xref: /linux/drivers/spi/spi.c (revision cbe0e415089636170aa6eb540ca4af5dc9842a60)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 // SPI init/core code
3 //
4 // Copyright (C) 2005 David Brownell
5 // Copyright (C) 2008 Secret Lab Technologies Ltd.
6 
7 #include <linux/acpi.h>
8 #include <linux/cache.h>
9 #include <linux/clk/clk-conf.h>
10 #include <linux/delay.h>
11 #include <linux/device.h>
12 #include <linux/dmaengine.h>
13 #include <linux/dma-mapping.h>
14 #include <linux/export.h>
15 #include <linux/gpio/consumer.h>
16 #include <linux/highmem.h>
17 #include <linux/idr.h>
18 #include <linux/init.h>
19 #include <linux/ioport.h>
20 #include <linux/kernel.h>
21 #include <linux/kthread.h>
22 #include <linux/mod_devicetable.h>
23 #include <linux/mutex.h>
24 #include <linux/of_device.h>
25 #include <linux/of_irq.h>
26 #include <linux/percpu.h>
27 #include <linux/platform_data/x86/apple.h>
28 #include <linux/pm_domain.h>
29 #include <linux/pm_runtime.h>
30 #include <linux/property.h>
31 #include <linux/ptp_clock_kernel.h>
32 #include <linux/sched/rt.h>
33 #include <linux/slab.h>
34 #include <linux/spi/spi.h>
35 #include <linux/spi/spi-mem.h>
36 #include <uapi/linux/sched/types.h>
37 
38 #define CREATE_TRACE_POINTS
39 #include <trace/events/spi.h>
40 EXPORT_TRACEPOINT_SYMBOL(spi_transfer_start);
41 EXPORT_TRACEPOINT_SYMBOL(spi_transfer_stop);
42 
43 #include "internals.h"
44 
45 static DEFINE_IDR(spi_master_idr);
46 
47 static void spidev_release(struct device *dev)
48 {
49 	struct spi_device	*spi = to_spi_device(dev);
50 
51 	spi_controller_put(spi->controller);
52 	kfree(spi->driver_override);
53 	free_percpu(spi->pcpu_statistics);
54 	kfree(spi);
55 }
56 
57 static ssize_t
58 modalias_show(struct device *dev, struct device_attribute *a, char *buf)
59 {
60 	const struct spi_device	*spi = to_spi_device(dev);
61 	int len;
62 
63 	len = acpi_device_modalias(dev, buf, PAGE_SIZE - 1);
64 	if (len != -ENODEV)
65 		return len;
66 
67 	return sysfs_emit(buf, "%s%s\n", SPI_MODULE_PREFIX, spi->modalias);
68 }
69 static DEVICE_ATTR_RO(modalias);
70 
71 static ssize_t driver_override_store(struct device *dev,
72 				     struct device_attribute *a,
73 				     const char *buf, size_t count)
74 {
75 	struct spi_device *spi = to_spi_device(dev);
76 	int ret;
77 
78 	ret = driver_set_override(dev, &spi->driver_override, buf, count);
79 	if (ret)
80 		return ret;
81 
82 	return count;
83 }
84 
85 static ssize_t driver_override_show(struct device *dev,
86 				    struct device_attribute *a, char *buf)
87 {
88 	const struct spi_device *spi = to_spi_device(dev);
89 	ssize_t len;
90 
91 	device_lock(dev);
92 	len = sysfs_emit(buf, "%s\n", spi->driver_override ? : "");
93 	device_unlock(dev);
94 	return len;
95 }
96 static DEVICE_ATTR_RW(driver_override);
97 
98 static struct spi_statistics __percpu *spi_alloc_pcpu_stats(struct device *dev)
99 {
100 	struct spi_statistics __percpu *pcpu_stats;
101 
102 	if (dev)
103 		pcpu_stats = devm_alloc_percpu(dev, struct spi_statistics);
104 	else
105 		pcpu_stats = alloc_percpu_gfp(struct spi_statistics, GFP_KERNEL);
106 
107 	if (pcpu_stats) {
108 		int cpu;
109 
110 		for_each_possible_cpu(cpu) {
111 			struct spi_statistics *stat;
112 
113 			stat = per_cpu_ptr(pcpu_stats, cpu);
114 			u64_stats_init(&stat->syncp);
115 		}
116 	}
117 	return pcpu_stats;
118 }
119 
120 static ssize_t spi_emit_pcpu_stats(struct spi_statistics __percpu *stat,
121 				   char *buf, size_t offset)
122 {
123 	u64 val = 0;
124 	int i;
125 
126 	for_each_possible_cpu(i) {
127 		const struct spi_statistics *pcpu_stats;
128 		u64_stats_t *field;
129 		unsigned int start;
130 		u64 inc;
131 
132 		pcpu_stats = per_cpu_ptr(stat, i);
133 		field = (void *)pcpu_stats + offset;
134 		do {
135 			start = u64_stats_fetch_begin(&pcpu_stats->syncp);
136 			inc = u64_stats_read(field);
137 		} while (u64_stats_fetch_retry(&pcpu_stats->syncp, start));
138 		val += inc;
139 	}
140 	return sysfs_emit(buf, "%llu\n", val);
141 }
142 
143 #define SPI_STATISTICS_ATTRS(field, file)				\
144 static ssize_t spi_controller_##field##_show(struct device *dev,	\
145 					     struct device_attribute *attr, \
146 					     char *buf)			\
147 {									\
148 	struct spi_controller *ctlr = container_of(dev,			\
149 					 struct spi_controller, dev);	\
150 	return spi_statistics_##field##_show(ctlr->pcpu_statistics, buf); \
151 }									\
152 static struct device_attribute dev_attr_spi_controller_##field = {	\
153 	.attr = { .name = file, .mode = 0444 },				\
154 	.show = spi_controller_##field##_show,				\
155 };									\
156 static ssize_t spi_device_##field##_show(struct device *dev,		\
157 					 struct device_attribute *attr,	\
158 					char *buf)			\
159 {									\
160 	struct spi_device *spi = to_spi_device(dev);			\
161 	return spi_statistics_##field##_show(spi->pcpu_statistics, buf); \
162 }									\
163 static struct device_attribute dev_attr_spi_device_##field = {		\
164 	.attr = { .name = file, .mode = 0444 },				\
165 	.show = spi_device_##field##_show,				\
166 }
167 
168 #define SPI_STATISTICS_SHOW_NAME(name, file, field)			\
169 static ssize_t spi_statistics_##name##_show(struct spi_statistics __percpu *stat, \
170 					    char *buf)			\
171 {									\
172 	return spi_emit_pcpu_stats(stat, buf,				\
173 			offsetof(struct spi_statistics, field));	\
174 }									\
175 SPI_STATISTICS_ATTRS(name, file)
176 
177 #define SPI_STATISTICS_SHOW(field)					\
178 	SPI_STATISTICS_SHOW_NAME(field, __stringify(field),		\
179 				 field)
180 
181 SPI_STATISTICS_SHOW(messages);
182 SPI_STATISTICS_SHOW(transfers);
183 SPI_STATISTICS_SHOW(errors);
184 SPI_STATISTICS_SHOW(timedout);
185 
186 SPI_STATISTICS_SHOW(spi_sync);
187 SPI_STATISTICS_SHOW(spi_sync_immediate);
188 SPI_STATISTICS_SHOW(spi_async);
189 
190 SPI_STATISTICS_SHOW(bytes);
191 SPI_STATISTICS_SHOW(bytes_rx);
192 SPI_STATISTICS_SHOW(bytes_tx);
193 
194 #define SPI_STATISTICS_TRANSFER_BYTES_HISTO(index, number)		\
195 	SPI_STATISTICS_SHOW_NAME(transfer_bytes_histo##index,		\
196 				 "transfer_bytes_histo_" number,	\
197 				 transfer_bytes_histo[index])
198 SPI_STATISTICS_TRANSFER_BYTES_HISTO(0,  "0-1");
199 SPI_STATISTICS_TRANSFER_BYTES_HISTO(1,  "2-3");
200 SPI_STATISTICS_TRANSFER_BYTES_HISTO(2,  "4-7");
201 SPI_STATISTICS_TRANSFER_BYTES_HISTO(3,  "8-15");
202 SPI_STATISTICS_TRANSFER_BYTES_HISTO(4,  "16-31");
203 SPI_STATISTICS_TRANSFER_BYTES_HISTO(5,  "32-63");
204 SPI_STATISTICS_TRANSFER_BYTES_HISTO(6,  "64-127");
205 SPI_STATISTICS_TRANSFER_BYTES_HISTO(7,  "128-255");
206 SPI_STATISTICS_TRANSFER_BYTES_HISTO(8,  "256-511");
207 SPI_STATISTICS_TRANSFER_BYTES_HISTO(9,  "512-1023");
208 SPI_STATISTICS_TRANSFER_BYTES_HISTO(10, "1024-2047");
209 SPI_STATISTICS_TRANSFER_BYTES_HISTO(11, "2048-4095");
210 SPI_STATISTICS_TRANSFER_BYTES_HISTO(12, "4096-8191");
211 SPI_STATISTICS_TRANSFER_BYTES_HISTO(13, "8192-16383");
212 SPI_STATISTICS_TRANSFER_BYTES_HISTO(14, "16384-32767");
213 SPI_STATISTICS_TRANSFER_BYTES_HISTO(15, "32768-65535");
214 SPI_STATISTICS_TRANSFER_BYTES_HISTO(16, "65536+");
215 
216 SPI_STATISTICS_SHOW(transfers_split_maxsize);
217 
218 static struct attribute *spi_dev_attrs[] = {
219 	&dev_attr_modalias.attr,
220 	&dev_attr_driver_override.attr,
221 	NULL,
222 };
223 
224 static const struct attribute_group spi_dev_group = {
225 	.attrs  = spi_dev_attrs,
226 };
227 
228 static struct attribute *spi_device_statistics_attrs[] = {
229 	&dev_attr_spi_device_messages.attr,
230 	&dev_attr_spi_device_transfers.attr,
231 	&dev_attr_spi_device_errors.attr,
232 	&dev_attr_spi_device_timedout.attr,
233 	&dev_attr_spi_device_spi_sync.attr,
234 	&dev_attr_spi_device_spi_sync_immediate.attr,
235 	&dev_attr_spi_device_spi_async.attr,
236 	&dev_attr_spi_device_bytes.attr,
237 	&dev_attr_spi_device_bytes_rx.attr,
238 	&dev_attr_spi_device_bytes_tx.attr,
239 	&dev_attr_spi_device_transfer_bytes_histo0.attr,
240 	&dev_attr_spi_device_transfer_bytes_histo1.attr,
241 	&dev_attr_spi_device_transfer_bytes_histo2.attr,
242 	&dev_attr_spi_device_transfer_bytes_histo3.attr,
243 	&dev_attr_spi_device_transfer_bytes_histo4.attr,
244 	&dev_attr_spi_device_transfer_bytes_histo5.attr,
245 	&dev_attr_spi_device_transfer_bytes_histo6.attr,
246 	&dev_attr_spi_device_transfer_bytes_histo7.attr,
247 	&dev_attr_spi_device_transfer_bytes_histo8.attr,
248 	&dev_attr_spi_device_transfer_bytes_histo9.attr,
249 	&dev_attr_spi_device_transfer_bytes_histo10.attr,
250 	&dev_attr_spi_device_transfer_bytes_histo11.attr,
251 	&dev_attr_spi_device_transfer_bytes_histo12.attr,
252 	&dev_attr_spi_device_transfer_bytes_histo13.attr,
253 	&dev_attr_spi_device_transfer_bytes_histo14.attr,
254 	&dev_attr_spi_device_transfer_bytes_histo15.attr,
255 	&dev_attr_spi_device_transfer_bytes_histo16.attr,
256 	&dev_attr_spi_device_transfers_split_maxsize.attr,
257 	NULL,
258 };
259 
260 static const struct attribute_group spi_device_statistics_group = {
261 	.name  = "statistics",
262 	.attrs  = spi_device_statistics_attrs,
263 };
264 
265 static const struct attribute_group *spi_dev_groups[] = {
266 	&spi_dev_group,
267 	&spi_device_statistics_group,
268 	NULL,
269 };
270 
271 static struct attribute *spi_controller_statistics_attrs[] = {
272 	&dev_attr_spi_controller_messages.attr,
273 	&dev_attr_spi_controller_transfers.attr,
274 	&dev_attr_spi_controller_errors.attr,
275 	&dev_attr_spi_controller_timedout.attr,
276 	&dev_attr_spi_controller_spi_sync.attr,
277 	&dev_attr_spi_controller_spi_sync_immediate.attr,
278 	&dev_attr_spi_controller_spi_async.attr,
279 	&dev_attr_spi_controller_bytes.attr,
280 	&dev_attr_spi_controller_bytes_rx.attr,
281 	&dev_attr_spi_controller_bytes_tx.attr,
282 	&dev_attr_spi_controller_transfer_bytes_histo0.attr,
283 	&dev_attr_spi_controller_transfer_bytes_histo1.attr,
284 	&dev_attr_spi_controller_transfer_bytes_histo2.attr,
285 	&dev_attr_spi_controller_transfer_bytes_histo3.attr,
286 	&dev_attr_spi_controller_transfer_bytes_histo4.attr,
287 	&dev_attr_spi_controller_transfer_bytes_histo5.attr,
288 	&dev_attr_spi_controller_transfer_bytes_histo6.attr,
289 	&dev_attr_spi_controller_transfer_bytes_histo7.attr,
290 	&dev_attr_spi_controller_transfer_bytes_histo8.attr,
291 	&dev_attr_spi_controller_transfer_bytes_histo9.attr,
292 	&dev_attr_spi_controller_transfer_bytes_histo10.attr,
293 	&dev_attr_spi_controller_transfer_bytes_histo11.attr,
294 	&dev_attr_spi_controller_transfer_bytes_histo12.attr,
295 	&dev_attr_spi_controller_transfer_bytes_histo13.attr,
296 	&dev_attr_spi_controller_transfer_bytes_histo14.attr,
297 	&dev_attr_spi_controller_transfer_bytes_histo15.attr,
298 	&dev_attr_spi_controller_transfer_bytes_histo16.attr,
299 	&dev_attr_spi_controller_transfers_split_maxsize.attr,
300 	NULL,
301 };
302 
303 static const struct attribute_group spi_controller_statistics_group = {
304 	.name  = "statistics",
305 	.attrs  = spi_controller_statistics_attrs,
306 };
307 
308 static const struct attribute_group *spi_master_groups[] = {
309 	&spi_controller_statistics_group,
310 	NULL,
311 };
312 
313 static void spi_statistics_add_transfer_stats(struct spi_statistics __percpu *pcpu_stats,
314 					      struct spi_transfer *xfer,
315 					      struct spi_controller *ctlr)
316 {
317 	int l2len = min(fls(xfer->len), SPI_STATISTICS_HISTO_SIZE) - 1;
318 	struct spi_statistics *stats;
319 
320 	if (l2len < 0)
321 		l2len = 0;
322 
323 	get_cpu();
324 	stats = this_cpu_ptr(pcpu_stats);
325 	u64_stats_update_begin(&stats->syncp);
326 
327 	u64_stats_inc(&stats->transfers);
328 	u64_stats_inc(&stats->transfer_bytes_histo[l2len]);
329 
330 	u64_stats_add(&stats->bytes, xfer->len);
331 	if ((xfer->tx_buf) &&
332 	    (xfer->tx_buf != ctlr->dummy_tx))
333 		u64_stats_add(&stats->bytes_tx, xfer->len);
334 	if ((xfer->rx_buf) &&
335 	    (xfer->rx_buf != ctlr->dummy_rx))
336 		u64_stats_add(&stats->bytes_rx, xfer->len);
337 
338 	u64_stats_update_end(&stats->syncp);
339 	put_cpu();
340 }
341 
342 /*
343  * modalias support makes "modprobe $MODALIAS" new-style hotplug work,
344  * and the sysfs version makes coldplug work too.
345  */
346 static const struct spi_device_id *spi_match_id(const struct spi_device_id *id, const char *name)
347 {
348 	while (id->name[0]) {
349 		if (!strcmp(name, id->name))
350 			return id;
351 		id++;
352 	}
353 	return NULL;
354 }
355 
356 const struct spi_device_id *spi_get_device_id(const struct spi_device *sdev)
357 {
358 	const struct spi_driver *sdrv = to_spi_driver(sdev->dev.driver);
359 
360 	return spi_match_id(sdrv->id_table, sdev->modalias);
361 }
362 EXPORT_SYMBOL_GPL(spi_get_device_id);
363 
364 const void *spi_get_device_match_data(const struct spi_device *sdev)
365 {
366 	const void *match;
367 
368 	match = device_get_match_data(&sdev->dev);
369 	if (match)
370 		return match;
371 
372 	return (const void *)spi_get_device_id(sdev)->driver_data;
373 }
374 EXPORT_SYMBOL_GPL(spi_get_device_match_data);
375 
376 static int spi_match_device(struct device *dev, struct device_driver *drv)
377 {
378 	const struct spi_device	*spi = to_spi_device(dev);
379 	const struct spi_driver	*sdrv = to_spi_driver(drv);
380 
381 	/* Check override first, and if set, only use the named driver */
382 	if (spi->driver_override)
383 		return strcmp(spi->driver_override, drv->name) == 0;
384 
385 	/* Attempt an OF style match */
386 	if (of_driver_match_device(dev, drv))
387 		return 1;
388 
389 	/* Then try ACPI */
390 	if (acpi_driver_match_device(dev, drv))
391 		return 1;
392 
393 	if (sdrv->id_table)
394 		return !!spi_match_id(sdrv->id_table, spi->modalias);
395 
396 	return strcmp(spi->modalias, drv->name) == 0;
397 }
398 
399 static int spi_uevent(const struct device *dev, struct kobj_uevent_env *env)
400 {
401 	const struct spi_device		*spi = to_spi_device(dev);
402 	int rc;
403 
404 	rc = acpi_device_uevent_modalias(dev, env);
405 	if (rc != -ENODEV)
406 		return rc;
407 
408 	return add_uevent_var(env, "MODALIAS=%s%s", SPI_MODULE_PREFIX, spi->modalias);
409 }
410 
411 static int spi_probe(struct device *dev)
412 {
413 	const struct spi_driver		*sdrv = to_spi_driver(dev->driver);
414 	struct spi_device		*spi = to_spi_device(dev);
415 	int ret;
416 
417 	ret = of_clk_set_defaults(dev->of_node, false);
418 	if (ret)
419 		return ret;
420 
421 	if (dev->of_node) {
422 		spi->irq = of_irq_get(dev->of_node, 0);
423 		if (spi->irq == -EPROBE_DEFER)
424 			return -EPROBE_DEFER;
425 		if (spi->irq < 0)
426 			spi->irq = 0;
427 	}
428 
429 	ret = dev_pm_domain_attach(dev, true);
430 	if (ret)
431 		return ret;
432 
433 	if (sdrv->probe) {
434 		ret = sdrv->probe(spi);
435 		if (ret)
436 			dev_pm_domain_detach(dev, true);
437 	}
438 
439 	return ret;
440 }
441 
442 static void spi_remove(struct device *dev)
443 {
444 	const struct spi_driver		*sdrv = to_spi_driver(dev->driver);
445 
446 	if (sdrv->remove)
447 		sdrv->remove(to_spi_device(dev));
448 
449 	dev_pm_domain_detach(dev, true);
450 }
451 
452 static void spi_shutdown(struct device *dev)
453 {
454 	if (dev->driver) {
455 		const struct spi_driver	*sdrv = to_spi_driver(dev->driver);
456 
457 		if (sdrv->shutdown)
458 			sdrv->shutdown(to_spi_device(dev));
459 	}
460 }
461 
462 struct bus_type spi_bus_type = {
463 	.name		= "spi",
464 	.dev_groups	= spi_dev_groups,
465 	.match		= spi_match_device,
466 	.uevent		= spi_uevent,
467 	.probe		= spi_probe,
468 	.remove		= spi_remove,
469 	.shutdown	= spi_shutdown,
470 };
471 EXPORT_SYMBOL_GPL(spi_bus_type);
472 
473 /**
474  * __spi_register_driver - register a SPI driver
475  * @owner: owner module of the driver to register
476  * @sdrv: the driver to register
477  * Context: can sleep
478  *
479  * Return: zero on success, else a negative error code.
480  */
481 int __spi_register_driver(struct module *owner, struct spi_driver *sdrv)
482 {
483 	sdrv->driver.owner = owner;
484 	sdrv->driver.bus = &spi_bus_type;
485 
486 	/*
487 	 * For Really Good Reasons we use spi: modaliases not of:
488 	 * modaliases for DT so module autoloading won't work if we
489 	 * don't have a spi_device_id as well as a compatible string.
490 	 */
491 	if (sdrv->driver.of_match_table) {
492 		const struct of_device_id *of_id;
493 
494 		for (of_id = sdrv->driver.of_match_table; of_id->compatible[0];
495 		     of_id++) {
496 			const char *of_name;
497 
498 			/* Strip off any vendor prefix */
499 			of_name = strnchr(of_id->compatible,
500 					  sizeof(of_id->compatible), ',');
501 			if (of_name)
502 				of_name++;
503 			else
504 				of_name = of_id->compatible;
505 
506 			if (sdrv->id_table) {
507 				const struct spi_device_id *spi_id;
508 
509 				spi_id = spi_match_id(sdrv->id_table, of_name);
510 				if (spi_id)
511 					continue;
512 			} else {
513 				if (strcmp(sdrv->driver.name, of_name) == 0)
514 					continue;
515 			}
516 
517 			pr_warn("SPI driver %s has no spi_device_id for %s\n",
518 				sdrv->driver.name, of_id->compatible);
519 		}
520 	}
521 
522 	return driver_register(&sdrv->driver);
523 }
524 EXPORT_SYMBOL_GPL(__spi_register_driver);
525 
526 /*-------------------------------------------------------------------------*/
527 
528 /*
529  * SPI devices should normally not be created by SPI device drivers; that
530  * would make them board-specific.  Similarly with SPI controller drivers.
531  * Device registration normally goes into like arch/.../mach.../board-YYY.c
532  * with other readonly (flashable) information about mainboard devices.
533  */
534 
535 struct boardinfo {
536 	struct list_head	list;
537 	struct spi_board_info	board_info;
538 };
539 
540 static LIST_HEAD(board_list);
541 static LIST_HEAD(spi_controller_list);
542 
543 /*
544  * Used to protect add/del operation for board_info list and
545  * spi_controller list, and their matching process also used
546  * to protect object of type struct idr.
547  */
548 static DEFINE_MUTEX(board_lock);
549 
550 /**
551  * spi_alloc_device - Allocate a new SPI device
552  * @ctlr: Controller to which device is connected
553  * Context: can sleep
554  *
555  * Allows a driver to allocate and initialize a spi_device without
556  * registering it immediately.  This allows a driver to directly
557  * fill the spi_device with device parameters before calling
558  * spi_add_device() on it.
