1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * MHI Endpoint bus stack
4 *
5 * Copyright (C) 2022 Linaro Ltd.
6 * Author: Manivannan Sadhasivam <manivannan.sadhasivam@linaro.org>
7 */
8
9 #include <linux/bitfield.h>
10 #include <linux/delay.h>
11 #include <linux/dma-direction.h>
12 #include <linux/interrupt.h>
13 #include <linux/io.h>
14 #include <linux/irq.h>
15 #include <linux/mhi_ep.h>
16 #include <linux/module.h>
17 #include "internal.h"
18
19 #define M0_WAIT_DELAY_MS 100
20 #define M0_WAIT_COUNT 100
21
22 static DEFINE_IDA(mhi_ep_cntrl_ida);
23
24 static int mhi_ep_create_device(struct mhi_ep_cntrl *mhi_cntrl, u32 ch_id);
25 static int mhi_ep_destroy_device(struct device *dev, void *data);
26
mhi_ep_send_event(struct mhi_ep_cntrl * mhi_cntrl,u32 ring_idx,struct mhi_ring_element * el,bool bei)27 static int mhi_ep_send_event(struct mhi_ep_cntrl *mhi_cntrl, u32 ring_idx,
28 struct mhi_ring_element *el, bool bei)
29 {
30 struct device *dev = &mhi_cntrl->mhi_dev->dev;
31 union mhi_ep_ring_ctx *ctx;
32 struct mhi_ep_ring *ring;
33 int ret;
34
35 mutex_lock(&mhi_cntrl->event_lock);
36 ring = &mhi_cntrl->mhi_event[ring_idx].ring;
37 ctx = (union mhi_ep_ring_ctx *)&mhi_cntrl->ev_ctx_cache[ring_idx];
38 if (!ring->started) {
39 ret = mhi_ep_ring_start(mhi_cntrl, ring, ctx);
40 if (ret) {
41 dev_err(dev, "Error starting event ring (%u)\n", ring_idx);
42 goto err_unlock;
43 }
44 }
45
46 /* Add element to the event ring */
47 ret = mhi_ep_ring_add_element(ring, el);
48 if (ret) {
49 dev_err(dev, "Error adding element to event ring (%u)\n", ring_idx);
50 goto err_unlock;
51 }
52
53 mutex_unlock(&mhi_cntrl->event_lock);
54
55 /*
56 * As per the MHI specification, section 4.3, Interrupt moderation:
57 *
58 * 1. If BEI flag is not set, cancel any pending intmodt work if started
59 * for the event ring and raise IRQ immediately.
60 *
61 * 2. If both BEI and intmodt are set, and if no IRQ is pending for the
62 * same event ring, start the IRQ delayed work as per the value of
63 * intmodt. If previous IRQ is pending, then do nothing as the pending
64 * IRQ is enough for the host to process the current event ring element.
65 *
66 * 3. If BEI is set and intmodt is not set, no need to raise IRQ.
67 */
68 if (!bei) {
69 if (READ_ONCE(ring->irq_pending))
70 cancel_delayed_work(&ring->intmodt_work);
71
72 mhi_cntrl->raise_irq(mhi_cntrl, ring->irq_vector);
73 } else if (ring->intmodt && !READ_ONCE(ring->irq_pending)) {
74 WRITE_ONCE(ring->irq_pending, true);
75 schedule_delayed_work(&ring->intmodt_work, msecs_to_jiffies(ring->intmodt));
76 }
77
78 return 0;
79
80 err_unlock:
81 mutex_unlock(&mhi_cntrl->event_lock);
82
83 return ret;
84 }
85
mhi_ep_send_completion_event(struct mhi_ep_cntrl * mhi_cntrl,struct mhi_ep_ring * ring,struct mhi_ring_element * tre,u32 len,enum mhi_ev_ccs code)86 static int mhi_ep_send_completion_event(struct mhi_ep_cntrl *mhi_cntrl, struct mhi_ep_ring *ring,
87 struct mhi_ring_element *tre, u32 len, enum mhi_ev_ccs code)
88 {
89 struct mhi_ring_element *event;
90 int ret;
91
92 event = kmem_cache_zalloc(mhi_cntrl->ev_ring_el_cache, GFP_KERNEL);
93 if (!event)
94 return -ENOMEM;
95
96 event->ptr = cpu_to_le64(ring->rbase + ring->rd_offset * sizeof(*tre));
97 event->dword[0] = MHI_TRE_EV_DWORD0(code, len);
98 event->dword[1] = MHI_TRE_EV_DWORD1(ring->ch_id, MHI_PKT_TYPE_TX_EVENT);
99
100 ret = mhi_ep_send_event(mhi_cntrl, ring->er_index, event, MHI_TRE_DATA_GET_BEI(tre));
101 kmem_cache_free(mhi_cntrl->ev_ring_el_cache, event);
102
103 return ret;
104 }
105
mhi_ep_send_state_change_event(struct mhi_ep_cntrl * mhi_cntrl,enum mhi_state state)106 int mhi_ep_send_state_change_event(struct mhi_ep_cntrl *mhi_cntrl, enum mhi_state state)
107 {
108 struct mhi_ring_element *event;
109 int ret;
110
111 event = kmem_cache_zalloc(mhi_cntrl->ev_ring_el_cache, GFP_KERNEL);
112 if (!event)
113 return -ENOMEM;
114
115 event->dword[0] = MHI_SC_EV_DWORD0(state);
116 event->dword[1] = MHI_SC_EV_DWORD1(MHI_PKT_TYPE_STATE_CHANGE_EVENT);
117
118 ret = mhi_ep_send_event(mhi_cntrl, 0, event, 0);
119 kmem_cache_free(mhi_cntrl->ev_ring_el_cache, event);
120
121 return ret;
122 }
123
mhi_ep_send_ee_event(struct mhi_ep_cntrl * mhi_cntrl,enum mhi_ee_type exec_env)124 int mhi_ep_send_ee_event(struct mhi_ep_cntrl *mhi_cntrl, enum mhi_ee_type exec_env)
125 {
126 struct mhi_ring_element *event;
127 int ret;
128
129 event = kmem_cache_zalloc(mhi_cntrl->ev_ring_el_cache, GFP_KERNEL);
130 if (!event)
131 return -ENOMEM;
132
133 event->dword[0] = MHI_EE_EV_DWORD0(exec_env);
134 event->dword[1] = MHI_SC_EV_DWORD1(MHI_PKT_TYPE_EE_EVENT);
135
136 ret = mhi_ep_send_event(mhi_cntrl, 0, event, 0);
137 kmem_cache_free(mhi_cntrl->ev_ring_el_cache, event);
138
139 return ret;
140 }
141
mhi_ep_send_cmd_comp_event(struct mhi_ep_cntrl * mhi_cntrl,enum mhi_ev_ccs code)142 static int mhi_ep_send_cmd_comp_event(struct mhi_ep_cntrl *mhi_cntrl, enum mhi_ev_ccs code)
143 {
144 struct mhi_ep_ring *ring = &mhi_cntrl->mhi_cmd->ring;
145 struct mhi_ring_element *event;
146 int ret;
147
148 event = kmem_cache_zalloc(mhi_cntrl->ev_ring_el_cache, GFP_KERNEL);
149 if (!event)
150 return -ENOMEM;
151
152 event->ptr = cpu_to_le64(ring->rbase + ring->rd_offset * sizeof(struct mhi_ring_element));
153 event->dword[0] = MHI_CC_EV_DWORD0(code);
154 event->dword[1] = MHI_CC_EV_DWORD1(MHI_PKT_TYPE_CMD_COMPLETION_EVENT);
155
156 ret = mhi_ep_send_event(mhi_cntrl, 0, event, 0);
157 kmem_cache_free(mhi_cntrl->ev_ring_el_cache, event);
158
159 return ret;
160 }
161
mhi_ep_process_cmd_ring(struct mhi_ep_ring * ring,struct mhi_ring_element * el)162 static int mhi_ep_process_cmd_ring(struct mhi_ep_ring *ring, struct mhi_ring_element *el)
163 {
164 struct mhi_ep_cntrl *mhi_cntrl = ring->mhi_cntrl;
165 struct device *dev = &mhi_cntrl->mhi_dev->dev;
166 struct mhi_result result = {};
167 struct mhi_ep_chan *mhi_chan;
168 struct mhi_ep_ring *ch_ring;
169 u32 tmp, ch_id;
170 int ret;
171
172 ch_id = MHI_TRE_GET_CMD_CHID(el);
173
174 /* Check if the channel is supported by the controller */
175 if ((ch_id >= mhi_cntrl->max_chan) || !mhi_cntrl->mhi_chan[ch_id].name) {
176 dev_dbg(dev, "Channel (%u) not supported!\n", ch_id);
177 return -ENODEV;
178 }
179
180 mhi_chan = &mhi_cntrl->mhi_chan[ch_id];
181 ch_ring = &mhi_cntrl->mhi_chan[ch_id].ring;
182
183 switch (MHI_TRE_GET_CMD_TYPE(el)) {
184 case MHI_PKT_TYPE_START_CHAN_CMD:
185 dev_dbg(dev, "Received START command for channel (%u)\n", ch_id);
186
187 mutex_lock(&mhi_chan->lock);
188 /* Initialize and configure the corresponding channel ring */
189 if (!ch_ring->started) {
190 ret = mhi_ep_ring_start(mhi_cntrl, ch_ring,
191 (union mhi_ep_ring_ctx *)&mhi_cntrl->ch_ctx_cache[ch_id]);
192 if (ret) {
193 dev_err(dev, "Failed to start ring for channel (%u)\n", ch_id);
194 ret = mhi_ep_send_cmd_comp_event(mhi_cntrl,
195 MHI_EV_CC_UNDEFINED_ERR);
196 if (ret)
197 dev_err(dev, "Error sending completion event: %d\n", ret);
198
199 goto err_unlock;
200 }
201
202 mhi_chan->rd_offset = ch_ring->rd_offset;
203 }
204
205 /* Set channel state to RUNNING */
206 mhi_chan->state = MHI_CH_STATE_RUNNING;
207 tmp = le32_to_cpu(mhi_cntrl->ch_ctx_cache[ch_id].chcfg);
208 tmp &= ~CHAN_CTX_CHSTATE_MASK;
209 tmp |= FIELD_PREP(CHAN_CTX_CHSTATE_MASK, MHI_CH_STATE_RUNNING);
210 mhi_cntrl->ch_ctx_cache[ch_id].chcfg = cpu_to_le32(tmp);
211
212 ret = mhi_ep_send_cmd_comp_event(mhi_cntrl, MHI_EV_CC_SUCCESS);
213 if (ret) {
214 dev_err(dev, "Error sending command completion event (%u)\n",
215 MHI_EV_CC_SUCCESS);
216 goto err_unlock;
217 }
218
219 mutex_unlock(&mhi_chan->lock);
220
221 /*
222 * Create MHI device only during UL channel start. Since the MHI
223 * channels operate in a pair, we'll associate both UL and DL
224 * channels to the same device.
