1 // SPDX-License-Identifier: GPL-2.0-or-later
4 * Bluetooth HCI Three-wire UART driver
6 * Copyright (C) 2012 Intel Corporation
9 #include <linux/acpi.h>
10 #include <linux/errno.h>
11 #include <linux/gpio/consumer.h>
12 #include <linux/kernel.h>
13 #include <linux/mod_devicetable.h>
14 #include <linux/serdev.h>
15 #include <linux/skbuff.h>
17 #include <net/bluetooth/bluetooth.h>
18 #include <net/bluetooth/hci_core.h>
23 #define HCI_3WIRE_ACK_PKT 0
24 #define HCI_3WIRE_LINK_PKT 15
26 /* Sliding window size */
27 #define H5_TX_WIN_MAX 4
29 #define H5_ACK_TIMEOUT msecs_to_jiffies(250)
30 #define H5_SYNC_TIMEOUT msecs_to_jiffies(100)
33 * Maximum Three-wire packet:
34 * 4 byte header + max value for 12-bit length + 2 bytes for CRC
36 #define H5_MAX_LEN (4 + 0xfff + 2)
38 /* Convenience macros for reading Three-wire header values */
39 #define H5_HDR_SEQ(hdr) ((hdr)[0] & 0x07)
40 #define H5_HDR_ACK(hdr) (((hdr)[0] >> 3) & 0x07)
41 #define H5_HDR_CRC(hdr) (((hdr)[0] >> 6) & 0x01)
42 #define H5_HDR_RELIABLE(hdr) (((hdr)[0] >> 7) & 0x01)
43 #define H5_HDR_PKT_TYPE(hdr) ((hdr)[1] & 0x0f)
44 #define H5_HDR_LEN(hdr) ((((hdr)[1] >> 4) & 0x0f) + ((hdr)[2] << 4))
46 #define SLIP_DELIMITER 0xc0
48 #define SLIP_ESC_DELIM 0xdc
49 #define SLIP_ESC_ESC 0xdd
53 H5_RX_ESC
, /* SLIP escape mode */
54 H5_TX_ACK_REQ
, /* Pending ack to send */
58 /* Must be the first member, hci_serdev.c expects this. */
59 struct hci_uart serdev_hu
;
61 struct sk_buff_head unack
; /* Unack'ed packets queue */
62 struct sk_buff_head rel
; /* Reliable packets queue */
63 struct sk_buff_head unrel
; /* Unreliable packets queue */
67 struct sk_buff
*rx_skb
; /* Receive buffer */
68 size_t rx_pending
; /* Expecting more bytes */
69 u8 rx_ack
; /* Last ack number received */
71 int (*rx_func
)(struct hci_uart
*hu
, u8 c
);
73 struct timer_list timer
; /* Retransmission timer */
74 struct hci_uart
*hu
; /* Parent HCI UART */
76 u8 tx_seq
; /* Next seq number to send */
77 u8 tx_ack
; /* Next ack number to send */
78 u8 tx_win
; /* Sliding window size */
92 const struct h5_vnd
*vnd
;
95 struct gpio_desc
*enable_gpio
;
96 struct gpio_desc
*device_wake_gpio
;
100 int (*setup
)(struct h5
*h5
);
101 void (*open
)(struct h5
*h5
);
102 void (*close
)(struct h5
*h5
);
103 int (*suspend
)(struct h5
*h5
);
104 int (*resume
)(struct h5
*h5
);
105 const struct acpi_gpio_mapping
*acpi_gpio_map
;
108 static void h5_reset_rx(struct h5
*h5
);
110 static void h5_link_control(struct hci_uart
*hu
, const void *data
, size_t len
)
112 struct h5
*h5
