xref: /openbmc/linux/drivers/misc/ti-st/st_core.c (revision 275876e2)
1 /*
2  *  Shared Transport Line discipline driver Core
3  *	This hooks up ST KIM driver and ST LL driver
4  *  Copyright (C) 2009-2010 Texas Instruments
5  *  Author: Pavan Savoy <pavan_savoy@ti.com>
6  *
7  *  This program is free software; you can redistribute it and/or modify
8  *  it under the terms of the GNU General Public License version 2 as
9  *  published by the Free Software Foundation.
10  *
11  *  This program is distributed in the hope that it will be useful,
12  *  but WITHOUT ANY WARRANTY; without even the implied warranty of
13  *  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
14  *  GNU General Public License for more details.
15  *
16  *  You should have received a copy of the GNU General Public License
17  *  along with this program; if not, write to the Free Software
18  *  Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
19  *
20  */
21 
22 #define pr_fmt(fmt)	"(stc): " fmt
23 #include <linux/module.h>
24 #include <linux/kernel.h>
25 #include <linux/tty.h>
26 
27 #include <linux/seq_file.h>
28 #include <linux/skbuff.h>
29 
30 #include <linux/ti_wilink_st.h>
31 
32 extern void st_kim_recv(void *, const unsigned char *, long);
33 void st_int_recv(void *, const unsigned char *, long);
34 /* function pointer pointing to either,
35  * st_kim_recv during registration to receive fw download responses
36  * st_int_recv after registration to receive proto stack responses
37  */
38 static void (*st_recv) (void *, const unsigned char *, long);
39 
40 /********************************************************************/
41 static void add_channel_to_table(struct st_data_s *st_gdata,
42 		struct st_proto_s *new_proto)
43 {
44 	pr_info("%s: id %d\n", __func__, new_proto->chnl_id);
45 	/* list now has the channel id as index itself */
46 	st_gdata->list[new_proto->chnl_id] = new_proto;
47 	st_gdata->is_registered[new_proto->chnl_id] = true;
48 }
49 
50 static void remove_channel_from_table(struct st_data_s *st_gdata,
51 		struct st_proto_s *proto)
52 {
53 	pr_info("%s: id %d\n", __func__, proto->chnl_id);
54 /*	st_gdata->list[proto->chnl_id] = NULL; */
55 	st_gdata->is_registered[proto->chnl_id] = false;
56 }
57 
58 /*
59  * called from KIM during firmware download.
60  *
61  * This is a wrapper function to tty->ops->write_room.
62  * It returns number of free space available in
63  * uart tx buffer.
64  */
65 int st_get_uart_wr_room(struct st_data_s *st_gdata)
66 {
67 	struct tty_struct *tty;
68 	if (unlikely(st_gdata == NULL || st_gdata->tty == NULL)) {
69 		pr_err("tty unavailable to perform write");
70 		return -1;
71 	}
72 	tty = st_gdata->tty;
73 	return tty->ops->write_room(tty);
74 }
75 
76 /* can be called in from
77  * -- KIM (during fw download)
78  * -- ST Core (during st_write)
79  *
80  *  This is the internal write function - a wrapper
81  *  to tty->ops->write
82  */
83 int st_int_write(struct st_data_s *st_gdata,
84 	const unsigned char *data, int count)
85 {
86 	struct tty_struct *tty;
87 	if (unlikely(st_gdata == NULL || st_gdata->tty == NULL)) {
88 		pr_err("tty unavailable to perform write");
89 		return -EINVAL;
90 	}
91 	tty = st_gdata->tty;
92 #ifdef VERBOSE
93 	print_hex_dump(KERN_DEBUG, "<out<", DUMP_PREFIX_NONE,
94 		16, 1, data, count, 0);
95 #endif
96 	return tty->ops->write(tty, data, count);
97 
98 }
99 
100 /*
101  * push the skb received to relevant
102  * protocol stacks
103  */
104 static void st_send_frame(unsigned char chnl_id, struct st_data_s *st_gdata)
105 {
106 	pr_debug(" %s(prot:%d) ", __func__, chnl_id);
107 
108 	if (unlikely
109 	    (st_gdata == NULL || st_gdata->rx_skb == NULL
110 	     || st_gdata->is_registered[chnl_id] == false)) {
111 		pr_err("chnl_id %d not registered, no data to send?",
112 			   chnl_id);
113 		kfree_skb(st_gdata->rx_skb);
114 		return;
115 	}
116 	/* this cannot fail
117 	 * this shouldn't take long
118 	 * - should be just skb_queue_tail for the
119 	 *   protocol stack driver
120 	 */
121 	if (likely(st_gdata->list[chnl_id]->recv != NULL)) {
122 		if (unlikely
123 			(st_gdata->list[chnl_id]->recv
124 			(st_gdata->list[chnl_id]->priv_data, st_gdata->rx_skb)
125 			     != 0)) {
126 			pr_err(" proto stack %d's ->recv failed", chnl_id);
127 			kfree_skb(st_gdata->rx_skb);
128 			return;
129 		}
130 	} else {
131 		pr_err(" proto stack %d's ->recv null", chnl_id);
132 		kfree_skb(st_gdata->rx_skb);
133 	}
134 	return;
135 }
136 
137 /**
138  * st_reg_complete -
139  * to call registration complete callbacks
140  * of all protocol stack drivers
141  * This function is being called with spin lock held, protocol drivers are
142  * only expected to complete their waits and do nothing more than that.
