin_unlock(&port->port_lock);
327 status = usb_ep_queue(out, req, GFP_ATOMIC);
328 spin_lock(&port->port_lock);
329
330 if (status) {
331 pr_debug("%s: %s %s err %d\n",
332 __func__, "queue", out->name, status);
333 list_add(&req->list, pool);
334 break;
335 }
336 port->read_started++;
337
338 /* abort immediately after disconnect */
339 if (!port->port_usb)
340 break;
341 }
342 return port->read_started;
343 }
344
345 /*
346 * RX tasklet takes data out of the RX queue and hands it up to the TTY
347 * layer until it refuses to take any more data (or is throttled back).
348 * Then it issues reads for any further data.
349 *
350 * If the RX queue becomes full enough that no usb_request is queued,
351 * the OUT endpoint may begin NAKing as soon as its FIFO fills up.
352 * So QUEUE_SIZE packets plus however many the FIFO holds (usually two)
353 * can be buffered before the TTY layer's buffers (currently 64 KB).
354 */
gs_rx_push(unsigned long _port)355 static void gs_rx_push(unsigned long _port)
356 {
357 struct gs_port *port = (void *)_port;
358 struct tty_struct *tty;
359 struct list_head *queue = &port->read_queue;
360 bool disconnect = false;
361 bool do_push = false;
362
363 /* hand any queued data to the tty */
364 spin_lock_irq(&port->port_lock);
365 tty = port->port.tty;
366 while (!list_empty(queue)) {
367 struct usb_request *req;
368
369 req = list_first_entry(queue, struct usb_request, list);
370
371 /* leave data queued if tty was rx throttled */
372 if (tty && tty_throttled(tty))
373 break;
374
375 switch (req->status) {
376 case -ESHUTDOWN:
377 disconnect = true;
378 pr_vdebug("ttyGS%d: shutdown\n", port->port_num);
379 break;
380
381 default:
382 /* presumably a transient fault */
383 pr_warn("ttyGS%d: unexpected RX status %d\n",
384 port->port_num, req->status);
385 /* FALLTHROUGH */
386 case 0:
387 /* normal completion */
388 break;
389 }
390
391 /* push data to (open) tty */
392 if (req->actual && tty) {
393 char *packet = req->buf;
394 unsigned size = req->actual;
395 unsigned n;
396 int count;
397
398 /* we may have pushed part of this packet already... */
399 n = port->n_read;
400 if (n) {
401 packet += n;
402 size -= n;
403 }
404
405 count = tty_insert_flip_string(&port->port, packet,
406 size);
407 if (count)
408 do_push = true;
409 if (count != size) {
410 /* stop pushing; TTY layer can't handle more */
411 port->n_read += count;
412 pr_vdebug("ttyGS%d: rx block %d/%d\n",
413 port->port_num, count, req->actual);
414 break;
415 }
416 port->n_read = 0;
417 }
418
419 list_move(&req->list, &port->read_pool);
420 port->read_started--;
421 }
422
423 /* Push from tty to ldisc; this is handled by a workqueue,
424 * so we won't get callbacks and can hold port_lock
425 */
426 if (do_push)
427 tty_flip_buffer_push(&port->port);
428
429
430 /* We want our data queue to become empty ASAP, keeping data
431 * in the tty and ldisc (not here). If we couldn't push any
432 * this time around, there may be trouble unless there's an
433 * implicit tty_unthrottle() call on its way...
434 *
435 * REVISIT we should probably add a timer to keep the tasklet
436 * from starving ... but it's not clear that case ever happens.
