1 /*
2  * FSI core driver
3  *
4  * Copyright (C) IBM Corporation 2016
5  *
6  * This program is free software; you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License version 2 as
8  * published by the Free Software Foundation.
9  *
10  * This program is distributed in the hope that it will be useful,
11  * but WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
13  * GNU General Public License for more details.
14  *
15  * TODO:
16  *  - Rework topology
17  *  - s/chip_id/chip_loc
18  *  - s/cfam/chip (cfam_id -> chip_id etc...)
19  */
20 
21 #include <linux/crc4.h>
22 #include <linux/device.h>
23 #include <linux/fsi.h>
24 #include <linux/idr.h>
25 #include <linux/module.h>
26 #include <linux/of.h>
27 #include <linux/slab.h>
28 #include <linux/bitops.h>
29 #include <linux/cdev.h>
30 #include <linux/fs.h>
31 #include <linux/uaccess.h>
32 
33 #include "fsi-master.h"
34 
35 #define CREATE_TRACE_POINTS
36 #include <trace/events/fsi.h>
37 
38 #define FSI_SLAVE_CONF_NEXT_MASK	GENMASK(31, 31)
39 #define FSI_SLAVE_CONF_SLOTS_MASK	GENMASK(23, 16)
40 #define FSI_SLAVE_CONF_SLOTS_SHIFT	16
41 #define FSI_SLAVE_CONF_VERSION_MASK	GENMASK(15, 12)
42 #define FSI_SLAVE_CONF_VERSION_SHIFT	12
43 #define FSI_SLAVE_CONF_TYPE_MASK	GENMASK(11, 4)
44 #define FSI_SLAVE_CONF_TYPE_SHIFT	4
45 #define FSI_SLAVE_CONF_CRC_SHIFT	4
46 #define FSI_SLAVE_CONF_CRC_MASK		GENMASK(3, 0)
47 #define FSI_SLAVE_CONF_DATA_BITS	28
48 
49 #define FSI_PEEK_BASE			0x410
50 
51 static const int engine_page_size = 0x400;
52 
53 #define FSI_SLAVE_BASE			0x800
54 
55 /*
56  * FSI slave engine control register offsets
57  */
58 #define FSI_SMODE		0x0	/* R/W: Mode register */
59 #define FSI_SISC		0x8	/* R/W: Interrupt condition */
60 #define FSI_SSTAT		0x14	/* R  : Slave status */
61 #define FSI_LLMODE		0x100	/* R/W: Link layer mode register */
62 
63 /*
64  * SMODE fields
65  */
66 #define FSI_SMODE_WSC		0x80000000	/* Warm start done */
67 #define FSI_SMODE_ECRC		0x20000000	/* Hw CRC check */
68 #define FSI_SMODE_SID_SHIFT	24		/* ID shift */
69 #define FSI_SMODE_SID_MASK	3		/* ID Mask */
70 #define FSI_SMODE_ED_SHIFT	20		/* Echo delay shift */
71 #define FSI_SMODE_ED_MASK	0xf		/* Echo delay mask */
72 #define FSI_SMODE_SD_SHIFT	16		/* Send delay shift */
73 #define FSI_SMODE_SD_MASK	0xf		/* Send delay mask */
74 #define FSI_SMODE_LBCRR_SHIFT	8		/* Clk ratio shift */
75 #define FSI_SMODE_LBCRR_MASK	0xf		/* Clk ratio mask */
76 
77 /*
78  * LLMODE fields
79  */
80 #define FSI_LLMODE_ASYNC	0x1
81 
82 #define FSI_SLAVE_SIZE_23b		0x800000
83 
84 static DEFINE_IDA(master_ida);
85 
86 struct fsi_slave {
87 	struct device		dev;
88 	struct fsi_master	*master;
89 	struct cdev		cdev;
90 	int			cdev_idx;
91 	int			id;	/* FSI address */
92 	int			link;	/* FSI link# */
93 	u32			cfam_id;
94 	int			chip_id;
95 	uint32_t		size;	/* size of slave address space */
96 	u8			t_send_delay;
97 	u8			t_echo_delay;
98 };
99 
100 #define to_fsi_master(d) container_of(d, struct fsi_master, dev)
101 #define to_fsi_slave(d) container_of(d, struct fsi_slave, dev)
102 
103 static const int slave_retries = 2;
104 static int discard_errors;
105 
106 static dev_t fsi_base_dev;
107 static DEFINE_IDA(fsi_minor_ida);
108 #define FSI_CHAR_MAX_DEVICES	0x1000
109 
110 /* Legacy /dev numbering: 4 devices per chip, 16 chips */
111 #define FSI_CHAR_LEGACY_TOP	64
112 
113 static int fsi_master_read(struct fsi_master *master, int link,
114 		uint8_t slave_id, uint32_t addr, void *val, size_t size);
115 static int fsi_master_write(struct fsi_master *master, int link,
116 		uint8_t slave_id, uint32_t addr, const void *val, size_t size);
117 static int fsi_master_break(struct fsi_master *master, int link);
118 
119 /*
120  * fsi_device_read() / fsi_device_write() / fsi_device_peek()
121  *
122  * FSI endpoint-device support
123  *
124  * Read / write / peek accessors for a client
125  *
126  * Parameters:
127  * dev:  Structure passed to FSI client device drivers on probe().
128  * addr: FSI address of given device.  Client should pass in its base address
129  *       plus desired offset to access its register space.
130  * val:  For read/peek this is the value read at the specified address. For
131  *       write this is value to write to the specified address.
132  *       The data in val must be FSI bus endian (big endian).
133  * size: Size in bytes of the operation.  Sizes supported are 1, 2 and 4 bytes.
134  *       Addresses must be aligned on size boundaries or an error will result.