225 *
226 * We also need to check for mhi_dev != NULL because, the host
227 * will issue START_CHAN command during resume and we don't
228 * destroy the device during suspend.
229 */
230 if (!(ch_id % 2) && !mhi_chan->mhi_dev) {
231 ret = mhi_ep_create_device(mhi_cntrl, ch_id);
232 if (ret) {
233 dev_err(dev, "Error creating device for channel (%u)\n", ch_id);
234 mutex_lock(&mhi_cntrl->state_lock);
235 mhi_ep_handle_syserr(mhi_cntrl);
236 mutex_unlock(&mhi_cntrl->state_lock);
237 return ret;
238 }
239 }
240
241 /* Finally, enable DB for the channel */
242 mhi_ep_mmio_enable_chdb(mhi_cntrl, ch_id);
243
244 break;
245 case MHI_PKT_TYPE_STOP_CHAN_CMD:
246 dev_dbg(dev, "Received STOP command for channel (%u)\n", ch_id);
247 if (!ch_ring->started) {
248 dev_err(dev, "Channel (%u) not opened\n", ch_id);
249 return -ENODEV;
250 }
251
252 mutex_lock(&mhi_chan->lock);
253 /* Disable DB for the channel */
254 mhi_ep_mmio_disable_chdb(mhi_cntrl, ch_id);
255
256 /* Send channel disconnect status to client drivers */
257 if (mhi_chan->xfer_cb) {
258 result.transaction_status = -ENOTCONN;
259 result.bytes_xferd = 0;
260 mhi_chan->xfer_cb(mhi_chan->mhi_dev, &result);
261 }
262
263 /* Set channel state to STOP */
264 mhi_chan->state = MHI_CH_STATE_STOP;
265 tmp = le32_to_cpu(mhi_cntrl->ch_ctx_cache[ch_id].chcfg);
266 tmp &= ~CHAN_CTX_CHSTATE_MASK;
267 tmp |= FIELD_PREP(CHAN_CTX_CHSTATE_MASK, MHI_CH_STATE_STOP);
268 mhi_cntrl->ch_ctx_cache[ch_id].chcfg = cpu_to_le32(tmp);
269
270 ret = mhi_ep_send_cmd_comp_event(mhi_cntrl, MHI_EV_CC_SUCCESS);
271 if (ret) {
272 dev_err(dev, "Error sending command completion event (%u)\n",
273 MHI_EV_CC_SUCCESS);
274 goto err_unlock;
275 }
276
277 mutex_unlock(&mhi_chan->lock);
278 break;
279 case MHI_PKT_TYPE_RESET_CHAN_CMD:
280 dev_dbg(dev, "Received RESET command for channel (%u)\n", ch_id);
281 if (!ch_ring->started) {
282 dev_err(dev, "Channel (%u) not opened\n", ch_id);
283 return -ENODEV;
284 }
285
286 mutex_lock(&mhi_chan->lock);
287 /* Stop and reset the transfer ring */
288 mhi_ep_ring_reset(mhi_cntrl, ch_ring);
289
290 /* Send channel disconnect status to client driver */
291 if (mhi_chan->xfer_cb) {
292 result.transaction_status = -ENOTCONN;
293 result.bytes_xferd = 0;
294 mhi_chan->xfer_cb(mhi_chan->mhi_dev, &result);
295 }
296
297 /* Set channel state to DISABLED */
298 mhi_chan->state = MHI_CH_STATE_DISABLED;
299 tmp = le32_to_cpu(mhi_cntrl->ch_ctx_cache[ch_id].chcfg);
300 tmp &= ~CHAN_CTX_CHSTATE_MASK;
301 tmp |= FIELD_PREP(CHAN_CTX_CHSTATE_MASK, MHI_CH_STATE_DISABLED);
302 mhi_cntrl->ch_ctx_cache[ch_id].chcfg = cpu_to_le32(tmp);
303
304 ret = mhi_ep_send_cmd_comp_event(mhi_cntrl, MHI_EV_CC_SUCCESS);
305 if (ret) {
306 dev_err(dev, "Error sending command completion event (%u)\n",
307 MHI_EV_CC_SUCCESS);
308 goto err_unlock;
309 }
310
311 mutex_unlock(&mhi_chan->lock);
312 break;
313 default:
314 dev_err(dev, "Invalid command received: %lu for channel (%u)\n",
315 MHI_TRE_GET_CMD_TYPE(el), ch_id);
316 return -EINVAL;
317 }
318
319 return 0;
320
321 err_unlock:
322 mutex_unlock(&mhi_chan->lock);
323
324 return ret;
325 }
326
mhi_ep_queue_is_empty(struct mhi_ep_device * mhi_dev,enum dma_data_direction dir)327 bool mhi_ep_queue_is_empty(struct mhi_ep_device *mhi_dev, enum dma_data_direction dir)
328 {
329 struct mhi_ep_chan *mhi_chan = (dir == DMA_FROM_DEVICE) ? mhi_dev->dl_chan :
330 mhi_dev->ul_chan;
331 struct mhi_ep_cntrl *mhi_cntrl = mhi_dev->mhi_cntrl;
332 struct mhi_ep_ring *ring = &mhi_cntrl->mhi_chan[mhi_chan->chan].ring;
333
334 return !!(mhi_chan->rd_offset == ring->wr_offset);
335 }
336 EXPORT_SYMBOL_GPL(mhi_ep_queue_is_empty);
337
mhi_ep_read_completion(struct mhi_ep_buf_info * buf_info)338 static void mhi_ep_read_completion(struct mhi_ep_buf_info *buf_info)
339 {
340 struct mhi_ep_device *mhi_dev = buf_info->mhi_dev;
341 struct mhi_ep_cntrl *mhi_cntrl = mhi_dev->mhi_cntrl;
342 struct mhi_ep_chan *mhi_chan = mhi_dev->ul_chan;
343 struct mhi_ep_ring *ring = &mhi_cntrl->mhi_chan[mhi_chan->chan].ring;
344 struct mhi_ring_element *el = &ring->ring_cache[ring->rd_offset];
345 struct mhi_result result = {};
346 int ret;
347
348 if (mhi_chan->xfer_cb) {
349 result.buf_addr = buf_info->cb_buf;
350 result.dir = mhi_chan->dir;
351 result.bytes_xferd = buf_info->size;
352
353 mhi_chan->xfer_cb(mhi_dev, &result);
354 }
355
356 /*
357 * The host will split the data packet into multiple TREs if it can't fit
358 * the packet in a single TRE. In that case, CHAIN flag will be set by the
359 * host for all TREs except the last one.
360 */
361 if (buf_info->code != MHI_EV_CC_OVERFLOW) {
362 if (MHI_TRE_DATA_GET_CHAIN(el)) {
363 /*
364 * IEOB (Interrupt on End of Block) flag will be set by the host if
365 * it expects the completion event for all TREs of a TD.
366 */
367 if (MHI_TRE_DATA_GET_IEOB(el)) {
368 ret = mhi_ep_send_completion_event(mhi_cntrl, ring, el,
369 MHI_TRE_DATA_GET_LEN(el),
370 MHI_EV_CC_EOB);
371 if (ret) {
372 dev_err(&mhi_chan->mhi_dev->dev,
373 "Error sending transfer compl. event\n");
374 goto err_free_tre_buf;
375 }
376 }
377 } else {
378 /*
379 * IEOT (Interrupt on End of Transfer) flag will be set by the host
380 * for the last TRE of the TD and expects the completion event for
381 * the same.