143  */
144 static void st_reg_complete(struct st_data_s *st_gdata, char err)
145 {
146 	unsigned char i = 0;
147 	pr_info(" %s ", __func__);
148 	for (i = 0; i < ST_MAX_CHANNELS; i++) {
149 		if (likely(st_gdata != NULL &&
150 			st_gdata->is_registered[i] == true &&
151 				st_gdata->list[i]->reg_complete_cb != NULL)) {
152 			st_gdata->list[i]->reg_complete_cb
153 				(st_gdata->list[i]->priv_data, err);
154 			pr_info("protocol %d's cb sent %d\n", i, err);
155 			if (err) { /* cleanup registered protocol */
156 				st_gdata->protos_registered--;
157 				st_gdata->is_registered[i] = false;
158 			}
159 		}
160 	}
161 }
162 
163 static inline int st_check_data_len(struct st_data_s *st_gdata,
164 	unsigned char chnl_id, int len)
165 {
166 	int room = skb_tailroom(st_gdata->rx_skb);
167 
168 	pr_debug("len %d room %d", len, room);
169 
170 	if (!len) {
171 		/* Received packet has only packet header and
172 		 * has zero length payload. So, ask ST CORE to
173 		 * forward the packet to protocol driver (BT/FM/GPS)
174 		 */
175 		st_send_frame(chnl_id, st_gdata);
176 
177 	} else if (len > room) {
178 		/* Received packet's payload length is larger.
179 		 * We can't accommodate it in created skb.
180 		 */
181 		pr_err("Data length is too large len %d room %d", len,
182 			   room);
183 		kfree_skb(st_gdata->rx_skb);
184 	} else {
185 		/* Packet header has non-zero payload length and
186 		 * we have enough space in created skb. Lets read
187 		 * payload data */
188 		st_gdata->rx_state = ST_W4_DATA;
189 		st_gdata->rx_count = len;
190 		return len;
191 	}
192 
193 	/* Change ST state to continue to process next
194 	 * packet */
195 	st_gdata->rx_state = ST_W4_PACKET_TYPE;
196 	st_gdata->rx_skb = NULL;
197 	st_gdata->rx_count = 0;
198 	st_gdata->rx_chnl = 0;
199 
200 	return 0;
201 }
202 
203 /**
204  * st_wakeup_ack - internal function for action when wake-up ack
205  *	received
206  */
207 static inline void st_wakeup_ack(struct st_data_s *st_gdata,
208 	unsigned char cmd)
209 {
210 	struct sk_buff *waiting_skb;
211 	unsigned long flags = 0;
212 
213 	spin_lock_irqsave(&st_gdata->lock, flags);
214 	/* de-Q from waitQ and Q in txQ now that the
215 	 * chip is awake
216 	 */
217 	while ((waiting_skb = skb_dequeue(&st_gdata->tx_waitq)))
218 		skb_queue_tail(&st_gdata->txq, waiting_skb);
219 
220 	/* state forwarded to ST LL */
221 	st_ll_sleep_state(st_gdata, (unsigned long)cmd);
222 	spin_unlock_irqrestore(&st_gdata->lock, flags);
223 
224 	/* wake up to send the recently copied skbs from waitQ */
225 	st_tx_wakeup(st_gdata);
226 }
227 
228 /**
229  * st_int_recv - ST's internal receive function.
230  *	Decodes received RAW data and forwards to corresponding
231  *	client drivers (Bluetooth,FM,GPS..etc).
