rapidio: rework common RIO device add/delete routines
[deliverable/linux.git] / drivers / rapidio / rio.c
CommitLineData
394b701c
MP
1/*
2 * RapidIO interconnect services
3 * (RapidIO Interconnect Specification, http://www.rapidio.org)
4 *
5 * Copyright 2005 MontaVista Software, Inc.
6 * Matt Porter <mporter@kernel.crashing.org>
7 *
fdf90abc 8 * Copyright 2009 - 2013 Integrated Device Technology, Inc.
e5cabeb3 9 * Alex Bounine <alexandre.bounine@idt.com>
e5cabeb3 10 *
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11 * This program is free software; you can redistribute it and/or modify it
12 * under the terms of the GNU General Public License as published by the
13 * Free Software Foundation; either version 2 of the License, or (at your
14 * option) any later version.
15 */
16
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17#include <linux/types.h>
18#include <linux/kernel.h>
19
20#include <linux/delay.h>
21#include <linux/init.h>
22#include <linux/rio.h>
23#include <linux/rio_drv.h>
24#include <linux/rio_ids.h>
25#include <linux/rio_regs.h>
26#include <linux/module.h>
27#include <linux/spinlock.h>
de25968c 28#include <linux/slab.h>
5febf1cd 29#include <linux/interrupt.h>
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30
31#include "rio.h"
32
fdf90abc
AB
33MODULE_DESCRIPTION("RapidIO Subsystem Core");
34MODULE_AUTHOR("Matt Porter <mporter@kernel.crashing.org>");
35MODULE_AUTHOR("Alexandre Bounine <alexandre.bounine@idt.com>");
36MODULE_LICENSE("GPL");
37
38static int hdid[RIO_MAX_MPORTS];
39static int ids_num;
40module_param_array(hdid, int, &ids_num, 0);
41MODULE_PARM_DESC(hdid,
42 "Destination ID assignment to local RapidIO controllers");
43
a11650e1
AB
44static LIST_HEAD(rio_devices);
45static DEFINE_SPINLOCK(rio_global_list_lock);
46
394b701c 47static LIST_HEAD(rio_mports);
9edbc30b 48static LIST_HEAD(rio_scans);
a11650e1 49static DEFINE_MUTEX(rio_mport_list_lock);
569fccb6 50static unsigned char next_portid;
da1589f0 51static DEFINE_SPINLOCK(rio_mmap_lock);
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52
53/**
54 * rio_local_get_device_id - Get the base/extended device id for a port
55 * @port: RIO master port from which to get the deviceid
56 *
57 * Reads the base/extended device id from the local device
58 * implementing the master port. Returns the 8/16-bit device
59 * id.
60 */
61u16 rio_local_get_device_id(struct rio_mport *port)
62{
63 u32 result;
64
65 rio_local_read_config_32(port, RIO_DID_CSR, &result);
66
e0423236 67 return (RIO_GET_DID(port->sys_size, result));
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MP
68}
69
8b189fdb
AB
70/**
71 * rio_query_mport - Query mport device attributes
72 * @port: mport device to query
73 * @mport_attr: mport attributes data structure
74 *
75 * Returns attributes of specified mport through the
76 * pointer to attributes data structure.
77 */
78int rio_query_mport(struct rio_mport *port,
79 struct rio_mport_attr *mport_attr)
80{
81 if (!port->ops->query_mport)
82 return -ENODATA;
83 return port->ops->query_mport(port, mport_attr);
84}
85EXPORT_SYMBOL(rio_query_mport);
86
a11650e1
AB
87/**
88 * rio_add_device- Adds a RIO device to the device model
89 * @rdev: RIO device
90 *
91 * Adds the RIO device to the global device list and adds the RIO
92 * device to the RIO device list. Creates the generic sysfs nodes
93 * for an RIO device.
94 */
95int rio_add_device(struct rio_dev *rdev)
96{
97 int err;
98
b74ec56e 99 err = device_register(&rdev->dev);
a11650e1
AB
100 if (err)
101 return err;
102
103 spin_lock(&rio_global_list_lock);
104 list_add_tail(&rdev->global_list, &rio_devices);
b74ec56e
AB
105 if (rdev->net) {
106 list_add_tail(&rdev->net_list, &rdev->net->devices);
107 if (rdev->pef & RIO_PEF_SWITCH)
108 list_add_tail(&rdev->rswitch->node,
109 &rdev->net->switches);
110 }
a11650e1
AB
111 spin_unlock(&rio_global_list_lock);
112
113 rio_create_sysfs_dev_files(rdev);
114
115 return 0;
116}
117EXPORT_SYMBOL_GPL(rio_add_device);
118
b74ec56e
AB
119/*
120 * rio_del_device - removes a RIO device from the device model
121 * @rdev: RIO device
122 *
123 * Removes the RIO device to the kernel device list and subsystem's device list.
124 * Clears sysfs entries for the removed device.
125 */
126void rio_del_device(struct rio_dev *rdev)
127{
128 pr_debug("RIO: %s: removing %s\n", __func__, rio_name(rdev));
129 spin_lock(&rio_global_list_lock);
130 list_del(&rdev->global_list);
131 if (rdev->net) {
132 list_del(&rdev->net_list);
133 if (rdev->pef & RIO_PEF_SWITCH) {
134 list_del(&rdev->rswitch->node);
135 kfree(rdev->rswitch->route_table);
136 }
137 }
138 spin_unlock(&rio_global_list_lock);
139 rio_remove_sysfs_dev_files(rdev);
140 device_unregister(&rdev->dev);
141}
142EXPORT_SYMBOL_GPL(rio_del_device);
143
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144/**
145 * rio_request_inb_mbox - request inbound mailbox service
146 * @mport: RIO master port from which to allocate the mailbox resource
6978bbc0 147 * @dev_id: Device specific pointer to pass on event
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148 * @mbox: Mailbox number to claim
149 * @entries: Number of entries in inbound mailbox queue
150 * @minb: Callback to execute when inbound message is received
151 *
152 * Requests ownership of an inbound mailbox resource and binds
153 * a callback function to the resource. Returns %0 on success.
154 */
155int rio_request_inb_mbox(struct rio_mport *mport,
6978bbc0 156 void *dev_id,
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157 int mbox,
158 int entries,
6978bbc0 159 void (*minb) (struct rio_mport * mport, void *dev_id, int mbox,
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160 int slot))
161{
f8f06269
AB
162 int rc = -ENOSYS;
163 struct resource *res;
394b701c 164
f8f06269
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165 if (mport->ops->open_inb_mbox == NULL)
166 goto out;
167
9a975bee 168 res = kzalloc(sizeof(struct resource), GFP_KERNEL);
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169
170 if (res) {
171 rio_init_mbox_res(res, mbox, mbox);
172
173 /* Make sure this mailbox isn't in use */
174 if ((rc =
175 request_resource(&mport->riores[RIO_INB_MBOX_RESOURCE],
176 res)) < 0) {
177 kfree(res);
178 goto out;
179 }
180
181 mport->inb_msg[mbox].res = res;
182
183 /* Hook the inbound message callback */
184 mport->inb_msg[mbox].mcback = minb;
185
f8f06269 186 rc = mport->ops->open_inb_mbox(mport, dev_id, mbox, entries);
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187 } else
188 rc = -ENOMEM;
189
190 out:
191 return rc;
192}
193
194/**
195 * rio_release_inb_mbox - release inbound mailbox message service
196 * @mport: RIO master port from which to release the mailbox resource
197 * @mbox: Mailbox number to release
198 *
199 * Releases ownership of an inbound mailbox resource. Returns 0
200 * if the request has been satisfied.
201 */
202int rio_release_inb_mbox(struct rio_mport *mport, int mbox)
203{
f8f06269
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204 if (mport->ops->close_inb_mbox) {
205 mport->ops->close_inb_mbox(mport, mbox);
394b701c 206
f8f06269
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207 /* Release the mailbox resource */
208 return release_resource(mport->inb_msg[mbox].res);
209 } else
210 return -ENOSYS;
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211}
212
213/**
214 * rio_request_outb_mbox - request outbound mailbox service
215 * @mport: RIO master port from which to allocate the mailbox resource
6978bbc0 216 * @dev_id: Device specific pointer to pass on event
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217 * @mbox: Mailbox number to claim
218 * @entries: Number of entries in outbound mailbox queue
219 * @moutb: Callback to execute when outbound message is sent
220 *
221 * Requests ownership of an outbound mailbox resource and binds
222 * a callback function to the resource. Returns 0 on success.
223 */
224int rio_request_outb_mbox(struct rio_mport *mport,
6978bbc0 225 void *dev_id,
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226 int mbox,
227 int entries,
6978bbc0 228 void (*moutb) (struct rio_mport * mport, void *dev_id, int mbox, int slot))
394b701c 229{
f8f06269
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230 int rc = -ENOSYS;
231 struct resource *res;
394b701c 232
f8f06269
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233 if (mport->ops->open_outb_mbox == NULL)
234 goto out;
235
9a975bee 236 res = kzalloc(sizeof(struct resource), GFP_KERNEL);
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237
238 if (res) {
239 rio_init_mbox_res(res, mbox, mbox);
240
241 /* Make sure this outbound mailbox isn't in use */
242 if ((rc =
243 request_resource(&mport->riores[RIO_OUTB_MBOX_RESOURCE],
244 res)) < 0) {
245 kfree(res);
246 goto out;
247 }
248
249 mport->outb_msg[mbox].res = res;
250
251 /* Hook the inbound message callback */
252 mport->outb_msg[mbox].mcback = moutb;
253
f8f06269 254 rc = mport->ops->open_outb_mbox(mport, dev_id, mbox, entries);
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255 } else
256 rc = -ENOMEM;
257
258 out:
259 return rc;
260}
261
262/**
263 * rio_release_outb_mbox - release outbound mailbox message service
264 * @mport: RIO master port from which to release the mailbox resource
265 * @mbox: Mailbox number to release
266 *
267 * Releases ownership of an inbound mailbox resource. Returns 0
268 * if the request has been satisfied.