382 */
383 if (MHI_TRE_DATA_GET_IEOT(el)) {
384 ret = mhi_ep_send_completion_event(mhi_cntrl, ring, el,
385 MHI_TRE_DATA_GET_LEN(el),
386 MHI_EV_CC_EOT);
387 if (ret) {
388 dev_err(&mhi_chan->mhi_dev->dev,
389 "Error sending transfer compl. event\n");
390 goto err_free_tre_buf;
391 }
392 }
393 }
394 }
395
396 mhi_ep_ring_inc_index(ring);
397
398 err_free_tre_buf:
399 kmem_cache_free(mhi_cntrl->tre_buf_cache, buf_info->cb_buf);
400 }
401
mhi_ep_read_channel(struct mhi_ep_cntrl * mhi_cntrl,struct mhi_ep_ring * ring)402 static int mhi_ep_read_channel(struct mhi_ep_cntrl *mhi_cntrl,
403 struct mhi_ep_ring *ring)
404 {
405 struct mhi_ep_chan *mhi_chan = &mhi_cntrl->mhi_chan[ring->ch_id];
406 struct device *dev = &mhi_cntrl->mhi_dev->dev;
407 size_t tr_len, read_offset;
408 struct mhi_ep_buf_info buf_info = {};
409 u32 len = MHI_EP_DEFAULT_MTU;
410 struct mhi_ring_element *el;
411 void *buf_addr;
412 int ret;
413
414 do {
415 /* Don't process the transfer ring if the channel is not in RUNNING state */
416 if (mhi_chan->state != MHI_CH_STATE_RUNNING) {
417 dev_err(dev, "Channel not available\n");
418 return -ENODEV;
419 }
420
421 el = &ring->ring_cache[mhi_chan->rd_offset];
422
423 /* Check if there is data pending to be read from previous read operation */
424 if (mhi_chan->tre_bytes_left) {
425 dev_dbg(dev, "TRE bytes remaining: %u\n", mhi_chan->tre_bytes_left);
426 tr_len = min(len, mhi_chan->tre_bytes_left);
427 } else {
428 mhi_chan->tre_loc = MHI_TRE_DATA_GET_PTR(el);
429 mhi_chan->tre_size = MHI_TRE_DATA_GET_LEN(el);
430 mhi_chan->tre_bytes_left = mhi_chan->tre_size;
431
432 tr_len = min(len, mhi_chan->tre_size);
433 }
434
435 read_offset = mhi_chan->tre_size - mhi_chan->tre_bytes_left;
436
437 buf_addr = kmem_cache_zalloc(mhi_cntrl->tre_buf_cache, GFP_KERNEL);
438 if (!buf_addr)
439 return -ENOMEM;
440
441 buf_info.host_addr = mhi_chan->tre_loc + read_offset;
442 buf_info.dev_addr = buf_addr;
443 buf_info.size = tr_len;
444 buf_info.cb = mhi_ep_read_completion;
445 buf_info.cb_buf = buf_addr;
446 buf_info.mhi_dev = mhi_chan->mhi_dev;
447
448 if (mhi_chan->tre_bytes_left - tr_len)
449 buf_info.code = MHI_EV_CC_OVERFLOW;
450
451 dev_dbg(dev, "Reading %zd bytes from channel (%u)\n", tr_len, ring->ch_id);
452 ret = mhi_cntrl->read_async(mhi_cntrl, &buf_info);
453 if (ret) {
454 dev_err(&mhi_chan->mhi_dev->dev, "Error reading from channel\n");
455 goto err_free_buf_addr;
456 }
457
458 mhi_chan->tre_bytes_left -= tr_len;
459
460 if (!mhi_chan->tre_bytes_left)
461 mhi_chan->rd_offset = (mhi_chan->rd_offset + 1) % ring->ring_size;
462 /* Read until the some buffer is left or the ring becomes not empty */
463 } while (!mhi_ep_queue_is_empty(mhi_chan->mhi_dev, DMA_TO_DEVICE));
464
465 return 0;
466
467 err_free_buf_addr:
468 kmem_cache_free(mhi_cntrl->tre_buf_cache, buf_addr);
469
470 return ret;
471 }
472
mhi_ep_process_ch_ring(struct mhi_ep_ring * ring)473 static int mhi_ep_process_ch_ring(struct mhi_ep_ring *ring)
474 {
475 struct mhi_ep_cntrl *mhi_cntrl = ring->mhi_cntrl;
476 struct mhi_result result = {};
477 struct mhi_ep_chan *mhi_chan;
478 int ret;
479
480 mhi_chan = &mhi_cntrl->mhi_chan[ring->ch_id];
481
482 /*
483 * Bail out if transfer callback is not registered for the channel.
484 * This is most likely due to the client driver not loaded at this point.
485 */
486 if (!mhi_chan->xfer_cb) {
487 dev_err(&mhi_chan->mhi_dev->dev, "Client driver not available\n");
488 return -ENODEV;
489 }
490
491 if (ring->ch_id % 2) {
492 /* DL channel */
493 result.dir = mhi_chan->dir;
494 mhi_chan->xfer_cb(mhi_chan->mhi_dev, &result);
495 } else {
496 /* UL channel */
497 ret = mhi_ep_read_channel(mhi_cntrl, ring);
498 if (ret) {
499 dev_err(&mhi_chan->mhi_dev->dev, "Failed to read channel\n");
500 return ret;
501 }
502 }
503
504 return 0;
505 }
506
mhi_ep_skb_completion(struct mhi_ep_buf_info * buf_info)507 static void mhi_ep_skb_completion(struct mhi_ep_buf_info *buf_info)
508 {
509 struct mhi_ep_device *mhi_dev = buf_info->mhi_dev;
510 struct mhi_ep_cntrl *mhi_cntrl = mhi_dev->mhi_cntrl;
511 struct mhi_ep_chan *mhi_chan = mhi_dev->dl_chan;
512 struct mhi_ep_ring *ring = &mhi_cntrl->mhi_chan[mhi_chan->chan].ring;
513 struct mhi_ring_element *el = &ring->ring_cache[ring->rd_offset];
514 struct device *dev = &mhi_dev->dev;
515 struct mhi_result result = {};
516 int ret;
517
518 if (mhi_chan->xfer_cb) {
519 result.buf_addr = buf_info->cb_buf;
520 result.dir = mhi_chan->dir;
521 result.bytes_xferd = buf_info->size;
522
523 mhi_chan->xfer_cb(mhi_dev, &result);
524 }
525
526 ret = mhi_ep_send_completion_event(mhi_cntrl, ring, el, buf_info->size,
527 buf_info->code);
528 if (ret) {
529 dev_err(dev, "Error sending transfer completion event\n");
530 return;
531 }
532
533 mhi_ep_ring_inc_index(ring);
534 }
535
536 /* TODO: Handle partially formed TDs */
mhi_ep_queue_skb(struct mhi_ep_device * mhi_dev,struct sk_buff * skb)537 int mhi_ep_queue_skb(struct mhi_ep_device *mhi_dev, struct sk_buff *skb)
538 {
539 struct mhi_ep_cntrl *mhi_cntrl = mhi_dev->mhi_cntrl;
540 struct mhi_ep_chan *mhi_chan = mhi_dev->dl_chan;
541 struct device *dev = &mhi_chan->mhi_dev->dev;
542 struct mhi_ep_buf_info buf_info = {};
543 struct mhi_ring_element *el;
544 u32 buf_left, read_offset;
545 struct mhi_ep_ring *ring;
546 size_t tr_len;
547 u32 tre_len;
548 int ret;
549
550 buf_left = skb->len;
551 ring = &mhi_cntrl->mhi_chan[mhi_chan->chan].ring;
552
553 mutex_lock(&mhi_chan->lock);
554
555 do {
556 /* Don't process the transfer ring if the channel is not in RUNNING state */
557 if (mhi_chan->state != MHI_CH_STATE_RUNNING) {
558 dev_err(dev, "Channel not available\n");
559 ret = -ENODEV;
560 goto err_exit;
561 }
562
563 if (mhi_ep_queue_is_empty(mhi_dev, DMA_FROM_DEVICE)) {
564 dev_err(dev, "TRE not available!\n");
565 ret = -ENOSPC;
566 goto err_exit;
567 }
568
569 el = &ring->ring_cache[mhi_chan->rd_offset];
570 tre_len = MHI_TRE_DATA_GET_LEN(el);
571
572 tr_len = min(buf_left, tre_len);
573 read_offset = skb->len - buf_left;
574
575 buf_info.dev_addr = skb->data + read_offset;
576 buf_info.host_addr = MHI_TRE_DATA_GET_PTR(el);
577 buf_info.size = tr_len;
578 buf_info.cb = mhi_ep_skb_completion;
579 buf_info.cb_buf = skb;
580 buf_info.mhi_dev = mhi_dev;
581
582 /*
583 * For all TREs queued by the host for DL channel, only the EOT flag will be set.
584 * If the packet doesn't fit into a single TRE, send the OVERFLOW event to
585 * the host so that the host can adjust the packet boundary to next TREs. Else send
586 * the EOT event to the host indicating the packet boundary.
587 */
588 if (buf_left - tr_len)
589 buf_info.code = MHI_EV_CC_OVERFLOW;
590 else
591 buf_info.code = MHI_EV_CC_EOT;
592
593 dev_dbg(dev, "Writing %zd bytes to channel (%u)\n", tr_len, ring->ch_id);
594 ret = mhi_cntrl->write_async(mhi_cntrl, &buf_info);
595 if (ret) {
596 dev_err(dev, "Error writing to the channel\n");
597 goto err_exit;
598 }
599
600 buf_left -= tr_len;
601
602 /*
603 * Update the read offset cached in mhi_chan. Actual read offset
604 * will be updated by the completion handler.