= hu
->priv
;
113 struct sk_buff
*nskb
;
115 nskb
= alloc_skb(3, GFP_ATOMIC
);
119 hci_skb_pkt_type(nskb
) = HCI_3WIRE_LINK_PKT
;
121 skb_put_data(nskb
, data
, len
);
123 skb_queue_tail(&h5
->unrel
, nskb
);
126 static u8
h5_cfg_field(struct h5
*h5
)
128 /* Sliding window size (first 3 bits) */
129 return h5
->tx_win
& 0x07;
132 static void h5_timed_event(struct timer_list
*t
)
134 const unsigned char sync_req
[] = { 0x01, 0x7e };
135 unsigned char conf_req
[3] = { 0x03, 0xfc };
136 struct h5
*h5
= from_timer(h5
, t
, timer
);
137 struct hci_uart
*hu
= h5
->hu
;
141 BT_DBG("%s", hu
->hdev
->name
);
143 if (h5
->state
== H5_UNINITIALIZED
)
144 h5_link_control(hu
, sync_req
, sizeof(sync_req
));
146 if (h5
->state
== H5_INITIALIZED
) {
147 conf_req
[2] = h5_cfg_field(h5
);
148 h5_link_control(hu
, conf_req
, sizeof(conf_req
));
151 if (h5
->state
!= H5_ACTIVE
) {
152 mod_timer(&h5
->timer
, jiffies
+ H5_SYNC_TIMEOUT
);
156 if (h5
->sleep
!= H5_AWAKE
) {
157 h5
->sleep
= H5_SLEEPING
;
161 BT_DBG("hu %p retransmitting %u pkts", hu
, h5
->unack
.qlen
);
163 spin_lock_irqsave_nested(&h5
->unack
.lock
, flags
, SINGLE_DEPTH_NESTING
);
165 while ((skb
= __skb_dequeue_tail(&h5
->unack
)) != NULL
) {
166 h5
->tx_seq
= (h5
->tx_seq
- 1) & 0x07;
167 skb_queue_head(&h5
->rel
, skb
);
170 spin_unlock_irqrestore(&h5
->unack
.lock
, flags
);
173 hci_uart_tx_wakeup(hu
);
176 static void h5_peer_reset(struct hci_uart
*hu
)
178 struct h5
*h5
= hu
->priv
;
180 BT_ERR("Peer device has reset");
182 h5
->state
= H5_UNINITIALIZED
;
184 del_timer(&h5
->timer
);
186 skb_queue_purge(&h5
->rel
);
187 skb_queue_purge(&h5
->unrel
);
188 skb_queue_purge(&h5
->unack
);
193 /* Send reset request to upper stack */
194 hci_reset_dev(hu
->hdev
);
197 static int h5_open(struct hci_uart
*hu
)
200 const unsigned char sync
[] = { 0x01, 0x7e };
205 h5
= serdev_device_get_drvdata(hu
->serdev
);
207 h5
= kzalloc(sizeof(*h5
), GFP_KERNEL
);
215 skb_queue_head_init(&h5
->unack
);
216 skb_queue_head_init(&h5
->rel
);
217 skb_queue_head_init(&h5
->unrel
);
221 timer_setup(&h5
->timer
, h5_timed_event
, 0);
223 h5
->tx_win
= H5_TX_WIN_MAX
;
225 if (h5
->vnd
&& h5
->vnd
->open
)
228 set_bit(HCI_UART_INIT_PENDING
, &hu
->hdev_flags
);
230 /* Send initial sync request */
231 h5_link_control(hu
, sync
, sizeof(sync
));
232 mod_timer(&h5
->timer
, jiffies
+ H5_SYNC_TIMEOUT
);
237 static int h5_close(struct hci_uart
*hu
)
239 struct h5
*h5
= hu
->priv
;
241 del_timer_sync(&h5
->timer
);
243 skb_queue_purge(&h5
->unack
);
244 skb_queue_purge(&h5