269 */
270int rio_release_outb_mbox(struct rio_mport *mport, int mbox)
271{
f8f06269
AB
272 if (mport->ops->close_outb_mbox) {
273 mport->ops->close_outb_mbox(mport, mbox);
394b701c 274
f8f06269
AB
275 /* Release the mailbox resource */
276 return release_resource(mport->outb_msg[mbox].res);
277 } else
278 return -ENOSYS;
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MP
279}
280
281/**
282 * rio_setup_inb_dbell - bind inbound doorbell callback
283 * @mport: RIO master port to bind the doorbell callback
6978bbc0 284 * @dev_id: Device specific pointer to pass on event
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285 * @res: Doorbell message resource
286 * @dinb: Callback to execute when doorbell is received
287 *
288 * Adds a doorbell resource/callback pair into a port's
289 * doorbell event list. Returns 0 if the request has been
290 * satisfied.
291 */
292static int
6978bbc0
MP
293rio_setup_inb_dbell(struct rio_mport *mport, void *dev_id, struct resource *res,
294 void (*dinb) (struct rio_mport * mport, void *dev_id, u16 src, u16 dst,
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MP
295 u16 info))
296{
297 int rc = 0;
298 struct rio_dbell *dbell;
299
300 if (!(dbell = kmalloc(sizeof(struct rio_dbell), GFP_KERNEL))) {
301 rc = -ENOMEM;
302 goto out;
303 }
304
305 dbell->res = res;
306 dbell->dinb = dinb;
6978bbc0 307 dbell->dev_id = dev_id;
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308
309 list_add_tail(&dbell->node, &mport->dbells);
310
311 out:
312 return rc;
313}
314
315/**
316 * rio_request_inb_dbell - request inbound doorbell message service
317 * @mport: RIO master port from which to allocate the doorbell resource
6978bbc0 318 * @dev_id: Device specific pointer to pass on event
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319 * @start: Doorbell info range start
320 * @end: Doorbell info range end
321 * @dinb: Callback to execute when doorbell is received
322 *
323 * Requests ownership of an inbound doorbell resource and binds
324 * a callback function to the resource. Returns 0 if the request
325 * has been satisfied.
326 */
327int rio_request_inb_dbell(struct rio_mport *mport,
6978bbc0 328 void *dev_id,
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329 u16 start,
330 u16 end,
6978bbc0 331 void (*dinb) (struct rio_mport * mport, void *dev_id, u16 src,
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332 u16 dst, u16 info))
333{
334 int rc = 0;
335
9a975bee 336 struct resource *res = kzalloc(sizeof(struct resource), GFP_KERNEL);
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337
338 if (res) {
339 rio_init_dbell_res(res, start, end);
340
341 /* Make sure these doorbells aren't in use */
342 if ((rc =
343 request_resource(&mport->riores[RIO_DOORBELL_RESOURCE],
344 res)) < 0) {
345 kfree(res);
346 goto out;
347 }
348
349 /* Hook the doorbell callback */
6978bbc0 350 rc = rio_setup_inb_dbell(mport, dev_id, res, dinb);
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MP
351 } else
352 rc = -ENOMEM;
353
354 out:
355 return rc;
356}
357
358/**
359 * rio_release_inb_dbell - release inbound doorbell message service
360 * @mport: RIO master port from which to release the doorbell resource
361 * @start: Doorbell info range start
362 * @end: Doorbell info range end
363 *
364 * Releases ownership of an inbound doorbell resource and removes
365 * callback from the doorbell event list. Returns 0 if the request
366 * has been satisfied.
367 */
368int rio_release_inb_dbell(struct rio_mport *mport, u16 start, u16 end)
369{
370 int rc = 0, found = 0;
371 struct rio_dbell *dbell;
372
373 list_for_each_entry(dbell, &mport->dbells, node) {
374 if ((dbell->res->start == start) && (dbell->res->end == end)) {
375 found = 1;
376 break;
377 }
378 }
379
380 /* If we can't find an exact match, fail */
381 if (!found) {
382 rc = -EINVAL;
383 goto out;
384 }
385
386 /* Delete from list */
387 list_del(&dbell->node);
388
389 /* Release the doorbell resource */
390 rc = release_resource(dbell->res);
391
392 /* Free the doorbell event */
393 kfree(dbell);
394
395 out:
396 return rc;
397}
398
399/**
400 * rio_request_outb_dbell - request outbound doorbell message range
401 * @rdev: RIO device from which to allocate the doorbell resource
402 * @start: Doorbell message range start
403 * @end: Doorbell message range end
404 *
405 * Requests ownership of a doorbell message range. Returns a resource
406 * if the request has been satisfied or %NULL on failure.
407 */
408struct resource *rio_request_outb_dbell(struct rio_dev *rdev, u16 start,
409 u16 end)
410{
9a975bee 411 struct resource *res = kzalloc(sizeof(struct resource), GFP_KERNEL);
394b701c
MP
412
413 if (res) {
414 rio_init_dbell_res(res, start, end);
415
416 /* Make sure these doorbells aren't in use */
417 if (request_resource(&rdev->riores[RIO_DOORBELL_RESOURCE], res)
418 < 0) {
419 kfree(res);
420 res = NULL;
421 }
422 }
423
424 return res;
425}
426
427/**
428 * rio_release_outb_dbell - release outbound doorbell message range
429 * @rdev: RIO device from which to release the doorbell resource
430 * @res: Doorbell resource to be freed
431 *
432 * Releases ownership of a doorbell message range. Returns 0 if the
433 * request has been satisfied.
434 */
435int rio_release_outb_dbell(struct rio_dev *rdev, struct resource *res)
436{
437 int rc = release_resource(res);
438
439 kfree(res);
440
441 return rc;
442}
443
e5cabeb3
AB
444/**
445 * rio_request_inb_pwrite - request inbound port-write message service
97ef6f74 446 * @rdev: RIO device to which register inbound port-write callback routine
e5cabeb3
AB
447 * @pwcback: Callback routine to execute when port-write is received
448 *
449 * Binds a port-write callback function to the RapidIO device.
450 * Returns 0 if the request has been satisfied.
451 */
452int rio_request_inb_pwrite(struct rio_dev *rdev,
453 int (*pwcback)(struct rio_dev *rdev, union rio_pw_msg *msg, int step))
454{
455 int rc = 0;
456
457 spin_lock(&rio_global_list_lock);
458 if (rdev->pwcback != NULL)
459 rc = -ENOMEM;
460 else
461 rdev->pwcback = pwcback;
462
463 spin_unlock(&rio_global_list_lock);
464 return rc;
465}
466EXPORT_SYMBOL_GPL(rio_request_inb_pwrite);
467
468/**
469 * rio_release_inb_pwrite - release inbound port-write message service
470 * @rdev: RIO device which registered for inbound port-write callback
471 *
472 * Removes callback from the rio_dev structure. Returns 0 if the request
473 * has been satisfied.
474 */
475int rio_release_inb_pwrite(struct rio_dev *rdev)
476{
477 int rc = -ENOMEM;
478
479 spin_lock(&rio_global_list_lock);
480 if (rdev->pwcback) {
481 rdev->pwcback = NULL;
482 rc = 0;
483 }
484
485 spin_unlock(&rio_global_list_lock);
486 return rc;
487}
488EXPORT_SYMBOL_GPL(rio_release_inb_pwrite);
489
da1589f0
AB
490/**
491 * rio_map_inb_region -- Map inbound memory region.
492 * @mport: Master port.
2ca3cb50 493 * @local: physical address of memory region to be mapped
da1589f0
AB
494 * @rbase: RIO base address assigned to this window
495 * @size: Size of the memory region
496 * @rflags: Flags for mapping.
497 *
498 * Return: 0 -- Success.
499 *
500 * This function will create the mapping from RIO space to local memory.
501 */
502int rio_map_inb_region(struct rio_mport *mport, dma_addr_t local,
503 u64 rbase, u32 size, u32 rflags)
504{
505 int rc = 0;
506 unsigned long flags;
507
508 if (!mport->ops->map_inb)
509 return -1;
510 spin_lock_irqsave(&rio_mmap_lock, flags);
511 rc = mport->ops->map_inb(mport, local, rbase, size, rflags);
512 spin_unlock_irqrestore(&rio_mmap_lock, flags);
513 return rc;
514}
515EXPORT_SYMBOL_GPL(rio_map_inb_region);
516
517/**
518 * rio_unmap_inb_region -- Unmap the inbound memory region
519 * @mport: Master port
520 * @lstart: physical address of memory region to be unmapped
521 */
522void rio_unmap_inb_region(struct rio_mport *mport, dma_addr_t lstart)
523{
524 unsigned long flags;
525 if (!mport->ops->unmap_inb)
526 return;
527 spin_lock_irqsave(&rio_mmap_lock, flags);
528 mport->ops->unmap_inb(mport, lstart);
529 spin_unlock_irqrestore(&rio_mmap_lock, flags);
530}
531EXPORT_SYMBOL_GPL(rio_unmap_inb_region);
532
e5cabeb3
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533/**
534 * rio_mport_get_physefb - Helper function that returns register offset
535 * for Physical Layer Extended Features Block.
97ef6f74
RD
536 * @port: Master port to issue transaction
537 * @local: Indicate a local master port or remote device access
538 * @destid: Destination ID of the device
539 * @hopcount: Number of switch hops to the device
e5cabeb3
AB
540 */
541u32
542rio_mport_get_physefb(struct rio_mport *port, int local,
543 u16 destid, u8 hopcount)
544{
545 u32 ext_ftr_ptr;
546 u32 ftr_header;
547
548 ext_ftr_ptr = rio_mport_get_efb(port, local, destid, hopcount, 0);
549
550 while (ext_ftr_ptr) {
551 if (local)
552 rio_local_read_config_32(port, ext_ftr_ptr,
553 &ftr_header);
554 else
555 rio_mport_read_config_32(port, destid, hopcount,
556 ext_ftr_ptr, &ftr_header);
557
558 ftr_header = RIO_GET_BLOCK_ID(ftr_header);
559 switch (ftr_header) {
560
561 case RIO_EFB_SER_EP_ID_V13P:
562 case RIO_EFB_SER_EP_REC_ID_V13P:
563 case RIO_EFB_SER_EP_FREE_ID_V13P:
564 case RIO_EFB_SER_EP_ID:
565 case RIO_EFB_SER_EP_REC_ID:
566 case RIO_EFB_SER_EP_FREE_ID:
567 case RIO_EFB_SER_EP_FREC_ID:
568
569 return ext_ftr_ptr;
570
571 default:
572 break;
573 }
574
575 ext_ftr_ptr = rio_mport_get_efb(port, local, destid,
576 hopcount, ext_ftr_ptr);
577 }
578
579 return ext_ftr_ptr;
580}
a11650e1 581EXPORT_SYMBOL_GPL(rio_mport_get_physefb);
e5cabeb3
AB
582
583/**
584 * rio_get_comptag - Begin or continue searching for a RIO device by component tag
97ef6f74 585 * @comp_tag: RIO component tag to match
e5cabeb3
AB
586 * @from: Previous RIO device found in search, or %NULL for new search
587 *
588 * Iterates through the list of known RIO devices. If a RIO device is
589 * found with a matching @comp_tag, a pointer to its device
590 * structure is returned. Otherwise, %NULL is returned. A new search
591 * is initiated by passing %NULL to the @from argument. Otherwise, if
592 * @from is not %NULL, searches continue from next device on the global
593 * list.