605 */
606 mhi_chan->rd_offset = (mhi_chan->rd_offset + 1) % ring->ring_size;
607 } while (buf_left);
608
609 mutex_unlock(&mhi_chan->lock);
610
611 return 0;
612
613 err_exit:
614 mutex_unlock(&mhi_chan->lock);
615
616 return ret;
617 }
618 EXPORT_SYMBOL_GPL(mhi_ep_queue_skb);
619
mhi_ep_cache_host_cfg(struct mhi_ep_cntrl * mhi_cntrl)620 static int mhi_ep_cache_host_cfg(struct mhi_ep_cntrl *mhi_cntrl)
621 {
622 size_t cmd_ctx_host_size, ch_ctx_host_size, ev_ctx_host_size;
623 struct device *dev = &mhi_cntrl->mhi_dev->dev;
624 int ret;
625
626 /* Update the number of event rings (NER) programmed by the host */
627 mhi_ep_mmio_update_ner(mhi_cntrl);
628
629 dev_dbg(dev, "Number of Event rings: %u, HW Event rings: %u\n",
630 mhi_cntrl->event_rings, mhi_cntrl->hw_event_rings);
631
632 ch_ctx_host_size = sizeof(struct mhi_chan_ctxt) * mhi_cntrl->max_chan;
633 ev_ctx_host_size = sizeof(struct mhi_event_ctxt) * mhi_cntrl->event_rings;
634 cmd_ctx_host_size = sizeof(struct mhi_cmd_ctxt) * NR_OF_CMD_RINGS;
635
636 /* Get the channel context base pointer from host */
637 mhi_ep_mmio_get_chc_base(mhi_cntrl);
638
639 /* Allocate and map memory for caching host channel context */
640 ret = mhi_cntrl->alloc_map(mhi_cntrl, mhi_cntrl->ch_ctx_host_pa,
641 &mhi_cntrl->ch_ctx_cache_phys,
642 (void __iomem **) &mhi_cntrl->ch_ctx_cache,
643 ch_ctx_host_size);
644 if (ret) {
645 dev_err(dev, "Failed to allocate and map ch_ctx_cache\n");
646 return ret;
647 }
648
649 /* Get the event context base pointer from host */
650 mhi_ep_mmio_get_erc_base(mhi_cntrl);
651
652 /* Allocate and map memory for caching host event context */
653 ret = mhi_cntrl->alloc_map(mhi_cntrl, mhi_cntrl->ev_ctx_host_pa,
654 &mhi_cntrl->ev_ctx_cache_phys,
655 (void __iomem **) &mhi_cntrl->ev_ctx_cache,
656 ev_ctx_host_size);
657 if (ret) {
658 dev_err(dev, "Failed to allocate and map ev_ctx_cache\n");
659 goto err_ch_ctx;
660 }
661
662 /* Get the command context base pointer from host */
663 mhi_ep_mmio_get_crc_base(mhi_cntrl);
664
665 /* Allocate and map memory for caching host command context */
666 ret = mhi_cntrl->alloc_map(mhi_cntrl, mhi_cntrl->cmd_ctx_host_pa,
667 &mhi_cntrl->cmd_ctx_cache_phys,
668 (void __iomem **) &mhi_cntrl->cmd_ctx_cache,
669 cmd_ctx_host_size);
670 if (ret) {
671 dev_err(dev, "Failed to allocate and map cmd_ctx_cache\n");
672 goto err_ev_ctx;
673 }
674
675 /* Initialize command ring */
676 ret = mhi_ep_ring_start(mhi_cntrl, &mhi_cntrl->mhi_cmd->ring,
677 (union mhi_ep_ring_ctx *)mhi_cntrl->cmd_ctx_cache);
678 if (ret) {
679 dev_err(dev, "Failed to start the command ring\n");
680 goto err_cmd_ctx;
681 }
682
683 return ret;
684
685 err_cmd_ctx:
686 mhi_cntrl->unmap_free(mhi_cntrl, mhi_cntrl->cmd_ctx_host_pa, mhi_cntrl->cmd_ctx_cache_phys,
687 (void __iomem *) mhi_cntrl->cmd_ctx_cache, cmd_ctx_host_size);
688
689 err_ev_ctx:
690 mhi_cntrl->unmap_free(mhi_cntrl, mhi_cntrl->ev_ctx_host_pa, mhi_cntrl->ev_ctx_cache_phys,
691 (void __iomem *) mhi_cntrl->ev_ctx_cache, ev_ctx_host_size);
692
693 err_ch_ctx:
694 mhi_cntrl->unmap_free(mhi_cntrl, mhi_cntrl->ch_ctx_host_pa, mhi_cntrl->ch_ctx_cache_phys,
695 (void __iomem *) mhi_cntrl->ch_ctx_cache, ch_ctx_host_size);
696
697 return ret;
698 }
699
mhi_ep_free_host_cfg(struct mhi_ep_cntrl * mhi_cntrl)700 static void mhi_ep_free_host_cfg(struct mhi_ep_cntrl *mhi_cntrl)
701 {
702 size_t cmd_ctx_host_size, ch_ctx_host_size, ev_ctx_host_size;
703
704 ch_ctx_host_size = sizeof(struct mhi_chan_ctxt) * mhi_cntrl->max_chan;
705 ev_ctx_host_size = sizeof(struct mhi_event_ctxt) * mhi_cntrl->event_rings;
706 cmd_ctx_host_size = sizeof(struct mhi_cmd_ctxt) * NR_OF_CMD_RINGS;
707
708 mhi_cntrl->unmap_free(mhi_cntrl, mhi_cntrl->cmd_ctx_host_pa, mhi_cntrl->cmd_ctx_cache_phys,
709 (void __iomem *) mhi_cntrl->cmd_ctx_cache, cmd_ctx_host_size);
710
711 mhi_cntrl->unmap_free(mhi_cntrl, mhi_cntrl->ev_ctx_host_pa, mhi_cntrl->ev_ctx_cache_phys,
712 (void __iomem *) mhi_cntrl->ev_ctx_cache, ev_ctx_host_size);
713
714 mhi_cntrl->unmap_free(mhi_cntrl, mhi_cntrl->ch_ctx_host_pa, mhi_cntrl->ch_ctx_cache_phys,
715 (void __iomem *) mhi_cntrl->ch_ctx_cache, ch_ctx_host_size);
716 }
717
mhi_ep_enable_int(struct mhi_ep_cntrl * mhi_cntrl)718 static void mhi_ep_enable_int(struct mhi_ep_cntrl *mhi_cntrl)
719 {
720 /*
721 * Doorbell interrupts are enabled when the corresponding channel gets started.
722 * Enabling all interrupts here triggers spurious irqs as some of the interrupts
723 * associated with hw channels always get triggered.
724 */
725 mhi_ep_mmio_enable_ctrl_interrupt(mhi_cntrl);
726 mhi_ep_mmio_enable_cmdb_interrupt(mhi_cntrl);
727 }
728
mhi_ep_enable(struct mhi_ep_cntrl * mhi_cntrl)729 static int mhi_ep_enable(struct mhi_ep_cntrl *mhi_cntrl)
730 {
731 struct device *dev = &mhi_cntrl->mhi_dev->dev;
732 enum mhi_state state;
733 bool mhi_reset;
734 u32 count = 0;
735 int ret;
736
737 /* Wait for Host to set the M0 state */
738 do {
739 msleep(M0_WAIT_DELAY_MS);
740 mhi_ep_mmio_get_mhi_state(mhi_cntrl, &state, &mhi_reset);
741 if (mhi_reset) {
742 /* Clear the MHI reset if host is in reset state */
743 mhi_ep_mmio_clear_reset(mhi_cntrl);
744 dev_info(dev, "Detected Host reset while waiting for M0\n");
745 }
746 count++;
747 } while (state != MHI_STATE_M0 && count < M0_WAIT_COUNT);
748
749 if (state != MHI_STATE_M0) {
750 dev_err(dev, "Host failed to enter M0\n");
751 return -ETIMEDOUT;
752 }
753
754 ret = mhi_ep_cache_host_cfg(mhi_cntrl);
755 if (ret) {
756 dev_err(dev, "Failed to cache host config\n");
757 return ret;
758 }
759
760 mhi_ep_mmio_set_env(mhi_cntrl, MHI_EE_AMSS);
761
762 /* Enable all interrupts now */
763 mhi_ep_enable_int(mhi_cntrl);
764
765 return 0;
766 }
767
mhi_ep_cmd_ring_worker(struct work_struct * work)768 static void mhi_ep_cmd_ring_worker(struct work_struct *work)
769 {
770 struct mhi_ep_cntrl *mhi_cntrl = container_of(work, struct mhi_ep_cntrl, cmd_ring_work);
771 struct mhi_ep_ring *ring = &mhi_cntrl->mhi_cmd->ring;
772 struct device *dev = &mhi_cntrl->mhi_dev->dev;
773 struct mhi_ring_element *el;
774 int ret;
775
776 /* Update the write offset for the ring */
777 ret = mhi_ep_update_wr_offset(ring);
778 if (ret) {
779 dev_err(dev, "Error updating write offset for ring\n");
780 return;
781 }
782
783 /* Sanity check to make sure there are elements in the ring */
784 if (ring->rd_offset == ring->wr_offset)
785 return;
786
787 /*
788 * Process command ring element till write offset. In case of an error, just try to
789 * process next element.
790 */
791 while (ring->rd_offset != ring->wr_offset) {
792 el = &ring->ring_cache[ring->rd_offset];
793
794 ret = mhi_ep_process_cmd_ring(ring, el);
795 if (ret && ret != -ENODEV)
796 dev_err(dev, "Error processing cmd ring element: %zu\n", ring->rd_offset);
797
798 mhi_ep_ring_inc_index(ring);
799 }
800 }
801
mhi_ep_ch_ring_worker(struct work_struct * work)802 static void mhi_ep_ch_ring_worker(struct work_struct *work)
803 {
804 struct mhi_ep_cntrl *mhi_cntrl = container_of(work, struct mhi_ep_cntrl, ch_ring_work);
805 struct device *dev = &mhi_cntrl->mhi_dev->dev;
806 struct mhi_ep_ring_item *itr, *tmp;
807 struct mhi_ep_ring *ring;
808 struct mhi_ep_chan *chan;
809 unsigned long flags;
810 LIST_HEAD(head);
811 int ret;
812
813 spin_lock_irqsave(&mhi_cntrl->list_lock, flags);
814 list_splice_tail_init(&mhi_cntrl->ch_db_list, &head);
815 spin_unlock_irqrestore(&mhi_cntrl->list_lock, flags);
816
817 /* Process each queued channel ring. In case of an error, just process next element. */
818 list_for_each_entry_safe(itr, tmp, &head, node) {
819 list_del(&itr->node);
820 ring = itr->ring;
821
822 chan = &mhi_cntrl->mhi_chan[ring->ch_id];
823 mutex_lock(&chan->lock);
824
825 /*
826 * The ring could've stopped while we waited to grab the (chan->lock), so do
827 * a sanity check before going further.
