Bluetooth: hci_qca: Enhance retry logic in qca_setup
[linux-2.6-microblaze.git] / drivers / bluetooth / hci_qca.c
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  *  Bluetooth Software UART Qualcomm protocol
4  *
5  *  HCI_IBS (HCI In-Band Sleep) is Qualcomm's power management
6  *  protocol extension to H4.
7  *
8  *  Copyright (C) 2007 Texas Instruments, Inc.
9  *  Copyright (c) 2010, 2012, 2018 The Linux Foundation. All rights reserved.
10  *
11  *  Acknowledgements:
12  *  This file is based on hci_ll.c, which was...
13  *  Written by Ohad Ben-Cohen <ohad@bencohen.org>
14  *  which was in turn based on hci_h4.c, which was written
15  *  by Maxim Krasnyansky and Marcel Holtmann.
16  */
17
18 #include <linux/kernel.h>
19 #include <linux/clk.h>
20 #include <linux/completion.h>
21 #include <linux/debugfs.h>
22 #include <linux/delay.h>
23 #include <linux/devcoredump.h>
24 #include <linux/device.h>
25 #include <linux/gpio/consumer.h>
26 #include <linux/mod_devicetable.h>
27 #include <linux/module.h>
28 #include <linux/of_device.h>
29 #include <linux/acpi.h>
30 #include <linux/platform_device.h>
31 #include <linux/regulator/consumer.h>
32 #include <linux/serdev.h>
33 #include <linux/mutex.h>
34 #include <asm/unaligned.h>
35
36 #include <net/bluetooth/bluetooth.h>
37 #include <net/bluetooth/hci_core.h>
38
39 #include "hci_uart.h"
40 #include "btqca.h"
41
42 /* HCI_IBS protocol messages */
43 #define HCI_IBS_SLEEP_IND       0xFE
44 #define HCI_IBS_WAKE_IND        0xFD
45 #define HCI_IBS_WAKE_ACK        0xFC
46 #define HCI_MAX_IBS_SIZE        10
47
48 #define IBS_WAKE_RETRANS_TIMEOUT_MS     100
49 #define IBS_BTSOC_TX_IDLE_TIMEOUT_MS    200
50 #define IBS_HOST_TX_IDLE_TIMEOUT_MS     2000
51 #define CMD_TRANS_TIMEOUT_MS            100
52 #define MEMDUMP_TIMEOUT_MS              8000
53
54 /* susclk rate */
55 #define SUSCLK_RATE_32KHZ       32768
56
57 /* Controller debug log header */
58 #define QCA_DEBUG_HANDLE        0x2EDC
59
60 /* max retry count when init fails */
61 #define MAX_INIT_RETRIES 3
62
63 /* Controller dump header */
64 #define QCA_SSR_DUMP_HANDLE             0x0108
65 #define QCA_DUMP_PACKET_SIZE            255
66 #define QCA_LAST_SEQUENCE_NUM           0xFFFF
67 #define QCA_CRASHBYTE_PACKET_LEN        1096
68 #define QCA_MEMDUMP_BYTE                0xFB
69
70 enum qca_flags {
71         QCA_IBS_ENABLED,
72         QCA_DROP_VENDOR_EVENT,
73         QCA_SUSPENDING,
74         QCA_MEMDUMP_COLLECTION,
75         QCA_HW_ERROR_EVENT,
76         QCA_SSR_TRIGGERED
77 };
78
79 enum qca_capabilities {
80         QCA_CAP_WIDEBAND_SPEECH = BIT(0),
81         QCA_CAP_VALID_LE_STATES = BIT(1),
82 };
83
84 /* HCI_IBS transmit side sleep protocol states */
85 enum tx_ibs_states {
86         HCI_IBS_TX_ASLEEP,
87         HCI_IBS_TX_WAKING,
88         HCI_IBS_TX_AWAKE,
89 };
90
91 /* HCI_IBS receive side sleep protocol states */
92 enum rx_states {
93         HCI_IBS_RX_ASLEEP,
94         HCI_IBS_RX_AWAKE,
95 };
96
97 /* HCI_IBS transmit and receive side clock state vote */
98 enum hci_ibs_clock_state_vote {
99         HCI_IBS_VOTE_STATS_UPDATE,
100         HCI_IBS_TX_VOTE_CLOCK_ON,
101         HCI_IBS_TX_VOTE_CLOCK_OFF,
102         HCI_IBS_RX_VOTE_CLOCK_ON,
103         HCI_IBS_RX_VOTE_CLOCK_OFF,
104 };
105
106 /* Controller memory dump states */
107 enum qca_memdump_states {
108         QCA_MEMDUMP_IDLE,
109         QCA_MEMDUMP_COLLECTING,
110         QCA_MEMDUMP_COLLECTED,
111         QCA_MEMDUMP_TIMEOUT,
112 };
113
114 struct qca_memdump_data {
115         char *memdump_buf_head;
116         char *memdump_buf_tail;
117         u32 current_seq_no;
118         u32 received_dump;
119         u32 ram_dump_size;
120 };
121
122 struct qca_memdump_event_hdr {
123         __u8    evt;
124         __u8    plen;
125         __u16   opcode;
126         __u16   seq_no;
127         __u8    reserved;
128 } __packed;
129
130
131 struct qca_dump_size {
132         u32 dump_size;
133 } __packed;
134
135 struct qca_data {
136         struct hci_uart *hu;
137         struct sk_buff *rx_skb;
138         struct sk_buff_head txq;
139         struct sk_buff_head tx_wait_q;  /* HCI_IBS wait queue   */
140         struct sk_buff_head rx_memdump_q;       /* Memdump wait queue   */
141         spinlock_t hci_ibs_lock;        /* HCI_IBS state lock   */
142         u8 tx_ibs_state;        /* HCI_IBS transmit side power state*/
143         u8 rx_ibs_state;        /* HCI_IBS receive side power state */
144         bool tx_vote;           /* Clock must be on for TX */
145         bool rx_vote;           /* Clock must be on for RX */
146         struct timer_list tx_idle_timer;
147         u32 tx_idle_delay;
148         struct timer_list wake_retrans_timer;
149         u32 wake_retrans;
150         struct workqueue_struct *workqueue;
151         struct work_struct ws_awake_rx;
152         struct work_struct ws_awake_device;
153         struct work_struct ws_rx_vote_off;
154         struct work_struct ws_tx_vote_off;
155         struct work_struct ctrl_memdump_evt;
156         struct delayed_work ctrl_memdump_timeout;
157         struct qca_memdump_data *qca_memdump;
158         unsigned long flags;
159         struct completion drop_ev_comp;
160         wait_queue_head_t suspend_wait_q;
161         enum qca_memdump_states memdump_state;
162         struct mutex hci_memdump_lock;
163
164         /* For debugging purpose */
165         u64 ibs_sent_wacks;
166         u64 ibs_sent_slps;
167         u64 ibs_sent_wakes;
168         u64 ibs_recv_wacks;
169         u64 ibs_recv_slps;
170         u64 ibs_recv_wakes;
171         u64 vote_last_jif;
172         u32 vote_on_ms;
173         u32 vote_off_ms;
174         u64 tx_votes_on;
175         u64 rx_votes_on;
176         u64 tx_votes_off;
177         u64 rx_votes_off;
178         u64 votes_on;
179         u64 votes_off;
180 };
181
182 enum qca_speed_type {
183         QCA_INIT_SPEED = 1,
184         QCA_OPER_SPEED
185 };
186
187 /*
188  * Voltage regulator information required for configuring the
189  * QCA Bluetooth chipset
190  */
191 struct qca_vreg {
192         const char *name;
193         unsigned int load_uA;
194 };
195
196 struct qca_device_data {
197         enum qca_btsoc_type soc_type;
198         struct qca_vreg *vregs;
199         size_t num_vregs;
200         uint32_t capabilities;
201 };
202
203 /*
204  * Platform data for the QCA Bluetooth power driver.
205  */
206 struct qca_power {
207         struct device *dev;
208         struct regulator_bulk_data *vreg_bulk;
209         int num_vregs;
210         bool vregs_on;
211 };
212
213 struct qca_serdev {
214         struct hci_uart  serdev_hu;
215         struct gpio_desc *bt_en;
216         struct clk       *susclk;
217         enum qca_btsoc_type btsoc_type;
218         struct qca_power *bt_power;
219         u32 init_speed;
220         u32 oper_speed;
221         const char *firmware_name;
222 };
223
224 static int qca_regulator_enable(struct qca_serdev *qcadev);
225 static void qca_regulator_disable(struct qca_serdev *qcadev);
226 static void qca_power_shutdown(struct hci_uart *hu);
227 static int qca_power_off(struct hci_dev *hdev);
228 static void qca_controller_memdump(struct work_struct *work);
229
230 static enum qca_btsoc_type qca_soc_type(struct hci_uart *hu)
231 {
232         enum qca_btsoc_type soc_type;
233
234         if (hu->serdev) {
235                 struct qca_serdev *qsd = serdev_device_get_drvdata(hu->serdev);
236
237                 soc_type = qsd->btsoc_type;
238         } else {
239                 soc_type = QCA_ROME;
240         }
241
242         return soc_type;
243 }
244
245 static const char *qca_get_firmware_name(struct hci_uart *hu)
246 {
247         if (hu->serdev) {
248                 struct qca_serdev *qsd = serdev_device_get_drvdata(hu->serdev);
249
250                 return qsd->firmware_name;
251         } else {
252                 return NULL;
253         }
254 }
255
256 static void __serial_clock_on(struct tty_struct *tty)
257 {
258         /* TODO: Some chipset requires to enable UART clock on client
259          * side to save power consumption or manual work is required.
260          * Please put your code to control UART clock here if needed
261          */
262 }
263
264 static void __serial_clock_off(struct tty_struct *tty)
265 {
266         /* TODO: Some chipset requires to disable UART clock on client
267          * side to save power consumption or manual work is required.
268          * Please put your code to control UART clock off here if needed
269          */
270 }
271
272 /* serial_clock_vote needs to be called with the ibs lock held */
273 static void serial_clock_vote(unsigned long vote, struct hci_uart *hu)
274 {
275         struct qca_data *qca = hu->priv;
276         unsigned int diff;
277
278         bool old_vote = (qca->tx_vote | qca->rx_vote);
279         bool new_vote;
280
281         switch (vote) {
282         case HCI_IBS_VOTE_STATS_UPDATE:
283                 diff = jiffies_to_msecs(jiffies - qca->vote_last_jif);
284
285                 if (old_vote)
286                         qca->vote_off_ms += diff;
287                 else
288                         qca->vote_on_ms += diff;
289                 return;
290
291         case HCI_IBS_TX_VOTE_CLOCK_ON:
292                 qca->tx_vote = true;
293                 qca->tx_votes_on++;
294                 break;
295
296         case HCI_IBS_RX_VOTE_CLOCK_ON:
297                 qca->rx_vote = true;
298                 qca->rx_votes_on++;
299                 break;
300
301         case HCI_IBS_TX_VOTE_CLOCK_OFF:
302                 qca->tx_vote = false;
303                 qca->tx_votes_off++;
304                 break;
305
306         case HCI_IBS_RX_VOTE_CLOCK_OFF:
307                 qca->rx_vote = false;
308                 qca->rx_votes_off++;
309                 break;
310
311         default:
312                 BT_ERR("Voting irregularity");
313                 return;
314         }
315
316         new_vote = qca->rx_vote | qca->tx_vote;
317
318         if (new_vote != old_vote) {
319                 if (new_vote)
320                         __serial_clock_on(hu->tty);
321                 else
322                         __serial_clock_off(hu->tty);
323
324                 BT_DBG("Vote serial clock %s(%s)", new_vote ? "true" : "false",
325                        vote ? "true" : "false");
326
327                 diff = jiffies_to_msecs(jiffies - qca->vote_last_jif);
328
329                 if (new_vote) {
330                         qca->votes_on++;
331                         qca->vote_off_ms += diff;
332                 } else {
333                         qca->votes_off++;
334                         qca->vote_on_ms += diff;
335                 }
336                 qca->vote_last_jif = jiffies;
337         }
338 }
339
340 /* Builds and sends an HCI_IBS command packet.