594 */
af84ca38 595struct rio_dev *rio_get_comptag(u32 comp_tag, struct rio_dev *from)
e5cabeb3
AB
596{
597 struct list_head *n;
598 struct rio_dev *rdev;
599
e5cabeb3
AB
600 spin_lock(&rio_global_list_lock);
601 n = from ? from->global_list.next : rio_devices.next;
602
603 while (n && (n != &rio_devices)) {
604 rdev = rio_dev_g(n);
605 if (rdev->comp_tag == comp_tag)
606 goto exit;
607 n = n->next;
608 }
609 rdev = NULL;
610exit:
611 spin_unlock(&rio_global_list_lock);
612 return rdev;
613}
a11650e1 614EXPORT_SYMBOL_GPL(rio_get_comptag);
e5cabeb3
AB
615
616/**
617 * rio_set_port_lockout - Sets/clears LOCKOUT bit (RIO EM 1.3) for a switch port.
618 * @rdev: Pointer to RIO device control structure
619 * @pnum: Switch port number to set LOCKOUT bit
620 * @lock: Operation : set (=1) or clear (=0)
621 */
622int rio_set_port_lockout(struct rio_dev *rdev, u32 pnum, int lock)
623{
e5cabeb3
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624 u32 regval;
625
a93192a5 626 rio_read_config_32(rdev,
e5cabeb3
AB
627 rdev->phys_efptr + RIO_PORT_N_CTL_CSR(pnum),
628 &regval);
629 if (lock)
630 regval |= RIO_PORT_N_CTL_LOCKOUT;
631 else
632 regval &= ~RIO_PORT_N_CTL_LOCKOUT;
633
a93192a5 634 rio_write_config_32(rdev,
e5cabeb3
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635 rdev->phys_efptr + RIO_PORT_N_CTL_CSR(pnum),
636 regval);
637 return 0;
638}
a11650e1
AB
639EXPORT_SYMBOL_GPL(rio_set_port_lockout);
640
a11650e1
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641/**
642 * rio_enable_rx_tx_port - enable input receiver and output transmitter of
643 * given port
644 * @port: Master port associated with the RIO network
645 * @local: local=1 select local port otherwise a far device is reached
646 * @destid: Destination ID of the device to check host bit
647 * @hopcount: Number of hops to reach the target
648 * @port_num: Port (-number on switch) to enable on a far end device
649 *
650 * Returns 0 or 1 from on General Control Command and Status Register
651 * (EXT_PTR+0x3C)
652 */
653int rio_enable_rx_tx_port(struct rio_mport *port,
654 int local, u16 destid,
655 u8 hopcount, u8 port_num)
656{
657#ifdef CONFIG_RAPIDIO_ENABLE_RX_TX_PORTS
658 u32 regval;
659 u32 ext_ftr_ptr;
660
661 /*
662 * enable rx input tx output port
663 */
664 pr_debug("rio_enable_rx_tx_port(local = %d, destid = %d, hopcount = "
665 "%d, port_num = %d)\n", local, destid, hopcount, port_num);
666
667 ext_ftr_ptr = rio_mport_get_physefb(port, local, destid, hopcount);
668
669 if (local) {
670 rio_local_read_config_32(port, ext_ftr_ptr +
671 RIO_PORT_N_CTL_CSR(0),
672 &regval);
673 } else {
674 if (rio_mport_read_config_32(port, destid, hopcount,
675 ext_ftr_ptr + RIO_PORT_N_CTL_CSR(port_num), &regval) < 0)
676 return -EIO;
677 }
678
679 if (regval & RIO_PORT_N_CTL_P_TYP_SER) {
680 /* serial */
681 regval = regval | RIO_PORT_N_CTL_EN_RX_SER
682 | RIO_PORT_N_CTL_EN_TX_SER;
683 } else {
684 /* parallel */
685 regval = regval | RIO_PORT_N_CTL_EN_RX_PAR
686 | RIO_PORT_N_CTL_EN_TX_PAR;
687 }
688
689 if (local) {
690 rio_local_write_config_32(port, ext_ftr_ptr +
691 RIO_PORT_N_CTL_CSR(0), regval);
692 } else {
693 if (rio_mport_write_config_32(port, destid, hopcount,
694 ext_ftr_ptr + RIO_PORT_N_CTL_CSR(port_num), regval) < 0)
695 return -EIO;
696 }
697#endif
698 return 0;
699}
700EXPORT_SYMBOL_GPL(rio_enable_rx_tx_port);
701
e5cabeb3 702
6429cd49
AB
703/**
704 * rio_chk_dev_route - Validate route to the specified device.
705 * @rdev: RIO device failed to respond
706 * @nrdev: Last active device on the route to rdev
707 * @npnum: nrdev's port number on the route to rdev
708 *
709 * Follows a route to the specified RIO device to determine the last available
710 * device (and corresponding RIO port) on the route.
711 */
712static int
713rio_chk_dev_route(struct rio_dev *rdev, struct rio_dev **nrdev, int *npnum)
714{
715 u32 result;
a93192a5 716 int p_port, rc = -EIO;
6429cd49
AB
717 struct rio_dev *prev = NULL;
718
719 /* Find switch with failed RIO link */
720 while (rdev->prev && (rdev->prev->pef & RIO_PEF_SWITCH)) {
721 if (!rio_read_config_32(rdev->prev, RIO_DEV_ID_CAR, &result)) {
722 prev = rdev->prev;
723 break;
724 }
725 rdev = rdev->prev;
726 }
727
728 if (prev == NULL)
729 goto err_out;
730
a93192a5 731 p_port = prev->rswitch->route_table[rdev->destid];
6429cd49 732
af84ca38 733 if (p_port != RIO_INVALID_ROUTE) {
6429cd49
AB
734 pr_debug("RIO: link failed on [%s]-P%d\n",
735 rio_name(prev), p_port);
736 *nrdev = prev;
737 *npnum = p_port;
738 rc = 0;
739 } else
af84ca38 740 pr_debug("RIO: failed to trace route to %s\n", rio_name(rdev));
6429cd49
AB
741err_out:
742 return rc;
743}
744
745/**
746 * rio_mport_chk_dev_access - Validate access to the specified device.
747 * @mport: Master port to send transactions
748 * @destid: Device destination ID in network
749 * @hopcount: Number of hops into the network
750 */
e274e0ed 751int
6429cd49
AB
752rio_mport_chk_dev_access(struct rio_mport *mport, u16 destid, u8 hopcount)
753{
754 int i = 0;
755 u32 tmp;
756
757 while (rio_mport_read_config_32(mport, destid, hopcount,
758 RIO_DEV_ID_CAR, &tmp)) {
759 i++;
760 if (i == RIO_MAX_CHK_RETRY)
761 return -EIO;
762 mdelay(1);
763 }
764
765 return 0;
766}
a11650e1 767EXPORT_SYMBOL_GPL(rio_mport_chk_dev_access);
6429cd49
AB
768
769/**
770 * rio_chk_dev_access - Validate access to the specified device.
771 * @rdev: Pointer to RIO device control structure
772 */
773static int rio_chk_dev_access(struct rio_dev *rdev)
774{
a93192a5
AB
775 return rio_mport_chk_dev_access(rdev->net->hport,
776 rdev->destid, rdev->hopcount);
6429cd49
AB
777}
778
dd5648c9
AB
779/**
780 * rio_get_input_status - Sends a Link-Request/Input-Status control symbol and
781 * returns link-response (if requested).
782 * @rdev: RIO devive to issue Input-status command
783 * @pnum: Device port number to issue the command
784 * @lnkresp: Response from a link partner
785 */
786static int
787rio_get_input_status(struct rio_dev *rdev, int pnum, u32 *lnkresp)
788{
dd5648c9
AB
789 u32 regval;
790 int checkcount;
791
792 if (lnkresp) {
793 /* Read from link maintenance response register
794 * to clear valid bit */
a93192a5 795 rio_read_config_32(rdev,
dd5648c9
AB
796 rdev->phys_efptr + RIO_PORT_N_MNT_RSP_CSR(pnum),
797 &regval);
798 udelay(50);
799 }
800
801 /* Issue Input-status command */
a93192a5 802 rio_write_config_32(rdev,
dd5648c9
AB
803 rdev->phys_efptr + RIO_PORT_N_MNT_REQ_CSR(pnum),
804 RIO_MNT_REQ_CMD_IS);
805
806 /* Exit if the response is not expected */
807 if (lnkresp == NULL)
808 return 0;
809
810 checkcount = 3;
811 while (checkcount--) {
812 udelay(50);
a93192a5 813 rio_read_config_32(rdev,
dd5648c9
AB
814 rdev->phys_efptr + RIO_PORT_N_MNT_RSP_CSR(pnum),
815 &regval);
816 if (regval & RIO_PORT_N_MNT_RSP_RVAL) {
817 *lnkresp = regval;
818 return 0;
819 }
820 }
821
822 return -EIO;
823}
824
825/**
826 * rio_clr_err_stopped - Clears port Error-stopped states.