828 */
829 if (!ring->started) {
830 mutex_unlock(&chan->lock);
831 kfree(itr);
832 continue;
833 }
834
835 /* Update the write offset for the ring */
836 ret = mhi_ep_update_wr_offset(ring);
837 if (ret) {
838 dev_err(dev, "Error updating write offset for ring\n");
839 mutex_unlock(&chan->lock);
840 kmem_cache_free(mhi_cntrl->ring_item_cache, itr);
841 continue;
842 }
843
844 /* Sanity check to make sure there are elements in the ring */
845 if (chan->rd_offset == ring->wr_offset) {
846 mutex_unlock(&chan->lock);
847 kmem_cache_free(mhi_cntrl->ring_item_cache, itr);
848 continue;
849 }
850
851 dev_dbg(dev, "Processing the ring for channel (%u)\n", ring->ch_id);
852 ret = mhi_ep_process_ch_ring(ring);
853 if (ret) {
854 dev_err(dev, "Error processing ring for channel (%u): %d\n",
855 ring->ch_id, ret);
856 mutex_unlock(&chan->lock);
857 kmem_cache_free(mhi_cntrl->ring_item_cache, itr);
858 continue;
859 }
860
861 mutex_unlock(&chan->lock);
862 kmem_cache_free(mhi_cntrl->ring_item_cache, itr);
863 }
864 }
865
mhi_ep_state_worker(struct work_struct * work)866 static void mhi_ep_state_worker(struct work_struct *work)
867 {
868 struct mhi_ep_cntrl *mhi_cntrl = container_of(work, struct mhi_ep_cntrl, state_work);
869 struct device *dev = &mhi_cntrl->mhi_dev->dev;
870 struct mhi_ep_state_transition *itr, *tmp;
871 unsigned long flags;
872 LIST_HEAD(head);
873 int ret;
874
875 spin_lock_irqsave(&mhi_cntrl->list_lock, flags);
876 list_splice_tail_init(&mhi_cntrl->st_transition_list, &head);
877 spin_unlock_irqrestore(&mhi_cntrl->list_lock, flags);
878
879 list_for_each_entry_safe(itr, tmp, &head, node) {
880 list_del(&itr->node);
881 dev_dbg(dev, "Handling MHI state transition to %s\n",
882 mhi_state_str(itr->state));
883
884 switch (itr->state) {
885 case MHI_STATE_M0:
886 ret = mhi_ep_set_m0_state(mhi_cntrl);
887 if (ret)
888 dev_err(dev, "Failed to transition to M0 state\n");
889 break;
890 case MHI_STATE_M3:
891 ret = mhi_ep_set_m3_state(mhi_cntrl);
892 if (ret)
893 dev_err(dev, "Failed to transition to M3 state\n");
894 break;
895 default:
896 dev_err(dev, "Invalid MHI state transition: %d\n", itr->state);
897 break;
898 }
899 kfree(itr);
900 }
901 }
902
mhi_ep_queue_channel_db(struct mhi_ep_cntrl * mhi_cntrl,unsigned long ch_int,u32 ch_idx)903 static void mhi_ep_queue_channel_db(struct mhi_ep_cntrl *mhi_cntrl, unsigned long ch_int,
904 u32 ch_idx)
905 {
906 struct mhi_ep_ring_item *item;
907 struct mhi_ep_ring *ring;
908 bool work = !!ch_int;
909 LIST_HEAD(head);
910 u32 i;
911
912 /* First add the ring items to a local list */
913 for_each_set_bit(i, &ch_int, 32) {
914 /* Channel index varies for each register: 0, 32, 64, 96 */
915 u32 ch_id = ch_idx + i;
916
917 ring = &mhi_cntrl->mhi_chan[ch_id].ring;
918 item = kmem_cache_zalloc(mhi_cntrl->ring_item_cache, GFP_ATOMIC);
919 if (!item)
920 return;
921
922 item->ring = ring;
923 list_add_tail(&item->node, &head);
924 }
925
926 /* Now, splice the local list into ch_db_list and queue the work item */
927 if (work) {
928 spin_lock(&mhi_cntrl->list_lock);
929 list_splice_tail_init(&head, &mhi_cntrl->ch_db_list);
930 spin_unlock(&mhi_cntrl->list_lock);
931
932 queue_work(mhi_cntrl->wq, &mhi_cntrl->ch_ring_work);
933 }
934 }
935
936 /*
937 * Channel interrupt statuses are contained in 4 registers each of 32bit length.
938 * For checking all interrupts, we need to loop through each registers and then
939 * check for bits set.
940 */
mhi_ep_check_channel_interrupt(struct mhi_ep_cntrl * mhi_cntrl)941 static void mhi_ep_check_channel_interrupt(struct mhi_ep_cntrl *mhi_cntrl)
942 {
943 u32 ch_int, ch_idx, i;
944
945 /* Bail out if there is no channel doorbell interrupt */
946 if (!mhi_ep_mmio_read_chdb_status_interrupts(mhi_cntrl))
947 return;
948
949 for (i = 0; i < MHI_MASK_ROWS_CH_DB; i++) {
950 ch_idx = i * MHI_MASK_CH_LEN;
951
952 /* Only process channel interrupt if the mask is enabled */
953 ch_int = mhi_cntrl->chdb[i].status & mhi_cntrl->chdb[i].mask;
954 if (ch_int) {
955 mhi_ep_queue_channel_db(mhi_cntrl, ch_int, ch_idx);
956 mhi_ep_mmio_write(mhi_cntrl, MHI_CHDB_INT_CLEAR_n(i),
957 mhi_cntrl->chdb[i].status);
958 }
959 }
960 }
961
mhi_ep_process_ctrl_interrupt(struct mhi_ep_cntrl * mhi_cntrl,enum mhi_state state)962 static void mhi_ep_process_ctrl_interrupt(struct mhi_ep_cntrl *mhi_cntrl,
963 enum mhi_state state)
964 {
965 struct mhi_ep_state_transition *item;
966
967 item = kzalloc_obj(*item, GFP_ATOMIC);
968 if (!item)
969 return;
970
971 item->state = state;
972 spin_lock(&mhi_cntrl->list_lock);
973 list_add_tail(&item->node, &mhi_cntrl->st_transition_list);
974 spin_unlock(&mhi_cntrl->list_lock);
975
976 queue_work(mhi_cntrl->wq, &mhi_cntrl->state_work);
977 }
978
979 /*
980 * Interrupt handler that services interrupts raised by the host writing to
981 * MHICTRL and Command ring doorbell (CRDB) registers for state change and
982 * channel interrupts.
983 */
mhi_ep_irq(int irq,void * data)984 static irqreturn_t mhi_ep_irq(int irq, void *data)
985 {
986 struct mhi_ep_cntrl *mhi_cntrl = data;
987 struct device *dev = &mhi_cntrl->mhi_dev->dev;
988 enum mhi_state state;
989 u32 int_value;
990 bool mhi_reset;
991
992 /* Acknowledge the ctrl interrupt */
993 int_value = mhi_ep_mmio_read(mhi_cntrl, MHI_CTRL_INT_STATUS);
994 mhi_ep_mmio_write(mhi_cntrl, MHI_CTRL_INT_CLEAR, int_value);
995
996 /* Check for ctrl interrupt */
997 if (FIELD_GET(MHI_CTRL_INT_STATUS_MSK, int_value)) {
998 dev_dbg(dev, "Processing ctrl interrupt\n");
999 mhi_ep_mmio_get_mhi_state(mhi_cntrl, &state, &mhi_reset);
1000 if (mhi_reset) {
1001 dev_info(dev, "Host triggered MHI reset!\n");
1002 disable_irq_nosync(mhi_cntrl->irq);
1003 schedule_work(&mhi_cntrl->reset_work);
1004 return IRQ_HANDLED;
1005 }
1006
1007 mhi_ep_process_ctrl_interrupt(mhi_cntrl, state);
1008 }
1009
1010 /* Check for command doorbell interrupt */
1011 if (FIELD_GET(MHI_CTRL_INT_STATUS_CRDB_MSK, int_value)) {
1012 dev_dbg(dev, "Processing command doorbell interrupt\n");
1013 queue_work(mhi_cntrl->wq, &mhi_cntrl->cmd_ring_work);
1014 }
1015
1016 /* Check for channel interrupts */
1017 mhi_ep_check_channel_interrupt(mhi_cntrl);
1018
1019 return IRQ_HANDLED;
1020 }
1021
mhi_ep_abort_transfer(struct mhi_ep_cntrl * mhi_cntrl)1022 static void mhi_ep_abort_transfer(struct mhi_ep_cntrl *mhi_cntrl)
1023 {
1024 struct mhi_ep_ring *ch_ring, *ev_ring;
1025 struct mhi_result result = {};
1026 struct mhi_ep_chan *mhi_chan;
1027 int i;
1028
1029 /* Disable all the channels to prevent new transfers */
1030 for (i = 0; i < mhi_cntrl->max_chan; i++) {
1031 mhi_chan = &mhi_cntrl->mhi_chan[i];
1032 if (!mhi_chan->ring.started)
1033 continue;
1034
1035 mutex_lock(&mhi_chan->lock);
1036 mhi_chan->state = MHI_CH_STATE_DISABLED;
1037 mutex_unlock(&mhi_chan->lock);
1038 }
1039
1040 /* Drain ring workers and in-flight transfers before notifying disconnect */
1041 flush_workqueue(mhi_cntrl->wq);
1042 if (mhi_cntrl->flush_async)
1043 mhi_cntrl->flush_async(mhi_cntrl);
1044
1045 /* Send channel disconnect status to client drivers */
1046 for (i = 0; i < mhi_cntrl->max_chan; i++) {
1047 mhi_chan = &mhi_cntrl->mhi_chan[i];
1048 if (!mhi_chan->ring.started)
1049 continue;
1050
1051 mutex_lock(&mhi_chan->lock);
1052 if (mhi_chan->xfer_cb) {
1053 result.transaction_status = -ENOTCONN;
1054 result.bytes_xferd = 0;
1055 mhi_chan->xfer_cb(mhi_chan->mhi_dev, &result);
1056 }
1057 mutex_unlock(&mhi_chan->lock);
1058 }
1059
1060 /* Destroy devices associated with all channels */
1061 device_for_each_child(&mhi_cntrl->mhi_dev->dev, NULL, mhi_ep_destroy_device);
1062
1063 /* Stop and reset the transfer rings */
1064 for (i = 0; i < mhi_cntrl->max_chan; i++) {
1065 mhi_chan = &mhi_cntrl->mhi_chan[i];
1066 if (!mhi_chan->ring.started)
1067 continue;
1068
1069 ch_ring = &mhi_cntrl->mhi_chan[i].ring;
1070 mutex_lock(&mhi_chan->lock);
1071 mhi_ep_ring_reset(mhi_cntrl, ch_ring);
1072 mutex_unlock(&mhi_chan->lock);
1073 }
1074
1075 /* Stop and reset the event rings */
1076 for (i = 0; i < mhi_cntrl->event_rings; i++) {
1077 ev_ring = &mhi_cntrl->mhi_event[i].ring;
1078 if (!ev_ring->started)
1079 continue;
1080
1081 mutex_lock(&mhi_cntrl->event_lock);
1082 mhi_ep_ring_reset(mhi_cntrl, ev_ring);
1083 mutex_unlock(&mhi_cntrl->event_lock);
1084 }
1085
1086 /* Stop and reset the command ring */
1087 mhi_ep_ring_reset(mhi_cntrl, &mhi_cntrl->mhi_cmd->ring);
1088
1089 mhi_ep_free_host_cfg(mhi_cntrl);
1090 mhi_ep_mmio_mask_interrupts(mhi_cntrl);
1091
1092 mhi_cntrl->enabled = false;
1093 }
1094
mhi_ep_reset_worker(struct work_struct * work)1095 static void mhi_ep_reset_worker(struct work_struct *work)
1096 {
1097 struct mhi_ep_cntrl *mhi_cntrl = container_of(work, struct mhi_ep_cntrl, reset_work);
1098 enum mhi_state cur_state;
1099
1100 mhi_ep_power_down(mhi_cntrl);
1101
1102 /* Reset MMIO to signal host that the MHI_RESET is completed in endpoint */
1103 mhi_ep_mmio_reset(mhi_cntrl);
1104
1105 mutex_lock(&mhi_cntrl->state_lock);
1106 cur_state = mhi_cntrl->mhi_state;
1107 mutex_unlock(&mhi_cntrl->state_lock);
1108
1109 /*
1110 * Only proceed further if the reset is due to SYS_ERR. The host will
1111 * issue reset during shutdown also and we don't need to do re-init in
1112 * that case.