341  * These are very simple packets with only 1 cmd byte.
342  */
343 static int send_hci_ibs_cmd(u8 cmd, struct hci_uart *hu)
344 {
345         int err = 0;
346         struct sk_buff *skb = NULL;
347         struct qca_data *qca = hu->priv;
348
349         BT_DBG("hu %p send hci ibs cmd 0x%x", hu, cmd);
350
351         skb = bt_skb_alloc(1, GFP_ATOMIC);
352         if (!skb) {
353                 BT_ERR("Failed to allocate memory for HCI_IBS packet");
354                 return -ENOMEM;
355         }
356
357         /* Assign HCI_IBS type */
358         skb_put_u8(skb, cmd);
359
360         skb_queue_tail(&qca->txq, skb);
361
362         return err;
363 }
364
365 static void qca_wq_awake_device(struct work_struct *work)
366 {
367         struct qca_data *qca = container_of(work, struct qca_data,
368                                             ws_awake_device);
369         struct hci_uart *hu = qca->hu;
370         unsigned long retrans_delay;
371         unsigned long flags;
372
373         BT_DBG("hu %p wq awake device", hu);
374
375         /* Vote for serial clock */
376         serial_clock_vote(HCI_IBS_TX_VOTE_CLOCK_ON, hu);
377
378         spin_lock_irqsave(&qca->hci_ibs_lock, flags);
379
380         /* Send wake indication to device */
381         if (send_hci_ibs_cmd(HCI_IBS_WAKE_IND, hu) < 0)
382                 BT_ERR("Failed to send WAKE to device");
383
384         qca->ibs_sent_wakes++;
385
386         /* Start retransmit timer */
387         retrans_delay = msecs_to_jiffies(qca->wake_retrans);
388         mod_timer(&qca->wake_retrans_timer, jiffies + retrans_delay);
389
390         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
391
392         /* Actually send the packets */
393         hci_uart_tx_wakeup(hu);
394 }
395
396 static void qca_wq_awake_rx(struct work_struct *work)
397 {
398         struct qca_data *qca = container_of(work, struct qca_data,
399                                             ws_awake_rx);
400         struct hci_uart *hu = qca->hu;
401         unsigned long flags;
402
403         BT_DBG("hu %p wq awake rx", hu);
404
405         serial_clock_vote(HCI_IBS_RX_VOTE_CLOCK_ON, hu);
406
407         spin_lock_irqsave(&qca->hci_ibs_lock, flags);
408         qca->rx_ibs_state = HCI_IBS_RX_AWAKE;
409
410         /* Always acknowledge device wake up,
411          * sending IBS message doesn't count as TX ON.
412          */
413         if (send_hci_ibs_cmd(HCI_IBS_WAKE_ACK, hu) < 0)
414                 BT_ERR("Failed to acknowledge device wake up");
415
416         qca->ibs_sent_wacks++;
417
418         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
419
420         /* Actually send the packets */
421         hci_uart_tx_wakeup(hu);
422 }
423
424 static void qca_wq_serial_rx_clock_vote_off(struct work_struct *work)
425 {
426         struct qca_data *qca = container_of(work, struct qca_data,
427                                             ws_rx_vote_off);
428         struct hci_uart *hu = qca->hu;
429
430         BT_DBG("hu %p rx clock vote off", hu);
431
432         serial_clock_vote(HCI_IBS_RX_VOTE_CLOCK_OFF, hu);
433 }
434
435 static void qca_wq_serial_tx_clock_vote_off(struct work_struct *work)
436 {
437         struct qca_data *qca = container_of(work, struct qca_data,
438                                             ws_tx_vote_off);
439         struct hci_uart *hu = qca->hu;
440
441         BT_DBG("hu %p tx clock vote off", hu);
442
443         /* Run HCI tx handling unlocked */
444         hci_uart_tx_wakeup(hu);
445
446         /* Now that message queued to tty driver, vote for tty clocks off.
447          * It is up to the tty driver to pend the clocks off until tx done.
448          */
449         serial_clock_vote(HCI_IBS_TX_VOTE_CLOCK_OFF, hu);
450 }
451
452 static void hci_ibs_tx_idle_timeout(struct timer_list *t)
453 {
454         struct qca_data *qca = from_timer(qca, t, tx_idle_timer);
455         struct hci_uart *hu = qca->hu;
456         unsigned long flags;
457
458         BT_DBG("hu %p idle timeout in %d state", hu, qca->tx_ibs_state);
459
460         spin_lock_irqsave_nested(&qca->hci_ibs_lock,
461                                  flags, SINGLE_DEPTH_NESTING);
462
463         switch (qca->tx_ibs_state) {
464         case HCI_IBS_TX_AWAKE:
465                 /* TX_IDLE, go to SLEEP */
466                 if (send_hci_ibs_cmd(HCI_IBS_SLEEP_IND, hu) < 0) {
467                         BT_ERR("Failed to send SLEEP to device");
468                         break;
469                 }
470                 qca->tx_ibs_state = HCI_IBS_TX_ASLEEP;
471                 qca->ibs_sent_slps++;
472                 queue_work(qca->workqueue, &qca->ws_tx_vote_off);
473                 break;
474
475         case HCI_IBS_TX_ASLEEP:
476         case HCI_IBS_TX_WAKING:
477         default:
478                 BT_ERR("Spurious timeout tx state %d", qca->tx_ibs_state);
479                 break;
480         }
481
482         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
483 }
484
485 static void hci_ibs_wake_retrans_timeout(struct timer_list *t)
486 {
487         struct qca_data *qca = from_timer(qca, t, wake_retrans_timer);
488         struct hci_uart *hu = qca->hu;
489         unsigned long flags, retrans_delay;
490         bool retransmit = false;
491
492         BT_DBG("hu %p wake retransmit timeout in %d state",
493                 hu, qca->tx_ibs_state);
494
495         spin_lock_irqsave_nested(&qca->hci_ibs_lock,
496                                  flags, SINGLE_DEPTH_NESTING);
497
498         /* Don't retransmit the HCI_IBS_WAKE_IND when suspending. */
499         if (test_bit(QCA_SUSPENDING, &qca->flags)) {
500                 spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
501                 return;
502         }
503
504         switch (qca->tx_ibs_state) {
505         case HCI_IBS_TX_WAKING:
506                 /* No WAKE_ACK, retransmit WAKE */
507                 retransmit = true;
508                 if (send_hci_ibs_cmd(HCI_IBS_WAKE_IND, hu) < 0) {
509                         BT_ERR("Failed to acknowledge device wake up");
510                         break;
511                 }
512                 qca->ibs_sent_wakes++;
513                 retrans_delay = msecs_to_jiffies(qca->wake_retrans);
514                 mod_timer(&qca->wake_retrans_timer, jiffies + retrans_delay);
515                 break;
516
517         case HCI_IBS_TX_ASLEEP:
518         case HCI_IBS_TX_AWAKE:
519         default:
520                 BT_ERR("Spurious timeout tx state %d", qca->tx_ibs_state);
521                 break;
522         }
523
524         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
525
526         if (retransmit)
527                 hci_uart_tx_wakeup(hu);
528 }
529
530
531 static void qca_controller_memdump_timeout(struct work_struct *work)
532 {
533         struct qca_data *qca = container_of(work, struct qca_data,
534                                         ctrl_memdump_timeout.work);
535         struct hci_uart *hu = qca->hu;
536
537         mutex_lock(&qca->hci_memdump_lock);
538         if (test_bit(QCA_MEMDUMP_COLLECTION, &qca->flags)) {
539                 qca->memdump_state = QCA_MEMDUMP_TIMEOUT;
540                 if (!test_bit(QCA_HW_ERROR_EVENT, &qca->flags)) {
541                         /* Inject hw error event to reset the device
542                          * and driver.
