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1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * Driver for ITE Tech Inc. IT8712F/IT8512 CIR
4  *
5  * Copyright (C) 2010 Juan Jesús García de Soria <skandalfo@gmail.com>
6  *
7  * Inspired by the original lirc_it87 and lirc_ite8709 drivers, on top of the
8  * skeleton provided by the nuvoton-cir driver.
9  *
10  * The lirc_it87 driver was originally written by Hans-Gunter Lutke Uphues
11  * <hg_lu@web.de> in 2001, with enhancements by Christoph Bartelmus
12  * <lirc@bartelmus.de>, Andrew Calkin <r_tay@hotmail.com> and James Edwards
13  * <jimbo-lirc@edwardsclan.net>.
14  *
15  * The lirc_ite8709 driver was written by Grégory Lardière
16  * <spmf2004-lirc@yahoo.fr> in 2008.
17  */
18 
19 #include <linux/kernel.h>
20 #include <linux/module.h>
21 #include <linux/pnp.h>
22 #include <linux/io.h>
23 #include <linux/interrupt.h>
24 #include <linux/sched.h>
25 #include <linux/delay.h>
26 #include <linux/slab.h>
27 #include <linux/input.h>
28 #include <linux/bitops.h>
29 #include <media/rc-core.h>
30 #include <linux/pci_ids.h>
31 
32 #include "ite-cir.h"
33 
34 /* module parameters */
35 
36 /* debug level */
37 static int debug;
38 module_param(debug, int, S_IRUGO | S_IWUSR);
39 MODULE_PARM_DESC(debug, "Enable debugging output");
40 
41 /* low limit for RX carrier freq, Hz, 0 for no RX demodulation */
42 static int rx_low_carrier_freq;
43 module_param(rx_low_carrier_freq, int, S_IRUGO | S_IWUSR);
44 MODULE_PARM_DESC(rx_low_carrier_freq, "Override low RX carrier frequency, Hz, 0 for no RX demodulation");
45 
46 /* high limit for RX carrier freq, Hz, 0 for no RX demodulation */
47 static int rx_high_carrier_freq;
48 module_param(rx_high_carrier_freq, int, S_IRUGO | S_IWUSR);
49 MODULE_PARM_DESC(rx_high_carrier_freq, "Override high RX carrier frequency, Hz, 0 for no RX demodulation");
50 
51 /* override tx carrier frequency */
52 static int tx_carrier_freq;
53 module_param(tx_carrier_freq, int, S_IRUGO | S_IWUSR);
54 MODULE_PARM_DESC(tx_carrier_freq, "Override TX carrier frequency, Hz");
55 
56 /* override tx duty cycle */
57 static int tx_duty_cycle;
58 module_param(tx_duty_cycle, int, S_IRUGO | S_IWUSR);
59 MODULE_PARM_DESC(tx_duty_cycle, "Override TX duty cycle, 1-100");
60 
61 /* override default sample period */
62 static long sample_period;
63 module_param(sample_period, long, S_IRUGO | S_IWUSR);
64 MODULE_PARM_DESC(sample_period, "Override carrier sample period, us");
65 
66 /* override detected model id */
67 static int model_number = -1;
68 module_param(model_number, int, S_IRUGO | S_IWUSR);
69 MODULE_PARM_DESC(model_number, "Use this model number, don't autodetect");
70 
71 
72 /* HW-independent code functions */
73 
74 /* check whether carrier frequency is high frequency */
ite_is_high_carrier_freq(unsigned int freq)75 static inline bool ite_is_high_carrier_freq(unsigned int freq)
76 {
77 	return freq >= ITE_HCF_MIN_CARRIER_FREQ;
78 }
79 
80 /* get the bits required to program the carrier frequency in CFQ bits,
81  * unshifted */
ite_get_carrier_freq_bits(unsigned int freq)82 static u8 ite_get_carrier_freq_bits(unsigned int freq)
83 {
84 	if (ite_is_high_carrier_freq(freq)) {
85 		if (freq < 425000)
86 			return ITE_CFQ_400;
87 
88 		else if (freq < 465000)
89 			return ITE_CFQ_450;
90 
91 		else if (freq < 490000)
92 			return ITE_CFQ_480;
93 
94 		else
95 			return ITE_CFQ_500;
96 	} else {
97 			/* trim to limits */
98 		if (freq < ITE_LCF_MIN_CARRIER_FREQ)
99 			freq = ITE_LCF_MIN_CARRIER_FREQ;
100 		if (freq > ITE_LCF_MAX_CARRIER_FREQ)
101 			freq = ITE_LCF_MAX_CARRIER_FREQ;
102 
103 		/* convert to kHz and subtract the base freq */
104 		freq =
105 		    DIV_ROUND_CLOSEST(freq - ITE_LCF_MIN_CARRIER_FREQ,
106 				      1000);
107 
108 		return (u8) freq;
109 	}
110 }
111 
112 /* get the bits required to program the pulse with in TXMPW */
ite_get_pulse_width_bits(unsigned int freq,int duty_cycle)113 static u8 ite_get_pulse_width_bits(unsigned int freq, int duty_cycle)
114 {
115 	unsigned long period_ns, on_ns;
116 
117 	/* sanitize freq into range */
118 	if (freq < ITE_LCF_MIN_CARRIER_FREQ)
119 		freq = ITE_LCF_MIN_CARRIER_FREQ;
120 	if (freq > ITE_HCF_MAX_CARRIER_FREQ)
121 		freq = ITE_HCF_MAX_CARRIER_FREQ;
122 
123 	period_ns = 1000000000UL / freq;
124 	on_ns = period_ns * duty_cycle / 100;
125 
126 	if (ite_is_high_carrier_freq(freq)) {
127 		if (on_ns < 750)
128 			return ITE_TXMPW_A;
129 
130 		else if (on_ns < 850)
131 			return ITE_TXMPW_B;
132 
133 		else if (on_ns < 950)
134 			return ITE_TXMPW_C;
135 
136 		else if (on_ns < 1080)
137 			return ITE_TXMPW_D;
138 
139 		else
140 			return ITE_TXMPW_E;
141 	} else {
142 		if (on_ns < 6500)
143 			return ITE_TXMPW_A;
144 
145 		else if (on_ns < 7850)
146 			return ITE_TXMPW_B;
147 
148 		else if (on_ns < 9650)
149 			return ITE_TXMPW_C;
150 
151 		else if (on_ns < 11950)
152 			return ITE_TXMPW_D;
153 
154 		else
155 			return ITE_TXMPW_E;
156 	}
157 }
158 
159 /* decode raw bytes as received by the hardware, and push them to the ir-core
160  * layer */
ite_decode_bytes(struct ite_dev * dev,const u8 * data,int length)161 static void ite_decode_bytes(struct ite_dev *dev, const u8 * data, int
162 			     length)
163 {
164 	u32 sample_period;
165 	unsigned long *ldata;
166 	unsigned int next_one, next_zero, size;
167 	struct ir_raw_event ev = {};
168 
169 	if (length == 0)
170 		return;
171 
172 	sample_period = dev->params.sample_period;
173 	ldata = (unsigned long *)data;
174 	size = length << 3;
175 	next_one = find_next_bit_le(ldata, size, 0);
176 	if (next_one > 0) {
177 		ev.pulse = true;
178 		ev.duration =
179 		    ITE_BITS_TO_US(next_one, sample_period);
180 		ir_raw_event_store_with_filter(dev->rdev, &ev);
181 	}
182 
183 	while (next_one < size) {
184 		next_zero = find_next_zero_bit_le(ldata, size, next_one + 1);
185 		ev.pulse = false;
186 		ev.duration = ITE_BITS_TO_US(next_zero - next_one, sample_period);
187 		ir_raw_event_store_with_filter(dev->rdev, &ev);
188 
189 		if (next_zero < size) {
190 			next_one =
191 			    find_next_bit_le(ldata,
192 						     size,
193 						     next_zero + 1);
194 			ev.pulse = true;
195 			ev.duration =
196 			    ITE_BITS_TO_US(next_one - next_zero,
197 					   sample_period);
198 			ir_raw_event_store_with_filter
199 			    (dev->rdev, &ev);
200 		} else
201 			next_one = size;
202 	}
203 
204 	ir_raw_event_handle(dev->rdev);
205 
206 	ite_dbg_verbose("decoded %d bytes.", length);
207 }
208 
209 /* set all the rx/tx carrier parameters; this must be called with the device
210  * spinlock held */
ite_set_carrier_params(struct ite_dev * dev)211 static void ite_set_carrier_params(struct ite_dev *dev)
212 {
213 	unsigned int freq, low_freq, high_freq;
214 	int allowance;
215 	bool use_demodulator;
216 	bool for_tx = dev->transmitting;
217 
218 	ite_dbg("%s called", __func__);
219 
220 	if (for_tx) {
221 		/* we don't need no stinking calculations */
222 		freq = dev->params.tx_carrier_freq;
223 		allowance = ITE_RXDCR_DEFAULT;
224 		use_demodulator = false;
225 	} else {
226 		low_freq = dev->params.rx_low_carrier_freq;
227 		high_freq = dev->params.rx_high_carrier_freq;
228 
229 		if (low_freq == 0) {
230 			/* don't demodulate */
231 			freq =
232 			ITE_DEFAULT_CARRIER_FREQ;
233 			allowance = ITE_RXDCR_DEFAULT;
234 			use_demodulator = false;
235 		} else {
236 			/* calculate the middle freq */
237 			freq = (low_freq + high_freq) / 2;
238 
239 			/* calculate the allowance */
240 			allowance =