559  *
560  * Caller is responsible to call spi_add_device() on the returned
561  * spi_device structure to add it to the SPI controller.  If the caller
562  * needs to discard the spi_device without adding it, then it should
563  * call spi_dev_put() on it.
564  *
565  * Return: a pointer to the new device, or NULL.
566  */
567 struct spi_device *spi_alloc_device(struct spi_controller *ctlr)
568 {
569 	struct spi_device	*spi;
570 
571 	if (!spi_controller_get(ctlr))
572 		return NULL;
573 
574 	spi = kzalloc(sizeof(*spi), GFP_KERNEL);
575 	if (!spi) {
576 		spi_controller_put(ctlr);
577 		return NULL;
578 	}
579 
580 	spi->pcpu_statistics = spi_alloc_pcpu_stats(NULL);
581 	if (!spi->pcpu_statistics) {
582 		kfree(spi);
583 		spi_controller_put(ctlr);
584 		return NULL;
585 	}
586 
587 	spi->master = spi->controller = ctlr;
588 	spi->dev.parent = &ctlr->dev;
589 	spi->dev.bus = &spi_bus_type;
590 	spi->dev.release = spidev_release;
591 	spi->mode = ctlr->buswidth_override_bits;
592 
593 	device_initialize(&spi->dev);
594 	return spi;
595 }
596 EXPORT_SYMBOL_GPL(spi_alloc_device);
597 
598 static void spi_dev_set_name(struct spi_device *spi)
599 {
600 	struct acpi_device *adev = ACPI_COMPANION(&spi->dev);
601 
602 	if (adev) {
603 		dev_set_name(&spi->dev, "spi-%s", acpi_dev_name(adev));
604 		return;
605 	}
606 
607 	dev_set_name(&spi->dev, "%s.%u", dev_name(&spi->controller->dev),
608 		     spi_get_chipselect(spi, 0));
609 }
610 
611 static int spi_dev_check(struct device *dev, void *data)
612 {
613 	struct spi_device *spi = to_spi_device(dev);
614 	struct spi_device *new_spi = data;
615 
616 	if (spi->controller == new_spi->controller &&
617 	    spi_get_chipselect(spi, 0) == spi_get_chipselect(new_spi, 0))
618 		return -EBUSY;
619 	return 0;
620 }
621 
622 static void spi_cleanup(struct spi_device *spi)
623 {
624 	if (spi->controller->cleanup)
625 		spi->controller->cleanup(spi);
626 }
627 
628 static int __spi_add_device(struct spi_device *spi)
629 {
630 	struct spi_controller *ctlr = spi->controller;
631 	struct device *dev = ctlr->dev.parent;
632 	int status;
633 
634 	/* Chipselects are numbered 0..max; validate. */
635 	if (spi_get_chipselect(spi, 0) >= ctlr->num_chipselect) {
636 		dev_err(dev, "cs%d >= max %d\n", spi_get_chipselect(spi, 0),
637 			ctlr->num_chipselect);
638 		return -EINVAL;
639 	}
640 
641 	/* Set the bus ID string */
642 	spi_dev_set_name(spi);
643 
644 	/*
645 	 * We need to make sure there's no other device with this
646 	 * chipselect **BEFORE** we call setup(), else we'll trash
647 	 * its configuration.
648 	 */
649 	status = bus_for_each_dev(&spi_bus_type, NULL, spi, spi_dev_check);
650 	if (status) {
651 		dev_err(dev, "chipselect %d already in use\n",
652 				spi_get_chipselect(spi, 0));
653 		return status;
654 	}
655 
656 	/* Controller may unregister concurrently */
657 	if (IS_ENABLED(CONFIG_SPI_DYNAMIC) &&
658 	    !device_is_registered(&ctlr->dev)) {
659 		return -ENODEV;
660 	}
661 
662 	if (ctlr->cs_gpiods)
663 		spi_set_csgpiod(spi, 0, ctlr->cs_gpiods[spi_get_chipselect(spi, 0)]);
664 
665 	/*
666 	 * Drivers may modify this initial i/o setup, but will
667 	 * normally rely on the device being setup.  Devices
668 	 * using SPI_CS_HIGH can't coexist well otherwise...
669 	 */
670 	status = spi_setup(spi);
671 	if (status < 0) {
672 		dev_err(dev, "can't setup %s, status %d\n",
673 				dev_name(&spi->dev), status);
674 		return status;
675 	}
676 
677 	/* Device may be bound to an active driver when this returns */
678 	status = device_add(&spi->dev);
679 	if (status < 0) {
680 		dev_err(dev, "can't add %s, status %d\n",
681 				dev_name(&spi->dev), status);
682 		spi_cleanup(spi);
683 	} else {
684 		dev_dbg(dev, "registered child %s\n", dev_name(&spi->dev));
685 	}
686 
687 	return status;
688 }
689 
690 /**
691  * spi_add_device - Add spi_device allocated with spi_alloc_device
692  * @spi: spi_device to register
693  *
694  * Companion function to spi_alloc_device.  Devices allocated with
695  * spi_alloc_device can be added onto the SPI bus with this function.
696  *
697  * Return: 0 on success; negative errno on failure
698  */
699 int spi_add_device(struct spi_device *spi)
700 {
701 	struct spi_controller *ctlr = spi->controller;
702 	int status;
703 
704 	mutex_lock(&ctlr->add_lock);
705 	status = __spi_add_device(spi);
706 	mutex_unlock(&ctlr->add_lock);
707 	return status;
708 }
709 EXPORT_SYMBOL_GPL(spi_add_device);
710 
711 /**
712  * spi_new_device - instantiate one new SPI device
713  * @ctlr: Controller to which device is connected
714  * @chip: Describes the SPI device
715  * Context: can sleep
716  *
717  * On typical mainboards, this is purely internal; and it's not needed
718  * after board init creates the hard-wired devices.  Some development
719  * platforms may not be able to use spi_register_board_info though, and
720  * this is exported so that for example a USB or parport based adapter
721  * driver could add devices (which it would learn about out-of-band).
722  *
723  * Return: the new device, or NULL.
724  */
725 struct spi_device *spi_new_device(struct spi_controller *ctlr,
726 				  struct spi_board_info *chip)
727 {
728 	struct spi_device	*proxy;
729 	int			status;
730 
731 	/*
732 	 * NOTE:  caller did any chip->bus_num checks necessary.
733 	 *
734 	 * Also, unless we change the return value convention to use
735 	 * error-or-pointer (not NULL-or-pointer), troubleshootability
736 	 * suggests syslogged diagnostics are best here (ugh).
737 	 */
738 
739 	proxy = spi_alloc_device(ctlr);
740 	if (!proxy)
741 		return NULL;
742 
743 	WARN_ON(strlen(chip->modalias) >= sizeof(proxy->modalias));
744 
745 	spi_set_chipselect(proxy, 0, chip->chip_select);
746 	proxy->max_speed_hz = chip->max_speed_hz;
747 	proxy->mode = chip->mode;
748 	proxy->irq = chip->irq;
749 	strscpy(proxy->modalias, chip->modalias, sizeof(proxy->modalias));
750 	proxy->dev.platform_data = (void *) chip->platform_data;
751 	proxy->controller_data = chip->controller_data;
752 	proxy->controller_state = NULL;
753 
754 	if (chip->swnode) {
755 		status = device_add_software_node(&proxy->dev, chip->swnode);
756 		if (status) {
757 			dev_err(&ctlr->dev, "failed to add software node to '%s': %d\n",
758 				chip->modalias, status);
759 			goto err_dev_put;
760 		}
761 	}
762 
763 	status = spi_add_device(proxy);
764 	if (status < 0)
765 		goto err_dev_put;
766 
767 	return proxy;
768 
769 err_dev_put:
770 	device_remove_software_node(&proxy->dev);
771 	spi_dev_put(proxy);
772 	return NULL;
773 }
774 EXPORT_SYMBOL_GPL(spi_new_device);
775 
776 /**
777  * spi_unregister_device - unregister a single SPI device
778  * @spi: spi_device to unregister
779  *
780  * Start making the passed SPI device vanish. Normally this would be handled
781  * by spi_unregister_controller().
782  */
783 void spi_unregister_device(struct spi_device *spi)
784 {
785 	if (!spi)
786 		return;
787 
788 	if (spi->dev.of_node) {
789 		of_node_clear_flag(spi->dev.of_node, OF_POPULATED);
790 		of_node_put(spi->dev.of_node);
791 	}
792 	if (ACPI_COMPANION(&spi->dev))
793 		acpi_device_clear_enumerated(ACPI_COMPANION(&spi->dev));
794 	device_remove_software_node(&spi->dev);
795 	device_del(&spi->dev);
796 	spi_cleanup(spi);
797 	put_device(&spi->dev);
798 }
799 EXPORT_SYMBOL_GPL(spi_unregister_device);
800 
801 static void spi_match_controller_to_boardinfo(struct spi_controller *ctlr,
802 					      struct spi_board_info *bi)
803 {
804 	struct spi_device *dev;
805 
806 	if (ctlr->bus_num != bi->bus_num)
807 		return;
808 
809 	dev = spi_new_device(ctlr, bi);
810 	if (!dev)
811 		dev_err(ctlr->dev.parent, "can't create new device for %s\n",
812 			bi->modalias);
813 }
814 
815 /**
816  * spi_register_board_info - register SPI devices for a given board
817  * @info: array of chip descriptors
818  * @n: how many descriptors are provided
819  * Context: can sleep
820  *
821  * Board-specific early init code calls this (probably during arch_initcall)
822  * with segments of the SPI device table.  Any device nodes are created later,
823  * after the relevant parent SPI controller (bus_num) is defined.  We keep
824  * this table of devices forever, so that reloading a controller driver will
825  * not make Linux forget about these hard-wired devices.
826  *
827  * Other code can also call this, e.g. a particular add-on board might provide
828  * SPI devices through its expansion connector, so code initializing that board
829  * would naturally declare its SPI devices.
830  *
831  * The board info passed can safely be __initdata ... but be careful of
832  * any embedded pointers (platform_data, etc), they're copied as-is.
833  *
834  * Return: zero on success, else a negative error code.
835  */
836 int spi_register_board_info(struct spi_board_info const *info, unsigned n)
837 {
838 	struct boardinfo *bi;
839 	int i;
840 
841 	if (!n)
842 		return 0;
843 
844 	bi = kcalloc(n, sizeof(*bi), GFP_KERNEL);
845 	if (!bi)
846 		return -ENOMEM;
847 
848 	for (i = 0; i < n; i++, bi++, info++) {
849 		struct spi_controller *ctlr;
850 
851 		memcpy(&bi->board_info, info, sizeof(*info));
852 
853 		mutex_lock(&board_lock);
854 		list_add_tail(&bi->list, &board_list);
855 		list_for_each_entry(ctlr, &spi_controller_list, list)
856 			spi_match_controller_to_boardinfo(ctlr,
857 							  &bi->board_info);
858 		mutex_unlock(&board_lock);
859 	}
860 
861 	return 0;
862 }
863 
864 /*-------------------------------------------------------------------------*/
865 
866 /* Core methods for SPI resource management */
867 
868 /**
869  * spi_res_alloc - allocate a spi resource that is life-cycle managed
870  *                 during the processing of a spi_message while using
871  *                 spi_transfer_one
872  * @spi:     the SPI device for which we allocate memory
873  * @release: the release code to execute for this resource
874  * @size:    size to alloc and return
875  * @gfp:     GFP allocation flags
876  *
877  * Return: the pointer to the allocated data
878  *
879  * This may get enhanced in the future to allocate from a memory pool
880  * of the @spi_device or @spi_controller to avoid repeated allocations.
881  */
882 static void *spi_res_alloc(struct spi_device *spi, spi_res_release_t release,
883 			   size_t size, gfp_t gfp)
884 {
885 	struct spi_res *sres;
886 
887 	sres = kzalloc(sizeof(*sres) + size, gfp);
888 	if (!sres)
889 		return NULL;
890 
891 	INIT_LIST_HEAD(&sres->entry);
892 	sres->release = release;
893 
894 	return sres->data;
895 }
896 
897 /**
898  * spi_res_free - free an SPI resource
899  * @res: pointer to the custom data of a resource
900  */
901 static void spi_res_free(void *res)
902 {
903 	struct spi_res *sres = container_of(res, struct spi_res, data);
904 
905 	if (!res)
906 		return;
907 
908 	WARN_ON(!list_empty(&sres->entry));
909 	kfree(sres);
910 }
911 
912 /**
913  * spi_res_add - add a spi_res to the spi_message
914  * @message: the SPI message
915  * @res:     the spi_resource
916  */
917 static void spi_res_add(struct spi_message *message, void *res)
918 {
919 	struct spi_res *sres = container_of(res, struct spi_res, data);
920 
921 	WARN_ON(!list_empty(&sres->entry));
922 	list_add_tail(&sres->entry, &message->resources);
923 }
924 
925 /**
926  * spi_res_release - release all SPI resources for this message
927  * @ctlr:  the @spi_controller
928  * @message: the @spi_message
929  */
930 static void spi_res_release(struct spi_controller *ctlr, struct spi_message *message)
931 {
932 	struct spi_res *res, *tmp;
933 
934 	list_for_each_entry_safe_reverse(res, tmp, &message->resources, entry) {
935 		if (res->release)
936 			res->release(ctlr, message, res->data);
937 
938 		list_del(&res->entry);
939 
940 		kfree(res);
941 	}
942 }
943 
944 /*-------------------------------------------------------------------------*/
945 
946 static void spi_set_cs(struct spi_device *spi, bool enable, bool force)
947 {
948 	bool activate = enable;
949 
950 	/*
951 	 * Avoid calling into the driver (or doing delays) if the chip select
952 	 * isn't actually changing from the last time this was called.
953 	 */
954 	if (!force && ((enable && spi->controller->last_cs == spi_get_chipselect(spi, 0)) ||
955 		       (!enable && spi->controller->last_cs != spi_get_chipselect(spi, 0))) &&
956 	    (spi->controller->last_cs_mode_high == (spi->mode & SPI_CS_HIGH)))
957 		return;
958 
959 	trace_spi_set_cs(spi, activate);
960 
961 	spi->controller->last_cs = enable ? spi_get_chipselect(spi, 0) : -1;
962 	spi->controller->last_cs_mode_high = spi->mode & SPI_CS_HIGH;
963 
964 	if ((spi_get_csgpiod(spi, 0) || !spi->controller->set_cs_timing) && !activate)
965 		spi_delay_exec(&spi->cs_hold, NULL);
966 
967 	if (spi->mode & SPI_CS_HIGH)
968 		enable = !enable;
969 
970 	if (spi_get_csgpiod(spi, 0)) {
971 		if (!(spi->mode & SPI_NO_CS)) {
972 			/*
973 			 * Historically ACPI has no means of the GPIO polarity and
974 			 * thus the SPISerialBus() resource defines it on the per-chip
975 			 * basis. In order to avoid a chain of negations, the GPIO
976 			 * polarity is considered being Active High. Even for the cases
977 			 * when _DSD() is involved (in the updated versions of ACPI)
978 			 * the GPIO CS polarity must be defined Active High to avoid
979 			 * ambiguity. That's why we use enable, that takes SPI_CS_HIGH
980 			 * into account.
981 			 */
982 			if (has_acpi_companion(&spi->dev))
983 				gpiod_set_value_cansleep(spi_get_csgpiod(spi, 0), !enable);
984 			else
985 				/* Polarity handled by GPIO library */
986 				gpiod_set_value_cansleep(spi_get_csgpiod(spi, 0), activate);
987 		}
988 		/* Some SPI masters need both GPIO CS & slave_select */
989 		if ((spi->controller->flags & SPI_CONTROLLER_GPIO_SS) &&
990 		    spi->controller->set_cs)
991 			spi->controller->set_cs(spi, !enable);
992 	} else if (spi->controller->set_cs) {
993 		spi->controller->set_cs(spi, !enable);
994 	}
995 
996 	if (spi_get_csgpiod(spi, 0) || !spi->controller->set_cs_timing) {
997 		if (activate)
998 			spi_delay_exec(&spi->cs_setup, NULL);
999 		else
1000 			spi_delay_exec(&spi->cs_inactive, NULL);
1001 	}
1002 }
1003 
1004 #ifdef CONFIG_HAS_DMA
1005 static int spi_map_buf_attrs(struct spi_controller *ctlr, struct device *dev,
1006 			     struct sg_table *sgt, void *buf, size_t len,
1007 			     enum dma_data_direction dir, unsigned long attrs)
1008 {
1009 	const bool vmalloced_buf = is_vmalloc_addr(buf);
1010 	unsigned int max_seg_size = dma_get_max_seg_size(dev);
1011 #ifdef CONFIG_HIGHMEM
1012 	const bool kmap_buf = ((unsigned long)buf >= PKMAP_BASE &&
1013 				(unsigned long)buf < (PKMAP_BASE +
1014 					(LAST_PKMAP * PAGE_SIZE)));
1015 #else
1016 	const bool kmap_buf = false;
1017 #endif
1018 	int desc_len;
1019 	int sgs;
1020 	struct page *vm_page;
1021 	struct scatterlist *sg;
1022 	void *sg_buf;
1023 	size_t min;
1024 	int i, ret;
1025 
1026 	if (vmalloced_buf || kmap_buf) {
1027 		desc_len = min_t(unsigned long, max_seg_size, PAGE_SIZE);
1028 		sgs = DIV_ROUND_UP(len + offset_in_page(buf), desc_len);
1029 	} else if (virt_addr_valid(buf)) {
1030 		desc_len = min_t(size_t, max_seg_size, ctlr->max_dma_len);
1031 		sgs = DIV_ROUND_UP(len, desc_len);
1032 	} else {
1033 		return -EINVAL;
1034 	}
1035 
1036 	ret = sg_alloc_table(sgt, sgs, GFP_KERNEL);
1037 	if (ret != 0)
1038 		return ret;
1039 
1040 	sg = &sgt->sgl[0];
1041 	for (i = 0; i < sgs; i++) {
1042 
1043 		if (vmalloced_buf || kmap_buf) {
1044 			/*
1045 			 * Next scatterlist entry size is the minimum between
1046 			 * the desc_len and the remaining buffer length that
1047 			 * fits in a page.
1048 			 */
1049 			min = min_t(size_t, desc_len,
1050 				    min_t(size_t, len,
1051 					  PAGE_SIZE - offset_in_page(buf)));
1052 			if (vmalloced_buf)
1053 				vm_page = vmalloc_to_page(buf);
1054 			else
1055 				vm_page = kmap_to_page(buf);
1056 			if (!vm_page) {
1057 				sg_free_table(sgt);
1058 				return -ENOMEM;
1059 			}
1060 			sg_set_page(sg, vm_page,
1061 				    min, offset_in_page(buf));
1062 		} else {
1063 			min = min_t(size_t, len, desc_len);
1064 			sg_buf = buf;
1065 			sg_set_buf(sg, sg_buf, min);
1066 		}
1067 
1068 		buf += min;
1069 		len -= min;
1070 		sg = sg_next(sg);
1071 	}
1072 
1073 	ret = dma_map_sgtable(dev, sgt, dir, attrs);
1074 	if (ret < 0) {
1075 		sg_free_table(sgt);
1076 		return ret;
1077 	}
1078 
1079 	return 0;
1080 }
1081 
1082 int spi_map_buf(struct spi_controller *ctlr, struct device *dev,
1083 		struct sg_table *sgt, void *buf, size_t len,
1084 		enum dma_data_direction dir)
1085 {
1086 	return spi_map_buf_attrs(ctlr, dev, sgt, buf, len, dir, 0);
1087 }
1088 
1089 static void spi_unmap_buf_attrs(struct spi_controller *ctlr,
1090 				struct device *dev, struct sg_table *sgt,
1091 				enum dma_data_direction dir,
1092 				unsigned long attrs)
1093 {
1094 	if (sgt->orig_nents) {
1095 		dma_unmap_sgtable(dev, sgt, dir, attrs);
1096 		sg_free_table(sgt);
1097 		sgt->orig_nents = 0;
1098 		sgt->nents = 0;
1099 	}
1100 }
1101 
1102 void spi_unmap_buf(struct spi_controller *ctlr, struct device *dev,
1103 		   struct sg_table *sgt, enum dma_data_direction dir)
1104 {
1105 	spi_unmap_buf_attrs(ctlr, dev, sgt, dir, 0);
1106 }
1107 
1108 static int __spi_map_msg(struct spi_controller *ctlr, struct spi_message *msg)
1109 {
1110 	struct device *tx_dev, *rx_dev;
1111 	struct spi_transfer *xfer;
1112 	int ret;
1113 
1114 	if (!ctlr->can_dma)
1115 		return 0;
1116 
1117 	if (ctlr->dma_tx)
1118 		tx_dev = ctlr->dma_tx->device->dev;
1119 	else if (ctlr->dma_map_dev)
1120 		tx_dev = ctlr->dma_map_dev;
1121 	else
1122 		tx_dev = ctlr->dev.parent;
1123 
1124 	if (ctlr->dma_rx)
1125 		rx_dev = ctlr->dma_rx->device->dev;
1126 	else if (ctlr->dma_map_dev)
1127 		rx_dev = ctlr->dma_map_dev;
1128 	else
1129 		rx_dev = ctlr->dev.parent;
1130 
1131 	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
1132 		/* The sync is done before each transfer. */
1133 		unsigned long attrs = DMA_ATTR_SKIP_CPU_SYNC;
1134 
1135 		if (!ctlr->can_dma(ctlr, msg->spi, xfer))
1136 			continue;
1137 
1138 		if (xfer->tx_buf != NULL) {
1139 			ret = spi_map_buf_attrs(ctlr, tx_dev, &xfer->tx_sg,
1140 						(void *)xfer->tx_buf,
1141 						xfer->len, DMA_TO_DEVICE,
1142 						attrs);
1143 			if (ret != 0)
1144 				return ret;
1145 		}
1146 
1147 		if (xfer->rx_buf != NULL) {
1148 			ret = spi_map_buf_attrs(ctlr, rx_dev, &xfer->rx_sg,
1149 						xfer->rx_buf, xfer->len,
1150 						DMA_FROM_DEVICE, attrs);
1151 			if (ret != 0) {
1152 				spi_unmap_buf_attrs(ctlr, tx_dev,
1153 						&xfer->tx_sg, DMA_TO_DEVICE,
1154 						attrs);
1155 
1156 				return ret;
1157 			}
1158 		}
1159 	}
1160 
1161 	ctlr->cur_rx_dma_dev = rx_dev;
1162 	ctlr->cur_tx_dma_dev = tx_dev;
1163 	ctlr->cur_msg_mapped = true;
1164 
1165 	return 0;
1166 }
1167 
1168 static int __spi_unmap_msg(struct spi_controller *ctlr, struct spi_message *msg)
1169 {
1170 	struct device *rx_dev = ctlr->cur_rx_dma_dev;
1171 	struct device *tx_dev = ctlr->cur_tx_dma_dev;
1172 	struct spi_transfer *xfer;
1173 
1174 	if (!ctlr->cur_msg_mapped || !ctlr->can_dma)
1175 		return 0;
1176 
1177 	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
1178 		/* The sync has already been done after each transfer. */
1179 		unsigned long attrs = DMA_ATTR_SKIP_CPU_SYNC;
1180 
1181 		if (!ctlr->can_dma(ctlr, msg->spi, xfer))
1182 			continue;
1183 
1184 		spi_unmap_buf_attrs(ctlr, rx_dev, &xfer->rx_sg,
1185 				    DMA_FROM_DEVICE, attrs);
1186 		spi_unmap_buf_attrs(ctlr, tx_dev, &xfer->tx_sg,
1187 				    DMA_TO_DEVICE, attrs);
1188 	}
1189 
1190 	ctlr->cur_msg_mapped = false;
1191 
1192 	return 0;
1193 }
1194 
1195 static void spi_dma_sync_for_device(struct spi_controller *ctlr,
1196 				    struct spi_transfer *xfer)
1197 {
1198 	struct device *rx_dev = ctlr->cur_rx_dma_dev;
1199 	struct device *tx_dev = ctlr->cur_tx_dma_dev;
1200 
1201 	if (!ctlr->cur_msg_mapped)
1202 		return;
1203 
1204 	if (xfer->tx_sg.orig_nents)
1205 		dma_sync_sgtable_for_device(tx_dev, &xfer->tx_sg, DMA_TO_DEVICE);
1206 	if (xfer->rx_sg.orig_nents)
1207 		dma_sync_sgtable_for_device(rx_dev, &xfer->rx_sg, DMA_FROM_DEVICE);
1208 }
1209 
1210 static void spi_dma_sync_for_cpu(struct spi_controller *ctlr,
1211 				 struct spi_transfer *xfer)
1212 {
1213 	struct device *rx_dev = ctlr->cur_rx_dma_dev;
1214 	struct device *tx_dev = ctlr->cur_tx_dma_dev;
1215 
1216 	if (!ctlr->cur_msg_mapped)
1217 		return;
1218 
1219 	if (xfer->rx_sg.orig_nents)
1220 		dma_sync_sgtable_for_cpu(rx_dev, &xfer->rx_sg, DMA_FROM_DEVICE);
1221 	if (xfer->tx_sg.orig_nents)
1222 		dma_sync_sgtable_for_cpu(tx_dev, &xfer->tx_sg, DMA_TO_DEVICE);
1223 }
1224 #else /* !CONFIG_HAS_DMA */
1225 static inline int __spi_map_msg(struct spi_controller *ctlr,
1226 				struct spi_message *msg)
1227 {
1228 	return 0;
1229 }
1230 
1231 static inline int __spi_unmap_msg(struct spi_controller *ctlr,
1232 				  struct spi_message *msg)
1233 {
1234 	return 0;
1235 }
1236 
1237 static void spi_dma_sync_for_device(struct spi_controller *ctrl,
1238 				    struct spi_transfer *xfer)
1239 {
1240 }
1241 
1242 static void spi_dma_sync_for_cpu(struct spi_controller *ctrl,
1243 				 struct spi_transfer *xfer)
1244 {
1245 }
1246 #endif /* !CONFIG_HAS_DMA */
1247 
1248 static inline int spi_unmap_msg(struct spi_controller *ctlr,
1249 				struct spi_message *msg)
1250 {
1251 	struct spi_transfer *xfer;
1252 
1253 	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
1254 		/*
1255 		 * Restore the original value of tx_buf or rx_buf if they are
1256 		 * NULL.