543                          */
544                         hci_reset_dev(hu->hdev);
545                 }
546         }
547
548         mutex_unlock(&qca->hci_memdump_lock);
549 }
550
551
552 /* Initialize protocol */
553 static int qca_open(struct hci_uart *hu)
554 {
555         struct qca_serdev *qcadev;
556         struct qca_data *qca;
557
558         BT_DBG("hu %p qca_open", hu);
559
560         if (!hci_uart_has_flow_control(hu))
561                 return -EOPNOTSUPP;
562
563         qca = kzalloc(sizeof(struct qca_data), GFP_KERNEL);
564         if (!qca)
565                 return -ENOMEM;
566
567         skb_queue_head_init(&qca->txq);
568         skb_queue_head_init(&qca->tx_wait_q);
569         skb_queue_head_init(&qca->rx_memdump_q);
570         spin_lock_init(&qca->hci_ibs_lock);
571         mutex_init(&qca->hci_memdump_lock);
572         qca->workqueue = alloc_ordered_workqueue("qca_wq", 0);
573         if (!qca->workqueue) {
574                 BT_ERR("QCA Workqueue not initialized properly");
575                 kfree(qca);
576                 return -ENOMEM;
577         }
578
579         INIT_WORK(&qca->ws_awake_rx, qca_wq_awake_rx);
580         INIT_WORK(&qca->ws_awake_device, qca_wq_awake_device);
581         INIT_WORK(&qca->ws_rx_vote_off, qca_wq_serial_rx_clock_vote_off);
582         INIT_WORK(&qca->ws_tx_vote_off, qca_wq_serial_tx_clock_vote_off);
583         INIT_WORK(&qca->ctrl_memdump_evt, qca_controller_memdump);
584         INIT_DELAYED_WORK(&qca->ctrl_memdump_timeout,
585                           qca_controller_memdump_timeout);
586         init_waitqueue_head(&qca->suspend_wait_q);
587
588         qca->hu = hu;
589         init_completion(&qca->drop_ev_comp);
590
591         /* Assume we start with both sides asleep -- extra wakes OK */
592         qca->tx_ibs_state = HCI_IBS_TX_ASLEEP;
593         qca->rx_ibs_state = HCI_IBS_RX_ASLEEP;
594
595         qca->vote_last_jif = jiffies;
596
597         hu->priv = qca;
598
599         if (hu->serdev) {
600                 qcadev = serdev_device_get_drvdata(hu->serdev);
601
602                 if (qca_is_wcn399x(qcadev->btsoc_type))
603                         hu->init_speed = qcadev->init_speed;
604
605                 if (qcadev->oper_speed)
606                         hu->oper_speed = qcadev->oper_speed;
607         }
608
609         timer_setup(&qca->wake_retrans_timer, hci_ibs_wake_retrans_timeout, 0);
610         qca->wake_retrans = IBS_WAKE_RETRANS_TIMEOUT_MS;
611
612         timer_setup(&qca->tx_idle_timer, hci_ibs_tx_idle_timeout, 0);
613         qca->tx_idle_delay = IBS_HOST_TX_IDLE_TIMEOUT_MS;
614
615         BT_DBG("HCI_UART_QCA open, tx_idle_delay=%u, wake_retrans=%u",
616                qca->tx_idle_delay, qca->wake_retrans);
617
618         return 0;
619 }
620
621 static void qca_debugfs_init(struct hci_dev *hdev)
622 {
623         struct hci_uart *hu = hci_get_drvdata(hdev);
624         struct qca_data *qca = hu->priv;
625         struct dentry *ibs_dir;
626         umode_t mode;
627
628         if (!hdev->debugfs)
629                 return;
630
631         ibs_dir = debugfs_create_dir("ibs", hdev->debugfs);
632
633         /* read only */
634         mode = S_IRUGO;
635         debugfs_create_u8("tx_ibs_state", mode, ibs_dir, &qca->tx_ibs_state);
636         debugfs_create_u8("rx_ibs_state", mode, ibs_dir, &qca->rx_ibs_state);
637         debugfs_create_u64("ibs_sent_sleeps", mode, ibs_dir,
638                            &qca->ibs_sent_slps);
639         debugfs_create_u64("ibs_sent_wakes", mode, ibs_dir,
640                            &qca->ibs_sent_wakes);
641         debugfs_create_u64("ibs_sent_wake_acks", mode, ibs_dir,
642                            &qca->ibs_sent_wacks);
643         debugfs_create_u64("ibs_recv_sleeps", mode, ibs_dir,
644                            &qca->ibs_recv_slps);
645         debugfs_create_u64("ibs_recv_wakes", mode, ibs_dir,
646                            &qca->ibs_recv_wakes);
647         debugfs_create_u64("ibs_recv_wake_acks", mode, ibs_dir,
648                            &qca->ibs_recv_wacks);
649         debugfs_create_bool("tx_vote", mode, ibs_dir, &qca->tx_vote);
650         debugfs_create_u64("tx_votes_on", mode, ibs_dir, &qca->tx_votes_on);
651         debugfs_create_u64("tx_votes_off", mode, ibs_dir, &qca->tx_votes_off);
652         debugfs_create_bool("rx_vote", mode, ibs_dir, &qca->rx_vote);
653         debugfs_create_u64("rx_votes_on", mode, ibs_dir, &qca->rx_votes_on);
654         debugfs_create_u64("rx_votes_off", mode, ibs_dir, &qca->rx_votes_off);
655         debugfs_create_u64("votes_on", mode, ibs_dir, &qca->votes_on);
656         debugfs_create_u64("votes_off", mode, ibs_dir, &qca->votes_off);
657         debugfs_create_u32("vote_on_ms", mode, ibs_dir, &qca->vote_on_ms);
658         debugfs_create_u32("vote_off_ms", mode, ibs_dir, &qca->vote_off_ms);
659
660         /* read/write */
661         mode = S_IRUGO | S_IWUSR;
662         debugfs_create_u32("wake_retrans", mode, ibs_dir, &qca->wake_retrans);
663         debugfs_create_u32("tx_idle_delay", mode, ibs_dir,
664                            &qca->tx_idle_delay);
665 }
666
667 /* Flush protocol data */
668 static int qca_flush(struct hci_uart *hu)
669 {
670         struct qca_data *qca = hu->priv;
671
672         BT_DBG("hu %p qca flush", hu);
673
674         skb_queue_purge(&qca->tx_wait_q);
675         skb_queue_purge(&qca->txq);
676
677         return 0;
678 }
679
680 /* Close protocol */
681 static int qca_close(struct hci_uart *hu)
682 {
683         struct qca_data *qca = hu->priv;
684
685         BT_DBG("hu %p qca close", hu);
686
687         serial_clock_vote(HCI_IBS_VOTE_STATS_UPDATE, hu);
688
689         skb_queue_purge(&qca->tx_wait_q);
690         skb_queue_purge(&qca->txq);
691         skb_queue_purge(&qca->rx_memdump_q);
692         del_timer(&qca->tx_idle_timer);
693         del_timer(&qca->wake_retrans_timer);
694         destroy_workqueue(qca->workqueue);
695         qca->hu = NULL;
696
697         kfree_skb(qca->rx_skb);
698
699         hu->priv = NULL;
700
701         kfree(qca);
702
703         return 0;
704 }
705
706 /* Called upon a wake-up-indication from the device.
707  */
708 static void device_want_to_wakeup(struct hci_uart *hu)
709 {
710         unsigned long flags;
711         struct qca_data *qca = hu->priv;
712
713         BT_DBG("hu %p want to wake up", hu);
714
715         spin_lock_irqsave(&qca->hci_ibs_lock, flags);
716
717         qca->ibs_recv_wakes++;
718
719         /* Don't wake the rx up when suspending. */
720         if (test_bit(QCA_SUSPENDING, &qca->flags)) {
721                 spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
722                 return;
723         }
724
725         switch (qca->rx_ibs_state) {
726         case HCI_IBS_RX_ASLEEP:
727                 /* Make sure clock is on - we may have turned clock off since
728                  * receiving the wake up indicator awake rx clock.
729                  */
730                 queue_work(qca->workqueue, &qca->ws_awake_rx);
731                 spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
732                 return;
733
734         case HCI_IBS_RX_AWAKE:
735                 /* Always acknowledge device wake up,
736                  * sending IBS message doesn't count as TX ON.
737                  */
738                 if (send_hci_ibs_cmd(HCI_IBS_WAKE_ACK, hu) < 0) {
739                         BT_ERR("Failed to acknowledge device wake up");
740                         break;
741                 }
742                 qca->ibs_sent_wacks++;
743                 break;
744
745         default:
746                 /* Any other state is illegal */
747                 BT_ERR("Received HCI_IBS_WAKE_IND in rx state %d",
748                        qca->rx_ibs_state);
749                 break;
750         }
751
752         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
753
754         /* Actually send the packets */
755         hci_uart_tx_wakeup(hu);
756 }
757
758 /* Called upon a sleep-indication from the device.
759  */
760 static void device_want_to_sleep(struct hci_uart *hu)
761 {
762         unsigned long flags;
763         struct qca_data *qca = hu->priv;
764
765         BT_DBG("hu %p want to sleep in %d state", hu, qca->rx_ibs_state);
766
767         spin_lock_irqsave(&qca->hci_ibs_lock, flags);
768
769         qca->ibs_recv_slps++;
770
771         switch (qca->rx_ibs_state) {
772         case HCI_IBS_RX_AWAKE:
773                 /* Update state */
774                 qca->rx_ibs_state = HCI_IBS_RX_ASLEEP;
775                 /* Vote off rx clock under workqueue */
776                 queue_work(qca->workqueue, &qca->ws_rx_vote_off);
777                 break;
778
779         case HCI_IBS_RX_ASLEEP:
780                 break;
781
782         default:
783                 /* Any other state is illegal */
784                 BT_ERR("Received HCI_IBS_SLEEP_IND in rx state %d",
785                        qca->rx_ibs_state);
786                 break;
787         }
788
789         wake_up_interruptible(&qca->suspend_wait_q);
790
791         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
792 }
793
794 /* Called upon wake-up-acknowledgement from the device
795  */
796 static void device_woke_up(struct hci_uart *hu)
797 {
798         unsigned long flags, idle_delay;
799         struct qca_data *qca = hu->priv;
800         struct sk_buff *skb = NULL;
801
802         BT_DBG("hu %p woke up", hu);
803
804         spin_lock_irqsave(&qca->hci_ibs_lock, flags);
805
806         qca->ibs_recv_wacks++;
807
808         /* Don't react to the wake-up-acknowledgment when suspending. */
809         if (test_bit(QCA_SUSPENDING, &qca->flags)) {
810                 spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
811                 return;
812         }
813
814         switch (qca->tx_ibs_state) {
815         case HCI_IBS_TX_AWAKE:
816                 /* Expect one if we send 2 WAKEs */
817                 BT_DBG("Received HCI_IBS_WAKE_ACK in tx state %d",
818                        qca->tx_ibs_state);
819                 break;
820
821         case HCI_IBS_TX_WAKING:
822                 /* Send pending packets */
823                 while ((skb = skb_dequeue(&qca->tx_wait_q)))
824                         skb_queue_tail(&qca->txq, skb);
825
826                 /* Switch timers and change state to HCI_IBS_TX_AWAKE */
827                 del_timer(&qca->wake_retrans_timer);
828                 idle_delay = msecs_to_jiffies(qca->tx_idle_delay);
829                 mod_timer(&qca->tx_idle_timer, jiffies + idle_delay);
830                 qca->tx_ibs_state = HCI_IBS_TX_AWAKE;
831                 break;
832
833         case HCI_IBS_TX_ASLEEP:
834         default:
835                 BT_ERR("Received HCI_IBS_WAKE_ACK in tx state %d",
836                        qca->tx_ibs_state);
837                 break;
838         }
839
840         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
841
842         /* Actually send the packets */
843         hci_uart_tx_wakeup(hu);
844 }
845
846 /* Enqueue frame for transmittion (padding, crc, etc) may be called from
847  * two simultaneous tasklets.
848  */
849 static int qca_enqueue(struct hci_uart *hu, struct sk_buff *skb)
850 {
851         unsigned long flags = 0, idle_delay;
852         struct qca_data *qca = hu->priv;
853
854         BT_DBG("hu %p qca enq skb %p tx_ibs_state %d", hu, skb,
855                qca->tx_ibs_state);
856
857         if (test_bit(QCA_SSR_TRIGGERED, &qca->flags)) {
858                 /* As SSR is in progress, ignore the packets */
859                 bt_dev_dbg(hu->hdev, "SSR is in progress");
860                 kfree_skb(skb);
861                 return 0;
862         }
863
864         /* Prepend skb with frame type */
865         memcpy(skb_push(skb, 1), &hci_skb_pkt_type(skb), 1);
866
867         spin_lock_irqsave(&qca->hci_ibs_lock, flags);
868
869         /* Don't go to sleep in middle of patch download or
870          * Out-Of-Band(GPIOs control) sleep is selected.
871          * Don't wake the device up when suspending.
