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1 /*
2  * TI Common Platform Time Sync
3  *
4  * Copyright (C) 2012 Richard Cochran <richardcochran@gmail.com>
5  *
6  * This program is free software; you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License as published by
8  * the Free Software Foundation; either version 2 of the License, or
9  * (at your option) any later version.
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., 51 Franklin St, Fifth Floor, Boston, MA  02110-1301  USA
19  */
20 #include <linux/err.h>
21 #include <linux/if.h>
22 #include <linux/hrtimer.h>
23 #include <linux/module.h>
24 #include <linux/net_tstamp.h>
25 #include <linux/ptp_classify.h>
26 #include <linux/time.h>
27 #include <linux/uaccess.h>
28 #include <linux/workqueue.h>
29 #include <linux/if_ether.h>
30 #include <linux/if_vlan.h>
31 
32 #include "cpts.h"
33 
34 #define CPTS_SKB_TX_WORK_TIMEOUT 1 /* jiffies */
35 
36 struct cpts_skb_cb_data {
37 	unsigned long tmo;
38 };
39 
40 #define cpts_read32(c, r)	readl_relaxed(&c->reg->r)
41 #define cpts_write32(c, v, r)	writel_relaxed(v, &c->reg->r)
42 
43 static int cpts_match(struct sk_buff *skb, unsigned int ptp_class,
44 		      u16 ts_seqid, u8 ts_msgtype);
45 
event_expired(struct cpts_event * event)46 static int event_expired(struct cpts_event *event)
47 {
48 	return time_after(jiffies, event->tmo);
49 }
50 
event_type(struct cpts_event * event)51 static int event_type(struct cpts_event *event)
52 {
53 	return (event->high >> EVENT_TYPE_SHIFT) & EVENT_TYPE_MASK;
54 }
55 
cpts_fifo_pop(struct cpts * cpts,u32 * high,u32 * low)56 static int cpts_fifo_pop(struct cpts *cpts, u32 *high, u32 *low)
57 {
58 	u32 r = cpts_read32(cpts, intstat_raw);
59 
60 	if (r & TS_PEND_RAW) {
61 		*high = cpts_read32(cpts, event_high);
62 		*low  = cpts_read32(cpts, event_low);
63 		cpts_write32(cpts, EVENT_POP, event_pop);
64 		return 0;
65 	}
66 	return -1;
67 }
68 
cpts_purge_events(struct cpts * cpts)69 static int cpts_purge_events(struct cpts *cpts)
70 {
71 	struct list_head *this, *next;
72 	struct cpts_event *event;
73 	int removed = 0;
74 
75 	list_for_each_safe(this, next, &cpts->events) {
76 		event = list_entry(this, struct cpts_event, list);
77 		if (event_expired(event)) {
78 			list_del_init(&event->list);
79 			list_add(&event->list, &cpts->pool);
80 			++removed;
81 		}
82 	}
83 
84 	if (removed)
85 		pr_debug("cpts: event pool cleaned up %d\n", removed);
86 	return removed ? 0 : -1;
87 }
88 
cpts_match_tx_ts(struct cpts * cpts,struct cpts_event * event)89 static bool cpts_match_tx_ts(struct cpts *cpts, struct cpts_event *event)
90 {
91 	struct sk_buff *skb, *tmp;
92 	u16 seqid;
93 	u8 mtype;
94 	bool found = false;
95 
96 	mtype = (event->high >> MESSAGE_TYPE_SHIFT) & MESSAGE_TYPE_MASK;
97 	seqid = (event->high >> SEQUENCE_ID_SHIFT) & SEQUENCE_ID_MASK;
98 
99 	/* no need to grab txq.lock as access is always done under cpts->lock */
100 	skb_queue_walk_safe(&cpts->txq, skb, tmp) {
101 		struct skb_shared_hwtstamps ssh;
102 		unsigned int class = ptp_classify_raw(skb);
103 		struct cpts_skb_cb_data *skb_cb =
104 					(struct cpts_skb_cb_data *)skb->cb;
105 
106 		if (cpts_match(skb, class, seqid, mtype)) {
107 			u64 ns = timecounter_cyc2time(&cpts->tc, event->low);
108 
109 			memset(&ssh, 0, sizeof(ssh));
110 			ssh.hwtstamp = ns_to_ktime(ns);
111 			skb_tstamp_tx(skb, &ssh);
112 			found = true;
113 			__skb_unlink(skb, &cpts->txq);
114 			dev_consume_skb_any(skb);
115 			dev_dbg(cpts->dev, "match tx timestamp mtype %u seqid %04x\n",
116 				mtype, seqid);
117 			break;
118 		}
119 
120 		if (time_after(jiffies, skb_cb->tmo)) {
121 			/* timeout any expired skbs over 1s */
122 			dev_dbg(cpts->dev, "expiring tx timestamp from txq\n");
123 			__skb_unlink(skb, &cpts->txq);
124 			dev_consume_skb_any(skb);
125 		}
126 	}
127 
128 	return found;
129 }
130 
131 /*
132  * Returns zero if matching event type was found.