135  */
fsi_device_read(struct fsi_device * dev,uint32_t addr,void * val,size_t size)136 int fsi_device_read(struct fsi_device *dev, uint32_t addr, void *val,
137 		size_t size)
138 {
139 	if (addr > dev->size || size > dev->size || addr > dev->size - size)
140 		return -EINVAL;
141 
142 	return fsi_slave_read(dev->slave, dev->addr + addr, val, size);
143 }
144 EXPORT_SYMBOL_GPL(fsi_device_read);
145 
fsi_device_write(struct fsi_device * dev,uint32_t addr,const void * val,size_t size)146 int fsi_device_write(struct fsi_device *dev, uint32_t addr, const void *val,
147 		size_t size)
148 {
149 	if (addr > dev->size || size > dev->size || addr > dev->size - size)
150 		return -EINVAL;
151 
152 	return fsi_slave_write(dev->slave, dev->addr + addr, val, size);
153 }
154 EXPORT_SYMBOL_GPL(fsi_device_write);
155 
fsi_device_peek(struct fsi_device * dev,void * val)156 int fsi_device_peek(struct fsi_device *dev, void *val)
157 {
158 	uint32_t addr = FSI_PEEK_BASE + ((dev->unit - 2) * sizeof(uint32_t));
159 
160 	return fsi_slave_read(dev->slave, addr, val, sizeof(uint32_t));
161 }
162 
fsi_device_release(struct device * _device)163 static void fsi_device_release(struct device *_device)
164 {
165 	struct fsi_device *device = to_fsi_dev(_device);
166 
167 	of_node_put(device->dev.of_node);
168 	kfree(device);
169 }
170 
fsi_create_device(struct fsi_slave * slave)171 static struct fsi_device *fsi_create_device(struct fsi_slave *slave)
172 {
173 	struct fsi_device *dev;
174 
175 	dev = kzalloc(sizeof(*dev), GFP_KERNEL);
176 	if (!dev)
177 		return NULL;
178 
179 	dev->dev.parent = &slave->dev;
180 	dev->dev.bus = &fsi_bus_type;
181 	dev->dev.release = fsi_device_release;
182 
183 	return dev;
184 }
185 
186 /* FSI slave support */
fsi_slave_calc_addr(struct fsi_slave * slave,uint32_t * addrp,uint8_t * idp)187 static int fsi_slave_calc_addr(struct fsi_slave *slave, uint32_t *addrp,
188 		uint8_t *idp)
189 {
190 	uint32_t addr = *addrp;
191 	uint8_t id = *idp;
192 
193 	if (addr > slave->size)
194 		return -EINVAL;
195 
196 	/* For 23 bit addressing, we encode the extra two bits in the slave
197 	 * id (and the slave's actual ID needs to be 0).
198 	 */
199 	if (addr > 0x1fffff) {
200 		if (slave->id != 0)
201 			return -EINVAL;
202 		id = (addr >> 21) & 0x3;
203 		addr &= 0x1fffff;
204 	}
205 
206 	*addrp = addr;
207 	*idp = id;
208 	return 0;
209 }
210 
fsi_slave_report_and_clear_errors(struct fsi_slave * slave)211 static int fsi_slave_report_and_clear_errors(struct fsi_slave *slave)
212 {
213 	struct fsi_master *master = slave->master;
214 	__be32 irq, stat;
215 	int rc, link;
216 	uint8_t id;
217 
218 	link = slave->link;
219 	id = slave->id;
220 
221 	rc = fsi_master_read(master, link, id, FSI_SLAVE_BASE + FSI_SISC,
222 			&irq, sizeof(irq));
223 	if (rc)
224 		return rc;
225 
226 	rc =  fsi_master_read(master, link, id, FSI_SLAVE_BASE + FSI_SSTAT,
227 			&stat, sizeof(stat));
228 	if (rc)
229 		return rc;
230 
231 	dev_dbg(&slave->dev, "status: 0x%08x, sisc: 0x%08x\n",
232 			be32_to_cpu(stat), be32_to_cpu(irq));
233 
234 	/* clear interrupts */
235 	return fsi_master_write(master, link, id, FSI_SLAVE_BASE + FSI_SISC,
236 			&irq, sizeof(irq));
237 }
238 
239 /* Encode slave local bus echo delay */
fsi_smode_echodly(int x)240 static inline uint32_t fsi_smode_echodly(int x)
241 {
242 	return (x & FSI_SMODE_ED_MASK) << FSI_SMODE_ED_SHIFT;
243 }
244 
245 /* Encode slave local bus send delay */
fsi_smode_senddly(int x)246 static inline uint32_t fsi_smode_senddly(int x)
247 {
248 	return (x & FSI_SMODE_SD_MASK) << FSI_SMODE_SD_SHIFT;
249 }
250 
251 /* Encode slave local bus clock rate ratio */
fsi_smode_lbcrr(int x)252 static inline uint32_t fsi_smode_lbcrr(int x)
253 {
254 	return (x & FSI_SMODE_LBCRR_MASK) << FSI_SMODE_LBCRR_SHIFT;
255 }
256 
257 /* Encode slave ID */
fsi_smode_sid(int x)258 static inline uint32_t fsi_smode_sid(int x)
259 {
260 	return (x & FSI_SMODE_SID_MASK) << FSI_SMODE_SID_SHIFT;
261 }
262 
fsi_slave_smode(int id,u8 t_senddly,u8 t_echodly)263 static uint32_t fsi_slave_smode(int id, u8 t_senddly, u8 t_echodly)
264 {
265 	return FSI_SMODE_WSC | FSI_SMODE_ECRC
266 		| fsi_smode_sid(id)
267 		| fsi_smode_echodly(t_echodly - 1) | fsi_smode_senddly(t_senddly - 1)
268 		| fsi_smode_lbcrr(0x8);
269 }
270 
fsi_slave_set_smode(struct fsi_slave * slave)271 static int fsi_slave_set_smode(struct fsi_slave *slave)
272 {
273 	uint32_t smode;
274 	__be32 data;
275 
276 	/* set our smode register with the slave ID field to 0; this enables
277 	 * extended slave addressing
278 	 */
279 	smode = fsi_slave_smode(slave->id, slave->t_send_delay, slave->t_echo_delay);
280 	data = cpu_to_be32(smode);
281 
282 	return fsi_master_write(slave->master, slave->link, slave->id,
283 				FSI_SLAVE_BASE + FSI_SMODE,
284 				&data, sizeof(data));
285 }
286 
fsi_slave_handle_error(struct fsi_slave * slave,bool write,uint32_t addr,size_t size)287 static int fsi_slave_handle_error(struct fsi_slave *slave, bool write,
288 				  uint32_t addr, size_t size)
289 {
290 	struct fsi_master *master = slave->master;
291 	int rc, link;
292 	uint32_t reg;
293 	uint8_t id, send_delay, echo_delay;
294 
295 	if (discard_errors)