872          */
873         if (!test_bit(QCA_IBS_ENABLED, &qca->flags) ||
874             test_bit(QCA_SUSPENDING, &qca->flags)) {
875                 skb_queue_tail(&qca->txq, skb);
876                 spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
877                 return 0;
878         }
879
880         /* Act according to current state */
881         switch (qca->tx_ibs_state) {
882         case HCI_IBS_TX_AWAKE:
883                 BT_DBG("Device awake, sending normally");
884                 skb_queue_tail(&qca->txq, skb);
885                 idle_delay = msecs_to_jiffies(qca->tx_idle_delay);
886                 mod_timer(&qca->tx_idle_timer, jiffies + idle_delay);
887                 break;
888
889         case HCI_IBS_TX_ASLEEP:
890                 BT_DBG("Device asleep, waking up and queueing packet");
891                 /* Save packet for later */
892                 skb_queue_tail(&qca->tx_wait_q, skb);
893
894                 qca->tx_ibs_state = HCI_IBS_TX_WAKING;
895                 /* Schedule a work queue to wake up device */
896                 queue_work(qca->workqueue, &qca->ws_awake_device);
897                 break;
898
899         case HCI_IBS_TX_WAKING:
900                 BT_DBG("Device waking up, queueing packet");
901                 /* Transient state; just keep packet for later */
902                 skb_queue_tail(&qca->tx_wait_q, skb);
903                 break;
904
905         default:
906                 BT_ERR("Illegal tx state: %d (losing packet)",
907                        qca->tx_ibs_state);
908                 kfree_skb(skb);
909                 break;
910         }
911
912         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
913
914         return 0;
915 }
916
917 static int qca_ibs_sleep_ind(struct hci_dev *hdev, struct sk_buff *skb)
918 {
919         struct hci_uart *hu = hci_get_drvdata(hdev);
920
921         BT_DBG("hu %p recv hci ibs cmd 0x%x", hu, HCI_IBS_SLEEP_IND);
922
923         device_want_to_sleep(hu);
924
925         kfree_skb(skb);
926         return 0;
927 }
928
929 static int qca_ibs_wake_ind(struct hci_dev *hdev, struct sk_buff *skb)
930 {
931         struct hci_uart *hu = hci_get_drvdata(hdev);
932
933         BT_DBG("hu %p recv hci ibs cmd 0x%x", hu, HCI_IBS_WAKE_IND);
934
935         device_want_to_wakeup(hu);
936
937         kfree_skb(skb);
938         return 0;
939 }
940
941 static int qca_ibs_wake_ack(struct hci_dev *hdev, struct sk_buff *skb)
942 {
943         struct hci_uart *hu = hci_get_drvdata(hdev);
944
945         BT_DBG("hu %p recv hci ibs cmd 0x%x", hu, HCI_IBS_WAKE_ACK);
946
947         device_woke_up(hu);
948
949         kfree_skb(skb);
950         return 0;
951 }
952
953 static int qca_recv_acl_data(struct hci_dev *hdev, struct sk_buff *skb)
954 {
955         /* We receive debug logs from chip as an ACL packets.
956          * Instead of sending the data to ACL to decode the
957          * received data, we are pushing them to the above layers
958          * as a diagnostic packet.
959          */
960         if (get_unaligned_le16(skb->data) == QCA_DEBUG_HANDLE)
961                 return hci_recv_diag(hdev, skb);
962
963         return hci_recv_frame(hdev, skb);
964 }
965
966 static void qca_controller_memdump(struct work_struct *work)
967 {
968         struct qca_data *qca = container_of(work, struct qca_data,
969                                             ctrl_memdump_evt);
970         struct hci_uart *hu = qca->hu;
971         struct sk_buff *skb;
972         struct qca_memdump_event_hdr *cmd_hdr;
973         struct qca_memdump_data *qca_memdump = qca->qca_memdump;
974         struct qca_dump_size *dump;
975         char *memdump_buf;
976         char nullBuff[QCA_DUMP_PACKET_SIZE] = { 0 };
977         u16 seq_no;
978         u32 dump_size;
979         u32 rx_size;
980         enum qca_btsoc_type soc_type = qca_soc_type(hu);
981
982         while ((skb = skb_dequeue(&qca->rx_memdump_q))) {
983
984                 mutex_lock(&qca->hci_memdump_lock);
985                 /* Skip processing the received packets if timeout detected
986                  * or memdump collection completed.
987                  */
988                 if (qca->memdump_state == QCA_MEMDUMP_TIMEOUT ||
989                     qca->memdump_state == QCA_MEMDUMP_COLLECTED) {
990                         mutex_unlock(&qca->hci_memdump_lock);
991                         return;
992                 }
993
994                 if (!qca_memdump) {
995                         qca_memdump = kzalloc(sizeof(struct qca_memdump_data),
996                                               GFP_ATOMIC);
997                         if (!qca_memdump) {
998                                 mutex_unlock(&qca->hci_memdump_lock);
999                                 return;
1000                         }
1001
1002                         qca->qca_memdump = qca_memdump;
1003                 }
1004
1005                 qca->memdump_state = QCA_MEMDUMP_COLLECTING;
1006                 cmd_hdr = (void *) skb->data;
1007                 seq_no = __le16_to_cpu(cmd_hdr->seq_no);
1008                 skb_pull(skb, sizeof(struct qca_memdump_event_hdr));
1009
1010                 if (!seq_no) {
1011
1012                         /* This is the first frame of memdump packet from
1013                          * the controller, Disable IBS to recevie dump
1014                          * with out any interruption, ideally time required for
1015                          * the controller to send the dump is 8 seconds. let us
1016                          * start timer to handle this asynchronous activity.
1017                          */
1018                         clear_bit(QCA_IBS_ENABLED, &qca->flags);
1019                         set_bit(QCA_MEMDUMP_COLLECTION, &qca->flags);
1020                         dump = (void *) skb->data;
1021                         dump_size = __le32_to_cpu(dump->dump_size);
1022                         if (!(dump_size)) {
1023                                 bt_dev_err(hu->hdev, "Rx invalid memdump size");
1024                                 kfree_skb(skb);
1025                                 mutex_unlock(&qca->hci_memdump_lock);
1026                                 return;
1027                         }
1028
1029                         bt_dev_info(hu->hdev, "QCA collecting dump of size:%u",
1030                                     dump_size);
1031                         queue_delayed_work(qca->workqueue,
1032                                            &qca->ctrl_memdump_timeout,
1033                                            msecs_to_jiffies(MEMDUMP_TIMEOUT_MS)
1034                                           );
1035
1036                         skb_pull(skb, sizeof(dump_size));
1037                         memdump_buf = vmalloc(dump_size);
1038                         qca_memdump->ram_dump_size = dump_size;
1039                         qca_memdump->memdump_buf_head = memdump_buf;
1040                         qca_memdump->memdump_buf_tail = memdump_buf;
1041                 }
1042
1043                 memdump_buf = qca_memdump->memdump_buf_tail;
1044
1045                 /* If sequence no 0 is missed then there is no point in
1046                  * accepting the other sequences.
1047                  */
1048                 if (!memdump_buf) {
1049                         bt_dev_err(hu->hdev, "QCA: Discarding other packets");
1050                         kfree(qca_memdump);
1051                         kfree_skb(skb);
1052                         qca->qca_memdump = NULL;
1053                         mutex_unlock(&qca->hci_memdump_lock);
1054                         return;
1055                 }
1056
1057                 /* There could be chance of missing some packets from
1058                  * the controller. In such cases let us store the dummy
1059                  * packets in the buffer.
1060                  */
1061                 /* For QCA6390, controller does not lost packets but
1062                  * sequence number field of packat sometimes has error
1063                  * bits, so skip this checking for missing packet.
1064                  */
1065                 while ((seq_no > qca_memdump->current_seq_no + 1) &&
1066                        (soc_type != QCA_QCA6390) &&
1067                        seq_no != QCA_LAST_SEQUENCE_NUM) {
1068                         bt_dev_err(hu->hdev, "QCA controller missed packet:%d",
1069                                    qca_memdump->current_seq_no);
1070                         rx_size = qca_memdump->received_dump;
1071                         rx_size += QCA_DUMP_PACKET_SIZE;
1072                         if (rx_size > qca_memdump->ram_dump_size) {
1073                                 bt_dev_err(hu->hdev,
1074                                            "QCA memdump received %d, no space for missed packet",
1075                                            qca_memdump->received_dump);
1076                                 break;
1077                         }
1078                         memcpy(memdump_buf, nullBuff, QCA_DUMP_PACKET_SIZE);
1079                         memdump_buf = memdump_buf + QCA_DUMP_PACKET_SIZE;
1080                         qca_memdump->received_dump += QCA_DUMP_PACKET_SIZE;
1081                         qca_memdump->current_seq_no++;
1082                 }
1083
1084                 rx_size = qca_memdump->received_dump + skb->len;
1085                 if (rx_size <= qca_memdump->ram_dump_size) {
1086                         if ((seq_no != QCA_LAST_SEQUENCE_NUM) &&
1087                             (seq_no != qca_memdump->current_seq_no))
1088                                 bt_dev_err(hu->hdev,
1089                                            "QCA memdump unexpected packet %d",
1090                                            seq_no);
1091                         bt_dev_dbg(hu->hdev,
1092                                    "QCA memdump packet %d with length %d",
1093                                    seq_no, skb->len);
1094                         memcpy(memdump_buf, (unsigned char *)skb->data,
1095                                skb->len);
1096                         memdump_buf = memdump_buf + skb->len;
1097                         qca_memdump->memdump_buf_tail = memdump_buf;
1098                         qca_memdump->current_seq_no = seq_no + 1;
1099                         qca_memdump->received_dump += skb->len;
1100                 } else {
1101                         bt_dev_err(hu->hdev,
1102                                    "QCA memdump received %d, no space for packet %d",
1103                                    qca_memdump->received_dump, seq_no);
1104                 }
1105                 qca->qca_memdump = qca_memdump;
1106                 kfree_skb(skb);
1107                 if (seq_no == QCA_LAST_SEQUENCE_NUM) {
1108                         bt_dev_info(hu->hdev,
1109                                     "QCA memdump Done, received %d, total %d",
1110                                     qca_memdump->received_dump,
1111                                     qca_memdump->ram_dump_size);
1112                         memdump_buf = qca_memdump->memdump_buf_head;
1113                         dev_coredumpv(&hu->serdev->dev, memdump_buf,
1114                                       qca_memdump->received_dump, GFP_KERNEL);
1115                         cancel_delayed_work(&qca->ctrl_memdump_timeout);
1116                         kfree(qca->qca_memdump);
1117                         qca->qca_memdump = NULL;
1118                         qca->memdump_state = QCA_MEMDUMP_COLLECTED;
1119                         clear_bit(QCA_MEMDUMP_COLLECTION, &qca->flags);
1120                 }
1121
1122                 mutex_unlock(&qca->hci_memdump_lock);
1123         }
1124
1125 }
1126
1127 static int qca_controller_memdump_event(struct hci_dev *hdev,
1128                                         struct sk_buff *skb)
1129 {
1130         struct hci_uart *hu = hci_get_drvdata(hdev);
1131         struct qca_data *qca = hu->priv;
1132
1133         set_bit(QCA_SSR_TRIGGERED, &qca->flags);
1134         skb_queue_tail(&qca->rx_memdump_q, skb);
1135         queue_work(qca->workqueue, &qca->ctrl_memdump_evt);
1136
1137         return 0;
1138 }
1139
1140 static int qca_recv_event(struct hci_dev *hdev, struct sk_buff *skb)
1141 {
1142         struct hci_uart *hu = hci_get_drvdata(hdev);
1143         struct qca_data *qca = hu->priv;
1144
1145         if (test_bit(QCA_DROP_VENDOR_EVENT, &qca->flags)) {
1146                 struct hci_event_hdr *hdr = (void *)skb->data;
1147
1148                 /* For the WCN3990 the vendor command for a baudrate change
1149                  * isn't sent as synchronous HCI command, because the
1150                  * controller sends the corresponding vendor event with the
1151                  * new baudrate. The event is received and properly decoded
1152                  * after changing the baudrate of the host port. It needs to
1153                  * be dropped, otherwise it can be misinterpreted as
1154                  * response to a later firmware download command (also a
1155                  * vendor command).