133  */
cpts_fifo_read(struct cpts * cpts,int match)134 static int cpts_fifo_read(struct cpts *cpts, int match)
135 {
136 	int i, type = -1;
137 	u32 hi, lo;
138 	struct cpts_event *event;
139 
140 	for (i = 0; i < CPTS_FIFO_DEPTH; i++) {
141 		if (cpts_fifo_pop(cpts, &hi, &lo))
142 			break;
143 
144 		if (list_empty(&cpts->pool) && cpts_purge_events(cpts)) {
145 			pr_err("cpts: event pool empty\n");
146 			return -1;
147 		}
148 
149 		event = list_first_entry(&cpts->pool, struct cpts_event, list);
150 		event->tmo = jiffies + 2;
151 		event->high = hi;
152 		event->low = lo;
153 		type = event_type(event);
154 		switch (type) {
155 		case CPTS_EV_TX:
156 			if (cpts_match_tx_ts(cpts, event)) {
157 				/* if the new event matches an existing skb,
158 				 * then don't queue it
159 				 */
160 				break;
161 			}
162 			/* fall through */
163 		case CPTS_EV_PUSH:
164 		case CPTS_EV_RX:
165 			list_del_init(&event->list);
166 			list_add_tail(&event->list, &cpts->events);
167 			break;
168 		case CPTS_EV_ROLL:
169 		case CPTS_EV_HALF:
170 		case CPTS_EV_HW:
171 			break;
172 		default:
173 			pr_err("cpts: unknown event type\n");
174 			break;
175 		}
176 		if (type == match)
177 			break;
178 	}
179 	return type == match ? 0 : -1;
180 }
181 
cpts_systim_read(const struct cyclecounter * cc)182 static u64 cpts_systim_read(const struct cyclecounter *cc)
183 {
184 	u64 val = 0;
185 	struct cpts_event *event;
186 	struct list_head *this, *next;
187 	struct cpts *cpts = container_of(cc, struct cpts, cc);
188 
189 	cpts_write32(cpts, TS_PUSH, ts_push);
190 	if (cpts_fifo_read(cpts, CPTS_EV_PUSH))
191 		pr_err("cpts: unable to obtain a time stamp\n");
192 
193 	list_for_each_safe(this, next, &cpts->events) {
194 		event = list_entry(this, struct cpts_event, list);
195 		if (event_type(event) == CPTS_EV_PUSH) {
196 			list_del_init(&event->list);
197 			list_add(&event->list, &cpts->pool);
198 			val = event->low;
199 			break;
200 		}
201 	}
202 
203 	return val;
204 }
205 
206 /* PTP clock operations */
207 
cpts_ptp_adjfreq(struct ptp_clock_info * ptp,s32 ppb)208 static int cpts_ptp_adjfreq(struct ptp_clock_info *ptp, s32 ppb)
209 {
210 	u64 adj;
211 	u32 diff, mult;
212 	int neg_adj = 0;
213 	unsigned long flags;
214 	struct cpts *cpts = container_of(ptp, struct cpts, info);
215 
216 	if (ppb < 0) {
217 		neg_adj = 1;
218 		ppb = -ppb;
219 	}
220 	mult = cpts->cc_mult;
221 	adj = mult;
222 	adj *= ppb;
223 	diff = div_u64(adj, 1000000000ULL);
224 
225 	spin_lock_irqsave(&cpts->lock, flags);
226 
227 	timecounter_read(&cpts->tc);
228 
229 	cpts->cc.mult = neg_adj ? mult - diff : mult + diff;