827 * @rdev: Pointer to RIO device control structure
828 * @pnum: Switch port number to clear errors
829 * @err_status: port error status (if 0 reads register from device)
830 */
831static int rio_clr_err_stopped(struct rio_dev *rdev, u32 pnum, u32 err_status)
832{
dd5648c9
AB
833 struct rio_dev *nextdev = rdev->rswitch->nextdev[pnum];
834 u32 regval;
835 u32 far_ackid, far_linkstat, near_ackid;
836
837 if (err_status == 0)
a93192a5 838 rio_read_config_32(rdev,
dd5648c9
AB
839 rdev->phys_efptr + RIO_PORT_N_ERR_STS_CSR(pnum),
840 &err_status);
841
842 if (err_status & RIO_PORT_N_ERR_STS_PW_OUT_ES) {
843 pr_debug("RIO_EM: servicing Output Error-Stopped state\n");
844 /*
845 * Send a Link-Request/Input-Status control symbol
846 */
847 if (rio_get_input_status(rdev, pnum, &regval)) {
848 pr_debug("RIO_EM: Input-status response timeout\n");
849 goto rd_err;
850 }
851
852 pr_debug("RIO_EM: SP%d Input-status response=0x%08x\n",
853 pnum, regval);
854 far_ackid = (regval & RIO_PORT_N_MNT_RSP_ASTAT) >> 5;
855 far_linkstat = regval & RIO_PORT_N_MNT_RSP_LSTAT;
a93192a5 856 rio_read_config_32(rdev,
dd5648c9
AB
857 rdev->phys_efptr + RIO_PORT_N_ACK_STS_CSR(pnum),
858 &regval);
859 pr_debug("RIO_EM: SP%d_ACK_STS_CSR=0x%08x\n", pnum, regval);
860 near_ackid = (regval & RIO_PORT_N_ACK_INBOUND) >> 24;
861 pr_debug("RIO_EM: SP%d far_ackID=0x%02x far_linkstat=0x%02x" \
862 " near_ackID=0x%02x\n",
863 pnum, far_ackid, far_linkstat, near_ackid);
864
865 /*
866 * If required, synchronize ackIDs of near and
867 * far sides.
868 */
869 if ((far_ackid != ((regval & RIO_PORT_N_ACK_OUTSTAND) >> 8)) ||
870 (far_ackid != (regval & RIO_PORT_N_ACK_OUTBOUND))) {
871 /* Align near outstanding/outbound ackIDs with
872 * far inbound.
873 */
a93192a5
AB
874 rio_write_config_32(rdev,
875 rdev->phys_efptr + RIO_PORT_N_ACK_STS_CSR(pnum),
dd5648c9
AB
876 (near_ackid << 24) |
877 (far_ackid << 8) | far_ackid);
878 /* Align far outstanding/outbound ackIDs with
879 * near inbound.
880 */
881 far_ackid++;
882 if (nextdev)
883 rio_write_config_32(nextdev,
884 nextdev->phys_efptr +
885 RIO_PORT_N_ACK_STS_CSR(RIO_GET_PORT_NUM(nextdev->swpinfo)),
886 (far_ackid << 24) |
887 (near_ackid << 8) | near_ackid);
888 else
889 pr_debug("RIO_EM: Invalid nextdev pointer (NULL)\n");
890 }
891rd_err:
a93192a5 892 rio_read_config_32(rdev,
dd5648c9
AB
893 rdev->phys_efptr + RIO_PORT_N_ERR_STS_CSR(pnum),
894 &err_status);
895 pr_debug("RIO_EM: SP%d_ERR_STS_CSR=0x%08x\n", pnum, err_status);
896 }
897
898 if ((err_status & RIO_PORT_N_ERR_STS_PW_INP_ES) && nextdev) {
899 pr_debug("RIO_EM: servicing Input Error-Stopped state\n");
900 rio_get_input_status(nextdev,
901 RIO_GET_PORT_NUM(nextdev->swpinfo), NULL);
902 udelay(50);
903
a93192a5 904 rio_read_config_32(rdev,
dd5648c9
AB
905 rdev->phys_efptr + RIO_PORT_N_ERR_STS_CSR(pnum),
906 &err_status);
907 pr_debug("RIO_EM: SP%d_ERR_STS_CSR=0x%08x\n", pnum, err_status);
908 }
909
910 return (err_status & (RIO_PORT_N_ERR_STS_PW_OUT_ES |
911 RIO_PORT_N_ERR_STS_PW_INP_ES)) ? 1 : 0;
912}
913
e5cabeb3
AB
914/**
915 * rio_inb_pwrite_handler - process inbound port-write message
916 * @pw_msg: pointer to inbound port-write message
917 *
918 * Processes an inbound port-write message. Returns 0 if the request
919 * has been satisfied.
920 */
921int rio_inb_pwrite_handler(union rio_pw_msg *pw_msg)
922{
923 struct rio_dev *rdev;
dd5648c9 924 u32 err_status, em_perrdet, em_ltlerrdet;
e5cabeb3
AB
925 int rc, portnum;
926
e6536927 927 rdev = rio_get_comptag((pw_msg->em.comptag & RIO_CTAG_UDEVID), NULL);
e5cabeb3 928 if (rdev == NULL) {
6429cd49
AB
929 /* Device removed or enumeration error */
930 pr_debug("RIO: %s No matching device for CTag 0x%08x\n",
e5cabeb3
AB
931 __func__, pw_msg->em.comptag);
932 return -EIO;
933 }
934
935 pr_debug("RIO: Port-Write message from %s\n", rio_name(rdev));
936
937#ifdef DEBUG_PW
938 {
939 u32 i;
940 for (i = 0; i < RIO_PW_MSG_SIZE/sizeof(u32);) {
dd5648c9 941 pr_debug("0x%02x: %08x %08x %08x %08x\n",
e5cabeb3
AB
942 i*4, pw_msg->raw[i], pw_msg->raw[i + 1],
943 pw_msg->raw[i + 2], pw_msg->raw[i + 3]);
944 i += 4;
945 }
e5cabeb3
AB
946 }
947#endif
948
949 /* Call an external service function (if such is registered
950 * for this device). This may be the service for endpoints that send
951 * device-specific port-write messages. End-point messages expected
952 * to be handled completely by EP specific device driver.
953 * For switches rc==0 signals that no standard processing required.
954 */
955 if (rdev->pwcback != NULL) {
956 rc = rdev->pwcback(rdev, pw_msg, 0);
957 if (rc == 0)
958 return 0;
959 }
960
6429cd49
AB
961 portnum = pw_msg->em.is_port & 0xFF;
962
963 /* Check if device and route to it are functional:
964 * Sometimes devices may send PW message(s) just before being
965 * powered down (or link being lost).
966 */
967 if (rio_chk_dev_access(rdev)) {
968 pr_debug("RIO: device access failed - get link partner\n");
969 /* Scan route to the device and identify failed link.
970 * This will replace device and port reported in PW message.
971 * PW message should not be used after this point.
972 */
973 if (rio_chk_dev_route(rdev, &rdev, &portnum)) {
974 pr_err("RIO: Route trace for %s failed\n",
975 rio_name(rdev));
976 return -EIO;
977 }
978 pw_msg = NULL;
979 }
980
e5cabeb3
AB
981 /* For End-point devices processing stops here */
982 if (!(rdev->pef & RIO_PEF_SWITCH))
983 return 0;
984
985 if (rdev->phys_efptr == 0) {
986 pr_err("RIO_PW: Bad switch initialization for %s\n",
987 rio_name(rdev));
988 return 0;
989 }
990
e5cabeb3
AB
991 /*
992 * Process the port-write notification from switch
993 */
2ec3ba69
AB
994 if (rdev->rswitch->ops && rdev->rswitch->ops->em_handle)
995 rdev->rswitch->ops->em_handle(rdev, portnum);
e5cabeb3 996
a93192a5 997 rio_read_config_32(rdev,
e5cabeb3
AB
998 rdev->phys_efptr + RIO_PORT_N_ERR_STS_CSR(portnum),
999 &err_status);
1000 pr_debug("RIO_PW: SP%d_ERR_STS_CSR=0x%08x\n", portnum, err_status);
1001
dd5648c9 1002 if (err_status & RIO_PORT_N_ERR_STS_PORT_OK) {
e5cabeb3 1003
dd5648c9
AB
1004 if (!(rdev->rswitch->port_ok & (1 << portnum))) {
1005 rdev->rswitch->port_ok |= (1 << portnum);
1006 rio_set_port_lockout(rdev, portnum, 0);
1007 /* Schedule Insertion Service */
1008 pr_debug("RIO_PW: Device Insertion on [%s]-P%d\n",
1009 rio_name(rdev), portnum);
1010 }
e5cabeb3 1011
dd5648c9
AB
1012 /* Clear error-stopped states (if reported).
1013 * Depending on the link partner state, two attempts
1014 * may be needed for successful recovery.