437 */
438 if (!list_empty(queue) && tty) {
439 if (!tty_throttled(tty)) {
440 if (do_push)
441 tasklet_schedule(&port->push);
442 else
443 pr_warn("ttyGS%d: RX not scheduled?\n",
444 port->port_num);
445 }
446 }
447
448 /* If we're still connected, refill the USB RX queue. */
449 if (!disconnect && port->port_usb)
450 gs_start_rx(port);
451
452 spin_unlock_irq(&port->port_lock);
453 }
454
gs_read_complete(struct usb_ep * ep,struct usb_request * req)455 static void gs_read_complete(struct usb_ep *ep, struct usb_request *req)
456 {
457 struct gs_port *port = ep->driver_data;
458
459 /* Queue all received data until the tty layer is ready for it. */
460 spin_lock(&port->port_lock);
461 list_add_tail(&req->list, &port->read_queue);
462 tasklet_schedule(&port->push);
463 spin_unlock(&port->port_lock);
464 }
465
gs_write_complete(struct usb_ep * ep,struct usb_request * req)466 static void gs_write_complete(struct usb_ep *ep, struct usb_request *req)
467 {
468 struct gs_port *port = ep->driver_data;
469
470 spin_lock(&port->port_lock);
471 list_add(&req->list, &port->write_pool);
472 port->write_started--;
473
474 switch (req->status) {
475 default:
476 /* presumably a transient fault */
477 pr_warn("%s: unexpected %s status %d\n",
478 __func__, ep->name, req->status);
479 /* FALL THROUGH */
480 case 0:
481 /* normal completion */
482 gs_start_tx(port);
483 break;
484
485 case -ESHUTDOWN:
486 /* disconnect */
487 pr_vdebug("%s: %s shutdown\n", __func__, ep->name);
488 break;
489 }
490
491 spin_unlock(&port->port_lock);
492 }
493
gs_free_requests(struct usb_ep * ep,struct list_head * head,int * allocated)494 static void gs_free_requests(struct usb_ep *ep, struct list_head *head,
495 int *allocated)
496 {
497 struct usb_request *req;
498
499 while (!list_empty(head)) {
500 req = list_entry(head->next, struct usb_request, list);
501 list_del(&req->list);
502 gs_free_req(ep, req);
503 if (allocated)
504 (*allocated)--;
505 }
506 }
507
gs_alloc_requests(struct usb_ep * ep,struct list_head * head,void (* fn)(struct usb_ep *,struct usb_request *),int * allocated)508 static int gs_alloc_requests(struct usb_ep *ep, struct list_head *head,
509 void (*fn)(struct usb_ep *, struct usb_request *),
510 int *allocated)
511 {
512 int i;
513 struct usb_request *req;
514 int n = allocated ? QUEUE_SIZE - *allocated : QUEUE_SIZE;
515
516 /* Pre-allocate up to QUEUE_SIZE transfers, but if we can't
517 * do quite that many this time, don't fail ... we just won't
518 * be as speedy as we might otherwise be.
519 */
520 for (i = 0; i < n; i++) {
521 req = gs_alloc_req(ep, ep->maxpacket, GFP_ATOMIC);
522 if (!req)
523 return list_empty(head) ? -ENOMEM : 0;
524 req->complete = fn;
525 list_add_tail(&req->list, head);
526 if (allocated)
527 (*allocated)++;
528 }
529 return 0;
530 }
531
532 /**
533 * gs_start_io - start USB I/O streams
534 * @dev: encapsulates endpoints to use
535 * Context: holding port_lock; port_tty and port_usb are non-null
536 *
537 * We only start I/O when something is connected to both sides of
538 * this port. If nothing is listening on the host side, we may
539 * be pointlessly filling up our TX buffers and FIFO.
540 */
gs_start_io(struct gs_port * port)541 static int gs_start_io(struct gs_port *port)
542 {
543 struct list_head *head = &port->read_pool;
544 struct usb_ep *ep = port->port_usb->out;
545 int status;
546 unsigned started;
547
548 /* Allocate RX and TX I/O buffers. We can't easily do this much
549 * earlier (with GFP_KERNEL) because the requests are coupled to
550 * endpoints, as are the packet sizes we'll be using. Different
551 * configurations may use different endpoints with a given port;
552 * and high speed vs full speed changes packet sizes too.
553 */
554 status = gs_alloc_requests(ep, head, gs_read_complete,
555 &port->read_allocated);
556 if (status)
557 return status;
558
559 status = gs_alloc_requests(port->port_usb->in, &port->write_pool,
560 gs_write_complete, &port->write_allocated);
561 if (status) {
562 gs_free_requests(ep, head, &port->read_allocated);
563 return status;
564 }
565
566 /* queue read requests */
567 port->n_read = 0;
568 started = gs_start_rx(port);
569
570 if (started) {
571 gs_start_tx(port);
572 /* Unblock any pending writes into our circular buffer, in case
573 * we didn't in gs_start_tx() */
574 tty_wakeup(port->port.tty);
575 } else {
576 gs_free_requests(ep, head, &port->read_allocated);
577 gs_free_requests(port->port_usb->in, &port->write_pool,
578 &port->write_allocated);
579 status = -EIO;
580 }
581
582 return status;
583 }
584
585 /*-------------------------------------------------------------------------*/
586
587 /* TTY Driver */
588
589 /*
590 * gs_open sets up the link between a gs_port and its associated TTY.
591 * That link is broken *only* by TTY close(), and all driver methods
592 * know that.