241 			    DIV_ROUND_CLOSEST(10000 * (high_freq - low_freq),
242 					      ITE_RXDCR_PER_10000_STEP
243 					      * (high_freq + low_freq));
244 
245 			if (allowance < 1)
246 				allowance = 1;
247 
248 			if (allowance > ITE_RXDCR_MAX)
249 				allowance = ITE_RXDCR_MAX;
250 
251 			use_demodulator = true;
252 		}
253 	}
254 
255 	/* set the carrier parameters in a device-dependent way */
256 	dev->params.set_carrier_params(dev, ite_is_high_carrier_freq(freq),
257 		 use_demodulator, ite_get_carrier_freq_bits(freq), allowance,
258 		 ite_get_pulse_width_bits(freq, dev->params.tx_duty_cycle));
259 }
260 
261 /* interrupt service routine for incoming and outgoing CIR data */
ite_cir_isr(int irq,void * data)262 static irqreturn_t ite_cir_isr(int irq, void *data)
263 {
264 	struct ite_dev *dev = data;
265 	unsigned long flags;
266 	irqreturn_t ret = IRQ_RETVAL(IRQ_NONE);
267 	u8 rx_buf[ITE_RX_FIFO_LEN];
268 	int rx_bytes;
269 	int iflags;
270 
271 	ite_dbg_verbose("%s firing", __func__);
272 
273 	/* grab the spinlock */
274 	spin_lock_irqsave(&dev->lock, flags);
275 
276 	/* read the interrupt flags */
277 	iflags = dev->params.get_irq_causes(dev);
278 
279 	/* Check for RX overflow */
280 	if (iflags & ITE_IRQ_RX_FIFO_OVERRUN) {
281 		dev_warn(&dev->rdev->dev, "receive overflow\n");
282 		ir_raw_event_reset(dev->rdev);
283 	}
284 
285 	/* check for the receive interrupt */
286 	if (iflags & (ITE_IRQ_RX_FIFO | ITE_IRQ_RX_FIFO_OVERRUN)) {
287 		/* read the FIFO bytes */
288 		rx_bytes =
289 			dev->params.get_rx_bytes(dev, rx_buf,
290 					     ITE_RX_FIFO_LEN);
291 
292 		if (rx_bytes > 0) {
293 			/* drop the spinlock, since the ir-core layer
294 			 * may call us back again through
295 			 * ite_s_idle() */
296 			spin_unlock_irqrestore(&dev->
297 									 lock,
298 									 flags);
299 
300 			/* decode the data we've just received */
301 			ite_decode_bytes(dev, rx_buf,
302 								   rx_bytes);
303 
304 			/* reacquire the spinlock */
305 			spin_lock_irqsave(&dev->lock,
306 								    flags);
307 
308 			/* mark the interrupt as serviced */
309 			ret = IRQ_RETVAL(IRQ_HANDLED);
310 		}
311 	} else if (iflags & ITE_IRQ_TX_FIFO) {
312 		/* FIFO space available interrupt */
313 		ite_dbg_verbose("got interrupt for TX FIFO");
314 
315 		/* wake any sleeping transmitter */
316 		wake_up_interruptible(&dev->tx_queue);
317 
318 		/* mark the interrupt as serviced */
319 		ret = IRQ_RETVAL(IRQ_HANDLED);
320 	}
321 
322 	/* drop the spinlock */
323 	spin_unlock_irqrestore(&dev->lock, flags);
324 
325 	ite_dbg_verbose("%s done returning %d", __func__, (int)ret);
326 
327 	return ret;
328 }
329 
330 /* set the rx carrier freq range, guess it's in Hz... */
ite_set_rx_carrier_range(struct rc_dev * rcdev,u32 carrier_low,u32 carrier_high)331 static int ite_set_rx_carrier_range(struct rc_dev *rcdev, u32 carrier_low, u32
332 				    carrier_high)
333 {
334 	unsigned long flags;
335 	struct ite_dev *dev = rcdev->priv;
336 
337 	spin_lock_irqsave(&dev->lock, flags);
338 	dev->params.rx_low_carrier_freq = carrier_low;
339 	dev->params.rx_high_carrier_freq = carrier_high;
340 	ite_set_carrier_params(dev);
341 	spin_unlock_irqrestore(&dev->lock, flags);
342 
343 	return 0;
344 }
345 
346 /* set the tx carrier freq, guess it's in Hz... */
ite_set_tx_carrier(struct rc_dev * rcdev,u32 carrier)347 static int ite_set_tx_carrier(struct rc_dev *rcdev, u32 carrier)
348 {
349 	unsigned long flags;
350 	struct ite_dev *dev = rcdev->priv;
351 
352 	spin_lock_irqsave(&dev->lock, flags);
353 	dev->params.tx_carrier_freq = carrier;
354 	ite_set_carrier_params(dev);
355 	spin_unlock_irqrestore(&dev->lock, flags);
356 
357 	return 0;
358 }
359 
360 /* set the tx duty cycle by controlling the pulse width */
ite_set_tx_duty_cycle(struct rc_dev * rcdev,u32 duty_cycle)361 static int ite_set_tx_duty_cycle(struct rc_dev *rcdev, u32 duty_cycle)
362 {
363 	unsigned long flags;
364 	struct ite_dev *dev = rcdev->priv;
365 
366 	spin_lock_irqsave(&dev->lock, flags);
367 	dev->params.tx_duty_cycle = duty_cycle;
368 	ite_set_carrier_params(dev);
369 	spin_unlock_irqrestore(&dev->lock, flags);
370 
371 	return 0;
372 }
373 
374 /* transmit out IR pulses; what you get here is a batch of alternating
375  * pulse/space/pulse/space lengths that we should write out completely through
376  * the FIFO, blocking on a full FIFO */
ite_tx_ir(struct rc_dev * rcdev,unsigned * txbuf,unsigned n)377 static int ite_tx_ir(struct rc_dev *rcdev, unsigned *txbuf, unsigned n)
378 {
379 	unsigned long flags;
380 	struct ite_dev *dev = rcdev->priv;
381 	bool is_pulse = false;
382 	int remaining_us, fifo_avail, fifo_remaining, last_idx = 0;
383 	int max_rle_us, next_rle_us;
384 	int ret = n;
385 	u8 last_sent[ITE_TX_FIFO_LEN];
386 	u8 val;
387 
388 	ite_dbg("%s called", __func__);
389 
390 	/* clear the array just in case */
391 	memset(last_sent, 0, sizeof(last_sent));
392 
393 	spin_lock_irqsave(&dev->lock, flags);
394 
395 	/* let everybody know we're now transmitting */
396 	dev->transmitting = true;
397 
398 	/* and set the carrier values for transmission */
399 	ite_set_carrier_params(dev);
400 
401 	/* calculate how much time we can send in one byte */
402 	max_rle_us =
403 	    (ITE_BAUDRATE_DIVISOR * dev->params.sample_period *
404 	     ITE_TX_MAX_RLE) / 1000;
405 
406 	/* disable the receiver */
407 	dev->params.disable_rx(dev);
408 
409 	/* this is where we'll begin filling in the FIFO, until it's full.
410 	 * then we'll just activate the interrupt, wait for it to wake us up
411 	 * again, disable it, continue filling the FIFO... until everything
412 	 * has been pushed out */
413 	fifo_avail =
414 	    ITE_TX_FIFO_LEN - dev->params.get_tx_used_slots(dev);
415 
416 	while (n > 0 && dev->in_use) {
417 		/* transmit the next sample */
418 		is_pulse = !is_pulse;
419 		remaining_us = *(txbuf++);
420 		n--;
421 
422 		ite_dbg("%s: %ld",
423 				      ((is_pulse) ? "pulse" : "space"),
424 				      (long int)
425 				      remaining_us);
426 
427 		/* repeat while the pulse is non-zero length */
428 		while (remaining_us > 0 && dev->in_use) {
429 			if (remaining_us > max_rle_us)
430 				next_rle_us = max_rle_us;
431 
432 			else
433 				next_rle_us = remaining_us;
434 
435 			remaining_us -= next_rle_us;
436 
437 			/* check what's the length we have to pump out */
438 			val = (ITE_TX_MAX_RLE * next_rle_us) / max_rle_us;
439 
440 			/* put it into the sent buffer */
441 			last_sent[last_idx++] = val;
442 			last_idx &= (ITE_TX_FIFO_LEN);
443 
444 			/* encode it for 7 bits */
445 			val = (val - 1) & ITE_TX_RLE_MASK;
446 
447 			/* take into account pulse/space prefix */
448 			if (is_pulse)
449 				val |= ITE_TX_PULSE;
450 
451 			else
452 				val |= ITE_TX_SPACE;
453 
454 			/*
455 			 * if we get to 0 available, read again, just in case
456 			 * some other slot got freed
457 			 */
458 			if (fifo_avail <= 0)
459 				fifo_avail = ITE_TX_FIFO_LEN - dev->params.get_tx_used_slots(dev);
460 
461 			/* if it's still full */
462 			if (fifo_avail <= 0) {
463 				/* enable the tx interrupt */
464 				dev->params.
465 				enable_tx_interrupt(dev);
466 
467 				/* drop the spinlock */
468 				spin_unlock_irqrestore(&dev->lock, flags);
469 
470 				/* wait for the FIFO to empty enough */
471 				wait_event_interruptible(dev->tx_queue, (fifo_avail = ITE_TX_FIFO_LEN - dev->params.get_tx_used_slots(dev)) >= 8);
472 
473 				/* get the spinlock again */
474 				spin_lock_irqsave(&dev->lock, flags);
475 
476 				/* disable the tx interrupt again. */
477 				dev->params.