232  *	This can receive various types of packets,
233  *	HCI-Events, ACL, SCO, 4 types of HCI-LL PM packets
234  *	CH-8 packets from FM, CH-9 packets from GPS cores.
235  */
236 void st_int_recv(void *disc_data,
237 	const unsigned char *data, long count)
238 {
239 	char *ptr;
240 	struct st_proto_s *proto;
241 	unsigned short payload_len = 0;
242 	int len = 0;
243 	unsigned char type = 0;
244 	unsigned char *plen;
245 	struct st_data_s *st_gdata = (struct st_data_s *)disc_data;
246 	unsigned long flags;
247 
248 	ptr = (char *)data;
249 	/* tty_receive sent null ? */
250 	if (unlikely(ptr == NULL) || (st_gdata == NULL)) {
251 		pr_err(" received null from TTY ");
252 		return;
253 	}
254 
255 	pr_debug("count %ld rx_state %ld"
256 		   "rx_count %ld", count, st_gdata->rx_state,
257 		   st_gdata->rx_count);
258 
259 	spin_lock_irqsave(&st_gdata->lock, flags);
260 	/* Decode received bytes here */
261 	while (count) {
262 		if (st_gdata->rx_count) {
263 			len = min_t(unsigned int, st_gdata->rx_count, count);
264 			memcpy(skb_put(st_gdata->rx_skb, len), ptr, len);
265 			st_gdata->rx_count -= len;
266 			count -= len;
267 			ptr += len;
268 
269 			if (st_gdata->rx_count)
270 				continue;
271 
272 			/* Check ST RX state machine , where are we? */
273 			switch (st_gdata->rx_state) {
274 			/* Waiting for complete packet ? */
275 			case ST_W4_DATA:
276 				pr_debug("Complete pkt received");
277 				/* Ask ST CORE to forward
278 				 * the packet to protocol driver */
279 				st_send_frame(st_gdata->rx_chnl, st_gdata);
280 
281 				st_gdata->rx_state = ST_W4_PACKET_TYPE;
282 				st_gdata->rx_skb = NULL;
283 				continue;
284 			/* parse the header to know details */
285 			case ST_W4_HEADER:
286 				proto = st_gdata->list[st_gdata->rx_chnl];
287 				plen =
288 				&st_gdata->rx_skb->data
289 				[proto->offset_len_in_hdr];
290 				pr_debug("plen pointing to %x\n", *plen);
291 				if (proto->len_size == 1)/* 1 byte len field */
292 					payload_len = *(unsigned char *)plen;
293 				else if (proto->len_size == 2)
294 					payload_len =
295 					__le16_to_cpu(*(unsigned short *)plen);
296 				else
297 					pr_info("%s: invalid length "
298 					"for id %d\n",
299 					__func__, proto->chnl_id);
300 				st_check_data_len(st_gdata, proto->chnl_id,
301 						payload_len);
302 				pr_debug("off %d, pay len %d\n",
303 					proto->offset_len_in_hdr, payload_len);
304 				continue;
305 			}	/* end of switch rx_state */
306 		}
307 
308 		/* end of if rx_count */
309 		/* Check first byte of packet and identify module
310 		 * owner (BT/FM/GPS) */
311 		switch (*ptr) {
312 		case LL_SLEEP_IND:
313 		case LL_SLEEP_ACK:
314 		case LL_WAKE_UP_IND:
315 			pr_debug("PM packet");
316 			/* this takes appropriate action based on
317 			 * sleep state received --
318 			 */
319 			st_ll_sleep_state(st_gdata, *ptr);
320 			/* if WAKEUP_IND collides copy from waitq to txq
321 			 * and assume chip awake
322 			 */
323 			spin_unlock_irqrestore(&st_gdata->lock, flags);
324 			if (st_ll_getstate(st_gdata) == ST_LL_AWAKE)
325 				st_wakeup_ack(st_gdata, LL_WAKE_UP_ACK);
326 			spin_lock_irqsave(&st_gdata->lock, flags);
327 
328 			ptr++;
329 			count--;
330 			continue;
331 		case LL_WAKE_UP_ACK:
332 			pr_debug("PM packet");
333 
334 			spin_unlock_irqrestore(&st_gdata->lock, flags);
335 			/* wake up ack received */
336 			st_wakeup_ack(st_gdata, *ptr);
337 			spin_lock_irqsave(&st_gdata->lock, flags);
338 