->rel
);
245 skb_queue_purge(&h5
->unrel
);
247 if (h5
->vnd
&& h5
->vnd
->close
)
256 static int h5_setup(struct hci_uart
*hu
)
258 struct h5
*h5
= hu
->priv
;
260 if (h5
->vnd
&& h5
->vnd
->setup
)
261 return h5
->vnd
->setup(h5
);
266 static void h5_pkt_cull(struct h5
*h5
)
268 struct sk_buff
*skb
, *tmp
;
273 spin_lock_irqsave(&h5
->unack
.lock
, flags
);
275 to_remove
= skb_queue_len(&h5
->unack
);
281 while (to_remove
> 0) {
282 if (h5
->rx_ack
== seq
)
286 seq
= (seq
- 1) & 0x07;
289 if (seq
!= h5
->rx_ack
)
290 BT_ERR("Controller acked invalid packet");
293 skb_queue_walk_safe(&h5
->unack
, skb
, tmp
) {
294 if (i
++ >= to_remove
)
297 __skb_unlink(skb
, &h5
->unack
);
301 if (skb_queue_empty(&h5
->unack
))
302 del_timer(&h5
->timer
);
305 spin_unlock_irqrestore(&h5
->unack
.lock
, flags
);
308 static void h5_handle_internal_rx(struct hci_uart
*hu
)
310 struct h5
*h5
= hu
->priv
;
311 const unsigned char sync_req
[] = { 0x01, 0x7e };
312 const unsigned char sync_rsp
[] = { 0x02, 0x7d };
313 unsigned char conf_req
[3] = { 0x03, 0xfc };
314 const unsigned char conf_rsp
[] = { 0x04, 0x7b };
315 const unsigned char wakeup_req
[] = { 0x05, 0xfa };
316 const unsigned char woken_req
[] = { 0x06, 0xf9 };
317 const unsigned char sleep_req
[] = { 0x07, 0x78 };
318 const unsigned char *hdr
= h5
->rx_skb
->data
;
319 const unsigned char *data
= &h5
->rx_skb
->data
[4];
321 BT_DBG("%s", hu
->hdev
->name
);
323 if (H5_HDR_PKT_TYPE(hdr
) != HCI_3WIRE_LINK_PKT
)
326 if (H5_HDR_LEN(hdr
) < 2)
329 conf_req
[2] = h5_cfg_field(h5
);
331 if (memcmp(data
, sync_req
, 2) == 0) {
332 if (h5
->state
== H5_ACTIVE
)
334 h5_link_control(hu
, sync_rsp
, 2);
335 } else if (memcmp(data
, sync_rsp
, 2) == 0) {
336 if (h5
->state
== H5_ACTIVE
)
338 h5
->state
= H5_INITIALIZED
;
339 h5_link_control(hu
, conf_req
, 3);
340 } else if (memcmp(data
, conf_req
, 2) == 0) {
341 h5_link_control(hu
, conf_rsp
, 2);
342 h5_link_control(hu
, conf_req
, 3);
343 } else if (memcmp(data
, conf_rsp
, 2) == 0) {
344 if (H5_HDR_LEN(hdr
) > 2)
345 h5
->tx_win
= (data
[2] & 0x07);
346 BT_DBG("Three-wire init complete. tx_win %u", h5
->tx_win
);
347 h5
->state
= H5_ACTIVE
;
348 hci_uart_init_ready(hu
);
350 } else if (memcmp(data
, sleep_req
, 2) == 0) {
351 BT_DBG("Peer went to sleep");
352 h5
->sleep
= H5_SLEEPING
;
354 } else if (memcmp(data
, woken_req
, 2) == 0) {
355 BT_DBG("Peer woke up");
356 h5
->sleep
= H5_AWAKE
;
357 } else if (memcmp(data
, wakeup_req
, 2) == 0) {
358 BT_DBG("Peer requested wakeup");