593 */
gs_open(struct tty_struct * tty,struct file * file)594 static int gs_open(struct tty_struct *tty, struct file *file)
595 {
596 int port_num = tty->index;
597 struct gs_port *port;
598 int status;
599
600 do {
601 mutex_lock(&ports[port_num].lock);
602 port = ports[port_num].port;
603 if (!port)
604 status = -ENODEV;
605 else {
606 spin_lock_irq(&port->port_lock);
607
608 /* already open? Great. */
609 if (port->port.count) {
610 status = 0;
611 port->port.count++;
612
613 /* currently opening/closing? wait ... */
614 } else if (port->openclose) {
615 status = -EBUSY;
616
617 /* ... else we do the work */
618 } else {
619 status = -EAGAIN;
620 port->openclose = true;
621 }
622 spin_unlock_irq(&port->port_lock);
623 }
624 mutex_unlock(&ports[port_num].lock);
625
626 switch (status) {
627 default:
628 /* fully handled */
629 return status;
630 case -EAGAIN:
631 /* must do the work */
632 break;
633 case -EBUSY:
634 /* wait for EAGAIN task to finish */
635 msleep(1);
636 /* REVISIT could have a waitchannel here, if
637 * concurrent open performance is important
638 */
639 break;
640 }
641 } while (status != -EAGAIN);
642
643 /* Do the "real open" */
644 spin_lock_irq(&port->port_lock);
645
646 /* allocate circular buffer on first open */
647 if (!kfifo_initialized(&port->port_write_buf)) {
648
649 spin_unlock_irq(&port->port_lock);
650 status = kfifo_alloc(&port->port_write_buf,
651 WRITE_BUF_SIZE, GFP_KERNEL);
652 spin_lock_irq(&port->port_lock);
653
654 if (status) {
655 pr_debug("gs_open: ttyGS%d (%p,%p) no buffer\n",
656 port->port_num, tty, file);
657 port->openclose = false;
658 goto exit_unlock_port;
659 }
660 }
661
662 /* REVISIT if REMOVED (ports[].port NULL), abort the open
663 * to let rmmod work faster (but this way isn't wrong).
664 */
665
666 /* REVISIT maybe wait for "carrier detect" */
667
668 tty->driver_data = port;
669 port->port.tty = tty;
670
671 port->port.count = 1;
672 port->openclose = false;
673
674 /* if connected, start the I/O stream */
675 if (port->port_usb) {
676 struct gserial *gser = port->port_usb;
677
678 pr_debug("gs_open: start ttyGS%d\n", port->port_num);
679 gs_start_io(port);
680
681 if (gser->connect)
682 gser->connect(gser);
683 }
684
685 pr_debug("gs_open: ttyGS%d (%p,%p)\n", port->port_num, tty, file);
686
687 status = 0;
688
689 exit_unlock_port:
690 spin_unlock_irq(&port->port_lock);
691 return status;
692 }
693
gs_writes_finished(struct gs_port * p)694 static int gs_writes_finished(struct gs_port *p)
695 {
696 int cond;
697
698 /* return true on disconnect or empty buffer */
699 spin_lock_irq(&p->port_lock);
700 cond = (p->port_usb == NULL) || !kfifo_len(&p->port_write_buf);
701 spin_unlock_irq(&p->port_lock);
702
703 return cond;
704 }
705
gs_close(struct tty_struct * tty,struct file * file)706 static void gs_close(struct tty_struct *tty, struct file *file)
707 {
708 struct gs_port *port = tty->driver_data;
709 struct gserial *gser;
710
711 spin_lock_irq(&port->port_lock);
712
713 if (port->port.count != 1) {
714 if (port->port.count == 0)
715 WARN_ON(1);
716 else
717 --port->port.count;
718 goto exit;
719 }
720
721 pr_debug("gs_close: ttyGS%d (%p,%p) ...\n", port->port_num, tty, file);
722
723 /* mark port as closing but in use; we can drop port lock
724 * and sleep if necessary
725 */
726 port->openclose = true;
727 port->port.count = 0;
728
729 gser = port->port_usb;
730 if (gser && gser->disconnect)
731 gser->disconnect(gser);
732
733 /* wait for circular write buffer to drain, disconnect, or at
734 * most GS_CLOSE_TIMEOUT seconds; then discard the rest
735 */
736 if (kfifo_len(&port->port_write_buf) > 0 && gser) {
737 spin_unlock_irq(&port->port_lock);
738 wait_event_interruptible_timeout(port->drain_wait,
739 gs_writes_finished(port),
740 GS_CLOSE_TIMEOUT * HZ);
741 spin_lock_irq(&port->port_lock);
742 gser = port->port_usb;
743 }
744
745 /* Iff we're disconnected, there can be no I/O in flight so it's
746 * ok to free the circular buffer; else just scrub it. And don't
747 * let the push tasklet fire again until we're re-opened.