1015 */
1016 if (err_status & (RIO_PORT_N_ERR_STS_PW_OUT_ES |
1017 RIO_PORT_N_ERR_STS_PW_INP_ES)) {
1018 if (rio_clr_err_stopped(rdev, portnum, err_status))
1019 rio_clr_err_stopped(rdev, portnum, 0);
1020 }
1021 } else { /* if (err_status & RIO_PORT_N_ERR_STS_PORT_UNINIT) */
e5cabeb3 1022
dd5648c9 1023 if (rdev->rswitch->port_ok & (1 << portnum)) {
e5cabeb3
AB
1024 rdev->rswitch->port_ok &= ~(1 << portnum);
1025 rio_set_port_lockout(rdev, portnum, 1);
1026
a93192a5 1027 rio_write_config_32(rdev,
e5cabeb3
AB
1028 rdev->phys_efptr +
1029 RIO_PORT_N_ACK_STS_CSR(portnum),
1030 RIO_PORT_N_ACK_CLEAR);
1031
1032 /* Schedule Extraction Service */
1033 pr_debug("RIO_PW: Device Extraction on [%s]-P%d\n",
1034 rio_name(rdev), portnum);
1035 }
dd5648c9 1036 }
e5cabeb3 1037
a93192a5 1038 rio_read_config_32(rdev,
dd5648c9
AB
1039 rdev->em_efptr + RIO_EM_PN_ERR_DETECT(portnum), &em_perrdet);
1040 if (em_perrdet) {
1041 pr_debug("RIO_PW: RIO_EM_P%d_ERR_DETECT=0x%08x\n",
1042 portnum, em_perrdet);
1043 /* Clear EM Port N Error Detect CSR */
a93192a5 1044 rio_write_config_32(rdev,
dd5648c9
AB
1045 rdev->em_efptr + RIO_EM_PN_ERR_DETECT(portnum), 0);
1046 }
1047
a93192a5 1048 rio_read_config_32(rdev,
dd5648c9
AB
1049 rdev->em_efptr + RIO_EM_LTL_ERR_DETECT, &em_ltlerrdet);
1050 if (em_ltlerrdet) {
1051 pr_debug("RIO_PW: RIO_EM_LTL_ERR_DETECT=0x%08x\n",
1052 em_ltlerrdet);
1053 /* Clear EM L/T Layer Error Detect CSR */
a93192a5 1054 rio_write_config_32(rdev,
dd5648c9 1055 rdev->em_efptr + RIO_EM_LTL_ERR_DETECT, 0);
e5cabeb3
AB
1056 }
1057
388c45cc 1058 /* Clear remaining error bits and Port-Write Pending bit */
a93192a5 1059 rio_write_config_32(rdev,
dd5648c9 1060 rdev->phys_efptr + RIO_PORT_N_ERR_STS_CSR(portnum),
388c45cc 1061 err_status);
e5cabeb3
AB
1062
1063 return 0;
1064}
1065EXPORT_SYMBOL_GPL(rio_inb_pwrite_handler);
1066
1067/**
1068 * rio_mport_get_efb - get pointer to next extended features block
1069 * @port: Master port to issue transaction
1070 * @local: Indicate a local master port or remote device access
1071 * @destid: Destination ID of the device
1072 * @hopcount: Number of switch hops to the device
1073 * @from: Offset of current Extended Feature block header (if 0 starts
1074 * from ExtFeaturePtr)
1075 */
1076u32
1077rio_mport_get_efb(struct rio_mport *port, int local, u16 destid,
1078 u8 hopcount, u32 from)
1079{
1080 u32 reg_val;
1081
1082 if (from == 0) {
1083 if (local)
1084 rio_local_read_config_32(port, RIO_ASM_INFO_CAR,
1085 &reg_val);
1086 else
1087 rio_mport_read_config_32(port, destid, hopcount,
1088 RIO_ASM_INFO_CAR, &reg_val);
1089 return reg_val & RIO_EXT_FTR_PTR_MASK;
1090 } else {
1091 if (local)
1092 rio_local_read_config_32(port, from, &reg_val);
1093 else
1094 rio_mport_read_config_32(port, destid, hopcount,
1095 from, &reg_val);
1096 return RIO_GET_BLOCK_ID(reg_val);
1097 }
1098}
a11650e1 1099EXPORT_SYMBOL_GPL(rio_mport_get_efb);
e5cabeb3 1100
394b701c
MP
1101/**
1102 * rio_mport_get_feature - query for devices' extended features
1103 * @port: Master port to issue transaction
1104 * @local: Indicate a local master port or remote device access
1105 * @destid: Destination ID of the device
1106 * @hopcount: Number of switch hops to the device
1107 * @ftr: Extended feature code
1108 *
1109 * Tell if a device supports a given RapidIO capability.
1110 * Returns the offset of the requested extended feature
1111 * block within the device's RIO configuration space or
1112 * 0 in case the device does not support it. Possible
1113 * values for @ftr:
1114 *
1115 * %RIO_EFB_PAR_EP_ID LP/LVDS EP Devices
1116 *
1117 * %RIO_EFB_PAR_EP_REC_ID LP/LVDS EP Recovery Devices
1118 *
1119 * %RIO_EFB_PAR_EP_FREE_ID LP/LVDS EP Free Devices
1120 *
1121 * %RIO_EFB_SER_EP_ID LP/Serial EP Devices
1122 *
1123 * %RIO_EFB_SER_EP_REC_ID LP/Serial EP Recovery Devices
1124 *
1125 * %RIO_EFB_SER_EP_FREE_ID LP/Serial EP Free Devices
1126 */
1127u32
1128rio_mport_get_feature(struct rio_mport * port, int local, u16 destid,
1129 u8 hopcount, int ftr)
1130{
1131 u32 asm_info, ext_ftr_ptr, ftr_header;
1132
1133 if (local)
1134 rio_local_read_config_32(port, RIO_ASM_INFO_CAR, &asm_info);
1135 else
1136 rio_mport_read_config_32(port, destid, hopcount,
1137 RIO_ASM_INFO_CAR, &asm_info);
1138
1139 ext_ftr_ptr = asm_info & RIO_EXT_FTR_PTR_MASK;
1140
1141 while (ext_ftr_ptr) {
1142 if (local)
1143 rio_local_read_config_32(port, ext_ftr_ptr,
1144 &ftr_header);
1145 else
1146 rio_mport_read_config_32(port, destid, hopcount,
1147 ext_ftr_ptr, &ftr_header);
1148 if (RIO_GET_BLOCK_ID(ftr_header) == ftr)
1149 return ext_ftr_ptr;
1150 if (!(ext_ftr_ptr = RIO_GET_BLOCK_PTR(ftr_header)))
1151 break;
1152 }
1153
1154 return 0;
1155}
a11650e1 1156EXPORT_SYMBOL_GPL(rio_mport_get_feature);
394b701c
MP
1157
1158/**
1159 * rio_get_asm - Begin or continue searching for a RIO device by vid/did/asm_vid/asm_did
1160 * @vid: RIO vid to match or %RIO_ANY_ID to match all vids
1161 * @did: RIO did to match or %RIO_ANY_ID to match all dids
1162 * @asm_vid: RIO asm_vid to match or %RIO_ANY_ID to match all asm_vids
1163 * @asm_did: RIO asm_did to match or %RIO_ANY_ID to match all asm_dids
1164 * @from: Previous RIO device found in search, or %NULL for new search
1165 *
1166 * Iterates through the list of known RIO devices. If a RIO device is
1167 * found with a matching @vid, @did, @asm_vid, @asm_did, the reference
1168 * count to the device is incrememted and a pointer to its device
1169 * structure is returned. Otherwise, %NULL is returned. A new search
1170 * is initiated by passing %NULL to the @from argument. Otherwise, if
1171 * @from is not %NULL, searches continue from next device on the global
1172 * list. The reference count for @from is always decremented if it is
1173 * not %NULL.
1174 */
1175struct rio_dev *rio_get_asm(u16 vid, u16 did,
1176 u16 asm_vid, u16 asm_did, struct rio_dev *from)
1177{
1178 struct list_head *n;
1179 struct rio_dev *rdev;
1180
1181 WARN_ON(in_interrupt());
1182 spin_lock(&rio_global_list_lock);
1183 n = from ? from->global_list.next : rio_devices.next;
1184
1185 while (n && (n != &rio_devices)) {
1186 rdev = rio_dev_g(n);
1187 if ((vid == RIO_ANY_ID || rdev->vid == vid) &&
1188 (did == RIO_ANY_ID || rdev->did == did) &&
1189 (asm_vid == RIO_ANY_ID || rdev->asm_vid == asm_vid) &&
1190 (asm_did == RIO_ANY_ID || rdev->asm_did == asm_did))
1191 goto exit;
1192 n = n->next;
1193 }
1194 rdev = NULL;
1195 exit:
1196 rio_dev_put(from);
1197 rdev = rio_dev_get(rdev);
1198 spin_unlock(&rio_global_list_lock);
1199 return rdev;
1200}
1201
1202/**
1203 * rio_get_device - Begin or continue searching for a RIO device by vid/did
1204 * @vid: RIO vid to match or %RIO_ANY_ID to match all vids
1205 * @did: RIO did to match or %RIO_ANY_ID to match all dids
1206 * @from: Previous RIO device found in search, or %NULL for new search
1207 *
1208 * Iterates through the list of known RIO devices. If a RIO device is
1209 * found with a matching @vid and @did, the reference count to the
1210 * device is incrememted and a pointer to its device structure is returned.
1211 * Otherwise, %NULL is returned. A new search is initiated by passing %NULL
1212 * to the @from argument. Otherwise, if @from is not %NULL, searches
1213 * continue from next device on the global list. The reference count for
1214 * @from is always decremented if it is not %NULL.
1215 */
1216struct rio_dev *rio_get_device(u16 vid, u16 did, struct rio_dev *from)
1217{
1218 return rio_get_asm(vid, did, RIO_ANY_ID, RIO_ANY_ID, from);
1219}
1220
07590ff0
AB
1221/**
1222 * rio_std_route_add_entry - Add switch route table entry using standard
1223 * registers defined in RIO specification rev.1.3
1224 * @mport: Master port to issue transaction
1225 * @destid: Destination ID of the device
1226 * @hopcount: Number of switch hops to the device
1227 * @table: routing table ID (global or port-specific)
1228 * @route_destid: destID entry in the RT
1229 * @route_port: destination port for specified destID
1230 */
2ec3ba69
AB
1231static int
1232rio_std_route_add_entry(struct rio_mport *mport, u16 destid, u8 hopcount,
1233 u16 table, u16 route_destid, u8 route_port)
07590ff0
AB
1234{
1235 if (table == RIO_GLOBAL_TABLE) {
1236 rio_mport_write_config_32(mport, destid, hopcount,
1237 RIO_STD_RTE_CONF_DESTID_SEL_CSR,
1238 (u32)route_destid);
1239 rio_mport_write_config_32(mport, destid, hopcount,
1240 RIO_STD_RTE_CONF_PORT_SEL_CSR,
1241 (u32)route_port);
1242 }
e5cabeb3 1243
07590ff0
AB
1244 udelay(10);
1245 return 0;
1246}
1247
1248/**
1249 * rio_std_route_get_entry - Read switch route table entry (port number)
638c5945 1250 * associated with specified destID using standard registers defined in RIO
07590ff0
AB
1251 * specification rev.1.3
1252 * @mport: Master port to issue transaction
1253 * @destid: Destination ID of the device
1254 * @hopcount: Number of switch hops to the device
1255 * @table: routing table ID (global or port-specific)
1256 * @route_destid: destID entry in the RT
1257 * @route_port: returned destination port for specified destID
1258 */
2ec3ba69
AB
1259static int
1260rio_std_route_get_entry(struct rio_mport *mport, u16 destid, u8 hopcount,
1261 u16 table, u16 route_destid, u8 *route_port)
07590ff0
AB
1262{
1263 u32 result;
1264
1265 if (table == RIO_GLOBAL_TABLE) {
1266 rio_mport_write_config_32(mport, destid, hopcount,
1267 RIO_STD_RTE_CONF_DESTID_SEL_CSR, route_destid);
1268 rio_mport_read_config_32(mport, destid, hopcount,
1269 RIO_STD_RTE_CONF_PORT_SEL_CSR, &result);
1270
1271 *route_port = (u8)result;
1272 }
1273
1274 return 0;
1275}
1276
1277/**
1278 * rio_std_route_clr_table - Clear swotch route table using standard registers
1279 * defined in RIO specification rev.1.3.