478 				disable_tx_interrupt(dev);
479 			}
480 
481 			/* now send the byte through the FIFO */
482 			dev->params.put_tx_byte(dev, val);
483 			fifo_avail--;
484 		}
485 	}
486 
487 	/* wait and don't return until the whole FIFO has been sent out;
488 	 * otherwise we could configure the RX carrier params instead of the
489 	 * TX ones while the transmission is still being performed! */
490 	fifo_remaining = dev->params.get_tx_used_slots(dev);
491 	remaining_us = 0;
492 	while (fifo_remaining > 0) {
493 		fifo_remaining--;
494 		last_idx--;
495 		last_idx &= (ITE_TX_FIFO_LEN - 1);
496 		remaining_us += last_sent[last_idx];
497 	}
498 	remaining_us = (remaining_us * max_rle_us) / (ITE_TX_MAX_RLE);
499 
500 	/* drop the spinlock while we sleep */
501 	spin_unlock_irqrestore(&dev->lock, flags);
502 
503 	/* sleep remaining_us microseconds */
504 	mdelay(DIV_ROUND_UP(remaining_us, 1000));
505 
506 	/* reacquire the spinlock */
507 	spin_lock_irqsave(&dev->lock, flags);
508 
509 	/* now we're not transmitting anymore */
510 	dev->transmitting = false;
511 
512 	/* and set the carrier values for reception */
513 	ite_set_carrier_params(dev);
514 
515 	/* re-enable the receiver */
516 	if (dev->in_use)
517 		dev->params.enable_rx(dev);
518 
519 	/* notify transmission end */
520 	wake_up_interruptible(&dev->tx_ended);
521 
522 	spin_unlock_irqrestore(&dev->lock, flags);
523 
524 	return ret;
525 }
526 
527 /* idle the receiver if needed */
ite_s_idle(struct rc_dev * rcdev,bool enable)528 static void ite_s_idle(struct rc_dev *rcdev, bool enable)
529 {
530 	unsigned long flags;
531 	struct ite_dev *dev = rcdev->priv;
532 
533 	ite_dbg("%s called", __func__);
534 
535 	if (enable) {
536 		spin_lock_irqsave(&dev->lock, flags);
537 		dev->params.idle_rx(dev);
538 		spin_unlock_irqrestore(&dev->lock, flags);
539 	}
540 }
541 
542 
543 /* IT8712F HW-specific functions */
544 
545 /* retrieve a bitmask of the current causes for a pending interrupt; this may
546  * be composed of ITE_IRQ_TX_FIFO, ITE_IRQ_RX_FIFO and ITE_IRQ_RX_FIFO_OVERRUN
547  * */
it87_get_irq_causes(struct ite_dev * dev)548 static int it87_get_irq_causes(struct ite_dev *dev)
549 {
550 	u8 iflags;
551 	int ret = 0;
552 
553 	ite_dbg("%s called", __func__);
554 
555 	/* read the interrupt flags */
556 	iflags = inb(dev->cir_addr + IT87_IIR) & IT87_II;
557 
558 	switch (iflags) {
559 	case IT87_II_RXDS:
560 		ret = ITE_IRQ_RX_FIFO;
561 		break;
562 	case IT87_II_RXFO:
563 		ret = ITE_IRQ_RX_FIFO_OVERRUN;
564 		break;
565 	case IT87_II_TXLDL:
566 		ret = ITE_IRQ_TX_FIFO;
567 		break;
568 	}
569 
570 	return ret;
571 }
572 
573 /* set the carrier parameters; to be called with the spinlock held */
it87_set_carrier_params(struct ite_dev * dev,bool high_freq,bool use_demodulator,u8 carrier_freq_bits,u8 allowance_bits,u8 pulse_width_bits)574 static void it87_set_carrier_params(struct ite_dev *dev, bool high_freq,
575 				    bool use_demodulator,
576 				    u8 carrier_freq_bits, u8 allowance_bits,
577 				    u8 pulse_width_bits)
578 {
579 	u8 val;
580 
581 	ite_dbg("%s called", __func__);
582 
583 	/* program the RCR register */
584 	val = inb(dev->cir_addr + IT87_RCR)
585 		& ~(IT87_HCFS | IT87_RXEND | IT87_RXDCR);
586 
587 	if (high_freq)
588 		val |= IT87_HCFS;
589 
590 	if (use_demodulator)
591 		val |= IT87_RXEND;
592 
593 	val |= allowance_bits;
594 
595 	outb(val, dev->cir_addr + IT87_RCR);
596 
597 	/* program the TCR2 register */
598 	outb((carrier_freq_bits << IT87_CFQ_SHIFT) | pulse_width_bits,
599 		dev->cir_addr + IT87_TCR2);
600 }
601 
602 /* read up to buf_size bytes from the RX FIFO; to be called with the spinlock
603  * held */
it87_get_rx_bytes(struct ite_dev * dev,u8 * buf,int buf_size)604 static int it87_get_rx_bytes(struct ite_dev *dev, u8 * buf, int buf_size)
605 {
606 	int fifo, read = 0;
607 
608 	ite_dbg("%s called", __func__);
609 
610 	/* read how many bytes are still in the FIFO */
611 	fifo = inb(dev->cir_addr + IT87_RSR) & IT87_RXFBC;
612 
613 	while (fifo > 0 && buf_size > 0) {
614 		*(buf++) = inb(dev->cir_addr + IT87_DR);
615 		fifo--;
616 		read++;
617 		buf_size--;
618 	}
619 
620 	return read;
621 }
622 
623 /* return how many bytes are still in the FIFO; this will be called
624  * with the device spinlock NOT HELD while waiting for the TX FIFO to get
625  * empty; let's expect this won't be a problem */
it87_get_tx_used_slots(struct ite_dev * dev)626 static int it87_get_tx_used_slots(struct ite_dev *dev)
627 {
628 	ite_dbg("%s called", __func__);
629 
630 	return inb(dev->cir_addr + IT87_TSR) & IT87_TXFBC;
631 }
632 
633 /* put a byte to the TX fifo; this should be called with the spinlock held */
it87_put_tx_byte(struct ite_dev * dev,u8 value)634 static void it87_put_tx_byte(struct ite_dev *dev, u8 value)
635 {
636 	outb(value, dev->cir_addr + IT87_DR);
637 }
638 
639 /* idle the receiver so that we won't receive samples until another
640   pulse is detected; this must be called with the device spinlock held */
it87_idle_rx(struct ite_dev * dev)641 static void it87_idle_rx(struct ite_dev *dev)
642 {
643 	ite_dbg("%s called", __func__);
644 
645 	/* disable streaming by clearing RXACT writing it as 1 */
646 	outb(inb(dev->cir_addr + IT87_RCR) | IT87_RXACT,
647 		dev->cir_addr + IT87_RCR);
648 
649 	/* clear the FIFO */
650 	outb(inb(dev->cir_addr + IT87_TCR1) | IT87_FIFOCLR,
651 		dev->cir_addr + IT87_TCR1);
652 }
653 
654 /* disable the receiver; this must be called with the device spinlock held */
it87_disable_rx(struct ite_dev * dev)655 static void it87_disable_rx(struct ite_dev *dev)
656 {
657 	ite_dbg("%s called", __func__);
658 
659 	/* disable the receiver interrupts */
660 	outb(inb(dev->cir_addr + IT87_IER) & ~(IT87_RDAIE | IT87_RFOIE),
661 		dev->cir_addr + IT87_IER);
662 
663 	/* disable the receiver */
664 	outb(inb(dev->cir_addr + IT87_RCR) & ~IT87_RXEN,
665 		dev->cir_addr + IT87_RCR);
666 
667 	/* clear the FIFO and RXACT (actually RXACT should have been cleared
668 	* in the previous outb() call) */
669 	it87_idle_rx(dev);
670 }
671 
672 /* enable the receiver; this must be called with the device spinlock held */
it87_enable_rx(struct ite_dev * dev)673 static void it87_enable_rx(struct ite_dev *dev)
674 {
675 	ite_dbg("%s called", __func__);
676 
677 	/* enable the receiver by setting RXEN */
678 	outb(inb(dev->cir_addr + IT87_RCR) | IT87_RXEN,
679 		dev->cir_addr + IT87_RCR);
680 
681 	/* just prepare it to idle for the next reception */
682 	it87_idle_rx(dev);
683 
684 	/* enable the receiver interrupts and master enable flag */
685 	outb(inb(dev->cir_addr + IT87_IER) | IT87_RDAIE | IT87_RFOIE | IT87_IEC,
686 		dev->cir_addr + IT87_IER);
687 }
688 
689 /* disable the transmitter interrupt; this must be called with the device
690  * spinlock held */
it87_disable_tx_interrupt(struct ite_dev * dev)691 static void it87_disable_tx_interrupt(struct ite_dev *dev)
692 {
693 	ite_dbg("%s called", __func__);
694 
695 	/* disable the transmitter interrupts */
696 	outb(inb(dev->cir_addr + IT87_IER) & ~IT87_TLDLIE,