1257 		 */
1258 		if (xfer->tx_buf == ctlr->dummy_tx)
1259 			xfer->tx_buf = NULL;
1260 		if (xfer->rx_buf == ctlr->dummy_rx)
1261 			xfer->rx_buf = NULL;
1262 	}
1263 
1264 	return __spi_unmap_msg(ctlr, msg);
1265 }
1266 
1267 static int spi_map_msg(struct spi_controller *ctlr, struct spi_message *msg)
1268 {
1269 	struct spi_transfer *xfer;
1270 	void *tmp;
1271 	unsigned int max_tx, max_rx;
1272 
1273 	if ((ctlr->flags & (SPI_CONTROLLER_MUST_RX | SPI_CONTROLLER_MUST_TX))
1274 		&& !(msg->spi->mode & SPI_3WIRE)) {
1275 		max_tx = 0;
1276 		max_rx = 0;
1277 
1278 		list_for_each_entry(xfer, &msg->transfers, transfer_list) {
1279 			if ((ctlr->flags & SPI_CONTROLLER_MUST_TX) &&
1280 			    !xfer->tx_buf)
1281 				max_tx = max(xfer->len, max_tx);
1282 			if ((ctlr->flags & SPI_CONTROLLER_MUST_RX) &&
1283 			    !xfer->rx_buf)
1284 				max_rx = max(xfer->len, max_rx);
1285 		}
1286 
1287 		if (max_tx) {
1288 			tmp = krealloc(ctlr->dummy_tx, max_tx,
1289 				       GFP_KERNEL | GFP_DMA | __GFP_ZERO);
1290 			if (!tmp)
1291 				return -ENOMEM;
1292 			ctlr->dummy_tx = tmp;
1293 		}
1294 
1295 		if (max_rx) {
1296 			tmp = krealloc(ctlr->dummy_rx, max_rx,
1297 				       GFP_KERNEL | GFP_DMA);
1298 			if (!tmp)
1299 				return -ENOMEM;
1300 			ctlr->dummy_rx = tmp;
1301 		}
1302 
1303 		if (max_tx || max_rx) {
1304 			list_for_each_entry(xfer, &msg->transfers,
1305 					    transfer_list) {
1306 				if (!xfer->len)
1307 					continue;
1308 				if (!xfer->tx_buf)
1309 					xfer->tx_buf = ctlr->dummy_tx;
1310 				if (!xfer->rx_buf)
1311 					xfer->rx_buf = ctlr->dummy_rx;
1312 			}
1313 		}
1314 	}
1315 
1316 	return __spi_map_msg(ctlr, msg);
1317 }
1318 
1319 static int spi_transfer_wait(struct spi_controller *ctlr,
1320 			     struct spi_message *msg,
1321 			     struct spi_transfer *xfer)
1322 {
1323 	struct spi_statistics __percpu *statm = ctlr->pcpu_statistics;
1324 	struct spi_statistics __percpu *stats = msg->spi->pcpu_statistics;
1325 	u32 speed_hz = xfer->speed_hz;
1326 	unsigned long long ms;
1327 
1328 	if (spi_controller_is_slave(ctlr)) {
1329 		if (wait_for_completion_interruptible(&ctlr->xfer_completion)) {
1330 			dev_dbg(&msg->spi->dev, "SPI transfer interrupted\n");
1331 			return -EINTR;
1332 		}
1333 	} else {
1334 		if (!speed_hz)
1335 			speed_hz = 100000;
1336 
1337 		/*
1338 		 * For each byte we wait for 8 cycles of the SPI clock.
1339 		 * Since speed is defined in Hz and we want milliseconds,
1340 		 * use respective multiplier, but before the division,
1341 		 * otherwise we may get 0 for short transfers.
1342 		 */
1343 		ms = 8LL * MSEC_PER_SEC * xfer->len;
1344 		do_div(ms, speed_hz);
1345 
1346 		/*
1347 		 * Increase it twice and add 200 ms tolerance, use
1348 		 * predefined maximum in case of overflow.
1349 		 */
1350 		ms += ms + 200;
1351 		if (ms > UINT_MAX)
1352 			ms = UINT_MAX;
1353 
1354 		ms = wait_for_completion_timeout(&ctlr->xfer_completion,
1355 						 msecs_to_jiffies(ms));
1356 
1357 		if (ms == 0) {
1358 			SPI_STATISTICS_INCREMENT_FIELD(statm, timedout);
1359 			SPI_STATISTICS_INCREMENT_FIELD(stats, timedout);
1360 			dev_err(&msg->spi->dev,
1361 				"SPI transfer timed out\n");
1362 			return -ETIMEDOUT;
1363 		}
1364 	}
1365 
1366 	return 0;
1367 }
1368 
1369 static void _spi_transfer_delay_ns(u32 ns)
1370 {
1371 	if (!ns)
1372 		return;
1373 	if (ns <= NSEC_PER_USEC) {
1374 		ndelay(ns);
1375 	} else {
1376 		u32 us = DIV_ROUND_UP(ns, NSEC_PER_USEC);
1377 
1378 		if (us <= 10)
1379 			udelay(us);
1380 		else
1381 			usleep_range(us, us + DIV_ROUND_UP(us, 10));
1382 	}
1383 }
1384 
1385 int spi_delay_to_ns(struct spi_delay *_delay, struct spi_transfer *xfer)
1386 {
1387 	u32 delay = _delay->value;
1388 	u32 unit = _delay->unit;
1389 	u32 hz;
1390 
1391 	if (!delay)
1392 		return 0;
1393 
1394 	switch (unit) {
1395 	case SPI_DELAY_UNIT_USECS:
1396 		delay *= NSEC_PER_USEC;
1397 		break;
1398 	case SPI_DELAY_UNIT_NSECS:
1399 		/* Nothing to do here */
1400 		break;
1401 	case SPI_DELAY_UNIT_SCK:
1402 		/* Clock cycles need to be obtained from spi_transfer */
1403 		if (!xfer)
1404 			return -EINVAL;
1405 		/*
1406 		 * If there is unknown effective speed, approximate it
1407 		 * by underestimating with half of the requested Hz.
1408 		 */
1409 		hz = xfer->effective_speed_hz ?: xfer->speed_hz / 2;
1410 		if (!hz)
1411 			return -EINVAL;
1412 
1413 		/* Convert delay to nanoseconds */
1414 		delay *= DIV_ROUND_UP(NSEC_PER_SEC, hz);
1415 		break;
1416 	default:
1417 		return -EINVAL;
1418 	}
1419 
1420 	return delay;
1421 }
1422 EXPORT_SYMBOL_GPL(spi_delay_to_ns);
1423 
1424 int spi_delay_exec(struct spi_delay *_delay, struct spi_transfer *xfer)
1425 {
1426 	int delay;
1427 
1428 	might_sleep();
1429 
1430 	if (!_delay)
1431 		return -EINVAL;
1432 
1433 	delay = spi_delay_to_ns(_delay, xfer);
1434 	if (delay < 0)
1435 		return delay;
1436 
1437 	_spi_transfer_delay_ns(delay);
1438 
1439 	return 0;
1440 }
1441 EXPORT_SYMBOL_GPL(spi_delay_exec);
1442 
1443 static void _spi_transfer_cs_change_delay(struct spi_message *msg,
1444 					  struct spi_transfer *xfer)
1445 {
1446 	u32 default_delay_ns = 10 * NSEC_PER_USEC;
1447 	u32 delay = xfer->cs_change_delay.value;
1448 	u32 unit = xfer->cs_change_delay.unit;
1449 	int ret;
1450 
1451 	/* Return early on "fast" mode - for everything but USECS */
1452 	if (!delay) {
1453 		if (unit == SPI_DELAY_UNIT_USECS)
1454 			_spi_transfer_delay_ns(default_delay_ns);
1455 		return;
1456 	}
1457 
1458 	ret = spi_delay_exec(&xfer->cs_change_delay, xfer);
1459 	if (ret) {
1460 		dev_err_once(&msg->spi->dev,
1461 			     "Use of unsupported delay unit %i, using default of %luus\n",
1462 			     unit, default_delay_ns / NSEC_PER_USEC);
1463 		_spi_transfer_delay_ns(default_delay_ns);
1464 	}
1465 }
1466 
1467 void spi_transfer_cs_change_delay_exec(struct spi_message *msg,
1468 						  struct spi_transfer *xfer)
1469 {
1470 	_spi_transfer_cs_change_delay(msg, xfer);
1471 }
1472 EXPORT_SYMBOL_GPL(spi_transfer_cs_change_delay_exec);
1473 
1474 /*
1475  * spi_transfer_one_message - Default implementation of transfer_one_message()
1476  *
1477  * This is a standard implementation of transfer_one_message() for
1478  * drivers which implement a transfer_one() operation.  It provides
1479  * standard handling of delays and chip select management.
1480  */
1481 static int spi_transfer_one_message(struct spi_controller *ctlr,
1482 				    struct spi_message *msg)
1483 {
1484 	struct spi_transfer *xfer;
1485 	bool keep_cs = false;
1486 	int ret = 0;
1487 	struct spi_statistics __percpu *statm = ctlr->pcpu_statistics;
1488 	struct spi_statistics __percpu *stats = msg->spi->pcpu_statistics;
1489 
1490 	xfer = list_first_entry(&msg->transfers, struct spi_transfer, transfer_list);
1491 	spi_set_cs(msg->spi, !xfer->cs_off, false);
1492 
1493 	SPI_STATISTICS_INCREMENT_FIELD(statm, messages);
1494 	SPI_STATISTICS_INCREMENT_FIELD(stats, messages);
1495 
1496 	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
1497 		trace_spi_transfer_start(msg, xfer);
1498 
1499 		spi_statistics_add_transfer_stats(statm, xfer, ctlr);
1500 		spi_statistics_add_transfer_stats(stats, xfer, ctlr);
1501 
1502 		if (!ctlr->ptp_sts_supported) {
1503 			xfer->ptp_sts_word_pre = 0;
1504 			ptp_read_system_prets(xfer->ptp_sts);
1505 		}
1506 
1507 		if ((xfer->tx_buf || xfer->rx_buf) && xfer->len) {
1508 			reinit_completion(&ctlr->xfer_completion);
1509 
1510 fallback_pio:
1511 			spi_dma_sync_for_device(ctlr, xfer);
1512 			ret = ctlr->transfer_one(ctlr, msg->spi, xfer);
1513 			if (ret < 0) {
1514 				spi_dma_sync_for_cpu(ctlr, xfer);
1515 
1516 				if (ctlr->cur_msg_mapped &&
1517 				   (xfer->error & SPI_TRANS_FAIL_NO_START)) {
1518 					__spi_unmap_msg(ctlr, msg);
1519 					ctlr->fallback = true;
1520 					xfer->error &= ~SPI_TRANS_FAIL_NO_START;
1521 					goto fallback_pio;
1522 				}
1523 
1524 				SPI_STATISTICS_INCREMENT_FIELD(statm,
1525 							       errors);
1526 				SPI_STATISTICS_INCREMENT_FIELD(stats,
1527 							       errors);
1528 				dev_err(&msg->spi->dev,
1529 					"SPI transfer failed: %d\n", ret);
1530 				goto out;
1531 			}
1532 
1533 			if (ret > 0) {
1534 				ret = spi_transfer_wait(ctlr, msg, xfer);
1535 				if (ret < 0)
1536 					msg->status = ret;
1537 			}
1538 
1539 			spi_dma_sync_for_cpu(ctlr, xfer);
1540 		} else {
1541 			if (xfer->len)
1542 				dev_err(&msg->spi->dev,
1543 					"Bufferless transfer has length %u\n",
1544 					xfer->len);
1545 		}
1546 
1547 		if (!ctlr->ptp_sts_supported) {
1548 			ptp_read_system_postts(xfer->ptp_sts);
1549 			xfer->ptp_sts_word_post = xfer->len;
1550 		}
1551 
1552 		trace_spi_transfer_stop(msg, xfer);
1553 
1554 		if (msg->status != -EINPROGRESS)
1555 			goto out;
1556 
1557 		spi_transfer_delay_exec(xfer);
1558 
1559 		if (xfer->cs_change) {
1560 			if (list_is_last(&xfer->transfer_list,
1561 					 &msg->transfers)) {
1562 				keep_cs = true;
1563 			} else {
1564 				if (!xfer->cs_off)
1565 					spi_set_cs(msg->spi, false, false);
1566 				_spi_transfer_cs_change_delay(msg, xfer);
1567 				if (!list_next_entry(xfer, transfer_list)->cs_off)
1568 					spi_set_cs(msg->spi, true, false);
1569 			}
1570 		} else if (!list_is_last(&xfer->transfer_list, &msg->transfers) &&
1571 			   xfer->cs_off != list_next_entry(xfer, transfer_list)->cs_off) {
1572 			spi_set_cs(msg->spi, xfer->cs_off, false);
1573 		}
1574 
1575 		msg->actual_length += xfer->len;
1576 	}
1577 
1578 out:
1579 	if (ret != 0 || !keep_cs)
1580 		spi_set_cs(msg->spi, false, false);
1581 
1582 	if (msg->status == -EINPROGRESS)
1583 		msg->status = ret;
1584 
1585 	if (msg->status && ctlr->handle_err)
1586 		ctlr->handle_err(ctlr, msg);
1587 
1588 	spi_finalize_current_message(ctlr);
1589 
1590 	return ret;
1591 }
1592 
1593 /**
1594  * spi_finalize_current_transfer - report completion of a transfer
1595  * @ctlr: the controller reporting completion
1596  *
1597  * Called by SPI drivers using the core transfer_one_message()
1598  * implementation to notify it that the current interrupt driven
1599  * transfer has finished and the next one may be scheduled.
1600  */
1601 void spi_finalize_current_transfer(struct spi_controller *ctlr)
1602 {
1603 	complete(&ctlr->xfer_completion);
1604 }
1605 EXPORT_SYMBOL_GPL(spi_finalize_current_transfer);
1606 
1607 static void spi_idle_runtime_pm(struct spi_controller *ctlr)
1608 {
1609 	if (ctlr->auto_runtime_pm) {
1610 		pm_runtime_mark_last_busy(ctlr->dev.parent);
1611 		pm_runtime_put_autosuspend(ctlr->dev.parent);
1612 	}
1613 }
1614 
1615 static int __spi_pump_transfer_message(struct spi_controller *ctlr,
1616 		struct spi_message *msg, bool was_busy)
1617 {
1618 	struct spi_transfer *xfer;
1619 	int ret;
1620 
1621 	if (!was_busy && ctlr->auto_runtime_pm) {
1622 		ret = pm_runtime_get_sync(ctlr->dev.parent);
1623 		if (ret < 0) {
1624 			pm_runtime_put_noidle(ctlr->dev.parent);
1625 			dev_err(&ctlr->dev, "Failed to power device: %d\n",
1626 				ret);
1627 			return ret;
1628 		}
1629 	}
1630 
1631 	if (!was_busy)
1632 		trace_spi_controller_busy(ctlr);
1633 
1634 	if (!was_busy && ctlr->prepare_transfer_hardware) {
1635 		ret = ctlr->prepare_transfer_hardware(ctlr);
1636 		if (ret) {
1637 			dev_err(&ctlr->dev,
1638 				"failed to prepare transfer hardware: %d\n",
1639 				ret);
1640 
1641 			if (ctlr->auto_runtime_pm)
1642 				pm_runtime_put(ctlr->dev.parent);
1643 
1644 			msg->status = ret;
1645 			spi_finalize_current_message(ctlr);
1646 
1647 			return ret;
1648 		}
1649 	}
1650 
1651 	trace_spi_message_start(msg);
1652 
1653 	ret = spi_split_transfers_maxsize(ctlr, msg,
1654 					  spi_max_transfer_size(msg->spi),
1655 					  GFP_KERNEL | GFP_DMA);
1656 	if (ret) {
1657 		msg->status = ret;
1658 		spi_finalize_current_message(ctlr);
1659 		return ret;
1660 	}
1661 
1662 	if (ctlr->prepare_message) {
1663 		ret = ctlr->prepare_message(ctlr, msg);
1664 		if (ret) {
1665 			dev_err(&ctlr->dev, "failed to prepare message: %d\n",
1666 				ret);
1667 			msg->status = ret;
1668 			spi_finalize_current_message(ctlr);
1669 			return ret;
1670 		}
1671 		msg->prepared = true;
1672 	}
1673 
1674 	ret = spi_map_msg(ctlr, msg);
1675 	if (ret) {
1676 		msg->status = ret;
1677 		spi_finalize_current_message(ctlr);
1678 		return ret;
1679 	}
1680 
1681 	if (!ctlr->ptp_sts_supported && !ctlr->transfer_one) {
1682 		list_for_each_entry(xfer, &msg->transfers, transfer_list) {
1683 			xfer->ptp_sts_word_pre = 0;
1684 			ptp_read_system_prets(xfer->ptp_sts);
1685 		}
1686 	}
1687 
1688 	/*
1689 	 * Drivers implementation of transfer_one_message() must arrange for
1690 	 * spi_finalize_current_message() to get called. Most drivers will do
1691 	 * this in the calling context, but some don't. For those cases, a
1692 	 * completion is used to guarantee that this function does not return
1693 	 * until spi_finalize_current_message() is done accessing
1694 	 * ctlr->cur_msg.
1695 	 * Use of the following two flags enable to opportunistically skip the
1696 	 * use of the completion since its use involves expensive spin locks.
1697 	 * In case of a race with the context that calls
1698 	 * spi_finalize_current_message() the completion will always be used,
1699 	 * due to strict ordering of these flags using barriers.
1700 	 */
1701 	WRITE_ONCE(ctlr->cur_msg_incomplete, true);
1702 	WRITE_ONCE(ctlr->cur_msg_need_completion, false);
1703 	reinit_completion(&ctlr->cur_msg_completion);
1704 	smp_wmb(); /* Make these available to spi_finalize_current_message() */
1705 
1706 	ret = ctlr->transfer_one_message(ctlr, msg);
1707 	if (ret) {
1708 		dev_err(&ctlr->dev,
1709 			"failed to transfer one message from queue\n");
1710 		return ret;
1711 	}
1712 
1713 	WRITE_ONCE(ctlr->cur_msg_need_completion, true);
1714 	smp_mb(); /* See spi_finalize_current_message()... */
1715 	if (READ_ONCE(ctlr->cur_msg_incomplete))
1716 		wait_for_completion(&ctlr->cur_msg_completion);
1717 
1718 	return 0;
1719 }
1720 
1721 /**
1722  * __spi_pump_messages - function which processes SPI message queue
1723  * @ctlr: controller to process queue for
1724  * @in_kthread: true if we are in the context of the message pump thread
1725  *
1726  * This function checks if there is any SPI message in the queue that
1727  * needs processing and if so call out to the driver to initialize hardware
1728  * and transfer each message.
1729  *
1730  * Note that it is called both from the kthread itself and also from
1731  * inside spi_sync(); the queue extraction handling at the top of the
1732  * function should deal with this safely.