1280 * @mport: Master port to issue transaction
07590ff0
AB
1281 * @destid: Destination ID of the device
1282 * @hopcount: Number of switch hops to the device
1283 * @table: routing table ID (global or port-specific)
1284 */
2ec3ba69
AB
1285static int
1286rio_std_route_clr_table(struct rio_mport *mport, u16 destid, u8 hopcount,
1287 u16 table)
07590ff0
AB
1288{
1289 u32 max_destid = 0xff;
1290 u32 i, pef, id_inc = 1, ext_cfg = 0;
1291 u32 port_sel = RIO_INVALID_ROUTE;
1292
1293 if (table == RIO_GLOBAL_TABLE) {
1294 rio_mport_read_config_32(mport, destid, hopcount,
1295 RIO_PEF_CAR, &pef);
1296
1297 if (mport->sys_size) {
1298 rio_mport_read_config_32(mport, destid, hopcount,
1299 RIO_SWITCH_RT_LIMIT,
1300 &max_destid);
1301 max_destid &= RIO_RT_MAX_DESTID;
1302 }
1303
1304 if (pef & RIO_PEF_EXT_RT) {
1305 ext_cfg = 0x80000000;
1306 id_inc = 4;
1307 port_sel = (RIO_INVALID_ROUTE << 24) |
1308 (RIO_INVALID_ROUTE << 16) |
1309 (RIO_INVALID_ROUTE << 8) |
1310 RIO_INVALID_ROUTE;
1311 }
1312
1313 for (i = 0; i <= max_destid;) {
1314 rio_mport_write_config_32(mport, destid, hopcount,
1315 RIO_STD_RTE_CONF_DESTID_SEL_CSR,
1316 ext_cfg | i);
1317 rio_mport_write_config_32(mport, destid, hopcount,
1318 RIO_STD_RTE_CONF_PORT_SEL_CSR,
1319 port_sel);
1320 i += id_inc;
1321 }
1322 }
1323
1324 udelay(10);
1325 return 0;
1326}
1327
2ec3ba69
AB
1328/**
1329 * rio_lock_device - Acquires host device lock for specified device
1330 * @port: Master port to send transaction
1331 * @destid: Destination ID for device/switch
1332 * @hopcount: Hopcount to reach switch
1333 * @wait_ms: Max wait time in msec (0 = no timeout)
1334 *
1335 * Attepts to acquire host device lock for specified device
1336 * Returns 0 if device lock acquired or EINVAL if timeout expires.
1337 */
1338int rio_lock_device(struct rio_mport *port, u16 destid,
1339 u8 hopcount, int wait_ms)
1340{
1341 u32 result;
1342 int tcnt = 0;
1343
1344 /* Attempt to acquire device lock */
1345 rio_mport_write_config_32(port, destid, hopcount,
1346 RIO_HOST_DID_LOCK_CSR, port->host_deviceid);
1347 rio_mport_read_config_32(port, destid, hopcount,
1348 RIO_HOST_DID_LOCK_CSR, &result);
1349
1350 while (result != port->host_deviceid) {
1351 if (wait_ms != 0 && tcnt == wait_ms) {
1352 pr_debug("RIO: timeout when locking device %x:%x\n",
1353 destid, hopcount);
1354 return -EINVAL;
1355 }
1356
1357 /* Delay a bit */
1358 mdelay(1);
1359 tcnt++;
1360 /* Try to acquire device lock again */
1361 rio_mport_write_config_32(port, destid,
1362 hopcount,
1363 RIO_HOST_DID_LOCK_CSR,
1364 port->host_deviceid);
1365 rio_mport_read_config_32(port, destid,
1366 hopcount,
1367 RIO_HOST_DID_LOCK_CSR, &result);
1368 }
1369
1370 return 0;
1371}
1372EXPORT_SYMBOL_GPL(rio_lock_device);
1373
1374/**
1375 * rio_unlock_device - Releases host device lock for specified device
1376 * @port: Master port to send transaction
1377 * @destid: Destination ID for device/switch
1378 * @hopcount: Hopcount to reach switch
1379 *
1380 * Returns 0 if device lock released or EINVAL if fails.
1381 */
1382int rio_unlock_device(struct rio_mport *port, u16 destid, u8 hopcount)
1383{
1384 u32 result;
1385
1386 /* Release device lock */
1387 rio_mport_write_config_32(port, destid,
1388 hopcount,
1389 RIO_HOST_DID_LOCK_CSR,
1390 port->host_deviceid);
1391 rio_mport_read_config_32(port, destid, hopcount,
1392 RIO_HOST_DID_LOCK_CSR, &result);
1393 if ((result & 0xffff) != 0xffff) {
1394 pr_debug("RIO: badness when releasing device lock %x:%x\n",
1395 destid, hopcount);
1396 return -EINVAL;
1397 }
1398
1399 return 0;
1400}
1401EXPORT_SYMBOL_GPL(rio_unlock_device);
1402
1403/**
1404 * rio_route_add_entry- Add a route entry to a switch routing table
1405 * @rdev: RIO device
1406 * @table: Routing table ID
1407 * @route_destid: Destination ID to be routed
1408 * @route_port: Port number to be routed
1409 * @lock: apply a hardware lock on switch device flag (1=lock, 0=no_lock)
1410 *
1411 * If available calls the switch specific add_entry() method to add a route
1412 * entry into a switch routing table. Otherwise uses standard RT update method
1413 * as defined by RapidIO specification. A specific routing table can be selected
1414 * using the @table argument if a switch has per port routing tables or
1415 * the standard (or global) table may be used by passing
1416 * %RIO_GLOBAL_TABLE in @table.
1417 *
1418 * Returns %0 on success or %-EINVAL on failure.
1419 */
1420int rio_route_add_entry(struct rio_dev *rdev,
1421 u16 table, u16 route_destid, u8 route_port, int lock)
1422{
1423 int rc = -EINVAL;
1424 struct rio_switch_ops *ops = rdev->rswitch->ops;
1425
1426 if (lock) {
1427 rc = rio_lock_device(rdev->net->hport, rdev->destid,
1428 rdev->hopcount, 1000);
1429 if (rc)
1430 return rc;
1431 }
1432
1433 spin_lock(&rdev->rswitch->lock);
1434
1435 if (ops == NULL || ops->add_entry == NULL) {
1436 rc = rio_std_route_add_entry(rdev->net->hport, rdev->destid,
1437 rdev->hopcount, table,
1438 route_destid, route_port);
1439 } else if (try_module_get(ops->owner)) {
1440 rc = ops->add_entry(rdev->net->hport, rdev->destid,
1441 rdev->hopcount, table, route_destid,
1442 route_port);
1443 module_put(ops->owner);
1444 }
1445
1446 spin_unlock(&rdev->rswitch->lock);
1447
1448 if (lock)
1449 rio_unlock_device(rdev->net->hport, rdev->destid,
1450 rdev->hopcount);
1451
1452 return rc;
1453}
1454EXPORT_SYMBOL_GPL(rio_route_add_entry);
1455
1456/**
1457 * rio_route_get_entry- Read an entry from a switch routing table
1458 * @rdev: RIO device
1459 * @table: Routing table ID
1460 * @route_destid: Destination ID to be routed
1461 * @route_port: Pointer to read port number into
1462 * @lock: apply a hardware lock on switch device flag (1=lock, 0=no_lock)
1463 *
1464 * If available calls the switch specific get_entry() method to fetch a route
1465 * entry from a switch routing table. Otherwise uses standard RT read method
1466 * as defined by RapidIO specification. A specific routing table can be selected
1467 * using the @table argument if a switch has per port routing tables or
1468 * the standard (or global) table may be used by passing
1469 * %RIO_GLOBAL_TABLE in @table.
1470 *
1471 * Returns %0 on success or %-EINVAL on failure.
1472 */
1473int rio_route_get_entry(struct rio_dev *rdev, u16 table,
1474 u16 route_destid, u8 *route_port, int lock)
1475{
1476 int rc = -EINVAL;
1477 struct rio_switch_ops *ops = rdev->rswitch->ops;
1478
1479 if (lock) {
1480 rc = rio_lock_device(rdev->net->hport, rdev->destid,
1481 rdev->hopcount, 1000);
1482 if (rc)
1483 return rc;
1484 }
1485
1486 spin_lock(&rdev->rswitch->lock);
1487
1488 if (ops == NULL || ops->get_entry == NULL) {
1489 rc = rio_std_route_get_entry(rdev->net->hport, rdev->destid,
1490 rdev->hopcount, table,
1491 route_destid, route_port);
1492 } else if (try_module_get(ops->owner)) {
1493 rc = ops->get_entry(rdev->net->hport, rdev->destid,
1494 rdev->hopcount, table, route_destid,
1495 route_port);
1496 module_put(ops->owner);
1497 }
1498
1499 spin_unlock(&rdev->rswitch->lock);
1500
1501 if (lock)
1502 rio_unlock_device(rdev->net->hport, rdev->destid,
1503 rdev->hopcount);
1504 return rc;
1505}
1506EXPORT_SYMBOL_GPL(rio_route_get_entry);
1507
1508/**
1509 * rio_route_clr_table - Clear a switch routing table
1510 * @rdev: RIO device
1511 * @table: Routing table ID
1512 * @lock: apply a hardware lock on switch device flag (1=lock, 0=no_lock)
1513 *
1514 * If available calls the switch specific clr_table() method to clear a switch
1515 * routing table. Otherwise uses standard RT write method as defined by RapidIO
1516 * specification. A specific routing table can be selected using the @table
1517 * argument if a switch has per port routing tables or the standard (or global)
1518 * table may be used by passing %RIO_GLOBAL_TABLE in @table.
1519 *
1520 * Returns %0 on success or %-EINVAL on failure.