697 		dev->cir_addr + IT87_IER);
698 }
699 
700 /* enable the transmitter interrupt; this must be called with the device
701  * spinlock held */
it87_enable_tx_interrupt(struct ite_dev * dev)702 static void it87_enable_tx_interrupt(struct ite_dev *dev)
703 {
704 	ite_dbg("%s called", __func__);
705 
706 	/* enable the transmitter interrupts and master enable flag */
707 	outb(inb(dev->cir_addr + IT87_IER) | IT87_TLDLIE | IT87_IEC,
708 		dev->cir_addr + IT87_IER);
709 }
710 
711 /* disable the device; this must be called with the device spinlock held */
it87_disable(struct ite_dev * dev)712 static void it87_disable(struct ite_dev *dev)
713 {
714 	ite_dbg("%s called", __func__);
715 
716 	/* clear out all interrupt enable flags */
717 	outb(inb(dev->cir_addr + IT87_IER) &
718 		~(IT87_IEC | IT87_RFOIE | IT87_RDAIE | IT87_TLDLIE),
719 		dev->cir_addr + IT87_IER);
720 
721 	/* disable the receiver */
722 	it87_disable_rx(dev);
723 
724 	/* erase the FIFO */
725 	outb(IT87_FIFOCLR | inb(dev->cir_addr + IT87_TCR1),
726 		dev->cir_addr + IT87_TCR1);
727 }
728 
729 /* initialize the hardware */
it87_init_hardware(struct ite_dev * dev)730 static void it87_init_hardware(struct ite_dev *dev)
731 {
732 	ite_dbg("%s called", __func__);
733 
734 	/* enable just the baud rate divisor register,
735 	disabling all the interrupts at the same time */
736 	outb((inb(dev->cir_addr + IT87_IER) &
737 		~(IT87_IEC | IT87_RFOIE | IT87_RDAIE | IT87_TLDLIE)) | IT87_BR,
738 		dev->cir_addr + IT87_IER);
739 
740 	/* write out the baud rate divisor */
741 	outb(ITE_BAUDRATE_DIVISOR & 0xff, dev->cir_addr + IT87_BDLR);
742 	outb((ITE_BAUDRATE_DIVISOR >> 8) & 0xff, dev->cir_addr + IT87_BDHR);
743 
744 	/* disable the baud rate divisor register again */
745 	outb(inb(dev->cir_addr + IT87_IER) & ~IT87_BR,
746 		dev->cir_addr + IT87_IER);
747 
748 	/* program the RCR register defaults */
749 	outb(ITE_RXDCR_DEFAULT, dev->cir_addr + IT87_RCR);
750 
751 	/* program the TCR1 register */
752 	outb(IT87_TXMPM_DEFAULT | IT87_TXENDF | IT87_TXRLE
753 		| IT87_FIFOTL_DEFAULT | IT87_FIFOCLR,
754 		dev->cir_addr + IT87_TCR1);
755 
756 	/* program the carrier parameters */
757 	ite_set_carrier_params(dev);
758 }
759 
760 /* IT8512F on ITE8708 HW-specific functions */
761 
762 /* retrieve a bitmask of the current causes for a pending interrupt; this may
763  * be composed of ITE_IRQ_TX_FIFO, ITE_IRQ_RX_FIFO and ITE_IRQ_RX_FIFO_OVERRUN
764  * */
it8708_get_irq_causes(struct ite_dev * dev)765 static int it8708_get_irq_causes(struct ite_dev *dev)
766 {
767 	u8 iflags;
768 	int ret = 0;
769 
770 	ite_dbg("%s called", __func__);
771 
772 	/* read the interrupt flags */
773 	iflags = inb(dev->cir_addr + IT8708_C0IIR);
774 
775 	if (iflags & IT85_TLDLI)
776 		ret |= ITE_IRQ_TX_FIFO;
777 	if (iflags & IT85_RDAI)
778 		ret |= ITE_IRQ_RX_FIFO;
779 	if (iflags & IT85_RFOI)
780 		ret |= ITE_IRQ_RX_FIFO_OVERRUN;
781 
782 	return ret;
783 }
784 
785 /* set the carrier parameters; to be called with the spinlock held */
it8708_set_carrier_params(struct ite_dev * dev,bool high_freq,bool use_demodulator,u8 carrier_freq_bits,u8 allowance_bits,u8 pulse_width_bits)786 static void it8708_set_carrier_params(struct ite_dev *dev, bool high_freq,
787 				      bool use_demodulator,
788 				      u8 carrier_freq_bits, u8 allowance_bits,
789 				      u8 pulse_width_bits)
790 {
791 	u8 val;
792 
793 	ite_dbg("%s called", __func__);
794 
795 	/* program the C0CFR register, with HRAE=1 */
796 	outb(inb(dev->cir_addr + IT8708_BANKSEL) | IT8708_HRAE,
797 		dev->cir_addr + IT8708_BANKSEL);
798 
799 	val = (inb(dev->cir_addr + IT8708_C0CFR)
800 		& ~(IT85_HCFS | IT85_CFQ)) | carrier_freq_bits;
801 
802 	if (high_freq)
803 		val |= IT85_HCFS;
804 
805 	outb(val, dev->cir_addr + IT8708_C0CFR);
806 
807 	outb(inb(dev->cir_addr + IT8708_BANKSEL) & ~IT8708_HRAE,
808 		   dev->cir_addr + IT8708_BANKSEL);
809 
810 	/* program the C0RCR register */
811 	val = inb(dev->cir_addr + IT8708_C0RCR)
812 		& ~(IT85_RXEND | IT85_RXDCR);
813 
814 	if (use_demodulator)
815 		val |= IT85_RXEND;
816 
817 	val |= allowance_bits;
818 
819 	outb(val, dev->cir_addr + IT8708_C0RCR);
820 
821 	/* program the C0TCR register */
822 	val = inb(dev->cir_addr + IT8708_C0TCR) & ~IT85_TXMPW;
823 	val |= pulse_width_bits;
824 	outb(val, dev->cir_addr + IT8708_C0TCR);
825 }
826 
827 /* read up to buf_size bytes from the RX FIFO; to be called with the spinlock
828  * held */
it8708_get_rx_bytes(struct ite_dev * dev,u8 * buf,int buf_size)829 static int it8708_get_rx_bytes(struct ite_dev *dev, u8 * buf, int buf_size)
830 {
831 	int fifo, read = 0;
832 
833 	ite_dbg("%s called", __func__);
834 
835 	/* read how many bytes are still in the FIFO */
836 	fifo = inb(dev->cir_addr + IT8708_C0RFSR) & IT85_RXFBC;
837 
838 	while (fifo > 0 && buf_size > 0) {
839 		*(buf++) = inb(dev->cir_addr + IT8708_C0DR);
840 		fifo--;
841 		read++;
842 		buf_size--;
843 	}
844 
845 	return read;
846 }
847 
848 /* return how many bytes are still in the FIFO; this will be called
849  * with the device spinlock NOT HELD while waiting for the TX FIFO to get
850  * empty; let's expect this won't be a problem */
it8708_get_tx_used_slots(struct ite_dev * dev)851 static int it8708_get_tx_used_slots(struct ite_dev *dev)
852 {
853 	ite_dbg("%s called", __func__);
854 
855 	return inb(dev->cir_addr + IT8708_C0TFSR) & IT85_TXFBC;
856 }
857 
858 /* put a byte to the TX fifo; this should be called with the spinlock held */
it8708_put_tx_byte(struct ite_dev * dev,u8 value)859 static void it8708_put_tx_byte(struct ite_dev *dev, u8 value)
860 {
861 	outb(value, dev->cir_addr + IT8708_C0DR);
862 }
863 
864 /* idle the receiver so that we won't receive samples until another
865   pulse is detected; this must be called with the device spinlock held */
it8708_idle_rx(struct ite_dev * dev)866 static void it8708_idle_rx(struct ite_dev *dev)
867 {
868 	ite_dbg("%s called", __func__);
869 
870 	/* disable streaming by clearing RXACT writing it as 1 */
871 	outb(inb(dev->cir_addr + IT8708_C0RCR) | IT85_RXACT,
872 		dev->cir_addr + IT8708_C0RCR);
873 
874 	/* clear the FIFO */
875 	outb(inb(dev->cir_addr + IT8708_C0MSTCR) | IT85_FIFOCLR,
876 		dev->cir_addr + IT8708_C0MSTCR);
877 }
878 
879 /* disable the receiver; this must be called with the device spinlock held */
it8708_disable_rx(struct ite_dev * dev)880 static void it8708_disable_rx(struct ite_dev *dev)
881 {
882 	ite_dbg("%s called", __func__);
883 
884 	/* disable the receiver interrupts */
885 	outb(inb(dev->cir_addr + IT8708_C0IER) &
886 		~(IT85_RDAIE | IT85_RFOIE),
887 		dev->cir_addr + IT8708_C0IER);
888 
889 	/* disable the receiver */
890 	outb(inb(dev->cir_addr + IT8708_C0RCR) & ~IT85_RXEN,
891 		dev->cir_addr + IT8708_C0RCR);
892 
893 	/* clear the FIFO and RXACT (actually RXACT should have been cleared
894 	 * in the previous outb() call) */
895 	it8708_idle_rx(dev);
896 }
897 
898 /* enable the receiver; this must be called with the device spinlock held */