1733  */
1734 static void __spi_pump_messages(struct spi_controller *ctlr, bool in_kthread)
1735 {
1736 	struct spi_message *msg;
1737 	bool was_busy = false;
1738 	unsigned long flags;
1739 	int ret;
1740 
1741 	/* Take the I/O mutex */
1742 	mutex_lock(&ctlr->io_mutex);
1743 
1744 	/* Lock queue */
1745 	spin_lock_irqsave(&ctlr->queue_lock, flags);
1746 
1747 	/* Make sure we are not already running a message */
1748 	if (ctlr->cur_msg)
1749 		goto out_unlock;
1750 
1751 	/* Check if the queue is idle */
1752 	if (list_empty(&ctlr->queue) || !ctlr->running) {
1753 		if (!ctlr->busy)
1754 			goto out_unlock;
1755 
1756 		/* Defer any non-atomic teardown to the thread */
1757 		if (!in_kthread) {
1758 			if (!ctlr->dummy_rx && !ctlr->dummy_tx &&
1759 			    !ctlr->unprepare_transfer_hardware) {
1760 				spi_idle_runtime_pm(ctlr);
1761 				ctlr->busy = false;
1762 				ctlr->queue_empty = true;
1763 				trace_spi_controller_idle(ctlr);
1764 			} else {
1765 				kthread_queue_work(ctlr->kworker,
1766 						   &ctlr->pump_messages);
1767 			}
1768 			goto out_unlock;
1769 		}
1770 
1771 		ctlr->busy = false;
1772 		spin_unlock_irqrestore(&ctlr->queue_lock, flags);
1773 
1774 		kfree(ctlr->dummy_rx);
1775 		ctlr->dummy_rx = NULL;
1776 		kfree(ctlr->dummy_tx);
1777 		ctlr->dummy_tx = NULL;
1778 		if (ctlr->unprepare_transfer_hardware &&
1779 		    ctlr->unprepare_transfer_hardware(ctlr))
1780 			dev_err(&ctlr->dev,
1781 				"failed to unprepare transfer hardware\n");
1782 		spi_idle_runtime_pm(ctlr);
1783 		trace_spi_controller_idle(ctlr);
1784 
1785 		spin_lock_irqsave(&ctlr->queue_lock, flags);
1786 		ctlr->queue_empty = true;
1787 		goto out_unlock;
1788 	}
1789 
1790 	/* Extract head of queue */
1791 	msg = list_first_entry(&ctlr->queue, struct spi_message, queue);
1792 	ctlr->cur_msg = msg;
1793 
1794 	list_del_init(&msg->queue);
1795 	if (ctlr->busy)
1796 		was_busy = true;
1797 	else
1798 		ctlr->busy = true;
1799 	spin_unlock_irqrestore(&ctlr->queue_lock, flags);
1800 
1801 	ret = __spi_pump_transfer_message(ctlr, msg, was_busy);
1802 	kthread_queue_work(ctlr->kworker, &ctlr->pump_messages);
1803 
1804 	ctlr->cur_msg = NULL;
1805 	ctlr->fallback = false;
1806 
1807 	mutex_unlock(&ctlr->io_mutex);
1808 
1809 	/* Prod the scheduler in case transfer_one() was busy waiting */
1810 	if (!ret)
1811 		cond_resched();
1812 	return;
1813 
1814 out_unlock:
1815 	spin_unlock_irqrestore(&ctlr->queue_lock, flags);
1816 	mutex_unlock(&ctlr->io_mutex);
1817 }
1818 
1819 /**
1820  * spi_pump_messages - kthread work function which processes spi message queue
1821  * @work: pointer to kthread work struct contained in the controller struct
1822  */
1823 static void spi_pump_messages(struct kthread_work *work)
1824 {
1825 	struct spi_controller *ctlr =
1826 		container_of(work, struct spi_controller, pump_messages);
1827 
1828 	__spi_pump_messages(ctlr, true);
1829 }
1830 
1831 /**
1832  * spi_take_timestamp_pre - helper to collect the beginning of the TX timestamp
1833  * @ctlr: Pointer to the spi_controller structure of the driver
1834  * @xfer: Pointer to the transfer being timestamped
1835  * @progress: How many words (not bytes) have been transferred so far
1836  * @irqs_off: If true, will disable IRQs and preemption for the duration of the
1837  *	      transfer, for less jitter in time measurement. Only compatible
1838  *	      with PIO drivers. If true, must follow up with
1839  *	      spi_take_timestamp_post or otherwise system will crash.
1840  *	      WARNING: for fully predictable results, the CPU frequency must
1841  *	      also be under control (governor).
1842  *
1843  * This is a helper for drivers to collect the beginning of the TX timestamp
1844  * for the requested byte from the SPI transfer. The frequency with which this
1845  * function must be called (once per word, once for the whole transfer, once
1846  * per batch of words etc) is arbitrary as long as the @tx buffer offset is
1847  * greater than or equal to the requested byte at the time of the call. The
1848  * timestamp is only taken once, at the first such call. It is assumed that
1849  * the driver advances its @tx buffer pointer monotonically.
1850  */
1851 void spi_take_timestamp_pre(struct spi_controller *ctlr,
1852 			    struct spi_transfer *xfer,
1853 			    size_t progress, bool irqs_off)
1854 {
1855 	if (!xfer->ptp_sts)
1856 		return;
1857 
1858 	if (xfer->timestamped)
1859 		return;
1860 
1861 	if (progress > xfer->ptp_sts_word_pre)
1862 		return;
1863 
1864 	/* Capture the resolution of the timestamp */
1865 	xfer->ptp_sts_word_pre = progress;
1866 
1867 	if (irqs_off) {
1868 		local_irq_save(ctlr->irq_flags);
1869 		preempt_disable();
1870 	}
1871 
1872 	ptp_read_system_prets(xfer->ptp_sts);
1873 }
1874 EXPORT_SYMBOL_GPL(spi_take_timestamp_pre);
1875 
1876 /**
1877  * spi_take_timestamp_post - helper to collect the end of the TX timestamp
1878  * @ctlr: Pointer to the spi_controller structure of the driver
1879  * @xfer: Pointer to the transfer being timestamped
1880  * @progress: How many words (not bytes) have been transferred so far
1881  * @irqs_off: If true, will re-enable IRQs and preemption for the local CPU.
1882  *
1883  * This is a helper for drivers to collect the end of the TX timestamp for
1884  * the requested byte from the SPI transfer. Can be called with an arbitrary
1885  * frequency: only the first call where @tx exceeds or is equal to the
1886  * requested word will be timestamped.
1887  */
1888 void spi_take_timestamp_post(struct spi_controller *ctlr,
1889 			     struct spi_transfer *xfer,
1890 			     size_t progress, bool irqs_off)
1891 {
1892 	if (!xfer->ptp_sts)
1893 		return;
1894 
1895 	if (xfer->timestamped)
1896 		return;
1897 
1898 	if (progress < xfer->ptp_sts_word_post)
1899 		return;
1900 
1901 	ptp_read_system_postts(xfer->ptp_sts);
1902 
1903 	if (irqs_off) {
1904 		local_irq_restore(ctlr->irq_flags);
1905 		preempt_enable();
1906 	}
1907 
1908 	/* Capture the resolution of the timestamp */
1909 	xfer->ptp_sts_word_post = progress;
1910 
1911 	xfer->timestamped = 1;
1912 }
1913 EXPORT_SYMBOL_GPL(spi_take_timestamp_post);
1914 
1915 /**
1916  * spi_set_thread_rt - set the controller to pump at realtime priority
1917  * @ctlr: controller to boost priority of
1918  *
1919  * This can be called because the controller requested realtime priority
1920  * (by setting the ->rt value before calling spi_register_controller()) or
1921  * because a device on the bus said that its transfers needed realtime
1922  * priority.
1923  *
1924  * NOTE: at the moment if any device on a bus says it needs realtime then
1925  * the thread will be at realtime priority for all transfers on that
1926  * controller.  If this eventually becomes a problem we may see if we can
1927  * find a way to boost the priority only temporarily during relevant
1928  * transfers.
1929  */
1930 static void spi_set_thread_rt(struct spi_controller *ctlr)
1931 {
1932 	dev_info(&ctlr->dev,
1933 		"will run message pump with realtime priority\n");
1934 	sched_set_fifo(ctlr->kworker->task);
1935 }
1936 
1937 static int spi_init_queue(struct spi_controller *ctlr)
1938 {
1939 	ctlr->running = false;
1940 	ctlr->busy = false;
1941 	ctlr->queue_empty = true;
1942 
1943 	ctlr->kworker = kthread_create_worker(0, dev_name(&ctlr->dev));
1944 	if (IS_ERR(ctlr->kworker)) {
1945 		dev_err(&ctlr->dev, "failed to create message pump kworker\n");
1946 		return PTR_ERR(ctlr->kworker);
1947 	}
1948 
1949 	kthread_init_work(&ctlr->pump_messages, spi_pump_messages);
1950 
1951 	/*
1952 	 * Controller config will indicate if this controller should run the
1953 	 * message pump with high (realtime) priority to reduce the transfer
1954 	 * latency on the bus by minimising the delay between a transfer
1955 	 * request and the scheduling of the message pump thread. Without this
1956 	 * setting the message pump thread will remain at default priority.
1957 	 */
1958 	if (ctlr->rt)
1959 		spi_set_thread_rt(ctlr);
1960 
1961 	return 0;
1962 }
1963 
1964 /**
1965  * spi_get_next_queued_message() - called by driver to check for queued
1966  * messages
1967  * @ctlr: the controller to check for queued messages
1968  *
1969  * If there are more messages in the queue, the next message is returned from
1970  * this call.
1971  *
1972  * Return: the next message in the queue, else NULL if the queue is empty.
1973  */
1974 struct spi_message *spi_get_next_queued_message(struct spi_controller *ctlr)
1975 {
1976 	struct spi_message *next;
1977 	unsigned long flags;
1978 
1979 	/* Get a pointer to the next message, if any */
1980 	spin_lock_irqsave(&ctlr->queue_lock, flags);
1981 	next = list_first_entry_or_null(&ctlr->queue, struct spi_message,
1982 					queue);
1983 	spin_unlock_irqrestore(&ctlr->queue_lock, flags);
1984 
1985 	return next;
1986 }
1987 EXPORT_SYMBOL_GPL(spi_get_next_queued_message);
1988 
1989 /**
1990  * spi_finalize_current_message() - the current message is complete
1991  * @ctlr: the controller to return the message to
1992  *
1993  * Called by the driver to notify the core that the message in the front of the
1994  * queue is complete and can be removed from the queue.
1995  */
1996 void spi_finalize_current_message(struct spi_controller *ctlr)
1997 {
1998 	struct spi_transfer *xfer;
1999 	struct spi_message *mesg;
2000 	int ret;
2001 
2002 	mesg = ctlr->cur_msg;
2003 
2004 	if (!ctlr->ptp_sts_supported && !ctlr->transfer_one) {
2005 		list_for_each_entry(xfer, &mesg->transfers, transfer_list) {
2006 			ptp_read_system_postts(xfer->ptp_sts);
2007 			xfer->ptp_sts_word_post = xfer->len;
2008 		}
2009 	}
2010 
2011 	if (unlikely(ctlr->ptp_sts_supported))
2012 		list_for_each_entry(xfer, &mesg->transfers, transfer_list)
2013 			WARN_ON_ONCE(xfer->ptp_sts && !xfer->timestamped);
2014 
2015 	spi_unmap_msg(ctlr, mesg);
2016 
2017 	/*
2018 	 * In the prepare_messages callback the SPI bus has the opportunity
2019 	 * to split a transfer to smaller chunks.
2020 	 *
2021 	 * Release the split transfers here since spi_map_msg() is done on
2022 	 * the split transfers.
2023 	 */
2024 	spi_res_release(ctlr, mesg);
2025 
2026 	if (mesg->prepared && ctlr->unprepare_message) {
2027 		ret = ctlr->unprepare_message(ctlr, mesg);
2028 		if (ret) {
2029 			dev_err(&ctlr->dev, "failed to unprepare message: %d\n",
2030 				ret);
2031 		}
2032 	}
2033 
2034 	mesg->prepared = false;
2035 
2036 	WRITE_ONCE(ctlr->cur_msg_incomplete, false);
2037 	smp_mb(); /* See __spi_pump_transfer_message()... */
2038 	if (READ_ONCE(ctlr->cur_msg_need_completion))
2039 		complete(&ctlr->cur_msg_completion);
2040 
2041 	trace_spi_message_done(mesg);
2042 
2043 	mesg->state = NULL;
2044 	if (mesg->complete)
2045 		mesg->complete(mesg->context);
2046 }
2047 EXPORT_SYMBOL_GPL(spi_finalize_current_message);
2048 
2049 static int spi_start_queue(struct spi_controller *ctlr)
2050 {
2051 	unsigned long flags;
2052 
2053 	spin_lock_irqsave(&ctlr->queue_lock, flags);
2054 
2055 	if (ctlr->running || ctlr->busy) {
2056 		spin_unlock_irqrestore(&ctlr->queue_lock, flags);
2057 		return -EBUSY;
2058 	}
2059 
2060 	ctlr->running = true;
2061 	ctlr->cur_msg = NULL;
2062 	spin_unlock_irqrestore(&ctlr->queue_lock, flags);
2063 
2064 	kthread_queue_work(ctlr->kworker, &ctlr->pump_messages);
2065 
2066 	return 0;
2067 }
2068 
2069 static int spi_stop_queue(struct spi_controller *ctlr)
2070 {
2071 	unsigned long flags;
2072 	unsigned limit = 500;
2073 	int ret = 0;
2074 
2075 	spin_lock_irqsave(&ctlr->queue_lock, flags);
2076 
2077 	/*
2078 	 * This is a bit lame, but is optimized for the common execution path.
2079 	 * A wait_queue on the ctlr->busy could be used, but then the common
2080 	 * execution path (pump_messages) would be required to call wake_up or
2081 	 * friends on every SPI message. Do this instead.
2082 	 */
2083 	while ((!list_empty(&ctlr->queue) || ctlr->busy) && limit--) {
2084 		spin_unlock_irqrestore(&ctlr->queue_lock, flags);
2085 		usleep_range(10000, 11000);
2086 		spin_lock_irqsave(&ctlr->queue_lock, flags);
2087 	}
2088 
2089 	if (!list_empty(&ctlr->queue) || ctlr->busy)
2090 		ret = -EBUSY;
2091 	else
2092 		ctlr->running = false;
2093 
2094 	spin_unlock_irqrestore(&ctlr->queue_lock, flags);
2095 
2096 	return ret;
2097 }
2098 
2099 static int spi_destroy_queue(struct spi_controller *ctlr)
2100 {
2101 	int ret;
2102 
2103 	ret = spi_stop_queue(ctlr);
2104 
2105 	/*
2106 	 * kthread_flush_worker will block until all work is done.
2107 	 * If the reason that stop_queue timed out is that the work will never
2108 	 * finish, then it does no good to call flush/stop thread, so
2109 	 * return anyway.
2110 	 */
2111 	if (ret) {
2112 		dev_err(&ctlr->dev, "problem destroying queue\n");
2113 		return ret;
2114 	}
2115 
2116 	kthread_destroy_worker(ctlr->kworker);
2117 
2118 	return 0;
2119 }
2120 
2121 static int __spi_queued_transfer(struct spi_device *spi,
2122 				 struct spi_message *msg,
2123 				 bool need_pump)
2124 {
2125 	struct spi_controller *ctlr = spi->controller;
2126 	unsigned long flags;
2127 
2128 	spin_lock_irqsave(&ctlr->queue_lock, flags);
2129 
2130 	if (!ctlr->running) {
2131 		spin_unlock_irqrestore(&ctlr->queue_lock, flags);
2132 		return -ESHUTDOWN;
2133 	}
2134 	msg->actual_length = 0;
2135 	msg->status = -EINPROGRESS;
2136 
2137 	list_add_tail(&msg->queue, &ctlr->queue);
2138 	ctlr->queue_empty = false;
2139 	if (!ctlr->busy && need_pump)
2140 		kthread_queue_work(ctlr->kworker, &ctlr->pump_messages);
2141 
2142 	spin_unlock_irqrestore(&ctlr->queue_lock, flags);
2143 	return 0;
2144 }
2145 
2146 /**
2147  * spi_queued_transfer - transfer function for queued transfers
2148  * @spi: SPI device which is requesting transfer
2149  * @msg: SPI message which is to handled is queued to driver queue
2150  *
2151  * Return: zero on success, else a negative error code.
2152  */
2153 static int spi_queued_transfer(struct spi_device *spi, struct spi_message *msg)
2154 {
2155 	return __spi_queued_transfer(spi, msg, true);
2156 }
2157 
2158 static int spi_controller_initialize_queue(struct spi_controller *ctlr)
2159 {
2160 	int ret;
2161 
2162 	ctlr->transfer = spi_queued_transfer;
2163 	if (!ctlr->transfer_one_message)
2164 		ctlr->transfer_one_message = spi_transfer_one_message;
2165 
2166 	/* Initialize and start queue */
2167 	ret = spi_init_queue(ctlr);
2168 	if (ret) {
2169 		dev_err(&ctlr->dev, "problem initializing queue\n");
2170 		goto err_init_queue;
2171 	}
2172 	ctlr->queued = true;
2173 	ret = spi_start_queue(ctlr);
2174 	if (ret) {
2175 		dev_err(&ctlr->dev, "problem starting queue\n");
2176 		goto err_start_queue;
2177 	}
2178 
2179 	return 0;
2180 
2181 err_start_queue:
2182 	spi_destroy_queue(ctlr);
2183 err_init_queue:
2184 	return ret;
2185 }
2186 
2187 /**
2188  * spi_flush_queue - Send all pending messages in the queue from the callers'
2189  *		     context
2190  * @ctlr: controller to process queue for
2191  *
2192  * This should be used when one wants to ensure all pending messages have been
2193  * sent before doing something. Is used by the spi-mem code to make sure SPI
2194  * memory operations do not preempt regular SPI transfers that have been queued
2195  * before the spi-mem operation.
2196  */
2197 void spi_flush_queue(struct spi_controller *ctlr)
2198 {
2199 	if (ctlr->transfer == spi_queued_transfer)
2200 		__spi_pump_messages(ctlr, false);
2201 }
2202 
2203 /*-------------------------------------------------------------------------*/
2204 
2205 #if defined(CONFIG_OF)
2206 static void of_spi_parse_dt_cs_delay(struct device_node *nc,
2207 				     struct spi_delay *delay, const char *prop)
2208 {
2209 	u32 value;
2210 
2211 	if (!of_property_read_u32(nc, prop, &value)) {
2212 		if (value > U16_MAX) {
2213 			delay->value = DIV_ROUND_UP(value, 1000);
2214 			delay->unit = SPI_DELAY_UNIT_USECS;
2215 		} else {
2216 			delay->value = value;
2217 			delay->unit = SPI_DELAY_UNIT_NSECS;
2218 		}
2219 	}
2220 }
2221 
2222 static int of_spi_parse_dt(struct spi_controller *ctlr, struct spi_device *spi,
2223 			   struct device_node *nc)
2224 {
2225 	u32 value;
2226 	int rc;
2227 
2228 	/* Mode (clock phase/polarity/etc.) */
2229 	if (of_property_read_bool(nc, "spi-cpha"))
2230 		spi->mode |= SPI_CPHA;
2231 	if (of_property_read_bool(nc, "spi-cpol"))
2232 		spi->mode |= SPI_CPOL;
2233 	if (of_property_read_bool(nc, "spi-3wire"))
2234 		spi->mode |= SPI_3WIRE;
2235 	if (of_property_read_bool(nc, "spi-lsb-first"))
2236 		spi->mode |= SPI_LSB_FIRST;
2237 	if (of_property_read_bool(nc, "spi-cs-high"))
2238 		spi->mode |= SPI_CS_HIGH;
2239 
2240 	/* Device DUAL/QUAD mode */
2241 	if (!of_property_read_u32(nc, "spi-tx-bus-width", &value)) {
2242 		switch (value) {
2243 		case 0:
2244 			spi->mode |= SPI_NO_TX;
2245 			break;
2246 		case 1:
2247 			break;
2248 		case 2:
2249 			spi->mode |= SPI_TX_DUAL;
2250 			break;
2251 		case 4:
2252 			spi->mode |= SPI_TX_QUAD;
2253 			break;
2254 		case 8:
2255 			spi->mode |= SPI_TX_OCTAL;
2256 			break;
2257 		default:
2258 			dev_warn(&ctlr->dev,
2259 				"spi-tx-bus-width %d not supported\n",
2260 				value);
2261 			break;
2262 		}
2263 	}
2264 
2265 	if (!of_property_read_u32(nc, "spi-rx-bus-width", &value)) {
2266 		switch (value) {
2267 		case 0:
2268 			spi->mode |= SPI_NO_RX;
2269 			break;
2270 		case 1:
2271 			break;
2272 		case 2:
2273 			spi->mode |= SPI_RX_DUAL;
2274 			break;
2275 		case 4:
2276 			spi->mode |= SPI_RX_QUAD;
2277 			break;
2278 		case 8:
2279 			spi->mode |= SPI_RX_OCTAL;
2280 			break;
2281 		default:
2282 			dev_warn(&ctlr->dev,
2283 				"spi-rx-bus-width %d not supported\n",
2284 				value);
2285 			break;
2286 		}
2287 	}
2288 
2289 	if (spi_controller_is_slave(ctlr)) {
2290 		if (!of_node_name_eq(nc, "slave")) {
2291 			dev_err(&ctlr->dev, "%pOF is not called 'slave'\n",
2292 				nc);
2293 			return -EINVAL;
2294 		}
2295 		return 0;
2296 	}
2297 
2298 	/* Device address */
2299 	rc = of_property_read_u32(nc, "reg", &value);
2300 	if (rc) {
2301 		dev_err(&ctlr->dev, "%pOF has no valid 'reg' property (%d)\n",
2302 			nc, rc);
2303 		return rc;
2304 	}
2305 	spi_set_chipselect(spi, 0, value);
2306 
2307 	/* Device speed */
2308 	if (!of_property_read_u32(nc, "spi-max-frequency", &value))
2309 		spi->max_speed_hz = value;
2310 
2311 	/* Device CS delays */
2312 	of_spi_parse_dt_cs_delay(nc, &spi->cs_setup, "spi-cs-setup-delay-ns");
2313 	of_spi_parse_dt_cs_delay(nc, &spi->cs_hold, "spi-cs-hold-delay-ns");
2314 	of_spi_parse_dt_cs_delay(nc, &spi->cs_inactive, "spi-cs-inactive-delay-ns");
2315 
2316 	return 0;
2317 }
2318 
2319 static struct spi_device *
2320 of_register_spi_device(struct spi_controller *ctlr, struct device_node *nc)
2321 {
2322 	struct spi_device *spi;
2323 	int rc;
2324 
2325 	/* Alloc an spi_device */
2326 	spi = spi_alloc_device(ctlr);
2327 	if (!spi) {
2328 		dev_err(&ctlr->dev, "spi_device alloc error for %pOF\n", nc);
2329 		rc = -ENOMEM;
2330 		goto err_out;
2331 	}
2332 
2333 	/* Select device driver */
2334 	rc = of_alias_from_compatible(nc, spi->modalias,
2335 				      sizeof(spi->modalias));
2336 	if (rc < 0) {
2337 		dev_err(&ctlr->dev, "cannot find modalias for %pOF\n", nc);
2338 		goto err_out;
2339 	}
2340 
2341 	rc = of_spi_parse_dt(ctlr, spi, nc);
2342 	if (rc)
2343 		goto err_out;
2344 
2345 	/* Store a pointer to the node in the device structure */
2346 	of_node_get(nc);
2347 
2348 	device_set_node(&spi->dev, of_fwnode_handle(nc));
2349 
2350 	/* Register the new device */
2351 	rc = spi_add_device(spi);
2352 	if (rc) {
2353 		dev_err(&ctlr->dev, "spi_device register error %pOF\n", nc);
2354 		goto err_of_node_put;
2355 	}
2356 
2357 	return spi;
2358 
2359 err_of_node_put:
2360 	of_node_put(nc);
2361 err_out:
2362 	spi_dev_put(spi);
2363 	return ERR_PTR(rc);
2364 }
2365 
2366 /**
2367  * of_register_spi_devices() - Register child devices onto the SPI bus
2368  * @ctlr:	Pointer to spi_controller device
2369  *
2370  * Registers an spi_device for each child node of controller node which
2371  * represents a valid SPI slave.