748 */
749 if (gser == NULL)
750 kfifo_free(&port->port_write_buf);
751 else
752 kfifo_reset(&port->port_write_buf);
753
754 port->port.tty = NULL;
755
756 port->openclose = false;
757
758 pr_debug("gs_close: ttyGS%d (%p,%p) done!\n",
759 port->port_num, tty, file);
760
761 wake_up(&port->close_wait);
762 exit:
763 spin_unlock_irq(&port->port_lock);
764 }
765
gs_write(struct tty_struct * tty,const unsigned char * buf,int count)766 static int gs_write(struct tty_struct *tty, const unsigned char *buf, int count)
767 {
768 struct gs_port *port = tty->driver_data;
769 unsigned long flags;
770
771 pr_vdebug("gs_write: ttyGS%d (%p) writing %d bytes\n",
772 port->port_num, tty, count);
773
774 spin_lock_irqsave(&port->port_lock, flags);
775 if (count)
776 count = kfifo_in(&port->port_write_buf, buf, count);
777 /* treat count == 0 as flush_chars() */
778 if (port->port_usb)
779 gs_start_tx(port);
780 spin_unlock_irqrestore(&port->port_lock, flags);
781
782 return count;
783 }
784
gs_put_char(struct tty_struct * tty,unsigned char ch)785 static int gs_put_char(struct tty_struct *tty, unsigned char ch)
786 {
787 struct gs_port *port = tty->driver_data;
788 unsigned long flags;
789 int status;
790
791 pr_vdebug("gs_put_char: (%d,%p) char=0x%x, called from %ps\n",
792 port->port_num, tty, ch, __builtin_return_address(0));
793
794 spin_lock_irqsave(&port->port_lock, flags);
795 status = kfifo_put(&port->port_write_buf, ch);
796 spin_unlock_irqrestore(&port->port_lock, flags);
797
798 return status;
799 }
800
gs_flush_chars(struct tty_struct * tty)801 static void gs_flush_chars(struct tty_struct *tty)
802 {
803 struct gs_port *port = tty->driver_data;
804 unsigned long flags;
805
806 pr_vdebug("gs_flush_chars: (%d,%p)\n", port->port_num, tty);
807
808 spin_lock_irqsave(&port->port_lock, flags);
809 if (port->port_usb)
810 gs_start_tx(port);
811 spin_unlock_irqrestore(&port->port_lock, flags);
812 }
813
gs_write_room(struct tty_struct * tty)814 static int gs_write_room(struct tty_struct *tty)
815 {
816 struct gs_port *port = tty->driver_data;
817 unsigned long flags;
818 int room = 0;
819
820 spin_lock_irqsave(&port->port_lock, flags);
821 if (port->port_usb)
822 room = kfifo_avail(&port->port_write_buf);
823 spin_unlock_irqrestore(&port->port_lock, flags);
824
825 pr_vdebug("gs_write_room: (%d,%p) room=%d\n",
826 port->port_num, tty, room);
827
828 return room;
829 }
830
gs_chars_in_buffer(struct tty_struct * tty)831 static int gs_chars_in_buffer(struct tty_struct *tty)
832 {
833 struct gs_port *port = tty->driver_data;
834 unsigned long flags;
835 int chars = 0;
836
837 spin_lock_irqsave(&port->port_lock, flags);
838 chars = kfifo_len(&port->port_write_buf);
839 spin_unlock_irqrestore(&port->port_lock, flags);
840
841 pr_vdebug("gs_chars_in_buffer: (%d,%p) chars=%d\n",
842 port->port_num, tty, chars);
843
844 return chars;
845 }
846
847 /* undo side effects of setting TTY_THROTTLED */
gs_unthrottle(struct tty_struct * tty)848 static void gs_unthrottle(struct tty_struct *tty)
849 {
850 struct gs_port *port = tty->driver_data;
851 unsigned long flags;
852
853 spin_lock_irqsave(&port->port_lock, flags);
854 if (port->port_usb) {
855 /* Kickstart read queue processing. We don't do xon/xoff,
856 * rts/cts, or other handshaking with the host, but if the
857 * read queue backs up enough we'll be NAKing OUT packets.
858 */
859 tasklet_schedule(&port->push);
860 pr_vdebug("ttyGS%d: unthrottle\n", port->port_num);
861 }
862 spin_unlock_irqrestore(&port->port_lock, flags);
863 }
864
gs_break_ctl(struct tty_struct * tty,int duration)865 static int gs_break_ctl(struct tty_struct *tty, int duration)
866 {
867 struct gs_port *port = tty->driver_data;
868 int status = 0;
869 struct gserial *gser;
870
871 pr_vdebug("gs_break_ctl: ttyGS%d, send break (%d) \n",
872 port->port_num, duration);
873
874 spin_lock_irq(&port->port_lock);
875 gser = port->port_usb;
876 if (gser && gser->send_break)
877 status = gser->send_break(gser, duration);
878 spin_unlock_irq(&port->port_lock);
879
880 return status;
881 }
882
883 static const struct tty_operations gs_tty_ops = {
884 .open = gs_open,
885 .close = gs_close,
886 .write = gs_write,
887 .put_char = gs_put_char,
888 .flush_chars = gs_flush_chars,
889 .write_room = gs_write_room,
890 .chars_in_buffer = gs_chars_in_buffer,
891 .unthrottle = gs_unthrottle,
892 .break_ctl = gs_break_ctl,
893 };
894