1521 */
1522int rio_route_clr_table(struct rio_dev *rdev, u16 table, int lock)
1523{
1524 int rc = -EINVAL;
1525 struct rio_switch_ops *ops = rdev->rswitch->ops;
1526
1527 if (lock) {
1528 rc = rio_lock_device(rdev->net->hport, rdev->destid,
1529 rdev->hopcount, 1000);
1530 if (rc)
1531 return rc;
1532 }
1533
1534 spin_lock(&rdev->rswitch->lock);
1535
1536 if (ops == NULL || ops->clr_table == NULL) {
1537 rc = rio_std_route_clr_table(rdev->net->hport, rdev->destid,
1538 rdev->hopcount, table);
1539 } else if (try_module_get(ops->owner)) {
1540 rc = ops->clr_table(rdev->net->hport, rdev->destid,
1541 rdev->hopcount, table);
1542
1543 module_put(ops->owner);
1544 }
1545
1546 spin_unlock(&rdev->rswitch->lock);
1547
1548 if (lock)
1549 rio_unlock_device(rdev->net->hport, rdev->destid,
1550 rdev->hopcount);
1551
1552 return rc;
1553}
1554EXPORT_SYMBOL_GPL(rio_route_clr_table);
1555
e42d98eb
AB
1556#ifdef CONFIG_RAPIDIO_DMA_ENGINE
1557
1558static bool rio_chan_filter(struct dma_chan *chan, void *arg)
1559{
4aff1ce7 1560 struct rio_mport *mport = arg;
e42d98eb
AB
1561
1562 /* Check that DMA device belongs to the right MPORT */
4aff1ce7 1563 return mport == container_of(chan->device, struct rio_mport, dma);
e42d98eb
AB
1564}
1565
1566/**
4aff1ce7
AB
1567 * rio_request_mport_dma - request RapidIO capable DMA channel associated
1568 * with specified local RapidIO mport device.
1569 * @mport: RIO mport to perform DMA data transfers
e42d98eb
AB
1570 *
1571 * Returns pointer to allocated DMA channel or NULL if failed.
1572 */
4aff1ce7 1573struct dma_chan *rio_request_mport_dma(struct rio_mport *mport)
e42d98eb
AB
1574{
1575 dma_cap_mask_t mask;
e42d98eb
AB
1576
1577 dma_cap_zero(mask);
1578 dma_cap_set(DMA_SLAVE, mask);
4aff1ce7
AB
1579 return dma_request_channel(mask, rio_chan_filter, mport);
1580}
1581EXPORT_SYMBOL_GPL(rio_request_mport_dma);
e42d98eb 1582
4aff1ce7
AB
1583/**
1584 * rio_request_dma - request RapidIO capable DMA channel that supports
1585 * specified target RapidIO device.
1586 * @rdev: RIO device associated with DMA transfer
1587 *
1588 * Returns pointer to allocated DMA channel or NULL if failed.
1589 */
1590struct dma_chan *rio_request_dma(struct rio_dev *rdev)
1591{
1592 return rio_request_mport_dma(rdev->net->hport);
e42d98eb
AB
1593}
1594EXPORT_SYMBOL_GPL(rio_request_dma);
1595
1596/**
1597 * rio_release_dma - release specified DMA channel
1598 * @dchan: DMA channel to release
1599 */
1600void rio_release_dma(struct dma_chan *dchan)
1601{
1602 dma_release_channel(dchan);
1603}
1604EXPORT_SYMBOL_GPL(rio_release_dma);
1605
1606/**
4aff1ce7 1607 * rio_dma_prep_xfer - RapidIO specific wrapper
e42d98eb 1608 * for device_prep_slave_sg callback defined by DMAENGINE.
e42d98eb 1609 * @dchan: DMA channel to configure
4aff1ce7 1610 * @destid: target RapidIO device destination ID
e42d98eb
AB
1611 * @data: RIO specific data descriptor
1612 * @direction: DMA data transfer direction (TO or FROM the device)
1613 * @flags: dmaengine defined flags
1614 *
1615 * Initializes RapidIO capable DMA channel for the specified data transfer.
1616 * Uses DMA channel private extension to pass information related to remote
1617 * target RIO device.
1618 * Returns pointer to DMA transaction descriptor or NULL if failed.
1619 */
4aff1ce7
AB
1620struct dma_async_tx_descriptor *rio_dma_prep_xfer(struct dma_chan *dchan,
1621 u16 destid, struct rio_dma_data *data,
e42d98eb
AB
1622 enum dma_transfer_direction direction, unsigned long flags)
1623{
e42d98eb
AB
1624 struct rio_dma_ext rio_ext;
1625
1626 if (dchan->device->device_prep_slave_sg == NULL) {
1627 pr_err("%s: prep_rio_sg == NULL\n", __func__);
1628 return NULL;
1629 }
1630
4aff1ce7 1631 rio_ext.destid = destid;
e42d98eb
AB
1632 rio_ext.rio_addr_u = data->rio_addr_u;
1633 rio_ext.rio_addr = data->rio_addr;
1634 rio_ext.wr_type = data->wr_type;
1635
4aff1ce7
AB
1636 return dmaengine_prep_rio_sg(dchan, data->sg, data->sg_len,
1637 direction, flags, &rio_ext);
1638}
1639EXPORT_SYMBOL_GPL(rio_dma_prep_xfer);
e42d98eb 1640
4aff1ce7
AB
1641/**
1642 * rio_dma_prep_slave_sg - RapidIO specific wrapper
1643 * for device_prep_slave_sg callback defined by DMAENGINE.
1644 * @rdev: RIO device control structure
1645 * @dchan: DMA channel to configure
1646 * @data: RIO specific data descriptor
1647 * @direction: DMA data transfer direction (TO or FROM the device)
1648 * @flags: dmaengine defined flags
1649 *
1650 * Initializes RapidIO capable DMA channel for the specified data transfer.
1651 * Uses DMA channel private extension to pass information related to remote
1652 * target RIO device.
1653 * Returns pointer to DMA transaction descriptor or NULL if failed.
1654 */
1655struct dma_async_tx_descriptor *rio_dma_prep_slave_sg(struct rio_dev *rdev,
1656 struct dma_chan *dchan, struct rio_dma_data *data,
1657 enum dma_transfer_direction direction, unsigned long flags)
1658{
1659 return rio_dma_prep_xfer(dchan, rdev->destid, data, direction, flags);
e42d98eb
AB
1660}
1661EXPORT_SYMBOL_GPL(rio_dma_prep_slave_sg);
1662
1663#endif /* CONFIG_RAPIDIO_DMA_ENGINE */
1664
bc8fcfea
AB
1665/**
1666 * rio_find_mport - find RIO mport by its ID
1667 * @mport_id: number (ID) of mport device
1668 *
1669 * Given a RIO mport number, the desired mport is located
1670 * in the global list of mports. If the mport is found, a pointer to its
1671 * data structure is returned. If no mport is found, %NULL is returned.
1672 */
1673struct rio_mport *rio_find_mport(int mport_id)
1674{
1675 struct rio_mport *port;
1676
1677 mutex_lock(&rio_mport_list_lock);
1678 list_for_each_entry(port, &rio_mports, node) {
1679 if (port->id == mport_id)
1680 goto found;
1681 }
1682 port = NULL;
1683found:
1684 mutex_unlock(&rio_mport_list_lock);
1685
1686 return port;
1687}
1688
a11650e1
AB
1689/**
1690 * rio_register_scan - enumeration/discovery method registration interface
1691 * @mport_id: mport device ID for which fabric scan routine has to be set
1692 * (RIO_MPORT_ANY = set for all available mports)
9edbc30b
AB
1693 * @scan_ops: enumeration/discovery operations structure
1694 *
1695 * Registers enumeration/discovery operations with RapidIO subsystem and
1696 * attaches it to the specified mport device (or all available mports
1697 * if RIO_MPORT_ANY is specified).
a11650e1 1698 *
a11650e1 1699 * Returns error if the mport already has an enumerator attached to it.
9edbc30b 1700 * In case of RIO_MPORT_ANY skips mports with valid scan routines (no error).
a11650e1
AB
1701 */
1702int rio_register_scan(int mport_id, struct rio_scan *scan_ops)
1703{
1704 struct rio_mport *port;
9edbc30b
AB
1705 struct rio_scan_node *scan;
1706 int rc = 0;
a11650e1 1707
9edbc30b 1708 pr_debug("RIO: %s for mport_id=%d\n", __func__, mport_id);
a11650e1 1709
9edbc30b
AB
1710 if ((mport_id != RIO_MPORT_ANY && mport_id >= RIO_MAX_MPORTS) ||
1711 !scan_ops)
1712 return -EINVAL;
a11650e1 1713
9edbc30b
AB
1714 mutex_lock(&rio_mport_list_lock);
1715
1716 /*
1717 * Check if there is another enumerator already registered for
1718 * the same mport ID (including RIO_MPORT_ANY). Multiple enumerators
1719 * for the same mport ID are not supported.
1720 */
1721 list_for_each_entry(scan, &rio_scans, node) {
1722 if (scan->mport_id == mport_id) {
1723 rc = -EBUSY;
1724 goto err_out;
a11650e1
AB
1725 }
1726 }
9edbc30b
AB
1727
1728 /*
1729 * Allocate and initialize new scan registration node.
1730 */
1731 scan = kzalloc(sizeof(*scan), GFP_KERNEL);
1732 if (!scan) {
1733 rc = -ENOMEM;
1734 goto err_out;
1735 }
1736
1737 scan->mport_id = mport_id;
1738 scan->ops = scan_ops;
1739
1740 /*
1741 * Traverse the list of registered mports to attach this new scan.
1742 *
1743 * The new scan with matching mport ID overrides any previously attached
1744 * scan assuming that old scan (if any) is the default one (based on the
1745 * enumerator registration check above).
1746 * If the new scan is the global one, it will be attached only to mports
1747 * that do not have their own individual operations already attached.