339 			ptr++;
340 			count--;
341 			continue;
342 			/* Unknow packet? */
343 		default:
344 			type = *ptr;
345 			if (st_gdata->list[type] == NULL) {
346 				pr_err("chip/interface misbehavior dropping"
347 					" frame starting with 0x%02x", type);
348 				goto done;
349 
350 			}
351 			st_gdata->rx_skb = alloc_skb(
352 					st_gdata->list[type]->max_frame_size,
353 					GFP_ATOMIC);
354 			if (st_gdata->rx_skb == NULL) {
355 				pr_err("out of memory: dropping\n");
356 				goto done;
357 			}
358 
359 			skb_reserve(st_gdata->rx_skb,
360 					st_gdata->list[type]->reserve);
361 			/* next 2 required for BT only */
362 			st_gdata->rx_skb->cb[0] = type; /*pkt_type*/
363 			st_gdata->rx_skb->cb[1] = 0; /*incoming*/
364 			st_gdata->rx_chnl = *ptr;
365 			st_gdata->rx_state = ST_W4_HEADER;
366 			st_gdata->rx_count = st_gdata->list[type]->hdr_len;
367 			pr_debug("rx_count %ld\n", st_gdata->rx_count);
368 		};
369 		ptr++;
370 		count--;
371 	}
372 done:
373 	spin_unlock_irqrestore(&st_gdata->lock, flags);
374 	pr_debug("done %s", __func__);
375 	return;
376 }
377 
378 /**
379  * st_int_dequeue - internal de-Q function.
380  *	If the previous data set was not written
381  *	completely, return that skb which has the pending data.
382  *	In normal cases, return top of txq.
383  */
384 static struct sk_buff *st_int_dequeue(struct st_data_s *st_gdata)
385 {
386 	struct sk_buff *returning_skb;
387 
388 	pr_debug("%s", __func__);
389 	if (st_gdata->tx_skb != NULL) {
390 		returning_skb = st_gdata->tx_skb;
391 		st_gdata->tx_skb = NULL;
392 		return returning_skb;
393 	}
394 	return skb_dequeue(&st_gdata->txq);
395 }
396 
397 /**
398  * st_int_enqueue - internal Q-ing function.
399  *	Will either Q the skb to txq or the tx_waitq
400  *	depending on the ST LL state.
401  *	If the chip is asleep, then Q it onto waitq and
402  *	wakeup the chip.
403  *	txq and waitq needs protection since the other contexts
404  *	may be sending data, waking up chip.
405  */
406 static void st_int_enqueue(struct st_data_s *st_gdata, struct sk_buff *skb)
407 {
408 	unsigned long flags = 0;
409 
410 	pr_debug("%s", __func__);
411 	spin_lock_irqsave(&st_gdata->lock, flags);
412 
413 	switch (st_ll_getstate(st_gdata)) {
414 	case ST_LL_AWAKE:
415 		pr_debug("ST LL is AWAKE, sending normally");
416 		skb_queue_tail(&st_gdata->txq, skb);
417 		break;
418 	case ST_LL_ASLEEP_TO_AWAKE:
419 		skb_queue_tail(&st_gdata->tx_waitq, skb);
420 		break;
421 	case ST_LL_AWAKE_TO_ASLEEP:
422 		pr_err("ST LL is illegal state(%ld),"
423 			   "purging received skb.", st_ll_getstate(st_gdata));
424 		kfree_skb(skb);
425 		break;
426 	case ST_LL_ASLEEP:
427 		skb_queue_tail(&st_gdata->tx_waitq, skb);
428 		st_ll_wakeup(st_gdata);
429 		break;
430 	default:
431 		pr_err("ST LL is illegal state(%ld),"
432 			   "purging received skb.", st_ll_getstate(st_gdata));
433 		kfree_skb(skb);
434 		break;
435 	}
436 
437 	spin_unlock_irqrestore(&st_gdata->lock, flags);
438 	pr_debug("done %s", __func__);
439 	return;
440 }
441 
442 /*
443  * internal wakeup function
444  * called from either
445  * - TTY layer when write's finished
446  * - st_write (in context of the protocol stack)
447  */
448 void st_tx_wakeup(struct st_data_s *st_data)
449 {
450 	struct sk_buff *skb;
451 	unsigned long flags;	/* for irq save flags */
452 	pr_debug("%s", __func__);
453 	/* check for sending & set flag sending here */
454 	if (test_and_set_bit(ST_TX_SENDING, &st_data->tx_state)) {