230 
231 	spin_unlock_irqrestore(&cpts->lock, flags);
232 
233 	return 0;
234 }
235 
cpts_ptp_adjtime(struct ptp_clock_info * ptp,s64 delta)236 static int cpts_ptp_adjtime(struct ptp_clock_info *ptp, s64 delta)
237 {
238 	unsigned long flags;
239 	struct cpts *cpts = container_of(ptp, struct cpts, info);
240 
241 	spin_lock_irqsave(&cpts->lock, flags);
242 	timecounter_adjtime(&cpts->tc, delta);
243 	spin_unlock_irqrestore(&cpts->lock, flags);
244 
245 	return 0;
246 }
247 
cpts_ptp_gettime(struct ptp_clock_info * ptp,struct timespec64 * ts)248 static int cpts_ptp_gettime(struct ptp_clock_info *ptp, struct timespec64 *ts)
249 {
250 	u64 ns;
251 	unsigned long flags;
252 	struct cpts *cpts = container_of(ptp, struct cpts, info);
253 
254 	spin_lock_irqsave(&cpts->lock, flags);
255 	ns = timecounter_read(&cpts->tc);
256 	spin_unlock_irqrestore(&cpts->lock, flags);
257 
258 	*ts = ns_to_timespec64(ns);
259 
260 	return 0;
261 }
262 
cpts_ptp_settime(struct ptp_clock_info * ptp,const struct timespec64 * ts)263 static int cpts_ptp_settime(struct ptp_clock_info *ptp,
264 			    const struct timespec64 *ts)
265 {
266 	u64 ns;
267 	unsigned long flags;
268 	struct cpts *cpts = container_of(ptp, struct cpts, info);
269 
270 	ns = timespec64_to_ns(ts);
271 
272 	spin_lock_irqsave(&cpts->lock, flags);
273 	timecounter_init(&cpts->tc, &cpts->cc, ns);
274 	spin_unlock_irqrestore(&cpts->lock, flags);
275 
276 	return 0;
277 }
278 
cpts_ptp_enable(struct ptp_clock_info * ptp,struct ptp_clock_request * rq,int on)279 static int cpts_ptp_enable(struct ptp_clock_info *ptp,
280 			   struct ptp_clock_request *rq, int on)
281 {
282 	return -EOPNOTSUPP;
283 }
284 
cpts_overflow_check(struct ptp_clock_info * ptp)285 static long cpts_overflow_check(struct ptp_clock_info *ptp)
286 {
287 	struct cpts *cpts = container_of(ptp, struct cpts, info);
288 	unsigned long delay = cpts->ov_check_period;
289 	struct timespec64 ts;
290 	unsigned long flags;
291 
292 	spin_lock_irqsave(&cpts->lock, flags);
293 	ts = ns_to_timespec64(timecounter_read(&cpts->tc));
294 
295 	if (!skb_queue_empty(&cpts->txq))
296 		delay = CPTS_SKB_TX_WORK_TIMEOUT;
297 	spin_unlock_irqrestore(&cpts->lock, flags);
298 
299 	pr_debug("cpts overflow check at %lld.%09ld\n",
300 		 (long long)ts.tv_sec, ts.tv_nsec);
301 	return (long)delay;
302 }
303 
304 static const struct ptp_clock_info cpts_info = {
305 	.owner		= THIS_MODULE,
306 	.name		= "CTPS timer",
307 	.max_adj	= 1000000,
308 	.n_ext_ts	= 0,
309 	.n_pins		= 0,
310 	.pps		= 0,
311 	.adjfreq	= cpts_ptp_adjfreq,
312 	.adjtime	= cpts_ptp_adjtime,