296 		return -1;
297 
298 	link = slave->link;
299 	id = slave->id;
300 
301 	dev_dbg(&slave->dev, "handling error on %s to 0x%08x[%zd]",
302 			write ? "write" : "read", addr, size);
303 
304 	/* try a simple clear of error conditions, which may fail if we've lost
305 	 * communication with the slave
306 	 */
307 	rc = fsi_slave_report_and_clear_errors(slave);
308 	if (!rc)
309 		return 0;
310 
311 	/* send a TERM and retry */
312 	if (master->term) {
313 		rc = master->term(master, link, id);
314 		if (!rc) {
315 			rc = fsi_master_read(master, link, id, 0,
316 					&reg, sizeof(reg));
317 			if (!rc)
318 				rc = fsi_slave_report_and_clear_errors(slave);
319 			if (!rc)
320 				return 0;
321 		}
322 	}
323 
324 	send_delay = slave->t_send_delay;
325 	echo_delay = slave->t_echo_delay;
326 
327 	/* getting serious, reset the slave via BREAK */
328 	rc = fsi_master_break(master, link);
329 	if (rc)
330 		return rc;
331 
332 	slave->t_send_delay = send_delay;
333 	slave->t_echo_delay = echo_delay;
334 
335 	rc = fsi_slave_set_smode(slave);
336 	if (rc)
337 		return rc;
338 
339 	if (master->link_config)
340 		master->link_config(master, link,
341 				    slave->t_send_delay,
342 				    slave->t_echo_delay);
343 
344 	return fsi_slave_report_and_clear_errors(slave);
345 }
346 
fsi_slave_read(struct fsi_slave * slave,uint32_t addr,void * val,size_t size)347 int fsi_slave_read(struct fsi_slave *slave, uint32_t addr,
348 			void *val, size_t size)
349 {
350 	uint8_t id = slave->id;
351 	int rc, err_rc, i;
352 
353 	rc = fsi_slave_calc_addr(slave, &addr, &id);
354 	if (rc)
355 		return rc;
356 
357 	for (i = 0; i < slave_retries; i++) {
358 		rc = fsi_master_read(slave->master, slave->link,
359 				id, addr, val, size);
360 		if (!rc)
361 			break;
362 
363 		err_rc = fsi_slave_handle_error(slave, false, addr, size);
364 		if (err_rc)
365 			break;
366 	}
367 
368 	return rc;
369 }
370 EXPORT_SYMBOL_GPL(fsi_slave_read);
371 
fsi_slave_write(struct fsi_slave * slave,uint32_t addr,const void * val,size_t size)372 int fsi_slave_write(struct fsi_slave *slave, uint32_t addr,
373 			const void *val, size_t size)
374 {
375 	uint8_t id = slave->id;
376 	int rc, err_rc, i;
377 
378 	rc = fsi_slave_calc_addr(slave, &addr, &id);
379 	if (rc)
380 		return rc;
381 
382 	for (i = 0; i < slave_retries; i++) {
383 		rc = fsi_master_write(slave->master, slave->link,
384 				id, addr, val, size);
385 		if (!rc)
386 			break;
387 
388 		err_rc = fsi_slave_handle_error(slave, true, addr, size);
389 		if (err_rc)
390 			break;
391 	}
392 
393 	return rc;
394 }
395 EXPORT_SYMBOL_GPL(fsi_slave_write);
396 
fsi_slave_claim_range(struct fsi_slave * slave,uint32_t addr,uint32_t size)397 extern int fsi_slave_claim_range(struct fsi_slave *slave,
398 		uint32_t addr, uint32_t size)
399 {
400 	if (addr + size < addr)
401 		return -EINVAL;
402 
403 	if (addr + size > slave->size)
404 		return -EINVAL;
405 
406 	/* todo: check for overlapping claims */
407 	return 0;
408 }
409 EXPORT_SYMBOL_GPL(fsi_slave_claim_range);
410 
fsi_slave_release_range(struct fsi_slave * slave,uint32_t addr,uint32_t size)411 extern void fsi_slave_release_range(struct fsi_slave *slave,
412 		uint32_t addr, uint32_t size)
413 {
414 }
415 EXPORT_SYMBOL_GPL(fsi_slave_release_range);
416 
fsi_device_node_matches(struct device * dev,struct device_node * np,uint32_t addr,uint32_t size)417 static bool fsi_device_node_matches(struct device *dev, struct device_node *np,
418 		uint32_t addr, uint32_t size)
419 {
420 	unsigned int len, na, ns;
421 	const __be32 *prop;
422 	uint32_t psize;
423 
424 	na = of_n_addr_cells(np);
425 	ns = of_n_size_cells(np);
426 
427 	if (na != 1 || ns != 1)
428 		return false;
429 
430 	prop = of_get_property(np, "reg", &len);
431 	if (!prop || len != 8)
432 		return false;
433 
434 	if (of_read_number(prop, 1) != addr)
435 		return false;
436 
437 	psize = of_read_number(prop + 1, 1);
438 	if (psize != size) {
439 		dev_warn(dev,
440 			"node %s matches probed address, but not size (got 0x%x, expected 0x%x)",
441 			of_node_full_name(np), psize, size);
442 	}
443 
444 	return true;
445 }
446 
447 /* Find a matching node for the slave engine at @address, using @size bytes
448  * of space. Returns NULL if not found, or a matching node with refcount
449  * already incremented.
450  */
fsi_device_find_of_node(struct fsi_device * dev)451 static struct device_node *fsi_device_find_of_node(struct fsi_device *dev)
452 {
453 	struct device_node *parent, *np;
454 
455 	parent = dev_of_node(&dev->slave->dev);
456 	if (!parent)
457 		return NULL;
458 
459 	for_each_child_of_node(parent, np) {
460 		if (fsi_device_node_matches(&dev->dev, np,
461 					dev->addr, dev->size))
462 			return np;
463 	}
464 
465 	return NULL;
466 }
467 
fsi_slave_scan(struct fsi_slave * slave)468 static int fsi_slave_scan(struct fsi_slave *slave)
469 {
470 	uint32_t engine_addr;
471 	int rc, i;
472 
473 	/*
474 	 * scan engines
475 	 *
476 	 * We keep the peek mode and slave engines for the core; so start
477 	 * at the third slot in the configuration table. We also need to
478 	 * skip the chip ID entry at the start of the address space.