455 		pr_debug("ST already sending");
456 		/* keep sending */
457 		set_bit(ST_TX_WAKEUP, &st_data->tx_state);
458 		return;
459 		/* TX_WAKEUP will be checked in another
460 		 * context
461 		 */
462 	}
463 	do {			/* come back if st_tx_wakeup is set */
464 		/* woke-up to write */
465 		clear_bit(ST_TX_WAKEUP, &st_data->tx_state);
466 		while ((skb = st_int_dequeue(st_data))) {
467 			int len;
468 			spin_lock_irqsave(&st_data->lock, flags);
469 			/* enable wake-up from TTY */
470 			set_bit(TTY_DO_WRITE_WAKEUP, &st_data->tty->flags);
471 			len = st_int_write(st_data, skb->data, skb->len);
472 			skb_pull(skb, len);
473 			/* if skb->len = len as expected, skb->len=0 */
474 			if (skb->len) {
475 				/* would be the next skb to be sent */
476 				st_data->tx_skb = skb;
477 				spin_unlock_irqrestore(&st_data->lock, flags);
478 				break;
479 			}
480 			kfree_skb(skb);
481 			spin_unlock_irqrestore(&st_data->lock, flags);
482 		}
483 		/* if wake-up is set in another context- restart sending */
484 	} while (test_bit(ST_TX_WAKEUP, &st_data->tx_state));
485 
486 	/* clear flag sending */
487 	clear_bit(ST_TX_SENDING, &st_data->tx_state);
488 }
489 
490 /********************************************************************/
491 /* functions called from ST KIM
492 */
493 void kim_st_list_protocols(struct st_data_s *st_gdata, void *buf)
494 {
495 	seq_printf(buf, "[%d]\nBT=%c\nFM=%c\nGPS=%c\n",
496 			st_gdata->protos_registered,
497 			st_gdata->is_registered[0x04] == true ? 'R' : 'U',
498 			st_gdata->is_registered[0x08] == true ? 'R' : 'U',
499 			st_gdata->is_registered[0x09] == true ? 'R' : 'U');
500 }
501 
502 /********************************************************************/
503 /*
504  * functions called from protocol stack drivers
505  * to be EXPORT-ed
506  */
507 long st_register(struct st_proto_s *new_proto)
508 {
509 	struct st_data_s	*st_gdata;
510 	long err = 0;
511 	unsigned long flags = 0;
512 
513 	st_kim_ref(&st_gdata, 0);
514 	if (st_gdata == NULL || new_proto == NULL || new_proto->recv == NULL
515 	    || new_proto->reg_complete_cb == NULL) {
516 		pr_err("gdata/new_proto/recv or reg_complete_cb not ready");
517 		return -EINVAL;
518 	}
519 
520 	if (new_proto->chnl_id >= ST_MAX_CHANNELS) {
521 		pr_err("chnl_id %d not supported", new_proto->chnl_id);
522 		return -EPROTONOSUPPORT;
523 	}
524 
525 	if (st_gdata->is_registered[new_proto->chnl_id] == true) {
526 		pr_err("chnl_id %d already registered", new_proto->chnl_id);
527 		return -EALREADY;
528 	}
529 
530 	/* can be from process context only */
531 	spin_lock_irqsave(&st_gdata->lock, flags);
532 
533 	if (test_bit(ST_REG_IN_PROGRESS, &st_gdata->st_state)) {
534 		pr_info(" ST_REG_IN_PROGRESS:%d ", new_proto->chnl_id);
535 		/* fw download in progress */
536 
537 		add_channel_to_table(st_gdata, new_proto);
538 		st_gdata->protos_registered++;
539 		new_proto->write = st_write;
540 
541 		set_bit(ST_REG_PENDING, &st_gdata->st_state);
542 		spin_unlock_irqrestore(&st_gdata->lock, flags);
543 		return -EINPROGRESS;
544 	} else if (st_gdata->protos_registered == ST_EMPTY) {
545 		pr_info(" chnl_id list empty :%d ", new_proto->chnl_id);
546 		set_bit(ST_REG_IN_PROGRESS, &st_gdata->st_state);
547 		st_recv = st_kim_recv;
548 
549 		/* enable the ST LL - to set default chip state */
550 		st_ll_enable(st_gdata);
551 
552 		/* release lock previously held - re-locked below */