895 /*-------------------------------------------------------------------------*/
896
897 static struct tty_driver *gs_tty_driver;
898
899 #ifdef CONFIG_U_SERIAL_CONSOLE
900
901 static struct gscons_info gscons_info;
902 static struct console gserial_cons;
903
gs_request_new(struct usb_ep * ep)904 static struct usb_request *gs_request_new(struct usb_ep *ep)
905 {
906 struct usb_request *req = usb_ep_alloc_request(ep, GFP_ATOMIC);
907 if (!req)
908 return NULL;
909
910 req->buf = kmalloc(ep->maxpacket, GFP_ATOMIC);
911 if (!req->buf) {
912 usb_ep_free_request(ep, req);
913 return NULL;
914 }
915
916 return req;
917 }
918
gs_request_free(struct usb_request * req,struct usb_ep * ep)919 static void gs_request_free(struct usb_request *req, struct usb_ep *ep)
920 {
921 if (!req)
922 return;
923
924 kfree(req->buf);
925 usb_ep_free_request(ep, req);
926 }
927
gs_complete_out(struct usb_ep * ep,struct usb_request * req)928 static void gs_complete_out(struct usb_ep *ep, struct usb_request *req)
929 {
930 struct gscons_info *info = &gscons_info;
931
932 switch (req->status) {
933 default:
934 pr_warn("%s: unexpected %s status %d\n",
935 __func__, ep->name, req->status);
936 /* fall through */
937 case 0:
938 /* normal completion */
939 spin_lock(&info->con_lock);
940 info->req_busy = 0;
941 spin_unlock(&info->con_lock);
942
943 wake_up_process(info->console_thread);
944 break;
945 case -ESHUTDOWN:
946 /* disconnect */
947 pr_vdebug("%s: %s shutdown\n", __func__, ep->name);
948 break;
949 }
950 }
951
gs_console_connect(int port_num)952 static int gs_console_connect(int port_num)
953 {
954 struct gscons_info *info = &gscons_info;
955 struct gs_port *port;
956 struct usb_ep *ep;
957
958 if (port_num != gserial_cons.index) {
959 pr_err("%s: port num [%d] is not support console\n",
960 __func__, port_num);
961 return -ENXIO;
962 }
963
964 port = ports[port_num].port;
965 ep = port->port_usb->in;
966 if (!info->console_req) {
967 info->console_req = gs_request_new(ep);
968 if (!info->console_req)
969 return -ENOMEM;
970 info->console_req->complete = gs_complete_out;
971 }
972
973 info->port = port;
974 spin_lock(&info->con_lock);
975 info->req_busy = 0;
976 spin_unlock(&info->con_lock);
977 pr_vdebug("port[%d] console connect!\n", port_num);
978 return 0;
979 }
980
gs_console_disconnect(struct usb_ep * ep)981 static void gs_console_disconnect(struct usb_ep *ep)
982 {
983 struct gscons_info *info = &gscons_info;
984 struct usb_request *req = info->console_req;
985
986 gs_request_free(req, ep);
987 info->console_req = NULL;
988 }
989
gs_console_thread(void * data)990 static int gs_console_thread(void *data)
991 {
992 struct gscons_info *info = &gscons_info;
993 struct gs_port *port;
994 struct usb_request *req;
995 struct usb_ep *ep;
996 int xfer, ret, count, size;
997
998 do {
999 port = info->port;
1000 set_current_state(TASK_INTERRUPTIBLE);
1001 if (!port || !port->port_usb
1002 || !port->port_usb->in || !info->console_req)
1003 goto sched;
1004
1005 req = info->console_req;
1006 ep = port->port_usb->in;
1007
1008 spin_lock_irq(&info->con_lock);
1009 count = kfifo_len(&info->con_buf);
1010 size = ep->maxpacket;
1011
1012 if (count > 0 && !info->req_busy) {
1013 set_current_state(TASK_RUNNING);
1014 if (count < size)
1015 size = count;
1016
1017 xfer = kfifo_out(&info->con_buf, req->buf, size);
1018 req->length = xfer;
1019
1020 spin_unlock(&info->con_lock);
1021 ret = usb_ep_queue(ep, req, GFP_ATOMIC);
1022 spin_lock(&info->con_lock);
1023 if (ret < 0)
1024 info->req_busy = 0;
1025 else
1026 info->req_busy = 1;
1027
1028 spin_unlock_irq(&info->con_lock);
1029 } else {
1030 spin_unlock_irq(&info->con_lock);
1031 sched:
1032 if (kthread_should_stop()) {
1033 set_current_state(TASK_RUNNING);
1034 break;
1035 }
1036 schedule();
1037 }
1038 } while (1);
1039
1040 return 0;
1041 }
1042
gs_console_setup(struct console * co,char * options)1043 static int gs_console_setup(struct console *co, char *options)
1044 {
1045 struct gscons_info *info = &gscons_info;
1046 int status;
1047
1048 info->port = NULL;
1049 info->console_req = NULL;
1050 info->req_busy = 0;
1051 spin_lock_init(&info->con_lock);
1052
1053 status = kfifo_alloc(&info->con_buf, GS_CONSOLE_BUF_SIZE, GFP_KERNEL);
1054 if (status) {
1055 pr_err("%s: allocate console buffer failed\n", __func__);
1056 return status;
1057 }
1058
1059 info->console_thread = kthread_create(gs_console_thread,