359 h5_link_control(hu
, woken_req
, 2);
360 h5
->sleep
= H5_AWAKE
;
362 BT_DBG("Link Control: 0x%02hhx 0x%02hhx", data
[0], data
[1]);
366 hci_uart_tx_wakeup(hu
);
369 static void h5_complete_rx_pkt(struct hci_uart
*hu
)
371 struct h5
*h5
= hu
->priv
;
372 const unsigned char *hdr
= h5
->rx_skb
->data
;
374 if (H5_HDR_RELIABLE(hdr
)) {
375 h5
->tx_ack
= (h5
->tx_ack
+ 1) % 8;
376 set_bit(H5_TX_ACK_REQ
, &h5
->flags
);
377 hci_uart_tx_wakeup(hu
);
380 h5
->rx_ack
= H5_HDR_ACK(hdr
);
384 switch (H5_HDR_PKT_TYPE(hdr
)) {
386 case HCI_ACLDATA_PKT
:
387 case HCI_SCODATA_PKT
:
388 hci_skb_pkt_type(h5
->rx_skb
) = H5_HDR_PKT_TYPE(hdr
);
390 /* Remove Three-wire header */
391 skb_pull(h5
->rx_skb
, 4);
393 hci_recv_frame(hu
->hdev
, h5
->rx_skb
);
399 h5_handle_internal_rx(hu
);
406 static int h5_rx_crc(struct hci_uart
*hu
, unsigned char c
)
408 h5_complete_rx_pkt(hu
);
413 static int h5_rx_payload(struct hci_uart
*hu
, unsigned char c
)
415 struct h5
*h5
= hu
->priv
;
416 const unsigned char *hdr
= h5
->rx_skb
->data
;
418 if (H5_HDR_CRC(hdr
)) {
419 h5
->rx_func
= h5_rx_crc
;
422 h5_complete_rx_pkt(hu
);
428 static int h5_rx_3wire_hdr(struct hci_uart
*hu
, unsigned char c
)
430 struct h5
*h5
= hu
->priv
;
431 const unsigned char *hdr
= h5
->rx_skb
->data
;
433 BT_DBG("%s rx: seq %u ack %u crc %u rel %u type %u len %u",
434 hu
->hdev
->name
, H5_HDR_SEQ(hdr
), H5_HDR_ACK(hdr
),
435 H5_HDR_CRC(hdr
), H5_HDR_RELIABLE(hdr
), H5_HDR_PKT_TYPE(hdr
),
438 if (((hdr
[0] + hdr
[1] + hdr
[2] + hdr
[3]) & 0xff) != 0xff) {
439 BT_ERR("Invalid header checksum");
444 if (H5_HDR_RELIABLE(hdr
) && H5_HDR_SEQ(hdr
) != h5
->tx_ack
) {
445 BT_ERR("Out-of-order packet arrived (%u != %u)",
446 H5_HDR_SEQ(hdr
), h5
->tx_ack
);
451 if (h5
->state
!= H5_ACTIVE
&&
452 H5_HDR_PKT_TYPE(hdr
) != HCI_3WIRE_LINK_PKT
) {
453 BT_ERR("Non-link packet received in non-active state");
458 h5
->rx_func
= h5_rx_payload
;
459 h5
->rx_pending
= H5_HDR_LEN(hdr
);
464 static int h5_rx_pkt_start(struct hci_uart
*hu
, unsigned char c
)
466 struct h5
*h5
= hu
->priv
;
468 if (c
== SLIP_DELIMITER
)
471 h5
->rx_func
= h5_rx_3wire_hdr
;
474 h5
->rx_skb
= bt_skb_alloc(H5_MAX_LEN
, GFP_ATOMIC
);
476 BT_ERR("Can't allocate mem for new packet");
481 h5
->rx_skb
->dev
= (void *)hu
->hdev
;
486 static int h5_rx_delimiter(struct hci_uart
*hu
, unsigned char c
)
488 struct h5
*h5
= hu
->priv
;
490 if (c
== SLIP_DELIMITER
)
491 h5
->rx_func
= h5_rx_pkt_start
;
496 static void h5_unslip_one_byte(struct h5
*h5
, unsigned char c
)
498 const u8 delim