313 	.gettime64	= cpts_ptp_gettime,
314 	.settime64	= cpts_ptp_settime,
315 	.enable		= cpts_ptp_enable,
316 	.do_aux_work	= cpts_overflow_check,
317 };
318 
cpts_match(struct sk_buff * skb,unsigned int ptp_class,u16 ts_seqid,u8 ts_msgtype)319 static int cpts_match(struct sk_buff *skb, unsigned int ptp_class,
320 		      u16 ts_seqid, u8 ts_msgtype)
321 {
322 	u16 *seqid;
323 	unsigned int offset = 0;
324 	u8 *msgtype, *data = skb->data;
325 
326 	if (ptp_class & PTP_CLASS_VLAN)
327 		offset += VLAN_HLEN;
328 
329 	switch (ptp_class & PTP_CLASS_PMASK) {
330 	case PTP_CLASS_IPV4:
331 		offset += ETH_HLEN + IPV4_HLEN(data + offset) + UDP_HLEN;
332 		break;
333 	case PTP_CLASS_IPV6:
334 		offset += ETH_HLEN + IP6_HLEN + UDP_HLEN;
335 		break;
336 	case PTP_CLASS_L2:
337 		offset += ETH_HLEN;
338 		break;
339 	default:
340 		return 0;
341 	}
342 
343 	if (skb->len + ETH_HLEN < offset + OFF_PTP_SEQUENCE_ID + sizeof(*seqid))
344 		return 0;
345 
346 	if (unlikely(ptp_class & PTP_CLASS_V1))
347 		msgtype = data + offset + OFF_PTP_CONTROL;
348 	else
349 		msgtype = data + offset;
350 
351 	seqid = (u16 *)(data + offset + OFF_PTP_SEQUENCE_ID);
352 
353 	return (ts_msgtype == (*msgtype & 0xf) && ts_seqid == ntohs(*seqid));
354 }
355 
cpts_find_ts(struct cpts * cpts,struct sk_buff * skb,int ev_type)356 static u64 cpts_find_ts(struct cpts *cpts, struct sk_buff *skb, int ev_type)
357 {
358 	u64 ns = 0;
359 	struct cpts_event *event;
360 	struct list_head *this, *next;
361 	unsigned int class = ptp_classify_raw(skb);
362 	unsigned long flags;
363 	u16 seqid;
364 	u8 mtype;
365 
366 	if (class == PTP_CLASS_NONE)
367 		return 0;
368 
369 	spin_lock_irqsave(&cpts->lock, flags);
370 	cpts_fifo_read(cpts, -1);
371 	list_for_each_safe(this, next, &cpts->events) {
372 		event = list_entry(this, struct cpts_event, list);
373 		if (event_expired(event)) {
374 			list_del_init(&event->list);
375 			list_add(&event->list, &cpts->pool);
376 			continue;
377 		}
378 		mtype = (event->high >> MESSAGE_TYPE_SHIFT) & MESSAGE_TYPE_MASK;
379 		seqid = (event->high >> SEQUENCE_ID_SHIFT) & SEQUENCE_ID_MASK;
380 		if (ev_type == event_type(event) &&
381 		    cpts_match(skb, class, seqid, mtype)) {
382 			ns = timecounter_cyc2time(&cpts->tc, event->low);
383 			list_del_init(&event->list);
384 			list_add(&event->list, &cpts->pool);
385 			break;
386 		}
387 	}
388 
389 	if (ev_type == CPTS_EV_TX && !ns) {
390 		struct cpts_skb_cb_data *skb_cb =
391 				(struct cpts_skb_cb_data *)skb->cb;
392 		/* Not found, add frame to queue for processing later.
393 		 * The periodic FIFO check will handle this.