it8708_enable_rx(struct ite_dev * dev)899 static void it8708_enable_rx(struct ite_dev *dev)
900 {
901 	ite_dbg("%s called", __func__);
902 
903 	/* enable the receiver by setting RXEN */
904 	outb(inb(dev->cir_addr + IT8708_C0RCR) | IT85_RXEN,
905 		dev->cir_addr + IT8708_C0RCR);
906 
907 	/* just prepare it to idle for the next reception */
908 	it8708_idle_rx(dev);
909 
910 	/* enable the receiver interrupts and master enable flag */
911 	outb(inb(dev->cir_addr + IT8708_C0IER)
912 		|IT85_RDAIE | IT85_RFOIE | IT85_IEC,
913 		dev->cir_addr + IT8708_C0IER);
914 }
915 
916 /* disable the transmitter interrupt; this must be called with the device
917  * spinlock held */
it8708_disable_tx_interrupt(struct ite_dev * dev)918 static void it8708_disable_tx_interrupt(struct ite_dev *dev)
919 {
920 	ite_dbg("%s called", __func__);
921 
922 	/* disable the transmitter interrupts */
923 	outb(inb(dev->cir_addr + IT8708_C0IER) & ~IT85_TLDLIE,
924 		dev->cir_addr + IT8708_C0IER);
925 }
926 
927 /* enable the transmitter interrupt; this must be called with the device
928  * spinlock held */
it8708_enable_tx_interrupt(struct ite_dev * dev)929 static void it8708_enable_tx_interrupt(struct ite_dev *dev)
930 {
931 	ite_dbg("%s called", __func__);
932 
933 	/* enable the transmitter interrupts and master enable flag */
934 	outb(inb(dev->cir_addr + IT8708_C0IER)
935 		|IT85_TLDLIE | IT85_IEC,
936 		dev->cir_addr + IT8708_C0IER);
937 }
938 
939 /* disable the device; this must be called with the device spinlock held */
it8708_disable(struct ite_dev * dev)940 static void it8708_disable(struct ite_dev *dev)
941 {
942 	ite_dbg("%s called", __func__);
943 
944 	/* clear out all interrupt enable flags */
945 	outb(inb(dev->cir_addr + IT8708_C0IER) &
946 		~(IT85_IEC | IT85_RFOIE | IT85_RDAIE | IT85_TLDLIE),
947 		dev->cir_addr + IT8708_C0IER);
948 
949 	/* disable the receiver */
950 	it8708_disable_rx(dev);
951 
952 	/* erase the FIFO */
953 	outb(IT85_FIFOCLR | inb(dev->cir_addr + IT8708_C0MSTCR),
954 		dev->cir_addr + IT8708_C0MSTCR);
955 }
956 
957 /* initialize the hardware */
it8708_init_hardware(struct ite_dev * dev)958 static void it8708_init_hardware(struct ite_dev *dev)
959 {
960 	ite_dbg("%s called", __func__);
961 
962 	/* disable all the interrupts */
963 	outb(inb(dev->cir_addr + IT8708_C0IER) &
964 		~(IT85_IEC | IT85_RFOIE | IT85_RDAIE | IT85_TLDLIE),
965 		dev->cir_addr + IT8708_C0IER);
966 
967 	/* program the baud rate divisor */
968 	outb(inb(dev->cir_addr + IT8708_BANKSEL) | IT8708_HRAE,
969 		dev->cir_addr + IT8708_BANKSEL);
970 
971 	outb(ITE_BAUDRATE_DIVISOR & 0xff, dev->cir_addr + IT8708_C0BDLR);
972 	outb((ITE_BAUDRATE_DIVISOR >> 8) & 0xff,
973 		   dev->cir_addr + IT8708_C0BDHR);
974 
975 	outb(inb(dev->cir_addr + IT8708_BANKSEL) & ~IT8708_HRAE,
976 		   dev->cir_addr + IT8708_BANKSEL);
977 
978 	/* program the C0MSTCR register defaults */
979 	outb((inb(dev->cir_addr + IT8708_C0MSTCR) &
980 			~(IT85_ILSEL | IT85_ILE | IT85_FIFOTL |
981 			  IT85_FIFOCLR | IT85_RESET)) |
982 		       IT85_FIFOTL_DEFAULT,
983 		       dev->cir_addr + IT8708_C0MSTCR);
984 
985 	/* program the C0RCR register defaults */
986 	outb((inb(dev->cir_addr + IT8708_C0RCR) &
987 			~(IT85_RXEN | IT85_RDWOS | IT85_RXEND |
988 			  IT85_RXACT | IT85_RXDCR)) |
989 		       ITE_RXDCR_DEFAULT,
990 		       dev->cir_addr + IT8708_C0RCR);
991 
992 	/* program the C0TCR register defaults */
993 	outb((inb(dev->cir_addr + IT8708_C0TCR) &
994 			~(IT85_TXMPM | IT85_TXMPW))
995 		       |IT85_TXRLE | IT85_TXENDF |
996 		       IT85_TXMPM_DEFAULT | IT85_TXMPW_DEFAULT,
997 		       dev->cir_addr + IT8708_C0TCR);
998 
999 	/* program the carrier parameters */
1000 	ite_set_carrier_params(dev);
1001 }
1002 
1003 /* IT8512F on ITE8709 HW-specific functions */
1004 
1005 /* read a byte from the SRAM module */
it8709_rm(struct ite_dev * dev,int index)1006 static inline u8 it8709_rm(struct ite_dev *dev, int index)
1007 {
1008 	outb(index, dev->cir_addr + IT8709_RAM_IDX);
1009 	return inb(dev->cir_addr + IT8709_RAM_VAL);
1010 }
1011 
1012 /* write a byte to the SRAM module */
it8709_wm(struct ite_dev * dev,u8 val,int index)1013 static inline void it8709_wm(struct ite_dev *dev, u8 val, int index)
1014 {
1015 	outb(index, dev->cir_addr + IT8709_RAM_IDX);
1016 	outb(val, dev->cir_addr + IT8709_RAM_VAL);
1017 }
1018 
it8709_wait(struct ite_dev * dev)1019 static void it8709_wait(struct ite_dev *dev)
1020 {
1021 	int i = 0;
1022 	/*
1023 	 * loop until device tells it's ready to continue
1024 	 * iterations count is usually ~750 but can sometimes achieve 13000
1025 	 */
1026 	for (i = 0; i < 15000; i++) {
1027 		udelay(2);
1028 		if (it8709_rm(dev, IT8709_MODE) == IT8709_IDLE)
1029 			break;
1030 	}
1031 }
1032 
1033 /* read the value of a CIR register */
it8709_rr(struct ite_dev * dev,int index)1034 static u8 it8709_rr(struct ite_dev *dev, int index)
1035 {
1036 	/* just wait in case the previous access was a write */
1037 	it8709_wait(dev);
1038 	it8709_wm(dev, index, IT8709_REG_IDX);
1039 	it8709_wm(dev, IT8709_READ, IT8709_MODE);
1040 
1041 	/* wait for the read data to be available */
1042 	it8709_wait(dev);
1043 
1044 	/* return the read value */
1045 	return it8709_rm(dev, IT8709_REG_VAL);
1046 }
1047 
1048 /* write the value of a CIR register */
it8709_wr(struct ite_dev * dev,u8 val,int index)1049 static void it8709_wr(struct ite_dev *dev, u8 val, int index)
1050 {
1051 	/* we wait before writing, and not afterwards, since this allows us to
1052 	 * pipeline the host CPU with the microcontroller */
1053 	it8709_wait(dev);
1054 	it8709_wm(dev, val, IT8709_REG_VAL);
1055 	it8709_wm(dev, index, IT8709_REG_IDX);
1056 	it8709_wm(dev, IT8709_WRITE, IT8709_MODE);
1057 }
1058 
1059 /* retrieve a bitmask of the current causes for a pending interrupt; this may
1060  * be composed of ITE_IRQ_TX_FIFO, ITE_IRQ_RX_FIFO and ITE_IRQ_RX_FIFO_OVERRUN
1061  * */
it8709_get_irq_causes(struct ite_dev * dev)1062 static int it8709_get_irq_causes(struct ite_dev *dev)
1063 {
1064 	u8 iflags;
1065 	int ret = 0;
1066 
1067 	ite_dbg("%s called", __func__);
1068 
1069 	/* read the interrupt flags */
1070 	iflags = it8709_rm(dev, IT8709_IIR);
1071 
1072 	if (iflags & IT85_TLDLI)
1073 		ret |= ITE_IRQ_TX_FIFO;
1074 	if (iflags & IT85_RDAI)
1075 		ret |= ITE_IRQ_RX_FIFO;
1076 	if (iflags & IT85_RFOI)
1077 		ret |= ITE_IRQ_RX_FIFO_OVERRUN;
1078 
1079 	return ret;
1080 }
1081 
1082 /* set the carrier parameters; to be called with the spinlock held */
it8709_set_carrier_params(struct ite_dev * dev,bool high_freq,bool use_demodulator,u8 carrier_freq_bits,u8 allowance_bits,u8 pulse_width_bits)1083 static void it8709_set_carrier_params(struct ite_dev *dev, bool high_freq,
1084 				      bool use_demodulator,
1085 				      u8 carrier_freq_bits, u8 allowance_bits,
1086 				      u8 pulse_width_bits)
1087 {
1088 	u8 val;
1089 
1090 	ite_dbg("%s called", __func__);
1091 
1092 	val = (it8709_rr(dev, IT85_C0CFR)
1093 		     &~(IT85_HCFS | IT85_CFQ)) |
1094 	    carrier_freq_bits;