1060 co, "gs_console");
1061 if (IS_ERR(info->console_thread)) {
1062 pr_err("%s: cannot create console thread\n", __func__);
1063 kfifo_free(&info->con_buf);
1064 return PTR_ERR(info->console_thread);
1065 }
1066 wake_up_process(info->console_thread);
1067
1068 return 0;
1069 }
1070
gs_console_write(struct console * co,const char * buf,unsigned count)1071 static void gs_console_write(struct console *co,
1072 const char *buf, unsigned count)
1073 {
1074 struct gscons_info *info = &gscons_info;
1075 unsigned long flags;
1076
1077 spin_lock_irqsave(&info->con_lock, flags);
1078 kfifo_in(&info->con_buf, buf, count);
1079 spin_unlock_irqrestore(&info->con_lock, flags);
1080
1081 wake_up_process(info->console_thread);
1082 }
1083
gs_console_device(struct console * co,int * index)1084 static struct tty_driver *gs_console_device(struct console *co, int *index)
1085 {
1086 struct tty_driver **p = (struct tty_driver **)co->data;
1087
1088 if (!*p)
1089 return NULL;
1090
1091 *index = co->index;
1092 return *p;
1093 }
1094
1095 static struct console gserial_cons = {
1096 .name = "ttyGS",
1097 .write = gs_console_write,
1098 .device = gs_console_device,
1099 .setup = gs_console_setup,
1100 .flags = CON_PRINTBUFFER,
1101 .index = -1,
1102 .data = &gs_tty_driver,
1103 };
1104
gserial_console_init(void)1105 static void gserial_console_init(void)
1106 {
1107 register_console(&gserial_cons);
1108 }
1109
gserial_console_exit(void)1110 static void gserial_console_exit(void)
1111 {
1112 struct gscons_info *info = &gscons_info;
1113
1114 unregister_console(&gserial_cons);
1115 if (!IS_ERR_OR_NULL(info->console_thread))
1116 kthread_stop(info->console_thread);
1117 kfifo_free(&info->con_buf);
1118 }
1119
1120 #else
1121
gs_console_connect(int port_num)1122 static int gs_console_connect(int port_num)
1123 {
1124 return 0;
1125 }
1126
gs_console_disconnect(struct usb_ep * ep)1127 static void gs_console_disconnect(struct usb_ep *ep)
1128 {
1129 }
1130
gserial_console_init(void)1131 static void gserial_console_init(void)
1132 {
1133 }
1134
gserial_console_exit(void)1135 static void gserial_console_exit(void)
1136 {
1137 }
1138
1139 #endif
1140
1141 static int
gs_port_alloc(unsigned port_num,struct usb_cdc_line_coding * coding)1142 gs_port_alloc(unsigned port_num, struct usb_cdc_line_coding *coding)
1143 {
1144 struct gs_port *port;
1145 int ret = 0;
1146
1147 mutex_lock(&ports[port_num].lock);
1148 if (ports[port_num].port) {
1149 ret = -EBUSY;
1150 goto out;
1151 }
1152
1153 port = kzalloc(sizeof(struct gs_port), GFP_KERNEL);
1154 if (port == NULL) {
1155 ret = -ENOMEM;
1156 goto out;
1157 }
1158
1159 tty_port_init(&port->port);
1160 spin_lock_init(&port->port_lock);
1161 init_waitqueue_head(&port->drain_wait);
1162 init_waitqueue_head(&port->close_wait);
1163
1164 tasklet_init(&port->push, gs_rx_push, (unsigned long) port);
1165
1166 INIT_LIST_HEAD(&port->read_pool);
1167 INIT_LIST_HEAD(&port->read_queue);
1168 INIT_LIST_HEAD(&port->write_pool);
1169
1170 port->port_num = port_num;
1171 port->port_line_coding = *coding;
1172
1173 ports[port_num].port = port;
1174 out:
1175 mutex_unlock(&ports[port_num].lock);
1176 return ret;
1177 }
1178
gs_closed(struct gs_port * port)1179 static int gs_closed(struct gs_port *port)
1180 {
1181 int cond;
1182
1183 spin_lock_irq(&port->port_lock);
1184 cond = (port->port.count == 0) && !port->openclose;
1185 spin_unlock_irq(&port->port_lock);
1186 return cond;
1187 }
1188
gserial_free_port(struct gs_port * port)1189 static void gserial_free_port(struct gs_port *port)
1190 {
1191 tasklet_kill(&port->push);
1192 /* wait for old opens to finish */
1193 wait_event(port->close_wait, gs_closed(port));
1194 WARN_ON(port->port_usb != NULL);
1195 tty_port_destroy(&port->port);
1196 kfree(port);
1197 }
1198
gserial_free_line(unsigned char port_num)1199 void gserial_free_line(unsigned char port_num)
1200 {
1201 struct gs_port *port;
1202
1203 mutex_lock(&ports[port_num].lock);
1204 if (WARN_ON(!ports[port_num].port)) {
1205 mutex_unlock(&ports[port_num].lock);
1206 return;
1207 }
1208 port = ports[port_num].port;
1209 ports[port_num].port = NULL;
1210 mutex_unlock(&ports[port_num].lock);
1211
1212 gserial_free_port(port);
1213 tty_unregister_device(gs_tty_driver, port_num);
1214 gserial_console_exit();
1215 }
1216 EXPORT_SYMBOL_GPL(gserial_free_line);
1217
gserial_alloc_line(unsigned char * line_num)1218 int gserial_alloc_line(unsigned char *line_num)