1113 */
1114 if (cur_state == MHI_STATE_SYS_ERR)
1115 mhi_ep_power_up(mhi_cntrl);
1116 }
1117
1118 /*
1119 * We don't need to do anything special other than setting the MHI SYS_ERR
1120 * state. The host will reset all contexts and issue MHI RESET so that we
1121 * could also recover from error state.
1122 */
mhi_ep_handle_syserr(struct mhi_ep_cntrl * mhi_cntrl)1123 void mhi_ep_handle_syserr(struct mhi_ep_cntrl *mhi_cntrl)
1124 {
1125 struct device *dev = &mhi_cntrl->mhi_dev->dev;
1126 int ret;
1127
1128 ret = mhi_ep_set_mhi_state(mhi_cntrl, MHI_STATE_SYS_ERR);
1129 if (ret)
1130 return;
1131
1132 /* Signal host that the device went to SYS_ERR state */
1133 ret = mhi_ep_send_state_change_event(mhi_cntrl, MHI_STATE_SYS_ERR);
1134 if (ret)
1135 dev_err(dev, "Failed sending SYS_ERR state change event: %d\n", ret);
1136 }
1137
mhi_ep_power_up(struct mhi_ep_cntrl * mhi_cntrl)1138 int mhi_ep_power_up(struct mhi_ep_cntrl *mhi_cntrl)
1139 {
1140 struct device *dev = &mhi_cntrl->mhi_dev->dev;
1141 int ret, i;
1142
1143 /*
1144 * Mask all interrupts until the state machine is ready. Interrupts will
1145 * be enabled later with mhi_ep_enable().
1146 */
1147 mhi_ep_mmio_mask_interrupts(mhi_cntrl);
1148 mhi_ep_mmio_init(mhi_cntrl);
1149
1150 mhi_cntrl->mhi_event = kzalloc_objs(*mhi_cntrl->mhi_event,
1151 mhi_cntrl->event_rings);
1152 if (!mhi_cntrl->mhi_event)
1153 return -ENOMEM;
1154
1155 /* Initialize command, channel and event rings */
1156 mhi_ep_ring_init(&mhi_cntrl->mhi_cmd->ring, RING_TYPE_CMD, 0);
1157 for (i = 0; i < mhi_cntrl->max_chan; i++)
1158 mhi_ep_ring_init(&mhi_cntrl->mhi_chan[i].ring, RING_TYPE_CH, i);
1159 for (i = 0; i < mhi_cntrl->event_rings; i++)
1160 mhi_ep_ring_init(&mhi_cntrl->mhi_event[i].ring, RING_TYPE_ER, i);
1161
1162 mutex_lock(&mhi_cntrl->state_lock);
1163 mhi_cntrl->mhi_state = MHI_STATE_RESET;
1164 mutex_unlock(&mhi_cntrl->state_lock);
1165
1166 /* Set AMSS EE before signaling ready state */
1167 mhi_ep_mmio_set_env(mhi_cntrl, MHI_EE_AMSS);
1168
1169 /* All set, notify the host that we are ready */
1170 ret = mhi_ep_set_ready_state(mhi_cntrl);
1171 if (ret)
1172 goto err_free_event;
1173
1174 dev_dbg(dev, "READY state notification sent to the host\n");
1175
1176 ret = mhi_ep_enable(mhi_cntrl);
1177 if (ret) {
1178 dev_err(dev, "Failed to enable MHI endpoint\n");
1179 goto err_free_event;
1180 }
1181
1182 enable_irq(mhi_cntrl->irq);
1183 mhi_cntrl->enabled = true;
1184
1185 return 0;
1186
1187 err_free_event:
1188 kfree(mhi_cntrl->mhi_event);
1189
1190 return ret;
1191 }
1192 EXPORT_SYMBOL_GPL(mhi_ep_power_up);
1193
mhi_ep_power_down(struct mhi_ep_cntrl * mhi_cntrl)1194 void mhi_ep_power_down(struct mhi_ep_cntrl *mhi_cntrl)
1195 {
1196 if (mhi_cntrl->enabled) {
1197 mhi_ep_abort_transfer(mhi_cntrl);
1198 kfree(mhi_cntrl->mhi_event);
1199 disable_irq(mhi_cntrl->irq);
1200 }
1201 }
1202 EXPORT_SYMBOL_GPL(mhi_ep_power_down);
1203
mhi_ep_suspend_channels(struct mhi_ep_cntrl * mhi_cntrl)1204 void mhi_ep_suspend_channels(struct mhi_ep_cntrl *mhi_cntrl)
1205 {
1206 struct mhi_ep_chan *mhi_chan;
1207 u32 tmp;
1208 int i;
1209
1210 for (i = 0; i < mhi_cntrl->max_chan; i++) {
1211 mhi_chan = &mhi_cntrl->mhi_chan[i];
1212
1213 if (!mhi_chan->mhi_dev)
1214 continue;
1215
1216 mutex_lock(&mhi_chan->lock);
1217 /* Skip if the channel is not currently running */
1218 tmp = le32_to_cpu(mhi_cntrl->ch_ctx_cache[i].chcfg);
1219 if (FIELD_GET(CHAN_CTX_CHSTATE_MASK, tmp) != MHI_CH_STATE_RUNNING) {
1220 mutex_unlock(&mhi_chan->lock);
1221 continue;
1222 }
1223
1224 dev_dbg(&mhi_chan->mhi_dev->dev, "Suspending channel\n");
1225 /* Set channel state to SUSPENDED */
1226 mhi_chan->state = MHI_CH_STATE_SUSPENDED;
1227 tmp &= ~CHAN_CTX_CHSTATE_MASK;
1228 tmp |= FIELD_PREP(CHAN_CTX_CHSTATE_MASK, MHI_CH_STATE_SUSPENDED);
1229 mhi_cntrl->ch_ctx_cache[i].chcfg = cpu_to_le32(tmp);
1230 mutex_unlock(&mhi_chan->lock);
1231 }
1232 }
1233
mhi_ep_resume_channels(struct mhi_ep_cntrl * mhi_cntrl)1234 void mhi_ep_resume_channels(struct mhi_ep_cntrl *mhi_cntrl)
1235 {
1236 struct mhi_ep_chan *mhi_chan;
1237 u32 tmp;
1238 int i;
1239
1240 for (i = 0; i < mhi_cntrl->max_chan; i++) {
1241 mhi_chan = &mhi_cntrl->mhi_chan[i];
1242
1243 if (!mhi_chan->mhi_dev)
1244 continue;
1245
1246 mutex_lock(&mhi_chan->lock);
1247 /* Skip if the channel is not currently suspended */
1248 tmp = le32_to_cpu(mhi_cntrl->ch_ctx_cache[i].chcfg);
1249 if (FIELD_GET(CHAN_CTX_CHSTATE_MASK, tmp) != MHI_CH_STATE_SUSPENDED) {
1250 mutex_unlock(&mhi_chan->lock);
1251 continue;
1252 }
1253
1254 dev_dbg(&mhi_chan->mhi_dev->dev, "Resuming channel\n");
1255 /* Set channel state to RUNNING */
1256 mhi_chan->state = MHI_CH_STATE_RUNNING;
1257 tmp &= ~CHAN_CTX_CHSTATE_MASK;
1258 tmp |= FIELD_PREP(CHAN_CTX_CHSTATE_MASK, MHI_CH_STATE_RUNNING);
1259 mhi_cntrl->ch_ctx_cache[i].chcfg = cpu_to_le32(tmp);
1260 mutex_unlock(&mhi_chan->lock);
1261 }
1262 }
1263
mhi_ep_release_device(struct device * dev)1264 static void mhi_ep_release_device(struct device *dev)
1265 {
1266 struct mhi_ep_device *mhi_dev = to_mhi_ep_device(dev);
1267
1268 if (mhi_dev->dev_type == MHI_DEVICE_CONTROLLER)
1269 mhi_dev->mhi_cntrl->mhi_dev = NULL;
1270
1271 /*
1272 * We need to set the mhi_chan->mhi_dev to NULL here since the MHI
1273 * devices for the channels will only get created in mhi_ep_create_device()
1274 * if the mhi_dev associated with it is NULL.
1275 */
1276 if (mhi_dev->ul_chan)
1277 mhi_dev->ul_chan->mhi_dev = NULL;
1278
1279 if (mhi_dev->dl_chan)
1280 mhi_dev->dl_chan->mhi_dev = NULL;
1281
1282 kfree(mhi_dev);
1283 }
1284
mhi_ep_alloc_device(struct mhi_ep_cntrl * mhi_cntrl,enum mhi_device_type dev_type)1285 static struct mhi_ep_device *mhi_ep_alloc_device(struct mhi_ep_cntrl *mhi_cntrl,
1286 enum mhi_device_type dev_type)
1287 {
1288 struct mhi_ep_device *mhi_dev;
1289 struct device *dev;
1290
1291 mhi_dev = kzalloc_obj(*mhi_dev);
1292 if (!mhi_dev)
1293 return ERR_PTR(-ENOMEM);
1294
1295 dev = &mhi_dev->dev;
1296 device_initialize(dev);
1297 dev->bus = &mhi_ep_bus_type;
1298 dev->release = mhi_ep_release_device;
1299
1300 /* Controller device is always allocated first */
1301 if (dev_type == MHI_DEVICE_CONTROLLER)
1302 /* for MHI controller device, parent is the bus device (e.g. PCI EPF) */
1303 dev->parent = mhi_cntrl->cntrl_dev;
1304 else
1305 /* for MHI client devices, parent is the MHI controller device */
1306 dev->parent = &mhi_cntrl->mhi_dev->dev;
1307
1308 mhi_dev->mhi_cntrl = mhi_cntrl;
1309 mhi_dev->dev_type = dev_type;
1310
1311 return mhi_dev;
1312 }
1313
1314 /*
1315 * MHI channels are always defined in pairs with UL as the even numbered
1316 * channel and DL as odd numbered one. This function gets UL channel (primary)
1317 * as the ch_id and always looks after the next entry in channel list for
1318 * the corresponding DL channel (secondary).