1156                  */
1157
1158                 if (hdr->evt == HCI_EV_VENDOR)
1159                         complete(&qca->drop_ev_comp);
1160
1161                 kfree_skb(skb);
1162
1163                 return 0;
1164         }
1165         /* We receive chip memory dump as an event packet, With a dedicated
1166          * handler followed by a hardware error event. When this event is
1167          * received we store dump into a file before closing hci. This
1168          * dump will help in triaging the issues.
1169          */
1170         if ((skb->data[0] == HCI_VENDOR_PKT) &&
1171             (get_unaligned_be16(skb->data + 2) == QCA_SSR_DUMP_HANDLE))
1172                 return qca_controller_memdump_event(hdev, skb);
1173
1174         return hci_recv_frame(hdev, skb);
1175 }
1176
1177 #define QCA_IBS_SLEEP_IND_EVENT \
1178         .type = HCI_IBS_SLEEP_IND, \
1179         .hlen = 0, \
1180         .loff = 0, \
1181         .lsize = 0, \
1182         .maxlen = HCI_MAX_IBS_SIZE
1183
1184 #define QCA_IBS_WAKE_IND_EVENT \
1185         .type = HCI_IBS_WAKE_IND, \
1186         .hlen = 0, \
1187         .loff = 0, \
1188         .lsize = 0, \
1189         .maxlen = HCI_MAX_IBS_SIZE
1190
1191 #define QCA_IBS_WAKE_ACK_EVENT \
1192         .type = HCI_IBS_WAKE_ACK, \
1193         .hlen = 0, \
1194         .loff = 0, \
1195         .lsize = 0, \
1196         .maxlen = HCI_MAX_IBS_SIZE
1197
1198 static const struct h4_recv_pkt qca_recv_pkts[] = {
1199         { H4_RECV_ACL,             .recv = qca_recv_acl_data },
1200         { H4_RECV_SCO,             .recv = hci_recv_frame    },
1201         { H4_RECV_EVENT,           .recv = qca_recv_event    },
1202         { QCA_IBS_WAKE_IND_EVENT,  .recv = qca_ibs_wake_ind  },
1203         { QCA_IBS_WAKE_ACK_EVENT,  .recv = qca_ibs_wake_ack  },
1204         { QCA_IBS_SLEEP_IND_EVENT, .recv = qca_ibs_sleep_ind },
1205 };
1206
1207 static int qca_recv(struct hci_uart *hu, const void *data, int count)
1208 {
1209         struct qca_data *qca = hu->priv;
1210
1211         if (!test_bit(HCI_UART_REGISTERED, &hu->flags))
1212                 return -EUNATCH;
1213
1214         qca->rx_skb = h4_recv_buf(hu->hdev, qca->rx_skb, data, count,
1215                                   qca_recv_pkts, ARRAY_SIZE(qca_recv_pkts));
1216         if (IS_ERR(qca->rx_skb)) {
1217                 int err = PTR_ERR(qca->rx_skb);
1218                 bt_dev_err(hu->hdev, "Frame reassembly failed (%d)", err);
1219                 qca->rx_skb = NULL;
1220                 return err;
1221         }
1222
1223         return count;
1224 }
1225
1226 static struct sk_buff *qca_dequeue(struct hci_uart *hu)
1227 {
1228         struct qca_data *qca = hu->priv;
1229
1230         return skb_dequeue(&qca->txq);
1231 }
1232
1233 static uint8_t qca_get_baudrate_value(int speed)
1234 {
1235         switch (speed) {
1236         case 9600:
1237                 return QCA_BAUDRATE_9600;
1238         case 19200:
1239                 return QCA_BAUDRATE_19200;
1240         case 38400:
1241                 return QCA_BAUDRATE_38400;
1242         case 57600:
1243                 return QCA_BAUDRATE_57600;
1244         case 115200:
1245                 return QCA_BAUDRATE_115200;
1246         case 230400:
1247                 return QCA_BAUDRATE_230400;
1248         case 460800:
1249                 return QCA_BAUDRATE_460800;
1250         case 500000:
1251                 return QCA_BAUDRATE_500000;
1252         case 921600:
1253                 return QCA_BAUDRATE_921600;
1254         case 1000000:
1255                 return QCA_BAUDRATE_1000000;
1256         case 2000000:
1257                 return QCA_BAUDRATE_2000000;
1258         case 3000000:
1259                 return QCA_BAUDRATE_3000000;
1260         case 3200000:
1261                 return QCA_BAUDRATE_3200000;
1262         case 3500000:
1263                 return QCA_BAUDRATE_3500000;
1264         default:
1265                 return QCA_BAUDRATE_115200;
1266         }
1267 }
1268
1269 static int qca_set_baudrate(struct hci_dev *hdev, uint8_t baudrate)
1270 {
1271         struct hci_uart *hu = hci_get_drvdata(hdev);
1272         struct qca_data *qca = hu->priv;
1273         struct sk_buff *skb;
1274         u8 cmd[] = { 0x01, 0x48, 0xFC, 0x01, 0x00 };
1275
1276         if (baudrate > QCA_BAUDRATE_3200000)
1277                 return -EINVAL;
1278
1279         cmd[4] = baudrate;
1280
1281         skb = bt_skb_alloc(sizeof(cmd), GFP_KERNEL);
1282         if (!skb) {
1283                 bt_dev_err(hdev, "Failed to allocate baudrate packet");
1284                 return -ENOMEM;
1285         }
1286
1287         /* Assign commands to change baudrate and packet type. */
1288         skb_put_data(skb, cmd, sizeof(cmd));
1289         hci_skb_pkt_type(skb) = HCI_COMMAND_PKT;
1290
1291         skb_queue_tail(&qca->txq, skb);
1292         hci_uart_tx_wakeup(hu);
1293
1294         /* Wait for the baudrate change request to be sent */
1295
1296         while (!skb_queue_empty(&qca->txq))
1297                 usleep_range(100, 200);
1298
1299         if (hu->serdev)
1300                 serdev_device_wait_until_sent(hu->serdev,
1301                       msecs_to_jiffies(CMD_TRANS_TIMEOUT_MS));
1302
1303         /* Give the controller time to process the request */
1304         if (qca_is_wcn399x(qca_soc_type(hu)))
1305                 msleep(10);
1306         else
1307                 msleep(300);
1308
1309         return 0;
1310 }
1311
1312 static inline void host_set_baudrate(struct hci_uart *hu, unsigned int speed)
1313 {
1314         if (hu->serdev)
1315                 serdev_device_set_baudrate(hu->serdev, speed);
1316         else
1317                 hci_uart_set_baudrate(hu, speed);
1318 }
1319
1320 static int qca_send_power_pulse(struct hci_uart *hu, bool on)
1321 {
1322         int ret;
1323         int timeout = msecs_to_jiffies(CMD_TRANS_TIMEOUT_MS);
1324         u8 cmd = on ? QCA_WCN3990_POWERON_PULSE : QCA_WCN3990_POWEROFF_PULSE;
1325
1326         /* These power pulses are single byte command which are sent
1327          * at required baudrate to wcn3990. On wcn3990, we have an external
1328          * circuit at Tx pin which decodes the pulse sent at specific baudrate.
1329          * For example, wcn3990 supports RF COEX antenna for both Wi-Fi/BT
1330          * and also we use the same power inputs to turn on and off for
1331          * Wi-Fi/BT. Powering up the power sources will not enable BT, until
1332          * we send a power on pulse at 115200 bps. This algorithm will help to
1333          * save power. Disabling hardware flow control is mandatory while
1334          * sending power pulses to SoC.
1335          */
1336         bt_dev_dbg(hu->hdev, "sending power pulse %02x to controller", cmd);
1337
1338         serdev_device_write_flush(hu->serdev);
1339         hci_uart_set_flow_control(hu, true);
1340         ret = serdev_device_write_buf(hu->serdev, &cmd, sizeof(cmd));
1341         if (ret < 0) {
1342                 bt_dev_err(hu->hdev, "failed to send power pulse %02x", cmd);
1343                 return ret;
1344         }
1345
1346         serdev_device_wait_until_sent(hu->serdev, timeout);
1347         hci_uart_set_flow_control(hu, false);
1348
1349         /* Give to controller time to boot/shutdown */
1350         if (on)
1351                 msleep(100);
1352         else
1353                 msleep(10);
1354
1355         return 0;
1356 }
1357
1358 static unsigned int qca_get_speed(struct hci_uart *hu,
1359                                   enum qca_speed_type speed_type)
1360 {
1361         unsigned int speed = 0;
1362
1363         if (speed_type == QCA_INIT_SPEED) {
1364                 if (hu->init_speed)
1365                         speed = hu->init_speed;
1366                 else if (hu->proto->init_speed)
1367                         speed = hu->proto->init_speed;
1368         } else {
1369                 if (hu->oper_speed)
1370                         speed = hu->oper_speed;
1371                 else if (hu->proto->oper_speed)
1372                         speed = hu->proto->oper_speed;
1373         }
1374
1375         return speed;
1376 }
1377
1378 static int qca_check_speeds(struct hci_uart *hu)
1379 {
1380         if (qca_is_wcn399x(qca_soc_type(hu))) {
1381                 if (!qca_get_speed(hu, QCA_INIT_SPEED) &&
1382                     !qca_get_speed(hu, QCA_OPER_SPEED))
1383                         return -EINVAL;
1384         } else {
1385                 if (!qca_get_speed(hu, QCA_INIT_SPEED) ||
1386                     !qca_get_speed(hu, QCA_OPER_SPEED))
1387                         return -EINVAL;
1388         }
1389
1390         return 0;
1391 }
1392
1393 static int qca_set_speed(struct hci_uart *hu, enum qca_speed_type speed_type)
1394 {
1395         unsigned int speed, qca_baudrate;
1396         struct qca_data *qca = hu->priv;
1397         int ret = 0;
1398
1399         if (speed_type == QCA_INIT_SPEED) {
1400                 speed = qca_get_speed(hu, QCA_INIT_SPEED);
1401                 if (speed)
1402                         host_set_baudrate(hu, speed);
1403         } else {
1404                 enum qca_btsoc_type soc_type = qca_soc_type(hu);
1405
1406                 speed = qca_get_speed(hu, QCA_OPER_SPEED);
1407                 if (!speed)
1408                         return 0;
1409
1410                 /* Disable flow control for wcn3990 to deassert RTS while
1411                  * changing the baudrate of chip and host.