1219 {
1220 struct usb_cdc_line_coding coding;
1221 struct device *tty_dev;
1222 int ret;
1223 int port_num;
1224
1225 coding.dwDTERate = cpu_to_le32(9600);
1226 coding.bCharFormat = 8;
1227 coding.bParityType = USB_CDC_NO_PARITY;
1228 coding.bDataBits = USB_CDC_1_STOP_BITS;
1229
1230 for (port_num = 0; port_num < MAX_U_SERIAL_PORTS; port_num++) {
1231 ret = gs_port_alloc(port_num, &coding);
1232 if (ret == -EBUSY)
1233 continue;
1234 if (ret)
1235 return ret;
1236 break;
1237 }
1238 if (ret)
1239 return ret;
1240
1241 /* ... and sysfs class devices, so mdev/udev make /dev/ttyGS* */
1242
1243 tty_dev = tty_port_register_device(&ports[port_num].port->port,
1244 gs_tty_driver, port_num, NULL);
1245 if (IS_ERR(tty_dev)) {
1246 struct gs_port *port;
1247 pr_err("%s: failed to register tty for port %d, err %ld\n",
1248 __func__, port_num, PTR_ERR(tty_dev));
1249
1250 ret = PTR_ERR(tty_dev);
1251 mutex_lock(&ports[port_num].lock);
1252 port = ports[port_num].port;
1253 ports[port_num].port = NULL;
1254 mutex_unlock(&ports[port_num].lock);
1255 gserial_free_port(port);
1256 goto err;
1257 }
1258 *line_num = port_num;
1259 gserial_console_init();
1260 err:
1261 return ret;
1262 }
1263 EXPORT_SYMBOL_GPL(gserial_alloc_line);
1264
1265 /**
1266 * gserial_connect - notify TTY I/O glue that USB link is active
1267 * @gser: the function, set up with endpoints and descriptors
1268 * @port_num: which port is active
1269 * Context: any (usually from irq)
1270 *
1271 * This is called activate endpoints and let the TTY layer know that
1272 * the connection is active ... not unlike "carrier detect". It won't
1273 * necessarily start I/O queues; unless the TTY is held open by any
1274 * task, there would be no point. However, the endpoints will be
1275 * activated so the USB host can perform I/O, subject to basic USB
1276 * hardware flow control.
1277 *
1278 * Caller needs to have set up the endpoints and USB function in @dev
1279 * before calling this, as well as the appropriate (speed-specific)
1280 * endpoint descriptors, and also have allocate @port_num by calling
1281 * @gserial_alloc_line().
1282 *
1283 * Returns negative errno or zero.
1284 * On success, ep->driver_data will be overwritten.
1285 */
gserial_connect(struct gserial * gser,u8 port_num)1286 int gserial_connect(struct gserial *gser, u8 port_num)
1287 {
1288 struct gs_port *port;
1289 unsigned long flags;
1290 int status;
1291
1292 if (port_num >= MAX_U_SERIAL_PORTS)
1293 return -ENXIO;
1294
1295 port = ports[port_num].port;
1296 if (!port) {
1297 pr_err("serial line %d not allocated.\n", port_num);
1298 return -EINVAL;
1299 }
1300 if (port->port_usb) {
1301 pr_err("serial line %d is in use.\n", port_num);
1302 return -EBUSY;
1303 }
1304
1305 /* activate the endpoints */
1306 status = usb_ep_enable(gser->in);
1307 if (status < 0)
1308 return status;
1309 gser->in->driver_data = port;
1310
1311 status = usb_ep_enable(gser->out);
1312 if (status < 0)
1313 goto fail_out;
1314 gser->out->driver_data = port;
1315
1316 /* then tell the tty glue that I/O can work */
1317 spin_lock_irqsave(&port->port_lock, flags);
1318 gser->ioport = port;
1319 port->port_usb = gser;
1320
1321 /* REVISIT unclear how best to handle this state...
1322 * we don't really couple it with the Linux TTY.
1323 */
1324 gser->port_line_coding = port->port_line_coding;
1325
1326 /* REVISIT if waiting on "carrier detect", signal. */
1327
1328 /* if it's already open, start I/O ... and notify the serial
1329 * protocol about open/close status (connect/disconnect).
1330 */
1331 if (port->port.count) {
1332 pr_debug("gserial_connect: start ttyGS%d\n", port->port_num);
1333 gs_start_io(port);
1334 if (gser->connect)
1335 gser->connect(gser);
1336 } else {
1337 if (gser->disconnect)
1338 gser->disconnect(gser);
1339 }
1340
1341 status = gs_console_connect(port_num);
1342 spin_unlock_irqrestore(&port->port_lock, flags);
1343
1344 return status;
1345
1346 fail_out:
1347 usb_ep_disable(gser->in);
1348 return status;
1349 }
1350 EXPORT_SYMBOL_GPL(gserial_connect);
1351 /**
1352 * gserial_disconnect - notify TTY I/O glue that USB link is inactive
1353 * @gser: the function, on which gserial_connect() was called
1354 * Context: any (usually from irq)
1355 *
1356 * This is called to deactivate endpoints and let the TTY layer know
1357 * that the connection went inactive ... not unlike "hangup".