394 		 */
395 		skb_get(skb);
396 		/* get the timestamp for timeouts */
397 		skb_cb->tmo = jiffies + msecs_to_jiffies(100);
398 		__skb_queue_tail(&cpts->txq, skb);
399 		ptp_schedule_worker(cpts->clock, 0);
400 	}
401 	spin_unlock_irqrestore(&cpts->lock, flags);
402 
403 	return ns;
404 }
405 
cpts_rx_timestamp(struct cpts * cpts,struct sk_buff * skb)406 void cpts_rx_timestamp(struct cpts *cpts, struct sk_buff *skb)
407 {
408 	u64 ns;
409 	struct skb_shared_hwtstamps *ssh;
410 
411 	if (!cpts->rx_enable)
412 		return;
413 	ns = cpts_find_ts(cpts, skb, CPTS_EV_RX);
414 	if (!ns)
415 		return;
416 	ssh = skb_hwtstamps(skb);
417 	memset(ssh, 0, sizeof(*ssh));
418 	ssh->hwtstamp = ns_to_ktime(ns);
419 }
420 EXPORT_SYMBOL_GPL(cpts_rx_timestamp);
421 
cpts_tx_timestamp(struct cpts * cpts,struct sk_buff * skb)422 void cpts_tx_timestamp(struct cpts *cpts, struct sk_buff *skb)
423 {
424 	u64 ns;
425 	struct skb_shared_hwtstamps ssh;
426 
427 	if (!(skb_shinfo(skb)->tx_flags & SKBTX_IN_PROGRESS))
428 		return;
429 	ns = cpts_find_ts(cpts, skb, CPTS_EV_TX);
430 	if (!ns)
431 		return;
432 	memset(&ssh, 0, sizeof(ssh));
433 	ssh.hwtstamp = ns_to_ktime(ns);
434 	skb_tstamp_tx(skb, &ssh);
435 }
436 EXPORT_SYMBOL_GPL(cpts_tx_timestamp);
437 
cpts_register(struct cpts * cpts)438 int cpts_register(struct cpts *cpts)
439 {
440 	int err, i;
441 
442 	skb_queue_head_init(&cpts->txq);
443 	INIT_LIST_HEAD(&cpts->events);
444 	INIT_LIST_HEAD(&cpts->pool);
445 	for (i = 0; i < CPTS_MAX_EVENTS; i++)
446 		list_add(&cpts->pool_data[i].list, &cpts->pool);
447 
448 	clk_enable(cpts->refclk);
449 
450 	cpts_write32(cpts, CPTS_EN, control);
451 	cpts_write32(cpts, TS_PEND_EN, int_enable);
452 
453 	timecounter_init(&cpts->tc, &cpts->cc, ktime_to_ns(ktime_get_real()));
454 
455 	cpts->clock = ptp_clock_register(&cpts->info, cpts->dev);
456 	if (IS_ERR(cpts->clock)) {
457 		err = PTR_ERR(cpts->clock);
458 		cpts->clock = NULL;
459 		goto err_ptp;
460 	}
461 	cpts->phc_index = ptp_clock_index(cpts->clock);
462 
463 	ptp_schedule_worker(cpts->clock, cpts->ov_check_period);
464 	return 0;
465 
466 err_ptp:
467 	clk_disable(cpts->refclk);
468 	return err;
469 }
470 EXPORT_SYMBOL_GPL(cpts_register);
471 
cpts_unregister(struct cpts * cpts)472 void cpts_unregister(struct cpts *cpts)
473 {
474 	if (WARN_ON(!cpts->clock))
475 		return;
476 
477 	ptp_clock_unregister(cpts->clock);
478 	cpts->clock = NULL;
479 
480 	cpts_write32(cpts, 0, int_enable);
481 	cpts_write32(cpts, 0, control);
482 
483 	/* Drop all packet */
484 	skb_queue_purge(&cpts->txq);
485 
486 	clk_disable(cpts->refclk);
487 }
488 EXPORT_SYMBOL_GPL(cpts_unregister);
489 
cpts_calc_mult_shift(struct cpts * cpts)490 static void cpts_calc_mult_shift(struct cpts *cpts)
491 {
492 	u64 frac, maxsec, ns;
493 	u32 freq;
494 
495 	freq = clk_get_rate(cpts->refclk);
496 
497 	/* Calc the maximum number of seconds which we can run before
498 	 * wrapping around.