1412                  */
1413                 if (qca_is_wcn399x(soc_type))
1414                         hci_uart_set_flow_control(hu, true);
1415
1416                 if (soc_type == QCA_WCN3990) {
1417                         reinit_completion(&qca->drop_ev_comp);
1418                         set_bit(QCA_DROP_VENDOR_EVENT, &qca->flags);
1419                 }
1420
1421                 qca_baudrate = qca_get_baudrate_value(speed);
1422                 bt_dev_dbg(hu->hdev, "Set UART speed to %d", speed);
1423                 ret = qca_set_baudrate(hu->hdev, qca_baudrate);
1424                 if (ret)
1425                         goto error;
1426
1427                 host_set_baudrate(hu, speed);
1428
1429 error:
1430                 if (qca_is_wcn399x(soc_type))
1431                         hci_uart_set_flow_control(hu, false);
1432
1433                 if (soc_type == QCA_WCN3990) {
1434                         /* Wait for the controller to send the vendor event
1435                          * for the baudrate change command.
1436                          */
1437                         if (!wait_for_completion_timeout(&qca->drop_ev_comp,
1438                                                  msecs_to_jiffies(100))) {
1439                                 bt_dev_err(hu->hdev,
1440                                            "Failed to change controller baudrate\n");
1441                                 ret = -ETIMEDOUT;
1442                         }
1443
1444                         clear_bit(QCA_DROP_VENDOR_EVENT, &qca->flags);
1445                 }
1446         }
1447
1448         return ret;
1449 }
1450
1451 static int qca_send_crashbuffer(struct hci_uart *hu)
1452 {
1453         struct qca_data *qca = hu->priv;
1454         struct sk_buff *skb;
1455
1456         skb = bt_skb_alloc(QCA_CRASHBYTE_PACKET_LEN, GFP_KERNEL);
1457         if (!skb) {
1458                 bt_dev_err(hu->hdev, "Failed to allocate memory for skb packet");
1459                 return -ENOMEM;
1460         }
1461
1462         /* We forcefully crash the controller, by sending 0xfb byte for
1463          * 1024 times. We also might have chance of losing data, To be
1464          * on safer side we send 1096 bytes to the SoC.
1465          */
1466         memset(skb_put(skb, QCA_CRASHBYTE_PACKET_LEN), QCA_MEMDUMP_BYTE,
1467                QCA_CRASHBYTE_PACKET_LEN);
1468         hci_skb_pkt_type(skb) = HCI_COMMAND_PKT;
1469         bt_dev_info(hu->hdev, "crash the soc to collect controller dump");
1470         skb_queue_tail(&qca->txq, skb);
1471         hci_uart_tx_wakeup(hu);
1472
1473         return 0;
1474 }
1475
1476 static void qca_wait_for_dump_collection(struct hci_dev *hdev)
1477 {
1478         struct hci_uart *hu = hci_get_drvdata(hdev);
1479         struct qca_data *qca = hu->priv;
1480
1481         wait_on_bit_timeout(&qca->flags, QCA_MEMDUMP_COLLECTION,
1482                             TASK_UNINTERRUPTIBLE, MEMDUMP_TIMEOUT_MS);
1483
1484         clear_bit(QCA_MEMDUMP_COLLECTION, &qca->flags);
1485 }
1486
1487 static void qca_hw_error(struct hci_dev *hdev, u8 code)
1488 {
1489         struct hci_uart *hu = hci_get_drvdata(hdev);
1490         struct qca_data *qca = hu->priv;
1491
1492         set_bit(QCA_SSR_TRIGGERED, &qca->flags);
1493         set_bit(QCA_HW_ERROR_EVENT, &qca->flags);
1494         bt_dev_info(hdev, "mem_dump_status: %d", qca->memdump_state);
1495
1496         if (qca->memdump_state == QCA_MEMDUMP_IDLE) {
1497                 /* If hardware error event received for other than QCA
1498                  * soc memory dump event, then we need to crash the SOC
1499                  * and wait here for 8 seconds to get the dump packets.
1500                  * This will block main thread to be on hold until we
1501                  * collect dump.
1502                  */
1503                 set_bit(QCA_MEMDUMP_COLLECTION, &qca->flags);
1504                 qca_send_crashbuffer(hu);
1505                 qca_wait_for_dump_collection(hdev);
1506         } else if (qca->memdump_state == QCA_MEMDUMP_COLLECTING) {
1507                 /* Let us wait here until memory dump collected or
1508                  * memory dump timer expired.
1509                  */
1510                 bt_dev_info(hdev, "waiting for dump to complete");
1511                 qca_wait_for_dump_collection(hdev);
1512         }
1513
1514         mutex_lock(&qca->hci_memdump_lock);
1515         if (qca->memdump_state != QCA_MEMDUMP_COLLECTED) {
1516                 bt_dev_err(hu->hdev, "clearing allocated memory due to memdump timeout");
1517                 if (qca->qca_memdump) {
1518                         vfree(qca->qca_memdump->memdump_buf_head);
1519                         kfree(qca->qca_memdump);
1520                         qca->qca_memdump = NULL;
1521                 }
1522                 qca->memdump_state = QCA_MEMDUMP_TIMEOUT;
1523                 cancel_delayed_work(&qca->ctrl_memdump_timeout);
1524         }
1525         mutex_unlock(&qca->hci_memdump_lock);
1526
1527         if (qca->memdump_state == QCA_MEMDUMP_TIMEOUT ||
1528             qca->memdump_state == QCA_MEMDUMP_COLLECTED) {
1529                 cancel_work_sync(&qca->ctrl_memdump_evt);
1530                 skb_queue_purge(&qca->rx_memdump_q);
1531         }
1532
1533         clear_bit(QCA_HW_ERROR_EVENT, &qca->flags);
1534 }
1535
1536 static void qca_cmd_timeout(struct hci_dev *hdev)
1537 {
1538         struct hci_uart *hu = hci_get_drvdata(hdev);
1539         struct qca_data *qca = hu->priv;
1540
1541         set_bit(QCA_SSR_TRIGGERED, &qca->flags);
1542         if (qca->memdump_state == QCA_MEMDUMP_IDLE) {
1543                 set_bit(QCA_MEMDUMP_COLLECTION, &qca->flags);
1544                 qca_send_crashbuffer(hu);
1545                 qca_wait_for_dump_collection(hdev);
1546         } else if (qca->memdump_state == QCA_MEMDUMP_COLLECTING) {
1547                 /* Let us wait here until memory dump collected or
1548                  * memory dump timer expired.
1549                  */
1550                 bt_dev_info(hdev, "waiting for dump to complete");
1551                 qca_wait_for_dump_collection(hdev);
1552         }
1553
1554         mutex_lock(&qca->hci_memdump_lock);
1555         if (qca->memdump_state != QCA_MEMDUMP_COLLECTED) {
1556                 qca->memdump_state = QCA_MEMDUMP_TIMEOUT;
1557                 if (!test_bit(QCA_HW_ERROR_EVENT, &qca->flags)) {
1558                         /* Inject hw error event to reset the device
1559                          * and driver.
1560                          */
1561                         hci_reset_dev(hu->hdev);
1562                 }
1563         }
1564         mutex_unlock(&qca->hci_memdump_lock);
1565 }
1566
1567 static int qca_wcn3990_init(struct hci_uart *hu)
1568 {
1569         struct qca_serdev *qcadev;
1570         int ret;
1571
1572         /* Check for vregs status, may be hci down has turned
1573          * off the voltage regulator.
1574          */
1575         qcadev = serdev_device_get_drvdata(hu->serdev);
1576         if (!qcadev->bt_power->vregs_on) {
1577                 serdev_device_close(hu->serdev);
1578                 ret = qca_regulator_enable(qcadev);
1579                 if (ret)
1580                         return ret;
1581
1582                 ret = serdev_device_open(hu->serdev);
1583                 if (ret) {
1584                         bt_dev_err(hu->hdev, "failed to open port");
1585                         return ret;
1586                 }
1587         }
1588
1589         /* Forcefully enable wcn3990 to enter in to boot mode. */
1590         host_set_baudrate(hu, 2400);
1591         ret = qca_send_power_pulse(hu, false);
1592         if (ret)
1593                 return ret;
1594
1595         qca_set_speed(hu, QCA_INIT_SPEED);
1596         ret = qca_send_power_pulse(hu, true);
1597         if (ret)
1598                 return ret;
1599
1600         /* Now the device is in ready state to communicate with host.
1601          * To sync host with device we need to reopen port.
1602          * Without this, we will have RTS and CTS synchronization
1603          * issues.
1604          */
1605         serdev_device_close(hu->serdev);
1606         ret = serdev_device_open(hu->serdev);
1607         if (ret) {
1608                 bt_dev_err(hu->hdev, "failed to open port");
1609                 return ret;
1610         }
1611
1612         hci_uart_set_flow_control(hu, false);
1613
1614         return 0;
1615 }
1616
1617 static int qca_power_on(struct hci_dev *hdev)
1618 {
1619         struct hci_uart *hu = hci_get_drvdata(hdev);
1620         enum qca_btsoc_type soc_type = qca_soc_type(hu);
1621         struct qca_serdev *qcadev;
1622         int ret = 0;
1623
1624         /* Non-serdev device usually is powered by external power
1625          * and don't need additional action in driver for power on
1626          */
1627         if (!hu->serdev)
1628                 return 0;
1629
1630         if (qca_is_wcn399x(soc_type)) {
1631                 ret = qca_wcn3990_init(hu);
1632         } else {
1633                 qcadev = serdev_device_get_drvdata(hu->serdev);
1634                 if (qcadev->bt_en) {
1635                         gpiod_set_value_cansleep(qcadev->bt_en, 1);
1636                         /* Controller needs time to bootup. */
1637                         msleep(150);
1638                 }
1639         }
1640
1641         return ret;
1642 }
1643
1644 static int qca_setup(struct hci_uart *hu)
1645 {
1646         struct hci_dev *hdev = hu->hdev;
1647         struct qca_data *qca = hu->priv;
1648         unsigned int speed, qca_baudrate = QCA_BAUDRATE_115200;
1649         unsigned int retries = 0;
1650         enum qca_btsoc_type soc_type = qca_soc_type(hu);
1651         const char *firmware_name = qca_get_firmware_name(hu);
1652         int ret;
1653         int soc_ver = 0;
1654
1655         ret = qca_check_speeds(hu);
1656         if (ret)
1657                 return ret;
1658
1659         /* Patch downloading has to be done without IBS mode */
1660         clear_bit(QCA_IBS_ENABLED, &qca->flags);
1661
1662         /* Enable controller to do both LE scan and BR/EDR inquiry
1663          * simultaneously.