479 	 */
480 	engine_addr = engine_page_size * 3;
481 	for (i = 2; i < engine_page_size / sizeof(uint32_t); i++) {
482 		uint8_t slots, version, type, crc;
483 		struct fsi_device *dev;
484 		uint32_t conf;
485 		__be32 data;
486 
487 		rc = fsi_slave_read(slave, (i + 1) * sizeof(data),
488 				&data, sizeof(data));
489 		if (rc) {
490 			dev_warn(&slave->dev,
491 				"error reading slave registers\n");
492 			return -1;
493 		}
494 		conf = be32_to_cpu(data);
495 
496 		crc = crc4(0, conf, 32);
497 		if (crc) {
498 			dev_warn(&slave->dev,
499 				"crc error in slave register at 0x%04x\n",
500 				i);
501 			return -1;
502 		}
503 
504 		slots = (conf & FSI_SLAVE_CONF_SLOTS_MASK)
505 			>> FSI_SLAVE_CONF_SLOTS_SHIFT;
506 		version = (conf & FSI_SLAVE_CONF_VERSION_MASK)
507 			>> FSI_SLAVE_CONF_VERSION_SHIFT;
508 		type = (conf & FSI_SLAVE_CONF_TYPE_MASK)
509 			>> FSI_SLAVE_CONF_TYPE_SHIFT;
510 
511 		/*
512 		 * Unused address areas are marked by a zero type value; this
513 		 * skips the defined address areas
514 		 */
515 		if (type != 0 && slots != 0) {
516 
517 			/* create device */
518 			dev = fsi_create_device(slave);
519 			if (!dev)
520 				return -ENOMEM;
521 
522 			dev->slave = slave;
523 			dev->engine_type = type;
524 			dev->version = version;
525 			dev->unit = i;
526 			dev->addr = engine_addr;
527 			dev->size = slots * engine_page_size;
528 
529 			dev_dbg(&slave->dev,
530 			"engine[%i]: type %x, version %x, addr %x size %x\n",
531 					dev->unit, dev->engine_type, version,
532 					dev->addr, dev->size);
533 
534 			dev_set_name(&dev->dev, "%02x:%02x:%02x:%02x",
535 					slave->master->idx, slave->link,
536 					slave->id, i - 2);
537 			dev->dev.of_node = fsi_device_find_of_node(dev);
538 
539 			rc = device_register(&dev->dev);
540 			if (rc) {
541 				dev_warn(&slave->dev, "add failed: %d\n", rc);
542 				put_device(&dev->dev);
543 			}
544 		}
545 
546 		engine_addr += slots * engine_page_size;
547 
548 		if (!(conf & FSI_SLAVE_CONF_NEXT_MASK))
549 			break;
550 	}
551 
552 	return 0;
553 }
554 
aligned_access_size(size_t offset,size_t count)555 static unsigned long aligned_access_size(size_t offset, size_t count)
556 {
557 	unsigned long offset_unit, count_unit;
558 
559 	/* Criteria:
560 	 *
561 	 * 1. Access size must be less than or equal to the maximum access
562 	 *    width or the highest power-of-two factor of offset
563 	 * 2. Access size must be less than or equal to the amount specified by
564 	 *    count
565 	 *
566 	 * The access width is optimal if we can calculate 1 to be strictly
567 	 * equal while still satisfying 2.
568 	 */
569 
570 	/* Find 1 by the bottom bit of offset (with a 4 byte access cap) */
571 	offset_unit = BIT(__builtin_ctzl(offset | 4));
572 
573 	/* Find 2 by the top bit of count */
574 	count_unit = BIT(8 * sizeof(unsigned long) - 1 - __builtin_clzl(count));
575 
576 	/* Constrain the maximum access width to the minimum of both criteria */
577 	return BIT(__builtin_ctzl(offset_unit | count_unit));
578 }
579 
fsi_slave_sysfs_raw_read(struct file * file,struct kobject * kobj,struct bin_attribute * attr,char * buf,loff_t off,size_t count)580 static ssize_t fsi_slave_sysfs_raw_read(struct file *file,
581 		struct kobject *kobj, struct bin_attribute *attr, char *buf,
582 		loff_t off, size_t count)
583 {
584 	struct fsi_slave *slave = to_fsi_slave(kobj_to_dev(kobj));
585 	size_t total_len, read_len;
586 	int rc;
587 
588 	if (off < 0)
589 		return -EINVAL;
590 
591 	if (off > 0xffffffff || count > 0xffffffff || off + count > 0xffffffff)
592 		return -EINVAL;
593 
594 	for (total_len = 0; total_len < count; total_len += read_len) {
595 		read_len = aligned_access_size(off, count - total_len);
596 
597 		rc = fsi_slave_read(slave, off, buf + total_len, read_len);
598 		if (rc)
599 			return rc;
600 
601 		off += read_len;
602 	}
603 
604 	return count;
605 }
606 
fsi_slave_sysfs_raw_write(struct file * file,struct kobject * kobj,struct bin_attribute * attr,char * buf,loff_t off,size_t count)607 static ssize_t fsi_slave_sysfs_raw_write(struct file *file,
608 		struct kobject *kobj, struct bin_attribute *attr,
609 		char *buf, loff_t off, size_t count)
610 {
611 	struct fsi_slave *slave = to_fsi_slave(kobj_to_dev(kobj));
612 	size_t total_len, write_len;
613 	int rc;
614 
615 	if (off < 0)
616 		return -EINVAL;
617 
618 	if (off > 0xffffffff || count > 0xffffffff || off + count > 0xffffffff)
619 		return -EINVAL;
620 
621 	for (total_len = 0; total_len < count; total_len += write_len) {
622 		write_len = aligned_access_size(off, count - total_len);
623 
624 		rc = fsi_slave_write(slave, off, buf + total_len, write_len);
625 		if (rc)
626 			return rc;
627 
628 		off += write_len;
629 	}
630 
631 	return count;
632 }
633 
634 static const struct bin_attribute fsi_slave_raw_attr = {
635 	.attr = {
636 		.name = "raw",
637 		.mode = 0600,
638 	},
639 	.size = 0,
640 	.read = fsi_slave_sysfs_raw_read,
641 	.write = fsi_slave_sysfs_raw_write,
642 };
643 
fsi_slave_release(struct device * dev)644 static void fsi_slave_release(struct device *dev)
645 {
646 	struct fsi_slave *slave = to_fsi_slave(dev);
647 
648 	fsi_free_minor(slave->dev.devt);
649 	of_node_put(dev->of_node);
650 	kfree(slave);
651 }
652 
fsi_slave_node_matches(struct device_node * np,int link,uint8_t id)653 static bool fsi_slave_node_matches(struct device_node *np,
654 		int link, uint8_t id)
655 {
656 	unsigned int len, na, ns;
657 	const __be32 *prop;
658 
659 	na = of_n_addr_cells(np);
660 	ns = of_n_size_cells(np);
661 
662 	/* Ensure we have the correct format for addresses and sizes in
663 	 * reg properties
664 	 */
665 	if (na != 2 || ns != 0)
666 		return false;
667 
668 	prop = of_get_property(np, "reg", &len);
669 	if (!prop || len != 8)
670 		return false;
671 
672 	return (of_read_number(prop, 1) == link) &&
673 		(of_read_number(prop + 1, 1) == id);
674 }
675 
676 /* Find a matching node for the slave at (link, id). Returns NULL if none
677  * found, or a matching node with refcount already incremented.