553 		spin_unlock_irqrestore(&st_gdata->lock, flags);
554 
555 		/* this may take a while to complete
556 		 * since it involves BT fw download
557 		 */
558 		err = st_kim_start(st_gdata->kim_data);
559 		if (err != 0) {
560 			clear_bit(ST_REG_IN_PROGRESS, &st_gdata->st_state);
561 			if ((st_gdata->protos_registered != ST_EMPTY) &&
562 			    (test_bit(ST_REG_PENDING, &st_gdata->st_state))) {
563 				pr_err(" KIM failure complete callback ");
564 				spin_lock_irqsave(&st_gdata->lock, flags);
565 				st_reg_complete(st_gdata, err);
566 				spin_unlock_irqrestore(&st_gdata->lock, flags);
567 				clear_bit(ST_REG_PENDING, &st_gdata->st_state);
568 			}
569 			return -EINVAL;
570 		}
571 
572 		spin_lock_irqsave(&st_gdata->lock, flags);
573 
574 		clear_bit(ST_REG_IN_PROGRESS, &st_gdata->st_state);
575 		st_recv = st_int_recv;
576 
577 		/* this is where all pending registration
578 		 * are signalled to be complete by calling callback functions
579 		 */
580 		if ((st_gdata->protos_registered != ST_EMPTY) &&
581 		    (test_bit(ST_REG_PENDING, &st_gdata->st_state))) {
582 			pr_debug(" call reg complete callback ");
583 			st_reg_complete(st_gdata, 0);
584 		}
585 		clear_bit(ST_REG_PENDING, &st_gdata->st_state);
586 
587 		/* check for already registered once more,
588 		 * since the above check is old
589 		 */
590 		if (st_gdata->is_registered[new_proto->chnl_id] == true) {
591 			pr_err(" proto %d already registered ",
592 				   new_proto->chnl_id);
593 			spin_unlock_irqrestore(&st_gdata->lock, flags);
594 			return -EALREADY;
595 		}
596 
597 		add_channel_to_table(st_gdata, new_proto);
598 		st_gdata->protos_registered++;
599 		new_proto->write = st_write;
600 		spin_unlock_irqrestore(&st_gdata->lock, flags);
601 		return err;
602 	}
603 	/* if fw is already downloaded & new stack registers protocol */
604 	else {
605 		add_channel_to_table(st_gdata, new_proto);
606 		st_gdata->protos_registered++;
607 		new_proto->write = st_write;
608 
609 		/* lock already held before entering else */
610 		spin_unlock_irqrestore(&st_gdata->lock, flags);
611 		return err;
612 	}
613 	pr_debug("done %s(%d) ", __func__, new_proto->chnl_id);
614 }
615 EXPORT_SYMBOL_GPL(st_register);
616 
617 /* to unregister a protocol -
618  * to be called from protocol stack driver
619  */
620 long st_unregister(struct st_proto_s *proto)
621 {
622 	long err = 0;
623 	unsigned long flags = 0;
624 	struct st_data_s	*st_gdata;
625 
626 	pr_debug("%s: %d ", __func__, proto->chnl_id);
627 
628 	st_kim_ref(&st_gdata, 0);
629 	if (!st_gdata || proto->chnl_id >= ST_MAX_CHANNELS) {
630 		pr_err(" chnl_id %d not supported", proto->chnl_id);
631 		return -EPROTONOSUPPORT;
632 	}
633 
634 	spin_lock_irqsave(&st_gdata->lock, flags);
635 
636 	if (st_gdata->is_registered[proto->chnl_id] == false) {
637 		pr_err(" chnl_id %d not registered", proto->chnl_id);
638 		spin_unlock_irqrestore(&st_gdata->lock, flags);
639 		return -EPROTONOSUPPORT;
640 	}
641 
642 	st_gdata->protos_registered--;
643 	remove_channel_from_table(st_gdata, proto);
644 	spin_unlock_irqrestore(&st_gdata->lock, flags);
645 
646 	/* paranoid check */
647 	if (st_gdata->protos_registered < ST_EMPTY)
648 		st_gdata->protos_registered = ST_EMPTY;
649 
650 	if ((st_gdata->protos_registered == ST_EMPTY) &&
651 	    (!test_bit(ST_REG_PENDING, &st_gdata->st_state))) {
652 		pr_info(" all chnl_ids unregistered ");
653 
654 		/* stop traffic on tty */
655 		if (st_gdata->tty) {