1095 
1096 	if (high_freq)
1097 		val |= IT85_HCFS;
1098 
1099 	it8709_wr(dev, val, IT85_C0CFR);
1100 
1101 	/* program the C0RCR register */
1102 	val = it8709_rr(dev, IT85_C0RCR)
1103 		& ~(IT85_RXEND | IT85_RXDCR);
1104 
1105 	if (use_demodulator)
1106 		val |= IT85_RXEND;
1107 
1108 	val |= allowance_bits;
1109 
1110 	it8709_wr(dev, val, IT85_C0RCR);
1111 
1112 	/* program the C0TCR register */
1113 	val = it8709_rr(dev, IT85_C0TCR) & ~IT85_TXMPW;
1114 	val |= pulse_width_bits;
1115 	it8709_wr(dev, val, IT85_C0TCR);
1116 }
1117 
1118 /* read up to buf_size bytes from the RX FIFO; to be called with the spinlock
1119  * held */
it8709_get_rx_bytes(struct ite_dev * dev,u8 * buf,int buf_size)1120 static int it8709_get_rx_bytes(struct ite_dev *dev, u8 * buf, int buf_size)
1121 {
1122 	int fifo, read = 0;
1123 
1124 	ite_dbg("%s called", __func__);
1125 
1126 	/* read how many bytes are still in the FIFO */
1127 	fifo = it8709_rm(dev, IT8709_RFSR) & IT85_RXFBC;
1128 
1129 	while (fifo > 0 && buf_size > 0) {
1130 		*(buf++) = it8709_rm(dev, IT8709_FIFO + read);
1131 		fifo--;
1132 		read++;
1133 		buf_size--;
1134 	}
1135 
1136 	/* 'clear' the FIFO by setting the writing index to 0; this is
1137 	 * completely bound to be racy, but we can't help it, since it's a
1138 	 * limitation of the protocol */
1139 	it8709_wm(dev, 0, IT8709_RFSR);
1140 
1141 	return read;
1142 }
1143 
1144 /* return how many bytes are still in the FIFO; this will be called
1145  * with the device spinlock NOT HELD while waiting for the TX FIFO to get
1146  * empty; let's expect this won't be a problem */
it8709_get_tx_used_slots(struct ite_dev * dev)1147 static int it8709_get_tx_used_slots(struct ite_dev *dev)
1148 {
1149 	ite_dbg("%s called", __func__);
1150 
1151 	return it8709_rr(dev, IT85_C0TFSR) & IT85_TXFBC;
1152 }
1153 
1154 /* put a byte to the TX fifo; this should be called with the spinlock held */
it8709_put_tx_byte(struct ite_dev * dev,u8 value)1155 static void it8709_put_tx_byte(struct ite_dev *dev, u8 value)
1156 {
1157 	it8709_wr(dev, value, IT85_C0DR);
1158 }
1159 
1160 /* idle the receiver so that we won't receive samples until another
1161   pulse is detected; this must be called with the device spinlock held */
it8709_idle_rx(struct ite_dev * dev)1162 static void it8709_idle_rx(struct ite_dev *dev)
1163 {
1164 	ite_dbg("%s called", __func__);
1165 
1166 	/* disable streaming by clearing RXACT writing it as 1 */
1167 	it8709_wr(dev, it8709_rr(dev, IT85_C0RCR) | IT85_RXACT,
1168 			    IT85_C0RCR);
1169 
1170 	/* clear the FIFO */
1171 	it8709_wr(dev, it8709_rr(dev, IT85_C0MSTCR) | IT85_FIFOCLR,
1172 			    IT85_C0MSTCR);
1173 }
1174 
1175 /* disable the receiver; this must be called with the device spinlock held */
it8709_disable_rx(struct ite_dev * dev)1176 static void it8709_disable_rx(struct ite_dev *dev)
1177 {
1178 	ite_dbg("%s called", __func__);
1179 
1180 	/* disable the receiver interrupts */
1181 	it8709_wr(dev, it8709_rr(dev, IT85_C0IER) &
1182 			    ~(IT85_RDAIE | IT85_RFOIE),
1183 			    IT85_C0IER);
1184 
1185 	/* disable the receiver */
1186 	it8709_wr(dev, it8709_rr(dev, IT85_C0RCR) & ~IT85_RXEN,
1187 			    IT85_C0RCR);
1188 
1189 	/* clear the FIFO and RXACT (actually RXACT should have been cleared
1190 	 * in the previous it8709_wr(dev, ) call) */
1191 	it8709_idle_rx(dev);
1192 }
1193 
1194 /* enable the receiver; this must be called with the device spinlock held */
it8709_enable_rx(struct ite_dev * dev)1195 static void it8709_enable_rx(struct ite_dev *dev)
1196 {
1197 	ite_dbg("%s called", __func__);
1198 
1199 	/* enable the receiver by setting RXEN */
1200 	it8709_wr(dev, it8709_rr(dev, IT85_C0RCR) | IT85_RXEN,
1201 			    IT85_C0RCR);
1202 
1203 	/* just prepare it to idle for the next reception */
1204 	it8709_idle_rx(dev);
1205 
1206 	/* enable the receiver interrupts and master enable flag */
1207 	it8709_wr(dev, it8709_rr(dev, IT85_C0IER)
1208 			    |IT85_RDAIE | IT85_RFOIE | IT85_IEC,
1209 			    IT85_C0IER);
1210 }
1211 
1212 /* disable the transmitter interrupt; this must be called with the device
1213  * spinlock held */
it8709_disable_tx_interrupt(struct ite_dev * dev)1214 static void it8709_disable_tx_interrupt(struct ite_dev *dev)
1215 {
1216 	ite_dbg("%s called", __func__);
1217 
1218 	/* disable the transmitter interrupts */
1219 	it8709_wr(dev, it8709_rr(dev, IT85_C0IER) & ~IT85_TLDLIE,
1220 			    IT85_C0IER);
1221 }
1222 
1223 /* enable the transmitter interrupt; this must be called with the device
1224  * spinlock held */
it8709_enable_tx_interrupt(struct ite_dev * dev)1225 static void it8709_enable_tx_interrupt(struct ite_dev *dev)
1226 {
1227 	ite_dbg("%s called", __func__);
1228 
1229 	/* enable the transmitter interrupts and master enable flag */
1230 	it8709_wr(dev, it8709_rr(dev, IT85_C0IER)
1231 			    |IT85_TLDLIE | IT85_IEC,
1232 			    IT85_C0IER);
1233 }
1234 
1235 /* disable the device; this must be called with the device spinlock held */
it8709_disable(struct ite_dev * dev)1236 static void it8709_disable(struct ite_dev *dev)
1237 {
1238 	ite_dbg("%s called", __func__);
1239 
1240 	/* clear out all interrupt enable flags */
1241 	it8709_wr(dev, it8709_rr(dev, IT85_C0IER) &
1242 			~(IT85_IEC | IT85_RFOIE | IT85_RDAIE | IT85_TLDLIE),
1243 		  IT85_C0IER);
1244 
1245 	/* disable the receiver */
1246 	it8709_disable_rx(dev);
1247 
1248 	/* erase the FIFO */
1249 	it8709_wr(dev, IT85_FIFOCLR | it8709_rr(dev, IT85_C0MSTCR),
1250 			    IT85_C0MSTCR);
1251 }
1252 
1253 /* initialize the hardware */
it8709_init_hardware(struct ite_dev * dev)1254 static void it8709_init_hardware(struct ite_dev *dev)
1255 {
1256 	ite_dbg("%s called", __func__);
1257 
1258 	/* disable all the interrupts */
1259 	it8709_wr(dev, it8709_rr(dev, IT85_C0IER) &
1260 			~(IT85_IEC | IT85_RFOIE | IT85_RDAIE | IT85_TLDLIE),
1261 		  IT85_C0IER);
1262 
1263 	/* program the baud rate divisor */
1264 	it8709_wr(dev, ITE_BAUDRATE_DIVISOR & 0xff, IT85_C0BDLR);
1265 	it8709_wr(dev, (ITE_BAUDRATE_DIVISOR >> 8) & 0xff,
1266 			IT85_C0BDHR);
1267 
1268 	/* program the C0MSTCR register defaults */
1269 	it8709_wr(dev, (it8709_rr(dev, IT85_C0MSTCR) &
1270 			~(IT85_ILSEL | IT85_ILE | IT85_FIFOTL
1271 			  | IT85_FIFOCLR | IT85_RESET)) | IT85_FIFOTL_DEFAULT,
1272 		  IT85_C0MSTCR);
1273 
1274 	/* program the C0RCR register defaults */
1275 	it8709_wr(dev, (it8709_rr(dev, IT85_C0RCR) &
1276 			~(IT85_RXEN | IT85_RDWOS | IT85_RXEND | IT85_RXACT
1277 			  | IT85_RXDCR)) | ITE_RXDCR_DEFAULT,
1278 		  IT85_C0RCR);
1279 
1280 	/* program the C0TCR register defaults */
1281 	it8709_wr(dev, (it8709_rr(dev, IT85_C0TCR) & ~(IT85_TXMPM | IT85_TXMPW))
1282 			| IT85_TXRLE | IT85_TXENDF | IT85_TXMPM_DEFAULT
1283 			| IT85_TXMPW_DEFAULT,
1284 		  IT85_C0TCR);
1285 
1286 	/* program the carrier parameters */
1287 	ite_set_carrier_params(dev);
1288 }
1289 
1290 
1291 /* generic hardware setup/teardown code */
1292 
1293 /* activate the device for use */
ite_open(struct rc_dev * rcdev)1294 static int ite_open(struct rc_dev *rcdev)