678  */
fsi_slave_find_of_node(struct fsi_master * master,int link,uint8_t id)679 static struct device_node *fsi_slave_find_of_node(struct fsi_master *master,
680 		int link, uint8_t id)
681 {
682 	struct device_node *parent, *np;
683 
684 	parent = dev_of_node(&master->dev);
685 	if (!parent)
686 		return NULL;
687 
688 	for_each_child_of_node(parent, np) {
689 		if (fsi_slave_node_matches(np, link, id))
690 			return np;
691 	}
692 
693 	return NULL;
694 }
695 
cfam_read(struct file * filep,char __user * buf,size_t count,loff_t * offset)696 static ssize_t cfam_read(struct file *filep, char __user *buf, size_t count,
697 			 loff_t *offset)
698 {
699 	struct fsi_slave *slave = filep->private_data;
700 	size_t total_len, read_len;
701 	loff_t off = *offset;
702 	ssize_t rc;
703 
704 	if (off < 0)
705 		return -EINVAL;
706 
707 	if (off > 0xffffffff || count > 0xffffffff || off + count > 0xffffffff)
708 		return -EINVAL;
709 
710 	for (total_len = 0; total_len < count; total_len += read_len) {
711 		__be32 data;
712 
713 		read_len = min_t(size_t, count, 4);
714 		read_len -= off & 0x3;
715 
716 		rc = fsi_slave_read(slave, off, &data, read_len);
717 		if (rc)
718 			goto fail;
719 		rc = copy_to_user(buf + total_len, &data, read_len);
720 		if (rc) {
721 			rc = -EFAULT;
722 			goto fail;
723 		}
724 		off += read_len;
725 	}
726 	rc = count;
727  fail:
728 	*offset = off;
729 	return rc;
730 }
731 
cfam_write(struct file * filep,const char __user * buf,size_t count,loff_t * offset)732 static ssize_t cfam_write(struct file *filep, const char __user *buf,
733 			  size_t count, loff_t *offset)
734 {
735 	struct fsi_slave *slave = filep->private_data;
736 	size_t total_len, write_len;
737 	loff_t off = *offset;
738 	ssize_t rc;
739 
740 
741 	if (off < 0)
742 		return -EINVAL;
743 
744 	if (off > 0xffffffff || count > 0xffffffff || off + count > 0xffffffff)
745 		return -EINVAL;
746 
747 	for (total_len = 0; total_len < count; total_len += write_len) {
748 		__be32 data;
749 
750 		write_len = min_t(size_t, count, 4);
751 		write_len -= off & 0x3;
752 
753 		rc = copy_from_user(&data, buf + total_len, write_len);
754 		if (rc) {
755 			rc = -EFAULT;
756 			goto fail;
757 		}
758 		rc = fsi_slave_write(slave, off, &data, write_len);
759 		if (rc)
760 			goto fail;
761 		off += write_len;
762 	}
763 	rc = count;
764  fail:
765 	*offset = off;
766 	return rc;
767 }
768 
cfam_llseek(struct file * file,loff_t offset,int whence)769 static loff_t cfam_llseek(struct file *file, loff_t offset, int whence)
770 {
771 	switch (whence) {
772 	case SEEK_CUR:
773 		break;
774 	case SEEK_SET:
775 		file->f_pos = offset;
776 		break;
777 	default:
778 		return -EINVAL;
779 	}
780 
781 	return offset;
782 }
783 
cfam_open(struct inode * inode,struct file * file)784 static int cfam_open(struct inode *inode, struct file *file)
785 {
786 	struct fsi_slave *slave = container_of(inode->i_cdev, struct fsi_slave, cdev);
787 
788 	file->private_data = slave;
789 
790 	return 0;
791 }
792 
793 static const struct file_operations cfam_fops = {
794 	.owner		= THIS_MODULE,
795 	.open		= cfam_open,
796 	.llseek		= cfam_llseek,
797 	.read		= cfam_read,
798 	.write		= cfam_write,
799 };
800 
send_term_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)801 static ssize_t send_term_store(struct device *dev,
802 			       struct device_attribute *attr,
803 			       const char *buf, size_t count)
804 {
805 	struct fsi_slave *slave = to_fsi_slave(dev);
806 	struct fsi_master *master = slave->master;
807 
808 	if (!master->term)
809 		return -ENODEV;
810 
811 	master->term(master, slave->link, slave->id);
812 	return count;
813 }
814 
815 static DEVICE_ATTR_WO(send_term);
816 
slave_send_echo_show(struct device * dev,struct device_attribute * attr,char * buf)817 static ssize_t slave_send_echo_show(struct device *dev,
818 				    struct device_attribute *attr,
819 				    char *buf)
820 {
821 	struct fsi_slave *slave = to_fsi_slave(dev);
822 
823 	return sprintf(buf, "%u\n", slave->t_send_delay);
824 }
825 
slave_send_echo_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)826 static ssize_t slave_send_echo_store(struct device *dev,
827 		struct device_attribute *attr, const char *buf, size_t count)
828 {
829 	struct fsi_slave *slave = to_fsi_slave(dev);
830 	struct fsi_master *master = slave->master;
831 	unsigned long val;
832 	int rc;
833 
834 	if (kstrtoul(buf, 0, &val) < 0)
835 		return -EINVAL;
836 
837 	if (val < 1 || val > 16)
838 		return -EINVAL;
839 
840 	if (!master->link_config)
841 		return -ENXIO;
842 
843 	/* Current HW mandates that send and echo delay are identical */
844 	slave->t_send_delay = val;
845 	slave->t_echo_delay = val;
846 
847 	rc = fsi_slave_set_smode(slave);
848 	if (rc < 0)
849 		return rc;
850 	if (master->link_config)
851 		master->link_config(master, slave->link,
852 				    slave->t_send_delay,
853 				    slave->t_echo_delay);
854 
855 	return count;
856 }
857 
858 static DEVICE_ATTR(send_echo_delays, 0600,
859 		   slave_send_echo_show, slave_send_echo_store);
860 
chip_id_show(struct device * dev,struct device_attribute * attr,char * buf)861 static ssize_t chip_id_show(struct device *dev,
862 			    struct device_attribute *attr,
863 			    char *buf)
864 {
865 	struct fsi_slave *slave = to_fsi_slave(dev);