656 			tty_ldisc_flush(st_gdata->tty);
657 			stop_tty(st_gdata->tty);
658 		}
659 
660 		/* all chnl_ids now unregistered */
661 		st_kim_stop(st_gdata->kim_data);
662 		/* disable ST LL */
663 		st_ll_disable(st_gdata);
664 	}
665 	return err;
666 }
667 
668 /*
669  * called in protocol stack drivers
670  * via the write function pointer
671  */
672 long st_write(struct sk_buff *skb)
673 {
674 	struct st_data_s *st_gdata;
675 	long len;
676 
677 	st_kim_ref(&st_gdata, 0);
678 	if (unlikely(skb == NULL || st_gdata == NULL
679 		|| st_gdata->tty == NULL)) {
680 		pr_err("data/tty unavailable to perform write");
681 		return -EINVAL;
682 	}
683 
684 	pr_debug("%d to be written", skb->len);
685 	len = skb->len;
686 
687 	/* st_ll to decide where to enqueue the skb */
688 	st_int_enqueue(st_gdata, skb);
689 	/* wake up */
690 	st_tx_wakeup(st_gdata);
691 
692 	/* return number of bytes written */
693 	return len;
694 }
695 
696 /* for protocols making use of shared transport */
697 EXPORT_SYMBOL_GPL(st_unregister);
698 
699 /********************************************************************/
700 /*
701  * functions called from TTY layer
702  */
703 static int st_tty_open(struct tty_struct *tty)
704 {
705 	int err = 0;
706 	struct st_data_s *st_gdata;
707 	pr_info("%s ", __func__);
708 
709 	st_kim_ref(&st_gdata, 0);
710 	st_gdata->tty = tty;
711 	tty->disc_data = st_gdata;
712 
713 	/* don't do an wakeup for now */
714 	clear_bit(TTY_DO_WRITE_WAKEUP, &tty->flags);
715 
716 	/* mem already allocated
717 	 */
718 	tty->receive_room = 65536;
719 	/* Flush any pending characters in the driver and discipline. */
720 	tty_ldisc_flush(tty);
721 	tty_driver_flush_buffer(tty);
722 	/*
723 	 * signal to UIM via KIM that -
724 	 * installation of N_TI_WL ldisc is complete
725 	 */
726 	st_kim_complete(st_gdata->kim_data);
727 	pr_debug("done %s", __func__);
728 	return err;
729 }
730 
731 static void st_tty_close(struct tty_struct *tty)
732 {
733 	unsigned char i = ST_MAX_CHANNELS;
734 	unsigned long flags = 0;
735 	struct	st_data_s *st_gdata = tty->disc_data;
736 
737 	pr_info("%s ", __func__);
738 
739 	/* TODO:
740 	 * if a protocol has been registered & line discipline
741 	 * un-installed for some reason - what should be done ?
742 	 */
743 	spin_lock_irqsave(&st_gdata->lock, flags);
744 	for (i = ST_BT; i < ST_MAX_CHANNELS; i++) {
745 		if (st_gdata->is_registered[i] == true)
746 			pr_err("%d not un-registered", i);
747 		st_gdata->list[i] = NULL;
748 		st_gdata->is_registered[i] = false;
749 	}
750 	st_gdata->protos_registered = 0;
751 	spin_unlock_irqrestore(&st_gdata->lock, flags);
752 	/*
753 	 * signal to UIM via KIM that -
754 	 * N_TI_WL ldisc is un-installed
755 	 */
756 	st_kim_complete(st_gdata->kim_data);
757 	st_gdata->tty = NULL;
758 	/* Flush any pending characters in the driver and discipline. */
759 	tty_ldisc_flush(tty);
760 	tty_driver_flush_buffer(tty);
761 
762 	spin_lock_irqsave(&st_gdata->lock, flags);
763 	/* empty out txq and tx_waitq */
764 	skb_queue_purge(&st_gdata->txq);
765 	skb_queue_purge(&st_gdata->tx_waitq);
766 	/* reset the TTY Rx states of ST */
767 	st_gdata->rx_count = 0;
768 	st_gdata->rx_state = ST_W4_PACKET_TYPE;
769 	kfree_skb(st_gdata->rx_skb);
770 	st_gdata->rx_skb = NULL;
771 	spin_unlock_irqrestore(&st_gdata->lock, flags);
772 
773 	pr_debug("%s: done ", __func__);
774 }
775 
776 static void st_tty_receive(struct tty_struct *tty, const unsigned char *data,