= SLIP_DELIMITER
, esc
= SLIP_ESC
;
501 if (!test_bit(H5_RX_ESC
, &h5
->flags
) && c
== SLIP_ESC
) {
502 set_bit(H5_RX_ESC
, &h5
->flags
);
506 if (test_and_clear_bit(H5_RX_ESC
, &h5
->flags
)) {
515 BT_ERR("Invalid esc byte 0x%02hhx", c
);
521 skb_put_data(h5
->rx_skb
, byte
, 1);
524 BT_DBG("unslipped 0x%02hhx, rx_pending %zu", *byte
, h5
->rx_pending
);
527 static void h5_reset_rx(struct h5
*h5
)
530 kfree_skb(h5
->rx_skb
);
534 h5
->rx_func
= h5_rx_delimiter
;
536 clear_bit(H5_RX_ESC
, &h5
->flags
);
539 static int h5_recv(struct hci_uart
*hu
, const void *data
, int count
)
541 struct h5
*h5
= hu
->priv
;
542 const unsigned char *ptr
= data
;
544 BT_DBG("%s pending %zu count %d", hu
->hdev
->name
, h5
->rx_pending
,
550 if (h5
->rx_pending
> 0) {
551 if (*ptr
== SLIP_DELIMITER
) {
552 BT_ERR("Too short H5 packet");
557 h5_unslip_one_byte(h5
, *ptr
);
563 processed
= h5
->rx_func(hu
, *ptr
);
574 static int h5_enqueue(struct hci_uart
*hu
, struct sk_buff
*skb
)
576 struct h5
*h5
= hu
->priv
;
578 if (skb
->len
> 0xfff) {
579 BT_ERR("Packet too long (%u bytes)", skb
->len
);
584 if (h5
->state
!= H5_ACTIVE
) {
585 BT_ERR("Ignoring HCI data in non-active state");
590 switch (hci_skb_pkt_type(skb
)) {
591 case HCI_ACLDATA_PKT
:
592 case HCI_COMMAND_PKT
:
593 skb_queue_tail(&h5
->rel
, skb
);
596 case HCI_SCODATA_PKT
:
597 skb_queue_tail(&h5
->unrel
, skb
);
601 BT_ERR("Unknown packet type %u", hci_skb_pkt_type(skb
));
609 static void h5_slip_delim(struct sk_buff
*skb
)
611 const char delim
= SLIP_DELIMITER
;
613 skb_put_data(skb
, &delim
, 1);
616 static void h5_slip_one_byte(struct sk_buff
*skb
, u8 c
)
618 const char esc_delim
[2] = { SLIP_ESC
, SLIP_ESC_DELIM
};
619 const char esc_esc
[2] = { SLIP_ESC
, SLIP_ESC_ESC
};
623 skb_put_data(skb
, &esc_delim
, 2);
626 skb_put_data(skb
, &esc_esc
, 2);
629 skb_put_data(skb
, &c
, 1);
633 static bool valid_packet_type(u8 type
)
636 case HCI_ACLDATA_PKT
:
637 case HCI_COMMAND_PKT
:
638 case HCI_SCODATA_PKT
:
639 case HCI_3WIRE_LINK_PKT
:
640 case HCI_3WIRE_ACK_PKT
:
647 static struct sk_buff
*h5_prepare_pkt(struct hci_uart
*hu
, u8 pkt_type
,
648 const u8
*data
, size_t len
)
650 struct h5
*h5
= hu
->priv
;
651 struct sk_buff
*nskb
;
655 if (!valid_packet_type(pkt_type
)) {
656 BT_ERR("Unknown packet type %u", pkt_type
);
661 * Max len of packet: (original len + 4 (H5 hdr) + 2 (crc)) * 2
662 * (because bytes 0xc0 and 0xdb are escaped, worst case is when
663 * the packet is all made of 0xc0 and 0xdb) + 2 (0xc0
664 * delimiters at start and end).