1664          */
1665         set_bit(HCI_QUIRK_SIMULTANEOUS_DISCOVERY, &hdev->quirks);
1666
1667         bt_dev_info(hdev, "setting up %s",
1668                 qca_is_wcn399x(soc_type) ? "wcn399x" : "ROME/QCA6390");
1669
1670         qca->memdump_state = QCA_MEMDUMP_IDLE;
1671
1672 retry:
1673         ret = qca_power_on(hdev);
1674         if (ret)
1675                 goto out;
1676
1677         clear_bit(QCA_SSR_TRIGGERED, &qca->flags);
1678
1679         if (qca_is_wcn399x(soc_type)) {
1680                 set_bit(HCI_QUIRK_USE_BDADDR_PROPERTY, &hdev->quirks);
1681
1682                 ret = qca_read_soc_version(hdev, &soc_ver, soc_type);
1683                 if (ret)
1684                         goto out;
1685         } else {
1686                 qca_set_speed(hu, QCA_INIT_SPEED);
1687         }
1688
1689         /* Setup user speed if needed */
1690         speed = qca_get_speed(hu, QCA_OPER_SPEED);
1691         if (speed) {
1692                 ret = qca_set_speed(hu, QCA_OPER_SPEED);
1693                 if (ret)
1694                         goto out;
1695
1696                 qca_baudrate = qca_get_baudrate_value(speed);
1697         }
1698
1699         if (!qca_is_wcn399x(soc_type)) {
1700                 /* Get QCA version information */
1701                 ret = qca_read_soc_version(hdev, &soc_ver, soc_type);
1702                 if (ret)
1703                         goto out;
1704         }
1705
1706         bt_dev_info(hdev, "QCA controller version 0x%08x", soc_ver);
1707         /* Setup patch / NVM configurations */
1708         ret = qca_uart_setup(hdev, qca_baudrate, soc_type, soc_ver,
1709                         firmware_name);
1710         if (!ret) {
1711                 set_bit(QCA_IBS_ENABLED, &qca->flags);
1712                 qca_debugfs_init(hdev);
1713                 hu->hdev->hw_error = qca_hw_error;
1714                 hu->hdev->cmd_timeout = qca_cmd_timeout;
1715         } else if (ret == -ENOENT) {
1716                 /* No patch/nvm-config found, run with original fw/config */
1717                 ret = 0;
1718         } else if (ret == -EAGAIN) {
1719                 /*
1720                  * Userspace firmware loader will return -EAGAIN in case no
1721                  * patch/nvm-config is found, so run with original fw/config.
1722                  */
1723                 ret = 0;
1724         }
1725
1726 out:
1727         if (ret && retries < MAX_INIT_RETRIES) {
1728                 bt_dev_warn(hdev, "Retry BT power ON:%d", retries);
1729                 qca_power_shutdown(hu);
1730                 if (hu->serdev) {
1731                         serdev_device_close(hu->serdev);
1732                         ret = serdev_device_open(hu->serdev);
1733                         if (ret) {
1734                                 bt_dev_err(hdev, "failed to open port");
1735                                 return ret;
1736                         }
1737                 }
1738                 retries++;
1739                 goto retry;
1740         }
1741
1742         /* Setup bdaddr */
1743         if (soc_type == QCA_ROME)
1744                 hu->hdev->set_bdaddr = qca_set_bdaddr_rome;
1745         else
1746                 hu->hdev->set_bdaddr = qca_set_bdaddr;
1747
1748         return ret;
1749 }
1750
1751 static const struct hci_uart_proto qca_proto = {
1752         .id             = HCI_UART_QCA,
1753         .name           = "QCA",
1754         .manufacturer   = 29,
1755         .init_speed     = 115200,
1756         .oper_speed     = 3000000,
1757         .open           = qca_open,
1758         .close          = qca_close,
1759         .flush          = qca_flush,
1760         .setup          = qca_setup,
1761         .recv           = qca_recv,
1762         .enqueue        = qca_enqueue,
1763         .dequeue        = qca_dequeue,
1764 };
1765
1766 static const struct qca_device_data qca_soc_data_wcn3990 = {
1767         .soc_type = QCA_WCN3990,
1768         .vregs = (struct qca_vreg []) {
1769                 { "vddio", 15000  },
1770                 { "vddxo", 80000  },
1771                 { "vddrf", 300000 },
1772                 { "vddch0", 450000 },
1773         },
1774         .num_vregs = 4,
1775 };
1776
1777 static const struct qca_device_data qca_soc_data_wcn3991 = {
1778         .soc_type = QCA_WCN3991,
1779         .vregs = (struct qca_vreg []) {
1780                 { "vddio", 15000  },
1781                 { "vddxo", 80000  },
1782                 { "vddrf", 300000 },
1783                 { "vddch0", 450000 },
1784         },
1785         .num_vregs = 4,
1786         .capabilities = QCA_CAP_WIDEBAND_SPEECH | QCA_CAP_VALID_LE_STATES,
1787 };
1788
1789 static const struct qca_device_data qca_soc_data_wcn3998 = {
1790         .soc_type = QCA_WCN3998,
1791         .vregs = (struct qca_vreg []) {
1792                 { "vddio", 10000  },
1793                 { "vddxo", 80000  },
1794                 { "vddrf", 300000 },
1795                 { "vddch0", 450000 },
1796         },
1797         .num_vregs = 4,
1798 };
1799
1800 static const struct qca_device_data qca_soc_data_qca6390 = {
1801         .soc_type = QCA_QCA6390,
1802         .num_vregs = 0,
1803 };
1804
1805 static void qca_power_shutdown(struct hci_uart *hu)
1806 {
1807         struct qca_serdev *qcadev;
1808         struct qca_data *qca = hu->priv;
1809         unsigned long flags;
1810         enum qca_btsoc_type soc_type = qca_soc_type(hu);
1811
1812         qcadev = serdev_device_get_drvdata(hu->serdev);
1813
1814         /* From this point we go into power off state. But serial port is
1815          * still open, stop queueing the IBS data and flush all the buffered
1816          * data in skb's.
1817          */
1818         spin_lock_irqsave(&qca->hci_ibs_lock, flags);
1819         clear_bit(QCA_IBS_ENABLED, &qca->flags);
1820         qca_flush(hu);
1821         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
1822
1823         /* Non-serdev device usually is powered by external power
1824          * and don't need additional action in driver for power down
1825          */
1826         if (!hu->serdev)
1827                 return;
1828
1829         if (qca_is_wcn399x(soc_type)) {
1830                 host_set_baudrate(hu, 2400);
1831                 qca_send_power_pulse(hu, false);
1832                 qca_regulator_disable(qcadev);
1833         } else if (qcadev->bt_en) {
1834                 gpiod_set_value_cansleep(qcadev->bt_en, 0);
1835         }
1836 }
1837
1838 static int qca_power_off(struct hci_dev *hdev)
1839 {
1840         struct hci_uart *hu = hci_get_drvdata(hdev);
1841         struct qca_data *qca = hu->priv;
1842         enum qca_btsoc_type soc_type = qca_soc_type(hu);
1843
1844         hu->hdev->hw_error = NULL;
1845         hu->hdev->cmd_timeout = NULL;
1846
1847         /* Stop sending shutdown command if soc crashes. */
1848         if (soc_type != QCA_ROME
1849                 && qca->memdump_state == QCA_MEMDUMP_IDLE) {
1850                 qca_send_pre_shutdown_cmd(hdev);
1851                 usleep_range(8000, 10000);
1852         }
1853
1854         qca_power_shutdown(hu);
1855         return 0;
1856 }
1857
1858 static int qca_regulator_enable(struct qca_serdev *qcadev)
1859 {
1860         struct qca_power *power = qcadev->bt_power;
1861         int ret;
1862
1863         /* Already enabled */
1864         if (power->vregs_on)
1865                 return 0;
1866
1867         BT_DBG("enabling %d regulators)", power->num_vregs);
1868
1869         ret = regulator_bulk_enable(power->num_vregs, power->vreg_bulk);
1870         if (ret)
1871                 return ret;
1872
1873         power->vregs_on = true;
1874
1875         ret = clk_prepare_enable(qcadev->susclk);
1876         if (ret)
1877                 qca_regulator_disable(qcadev);
1878
1879         return ret;
1880 }
1881
1882 static void qca_regulator_disable(struct qca_serdev *qcadev)
1883 {
1884         struct qca_power *power;
1885
1886         if (!qcadev)
1887                 return;
1888
1889         power = qcadev->bt_power;
1890
1891         /* Already disabled? */
1892         if (!power->vregs_on)
1893                 return;
1894
1895         regulator_bulk_disable(power->num_vregs, power->vreg_bulk);
1896         power->vregs_on = false;
1897
1898         clk_disable_unprepare(qcadev->susclk);
1899 }
1900
1901 static int qca_init_regulators(struct qca_power *qca,
1902                                 const struct qca_vreg *vregs, size_t num_vregs)
1903 {
1904         struct regulator_bulk_data *bulk;
1905         int ret;
1906         int i;
1907
1908         bulk = devm_kcalloc(qca->dev, num_vregs, sizeof(*bulk), GFP_KERNEL);
1909         if (!bulk)
1910                 return -ENOMEM;
1911
1912         for (i = 0; i < num_vregs; i++)
1913                 bulk[i].supply = vregs[i].name;
1914
1915         ret = devm_regulator_bulk_get(qca->dev, num_vregs, bulk);
1916         if (ret < 0)
1917                 return ret;
1918
1919         for (i = 0; i < num_vregs; i++) {
1920                 ret = regulator_set_load(bulk[i].consumer, vregs[i].load_uA);
1921                 if (ret)
1922                         return ret;
1923         }
1924
1925         qca->vreg_bulk = bulk;
1926         qca->num_vregs = num_vregs;
1927
1928         return 0;
1929 }
1930
1931 static int qca_serdev_probe(struct serdev_device *serdev)
1932 {
1933         struct qca_serdev *qcadev;
1934         struct hci_dev *hdev;
1935         const struct qca_device_data *data;
1936         int err;
1937         bool power_ctrl_enabled = true;
1938
1939         qcadev = devm_kzalloc(&serdev->dev, sizeof(*qcadev), GFP_KERNEL);
1940         if (!qcadev)
1941                 return -ENOMEM;
1942
1943         qcadev->serdev_hu.serdev = serdev;
1944         data = device_get_match_data(&serdev->dev);
1945         serdev_device_set_drvdata(serdev, qcadev);
1946         device_property_read_string(&serdev->dev, "firmware-name",
1947                                          &qcadev->firmware_name);
1948         device_property_read_u32(&serdev->dev, "max-speed",
1949                                  &qcadev->oper_speed);
1950         if (!qcadev->oper_speed)
1951                 BT_DBG("UART will pick default operating speed");
1952
1953         if (data && qca_is_wcn399x(data->soc_type)) {
1954                 qcadev->btsoc_type = data->soc_type;
1955                 qcadev->bt_power = devm_kzalloc(&serdev->dev,
1956                                                 sizeof(struct qca_power),
1957                                                 GFP_KERNEL);
1958                 if (!qcadev->bt_power)
1959                         return -ENOMEM;
1960
1961                 qcadev->bt_power->dev = &serdev->dev;
1962                 err = qca_init_regulators(qcadev->bt_power, data->vregs,
1963                                           data->num_vregs);
1964                 if (err) {
1965                         BT_ERR("Failed to init regulators:%d", err);
1966                         return err;
1967                 }
1968
1969                 qcadev->bt_power->vregs_on = false;
1970
1971                 qcadev->susclk = devm_clk_get_optional(&serdev->dev, NULL);
1972                 if (IS_ERR(qcadev->susclk)) {
1973                         dev_err(&serdev->dev, "failed to acquire clk\n");
1974                         return PTR_ERR(qcadev->susclk);
1975                 }
1976
1977                 err = hci_uart_register_device(&qcadev->serdev_hu, &qca_proto);
1978                 if (err) {
1979                         BT_ERR("wcn3990 serdev registration failed");
1980                         return err;
1981                 }
1982         } else {
1983                 if (data)
1984                         qcadev->btsoc_type = data->soc_type;
1985                 else
1986                         qcadev->btsoc_type = QCA_ROME;
1987
1988                 qcadev->bt_en = devm_gpiod_get_optional(&serdev->dev, "enable",
1989                                                GPIOD_OUT_LOW);
1990                 if (!qcadev->bt_en) {
1991                         dev_warn(&serdev->dev, "failed to acquire enable gpio\n");
1992                         power_ctrl_enabled = false;
1993                 }
1994
1995                 qcadev->susclk = devm_clk_get_optional(&serdev->dev, NULL);
1996                 if (IS_ERR(qcadev->susclk)) {
1997                         dev_warn(&serdev->dev, "failed to acquire clk\n");
1998                         return PTR_ERR(qcadev->susclk);
1999                 }
2000                 err = clk_set_rate(qcadev->susclk, SUSCLK_RATE_32KHZ);
2001                 if (err)
2002                         return err;
2003
2004                 err = clk_prepare_enable(qcadev->susclk);
2005                 if (err)
2006                         return err;
2007
2008                 err = hci_uart_register_device(&qcadev->serdev_hu, &qca_proto);
2009                 if (err) {
2010                         BT_ERR("Rome serdev registration failed");
2011                         clk_disable_unprepare(qcadev->susclk);
2012                         return err;
2013                 }
2014         }
2015
2016         hdev = qcadev->serdev_hu.hdev;
2017
2018         if (power_ctrl_enabled) {
2019                 set_bit(HCI_QUIRK_NON_PERSISTENT_SETUP, &hdev->quirks);
2020                 hdev->shutdown = qca_power_off;
2021         }
2022
2023         if (data) {
2024                 /* Wideband speech support must be set per driver since it can't
2025                  * be queried via hci. Same with the valid le states quirk.