866 
867 	return sprintf(buf, "%d\n", slave->chip_id);
868 }
869 
870 static DEVICE_ATTR_RO(chip_id);
871 
cfam_id_show(struct device * dev,struct device_attribute * attr,char * buf)872 static ssize_t cfam_id_show(struct device *dev,
873 			    struct device_attribute *attr,
874 			    char *buf)
875 {
876 	struct fsi_slave *slave = to_fsi_slave(dev);
877 
878 	return sprintf(buf, "0x%x\n", slave->cfam_id);
879 }
880 
881 static DEVICE_ATTR_RO(cfam_id);
882 
883 static struct attribute *cfam_attr[] = {
884 	&dev_attr_send_echo_delays.attr,
885 	&dev_attr_chip_id.attr,
886 	&dev_attr_cfam_id.attr,
887 	&dev_attr_send_term.attr,
888 	NULL,
889 };
890 
891 static const struct attribute_group cfam_attr_group = {
892 	.attrs = cfam_attr,
893 };
894 
895 static const struct attribute_group *cfam_attr_groups[] = {
896 	&cfam_attr_group,
897 	NULL,
898 };
899 
cfam_devnode(struct device * dev,umode_t * mode,kuid_t * uid,kgid_t * gid)900 static char *cfam_devnode(struct device *dev, umode_t *mode,
901 			  kuid_t *uid, kgid_t *gid)
902 {
903 	struct fsi_slave *slave = to_fsi_slave(dev);
904 
905 #ifdef CONFIG_FSI_NEW_DEV_NODE
906 	return kasprintf(GFP_KERNEL, "fsi/cfam%d", slave->cdev_idx);
907 #else
908 	return kasprintf(GFP_KERNEL, "cfam%d", slave->cdev_idx);
909 #endif
910 }
911 
912 static const struct device_type cfam_type = {
913 	.name = "cfam",
914 	.devnode = cfam_devnode,
915 	.groups = cfam_attr_groups
916 };
917 
fsi_cdev_devnode(struct device * dev,umode_t * mode,kuid_t * uid,kgid_t * gid)918 static char *fsi_cdev_devnode(struct device *dev, umode_t *mode,
919 			      kuid_t *uid, kgid_t *gid)
920 {
921 #ifdef CONFIG_FSI_NEW_DEV_NODE
922 	return kasprintf(GFP_KERNEL, "fsi/%s", dev_name(dev));
923 #else
924 	return kasprintf(GFP_KERNEL, "%s", dev_name(dev));
925 #endif
926 }
927 
928 const struct device_type fsi_cdev_type = {
929 	.name = "fsi-cdev",
930 	.devnode = fsi_cdev_devnode,
931 };
932 EXPORT_SYMBOL_GPL(fsi_cdev_type);
933 
934 /* Backward compatible /dev/ numbering in "old style" mode */
fsi_adjust_index(int index)935 static int fsi_adjust_index(int index)
936 {
937 #ifdef CONFIG_FSI_NEW_DEV_NODE
938 	return index;
939 #else
940 	return index + 1;
941 #endif
942 }
943 
__fsi_get_new_minor(struct fsi_slave * slave,enum fsi_dev_type type,dev_t * out_dev,int * out_index)944 static int __fsi_get_new_minor(struct fsi_slave *slave, enum fsi_dev_type type,
945 			       dev_t *out_dev, int *out_index)
946 {
947 	int cid = slave->chip_id;
948 	int id;
949 
950 	/* Check if we qualify for legacy numbering */
951 	if (cid >= 0 && cid < 16 && type < 4) {
952 		/* Try reserving the legacy number */
953 		id = (cid << 4) | type;
954 		id = ida_simple_get(&fsi_minor_ida, id, id + 1, GFP_KERNEL);
955 		if (id >= 0) {
956 			*out_index = fsi_adjust_index(cid);
957 			*out_dev = fsi_base_dev + id;
958 			return 0;
959 		}
960 		/* Other failure */
961 		if (id != -ENOSPC)
962 			return id;
963 		/* Fallback to non-legacy allocation */
964 	}
965 	id = ida_simple_get(&fsi_minor_ida, FSI_CHAR_LEGACY_TOP,
966 			    FSI_CHAR_MAX_DEVICES, GFP_KERNEL);
967 	if (id < 0)
968 		return id;
969 	*out_index = fsi_adjust_index(id);
970 	*out_dev = fsi_base_dev + id;
971 	return 0;
972 }
973 
fsi_get_new_minor(struct fsi_device * fdev,enum fsi_dev_type type,dev_t * out_dev,int * out_index)974 int fsi_get_new_minor(struct fsi_device *fdev, enum fsi_dev_type type,
975 		      dev_t *out_dev, int *out_index)
976 {
977 	return __fsi_get_new_minor(fdev->slave, type, out_dev, out_index);
978 }
979 EXPORT_SYMBOL_GPL(fsi_get_new_minor);
980 
fsi_free_minor(dev_t dev)981 void fsi_free_minor(dev_t dev)
982 {
983 	ida_simple_remove(&fsi_minor_ida, MINOR(dev));
984 }
985 EXPORT_SYMBOL_GPL(fsi_free_minor);
986 
fsi_slave_init(struct fsi_master * master,int link,uint8_t id)987 static int fsi_slave_init(struct fsi_master *master, int link, uint8_t id)
988 {
989 	uint32_t cfam_id;
990 	struct fsi_slave *slave;
991 	uint8_t crc;
992 	__be32 data, llmode;
993 	int rc;
994 
995 	/* Currently, we only support single slaves on a link, and use the
996 	 * full 23-bit address range
997 	 */
998 	if (id != 0)
999 		return -EINVAL;
1000 
1001 	rc = fsi_master_read(master, link, id, 0, &data, sizeof(data));
1002 	if (rc) {
1003 		dev_dbg(&master->dev, "can't read slave %02x:%02x %d\n",
1004 				link, id, rc);
1005 		return -ENODEV;
1006 	}
1007 	cfam_id = be32_to_cpu(data);
1008 
1009 	crc = crc4(0, cfam_id, 32);
1010 	if (crc) {
1011 		dev_warn(&master->dev, "slave %02x:%02x invalid cfam id CRC!\n",
1012 				link, id);
1013 		return -EIO;
1014 	}
1015 
1016 	dev_dbg(&master->dev, "fsi: found chip %08x at %02x:%02x:%02x\n",
1017 			cfam_id, master->idx, link, id);
1018 
1019 	/* If we're behind a master that doesn't provide a self-running bus
1020 	 * clock, put the slave into async mode
1021 	 */
1022 	if (master->flags & FSI_MASTER_FLAG_SWCLOCK) {
1023 		llmode = cpu_to_be32(FSI_LLMODE_ASYNC);
1024 		rc = fsi_master_write(master, link, id,
1025 				FSI_SLAVE_BASE + FSI_LLMODE,
1026 				&llmode, sizeof(llmode));
1027 		if (rc)
1028 			dev_warn(&master->dev,
1029 				"can't set llmode on slave:%02x:%02x %d\n",
1030 				link, id, rc);
1031 	}
1032 
1033 	/* We can communicate with a slave; create the slave device and
1034 	 * register.