777 			   char *tty_flags, int count)
778 {
779 #ifdef VERBOSE
780 	print_hex_dump(KERN_DEBUG, ">in>", DUMP_PREFIX_NONE,
781 		16, 1, data, count, 0);
782 #endif
783 
784 	/*
785 	 * if fw download is in progress then route incoming data
786 	 * to KIM for validation
787 	 */
788 	st_recv(tty->disc_data, data, count);
789 	pr_debug("done %s", __func__);
790 }
791 
792 /* wake-up function called in from the TTY layer
793  * inside the internal wakeup function will be called
794  */
795 static void st_tty_wakeup(struct tty_struct *tty)
796 {
797 	struct	st_data_s *st_gdata = tty->disc_data;
798 	pr_debug("%s ", __func__);
799 	/* don't do an wakeup for now */
800 	clear_bit(TTY_DO_WRITE_WAKEUP, &tty->flags);
801 
802 	/* call our internal wakeup */
803 	st_tx_wakeup((void *)st_gdata);
804 }
805 
806 static void st_tty_flush_buffer(struct tty_struct *tty)
807 {
808 	struct	st_data_s *st_gdata = tty->disc_data;
809 	pr_debug("%s ", __func__);
810 
811 	kfree_skb(st_gdata->tx_skb);
812 	st_gdata->tx_skb = NULL;
813 
814 	tty_driver_flush_buffer(tty);
815 	return;
816 }
817 
818 static struct tty_ldisc_ops st_ldisc_ops = {
819 	.magic = TTY_LDISC_MAGIC,
820 	.name = "n_st",
821 	.open = st_tty_open,
822 	.close = st_tty_close,
823 	.receive_buf = st_tty_receive,
824 	.write_wakeup = st_tty_wakeup,
825 	.flush_buffer = st_tty_flush_buffer,
826 	.owner = THIS_MODULE
827 };
828 
829 /********************************************************************/
830 int st_core_init(struct st_data_s **core_data)
831 {
832 	struct st_data_s *st_gdata;
833 	long err;
834 
835 	err = tty_register_ldisc(N_TI_WL, &st_ldisc_ops);
836 	if (err) {
837 		pr_err("error registering %d line discipline %ld",
838 			   N_TI_WL, err);
839 		return err;
840 	}
841 	pr_debug("registered n_shared line discipline");
842 
843 	st_gdata = kzalloc(sizeof(struct st_data_s), GFP_KERNEL);
844 	if (!st_gdata) {
845 		pr_err("memory allocation failed");
846 		err = tty_unregister_ldisc(N_TI_WL);
847 		if (err)
848 			pr_err("unable to un-register ldisc %ld", err);
849 		err = -ENOMEM;
850 		return err;
851 	}
852 
853 	/* Initialize ST TxQ and Tx waitQ queue head. All BT/FM/GPS module skb's
854 	 * will be pushed in this queue for actual transmission.
855 	 */
856 	skb_queue_head_init(&st_gdata->txq);
857 	skb_queue_head_init(&st_gdata->tx_waitq);
858 
859 	/* Locking used in st_int_enqueue() to avoid multiple execution */
860 	spin_lock_init(&st_gdata->lock);
861 
862 	err = st_ll_init(st_gdata);
863 	if (err) {
864 		pr_err("error during st_ll initialization(%ld)", err);
865 		kfree(st_gdata);
866 		err = tty_unregister_ldisc(N_TI_WL);
867 		if (err)
868 			pr_err("unable to un-register ldisc");
869 		return err;
870 	}
871 	*core_data = st_gdata;
872 	return 0;
873 }
874 
875 void st_core_exit(struct st_data_s *st_gdata)
876 {
877 	long err;
878 	/* internal module cleanup */
879 	err = st_ll_deinit(st_gdata);
880 	if (err)
881 		pr_err("error during deinit of ST LL %ld", err);
882 
883 	if (st_gdata != NULL) {
884 		/* Free ST Tx Qs and skbs */
885 		skb_queue_purge(&st_gdata->txq);
886 		skb_queue_purge(&st_gdata->tx_waitq);
887 		kfree_skb(st_gdata->rx_skb);
888 		kfree_skb(st_gdata->tx_skb);
889 		/* TTY ldisc cleanup */
890 		err = tty_unregister_ldisc(N_TI_WL);
891 		if (err)
892 			pr_err("unable to un-register ldisc %ld", err);
893 		/* free the global data pointer */
894 		kfree(st_gdata);
895 	}
896 }
897 
898 
899