2026                  */
2027                 if (data->capabilities & QCA_CAP_WIDEBAND_SPEECH)
2028                         set_bit(HCI_QUIRK_WIDEBAND_SPEECH_SUPPORTED,
2029                                 &hdev->quirks);
2030
2031                 if (data->capabilities & QCA_CAP_VALID_LE_STATES)
2032                         set_bit(HCI_QUIRK_VALID_LE_STATES, &hdev->quirks);
2033         }
2034
2035         return 0;
2036 }
2037
2038 static void qca_serdev_remove(struct serdev_device *serdev)
2039 {
2040         struct qca_serdev *qcadev = serdev_device_get_drvdata(serdev);
2041         struct qca_power *power = qcadev->bt_power;
2042
2043         if (qca_is_wcn399x(qcadev->btsoc_type) && power->vregs_on)
2044                 qca_power_shutdown(&qcadev->serdev_hu);
2045         else if (qcadev->susclk)
2046                 clk_disable_unprepare(qcadev->susclk);
2047
2048         hci_uart_unregister_device(&qcadev->serdev_hu);
2049 }
2050
2051 static void qca_serdev_shutdown(struct device *dev)
2052 {
2053         int ret;
2054         int timeout = msecs_to_jiffies(CMD_TRANS_TIMEOUT_MS);
2055         struct serdev_device *serdev = to_serdev_device(dev);
2056         struct qca_serdev *qcadev = serdev_device_get_drvdata(serdev);
2057         const u8 ibs_wake_cmd[] = { 0xFD };
2058         const u8 edl_reset_soc_cmd[] = { 0x01, 0x00, 0xFC, 0x01, 0x05 };
2059
2060         if (qcadev->btsoc_type == QCA_QCA6390) {
2061                 serdev_device_write_flush(serdev);
2062                 ret = serdev_device_write_buf(serdev, ibs_wake_cmd,
2063                                               sizeof(ibs_wake_cmd));
2064                 if (ret < 0) {
2065                         BT_ERR("QCA send IBS_WAKE_IND error: %d", ret);
2066                         return;
2067                 }
2068                 serdev_device_wait_until_sent(serdev, timeout);
2069                 usleep_range(8000, 10000);
2070
2071                 serdev_device_write_flush(serdev);
2072                 ret = serdev_device_write_buf(serdev, edl_reset_soc_cmd,
2073                                               sizeof(edl_reset_soc_cmd));
2074                 if (ret < 0) {
2075                         BT_ERR("QCA send EDL_RESET_REQ error: %d", ret);
2076                         return;
2077                 }
2078                 serdev_device_wait_until_sent(serdev, timeout);
2079                 usleep_range(8000, 10000);
2080         }
2081 }
2082
2083 static int __maybe_unused qca_suspend(struct device *dev)
2084 {
2085         struct serdev_device *serdev = to_serdev_device(dev);
2086         struct qca_serdev *qcadev = serdev_device_get_drvdata(serdev);
2087         struct hci_uart *hu = &qcadev->serdev_hu;
2088         struct qca_data *qca = hu->priv;
2089         unsigned long flags;
2090         bool tx_pending = false;
2091         int ret = 0;
2092         u8 cmd;
2093
2094         set_bit(QCA_SUSPENDING, &qca->flags);
2095
2096         /* Device is downloading patch or doesn't support in-band sleep. */
2097         if (!test_bit(QCA_IBS_ENABLED, &qca->flags))
2098                 return 0;
2099
2100         cancel_work_sync(&qca->ws_awake_device);
2101         cancel_work_sync(&qca->ws_awake_rx);
2102
2103         spin_lock_irqsave_nested(&qca->hci_ibs_lock,
2104                                  flags, SINGLE_DEPTH_NESTING);
2105
2106         switch (qca->tx_ibs_state) {
2107         case HCI_IBS_TX_WAKING:
2108                 del_timer(&qca->wake_retrans_timer);
2109                 fallthrough;
2110         case HCI_IBS_TX_AWAKE:
2111                 del_timer(&qca->tx_idle_timer);
2112
2113                 serdev_device_write_flush(hu->serdev);
2114                 cmd = HCI_IBS_SLEEP_IND;
2115                 ret = serdev_device_write_buf(hu->serdev, &cmd, sizeof(cmd));
2116
2117                 if (ret < 0) {
2118                         BT_ERR("Failed to send SLEEP to device");
2119                         break;
2120                 }
2121
2122                 qca->tx_ibs_state = HCI_IBS_TX_ASLEEP;
2123                 qca->ibs_sent_slps++;
2124                 tx_pending = true;
2125                 break;
2126
2127         case HCI_IBS_TX_ASLEEP:
2128                 break;
2129
2130         default:
2131                 BT_ERR("Spurious tx state %d", qca->tx_ibs_state);
2132                 ret = -EINVAL;
2133                 break;
2134         }
2135
2136         spin_unlock_irqrestore(&qca->hci_ibs_lock, flags);
2137
2138         if (ret < 0)
2139                 goto error;
2140
2141         if (tx_pending) {
2142                 serdev_device_wait_until_sent(hu->serdev,
2143                                               msecs_to_jiffies(CMD_TRANS_TIMEOUT_MS));
2144                 serial_clock_vote(HCI_IBS_TX_VOTE_CLOCK_OFF, hu);
2145         }
2146
2147         /* Wait for HCI_IBS_SLEEP_IND sent by device to indicate its Tx is going
2148          * to sleep, so that the packet does not wake the system later.
2149          */
2150         ret = wait_event_interruptible_timeout(qca->suspend_wait_q,
2151                         qca->rx_ibs_state == HCI_IBS_RX_ASLEEP,
2152                         msecs_to_jiffies(IBS_BTSOC_TX_IDLE_TIMEOUT_MS));
2153         if (ret == 0) {
2154                 ret = -ETIMEDOUT;
2155                 goto error;
2156         }
2157
2158         return 0;
2159
2160 error:
2161         clear_bit(QCA_SUSPENDING, &qca->flags);
2162
2163         return ret;
2164 }
2165
2166 static int __maybe_unused qca_resume(struct device *dev)
2167 {
2168         struct serdev_device *serdev = to_serdev_device(dev);
2169         struct qca_serdev *qcadev = serdev_device_get_drvdata(serdev);
2170         struct hci_uart *hu = &qcadev->serdev_hu;
2171         struct qca_data *qca = hu->priv;
2172
2173         clear_bit(QCA_SUSPENDING, &qca->flags);
2174
2175         return 0;
2176 }
2177
2178 static SIMPLE_DEV_PM_OPS(qca_pm_ops, qca_suspend, qca_resume);
2179
2180 #ifdef CONFIG_OF
2181 static const struct of_device_id qca_bluetooth_of_match[] = {
2182         { .compatible = "qcom,qca6174-bt" },
2183         { .compatible = "qcom,qca6390-bt", .data = &qca_soc_data_qca6390},
2184         { .compatible = "qcom,qca9377-bt" },
2185         { .compatible = "qcom,wcn3990-bt", .data = &qca_soc_data_wcn3990},
2186         { .compatible = "qcom,wcn3991-bt", .data = &qca_soc_data_wcn3991},
2187         { .compatible = "qcom,wcn3998-bt", .data = &qca_soc_data_wcn3998},
2188         { /* sentinel */ }
2189 };
2190 MODULE_DEVICE_TABLE(of, qca_bluetooth_of_match);
2191 #endif
2192
2193 #ifdef CONFIG_ACPI
2194 static const struct acpi_device_id qca_bluetooth_acpi_match[] = {
2195         { "QCOM6390", (kernel_ulong_t)&qca_soc_data_qca6390 },
2196         { "DLA16390", (kernel_ulong_t)&qca_soc_data_qca6390 },
2197         { "DLB16390", (kernel_ulong_t)&qca_soc_data_qca6390 },
2198         { "DLB26390", (kernel_ulong_t)&qca_soc_data_qca6390 },
2199         { },
2200 };
2201 MODULE_DEVICE_TABLE(acpi, qca_bluetooth_acpi_match);
2202 #endif
2203
2204
2205 static struct serdev_device_driver qca_serdev_driver = {
2206         .probe = qca_serdev_probe,
2207         .remove = qca_serdev_remove,
2208         .driver = {
2209                 .name = "hci_uart_qca",
2210                 .of_match_table = of_match_ptr(qca_bluetooth_of_match),
2211                 .acpi_match_table = ACPI_PTR(qca_bluetooth_acpi_match),
2212                 .shutdown = qca_serdev_shutdown,
2213                 .pm = &qca_pm_ops,
2214         },
2215 };
2216
2217 int __init qca_init(void)
2218 {
2219         serdev_device_driver_register(&qca_serdev_driver);
2220
2221         return hci_uart_register_proto(&qca_proto);
2222 }
2223
2224 int __exit qca_deinit(void)
2225 {
2226         serdev_device_driver_unregister(&qca_serdev_driver);
2227
2228         return hci_uart_unregister_proto(&qca_proto);
2229 }