2372  */
2373 static void of_register_spi_devices(struct spi_controller *ctlr)
2374 {
2375 	struct spi_device *spi;
2376 	struct device_node *nc;
2377 
2378 	for_each_available_child_of_node(ctlr->dev.of_node, nc) {
2379 		if (of_node_test_and_set_flag(nc, OF_POPULATED))
2380 			continue;
2381 		spi = of_register_spi_device(ctlr, nc);
2382 		if (IS_ERR(spi)) {
2383 			dev_warn(&ctlr->dev,
2384 				 "Failed to create SPI device for %pOF\n", nc);
2385 			of_node_clear_flag(nc, OF_POPULATED);
2386 		}
2387 	}
2388 }
2389 #else
2390 static void of_register_spi_devices(struct spi_controller *ctlr) { }
2391 #endif
2392 
2393 /**
2394  * spi_new_ancillary_device() - Register ancillary SPI device
2395  * @spi:         Pointer to the main SPI device registering the ancillary device
2396  * @chip_select: Chip Select of the ancillary device
2397  *
2398  * Register an ancillary SPI device; for example some chips have a chip-select
2399  * for normal device usage and another one for setup/firmware upload.
2400  *
2401  * This may only be called from main SPI device's probe routine.
2402  *
2403  * Return: 0 on success; negative errno on failure
2404  */
2405 struct spi_device *spi_new_ancillary_device(struct spi_device *spi,
2406 					     u8 chip_select)
2407 {
2408 	struct spi_controller *ctlr = spi->controller;
2409 	struct spi_device *ancillary;
2410 	int rc = 0;
2411 
2412 	/* Alloc an spi_device */
2413 	ancillary = spi_alloc_device(ctlr);
2414 	if (!ancillary) {
2415 		rc = -ENOMEM;
2416 		goto err_out;
2417 	}
2418 
2419 	strscpy(ancillary->modalias, "dummy", sizeof(ancillary->modalias));
2420 
2421 	/* Use provided chip-select for ancillary device */
2422 	spi_set_chipselect(ancillary, 0, chip_select);
2423 
2424 	/* Take over SPI mode/speed from SPI main device */
2425 	ancillary->max_speed_hz = spi->max_speed_hz;
2426 	ancillary->mode = spi->mode;
2427 
2428 	WARN_ON(!mutex_is_locked(&ctlr->add_lock));
2429 
2430 	/* Register the new device */
2431 	rc = __spi_add_device(ancillary);
2432 	if (rc) {
2433 		dev_err(&spi->dev, "failed to register ancillary device\n");
2434 		goto err_out;
2435 	}
2436 
2437 	return ancillary;
2438 
2439 err_out:
2440 	spi_dev_put(ancillary);
2441 	return ERR_PTR(rc);
2442 }
2443 EXPORT_SYMBOL_GPL(spi_new_ancillary_device);
2444 
2445 #ifdef CONFIG_ACPI
2446 struct acpi_spi_lookup {
2447 	struct spi_controller 	*ctlr;
2448 	u32			max_speed_hz;
2449 	u32			mode;
2450 	int			irq;
2451 	u8			bits_per_word;
2452 	u8			chip_select;
2453 	int			n;
2454 	int			index;
2455 };
2456 
2457 static int acpi_spi_count(struct acpi_resource *ares, void *data)
2458 {
2459 	struct acpi_resource_spi_serialbus *sb;
2460 	int *count = data;
2461 
2462 	if (ares->type != ACPI_RESOURCE_TYPE_SERIAL_BUS)
2463 		return 1;
2464 
2465 	sb = &ares->data.spi_serial_bus;
2466 	if (sb->type != ACPI_RESOURCE_SERIAL_TYPE_SPI)
2467 		return 1;
2468 
2469 	*count = *count + 1;
2470 
2471 	return 1;
2472 }
2473 
2474 /**
2475  * acpi_spi_count_resources - Count the number of SpiSerialBus resources
2476  * @adev:	ACPI device
2477  *
2478  * Return: the number of SpiSerialBus resources in the ACPI-device's
2479  * resource-list; or a negative error code.
2480  */
2481 int acpi_spi_count_resources(struct acpi_device *adev)
2482 {
2483 	LIST_HEAD(r);
2484 	int count = 0;
2485 	int ret;
2486 
2487 	ret = acpi_dev_get_resources(adev, &r, acpi_spi_count, &count);
2488 	if (ret < 0)
2489 		return ret;
2490 
2491 	acpi_dev_free_resource_list(&r);
2492 
2493 	return count;
2494 }
2495 EXPORT_SYMBOL_GPL(acpi_spi_count_resources);
2496 
2497 static void acpi_spi_parse_apple_properties(struct acpi_device *dev,
2498 					    struct acpi_spi_lookup *lookup)
2499 {
2500 	const union acpi_object *obj;
2501 
2502 	if (!x86_apple_machine)
2503 		return;
2504 
2505 	if (!acpi_dev_get_property(dev, "spiSclkPeriod", ACPI_TYPE_BUFFER, &obj)
2506 	    && obj->buffer.length >= 4)
2507 		lookup->max_speed_hz  = NSEC_PER_SEC / *(u32 *)obj->buffer.pointer;
2508 
2509 	if (!acpi_dev_get_property(dev, "spiWordSize", ACPI_TYPE_BUFFER, &obj)
2510 	    && obj->buffer.length == 8)
2511 		lookup->bits_per_word = *(u64 *)obj->buffer.pointer;
2512 
2513 	if (!acpi_dev_get_property(dev, "spiBitOrder", ACPI_TYPE_BUFFER, &obj)
2514 	    && obj->buffer.length == 8 && !*(u64 *)obj->buffer.pointer)
2515 		lookup->mode |= SPI_LSB_FIRST;
2516 
2517 	if (!acpi_dev_get_property(dev, "spiSPO", ACPI_TYPE_BUFFER, &obj)
2518 	    && obj->buffer.length == 8 &&  *(u64 *)obj->buffer.pointer)
2519 		lookup->mode |= SPI_CPOL;
2520 
2521 	if (!acpi_dev_get_property(dev, "spiSPH", ACPI_TYPE_BUFFER, &obj)
2522 	    && obj->buffer.length == 8 &&  *(u64 *)obj->buffer.pointer)
2523 		lookup->mode |= SPI_CPHA;
2524 }
2525 
2526 static int acpi_spi_add_resource(struct acpi_resource *ares, void *data)
2527 {
2528 	struct acpi_spi_lookup *lookup = data;
2529 	struct spi_controller *ctlr = lookup->ctlr;
2530 
2531 	if (ares->type == ACPI_RESOURCE_TYPE_SERIAL_BUS) {
2532 		struct acpi_resource_spi_serialbus *sb;
2533 		acpi_handle parent_handle;
2534 		acpi_status status;
2535 
2536 		sb = &ares->data.spi_serial_bus;
2537 		if (sb->type == ACPI_RESOURCE_SERIAL_TYPE_SPI) {
2538 
2539 			if (lookup->index != -1 && lookup->n++ != lookup->index)
2540 				return 1;
2541 
2542 			status = acpi_get_handle(NULL,
2543 						 sb->resource_source.string_ptr,
2544 						 &parent_handle);
2545 
2546 			if (ACPI_FAILURE(status))
2547 				return -ENODEV;
2548 
2549 			if (ctlr) {
2550 				if (ACPI_HANDLE(ctlr->dev.parent) != parent_handle)
2551 					return -ENODEV;
2552 			} else {
2553 				struct acpi_device *adev;
2554 
2555 				adev = acpi_fetch_acpi_dev(parent_handle);
2556 				if (!adev)
2557 					return -ENODEV;
2558 
2559 				ctlr = acpi_spi_find_controller_by_adev(adev);
2560 				if (!ctlr)
2561 					return -EPROBE_DEFER;
2562 
2563 				lookup->ctlr = ctlr;
2564 			}
2565 
2566 			/*
2567 			 * ACPI DeviceSelection numbering is handled by the
2568 			 * host controller driver in Windows and can vary
2569 			 * from driver to driver. In Linux we always expect
2570 			 * 0 .. max - 1 so we need to ask the driver to
2571 			 * translate between the two schemes.
2572 			 */
2573 			if (ctlr->fw_translate_cs) {
2574 				int cs = ctlr->fw_translate_cs(ctlr,
2575 						sb->device_selection);
2576 				if (cs < 0)
2577 					return cs;
2578 				lookup->chip_select = cs;
2579 			} else {
2580 				lookup->chip_select = sb->device_selection;
2581 			}
2582 
2583 			lookup->max_speed_hz = sb->connection_speed;
2584 			lookup->bits_per_word = sb->data_bit_length;
2585 
2586 			if (sb->clock_phase == ACPI_SPI_SECOND_PHASE)
2587 				lookup->mode |= SPI_CPHA;
2588 			if (sb->clock_polarity == ACPI_SPI_START_HIGH)
2589 				lookup->mode |= SPI_CPOL;
2590 			if (sb->device_polarity == ACPI_SPI_ACTIVE_HIGH)
2591 				lookup->mode |= SPI_CS_HIGH;
2592 		}
2593 	} else if (lookup->irq < 0) {
2594 		struct resource r;
2595 
2596 		if (acpi_dev_resource_interrupt(ares, 0, &r))
2597 			lookup->irq = r.start;
2598 	}
2599 
2600 	/* Always tell the ACPI core to skip this resource */
2601 	return 1;
2602 }
2603 
2604 /**
2605  * acpi_spi_device_alloc - Allocate a spi device, and fill it in with ACPI information
2606  * @ctlr: controller to which the spi device belongs
2607  * @adev: ACPI Device for the spi device
2608  * @index: Index of the spi resource inside the ACPI Node
2609  *
2610  * This should be used to allocate a new SPI device from and ACPI Device node.
2611  * The caller is responsible for calling spi_add_device to register the SPI device.
2612  *
2613  * If ctlr is set to NULL, the Controller for the SPI device will be looked up
2614  * using the resource.
2615  * If index is set to -1, index is not used.
2616  * Note: If index is -1, ctlr must be set.
2617  *
2618  * Return: a pointer to the new device, or ERR_PTR on error.
2619  */
2620 struct spi_device *acpi_spi_device_alloc(struct spi_controller *ctlr,
2621 					 struct acpi_device *adev,
2622 					 int index)
2623 {
2624 	acpi_handle parent_handle = NULL;
2625 	struct list_head resource_list;
2626 	struct acpi_spi_lookup lookup = {};
2627 	struct spi_device *spi;
2628 	int ret;
2629 
2630 	if (!ctlr && index == -1)
2631 		return ERR_PTR(-EINVAL);
2632 
2633 	lookup.ctlr		= ctlr;
2634 	lookup.irq		= -1;
2635 	lookup.index		= index;
2636 	lookup.n		= 0;
2637 
2638 	INIT_LIST_HEAD(&resource_list);
2639 	ret = acpi_dev_get_resources(adev, &resource_list,
2640 				     acpi_spi_add_resource, &lookup);
2641 	acpi_dev_free_resource_list(&resource_list);
2642 
2643 	if (ret < 0)
2644 		/* Found SPI in _CRS but it points to another controller */
2645 		return ERR_PTR(ret);
2646 
2647 	if (!lookup.max_speed_hz &&
2648 	    ACPI_SUCCESS(acpi_get_parent(adev->handle, &parent_handle)) &&
2649 	    ACPI_HANDLE(lookup.ctlr->dev.parent) == parent_handle) {
2650 		/* Apple does not use _CRS but nested devices for SPI slaves */
2651 		acpi_spi_parse_apple_properties(adev, &lookup);
2652 	}
2653 
2654 	if (!lookup.max_speed_hz)
2655 		return ERR_PTR(-ENODEV);
2656 
2657 	spi = spi_alloc_device(lookup.ctlr);
2658 	if (!spi) {
2659 		dev_err(&lookup.ctlr->dev, "failed to allocate SPI device for %s\n",
2660 			dev_name(&adev->dev));
2661 		return ERR_PTR(-ENOMEM);
2662 	}
2663 
2664 	ACPI_COMPANION_SET(&spi->dev, adev);
2665 	spi->max_speed_hz	= lookup.max_speed_hz;
2666 	spi->mode		|= lookup.mode;
2667 	spi->irq		= lookup.irq;
2668 	spi->bits_per_word	= lookup.bits_per_word;
2669 	spi_set_chipselect(spi, 0, lookup.chip_select);
2670 
2671 	return spi;
2672 }
2673 EXPORT_SYMBOL_GPL(acpi_spi_device_alloc);
2674 
2675 static acpi_status acpi_register_spi_device(struct spi_controller *ctlr,
2676 					    struct acpi_device *adev)
2677 {
2678 	struct spi_device *spi;
2679 
2680 	if (acpi_bus_get_status(adev) || !adev->status.present ||
2681 	    acpi_device_enumerated(adev))
2682 		return AE_OK;
2683 
2684 	spi = acpi_spi_device_alloc(ctlr, adev, -1);
2685 	if (IS_ERR(spi)) {
2686 		if (PTR_ERR(spi) == -ENOMEM)
2687 			return AE_NO_MEMORY;
2688 		else
2689 			return AE_OK;
2690 	}
2691 
2692 	acpi_set_modalias(adev, acpi_device_hid(adev), spi->modalias,
2693 			  sizeof(spi->modalias));
2694 
2695 	if (spi->irq < 0)
2696 		spi->irq = acpi_dev_gpio_irq_get(adev, 0);
2697 
2698 	acpi_device_set_enumerated(adev);
2699 
2700 	adev->power.flags.ignore_parent = true;
2701 	if (spi_add_device(spi)) {
2702 		adev->power.flags.ignore_parent = false;
2703 		dev_err(&ctlr->dev, "failed to add SPI device %s from ACPI\n",
2704 			dev_name(&adev->dev));
2705 		spi_dev_put(spi);
2706 	}
2707 
2708 	return AE_OK;
2709 }
2710 
2711 static acpi_status acpi_spi_add_device(acpi_handle handle, u32 level,
2712 				       void *data, void **return_value)
2713 {
2714 	struct acpi_device *adev = acpi_fetch_acpi_dev(handle);
2715 	struct spi_controller *ctlr = data;
2716 
2717 	if (!adev)
2718 		return AE_OK;
2719 
2720 	return acpi_register_spi_device(ctlr, adev);
2721 }
2722 
2723 #define SPI_ACPI_ENUMERATE_MAX_DEPTH		32
2724 
2725 static void acpi_register_spi_devices(struct spi_controller *ctlr)
2726 {
2727 	acpi_status status;
2728 	acpi_handle handle;
2729 
2730 	handle = ACPI_HANDLE(ctlr->dev.parent);
2731 	if (!handle)
2732 		return;
2733 
2734 	status = acpi_walk_namespace(ACPI_TYPE_DEVICE, ACPI_ROOT_OBJECT,
2735 				     SPI_ACPI_ENUMERATE_MAX_DEPTH,
2736 				     acpi_spi_add_device, NULL, ctlr, NULL);
2737 	if (ACPI_FAILURE(status))
2738 		dev_warn(&ctlr->dev, "failed to enumerate SPI slaves\n");
2739 }
2740 #else
2741 static inline void acpi_register_spi_devices(struct spi_controller *ctlr) {}
2742 #endif /* CONFIG_ACPI */
2743 
2744 static void spi_controller_release(struct device *dev)
2745 {
2746 	struct spi_controller *ctlr;
2747 
2748 	ctlr = container_of(dev, struct spi_controller, dev);
2749 	kfree(ctlr);
2750 }
2751 
2752 static struct class spi_master_class = {
2753 	.name		= "spi_master",
2754 	.dev_release	= spi_controller_release,
2755 	.dev_groups	= spi_master_groups,
2756 };
2757 
2758 #ifdef CONFIG_SPI_SLAVE
2759 /**
2760  * spi_slave_abort - abort the ongoing transfer request on an SPI slave
2761  *		     controller
2762  * @spi: device used for the current transfer
2763  */
2764 int spi_slave_abort(struct spi_device *spi)
2765 {
2766 	struct spi_controller *ctlr = spi->controller;
2767 
2768 	if (spi_controller_is_slave(ctlr) && ctlr->slave_abort)
2769 		return ctlr->slave_abort(ctlr);
2770 
2771 	return -ENOTSUPP;
2772 }
2773 EXPORT_SYMBOL_GPL(spi_slave_abort);
2774 
2775 int spi_target_abort(struct spi_device *spi)
2776 {
2777 	struct spi_controller *ctlr = spi->controller;
2778 
2779 	if (spi_controller_is_target(ctlr) && ctlr->target_abort)
2780 		return ctlr->target_abort(ctlr);
2781 
2782 	return -ENOTSUPP;
2783 }
2784 EXPORT_SYMBOL_GPL(spi_target_abort);
2785 
2786 static ssize_t slave_show(struct device *dev, struct device_attribute *attr,
2787 			  char *buf)
2788 {
2789 	struct spi_controller *ctlr = container_of(dev, struct spi_controller,
2790 						   dev);
2791 	struct device *child;
2792 
2793 	child = device_find_any_child(&ctlr->dev);
2794 	return sysfs_emit(buf, "%s\n", child ? to_spi_device(child)->modalias : NULL);
2795 }
2796 
2797 static ssize_t slave_store(struct device *dev, struct device_attribute *attr,
2798 			   const char *buf, size_t count)
2799 {
2800 	struct spi_controller *ctlr = container_of(dev, struct spi_controller,
2801 						   dev);
2802 	struct spi_device *spi;
2803 	struct device *child;
2804 	char name[32];
2805 	int rc;
2806 
2807 	rc = sscanf(buf, "%31s", name);
2808 	if (rc != 1 || !name[0])
2809 		return -EINVAL;
2810 
2811 	child = device_find_any_child(&ctlr->dev);
2812 	if (child) {
2813 		/* Remove registered slave */
2814 		device_unregister(child);
2815 		put_device(child);
2816 	}
2817 
2818 	if (strcmp(name, "(null)")) {
2819 		/* Register new slave */
2820 		spi = spi_alloc_device(ctlr);
2821 		if (!spi)
2822 			return -ENOMEM;
2823 
2824 		strscpy(spi->modalias, name, sizeof(spi->modalias));
2825 
2826 		rc = spi_add_device(spi);
2827 		if (rc) {
2828 			spi_dev_put(spi);
2829 			return rc;
2830 		}
2831 	}
2832 
2833 	return count;
2834 }
2835 
2836 static DEVICE_ATTR_RW(slave);
2837 
2838 static struct attribute *spi_slave_attrs[] = {
2839 	&dev_attr_slave.attr,
2840 	NULL,
2841 };
2842 
2843 static const struct attribute_group spi_slave_group = {
2844 	.attrs = spi_slave_attrs,
2845 };
2846 
2847 static const struct attribute_group *spi_slave_groups[] = {
2848 	&spi_controller_statistics_group,
2849 	&spi_slave_group,
2850 	NULL,
2851 };
2852 
2853 static struct class spi_slave_class = {
2854 	.name		= "spi_slave",
2855 	.dev_release	= spi_controller_release,
2856 	.dev_groups	= spi_slave_groups,
2857 };
2858 #else
2859 extern struct class spi_slave_class;	/* dummy */
2860 #endif
2861 
2862 /**
2863  * __spi_alloc_controller - allocate an SPI master or slave controller
2864  * @dev: the controller, possibly using the platform_bus
2865  * @size: how much zeroed driver-private data to allocate; the pointer to this
2866  *	memory is in the driver_data field of the returned device, accessible
2867  *	with spi_controller_get_devdata(); the memory is cacheline aligned;
2868  *	drivers granting DMA access to portions of their private data need to
2869  *	round up @size using ALIGN(size, dma_get_cache_alignment()).
2870  * @slave: flag indicating whether to allocate an SPI master (false) or SPI
2871  *	slave (true) controller
2872  * Context: can sleep
2873  *
2874  * This call is used only by SPI controller drivers, which are the
2875  * only ones directly touching chip registers.  It's how they allocate
2876  * an spi_controller structure, prior to calling spi_register_controller().
2877  *
2878  * This must be called from context that can sleep.
2879  *
2880  * The caller is responsible for assigning the bus number and initializing the
2881  * controller's methods before calling spi_register_controller(); and (after
2882  * errors adding the device) calling spi_controller_put() to prevent a memory
2883  * leak.
2884  *
2885  * Return: the SPI controller structure on success, else NULL.
2886  */
2887 struct spi_controller *__spi_alloc_controller(struct device *dev,
2888 					      unsigned int size, bool slave)
2889 {
2890 	struct spi_controller	*ctlr;
2891 	size_t ctlr_size = ALIGN(sizeof(*ctlr), dma_get_cache_alignment());
2892 
2893 	if (!dev)
2894 		return NULL;
2895 
2896 	ctlr = kzalloc(size + ctlr_size, GFP_KERNEL);
2897 	if (!ctlr)
2898 		return NULL;
2899 
2900 	device_initialize(&ctlr->dev);
2901 	INIT_LIST_HEAD(&ctlr->queue);
2902 	spin_lock_init(&ctlr->queue_lock);
2903 	spin_lock_init(&ctlr->bus_lock_spinlock);
2904 	mutex_init(&ctlr->bus_lock_mutex);
2905 	mutex_init(&ctlr->io_mutex);
2906 	mutex_init(&ctlr->add_lock);
2907 	ctlr->bus_num = -1;
2908 	ctlr->num_chipselect = 1;
2909 	ctlr->slave = slave;
2910 	if (IS_ENABLED(CONFIG_SPI_SLAVE) && slave)
2911 		ctlr->dev.class = &spi_slave_class;
2912 	else
2913 		ctlr->dev.class = &spi_master_class;
2914 	ctlr->dev.parent = dev;
2915 	pm_suspend_ignore_children(&ctlr->dev, true);
2916 	spi_controller_set_devdata(ctlr, (void *)ctlr + ctlr_size);
2917 
2918 	return ctlr;
2919 }
2920 EXPORT_SYMBOL_GPL(__spi_alloc_controller);
2921 
2922 static void devm_spi_release_controller(struct device *dev, void *ctlr)
2923 {
2924 	spi_controller_put(*(struct spi_controller **)ctlr);
2925 }
2926 
2927 /**
2928  * __devm_spi_alloc_controller - resource-managed __spi_alloc_controller()
2929  * @dev: physical device of SPI controller
2930  * @size: how much zeroed driver-private data to allocate
2931  * @slave: whether to allocate an SPI master (false) or SPI slave (true)
2932  * Context: can sleep
2933  *
2934  * Allocate an SPI controller and automatically release a reference on it
2935  * when @dev is unbound from its driver.  Drivers are thus relieved from
2936  * having to call spi_controller_put().