1319 */
mhi_ep_create_device(struct mhi_ep_cntrl * mhi_cntrl,u32 ch_id)1320 static int mhi_ep_create_device(struct mhi_ep_cntrl *mhi_cntrl, u32 ch_id)
1321 {
1322 struct mhi_ep_chan *mhi_chan = &mhi_cntrl->mhi_chan[ch_id];
1323 struct device *dev = mhi_cntrl->cntrl_dev;
1324 struct mhi_ep_device *mhi_dev;
1325 int ret;
1326
1327 /* Check if the channel name is same for both UL and DL */
1328 if (strcmp(mhi_chan->name, mhi_chan[1].name)) {
1329 dev_err(dev, "UL and DL channel names are not same: (%s) != (%s)\n",
1330 mhi_chan->name, mhi_chan[1].name);
1331 return -EINVAL;
1332 }
1333
1334 mhi_dev = mhi_ep_alloc_device(mhi_cntrl, MHI_DEVICE_XFER);
1335 if (IS_ERR(mhi_dev))
1336 return PTR_ERR(mhi_dev);
1337
1338 /* Configure primary channel */
1339 mhi_dev->ul_chan = mhi_chan;
1340 get_device(&mhi_dev->dev);
1341 mhi_chan->mhi_dev = mhi_dev;
1342
1343 /* Configure secondary channel as well */
1344 mhi_chan++;
1345 mhi_dev->dl_chan = mhi_chan;
1346 get_device(&mhi_dev->dev);
1347 mhi_chan->mhi_dev = mhi_dev;
1348
1349 /* Channel name is same for both UL and DL */
1350 mhi_dev->name = mhi_chan->name;
1351 ret = dev_set_name(&mhi_dev->dev, "%s_%s",
1352 dev_name(&mhi_cntrl->mhi_dev->dev),
1353 mhi_dev->name);
1354 if (ret)
1355 goto err_put_channels;
1356
1357 ret = device_add(&mhi_dev->dev);
1358 if (ret)
1359 goto err_put_channels;
1360
1361 return 0;
1362
1363 err_put_channels:
1364 put_device(&mhi_dev->dev); /* DL channel reference */
1365 put_device(&mhi_dev->dev); /* UL channel reference */
1366 put_device(&mhi_dev->dev); /* device_initialize() reference */
1367
1368 return ret;
1369 }
1370
mhi_ep_destroy_device(struct device * dev,void * data)1371 static int mhi_ep_destroy_device(struct device *dev, void *data)
1372 {
1373 struct mhi_ep_device *mhi_dev;
1374 struct mhi_ep_cntrl *mhi_cntrl;
1375 struct mhi_ep_chan *ul_chan, *dl_chan;
1376
1377 if (dev->bus != &mhi_ep_bus_type)
1378 return 0;
1379
1380 mhi_dev = to_mhi_ep_device(dev);
1381 mhi_cntrl = mhi_dev->mhi_cntrl;
1382
1383 /* Only destroy devices created for channels */
1384 if (mhi_dev->dev_type == MHI_DEVICE_CONTROLLER)
1385 return 0;
1386
1387 ul_chan = mhi_dev->ul_chan;
1388 dl_chan = mhi_dev->dl_chan;
1389
1390 if (ul_chan)
1391 put_device(&ul_chan->mhi_dev->dev);
1392
1393 if (dl_chan)
1394 put_device(&dl_chan->mhi_dev->dev);
1395
1396 dev_dbg(&mhi_cntrl->mhi_dev->dev, "Destroying device for chan:%s\n",
1397 mhi_dev->name);
1398
1399 /* Notify the client and remove the device from MHI bus */
1400 device_del(dev);
1401 put_device(dev);
1402
1403 return 0;
1404 }
1405
mhi_ep_chan_init(struct mhi_ep_cntrl * mhi_cntrl,const struct mhi_ep_cntrl_config * config)1406 static int mhi_ep_chan_init(struct mhi_ep_cntrl *mhi_cntrl,
1407 const struct mhi_ep_cntrl_config *config)
1408 {
1409 const struct mhi_ep_channel_config *ch_cfg;
1410 struct device *dev = mhi_cntrl->cntrl_dev;
1411 u32 chan, i;
1412 int ret = -EINVAL;
1413
1414 mhi_cntrl->max_chan = config->max_channels;
1415
1416 /*
1417 * Allocate max_channels supported by the MHI endpoint and populate
1418 * only the defined channels
1419 */
1420 mhi_cntrl->mhi_chan = kzalloc_objs(*mhi_cntrl->mhi_chan,
1421 mhi_cntrl->max_chan);
1422 if (!mhi_cntrl->mhi_chan)
1423 return -ENOMEM;
1424
1425 for (i = 0; i < config->num_channels; i++) {
1426 struct mhi_ep_chan *mhi_chan;
1427
1428 ch_cfg = &config->ch_cfg[i];
1429
1430 chan = ch_cfg->num;
1431 if (chan >= mhi_cntrl->max_chan) {
1432 dev_err(dev, "Channel (%u) exceeds maximum available channels (%u)\n",
1433 chan, mhi_cntrl->max_chan);
1434 goto error_chan_cfg;
1435 }
1436
1437 /* Bi-directional and direction less channels are not supported */
1438 if (ch_cfg->dir == DMA_BIDIRECTIONAL || ch_cfg->dir == DMA_NONE) {
1439 dev_err(dev, "Invalid direction (%u) for channel (%u)\n",
1440 ch_cfg->dir, chan);
1441 goto error_chan_cfg;
1442 }
1443
1444 mhi_chan = &mhi_cntrl->mhi_chan[chan];
1445 mhi_chan->name = ch_cfg->name;
1446 mhi_chan->chan = chan;
1447 mhi_chan->dir = ch_cfg->dir;
1448 mutex_init(&mhi_chan->lock);
1449 }
1450
1451 return 0;
1452
1453 error_chan_cfg:
1454 kfree(mhi_cntrl->mhi_chan);
1455
1456 return ret;
1457 }
1458
1459 /*
1460 * Allocate channel and command rings here. Event rings will be allocated
1461 * in mhi_ep_power_up() as the config comes from the host.
1462 */
mhi_ep_register_controller(struct mhi_ep_cntrl * mhi_cntrl,const struct mhi_ep_cntrl_config * config)1463 int mhi_ep_register_controller(struct mhi_ep_cntrl *mhi_cntrl,
1464 const struct mhi_ep_cntrl_config *config)
1465 {
1466 struct mhi_ep_device *mhi_dev;
1467 int ret;
1468
1469 if (!mhi_cntrl || !mhi_cntrl->cntrl_dev || !mhi_cntrl->mmio || !mhi_cntrl->irq)
1470 return -EINVAL;
1471
1472 if (!mhi_cntrl->read_sync || !mhi_cntrl->write_sync ||
1473 !mhi_cntrl->read_async || !mhi_cntrl->write_async)
1474 return -EINVAL;
1475
1476 ret = mhi_ep_chan_init(mhi_cntrl, config);
1477 if (ret)
1478 return ret;
1479
1480 mhi_cntrl->mhi_cmd = kzalloc_objs(*mhi_cntrl->mhi_cmd, NR_OF_CMD_RINGS);
1481 if (!mhi_cntrl->mhi_cmd) {
1482 ret = -ENOMEM;
1483 goto err_free_ch;
1484 }
1485
1486 mhi_cntrl->ev_ring_el_cache = kmem_cache_create("mhi_ep_event_ring_el",
1487 sizeof(struct mhi_ring_element), 0,
1488 0, NULL);
1489 if (!mhi_cntrl->ev_ring_el_cache) {
1490 ret = -ENOMEM;
1491 goto err_free_cmd;
1492 }
1493
1494 mhi_cntrl->tre_buf_cache = kmem_cache_create("mhi_ep_tre_buf", MHI_EP_DEFAULT_MTU, 0,
1495 0, NULL);
1496 if (!mhi_cntrl->tre_buf_cache) {
1497 ret = -ENOMEM;
1498 goto err_destroy_ev_ring_el_cache;
1499 }
1500
1501 mhi_cntrl->ring_item_cache = kmem_cache_create("mhi_ep_ring_item",
1502 sizeof(struct mhi_ep_ring_item), 0,
1503 0, NULL);
1504 if (!mhi_cntrl->ring_item_cache) {
1505 ret = -ENOMEM;
1506 goto err_destroy_tre_buf_cache;
1507 }
1508
1509 INIT_WORK(&mhi_cntrl->state_work, mhi_ep_state_worker);
1510 INIT_WORK(&mhi_cntrl->reset_work, mhi_ep_reset_worker);
1511 INIT_WORK(&mhi_cntrl->cmd_ring_work, mhi_ep_cmd_ring_worker);
1512 INIT_WORK(&mhi_cntrl->ch_ring_work, mhi_ep_ch_ring_worker);
1513
1514 mhi_cntrl->wq = alloc_workqueue("mhi_ep_wq", WQ_PERCPU, 0);
1515 if (!mhi_cntrl->wq) {
1516 ret = -ENOMEM;
1517 goto err_destroy_ring_item_cache;
1518 }
1519
1520 INIT_LIST_HEAD(&mhi_cntrl->st_transition_list);
1521 INIT_LIST_HEAD(&mhi_cntrl->ch_db_list);
1522 spin_lock_init(&mhi_cntrl->list_lock);
1523 mutex_init(&mhi_cntrl->state_lock);
1524 mutex_init(&mhi_cntrl->event_lock);
1525
1526 /* Set MHI version and AMSS EE before enumeration */
1527 mhi_ep_mmio_write(mhi_cntrl, EP_MHIVER, config->mhi_version);
1528 mhi_ep_mmio_set_env(mhi_cntrl, MHI_EE_AMSS);
1529
1530 /* Set controller index */
1531 ret = ida_alloc(&mhi_ep_cntrl_ida, GFP_KERNEL);
1532 if (ret < 0)
1533 goto err_destroy_wq;
1534
1535 mhi_cntrl->index = ret;
1536
1537 irq_set_status_flags(mhi_cntrl->irq, IRQ_NOAUTOEN);
1538 ret = request_irq(mhi_cntrl->irq, mhi_ep_irq, IRQF_TRIGGER_HIGH,
1539 "doorbell_irq", mhi_cntrl);
1540 if (ret) {
1541 dev_err(mhi_cntrl->cntrl_dev, "Failed to request Doorbell IRQ\n");
1542 goto err_ida_free;
1543 }
1544
1545 /* Allocate the controller device */
1546 mhi_dev = mhi_ep_alloc_device(mhi_cntrl, MHI_DEVICE_CONTROLLER);
1547 if (IS_ERR(mhi_dev)) {
1548 dev_err(mhi_cntrl->cntrl_dev, "Failed to allocate controller device\n");
1549 ret = PTR_ERR(mhi_dev);
1550 goto err_free_irq;
1551 }
1552
1553 ret = dev_set_name(&mhi_dev->dev, "mhi_ep%u", mhi_cntrl->index);
1554 if (ret)
1555 goto err_put_dev;
1556
1557 mhi_dev->name = dev_name(&mhi_dev->dev);
1558 mhi_cntrl->mhi_dev = mhi_dev;
1559
1560 ret = device_add(&mhi_dev->dev);
1561 if (ret)
1562 goto err_put_dev;
1563
1564 dev_dbg(&mhi_dev->dev, "MHI EP Controller registered\n");
1565
1566 return 0;
1567
1568 err_put_dev:
1569 put_device(&mhi_dev->dev);
1570 err_free_irq:
1571 free_irq(mhi_cntrl->irq, mhi_cntrl);
1572 err_ida_free:
1573 ida_free(&mhi_ep_cntrl_ida, mhi_cntrl->index);
1574 err_destroy_wq:
1575 destroy_workqueue(mhi_cntrl->wq);
1576 err_destroy_ring_item_cache:
1577 kmem_cache_destroy(mhi_cntrl->ring_item_cache);
1578 err_destroy_ev_ring_el_cache:
1579 kmem_cache_destroy(mhi_cntrl->ev_ring_el_cache);
1580 err_destroy_tre_buf_cache:
1581 kmem_cache_destroy(mhi_cntrl->tre_buf_cache);
1582 err_free_cmd:
1583 kfree(mhi_cntrl->mhi_cmd);
1584 err_free_ch:
1585 kfree(mhi_cntrl->mhi_chan);
1586
1587 return ret;
1588 }
1589 EXPORT_SYMBOL_GPL(mhi_ep_register_controller);
1590
1591 /*
1592 * It is expected that the controller drivers will power down the MHI EP stack
1593 * using "mhi_ep_power_down()" before calling this function to unregister themselves.