1035 	 */
1036 	slave = kzalloc(sizeof(*slave), GFP_KERNEL);
1037 	if (!slave)
1038 		return -ENOMEM;
1039 
1040 	dev_set_name(&slave->dev, "slave@%02x:%02x", link, id);
1041 	slave->dev.type = &cfam_type;
1042 	slave->dev.parent = &master->dev;
1043 	slave->dev.of_node = fsi_slave_find_of_node(master, link, id);
1044 	slave->dev.release = fsi_slave_release;
1045 	device_initialize(&slave->dev);
1046 	slave->cfam_id = cfam_id;
1047 	slave->master = master;
1048 	slave->link = link;
1049 	slave->id = id;
1050 	slave->size = FSI_SLAVE_SIZE_23b;
1051 	slave->t_send_delay = 16;
1052 	slave->t_echo_delay = 16;
1053 
1054 	/* Get chip ID if any */
1055 	slave->chip_id = -1;
1056 	if (slave->dev.of_node) {
1057 		uint32_t prop;
1058 		if (!of_property_read_u32(slave->dev.of_node, "chip-id", &prop))
1059 			slave->chip_id = prop;
1060 
1061 	}
1062 
1063 	rc = fsi_slave_set_smode(slave);
1064 	if (rc) {
1065 		dev_warn(&master->dev,
1066 				"can't set smode on slave:%02x:%02x %d\n",
1067 				link, id, rc);
1068 		goto err_free;
1069 	}
1070 
1071 	/* Allocate a minor in the FSI space */
1072 	rc = __fsi_get_new_minor(slave, fsi_dev_cfam, &slave->dev.devt,
1073 				 &slave->cdev_idx);
1074 	if (rc)
1075 		goto err_free;
1076 
1077 	/* Create chardev for userspace access */
1078 	cdev_init(&slave->cdev, &cfam_fops);
1079 	rc = cdev_device_add(&slave->cdev, &slave->dev);
1080 	if (rc) {
1081 		dev_err(&slave->dev, "Error %d creating slave device\n", rc);
1082 		goto err_free_ida;
1083 	}
1084 
1085 	/* Now that we have the cdev registered with the core, any fatal
1086 	 * failures beyond this point will need to clean up through
1087 	 * cdev_device_del(). Fortunately though, nothing past here is fatal.
1088 	 */
1089 
1090 	if (master->link_config)
1091 		master->link_config(master, link,
1092 				    slave->t_send_delay,
1093 				    slave->t_echo_delay);
1094 
1095 	/* Legacy raw file -> to be removed */
1096 	rc = device_create_bin_file(&slave->dev, &fsi_slave_raw_attr);
1097 	if (rc)
1098 		dev_warn(&slave->dev, "failed to create raw attr: %d\n", rc);
1099 
1100 
1101 	rc = fsi_slave_scan(slave);
1102 	if (rc)
1103 		dev_dbg(&master->dev, "failed during slave scan with: %d\n",
1104 				rc);
1105 
1106 	return 0;
1107 
1108 err_free_ida:
1109 	fsi_free_minor(slave->dev.devt);
1110 err_free:
1111 	of_node_put(slave->dev.of_node);
1112 	kfree(slave);
1113 	return rc;
1114 }
1115 
1116 /* FSI master support */
fsi_check_access(uint32_t addr,size_t size)1117 static int fsi_check_access(uint32_t addr, size_t size)
1118 {
1119 	if (size == 4) {
1120 		if (addr & 0x3)
1121 			return -EINVAL;
1122 	} else if (size == 2) {
1123 		if (addr & 0x1)
1124 			return -EINVAL;
1125 	} else if (size != 1)
1126 		return -EINVAL;
1127 
1128 	return 0;
1129 }
1130 
fsi_master_read(struct fsi_master * master,int link,uint8_t slave_id,uint32_t addr,void * val,size_t size)1131 static int fsi_master_read(struct fsi_master *master, int link,
1132 		uint8_t slave_id, uint32_t addr, void *val, size_t size)
1133 {
1134 	int rc;
1135 
1136 	trace_fsi_master_read(master, link, slave_id, addr, size);
1137 
1138 	rc = fsi_check_access(addr, size);
1139 	if (!rc)
1140 		rc = master->read(master, link, slave_id, addr, val, size);
1141 
1142 	trace_fsi_master_rw_result(master, link, slave_id, addr, size,
1143 			false, val, rc);
1144 
1145 	return rc;
1146 }
1147 
fsi_master_write(struct fsi_master * master,int link,uint8_t slave_id,uint32_t addr,const void * val,size_t size)1148 static int fsi_master_write(struct fsi_master *master, int link,
1149 		uint8_t slave_id, uint32_t addr, const void *val, size_t size)
1150 {
1151 	int rc;
1152 
1153 	trace_fsi_master_write(master, link, slave_id, addr, size, val);
1154 
1155 	rc = fsi_check_access(addr, size);
1156 	if (!rc)
1157 		rc = master->write(master, link, slave_id, addr, val, size);
1158 
1159 	trace_fsi_master_rw_result(master, link, slave_id, addr, size,
1160 			true, val, rc);
1161 
1162 	return rc;
1163 }
1164 
fsi_master_link_enable(struct fsi_master * master,int link)1165 static int fsi_master_link_enable(struct fsi_master *master, int link)
1166 {
1167 	if (master->link_enable)
1168 		return master->link_enable(master, link);
1169 
1170 	return 0;
1171 }
1172 
1173 /*
1174  * Issue a break command on this link
1175  */
fsi_master_break(struct fsi_master * master,int link)1176 static int fsi_master_break(struct fsi_master *master, int link)
1177 {
1178 	int rc = 0;
1179 
1180 	trace_fsi_master_break(master, link);
1181 
1182 	if (master->send_break)
1183 		rc = master->send_break(master, link);
1184 	if (master->link_config)
1185 		master->link_config(master, link, 16, 16);
1186 
1187 	return rc;
1188 }
1189 
fsi_master_scan(struct fsi_master * master)1190 static int fsi_master_scan(struct fsi_master *master)
1191 {
1192 	int link, rc;
1193 
1194 	for (link = 0; link < master->n_links; link++) {
1195 		rc = fsi_master_link_enable(master, link);
1196 		if (rc) {
1197 			dev_dbg(&master->dev,
1198 				"enable link %d failed: %d\n", link, rc);
1199 			continue;
1200 		}
1201 		rc = fsi_master_break(master, link);
1202 		if (rc) {
1203 			dev_dbg(&master->dev,
1204 				"break to link %d failed: %d\n", link, rc);
1205 			continue;
1206 		}
1207 
1208 		fsi_slave_init(master, link, 0);
1209 	}
1210 
1211 	return 0;
1212 }
1213 
fsi_slave_remove_device(struct device * dev,void * arg)1214 static int fsi_slave_remove_device(struct device *dev, void *arg)
1215 {
1216 	device_unregister(dev);
1217 	return 0;
1218 }
1219 