2937  *
2938  * The arguments to this function are identical to __spi_alloc_controller().
2939  *
2940  * Return: the SPI controller structure on success, else NULL.
2941  */
2942 struct spi_controller *__devm_spi_alloc_controller(struct device *dev,
2943 						   unsigned int size,
2944 						   bool slave)
2945 {
2946 	struct spi_controller **ptr, *ctlr;
2947 
2948 	ptr = devres_alloc(devm_spi_release_controller, sizeof(*ptr),
2949 			   GFP_KERNEL);
2950 	if (!ptr)
2951 		return NULL;
2952 
2953 	ctlr = __spi_alloc_controller(dev, size, slave);
2954 	if (ctlr) {
2955 		ctlr->devm_allocated = true;
2956 		*ptr = ctlr;
2957 		devres_add(dev, ptr);
2958 	} else {
2959 		devres_free(ptr);
2960 	}
2961 
2962 	return ctlr;
2963 }
2964 EXPORT_SYMBOL_GPL(__devm_spi_alloc_controller);
2965 
2966 /**
2967  * spi_get_gpio_descs() - grab chip select GPIOs for the master
2968  * @ctlr: The SPI master to grab GPIO descriptors for
2969  */
2970 static int spi_get_gpio_descs(struct spi_controller *ctlr)
2971 {
2972 	int nb, i;
2973 	struct gpio_desc **cs;
2974 	struct device *dev = &ctlr->dev;
2975 	unsigned long native_cs_mask = 0;
2976 	unsigned int num_cs_gpios = 0;
2977 
2978 	nb = gpiod_count(dev, "cs");
2979 	if (nb < 0) {
2980 		/* No GPIOs at all is fine, else return the error */
2981 		if (nb == -ENOENT)
2982 			return 0;
2983 		return nb;
2984 	}
2985 
2986 	ctlr->num_chipselect = max_t(int, nb, ctlr->num_chipselect);
2987 
2988 	cs = devm_kcalloc(dev, ctlr->num_chipselect, sizeof(*cs),
2989 			  GFP_KERNEL);
2990 	if (!cs)
2991 		return -ENOMEM;
2992 	ctlr->cs_gpiods = cs;
2993 
2994 	for (i = 0; i < nb; i++) {
2995 		/*
2996 		 * Most chipselects are active low, the inverted
2997 		 * semantics are handled by special quirks in gpiolib,
2998 		 * so initializing them GPIOD_OUT_LOW here means
2999 		 * "unasserted", in most cases this will drive the physical
3000 		 * line high.
3001 		 */
3002 		cs[i] = devm_gpiod_get_index_optional(dev, "cs", i,
3003 						      GPIOD_OUT_LOW);
3004 		if (IS_ERR(cs[i]))
3005 			return PTR_ERR(cs[i]);
3006 
3007 		if (cs[i]) {
3008 			/*
3009 			 * If we find a CS GPIO, name it after the device and
3010 			 * chip select line.
3011 			 */
3012 			char *gpioname;
3013 
3014 			gpioname = devm_kasprintf(dev, GFP_KERNEL, "%s CS%d",
3015 						  dev_name(dev), i);
3016 			if (!gpioname)
3017 				return -ENOMEM;
3018 			gpiod_set_consumer_name(cs[i], gpioname);
3019 			num_cs_gpios++;
3020 			continue;
3021 		}
3022 
3023 		if (ctlr->max_native_cs && i >= ctlr->max_native_cs) {
3024 			dev_err(dev, "Invalid native chip select %d\n", i);
3025 			return -EINVAL;
3026 		}
3027 		native_cs_mask |= BIT(i);
3028 	}
3029 
3030 	ctlr->unused_native_cs = ffs(~native_cs_mask) - 1;
3031 
3032 	if ((ctlr->flags & SPI_CONTROLLER_GPIO_SS) && num_cs_gpios &&
3033 	    ctlr->max_native_cs && ctlr->unused_native_cs >= ctlr->max_native_cs) {
3034 		dev_err(dev, "No unused native chip select available\n");
3035 		return -EINVAL;
3036 	}
3037 
3038 	return 0;
3039 }
3040 
3041 static int spi_controller_check_ops(struct spi_controller *ctlr)
3042 {
3043 	/*
3044 	 * The controller may implement only the high-level SPI-memory like
3045 	 * operations if it does not support regular SPI transfers, and this is
3046 	 * valid use case.
3047 	 * If ->mem_ops or ->mem_ops->exec_op is NULL, we request that at least
3048 	 * one of the ->transfer_xxx() method be implemented.
3049 	 */
3050 	if (!ctlr->mem_ops || !ctlr->mem_ops->exec_op) {
3051 		if (!ctlr->transfer && !ctlr->transfer_one &&
3052 		   !ctlr->transfer_one_message) {
3053 			return -EINVAL;
3054 		}
3055 	}
3056 
3057 	return 0;
3058 }
3059 
3060 /* Allocate dynamic bus number using Linux idr */
3061 static int spi_controller_id_alloc(struct spi_controller *ctlr, int start, int end)
3062 {
3063 	int id;
3064 
3065 	mutex_lock(&board_lock);
3066 	id = idr_alloc(&spi_master_idr, ctlr, start, end, GFP_KERNEL);
3067 	mutex_unlock(&board_lock);
3068 	if (WARN(id < 0, "couldn't get idr"))
3069 		return id == -ENOSPC ? -EBUSY : id;
3070 	ctlr->bus_num = id;
3071 	return 0;
3072 }
3073 
3074 /**
3075  * spi_register_controller - register SPI master or slave controller
3076  * @ctlr: initialized master, originally from spi_alloc_master() or
3077  *	spi_alloc_slave()
3078  * Context: can sleep
3079  *
3080  * SPI controllers connect to their drivers using some non-SPI bus,
3081  * such as the platform bus.  The final stage of probe() in that code
3082  * includes calling spi_register_controller() to hook up to this SPI bus glue.
3083  *
3084  * SPI controllers use board specific (often SOC specific) bus numbers,
3085  * and board-specific addressing for SPI devices combines those numbers
3086  * with chip select numbers.  Since SPI does not directly support dynamic
3087  * device identification, boards need configuration tables telling which
3088  * chip is at which address.
3089  *
3090  * This must be called from context that can sleep.  It returns zero on
3091  * success, else a negative error code (dropping the controller's refcount).
3092  * After a successful return, the caller is responsible for calling
3093  * spi_unregister_controller().
3094  *
3095  * Return: zero on success, else a negative error code.
3096  */
3097 int spi_register_controller(struct spi_controller *ctlr)
3098 {
3099 	struct device		*dev = ctlr->dev.parent;
3100 	struct boardinfo	*bi;
3101 	int			first_dynamic;
3102 	int			status;
3103 
3104 	if (!dev)
3105 		return -ENODEV;
3106 
3107 	/*
3108 	 * Make sure all necessary hooks are implemented before registering
3109 	 * the SPI controller.
3110 	 */
3111 	status = spi_controller_check_ops(ctlr);
3112 	if (status)
3113 		return status;
3114 
3115 	if (ctlr->bus_num < 0)
3116 		ctlr->bus_num = of_alias_get_id(ctlr->dev.of_node, "spi");
3117 	if (ctlr->bus_num >= 0) {
3118 		/* Devices with a fixed bus num must check-in with the num */
3119 		status = spi_controller_id_alloc(ctlr, ctlr->bus_num, ctlr->bus_num + 1);
3120 		if (status)
3121 			return status;
3122 	}
3123 	if (ctlr->bus_num < 0) {
3124 		first_dynamic = of_alias_get_highest_id("spi");
3125 		if (first_dynamic < 0)
3126 			first_dynamic = 0;
3127 		else
3128 			first_dynamic++;
3129 
3130 		status = spi_controller_id_alloc(ctlr, first_dynamic, 0);
3131 		if (status)
3132 			return status;
3133 	}
3134 	ctlr->bus_lock_flag = 0;
3135 	init_completion(&ctlr->xfer_completion);
3136 	init_completion(&ctlr->cur_msg_completion);
3137 	if (!ctlr->max_dma_len)
3138 		ctlr->max_dma_len = INT_MAX;
3139 
3140 	/*
3141 	 * Register the device, then userspace will see it.
3142 	 * Registration fails if the bus ID is in use.
3143 	 */
3144 	dev_set_name(&ctlr->dev, "spi%u", ctlr->bus_num);
3145 
3146 	if (!spi_controller_is_slave(ctlr) && ctlr->use_gpio_descriptors) {
3147 		status = spi_get_gpio_descs(ctlr);
3148 		if (status)
3149 			goto free_bus_id;
3150 		/*
3151 		 * A controller using GPIO descriptors always
3152 		 * supports SPI_CS_HIGH if need be.
3153 		 */
3154 		ctlr->mode_bits |= SPI_CS_HIGH;
3155 	}
3156 
3157 	/*
3158 	 * Even if it's just one always-selected device, there must
3159 	 * be at least one chipselect.
3160 	 */
3161 	if (!ctlr->num_chipselect) {
3162 		status = -EINVAL;
3163 		goto free_bus_id;
3164 	}
3165 
3166 	/* Setting last_cs to -1 means no chip selected */
3167 	ctlr->last_cs = -1;
3168 
3169 	status = device_add(&ctlr->dev);
3170 	if (status < 0)
3171 		goto free_bus_id;
3172 	dev_dbg(dev, "registered %s %s\n",
3173 			spi_controller_is_slave(ctlr) ? "slave" : "master",
3174 			dev_name(&ctlr->dev));
3175 
3176 	/*
3177 	 * If we're using a queued driver, start the queue. Note that we don't
3178 	 * need the queueing logic if the driver is only supporting high-level
3179 	 * memory operations.
3180 	 */
3181 	if (ctlr->transfer) {
3182 		dev_info(dev, "controller is unqueued, this is deprecated\n");
3183 	} else if (ctlr->transfer_one || ctlr->transfer_one_message) {
3184 		status = spi_controller_initialize_queue(ctlr);
3185 		if (status) {
3186 			device_del(&ctlr->dev);
3187 			goto free_bus_id;
3188 		}
3189 	}
3190 	/* Add statistics */
3191 	ctlr->pcpu_statistics = spi_alloc_pcpu_stats(dev);
3192 	if (!ctlr->pcpu_statistics) {
3193 		dev_err(dev, "Error allocating per-cpu statistics\n");
3194 		status = -ENOMEM;
3195 		goto destroy_queue;
3196 	}
3197 
3198 	mutex_lock(&board_lock);
3199 	list_add_tail(&ctlr->list, &spi_controller_list);
3200 	list_for_each_entry(bi, &board_list, list)
3201 		spi_match_controller_to_boardinfo(ctlr, &bi->board_info);
3202 	mutex_unlock(&board_lock);
3203 
3204 	/* Register devices from the device tree and ACPI */
3205 	of_register_spi_devices(ctlr);
3206 	acpi_register_spi_devices(ctlr);
3207 	return status;
3208 
3209 destroy_queue:
3210 	spi_destroy_queue(ctlr);
3211 free_bus_id:
3212 	mutex_lock(&board_lock);
3213 	idr_remove(&spi_master_idr, ctlr->bus_num);
3214 	mutex_unlock(&board_lock);
3215 	return status;
3216 }
3217 EXPORT_SYMBOL_GPL(spi_register_controller);
3218 
3219 static void devm_spi_unregister(struct device *dev, void *res)
3220 {
3221 	spi_unregister_controller(*(struct spi_controller **)res);
3222 }
3223 
3224 /**
3225  * devm_spi_register_controller - register managed SPI master or slave
3226  *	controller
3227  * @dev:    device managing SPI controller
3228  * @ctlr: initialized controller, originally from spi_alloc_master() or
3229  *	spi_alloc_slave()
3230  * Context: can sleep
3231  *
3232  * Register a SPI device as with spi_register_controller() which will
3233  * automatically be unregistered and freed.
3234  *
3235  * Return: zero on success, else a negative error code.
3236  */
3237 int devm_spi_register_controller(struct device *dev,
3238 				 struct spi_controller *ctlr)
3239 {
3240 	struct spi_controller **ptr;
3241 	int ret;
3242 
3243 	ptr = devres_alloc(devm_spi_unregister, sizeof(*ptr), GFP_KERNEL);
3244 	if (!ptr)
3245 		return -ENOMEM;
3246 
3247 	ret = spi_register_controller(ctlr);
3248 	if (!ret) {
3249 		*ptr = ctlr;
3250 		devres_add(dev, ptr);
3251 	} else {
3252 		devres_free(ptr);
3253 	}
3254 
3255 	return ret;
3256 }
3257 EXPORT_SYMBOL_GPL(devm_spi_register_controller);
3258 
3259 static int __unregister(struct device *dev, void *null)
3260 {
3261 	spi_unregister_device(to_spi_device(dev));
3262 	return 0;
3263 }
3264 
3265 /**
3266  * spi_unregister_controller - unregister SPI master or slave controller
3267  * @ctlr: the controller being unregistered
3268  * Context: can sleep
3269  *
3270  * This call is used only by SPI controller drivers, which are the
3271  * only ones directly touching chip registers.
3272  *
3273  * This must be called from context that can sleep.
3274  *
3275  * Note that this function also drops a reference to the controller.
3276  */
3277 void spi_unregister_controller(struct spi_controller *ctlr)
3278 {
3279 	struct spi_controller *found;
3280 	int id = ctlr->bus_num;
3281 
3282 	/* Prevent addition of new devices, unregister existing ones */
3283 	if (IS_ENABLED(CONFIG_SPI_DYNAMIC))
3284 		mutex_lock(&ctlr->add_lock);
3285 
3286 	device_for_each_child(&ctlr->dev, NULL, __unregister);
3287 
3288 	/* First make sure that this controller was ever added */
3289 	mutex_lock(&board_lock);
3290 	found = idr_find(&spi_master_idr, id);
3291 	mutex_unlock(&board_lock);
3292 	if (ctlr->queued) {
3293 		if (spi_destroy_queue(ctlr))
3294 			dev_err(&ctlr->dev, "queue remove failed\n");
3295 	}
3296 	mutex_lock(&board_lock);
3297 	list_del(&ctlr->list);
3298 	mutex_unlock(&board_lock);
3299 
3300 	device_del(&ctlr->dev);
3301 
3302 	/* Free bus id */
3303 	mutex_lock(&board_lock);
3304 	if (found == ctlr)
3305 		idr_remove(&spi_master_idr, id);
3306 	mutex_unlock(&board_lock);
3307 
3308 	if (IS_ENABLED(CONFIG_SPI_DYNAMIC))
3309 		mutex_unlock(&ctlr->add_lock);
3310 
3311 	/*
3312 	 * Release the last reference on the controller if its driver
3313 	 * has not yet been converted to devm_spi_alloc_master/slave().
3314 	 */
3315 	if (!ctlr->devm_allocated)
3316 		put_device(&ctlr->dev);
3317 }
3318 EXPORT_SYMBOL_GPL(spi_unregister_controller);
3319 
3320 static inline int __spi_check_suspended(const struct spi_controller *ctlr)
3321 {
3322 	return ctlr->flags & SPI_CONTROLLER_SUSPENDED ? -ESHUTDOWN : 0;
3323 }
3324 
3325 static inline void __spi_mark_suspended(struct spi_controller *ctlr)
3326 {
3327 	mutex_lock(&ctlr->bus_lock_mutex);
3328 	ctlr->flags |= SPI_CONTROLLER_SUSPENDED;
3329 	mutex_unlock(&ctlr->bus_lock_mutex);
3330 }
3331 
3332 static inline void __spi_mark_resumed(struct spi_controller *ctlr)
3333 {
3334 	mutex_lock(&ctlr->bus_lock_mutex);
3335 	ctlr->flags &= ~SPI_CONTROLLER_SUSPENDED;
3336 	mutex_unlock(&ctlr->bus_lock_mutex);
3337 }
3338 
3339 int spi_controller_suspend(struct spi_controller *ctlr)
3340 {
3341 	int ret = 0;
3342 
3343 	/* Basically no-ops for non-queued controllers */
3344 	if (ctlr->queued) {
3345 		ret = spi_stop_queue(ctlr);
3346 		if (ret)
3347 			dev_err(&ctlr->dev, "queue stop failed\n");
3348 	}
3349 
3350 	__spi_mark_suspended(ctlr);
3351 	return ret;
3352 }
3353 EXPORT_SYMBOL_GPL(spi_controller_suspend);
3354 
3355 int spi_controller_resume(struct spi_controller *ctlr)
3356 {
3357 	int ret = 0;
3358 
3359 	__spi_mark_resumed(ctlr);
3360 
3361 	if (ctlr->queued) {
3362 		ret = spi_start_queue(ctlr);
3363 		if (ret)
3364 			dev_err(&ctlr->dev, "queue restart failed\n");
3365 	}
3366 	return ret;
3367 }
3368 EXPORT_SYMBOL_GPL(spi_controller_resume);
3369 
3370 /*-------------------------------------------------------------------------*/
3371 
3372 /* Core methods for spi_message alterations */
3373 
3374 static void __spi_replace_transfers_release(struct spi_controller *ctlr,
3375 					    struct spi_message *msg,
3376 					    void *res)
3377 {
3378 	struct spi_replaced_transfers *rxfer = res;
3379 	size_t i;
3380 
3381 	/* Call extra callback if requested */
3382 	if (rxfer->release)
3383 		rxfer->release(ctlr, msg, res);
3384 
3385 	/* Insert replaced transfers back into the message */
3386 	list_splice(&rxfer->replaced_transfers, rxfer->replaced_after);
3387 
3388 	/* Remove the formerly inserted entries */
3389 	for (i = 0; i < rxfer->inserted; i++)
3390 		list_del(&rxfer->inserted_transfers[i].transfer_list);
3391 }
3392 
3393 /**
3394  * spi_replace_transfers - replace transfers with several transfers
3395  *                         and register change with spi_message.resources
3396  * @msg:           the spi_message we work upon
3397  * @xfer_first:    the first spi_transfer we want to replace
3398  * @remove:        number of transfers to remove
3399  * @insert:        the number of transfers we want to insert instead
3400  * @release:       extra release code necessary in some circumstances
3401  * @extradatasize: extra data to allocate (with alignment guarantees
3402  *                 of struct @spi_transfer)
3403  * @gfp:           gfp flags
3404  *
3405  * Returns: pointer to @spi_replaced_transfers,
3406  *          PTR_ERR(...) in case of errors.
3407  */
3408 static struct spi_replaced_transfers *spi_replace_transfers(
3409 	struct spi_message *msg,
3410 	struct spi_transfer *xfer_first,
3411 	size_t remove,
3412 	size_t insert,
3413 	spi_replaced_release_t release,
3414 	size_t extradatasize,
3415 	gfp_t gfp)
3416 {
3417 	struct spi_replaced_transfers *rxfer;
3418 	struct spi_transfer *xfer;
3419 	size_t i;
3420 
3421 	/* Allocate the structure using spi_res */
3422 	rxfer = spi_res_alloc(msg->spi, __spi_replace_transfers_release,
3423 			      struct_size(rxfer, inserted_transfers, insert)
3424 			      + extradatasize,
3425 			      gfp);
3426 	if (!rxfer)
3427 		return ERR_PTR(-ENOMEM);
3428 
3429 	/* The release code to invoke before running the generic release */
3430 	rxfer->release = release;
3431 
3432 	/* Assign extradata */
3433 	if (extradatasize)
3434 		rxfer->extradata =
3435 			&rxfer->inserted_transfers[insert];
3436 
3437 	/* Init the replaced_transfers list */
3438 	INIT_LIST_HEAD(&rxfer->replaced_transfers);
3439 
3440 	/*
3441 	 * Assign the list_entry after which we should reinsert
3442 	 * the @replaced_transfers - it may be spi_message.messages!
3443 	 */
3444 	rxfer->replaced_after = xfer_first->transfer_list.prev;
3445 
3446 	/* Remove the requested number of transfers */
3447 	for (i = 0; i < remove; i++) {
3448 		/*
3449 		 * If the entry after replaced_after it is msg->transfers
3450 		 * then we have been requested to remove more transfers
3451 		 * than are in the list.
3452 		 */
3453 		if (rxfer->replaced_after->next == &msg->transfers) {
3454 			dev_err(&msg->spi->dev,
3455 				"requested to remove more spi_transfers than are available\n");
3456 			/* Insert replaced transfers back into the message */
3457 			list_splice(&rxfer->replaced_transfers,
3458 				    rxfer->replaced_after);
3459 
3460 			/* Free the spi_replace_transfer structure... */
3461 			spi_res_free(rxfer);
3462 
3463 			/* ...and return with an error */
3464 			return ERR_PTR(-EINVAL);
3465 		}
3466 
3467 		/*
3468 		 * Remove the entry after replaced_after from list of
3469 		 * transfers and add it to list of replaced_transfers.
3470 		 */
3471 		list_move_tail(rxfer->replaced_after->next,
3472 			       &rxfer->replaced_transfers);
3473 	}
3474 
3475 	/*
3476 	 * Create copy of the given xfer with identical settings
3477 	 * based on the first transfer to get removed.
3478 	 */
3479 	for (i = 0; i < insert; i++) {
3480 		/* We need to run in reverse order */
3481 		xfer = &rxfer->inserted_transfers[insert - 1 - i];
3482 
3483 		/* Copy all spi_transfer data */
3484 		memcpy(xfer, xfer_first, sizeof(*xfer));
3485 
3486 		/* Add to list */
3487 		list_add(&xfer->transfer_list, rxfer->replaced_after);
3488 
3489 		/* Clear cs_change and delay for all but the last */
3490 		if (i) {
3491 			xfer->cs_change = false;
3492 			xfer->delay.value = 0;
3493 		}
3494 	}
3495 
3496 	/* Set up inserted... */
3497 	rxfer->inserted = insert;
3498 
3499 	/* ...and register it with spi_res/spi_message */
3500 	spi_res_add(msg, rxfer);
3501 
3502 	return rxfer;
3503 }
3504 
3505 static int __spi_split_transfer_maxsize(struct spi_controller *ctlr,
3506 					struct spi_message *msg,
3507 					struct spi_transfer **xferp,
3508 					size_t maxsize,
3509 					gfp_t gfp)
3510 {
3511 	struct spi_transfer *xfer = *xferp, *xfers;
3512 	struct spi_replaced_transfers *srt;
3513 	size_t offset;
3514 	size_t count, i;
3515 
3516 	/* Calculate how many we have to replace */
3517 	count = DIV_ROUND_UP(xfer->len, maxsize);
3518 
3519 	/* Create replacement */
3520 	srt = spi_replace_transfers(msg, xfer, 1, count, NULL, 0, gfp);
3521 	if (IS_ERR(srt))
3522 		return PTR_ERR(srt);
3523 	xfers = srt->inserted_transfers;
3524 
3525 	/*
3526 	 * Now handle each of those newly inserted spi_transfers.