666 nskb
= alloc_skb((len
+ 6) * 2 + 2, GFP_ATOMIC
);
670 hci_skb_pkt_type(nskb
) = pkt_type
;
674 hdr
[0] = h5
->tx_ack
<< 3;
675 clear_bit(H5_TX_ACK_REQ
, &h5
->flags
);
677 /* Reliable packet? */
678 if (pkt_type
== HCI_ACLDATA_PKT
|| pkt_type
== HCI_COMMAND_PKT
) {
680 hdr
[0] |= h5
->tx_seq
;
681 h5
->tx_seq
= (h5
->tx_seq
+ 1) % 8;
684 hdr
[1] = pkt_type
| ((len
& 0x0f) << 4);
686 hdr
[3] = ~((hdr
[0] + hdr
[1] + hdr
[2]) & 0xff);
688 BT_DBG("%s tx: seq %u ack %u crc %u rel %u type %u len %u",
689 hu
->hdev
->name
, H5_HDR_SEQ(hdr
), H5_HDR_ACK(hdr
),
690 H5_HDR_CRC(hdr
), H5_HDR_RELIABLE(hdr
), H5_HDR_PKT_TYPE(hdr
),
693 for (i
= 0; i
< 4; i
++)
694 h5_slip_one_byte(nskb
, hdr
[i
]);
696 for (i
= 0; i
< len
; i
++)
697 h5_slip_one_byte(nskb
, data
[i
]);
704 static struct sk_buff
*h5_dequeue(struct hci_uart
*hu
)
706 struct h5
*h5
= hu
->priv
;
708 struct sk_buff
*skb
, *nskb
;
710 if (h5
->sleep
!= H5_AWAKE
) {
711 const unsigned char wakeup_req
[] = { 0x05, 0xfa };
713 if (h5
->sleep
== H5_WAKING_UP
)
716 h5
->sleep
= H5_WAKING_UP
;
717 BT_DBG("Sending wakeup request");
719 mod_timer(&h5
->timer
, jiffies
+ HZ
/ 100);
720 return h5_prepare_pkt(hu
, HCI_3WIRE_LINK_PKT
, wakeup_req
, 2);
723 skb
= skb_dequeue(&h5
->unrel
);
725 nskb
= h5_prepare_pkt(hu
, hci_skb_pkt_type(skb
),
726 skb
->data
, skb
->len
);
732 skb_queue_head(&h5
->unrel
, skb
);
733 BT_ERR("Could not dequeue pkt because alloc_skb failed");
736 spin_lock_irqsave_nested(&h5
->unack
.lock
, flags
, SINGLE_DEPTH_NESTING
);
738 if (h5
->unack
.qlen
>= h5
->tx_win
)
741 skb
= skb_dequeue(&h5
->rel
);
743 nskb
= h5_prepare_pkt(hu
, hci_skb_pkt_type(skb
),
744 skb
->data
, skb
->len
);
746 __skb_queue_tail(&h5
->unack
, skb
);
747 mod_timer(&h5
->timer
, jiffies
+ H5_ACK_TIMEOUT
);
748 spin_unlock_irqrestore(&h5
->unack
.lock
, flags
);
752 skb_queue_head(&h5
->rel
, skb
);
753 BT_ERR("Could not dequeue pkt because alloc_skb failed");
757 spin_unlock_irqrestore(&h5
->unack
.lock
, flags
);
759 if (test_bit(H5_TX_ACK_REQ
, &h5
->flags
))
760 return h5_prepare_pkt(hu
, HCI_3WIRE_ACK_PKT
, NULL
, 0);
765 static int h5_flush(struct hci_uart
*hu
)
771 static const struct hci_uart_proto h5p
= {
772 .id
= HCI_UART_3WIRE
,
773 .name
= "Three-wire (H5)",
778 .enqueue
= h5_enqueue
,
779 .dequeue
= h5_dequeue
,
783 static int h5_serdev_probe(struct serdev_device
*serdev
)
785 const struct acpi_device_id
*match
;
786 struct device
*dev
= &serdev
->dev
;
789 h5
= devm_kzalloc(dev