1358 *
1359 * On return, the state is as if gserial_connect() had never been called;
1360 * there is no active USB I/O on these endpoints.
1361 */
gserial_disconnect(struct gserial * gser)1362 void gserial_disconnect(struct gserial *gser)
1363 {
1364 struct gs_port *port = gser->ioport;
1365 unsigned long flags;
1366
1367 if (!port)
1368 return;
1369
1370 /* tell the TTY glue not to do I/O here any more */
1371 spin_lock_irqsave(&port->port_lock, flags);
1372
1373 /* REVISIT as above: how best to track this? */
1374 port->port_line_coding = gser->port_line_coding;
1375
1376 port->port_usb = NULL;
1377 gser->ioport = NULL;
1378 if (port->port.count > 0 || port->openclose) {
1379 wake_up_interruptible(&port->drain_wait);
1380 if (port->port.tty)
1381 tty_hangup(port->port.tty);
1382 }
1383 spin_unlock_irqrestore(&port->port_lock, flags);
1384
1385 /* disable endpoints, aborting down any active I/O */
1386 usb_ep_disable(gser->out);
1387 usb_ep_disable(gser->in);
1388
1389 /* finally, free any unused/unusable I/O buffers */
1390 spin_lock_irqsave(&port->port_lock, flags);
1391 if (port->port.count == 0 && !port->openclose)
1392 kfifo_free(&port->port_write_buf);
1393 gs_free_requests(gser->out, &port->read_pool, NULL);
1394 gs_free_requests(gser->out, &port->read_queue, NULL);
1395 gs_free_requests(gser->in, &port->write_pool, NULL);
1396
1397 port->read_allocated = port->read_started =
1398 port->write_allocated = port->write_started = 0;
1399
1400 gs_console_disconnect(gser->in);
1401 spin_unlock_irqrestore(&port->port_lock, flags);
1402 }
1403 EXPORT_SYMBOL_GPL(gserial_disconnect);
1404
userial_init(void)1405 static int userial_init(void)
1406 {
1407 unsigned i;
1408 int status;
1409
1410 gs_tty_driver = alloc_tty_driver(MAX_U_SERIAL_PORTS);
1411 if (!gs_tty_driver)
1412 return -ENOMEM;
1413
1414 gs_tty_driver->driver_name = "g_serial";
1415 gs_tty_driver->name = "ttyGS";
1416 /* uses dynamically assigned dev_t values */
1417
1418 gs_tty_driver->type = TTY_DRIVER_TYPE_SERIAL;
1419 gs_tty_driver->subtype = SERIAL_TYPE_NORMAL;
1420 gs_tty_driver->flags = TTY_DRIVER_REAL_RAW | TTY_DRIVER_DYNAMIC_DEV;
1421 gs_tty_driver->init_termios = tty_std_termios;
1422
1423 /* 9600-8-N-1 ... matches defaults expected by "usbser.sys" on
1424 * MS-Windows. Otherwise, most of these flags shouldn't affect
1425 * anything unless we were to actually hook up to a serial line.
1426 */
1427 gs_tty_driver->init_termios.c_cflag =
1428 B9600 | CS8 | CREAD | HUPCL | CLOCAL;
1429 gs_tty_driver->init_termios.c_ispeed = 9600;
1430 gs_tty_driver->init_termios.c_ospeed = 9600;
1431
1432 tty_set_operations(gs_tty_driver, &gs_tty_ops);
1433 for (i = 0; i < MAX_U_SERIAL_PORTS; i++)
1434 mutex_init(&ports[i].lock);
1435
1436 /* export the driver ... */
1437 status = tty_register_driver(gs_tty_driver);
1438 if (status) {
1439 pr_err("%s: cannot register, err %d\n",
1440 __func__, status);
1441 goto fail;
1442 }
1443
1444 pr_debug("%s: registered %d ttyGS* device%s\n", __func__,
1445 MAX_U_SERIAL_PORTS,
1446 (MAX_U_SERIAL_PORTS == 1) ? "" : "s");
1447
1448 return status;
1449 fail:
1450 put_tty_driver(gs_tty_driver);
1451 gs_tty_driver = NULL;
1452 return status;
1453 }
1454 module_init(userial_init);
1455
userial_cleanup(void)1456 static void userial_cleanup(void)
1457 {
1458 tty_unregister_driver(gs_tty_driver);
1459 put_tty_driver(gs_tty_driver);
1460 gs_tty_driver = NULL;
1461 }
1462 module_exit(userial_cleanup);
1463
1464 MODULE_LICENSE("GPL");
1465