3527 	 * Note that the replacements spi_transfers all are preset
3528 	 * to the same values as *xferp, so tx_buf, rx_buf and len
3529 	 * are all identical (as well as most others)
3530 	 * so we just have to fix up len and the pointers.
3531 	 *
3532 	 * This also includes support for the depreciated
3533 	 * spi_message.is_dma_mapped interface.
3534 	 */
3535 
3536 	/*
3537 	 * The first transfer just needs the length modified, so we
3538 	 * run it outside the loop.
3539 	 */
3540 	xfers[0].len = min_t(size_t, maxsize, xfer[0].len);
3541 
3542 	/* All the others need rx_buf/tx_buf also set */
3543 	for (i = 1, offset = maxsize; i < count; offset += maxsize, i++) {
3544 		/* Update rx_buf, tx_buf and DMA */
3545 		if (xfers[i].rx_buf)
3546 			xfers[i].rx_buf += offset;
3547 		if (xfers[i].rx_dma)
3548 			xfers[i].rx_dma += offset;
3549 		if (xfers[i].tx_buf)
3550 			xfers[i].tx_buf += offset;
3551 		if (xfers[i].tx_dma)
3552 			xfers[i].tx_dma += offset;
3553 
3554 		/* Update length */
3555 		xfers[i].len = min(maxsize, xfers[i].len - offset);
3556 	}
3557 
3558 	/*
3559 	 * We set up xferp to the last entry we have inserted,
3560 	 * so that we skip those already split transfers.
3561 	 */
3562 	*xferp = &xfers[count - 1];
3563 
3564 	/* Increment statistics counters */
3565 	SPI_STATISTICS_INCREMENT_FIELD(ctlr->pcpu_statistics,
3566 				       transfers_split_maxsize);
3567 	SPI_STATISTICS_INCREMENT_FIELD(msg->spi->pcpu_statistics,
3568 				       transfers_split_maxsize);
3569 
3570 	return 0;
3571 }
3572 
3573 /**
3574  * spi_split_transfers_maxsize - split spi transfers into multiple transfers
3575  *                               when an individual transfer exceeds a
3576  *                               certain size
3577  * @ctlr:    the @spi_controller for this transfer
3578  * @msg:   the @spi_message to transform
3579  * @maxsize:  the maximum when to apply this
3580  * @gfp: GFP allocation flags
3581  *
3582  * Return: status of transformation
3583  */
3584 int spi_split_transfers_maxsize(struct spi_controller *ctlr,
3585 				struct spi_message *msg,
3586 				size_t maxsize,
3587 				gfp_t gfp)
3588 {
3589 	struct spi_transfer *xfer;
3590 	int ret;
3591 
3592 	/*
3593 	 * Iterate over the transfer_list,
3594 	 * but note that xfer is advanced to the last transfer inserted
3595 	 * to avoid checking sizes again unnecessarily (also xfer does
3596 	 * potentially belong to a different list by the time the
3597 	 * replacement has happened).
3598 	 */
3599 	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
3600 		if (xfer->len > maxsize) {
3601 			ret = __spi_split_transfer_maxsize(ctlr, msg, &xfer,
3602 							   maxsize, gfp);
3603 			if (ret)
3604 				return ret;
3605 		}
3606 	}
3607 
3608 	return 0;
3609 }
3610 EXPORT_SYMBOL_GPL(spi_split_transfers_maxsize);
3611 
3612 
3613 /**
3614  * spi_split_transfers_maxwords - split SPI transfers into multiple transfers
3615  *                                when an individual transfer exceeds a
3616  *                                certain number of SPI words
3617  * @ctlr:     the @spi_controller for this transfer
3618  * @msg:      the @spi_message to transform
3619  * @maxwords: the number of words to limit each transfer to
3620  * @gfp:      GFP allocation flags
3621  *
3622  * Return: status of transformation
3623  */
3624 int spi_split_transfers_maxwords(struct spi_controller *ctlr,
3625 				 struct spi_message *msg,
3626 				 size_t maxwords,
3627 				 gfp_t gfp)
3628 {
3629 	struct spi_transfer *xfer;
3630 
3631 	/*
3632 	 * Iterate over the transfer_list,
3633 	 * but note that xfer is advanced to the last transfer inserted
3634 	 * to avoid checking sizes again unnecessarily (also xfer does
3635 	 * potentially belong to a different list by the time the
3636 	 * replacement has happened).
3637 	 */
3638 	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
3639 		size_t maxsize;
3640 		int ret;
3641 
3642 		maxsize = maxwords * roundup_pow_of_two(BITS_TO_BYTES(xfer->bits_per_word));
3643 		if (xfer->len > maxsize) {
3644 			ret = __spi_split_transfer_maxsize(ctlr, msg, &xfer,
3645 							   maxsize, gfp);
3646 			if (ret)
3647 				return ret;
3648 		}
3649 	}
3650 
3651 	return 0;
3652 }
3653 EXPORT_SYMBOL_GPL(spi_split_transfers_maxwords);
3654 
3655 /*-------------------------------------------------------------------------*/
3656 
3657 /*
3658  * Core methods for SPI controller protocol drivers. Some of the
3659  * other core methods are currently defined as inline functions.
3660  */
3661 
3662 static int __spi_validate_bits_per_word(struct spi_controller *ctlr,
3663 					u8 bits_per_word)
3664 {
3665 	if (ctlr->bits_per_word_mask) {
3666 		/* Only 32 bits fit in the mask */
3667 		if (bits_per_word > 32)
3668 			return -EINVAL;
3669 		if (!(ctlr->bits_per_word_mask & SPI_BPW_MASK(bits_per_word)))
3670 			return -EINVAL;
3671 	}
3672 
3673 	return 0;
3674 }
3675 
3676 /**
3677  * spi_set_cs_timing - configure CS setup, hold, and inactive delays
3678  * @spi: the device that requires specific CS timing configuration
3679  *
3680  * Return: zero on success, else a negative error code.
3681  */
3682 static int spi_set_cs_timing(struct spi_device *spi)
3683 {
3684 	struct device *parent = spi->controller->dev.parent;
3685 	int status = 0;
3686 
3687 	if (spi->controller->set_cs_timing && !spi_get_csgpiod(spi, 0)) {
3688 		if (spi->controller->auto_runtime_pm) {
3689 			status = pm_runtime_get_sync(parent);
3690 			if (status < 0) {
3691 				pm_runtime_put_noidle(parent);
3692 				dev_err(&spi->controller->dev, "Failed to power device: %d\n",
3693 					status);
3694 				return status;
3695 			}
3696 
3697 			status = spi->controller->set_cs_timing(spi);
3698 			pm_runtime_mark_last_busy(parent);
3699 			pm_runtime_put_autosuspend(parent);
3700 		} else {
3701 			status = spi->controller->set_cs_timing(spi);
3702 		}
3703 	}
3704 	return status;
3705 }
3706 
3707 /**
3708  * spi_setup - setup SPI mode and clock rate
3709  * @spi: the device whose settings are being modified
3710  * Context: can sleep, and no requests are queued to the device
3711  *
3712  * SPI protocol drivers may need to update the transfer mode if the
3713  * device doesn't work with its default.  They may likewise need
3714  * to update clock rates or word sizes from initial values.  This function
3715  * changes those settings, and must be called from a context that can sleep.
3716  * Except for SPI_CS_HIGH, which takes effect immediately, the changes take
3717  * effect the next time the device is selected and data is transferred to
3718  * or from it.  When this function returns, the SPI device is deselected.
3719  *
3720  * Note that this call will fail if the protocol driver specifies an option
3721  * that the underlying controller or its driver does not support.  For
3722  * example, not all hardware supports wire transfers using nine bit words,
3723  * LSB-first wire encoding, or active-high chipselects.
3724  *
3725  * Return: zero on success, else a negative error code.
3726  */
3727 int spi_setup(struct spi_device *spi)
3728 {
3729 	unsigned	bad_bits, ugly_bits;
3730 	int		status = 0;
3731 
3732 	/*
3733 	 * Check mode to prevent that any two of DUAL, QUAD and NO_MOSI/MISO
3734 	 * are set at the same time.
3735 	 */
3736 	if ((hweight_long(spi->mode &
3737 		(SPI_TX_DUAL | SPI_TX_QUAD | SPI_NO_TX)) > 1) ||
3738 	    (hweight_long(spi->mode &
3739 		(SPI_RX_DUAL | SPI_RX_QUAD | SPI_NO_RX)) > 1)) {
3740 		dev_err(&spi->dev,
3741 		"setup: can not select any two of dual, quad and no-rx/tx at the same time\n");
3742 		return -EINVAL;
3743 	}
3744 	/* If it is SPI_3WIRE mode, DUAL and QUAD should be forbidden */
3745 	if ((spi->mode & SPI_3WIRE) && (spi->mode &
3746 		(SPI_TX_DUAL | SPI_TX_QUAD | SPI_TX_OCTAL |
3747 		 SPI_RX_DUAL | SPI_RX_QUAD | SPI_RX_OCTAL)))
3748 		return -EINVAL;
3749 	/*
3750 	 * Help drivers fail *cleanly* when they need options
3751 	 * that aren't supported with their current controller.
3752 	 * SPI_CS_WORD has a fallback software implementation,
3753 	 * so it is ignored here.
3754 	 */
3755 	bad_bits = spi->mode & ~(spi->controller->mode_bits | SPI_CS_WORD |
3756 				 SPI_NO_TX | SPI_NO_RX);
3757 	ugly_bits = bad_bits &
3758 		    (SPI_TX_DUAL | SPI_TX_QUAD | SPI_TX_OCTAL |
3759 		     SPI_RX_DUAL | SPI_RX_QUAD | SPI_RX_OCTAL);
3760 	if (ugly_bits) {
3761 		dev_warn(&spi->dev,
3762 			 "setup: ignoring unsupported mode bits %x\n",
3763 			 ugly_bits);
3764 		spi->mode &= ~ugly_bits;
3765 		bad_bits &= ~ugly_bits;
3766 	}
3767 	if (bad_bits) {
3768 		dev_err(&spi->dev, "setup: unsupported mode bits %x\n",
3769 			bad_bits);
3770 		return -EINVAL;
3771 	}
3772 
3773 	if (!spi->bits_per_word) {
3774 		spi->bits_per_word = 8;
3775 	} else {
3776 		/*
3777 		 * Some controllers may not support the default 8 bits-per-word
3778 		 * so only perform the check when this is explicitly provided.
3779 		 */
3780 		status = __spi_validate_bits_per_word(spi->controller,
3781 						      spi->bits_per_word);
3782 		if (status)
3783 			return status;
3784 	}
3785 
3786 	if (spi->controller->max_speed_hz &&
3787 	    (!spi->max_speed_hz ||
3788 	     spi->max_speed_hz > spi->controller->max_speed_hz))
3789 		spi->max_speed_hz = spi->controller->max_speed_hz;
3790 
3791 	mutex_lock(&spi->controller->io_mutex);
3792 
3793 	if (spi->controller->setup) {
3794 		status = spi->controller->setup(spi);
3795 		if (status) {
3796 			mutex_unlock(&spi->controller->io_mutex);
3797 			dev_err(&spi->controller->dev, "Failed to setup device: %d\n",
3798 				status);
3799 			return status;
3800 		}
3801 	}
3802 
3803 	status = spi_set_cs_timing(spi);
3804 	if (status) {
3805 		mutex_unlock(&spi->controller->io_mutex);
3806 		return status;
3807 	}
3808 
3809 	if (spi->controller->auto_runtime_pm && spi->controller->set_cs) {
3810 		status = pm_runtime_resume_and_get(spi->controller->dev.parent);
3811 		if (status < 0) {
3812 			mutex_unlock(&spi->controller->io_mutex);
3813 			dev_err(&spi->controller->dev, "Failed to power device: %d\n",
3814 				status);
3815 			return status;
3816 		}
3817 
3818 		/*
3819 		 * We do not want to return positive value from pm_runtime_get,
3820 		 * there are many instances of devices calling spi_setup() and
3821 		 * checking for a non-zero return value instead of a negative
3822 		 * return value.
3823 		 */
3824 		status = 0;
3825 
3826 		spi_set_cs(spi, false, true);
3827 		pm_runtime_mark_last_busy(spi->controller->dev.parent);
3828 		pm_runtime_put_autosuspend(spi->controller->dev.parent);
3829 	} else {
3830 		spi_set_cs(spi, false, true);
3831 	}
3832 
3833 	mutex_unlock(&spi->controller->io_mutex);
3834 
3835 	if (spi->rt && !spi->controller->rt) {
3836 		spi->controller->rt = true;
3837 		spi_set_thread_rt(spi->controller);
3838 	}
3839 
3840 	trace_spi_setup(spi, status);
3841 
3842 	dev_dbg(&spi->dev, "setup mode %lu, %s%s%s%s%u bits/w, %u Hz max --> %d\n",
3843 			spi->mode & SPI_MODE_X_MASK,
3844 			(spi->mode & SPI_CS_HIGH) ? "cs_high, " : "",
3845 			(spi->mode & SPI_LSB_FIRST) ? "lsb, " : "",
3846 			(spi->mode & SPI_3WIRE) ? "3wire, " : "",
3847 			(spi->mode & SPI_LOOP) ? "loopback, " : "",
3848 			spi->bits_per_word, spi->max_speed_hz,
3849 			status);
3850 
3851 	return status;
3852 }
3853 EXPORT_SYMBOL_GPL(spi_setup);
3854 
3855 static int _spi_xfer_word_delay_update(struct spi_transfer *xfer,
3856 				       struct spi_device *spi)
3857 {
3858 	int delay1, delay2;
3859 
3860 	delay1 = spi_delay_to_ns(&xfer->word_delay, xfer);
3861 	if (delay1 < 0)
3862 		return delay1;
3863 
3864 	delay2 = spi_delay_to_ns(&spi->word_delay, xfer);
3865 	if (delay2 < 0)
3866 		return delay2;
3867 
3868 	if (delay1 < delay2)
3869 		memcpy(&xfer->word_delay, &spi->word_delay,
3870 		       sizeof(xfer->word_delay));
3871 
3872 	return 0;
3873 }
3874 
3875 static int __spi_validate(struct spi_device *spi, struct spi_message *message)
3876 {
3877 	struct spi_controller *ctlr = spi->controller;
3878 	struct spi_transfer *xfer;
3879 	int w_size;
3880 
3881 	if (list_empty(&message->transfers))
3882 		return -EINVAL;
3883 
3884 	/*
3885 	 * If an SPI controller does not support toggling the CS line on each
3886 	 * transfer (indicated by the SPI_CS_WORD flag) or we are using a GPIO
3887 	 * for the CS line, we can emulate the CS-per-word hardware function by
3888 	 * splitting transfers into one-word transfers and ensuring that
3889 	 * cs_change is set for each transfer.
3890 	 */
3891 	if ((spi->mode & SPI_CS_WORD) && (!(ctlr->mode_bits & SPI_CS_WORD) ||
3892 					  spi_get_csgpiod(spi, 0))) {
3893 		size_t maxsize = BITS_TO_BYTES(spi->bits_per_word);
3894 		int ret;
3895 
3896 		/* spi_split_transfers_maxsize() requires message->spi */
3897 		message->spi = spi;
3898 
3899 		ret = spi_split_transfers_maxsize(ctlr, message, maxsize,
3900 						  GFP_KERNEL);
3901 		if (ret)
3902 			return ret;
3903 
3904 		list_for_each_entry(xfer, &message->transfers, transfer_list) {
3905 			/* Don't change cs_change on the last entry in the list */
3906 			if (list_is_last(&xfer->transfer_list, &message->transfers))
3907 				break;
3908 			xfer->cs_change = 1;
3909 		}
3910 	}
3911 
3912 	/*
3913 	 * Half-duplex links include original MicroWire, and ones with
3914 	 * only one data pin like SPI_3WIRE (switches direction) or where
3915 	 * either MOSI or MISO is missing.  They can also be caused by
3916 	 * software limitations.
3917 	 */
3918 	if ((ctlr->flags & SPI_CONTROLLER_HALF_DUPLEX) ||
3919 	    (spi->mode & SPI_3WIRE)) {
3920 		unsigned flags = ctlr->flags;
3921 
3922 		list_for_each_entry(xfer, &message->transfers, transfer_list) {
3923 			if (xfer->rx_buf && xfer->tx_buf)
3924 				return -EINVAL;
3925 			if ((flags & SPI_CONTROLLER_NO_TX) && xfer->tx_buf)
3926 				return -EINVAL;
3927 			if ((flags & SPI_CONTROLLER_NO_RX) && xfer->rx_buf)
3928 				return -EINVAL;
3929 		}
3930 	}
3931 
3932 	/*
3933 	 * Set transfer bits_per_word and max speed as spi device default if
3934 	 * it is not set for this transfer.
3935 	 * Set transfer tx_nbits and rx_nbits as single transfer default
3936 	 * (SPI_NBITS_SINGLE) if it is not set for this transfer.
3937 	 * Ensure transfer word_delay is at least as long as that required by
3938 	 * device itself.
3939 	 */
3940 	message->frame_length = 0;
3941 	list_for_each_entry(xfer, &message->transfers, transfer_list) {
3942 		xfer->effective_speed_hz = 0;
3943 		message->frame_length += xfer->len;
3944 		if (!xfer->bits_per_word)
3945 			xfer->bits_per_word = spi->bits_per_word;
3946 
3947 		if (!xfer->speed_hz)
3948 			xfer->speed_hz = spi->max_speed_hz;
3949 
3950 		if (ctlr->max_speed_hz && xfer->speed_hz > ctlr->max_speed_hz)
3951 			xfer->speed_hz = ctlr->max_speed_hz;
3952 
3953 		if (__spi_validate_bits_per_word(ctlr, xfer->bits_per_word))
3954 			return -EINVAL;
3955 
3956 		/*
3957 		 * SPI transfer length should be multiple of SPI word size
3958 		 * where SPI word size should be power-of-two multiple.
3959 		 */
3960 		if (xfer->bits_per_word <= 8)
3961 			w_size = 1;
3962 		else if (xfer->bits_per_word <= 16)
3963 			w_size = 2;
3964 		else
3965 			w_size = 4;
3966 
3967 		/* No partial transfers accepted */
3968 		if (xfer->len % w_size)
3969 			return -EINVAL;
3970 
3971 		if (xfer->speed_hz && ctlr->min_speed_hz &&
3972 		    xfer->speed_hz < ctlr->min_speed_hz)
3973 			return -EINVAL;
3974 
3975 		if (xfer->tx_buf && !xfer->tx_nbits)
3976 			xfer->tx_nbits = SPI_NBITS_SINGLE;
3977 		if (xfer->rx_buf && !xfer->rx_nbits)
3978 			xfer->rx_nbits = SPI_NBITS_SINGLE;
3979 		/*
3980 		 * Check transfer tx/rx_nbits:
3981 		 * 1. check the value matches one of single, dual and quad
3982 		 * 2. check tx/rx_nbits match the mode in spi_device
3983 		 */
3984 		if (xfer->tx_buf) {
3985 			if (spi->mode & SPI_NO_TX)
3986 				return -EINVAL;
3987 			if (xfer->tx_nbits != SPI_NBITS_SINGLE &&
3988 				xfer->tx_nbits != SPI_NBITS_DUAL &&
3989 				xfer->tx_nbits != SPI_NBITS_QUAD)
3990 				return -EINVAL;
3991 			if ((xfer->tx_nbits == SPI_NBITS_DUAL) &&
3992 				!(spi->mode & (SPI_TX_DUAL | SPI_TX_QUAD)))
3993 				return -EINVAL;
3994 			if ((xfer->tx_nbits == SPI_NBITS_QUAD) &&
3995 				!(spi->mode & SPI_TX_QUAD))
3996 				return -EINVAL;
3997 		}
3998 		/* Check transfer rx_nbits */
3999 		if (xfer->rx_buf) {
4000 			if (spi->mode & SPI_NO_RX)
4001 				return -EINVAL;
4002 			if (xfer->rx_nbits != SPI_NBITS_SINGLE &&
4003 				xfer->rx_nbits != SPI_NBITS_DUAL &&
4004 				xfer->rx_nbits != SPI_NBITS_QUAD)
4005 				return -EINVAL;
4006 			if ((xfer->rx_nbits == SPI_NBITS_DUAL) &&
4007 				!(spi->mode & (SPI_RX_DUAL | SPI_RX_QUAD)))
4008 				return -EINVAL;
4009 			if ((xfer->rx_nbits == SPI_NBITS_QUAD) &&
4010 				!(spi->mode & SPI_RX_QUAD))
4011 				return -EINVAL;
4012 		}
4013 
4014 		if (_spi_xfer_word_delay_update(xfer, spi))
4015 			return -EINVAL;
4016 	}
4017 
4018 	message->status = -EINPROGRESS;
4019 
4020 	return 0;
4021 }
4022 
4023 static int __spi_async(struct spi_device *spi, struct spi_message *message)
4024 {
4025 	struct spi_controller *ctlr = spi->controller;
4026 	struct spi_transfer *xfer;
4027 
4028 	/*
4029 	 * Some controllers do not support doing regular SPI transfers. Return
4030 	 * ENOTSUPP when this is the case.
4031 	 */
4032 	if (!ctlr->transfer)
4033 		return -ENOTSUPP;
4034 
4035 	message->spi = spi;
4036 
4037 	SPI_STATISTICS_INCREMENT_FIELD(ctlr->pcpu_statistics, spi_async);
4038 	SPI_STATISTICS_INCREMENT_FIELD(spi->pcpu_statistics, spi_async);
4039 
4040 	trace_spi_message_submit(message);
4041 
4042 	if (!ctlr->ptp_sts_supported) {
4043 		list_for_each_entry(xfer, &message->transfers, transfer_list) {
4044 			xfer->ptp_sts_word_pre = 0;
4045 			ptp_read_system_prets(xfer->ptp_sts);
4046 		}
4047 	}
4048 
4049 	return ctlr->transfer(spi, message);
4050 }
4051 
4052 /**
4053  * spi_async - asynchronous SPI transfer
4054  * @spi: device with which data will be exchanged
4055  * @message: describes the data transfers, including completion callback
4056  * Context: any (IRQs may be blocked, etc)
4057  *
4058  * This call may be used in_irq and other contexts which can't sleep,
4059  * as well as from task contexts which can sleep.
4060  *
4061  * The completion callback is invoked in a context which can't sleep.
4062  * Before that invocation, the value of message->status is undefined.