1295 {
1296 	struct ite_dev *dev = rcdev->priv;
1297 	unsigned long flags;
1298 
1299 	ite_dbg("%s called", __func__);
1300 
1301 	spin_lock_irqsave(&dev->lock, flags);
1302 	dev->in_use = true;
1303 
1304 	/* enable the receiver */
1305 	dev->params.enable_rx(dev);
1306 
1307 	spin_unlock_irqrestore(&dev->lock, flags);
1308 
1309 	return 0;
1310 }
1311 
1312 /* deactivate the device for use */
ite_close(struct rc_dev * rcdev)1313 static void ite_close(struct rc_dev *rcdev)
1314 {
1315 	struct ite_dev *dev = rcdev->priv;
1316 	unsigned long flags;
1317 
1318 	ite_dbg("%s called", __func__);
1319 
1320 	spin_lock_irqsave(&dev->lock, flags);
1321 	dev->in_use = false;
1322 
1323 	/* wait for any transmission to end */
1324 	spin_unlock_irqrestore(&dev->lock, flags);
1325 	wait_event_interruptible(dev->tx_ended, !dev->transmitting);
1326 	spin_lock_irqsave(&dev->lock, flags);
1327 
1328 	dev->params.disable(dev);
1329 
1330 	spin_unlock_irqrestore(&dev->lock, flags);
1331 }
1332 
1333 /* supported models and their parameters */
1334 static const struct ite_dev_params ite_dev_descs[] = {
1335 	{	/* 0: ITE8704 */
1336 	       .model = "ITE8704 CIR transceiver",
1337 	       .io_region_size = IT87_IOREG_LENGTH,
1338 	       .io_rsrc_no = 0,
1339 	       .hw_tx_capable = true,
1340 	       .sample_period = (u32) (1000000000ULL / 115200),
1341 	       .tx_carrier_freq = 38000,
1342 	       .tx_duty_cycle = 33,
1343 	       .rx_low_carrier_freq = 0,
1344 	       .rx_high_carrier_freq = 0,
1345 
1346 		/* operations */
1347 	       .get_irq_causes = it87_get_irq_causes,
1348 	       .enable_rx = it87_enable_rx,
1349 	       .idle_rx = it87_idle_rx,
1350 	       .disable_rx = it87_idle_rx,
1351 	       .get_rx_bytes = it87_get_rx_bytes,
1352 	       .enable_tx_interrupt = it87_enable_tx_interrupt,
1353 	       .disable_tx_interrupt = it87_disable_tx_interrupt,
1354 	       .get_tx_used_slots = it87_get_tx_used_slots,
1355 	       .put_tx_byte = it87_put_tx_byte,
1356 	       .disable = it87_disable,
1357 	       .init_hardware = it87_init_hardware,
1358 	       .set_carrier_params = it87_set_carrier_params,
1359 	       },
1360 	{	/* 1: ITE8713 */
1361 	       .model = "ITE8713 CIR transceiver",
1362 	       .io_region_size = IT87_IOREG_LENGTH,
1363 	       .io_rsrc_no = 0,
1364 	       .hw_tx_capable = true,
1365 	       .sample_period = (u32) (1000000000ULL / 115200),
1366 	       .tx_carrier_freq = 38000,
1367 	       .tx_duty_cycle = 33,
1368 	       .rx_low_carrier_freq = 0,
1369 	       .rx_high_carrier_freq = 0,
1370 
1371 		/* operations */
1372 	       .get_irq_causes = it87_get_irq_causes,
1373 	       .enable_rx = it87_enable_rx,
1374 	       .idle_rx = it87_idle_rx,
1375 	       .disable_rx = it87_idle_rx,
1376 	       .get_rx_bytes = it87_get_rx_bytes,
1377 	       .enable_tx_interrupt = it87_enable_tx_interrupt,
1378 	       .disable_tx_interrupt = it87_disable_tx_interrupt,
1379 	       .get_tx_used_slots = it87_get_tx_used_slots,
1380 	       .put_tx_byte = it87_put_tx_byte,
1381 	       .disable = it87_disable,
1382 	       .init_hardware = it87_init_hardware,
1383 	       .set_carrier_params = it87_set_carrier_params,
1384 	       },
1385 	{	/* 2: ITE8708 */
1386 	       .model = "ITE8708 CIR transceiver",
1387 	       .io_region_size = IT8708_IOREG_LENGTH,
1388 	       .io_rsrc_no = 0,
1389 	       .hw_tx_capable = true,
1390 	       .sample_period = (u32) (1000000000ULL / 115200),
1391 	       .tx_carrier_freq = 38000,
1392 	       .tx_duty_cycle = 33,
1393 	       .rx_low_carrier_freq = 0,
1394 	       .rx_high_carrier_freq = 0,
1395 
1396 		/* operations */
1397 	       .get_irq_causes = it8708_get_irq_causes,
1398 	       .enable_rx = it8708_enable_rx,
1399 	       .idle_rx = it8708_idle_rx,
1400 	       .disable_rx = it8708_idle_rx,
1401 	       .get_rx_bytes = it8708_get_rx_bytes,
1402 	       .enable_tx_interrupt = it8708_enable_tx_interrupt,
1403 	       .disable_tx_interrupt =
1404 	       it8708_disable_tx_interrupt,
1405 	       .get_tx_used_slots = it8708_get_tx_used_slots,
1406 	       .put_tx_byte = it8708_put_tx_byte,
1407 	       .disable = it8708_disable,
1408 	       .init_hardware = it8708_init_hardware,
1409 	       .set_carrier_params = it8708_set_carrier_params,
1410 	       },
1411 	{	/* 3: ITE8709 */
1412 	       .model = "ITE8709 CIR transceiver",
1413 	       .io_region_size = IT8709_IOREG_LENGTH,
1414 	       .io_rsrc_no = 2,
1415 	       .hw_tx_capable = true,
1416 	       .sample_period = (u32) (1000000000ULL / 115200),
1417 	       .tx_carrier_freq = 38000,
1418 	       .tx_duty_cycle = 33,
1419 	       .rx_low_carrier_freq = 0,
1420 	       .rx_high_carrier_freq = 0,
1421 
1422 		/* operations */
1423 	       .get_irq_causes = it8709_get_irq_causes,
1424 	       .enable_rx = it8709_enable_rx,
1425 	       .idle_rx = it8709_idle_rx,
1426 	       .disable_rx = it8709_idle_rx,
1427 	       .get_rx_bytes = it8709_get_rx_bytes,
1428 	       .enable_tx_interrupt = it8709_enable_tx_interrupt,
1429 	       .disable_tx_interrupt =
1430 	       it8709_disable_tx_interrupt,
1431 	       .get_tx_used_slots = it8709_get_tx_used_slots,
1432 	       .put_tx_byte = it8709_put_tx_byte,
1433 	       .disable = it8709_disable,
1434 	       .init_hardware = it8709_init_hardware,
1435 	       .set_carrier_params = it8709_set_carrier_params,
1436 	       },
1437 };
1438 
1439 static const struct pnp_device_id ite_ids[] = {
1440 	{"ITE8704", 0},		/* Default model */
1441 	{"ITE8713", 1},		/* CIR found in EEEBox 1501U */
1442 	{"ITE8708", 2},		/* Bridged IT8512 */
1443 	{"ITE8709", 3},		/* SRAM-Bridged IT8512 */
1444 	{"", 0},
1445 };
1446 
1447 /* allocate memory, probe hardware, and initialize everything */
ite_probe(struct pnp_dev * pdev,const struct pnp_device_id * dev_id)1448 static int ite_probe(struct pnp_dev *pdev, const struct pnp_device_id
1449 		     *dev_id)
1450 {
1451 	const struct ite_dev_params *dev_desc = NULL;
1452 	struct ite_dev *itdev = NULL;
1453 	struct rc_dev *rdev = NULL;
1454 	int ret = -ENOMEM;
1455 	int model_no;
1456 	int io_rsrc_no;
1457 
1458 	ite_dbg("%s called", __func__);
1459 
1460 	itdev = kzalloc(sizeof(struct ite_dev), GFP_KERNEL);
1461 	if (!itdev)
1462 		return ret;
1463 
1464 	/* input device for IR remote (and tx) */
1465 	rdev = rc_allocate_device(RC_DRIVER_IR_RAW);
1466 	if (!rdev)
1467 		goto exit_free_dev_rdev;
1468 	itdev->rdev = rdev;
1469 
1470 	ret = -ENODEV;
1471 
1472 	/* get the model number */
1473 	model_no = (int)dev_id->driver_data;
1474 	ite_pr(KERN_NOTICE, "Auto-detected model: %s\n",
1475 		ite_dev_descs[model_no].model);
1476 
1477 	if (model_number >= 0 && model_number < ARRAY_SIZE(ite_dev_descs)) {
1478 		model_no = model_number;
1479 		ite_pr(KERN_NOTICE, "The model has been fixed by a module parameter.");
1480 	}
1481 
1482 	ite_pr(KERN_NOTICE, "Using model: %s\n", ite_dev_descs[model_no].model);
1483 
1484 	/* get the description for the device */
1485 	dev_desc = &ite_dev_descs[model_no];