fsi_master_remove_slave(struct device * dev,void * arg)1220 static int fsi_master_remove_slave(struct device *dev, void *arg)
1221 {
1222 	struct fsi_slave *slave = to_fsi_slave(dev);
1223 
1224 	device_for_each_child(dev, NULL, fsi_slave_remove_device);
1225 	cdev_device_del(&slave->cdev, &slave->dev);
1226 	put_device(dev);
1227 	return 0;
1228 }
1229 
fsi_master_unscan(struct fsi_master * master)1230 static void fsi_master_unscan(struct fsi_master *master)
1231 {
1232 	device_for_each_child(&master->dev, NULL, fsi_master_remove_slave);
1233 }
1234 
fsi_master_rescan(struct fsi_master * master)1235 int fsi_master_rescan(struct fsi_master *master)
1236 {
1237 	int rc;
1238 
1239 	mutex_lock(&master->scan_lock);
1240 	fsi_master_unscan(master);
1241 	rc = fsi_master_scan(master);
1242 	mutex_unlock(&master->scan_lock);
1243 
1244 	return rc;
1245 }
1246 EXPORT_SYMBOL_GPL(fsi_master_rescan);
1247 
master_rescan_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1248 static ssize_t master_rescan_store(struct device *dev,
1249 		struct device_attribute *attr, const char *buf, size_t count)
1250 {
1251 	struct fsi_master *master = to_fsi_master(dev);
1252 	int rc;
1253 
1254 	rc = fsi_master_rescan(master);
1255 	if (rc < 0)
1256 		return rc;
1257 
1258 	return count;
1259 }
1260 
1261 static DEVICE_ATTR(rescan, 0200, NULL, master_rescan_store);
1262 
master_break_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1263 static ssize_t master_break_store(struct device *dev,
1264 		struct device_attribute *attr, const char *buf, size_t count)
1265 {
1266 	struct fsi_master *master = to_fsi_master(dev);
1267 
1268 	fsi_master_break(master, 0);
1269 
1270 	return count;
1271 }
1272 
1273 static DEVICE_ATTR(break, 0200, NULL, master_break_store);
1274 
fsi_master_register(struct fsi_master * master)1275 int fsi_master_register(struct fsi_master *master)
1276 {
1277 	int rc;
1278 	struct device_node *np;
1279 
1280 	mutex_init(&master->scan_lock);
1281 	master->idx = ida_simple_get(&master_ida, 0, INT_MAX, GFP_KERNEL);
1282 	if (master->idx < 0)
1283 		return master->idx;
1284 
1285 	dev_set_name(&master->dev, "fsi%d", master->idx);
1286 
1287 	rc = device_register(&master->dev);
1288 	if (rc) {
1289 		ida_simple_remove(&master_ida, master->idx);
1290 		return rc;
1291 	}
1292 
1293 	rc = device_create_file(&master->dev, &dev_attr_rescan);
1294 	if (rc) {
1295 		device_del(&master->dev);
1296 		ida_simple_remove(&master_ida, master->idx);
1297 		return rc;
1298 	}
1299 
1300 	rc = device_create_file(&master->dev, &dev_attr_break);
1301 	if (rc) {
1302 		device_del(&master->dev);
1303 		ida_simple_remove(&master_ida, master->idx);
1304 		return rc;
1305 	}
1306 
1307 	np = dev_of_node(&master->dev);
1308 	if (!of_property_read_bool(np, "no-scan-on-init")) {
1309 		mutex_lock(&master->scan_lock);
1310 		fsi_master_scan(master);
1311 		mutex_unlock(&master->scan_lock);
1312 	}
1313 
1314 	return 0;
1315 }
1316 EXPORT_SYMBOL_GPL(fsi_master_register);
1317 
fsi_master_unregister(struct fsi_master * master)1318 void fsi_master_unregister(struct fsi_master *master)
1319 {
1320 	if (master->idx >= 0) {
1321 		ida_simple_remove(&master_ida, master->idx);
1322 		master->idx = -1;
1323 	}
1324 
1325 	mutex_lock(&master->scan_lock);
1326 	fsi_master_unscan(master);
1327 	mutex_unlock(&master->scan_lock);
1328 	device_unregister(&master->dev);
1329 }
1330 EXPORT_SYMBOL_GPL(fsi_master_unregister);
1331 
1332 /* FSI core & Linux bus type definitions */
1333 
fsi_bus_match(struct device * dev,struct device_driver * drv)1334 static int fsi_bus_match(struct device *dev, struct device_driver *drv)
1335 {
1336 	struct fsi_device *fsi_dev = to_fsi_dev(dev);
1337 	struct fsi_driver *fsi_drv = to_fsi_drv(drv);
1338 	const struct fsi_device_id *id;
1339 
1340 	if (!fsi_drv->id_table)
1341 		return 0;
1342 
1343 	for (id = fsi_drv->id_table; id->engine_type; id++) {
1344 		if (id->engine_type != fsi_dev->engine_type)
1345 			continue;
1346 		if (id->version == FSI_VERSION_ANY ||
1347 				id->version == fsi_dev->version)
1348 			return 1;
1349 	}
1350 
1351 	return 0;
1352 }
1353 
fsi_driver_register(struct fsi_driver * fsi_drv)1354 int fsi_driver_register(struct fsi_driver *fsi_drv)
1355 {
1356 	if (!fsi_drv)
1357 		return -EINVAL;
1358 	if (!fsi_drv->id_table)
1359 		return -EINVAL;
1360 
1361 	return driver_register(&fsi_drv->drv);
1362 }
1363 EXPORT_SYMBOL_GPL(fsi_driver_register);
1364 
fsi_driver_unregister(struct fsi_driver * fsi_drv)1365 void fsi_driver_unregister(struct fsi_driver *fsi_drv)
1366 {
1367 	driver_unregister(&fsi_drv->drv);
1368 }
1369 EXPORT_SYMBOL_GPL(fsi_driver_unregister);
1370 
1371 struct bus_type fsi_bus_type = {
1372 	.name		= "fsi",
1373 	.match		= fsi_bus_match,
1374 };
1375 EXPORT_SYMBOL_GPL(fsi_bus_type);
1376 
fsi_init(void)1377 static int __init fsi_init(void)
1378 {
1379 	int rc;
1380 
1381 	rc = alloc_chrdev_region(&fsi_base_dev, 0, FSI_CHAR_MAX_DEVICES, "fsi");
1382 	if (rc)
1383 		return rc;
1384 	rc = bus_register(&fsi_bus_type);
1385 	if (rc)
1386 		goto fail_bus;
1387 	return 0;
1388 
1389  fail_bus:
1390 	unregister_chrdev_region(fsi_base_dev, FSI_CHAR_MAX_DEVICES);
1391 	return rc;
1392 }
1393 postcore_initcall(fsi_init);
1394 
fsi_exit(void)1395 static void fsi_exit(void)
1396 {
1397 	bus_unregister(&fsi_bus_type);
1398 	unregister_chrdev_region(fsi_base_dev, FSI_CHAR_MAX_DEVICES);
1399 	ida_destroy(&fsi_minor_ida);
1400 }
1401 module_exit(fsi_exit);
1402 module_param(discard_errors, int, 0664);
1403 MODULE_LICENSE("GPL");
1404 MODULE_PARM_DESC(discard_errors, "Don't invoke error handling on bus accesses");
1405