4063  * When the callback is issued, message->status holds either zero (to
4064  * indicate complete success) or a negative error code.  After that
4065  * callback returns, the driver which issued the transfer request may
4066  * deallocate the associated memory; it's no longer in use by any SPI
4067  * core or controller driver code.
4068  *
4069  * Note that although all messages to a spi_device are handled in
4070  * FIFO order, messages may go to different devices in other orders.
4071  * Some device might be higher priority, or have various "hard" access
4072  * time requirements, for example.
4073  *
4074  * On detection of any fault during the transfer, processing of
4075  * the entire message is aborted, and the device is deselected.
4076  * Until returning from the associated message completion callback,
4077  * no other spi_message queued to that device will be processed.
4078  * (This rule applies equally to all the synchronous transfer calls,
4079  * which are wrappers around this core asynchronous primitive.)
4080  *
4081  * Return: zero on success, else a negative error code.
4082  */
4083 int spi_async(struct spi_device *spi, struct spi_message *message)
4084 {
4085 	struct spi_controller *ctlr = spi->controller;
4086 	int ret;
4087 	unsigned long flags;
4088 
4089 	ret = __spi_validate(spi, message);
4090 	if (ret != 0)
4091 		return ret;
4092 
4093 	spin_lock_irqsave(&ctlr->bus_lock_spinlock, flags);
4094 
4095 	if (ctlr->bus_lock_flag)
4096 		ret = -EBUSY;
4097 	else
4098 		ret = __spi_async(spi, message);
4099 
4100 	spin_unlock_irqrestore(&ctlr->bus_lock_spinlock, flags);
4101 
4102 	return ret;
4103 }
4104 EXPORT_SYMBOL_GPL(spi_async);
4105 
4106 /**
4107  * spi_async_locked - version of spi_async with exclusive bus usage
4108  * @spi: device with which data will be exchanged
4109  * @message: describes the data transfers, including completion callback
4110  * Context: any (IRQs may be blocked, etc)
4111  *
4112  * This call may be used in_irq and other contexts which can't sleep,
4113  * as well as from task contexts which can sleep.
4114  *
4115  * The completion callback is invoked in a context which can't sleep.
4116  * Before that invocation, the value of message->status is undefined.
4117  * When the callback is issued, message->status holds either zero (to
4118  * indicate complete success) or a negative error code.  After that
4119  * callback returns, the driver which issued the transfer request may
4120  * deallocate the associated memory; it's no longer in use by any SPI
4121  * core or controller driver code.
4122  *
4123  * Note that although all messages to a spi_device are handled in
4124  * FIFO order, messages may go to different devices in other orders.
4125  * Some device might be higher priority, or have various "hard" access
4126  * time requirements, for example.
4127  *
4128  * On detection of any fault during the transfer, processing of
4129  * the entire message is aborted, and the device is deselected.
4130  * Until returning from the associated message completion callback,
4131  * no other spi_message queued to that device will be processed.
4132  * (This rule applies equally to all the synchronous transfer calls,
4133  * which are wrappers around this core asynchronous primitive.)
4134  *
4135  * Return: zero on success, else a negative error code.
4136  */
4137 static int spi_async_locked(struct spi_device *spi, struct spi_message *message)
4138 {
4139 	struct spi_controller *ctlr = spi->controller;
4140 	int ret;
4141 	unsigned long flags;
4142 
4143 	ret = __spi_validate(spi, message);
4144 	if (ret != 0)
4145 		return ret;
4146 
4147 	spin_lock_irqsave(&ctlr->bus_lock_spinlock, flags);
4148 
4149 	ret = __spi_async(spi, message);
4150 
4151 	spin_unlock_irqrestore(&ctlr->bus_lock_spinlock, flags);
4152 
4153 	return ret;
4154 
4155 }
4156 
4157 static void __spi_transfer_message_noqueue(struct spi_controller *ctlr, struct spi_message *msg)
4158 {
4159 	bool was_busy;
4160 	int ret;
4161 
4162 	mutex_lock(&ctlr->io_mutex);
4163 
4164 	was_busy = ctlr->busy;
4165 
4166 	ctlr->cur_msg = msg;
4167 	ret = __spi_pump_transfer_message(ctlr, msg, was_busy);
4168 	if (ret)
4169 		dev_err(&ctlr->dev, "noqueue transfer failed\n");
4170 	ctlr->cur_msg = NULL;
4171 	ctlr->fallback = false;
4172 
4173 	if (!was_busy) {
4174 		kfree(ctlr->dummy_rx);
4175 		ctlr->dummy_rx = NULL;
4176 		kfree(ctlr->dummy_tx);
4177 		ctlr->dummy_tx = NULL;
4178 		if (ctlr->unprepare_transfer_hardware &&
4179 		    ctlr->unprepare_transfer_hardware(ctlr))
4180 			dev_err(&ctlr->dev,
4181 				"failed to unprepare transfer hardware\n");
4182 		spi_idle_runtime_pm(ctlr);
4183 	}
4184 
4185 	mutex_unlock(&ctlr->io_mutex);
4186 }
4187 
4188 /*-------------------------------------------------------------------------*/
4189 
4190 /*
4191  * Utility methods for SPI protocol drivers, layered on
4192  * top of the core.  Some other utility methods are defined as
4193  * inline functions.
4194  */
4195 
4196 static void spi_complete(void *arg)
4197 {
4198 	complete(arg);
4199 }
4200 
4201 static int __spi_sync(struct spi_device *spi, struct spi_message *message)
4202 {
4203 	DECLARE_COMPLETION_ONSTACK(done);
4204 	int status;
4205 	struct spi_controller *ctlr = spi->controller;
4206 
4207 	if (__spi_check_suspended(ctlr)) {
4208 		dev_warn_once(&spi->dev, "Attempted to sync while suspend\n");
4209 		return -ESHUTDOWN;
4210 	}
4211 
4212 	status = __spi_validate(spi, message);
4213 	if (status != 0)
4214 		return status;
4215 
4216 	message->spi = spi;
4217 
4218 	SPI_STATISTICS_INCREMENT_FIELD(ctlr->pcpu_statistics, spi_sync);
4219 	SPI_STATISTICS_INCREMENT_FIELD(spi->pcpu_statistics, spi_sync);
4220 
4221 	/*
4222 	 * Checking queue_empty here only guarantees async/sync message
4223 	 * ordering when coming from the same context. It does not need to
4224 	 * guard against reentrancy from a different context. The io_mutex
4225 	 * will catch those cases.
4226 	 */
4227 	if (READ_ONCE(ctlr->queue_empty) && !ctlr->must_async) {
4228 		message->actual_length = 0;
4229 		message->status = -EINPROGRESS;
4230 
4231 		trace_spi_message_submit(message);
4232 
4233 		SPI_STATISTICS_INCREMENT_FIELD(ctlr->pcpu_statistics, spi_sync_immediate);
4234 		SPI_STATISTICS_INCREMENT_FIELD(spi->pcpu_statistics, spi_sync_immediate);
4235 
4236 		__spi_transfer_message_noqueue(ctlr, message);
4237 
4238 		return message->status;
4239 	}
4240 
4241 	/*
4242 	 * There are messages in the async queue that could have originated
4243 	 * from the same context, so we need to preserve ordering.
4244 	 * Therefor we send the message to the async queue and wait until they
4245 	 * are completed.
4246 	 */
4247 	message->complete = spi_complete;
4248 	message->context = &done;
4249 	status = spi_async_locked(spi, message);
4250 	if (status == 0) {
4251 		wait_for_completion(&done);
4252 		status = message->status;
4253 	}
4254 	message->context = NULL;
4255 
4256 	return status;
4257 }
4258 
4259 /**
4260  * spi_sync - blocking/synchronous SPI data transfers
4261  * @spi: device with which data will be exchanged
4262  * @message: describes the data transfers
4263  * Context: can sleep
4264  *
4265  * This call may only be used from a context that may sleep.  The sleep
4266  * is non-interruptible, and has no timeout.  Low-overhead controller
4267  * drivers may DMA directly into and out of the message buffers.
4268  *
4269  * Note that the SPI device's chip select is active during the message,
4270  * and then is normally disabled between messages.  Drivers for some
4271  * frequently-used devices may want to minimize costs of selecting a chip,
4272  * by leaving it selected in anticipation that the next message will go
4273  * to the same chip.  (That may increase power usage.)
4274  *
4275  * Also, the caller is guaranteeing that the memory associated with the
4276  * message will not be freed before this call returns.
4277  *
4278  * Return: zero on success, else a negative error code.
4279  */
4280 int spi_sync(struct spi_device *spi, struct spi_message *message)
4281 {
4282 	int ret;
4283 
4284 	mutex_lock(&spi->controller->bus_lock_mutex);
4285 	ret = __spi_sync(spi, message);
4286 	mutex_unlock(&spi->controller->bus_lock_mutex);
4287 
4288 	return ret;
4289 }
4290 EXPORT_SYMBOL_GPL(spi_sync);
4291 
4292 /**
4293  * spi_sync_locked - version of spi_sync with exclusive bus usage
4294  * @spi: device with which data will be exchanged
4295  * @message: describes the data transfers
4296  * Context: can sleep
4297  *
4298  * This call may only be used from a context that may sleep.  The sleep
4299  * is non-interruptible, and has no timeout.  Low-overhead controller
4300  * drivers may DMA directly into and out of the message buffers.
4301  *
4302  * This call should be used by drivers that require exclusive access to the
4303  * SPI bus. It has to be preceded by a spi_bus_lock call. The SPI bus must
4304  * be released by a spi_bus_unlock call when the exclusive access is over.
4305  *
4306  * Return: zero on success, else a negative error code.
4307  */
4308 int spi_sync_locked(struct spi_device *spi, struct spi_message *message)
4309 {
4310 	return __spi_sync(spi, message);
4311 }
4312 EXPORT_SYMBOL_GPL(spi_sync_locked);
4313 
4314 /**
4315  * spi_bus_lock - obtain a lock for exclusive SPI bus usage
4316  * @ctlr: SPI bus master that should be locked for exclusive bus access
4317  * Context: can sleep
4318  *
4319  * This call may only be used from a context that may sleep.  The sleep
4320  * is non-interruptible, and has no timeout.
4321  *
4322  * This call should be used by drivers that require exclusive access to the
4323  * SPI bus. The SPI bus must be released by a spi_bus_unlock call when the
4324  * exclusive access is over. Data transfer must be done by spi_sync_locked
4325  * and spi_async_locked calls when the SPI bus lock is held.
4326  *
4327  * Return: always zero.
4328  */
4329 int spi_bus_lock(struct spi_controller *ctlr)
4330 {
4331 	unsigned long flags;
4332 
4333 	mutex_lock(&ctlr->bus_lock_mutex);
4334 
4335 	spin_lock_irqsave(&ctlr->bus_lock_spinlock, flags);
4336 	ctlr->bus_lock_flag = 1;
4337 	spin_unlock_irqrestore(&ctlr->bus_lock_spinlock, flags);
4338 
4339 	/* Mutex remains locked until spi_bus_unlock() is called */
4340 
4341 	return 0;
4342 }
4343 EXPORT_SYMBOL_GPL(spi_bus_lock);
4344 
4345 /**
4346  * spi_bus_unlock - release the lock for exclusive SPI bus usage
4347  * @ctlr: SPI bus master that was locked for exclusive bus access
4348  * Context: can sleep
4349  *
4350  * This call may only be used from a context that may sleep.  The sleep
4351  * is non-interruptible, and has no timeout.
4352  *
4353  * This call releases an SPI bus lock previously obtained by an spi_bus_lock
4354  * call.
4355  *
4356  * Return: always zero.
4357  */
4358 int spi_bus_unlock(struct spi_controller *ctlr)
4359 {
4360 	ctlr->bus_lock_flag = 0;
4361 
4362 	mutex_unlock(&ctlr->bus_lock_mutex);
4363 
4364 	return 0;
4365 }
4366 EXPORT_SYMBOL_GPL(spi_bus_unlock);
4367 
4368 /* Portable code must never pass more than 32 bytes */
4369 #define	SPI_BUFSIZ	max(32, SMP_CACHE_BYTES)
4370 
4371 static u8	*buf;
4372 
4373 /**
4374  * spi_write_then_read - SPI synchronous write followed by read
4375  * @spi: device with which data will be exchanged
4376  * @txbuf: data to be written (need not be DMA-safe)
4377  * @n_tx: size of txbuf, in bytes
4378  * @rxbuf: buffer into which data will be read (need not be DMA-safe)
4379  * @n_rx: size of rxbuf, in bytes
4380  * Context: can sleep
4381  *
4382  * This performs a half duplex MicroWire style transaction with the
4383  * device, sending txbuf and then reading rxbuf.  The return value
4384  * is zero for success, else a negative errno status code.
4385  * This call may only be used from a context that may sleep.
4386  *
4387  * Parameters to this routine are always copied using a small buffer.
4388  * Performance-sensitive or bulk transfer code should instead use
4389  * spi_{async,sync}() calls with DMA-safe buffers.
4390  *
4391  * Return: zero on success, else a negative error code.
4392  */
4393 int spi_write_then_read(struct spi_device *spi,
4394 		const void *txbuf, unsigned n_tx,
4395 		void *rxbuf, unsigned n_rx)
4396 {
4397 	static DEFINE_MUTEX(lock);
4398 
4399 	int			status;
4400 	struct spi_message	message;
4401 	struct spi_transfer	x[2];
4402 	u8			*local_buf;
4403 
4404 	/*
4405 	 * Use preallocated DMA-safe buffer if we can. We can't avoid
4406 	 * copying here, (as a pure convenience thing), but we can
4407 	 * keep heap costs out of the hot path unless someone else is
4408 	 * using the pre-allocated buffer or the transfer is too large.
4409 	 */
4410 	if ((n_tx + n_rx) > SPI_BUFSIZ || !mutex_trylock(&lock)) {
4411 		local_buf = kmalloc(max((unsigned)SPI_BUFSIZ, n_tx + n_rx),
4412 				    GFP_KERNEL | GFP_DMA);
4413 		if (!local_buf)
4414 			return -ENOMEM;
4415 	} else {
4416 		local_buf = buf;
4417 	}
4418 
4419 	spi_message_init(&message);
4420 	memset(x, 0, sizeof(x));
4421 	if (n_tx) {
4422 		x[0].len = n_tx;
4423 		spi_message_add_tail(&x[0], &message);
4424 	}
4425 	if (n_rx) {
4426 		x[1].len = n_rx;
4427 		spi_message_add_tail(&x[1], &message);
4428 	}
4429 
4430 	memcpy(local_buf, txbuf, n_tx);
4431 	x[0].tx_buf = local_buf;
4432 	x[1].rx_buf = local_buf + n_tx;
4433 
4434 	/* Do the I/O */
4435 	status = spi_sync(spi, &message);
4436 	if (status == 0)
4437 		memcpy(rxbuf, x[1].rx_buf, n_rx);
4438 
4439 	if (x[0].tx_buf == buf)
4440 		mutex_unlock(&lock);
4441 	else
4442 		kfree(local_buf);
4443 
4444 	return status;
4445 }
4446 EXPORT_SYMBOL_GPL(spi_write_then_read);
4447 
4448 /*-------------------------------------------------------------------------*/
4449 
4450 #if IS_ENABLED(CONFIG_OF_DYNAMIC)
4451 /* Must call put_device() when done with returned spi_device device */
4452 static struct spi_device *of_find_spi_device_by_node(struct device_node *node)
4453 {
4454 	struct device *dev = bus_find_device_by_of_node(&spi_bus_type, node);
4455 
4456 	return dev ? to_spi_device(dev) : NULL;
4457 }
4458 
4459 /* The spi controllers are not using spi_bus, so we find it with another way */
4460 static struct spi_controller *of_find_spi_controller_by_node(struct device_node *node)
4461 {
4462 	struct device *dev;
4463 
4464 	dev = class_find_device_by_of_node(&spi_master_class, node);
4465 	if (!dev && IS_ENABLED(CONFIG_SPI_SLAVE))
4466 		dev = class_find_device_by_of_node(&spi_slave_class, node);
4467 	if (!dev)
4468 		return NULL;
4469 
4470 	/* Reference got in class_find_device */
4471 	return container_of(dev, struct spi_controller, dev);
4472 }
4473 
4474 static int of_spi_notify(struct notifier_block *nb, unsigned long action,
4475 			 void *arg)
4476 {
4477 	struct of_reconfig_data *rd = arg;
4478 	struct spi_controller *ctlr;
4479 	struct spi_device *spi;
4480 
4481 	switch (of_reconfig_get_state_change(action, arg)) {
4482 	case OF_RECONFIG_CHANGE_ADD:
4483 		ctlr = of_find_spi_controller_by_node(rd->dn->parent);
4484 		if (ctlr == NULL)
4485 			return NOTIFY_OK;	/* Not for us */
4486 
4487 		if (of_node_test_and_set_flag(rd->dn, OF_POPULATED)) {
4488 			put_device(&ctlr->dev);
4489 			return NOTIFY_OK;
4490 		}
4491 
4492 		/*
4493 		 * Clear the flag before adding the device so that fw_devlink
4494 		 * doesn't skip adding consumers to this device.
4495 		 */
4496 		rd->dn->fwnode.flags &= ~FWNODE_FLAG_NOT_DEVICE;
4497 		spi = of_register_spi_device(ctlr, rd->dn);
4498 		put_device(&ctlr->dev);
4499 
4500 		if (IS_ERR(spi)) {
4501 			pr_err("%s: failed to create for '%pOF'\n",
4502 					__func__, rd->dn);
4503 			of_node_clear_flag(rd->dn, OF_POPULATED);
4504 			return notifier_from_errno(PTR_ERR(spi));
4505 		}
4506 		break;
4507 
4508 	case OF_RECONFIG_CHANGE_REMOVE:
4509 		/* Already depopulated? */
4510 		if (!of_node_check_flag(rd->dn, OF_POPULATED))
4511 			return NOTIFY_OK;
4512 
4513 		/* Find our device by node */
4514 		spi = of_find_spi_device_by_node(rd->dn);
4515 		if (spi == NULL)
4516 			return NOTIFY_OK;	/* No? not meant for us */
4517 
4518 		/* Unregister takes one ref away */
4519 		spi_unregister_device(spi);
4520 
4521 		/* And put the reference of the find */
4522 		put_device(&spi->dev);
4523 		break;
4524 	}
4525 
4526 	return NOTIFY_OK;
4527 }
4528 
4529 static struct notifier_block spi_of_notifier = {
4530 	.notifier_call = of_spi_notify,
4531 };
4532 #else /* IS_ENABLED(CONFIG_OF_DYNAMIC) */
4533 extern struct notifier_block spi_of_notifier;
4534 #endif /* IS_ENABLED(CONFIG_OF_DYNAMIC) */
4535 
4536 #if IS_ENABLED(CONFIG_ACPI)
4537 static int spi_acpi_controller_match(struct device *dev, const void *data)
4538 {
4539 	return ACPI_COMPANION(dev->parent) == data;
4540 }
4541 
4542 struct spi_controller *acpi_spi_find_controller_by_adev(struct acpi_device *adev)
4543 {
4544 	struct device *dev;
4545 
4546 	dev = class_find_device(&spi_master_class, NULL, adev,
4547 				spi_acpi_controller_match);
4548 	if (!dev && IS_ENABLED(CONFIG_SPI_SLAVE))
4549 		dev = class_find_device(&spi_slave_class, NULL, adev,
4550 					spi_acpi_controller_match);
4551 	if (!dev)
4552 		return NULL;
4553 
4554 	return container_of(dev, struct spi_controller, dev);
4555 }
4556 EXPORT_SYMBOL_GPL(acpi_spi_find_controller_by_adev);
4557 
4558 static struct spi_device *acpi_spi_find_device_by_adev(struct acpi_device *adev)
4559 {
4560 	struct device *dev;
4561 
4562 	dev = bus_find_device_by_acpi_dev(&spi_bus_type, adev);
4563 	return to_spi_device(dev);
4564 }
4565 
4566 static int acpi_spi_notify(struct notifier_block *nb, unsigned long value,
4567 			   void *arg)
4568 {
4569 	struct acpi_device *adev = arg;
4570 	struct spi_controller *ctlr;
4571 	struct spi_device *spi;
4572 
4573 	switch (value) {
4574 	case ACPI_RECONFIG_DEVICE_ADD:
4575 		ctlr = acpi_spi_find_controller_by_adev(acpi_dev_parent(adev));
4576 		if (!ctlr)
4577 			break;
4578 
4579 		acpi_register_spi_device(ctlr, adev);
4580 		put_device(&ctlr->dev);
4581 		break;
4582 	case ACPI_RECONFIG_DEVICE_REMOVE:
4583 		if (!acpi_device_enumerated(adev))
4584 			break;
4585 
4586 		spi = acpi_spi_find_device_by_adev(adev);
4587 		if (!spi)
4588 			break;
4589 
4590 		spi_unregister_device(spi);
4591 		put_device(&spi->dev);
4592 		break;
4593 	}
4594 
4595 	return NOTIFY_OK;
4596 }
4597 
4598 static struct notifier_block spi_acpi_notifier = {
4599 	.notifier_call = acpi_spi_notify,
4600 };
4601 #else
4602 extern struct notifier_block spi_acpi_notifier;
4603 #endif
4604 
4605 static int __init spi_init(void)
4606 {
4607 	int	status;
4608 
4609 	buf = kmalloc(SPI_BUFSIZ, GFP_KERNEL);
4610 	if (!buf) {
4611 		status = -ENOMEM;
4612 		goto err0;
4613 	}
4614 
4615 	status = bus_register(&spi_bus_type);
4616 	if (status < 0)
4617 		goto err1;
4618 
4619 	status = class_register(&spi_master_class);
4620 	if (status < 0)
4621 		goto err2;
4622 
4623 	if (IS_ENABLED(CONFIG_SPI_SLAVE)) {
4624 		status = class_register(&spi_slave_class);
4625 		if (status < 0)
4626 			goto err3;
4627 	}
4628 
4629 	if (IS_ENABLED(CONFIG_OF_DYNAMIC))
4630 		WARN_ON(of_reconfig_notifier_register(&spi_of_notifier));
4631 	if (IS_ENABLED(CONFIG_ACPI))
4632 		WARN_ON(acpi_reconfig_notifier_register(&spi_acpi_notifier));
4633 
4634 	return 0;
4635 
4636 err3:
4637 	class_unregister(&spi_master_class);
4638 err2:
4639 	bus_unregister(&spi_bus_type);
4640 err1:
4641 	kfree(buf);
4642 	buf = NULL;
4643 err0:
4644 	return status;
4645 }
4646 
4647 /*
4648  * A board_info is normally registered in arch_initcall(),
4649  * but even essential drivers wait till later.
4650  *
4651  * REVISIT only boardinfo really needs static linking. The rest (device and
4652  * driver registration) _could_ be dynamically linked (modular) ... Costs
4653  * include needing to have boardinfo data structures be much more public.
4654  */
4655 postcore_initcall(spi_init);
4656