1748 */
1749 list_for_each_entry(port, &rio_mports, node) {
1750 if (port->id == mport_id) {
1751 port->nscan = scan_ops;
1752 break;
1753 } else if (mport_id == RIO_MPORT_ANY && !port->nscan)
1754 port->nscan = scan_ops;
1755 }
1756
1757 list_add_tail(&scan->node, &rio_scans);
1758
1759err_out:
a11650e1
AB
1760 mutex_unlock(&rio_mport_list_lock);
1761
1762 return rc;
1763}
1764EXPORT_SYMBOL_GPL(rio_register_scan);
1765
1766/**
1767 * rio_unregister_scan - removes enumeration/discovery method from mport
1768 * @mport_id: mport device ID for which fabric scan routine has to be
9edbc30b
AB
1769 * unregistered (RIO_MPORT_ANY = apply to all mports that use
1770 * the specified scan_ops)
1771 * @scan_ops: enumeration/discovery operations structure
a11650e1
AB
1772 *
1773 * Removes enumeration or discovery method assigned to the specified mport
9edbc30b
AB
1774 * device. If RIO_MPORT_ANY is specified, removes the specified operations from
1775 * all mports that have them attached.
a11650e1 1776 */
9edbc30b 1777int rio_unregister_scan(int mport_id, struct rio_scan *scan_ops)
a11650e1
AB
1778{
1779 struct rio_mport *port;
9edbc30b
AB
1780 struct rio_scan_node *scan;
1781
1782 pr_debug("RIO: %s for mport_id=%d\n", __func__, mport_id);
1783
1784 if (mport_id != RIO_MPORT_ANY && mport_id >= RIO_MAX_MPORTS)
1785 return -EINVAL;
a11650e1
AB
1786
1787 mutex_lock(&rio_mport_list_lock);
9edbc30b
AB
1788
1789 list_for_each_entry(port, &rio_mports, node)
1790 if (port->id == mport_id ||
1791 (mport_id == RIO_MPORT_ANY && port->nscan == scan_ops))
1792 port->nscan = NULL;
1793
f93f3c4e 1794 list_for_each_entry(scan, &rio_scans, node) {
9edbc30b
AB
1795 if (scan->mport_id == mport_id) {
1796 list_del(&scan->node);
1797 kfree(scan);
f93f3c4e 1798 break;
a11650e1 1799 }
f93f3c4e 1800 }
9edbc30b 1801
a11650e1
AB
1802 mutex_unlock(&rio_mport_list_lock);
1803
1804 return 0;
1805}
1806EXPORT_SYMBOL_GPL(rio_unregister_scan);
1807
9edbc30b
AB
1808/**
1809 * rio_mport_scan - execute enumeration/discovery on the specified mport
1810 * @mport_id: number (ID) of mport device
1811 */
1812int rio_mport_scan(int mport_id)
1813{
1814 struct rio_mport *port = NULL;
1815 int rc;
1816
1817 mutex_lock(&rio_mport_list_lock);
1818 list_for_each_entry(port, &rio_mports, node) {
1819 if (port->id == mport_id)
1820 goto found;
1821 }
1822 mutex_unlock(&rio_mport_list_lock);
1823 return -ENODEV;
1824found:
1825 if (!port->nscan) {
1826 mutex_unlock(&rio_mport_list_lock);
1827 return -EINVAL;
1828 }
1829
1830 if (!try_module_get(port->nscan->owner)) {
1831 mutex_unlock(&rio_mport_list_lock);
1832 return -ENODEV;
1833 }
1834
1835 mutex_unlock(&rio_mport_list_lock);
1836
1837 if (port->host_deviceid >= 0)
1838 rc = port->nscan->enumerate(port, 0);
1839 else
1840 rc = port->nscan->discover(port, RIO_SCAN_ENUM_NO_WAIT);
1841
1842 module_put(port->nscan->owner);
1843 return rc;
1844}
1845
394b701c
MP
1846static void rio_fixup_device(struct rio_dev *dev)
1847{
1848}
1849
305c891e 1850static int rio_init(void)
394b701c
MP
1851{
1852 struct rio_dev *dev = NULL;
1853
1854 while ((dev = rio_get_device(RIO_ANY_ID, RIO_ANY_ID, dev)) != NULL) {
1855 rio_fixup_device(dev);
1856 }
1857 return 0;
1858}
1859
005842ef
AB
1860static struct workqueue_struct *rio_wq;
1861
1862struct rio_disc_work {
1863 struct work_struct work;
1864 struct rio_mport *mport;
1865};
1866
305c891e 1867static void disc_work_handler(struct work_struct *_work)
005842ef
AB
1868{
1869 struct rio_disc_work *work;
1870
1871 work = container_of(_work, struct rio_disc_work, work);
1872 pr_debug("RIO: discovery work for mport %d %s\n",
1873 work->mport->id, work->mport->name);
9edbc30b
AB
1874 if (try_module_get(work->mport->nscan->owner)) {
1875 work->mport->nscan->discover(work->mport, 0);
1876 module_put(work->mport->nscan->owner);
1877 }
005842ef
AB
1878}
1879
305c891e 1880int rio_init_mports(void)
394b701c 1881{
394b701c 1882 struct rio_mport *port;
005842ef 1883 struct rio_disc_work *work;
2574740d
AB
1884 int n = 0;
1885
1886 if (!next_portid)
1887 return -ENODEV;
394b701c 1888
2574740d
AB
1889 /*
1890 * First, run enumerations and check if we need to perform discovery
1891 * on any of the registered mports.
1892 */
a11650e1 1893 mutex_lock(&rio_mport_list_lock);
394b701c 1894 list_for_each_entry(port, &rio_mports, node) {
a11650e1 1895 if (port->host_deviceid >= 0) {
9edbc30b 1896 if (port->nscan && try_module_get(port->nscan->owner)) {
bc8fcfea 1897 port->nscan->enumerate(port, 0);
9edbc30b
AB
1898 module_put(port->nscan->owner);
1899 }
a11650e1 1900 } else
2574740d
AB
1901 n++;
1902 }
a11650e1 1903 mutex_unlock(&rio_mport_list_lock);
2574740d
AB
1904
1905 if (!n)
1906 goto no_disc;
1907
1908 /*
1909 * If we have mports that require discovery schedule a discovery work
1910 * for each of them. If the code below fails to allocate needed
1911 * resources, exit without error to keep results of enumeration
1912 * process (if any).
9edbc30b 1913 * TODO: Implement restart of discovery process for all or
2574740d
AB
1914 * individual discovering mports.
1915 */
1916 rio_wq = alloc_workqueue("riodisc", 0, 0);
1917 if (!rio_wq) {
1918 pr_err("RIO: unable allocate rio_wq\n");
1919 goto no_disc;
005842ef
AB
1920 }
1921
2574740d
AB
1922 work = kcalloc(n, sizeof *work, GFP_KERNEL);
1923 if (!work) {
1924 pr_err("RIO: no memory for work struct\n");
005842ef 1925 destroy_workqueue(rio_wq);
2574740d 1926 goto no_disc;
394b701c
MP
1927 }
1928
2574740d 1929 n = 0;
a11650e1 1930 mutex_lock(&rio_mport_list_lock);
2574740d 1931 list_for_each_entry(port, &rio_mports, node) {
a11650e1 1932 if (port->host_deviceid < 0 && port->nscan) {
2574740d
AB
1933 work[n].mport = port;
1934 INIT_WORK(&work[n].work, disc_work_handler);
1935 queue_work(rio_wq, &work[n].work);
1936 n++;
1937 }
1938 }
1939
1940 flush_workqueue(rio_wq);
9edbc30b 1941 mutex_unlock(&rio_mport_list_lock);
2574740d
AB
1942 pr_debug("RIO: destroy discovery workqueue\n");
1943 destroy_workqueue(rio_wq);
1944 kfree(work);
1945
1946no_disc:
2f809985
AB
1947 rio_init();
1948
c1256ebe 1949 return 0;
394b701c
MP
1950}
1951
569fccb6
AB
1952static int rio_get_hdid(int index)
1953{
fdf90abc 1954 if (ids_num == 0 || ids_num <= index || index >= RIO_MAX_MPORTS)
569fccb6
AB
1955 return -1;
1956
fdf90abc 1957 return hdid[index];
569fccb6
AB
1958}
1959
59f99965 1960int rio_register_mport(struct rio_mport *port)
394b701c 1961{
9edbc30b 1962 struct rio_scan_node *scan = NULL;
2aaf308b 1963 int res = 0;
9edbc30b 1964
569fccb6
AB
1965 if (next_portid >= RIO_MAX_MPORTS) {
1966 pr_err("RIO: reached specified max number of mports\n");
59f99965 1967 return 1;
569fccb6
AB
1968 }
1969
1970 port->id = next_portid++;
1971 port->host_deviceid = rio_get_hdid(port->id);
a11650e1 1972 port->nscan = NULL;
9edbc30b 1973
2aaf308b
AB
1974 dev_set_name(&port->dev, "rapidio%d", port->id);
1975 port->dev.class = &rio_mport_class;
1976
1977 res = device_register(&port->dev);
1978 if (res)
1979 dev_err(&port->dev, "RIO: mport%d registration failed ERR=%d\n",
1980 port->id, res);
1981 else
1982 dev_dbg(&port->dev, "RIO: mport%d registered\n", port->id);
1983
a11650e1 1984 mutex_lock(&rio_mport_list_lock);
394b701c 1985 list_add_tail(&port->node, &rio_mports);
9edbc30b
AB
1986
1987 /*
1988 * Check if there are any registered enumeration/discovery operations
1989 * that have to be attached to the added mport.
1990 */
1991 list_for_each_entry(scan, &rio_scans, node) {
1992 if (port->id == scan->mport_id ||
1993 scan->mport_id == RIO_MPORT_ANY) {
1994 port->nscan = scan->ops;
1995 if (port->id == scan->mport_id)
1996 break;
1997 }
1998 }
a11650e1 1999 mutex_unlock(&rio_mport_list_lock);
9edbc30b
AB
2000
2001 pr_debug("RIO: %s %s id=%d\n", __func__, port->name, port->id);
59f99965 2002 return 0;
394b701c 2003}
94d9bd45 2004EXPORT_SYMBOL_GPL(rio_register_mport);
394b701c
MP
2005
2006EXPORT_SYMBOL_GPL(rio_local_get_device_id);
2007EXPORT_SYMBOL_GPL(rio_get_device);
2008EXPORT_SYMBOL_GPL(rio_get_asm);
2009EXPORT_SYMBOL_GPL(rio_request_inb_dbell);
2010EXPORT_SYMBOL_GPL(rio_release_inb_dbell);
2011EXPORT_SYMBOL_GPL(rio_request_outb_dbell);
2012EXPORT_SYMBOL_GPL(rio_release_outb_dbell);
2013EXPORT_SYMBOL_GPL(rio_request_inb_mbox);
2014EXPORT_SYMBOL_GPL(rio_release_inb_mbox);
2015EXPORT_SYMBOL_GPL(rio_request_outb_mbox);
2016EXPORT_SYMBOL_GPL(rio_release_outb_mbox);
a11650e1 2017EXPORT_SYMBOL_GPL(rio_init_mports);
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