1486 	io_rsrc_no = dev_desc->io_rsrc_no;
1487 
1488 	/* validate pnp resources */
1489 	if (!pnp_port_valid(pdev, io_rsrc_no) ||
1490 	    pnp_port_len(pdev, io_rsrc_no) != dev_desc->io_region_size) {
1491 		dev_err(&pdev->dev, "IR PNP Port not valid!\n");
1492 		goto exit_free_dev_rdev;
1493 	}
1494 
1495 	if (!pnp_irq_valid(pdev, 0)) {
1496 		dev_err(&pdev->dev, "PNP IRQ not valid!\n");
1497 		goto exit_free_dev_rdev;
1498 	}
1499 
1500 	/* store resource values */
1501 	itdev->cir_addr = pnp_port_start(pdev, io_rsrc_no);
1502 	itdev->cir_irq = pnp_irq(pdev, 0);
1503 
1504 	/* initialize spinlocks */
1505 	spin_lock_init(&itdev->lock);
1506 
1507 	/* set driver data into the pnp device */
1508 	pnp_set_drvdata(pdev, itdev);
1509 	itdev->pdev = pdev;
1510 
1511 	/* initialize waitqueues for transmission */
1512 	init_waitqueue_head(&itdev->tx_queue);
1513 	init_waitqueue_head(&itdev->tx_ended);
1514 
1515 	/* copy model-specific parameters */
1516 	itdev->params = *dev_desc;
1517 
1518 	/* apply any overrides */
1519 	if (sample_period > 0)
1520 		itdev->params.sample_period = sample_period;
1521 
1522 	if (tx_carrier_freq > 0)
1523 		itdev->params.tx_carrier_freq = tx_carrier_freq;
1524 
1525 	if (tx_duty_cycle > 0 && tx_duty_cycle <= 100)
1526 		itdev->params.tx_duty_cycle = tx_duty_cycle;
1527 
1528 	if (rx_low_carrier_freq > 0)
1529 		itdev->params.rx_low_carrier_freq = rx_low_carrier_freq;
1530 
1531 	if (rx_high_carrier_freq > 0)
1532 		itdev->params.rx_high_carrier_freq = rx_high_carrier_freq;
1533 
1534 	/* print out parameters */
1535 	ite_pr(KERN_NOTICE, "TX-capable: %d\n", (int)
1536 			 itdev->params.hw_tx_capable);
1537 	ite_pr(KERN_NOTICE, "Sample period (ns): %ld\n", (long)
1538 		     itdev->params.sample_period);
1539 	ite_pr(KERN_NOTICE, "TX carrier frequency (Hz): %d\n", (int)
1540 		     itdev->params.tx_carrier_freq);
1541 	ite_pr(KERN_NOTICE, "TX duty cycle (%%): %d\n", (int)
1542 		     itdev->params.tx_duty_cycle);
1543 	ite_pr(KERN_NOTICE, "RX low carrier frequency (Hz): %d\n", (int)
1544 		     itdev->params.rx_low_carrier_freq);
1545 	ite_pr(KERN_NOTICE, "RX high carrier frequency (Hz): %d\n", (int)
1546 		     itdev->params.rx_high_carrier_freq);
1547 
1548 	/* set up hardware initial state */
1549 	itdev->params.init_hardware(itdev);
1550 
1551 	/* set up ir-core props */
1552 	rdev->priv = itdev;
1553 	rdev->allowed_protocols = RC_PROTO_BIT_ALL_IR_DECODER;
1554 	rdev->open = ite_open;
1555 	rdev->close = ite_close;
1556 	rdev->s_idle = ite_s_idle;
1557 	rdev->s_rx_carrier_range = ite_set_rx_carrier_range;
1558 	/* FIFO threshold is 17 bytes, so 17 * 8 samples minimum */
1559 	rdev->min_timeout = 17 * 8 * ITE_BAUDRATE_DIVISOR *
1560 			    itdev->params.sample_period / 1000;
1561 	rdev->timeout = IR_DEFAULT_TIMEOUT;
1562 	rdev->max_timeout = 10 * IR_DEFAULT_TIMEOUT;
1563 	rdev->rx_resolution = ITE_BAUDRATE_DIVISOR *
1564 				itdev->params.sample_period / 1000;
1565 	rdev->tx_resolution = ITE_BAUDRATE_DIVISOR *
1566 				itdev->params.sample_period / 1000;
1567 
1568 	/* set up transmitter related values if needed */
1569 	if (itdev->params.hw_tx_capable) {
1570 		rdev->tx_ir = ite_tx_ir;
1571 		rdev->s_tx_carrier = ite_set_tx_carrier;
1572 		rdev->s_tx_duty_cycle = ite_set_tx_duty_cycle;
1573 	}
1574 
1575 	rdev->device_name = dev_desc->model;
1576 	rdev->input_id.bustype = BUS_HOST;
1577 	rdev->input_id.vendor = PCI_VENDOR_ID_ITE;
1578 	rdev->input_id.product = 0;
1579 	rdev->input_id.version = 0;
1580 	rdev->driver_name = ITE_DRIVER_NAME;
1581 	rdev->map_name = RC_MAP_RC6_MCE;
1582 
1583 	ret = rc_register_device(rdev);
1584 	if (ret)
1585 		goto exit_free_dev_rdev;
1586 
1587 	ret = -EBUSY;
1588 	/* now claim resources */
1589 	if (!request_region(itdev->cir_addr,
1590 				dev_desc->io_region_size, ITE_DRIVER_NAME))
1591 		goto exit_unregister_device;
1592 
1593 	if (request_irq(itdev->cir_irq, ite_cir_isr, IRQF_SHARED,
1594 			ITE_DRIVER_NAME, (void *)itdev))
1595 		goto exit_release_cir_addr;
1596 
1597 	ite_pr(KERN_NOTICE, "driver has been successfully loaded\n");
1598 
1599 	return 0;
1600 
1601 exit_release_cir_addr:
1602 	release_region(itdev->cir_addr, itdev->params.io_region_size);
1603 exit_unregister_device:
1604 	rc_unregister_device(rdev);
1605 	rdev = NULL;
1606 exit_free_dev_rdev:
1607 	rc_free_device(rdev);
1608 	kfree(itdev);
1609 
1610 	return ret;
1611 }
1612 
ite_remove(struct pnp_dev * pdev)1613 static void ite_remove(struct pnp_dev *pdev)
1614 {
1615 	struct ite_dev *dev = pnp_get_drvdata(pdev);
1616 	unsigned long flags;
1617 
1618 	ite_dbg("%s called", __func__);
1619 
1620 	spin_lock_irqsave(&dev->lock, flags);
1621 
1622 	/* disable hardware */
1623 	dev->params.disable(dev);
1624 
1625 	spin_unlock_irqrestore(&dev->lock, flags);
1626 
1627 	/* free resources */
1628 	free_irq(dev->cir_irq, dev);
1629 	release_region(dev->cir_addr, dev->params.io_region_size);
1630 
1631 	rc_unregister_device(dev->rdev);
1632 
1633 	kfree(dev);
1634 }
1635 
ite_suspend(struct pnp_dev * pdev,pm_message_t state)1636 static int ite_suspend(struct pnp_dev *pdev, pm_message_t state)
1637 {
1638 	struct ite_dev *dev = pnp_get_drvdata(pdev);
1639 	unsigned long flags;
1640 
1641 	ite_dbg("%s called", __func__);
1642 
1643 	/* wait for any transmission to end */
1644 	wait_event_interruptible(dev->tx_ended, !dev->transmitting);
1645 
1646 	spin_lock_irqsave(&dev->lock, flags);
1647 
1648 	/* disable all interrupts */
1649 	dev->params.disable(dev);
1650 
1651 	spin_unlock_irqrestore(&dev->lock, flags);
1652 
1653 	return 0;
1654 }
1655 
ite_resume(struct pnp_dev * pdev)1656 static int ite_resume(struct pnp_dev *pdev)
1657 {
1658 	struct ite_dev *dev = pnp_get_drvdata(pdev);
1659 	unsigned long flags;
1660 
1661 	ite_dbg("%s called", __func__);
1662 
1663 	spin_lock_irqsave(&dev->lock, flags);
1664 
1665 	/* reinitialize hardware config registers */
1666 	dev->params.init_hardware(dev);
1667 	/* enable the receiver */
1668 	dev->params.enable_rx(dev);
1669 
1670 	spin_unlock_irqrestore(&dev->lock, flags);
1671 
1672 	return 0;
1673 }
1674 
ite_shutdown(struct pnp_dev * pdev)1675 static void ite_shutdown(struct pnp_dev *pdev)
1676 {
1677 	struct ite_dev *dev = pnp_get_drvdata(pdev);
1678 	unsigned long flags;
1679 
1680 	ite_dbg("%s called", __func__);
1681 
1682 	spin_lock_irqsave(&dev->lock, flags);
1683 
1684 	/* disable all interrupts */
1685 	dev->params.disable(dev);
1686 
1687 	spin_unlock_irqrestore(&dev->lock, flags);
1688 }
1689 
1690 static struct pnp_driver ite_driver = {
1691 	.name		= ITE_DRIVER_NAME,
1692 	.id_table	= ite_ids,
1693 	.probe		= ite_probe,
1694 	.remove		= ite_remove,
1695 	.suspend	= ite_suspend,
1696 	.resume		= ite_resume,
1697 	.shutdown	= ite_shutdown,
1698 };
1699 
1700 MODULE_DEVICE_TABLE(pnp, ite_ids);
1701 MODULE_DESCRIPTION("ITE Tech Inc. IT8712F/ITE8512F CIR driver");
1702 
1703 MODULE_AUTHOR("Juan J. Garcia de Soria <skandalfo@gmail.com>");
1704 MODULE_LICENSE("GPL");
1705 
1706 module_pnp_driver(ite_driver);
1707