499 	 */
500 	maxsec = cpts->cc.mask;
501 	do_div(maxsec, freq);
502 	/* limit conversation rate to 10 sec as higher values will produce
503 	 * too small mult factors and so reduce the conversion accuracy
504 	 */
505 	if (maxsec > 10)
506 		maxsec = 10;
507 
508 	/* Calc overflow check period (maxsec / 2) */
509 	cpts->ov_check_period = (HZ * maxsec) / 2;
510 	dev_info(cpts->dev, "cpts: overflow check period %lu (jiffies)\n",
511 		 cpts->ov_check_period);
512 
513 	if (cpts->cc.mult || cpts->cc.shift)
514 		return;
515 
516 	clocks_calc_mult_shift(&cpts->cc.mult, &cpts->cc.shift,
517 			       freq, NSEC_PER_SEC, maxsec);
518 
519 	frac = 0;
520 	ns = cyclecounter_cyc2ns(&cpts->cc, freq, cpts->cc.mask, &frac);
521 
522 	dev_info(cpts->dev,
523 		 "CPTS: ref_clk_freq:%u calc_mult:%u calc_shift:%u error:%lld nsec/sec\n",
524 		 freq, cpts->cc.mult, cpts->cc.shift, (ns - NSEC_PER_SEC));
525 }
526 
cpts_of_parse(struct cpts * cpts,struct device_node * node)527 static int cpts_of_parse(struct cpts *cpts, struct device_node *node)
528 {
529 	int ret = -EINVAL;
530 	u32 prop;
531 
532 	if (!of_property_read_u32(node, "cpts_clock_mult", &prop))
533 		cpts->cc.mult = prop;
534 
535 	if (!of_property_read_u32(node, "cpts_clock_shift", &prop))
536 		cpts->cc.shift = prop;
537 
538 	if ((cpts->cc.mult && !cpts->cc.shift) ||
539 	    (!cpts->cc.mult && cpts->cc.shift))
540 		goto of_error;
541 
542 	return 0;
543 
544 of_error:
545 	dev_err(cpts->dev, "CPTS: Missing property in the DT.\n");
546 	return ret;
547 }
548 
cpts_create(struct device * dev,void __iomem * regs,struct device_node * node)549 struct cpts *cpts_create(struct device *dev, void __iomem *regs,
550 			 struct device_node *node)
551 {
552 	struct cpts *cpts;
553 	int ret;
554 
555 	cpts = devm_kzalloc(dev, sizeof(*cpts), GFP_KERNEL);
556 	if (!cpts)
557 		return ERR_PTR(-ENOMEM);
558 
559 	cpts->dev = dev;
560 	cpts->reg = (struct cpsw_cpts __iomem *)regs;
561 	spin_lock_init(&cpts->lock);
562 
563 	ret = cpts_of_parse(cpts, node);
564 	if (ret)
565 		return ERR_PTR(ret);
566 
567 	cpts->refclk = devm_clk_get(dev, "cpts");
568 	if (IS_ERR(cpts->refclk)) {
569 		dev_err(dev, "Failed to get cpts refclk\n");
570 		return ERR_CAST(cpts->refclk);
571 	}
572 
573 	ret = clk_prepare(cpts->refclk);
574 	if (ret)
575 		return ERR_PTR(ret);
576 
577 	cpts->cc.read = cpts_systim_read;
578 	cpts->cc.mask = CLOCKSOURCE_MASK(32);
579 	cpts->info = cpts_info;
580 
581 	cpts_calc_mult_shift(cpts);
582 	/* save cc.mult original value as it can be modified
583 	 * by cpts_ptp_adjfreq().
584 	 */
585 	cpts->cc_mult = cpts->cc.mult;
586 
587 	return cpts;
588 }
589 EXPORT_SYMBOL_GPL(cpts_create);
590 
cpts_release(struct cpts * cpts)591 void cpts_release(struct cpts *cpts)
592 {
593 	if (!cpts)
594 		return;
595 
596 	if (WARN_ON(!cpts->refclk))
597 		return;
598 
599 	clk_unprepare(cpts->refclk);
600 }
601 EXPORT_SYMBOL_GPL(cpts_release);
602 
603 MODULE_LICENSE("GPL v2");
604 MODULE_DESCRIPTION("TI CPTS driver");
605 MODULE_AUTHOR("Richard Cochran <richardcochran@gmail.com>");
606