1594 */
mhi_ep_unregister_controller(struct mhi_ep_cntrl * mhi_cntrl)1595 void mhi_ep_unregister_controller(struct mhi_ep_cntrl *mhi_cntrl)
1596 {
1597 struct mhi_ep_device *mhi_dev = mhi_cntrl->mhi_dev;
1598
1599 destroy_workqueue(mhi_cntrl->wq);
1600
1601 free_irq(mhi_cntrl->irq, mhi_cntrl);
1602
1603 kmem_cache_destroy(mhi_cntrl->tre_buf_cache);
1604 kmem_cache_destroy(mhi_cntrl->ev_ring_el_cache);
1605 kmem_cache_destroy(mhi_cntrl->ring_item_cache);
1606 kfree(mhi_cntrl->mhi_cmd);
1607 kfree(mhi_cntrl->mhi_chan);
1608
1609 device_del(&mhi_dev->dev);
1610 put_device(&mhi_dev->dev);
1611
1612 ida_free(&mhi_ep_cntrl_ida, mhi_cntrl->index);
1613 }
1614 EXPORT_SYMBOL_GPL(mhi_ep_unregister_controller);
1615
mhi_ep_probe(struct device * dev)1616 static int mhi_ep_probe(struct device *dev)
1617 {
1618 struct mhi_ep_device *mhi_dev = to_mhi_ep_device(dev);
1619 struct mhi_ep_driver *mhi_drv = to_mhi_ep_driver(dev->driver);
1620 struct mhi_ep_chan *ul_chan = mhi_dev->ul_chan;
1621 struct mhi_ep_chan *dl_chan = mhi_dev->dl_chan;
1622
1623 ul_chan->xfer_cb = mhi_drv->ul_xfer_cb;
1624 dl_chan->xfer_cb = mhi_drv->dl_xfer_cb;
1625
1626 return mhi_drv->probe(mhi_dev, mhi_dev->id);
1627 }
1628
mhi_ep_remove(struct device * dev)1629 static void mhi_ep_remove(struct device *dev)
1630 {
1631 struct mhi_ep_device *mhi_dev = to_mhi_ep_device(dev);
1632 struct mhi_ep_driver *mhi_drv = to_mhi_ep_driver(dev->driver);
1633 struct mhi_ep_cntrl *mhi_cntrl = mhi_dev->mhi_cntrl;
1634 struct mhi_result result = {};
1635 struct mhi_ep_chan *mhi_chan;
1636 int dir;
1637
1638 /* Skip if it is a controller device */
1639 if (mhi_dev->dev_type == MHI_DEVICE_CONTROLLER)
1640 return;
1641
1642 /* Disable the channels to prevent new transfers */
1643 for (dir = 0; dir < 2; dir++) {
1644 mhi_chan = dir ? mhi_dev->ul_chan : mhi_dev->dl_chan;
1645
1646 if (!mhi_chan)
1647 continue;
1648
1649 mutex_lock(&mhi_chan->lock);
1650 mhi_chan->state = MHI_CH_STATE_DISABLED;
1651 mutex_unlock(&mhi_chan->lock);
1652 }
1653
1654 /* Flush in-flight transfers before notifying disconnect */
1655 if (mhi_cntrl->flush_async)
1656 mhi_cntrl->flush_async(mhi_cntrl);
1657
1658 /* Disconnect the channels associated with the driver */
1659 for (dir = 0; dir < 2; dir++) {
1660 mhi_chan = dir ? mhi_dev->ul_chan : mhi_dev->dl_chan;
1661
1662 if (!mhi_chan)
1663 continue;
1664
1665 mutex_lock(&mhi_chan->lock);
1666 /* Send channel disconnect status to the client driver */
1667 if (mhi_chan->xfer_cb) {
1668 result.transaction_status = -ENOTCONN;
1669 result.bytes_xferd = 0;
1670 mhi_chan->xfer_cb(mhi_chan->mhi_dev, &result);
1671 }
1672
1673 mhi_chan->xfer_cb = NULL;
1674 mutex_unlock(&mhi_chan->lock);
1675 }
1676
1677 /* Remove the client driver now */
1678 mhi_drv->remove(mhi_dev);
1679 }
1680
__mhi_ep_driver_register(struct mhi_ep_driver * mhi_drv,struct module * owner)1681 int __mhi_ep_driver_register(struct mhi_ep_driver *mhi_drv, struct module *owner)
1682 {
1683 struct device_driver *driver = &mhi_drv->driver;
1684
1685 if (!mhi_drv->probe || !mhi_drv->remove)
1686 return -EINVAL;
1687
1688 /* Client drivers should have callbacks defined for both channels */
1689 if (!mhi_drv->ul_xfer_cb || !mhi_drv->dl_xfer_cb)
1690 return -EINVAL;
1691
1692 driver->bus = &mhi_ep_bus_type;
1693 driver->owner = owner;
1694
1695 return driver_register(driver);
1696 }
1697 EXPORT_SYMBOL_GPL(__mhi_ep_driver_register);
1698
mhi_ep_driver_unregister(struct mhi_ep_driver * mhi_drv)1699 void mhi_ep_driver_unregister(struct mhi_ep_driver *mhi_drv)
1700 {
1701 driver_unregister(&mhi_drv->driver);
1702 }
1703 EXPORT_SYMBOL_GPL(mhi_ep_driver_unregister);
1704
mhi_ep_uevent(const struct device * dev,struct kobj_uevent_env * env)1705 static int mhi_ep_uevent(const struct device *dev, struct kobj_uevent_env *env)
1706 {
1707 const struct mhi_ep_device *mhi_dev = to_mhi_ep_device(dev);
1708
1709 return add_uevent_var(env, "MODALIAS=" MHI_EP_DEVICE_MODALIAS_FMT,
1710 mhi_dev->name);
1711 }
1712
mhi_ep_match(struct device * dev,const struct device_driver * drv)1713 static int mhi_ep_match(struct device *dev, const struct device_driver *drv)
1714 {
1715 struct mhi_ep_device *mhi_dev = to_mhi_ep_device(dev);
1716 const struct mhi_ep_driver *mhi_drv = to_mhi_ep_driver(drv);
1717 const struct mhi_device_id *id;
1718
1719 /*
1720 * If the device is a controller type then there is no client driver
1721 * associated with it
1722 */
1723 if (mhi_dev->dev_type == MHI_DEVICE_CONTROLLER)
1724 return 0;
1725
1726 for (id = mhi_drv->id_table; id->chan[0]; id++)
1727 if (!strcmp(mhi_dev->name, id->chan)) {
1728 mhi_dev->id = id;
1729 return 1;
1730 }
1731
1732 return 0;
1733 };
1734
1735 const struct bus_type mhi_ep_bus_type = {
1736 .name = "mhi_ep",
1737 .dev_name = "mhi_ep",
1738 .match = mhi_ep_match,
1739 .uevent = mhi_ep_uevent,
1740 .probe = mhi_ep_probe,
1741 .remove = mhi_ep_remove,
1742 };
1743
mhi_ep_init(void)1744 static int __init mhi_ep_init(void)
1745 {
1746 return bus_register(&mhi_ep_bus_type);
1747 }
1748
mhi_ep_exit(void)1749 static void __exit mhi_ep_exit(void)
1750 {
1751 bus_unregister(&mhi_ep_bus_type);
1752 }
1753
1754 postcore_initcall(mhi_ep_init);
1755 module_exit(mhi_ep_exit);
1756
1757 MODULE_LICENSE("GPL v2");
1758 MODULE_DESCRIPTION("MHI Bus Endpoint stack");
1759 MODULE_AUTHOR("Manivannan Sadhasivam <manivannan.sadhasivam@linaro.org>");
1760