, sizeof(*h5
), GFP_KERNEL
);
793 set_bit(HCI_UART_RESET_ON_INIT
, &h5
->serdev_hu
.flags
);
795 h5
->hu
= &h5
->serdev_hu
;
796 h5
->serdev_hu
.serdev
= serdev
;
797 serdev_device_set_drvdata(serdev
, h5
);
799 if (has_acpi_companion(dev
)) {
800 match
= acpi_match_device(dev
->driver
->acpi_match_table
, dev
);
804 h5
->vnd
= (const struct h5_vnd
*)match
->driver_data
;
805 h5
->id
= (char *)match
->id
;
807 if (h5
->vnd
->acpi_gpio_map
)
808 devm_acpi_dev_add_driver_gpios(dev
,
809 h5
->vnd
->acpi_gpio_map
);
812 h5
->enable_gpio
= devm_gpiod_get_optional(dev
, "enable", GPIOD_OUT_LOW
);
813 if (IS_ERR(h5
->enable_gpio
))
814 return PTR_ERR(h5
->enable_gpio
);
816 h5
->device_wake_gpio
= devm_gpiod_get_optional(dev
, "device-wake",
818 if (IS_ERR(h5
->device_wake_gpio
))
819 return PTR_ERR(h5
->device_wake_gpio
);
821 return hci_uart_register_device(&h5
->serdev_hu
, &h5p
);
824 static void h5_serdev_remove(struct serdev_device
*serdev
)
826 struct h5
*h5
= serdev_device_get_drvdata(serdev
);
828 hci_uart_unregister_device(&h5
->serdev_hu
);
831 static int __maybe_unused
h5_serdev_suspend(struct device
*dev
)
833 struct h5
*h5
= dev_get_drvdata(dev
);
836 if (h5
->vnd
&& h5
->vnd
->suspend
)
837 ret
= h5
->vnd
->suspend(h5
);
842 static int __maybe_unused
h5_serdev_resume(struct device
*dev
)
844 struct h5
*h5
= dev_get_drvdata(dev
);
847 if (h5
->vnd
&& h5
->vnd
->resume
)
848 ret
= h5
->vnd
->resume(h5
);
853 #ifdef CONFIG_BT_HCIUART_RTL
854 static int h5_btrtl_setup(struct h5
*h5
)
856 struct btrtl_device_info
*btrtl_dev
;
858 __le32 baudrate_data
;
860 unsigned int controller_baudrate
;
864 btrtl_dev
= btrtl_initialize(h5
->hu
->hdev
, h5
->id
);
865 if (IS_ERR(btrtl_dev
))
866 return PTR_ERR(btrtl_dev
);
868 err
= btrtl_get_uart_settings(h5
->hu
->hdev
, btrtl_dev
,
869 &controller_baudrate
, &device_baudrate
,
874 baudrate_data
= cpu_to_le32(device_baudrate
);
875 skb
= __hci_cmd_sync(h5
->hu
->hdev
, 0xfc17, sizeof(baudrate_data
),
876 &baudrate_data
, HCI_INIT_TIMEOUT
);
878 rtl_dev_err(h5
->hu
->hdev
, "set baud rate command failed\n");
884 /* Give the device some time to set up the new baudrate. */
885 usleep_range(10000, 20000);
887 serdev_device_set_baudrate(h5
->hu
->serdev
, controller_baudrate
);
888 serdev_device_set_flow_control(h5
->hu
->serdev
, flow_control
);
890 err
= btrtl_download_firmware(h5
->hu
->hdev
, btrtl_dev
);
891 /* Give the device some time before the hci-core sends it a reset */
892 usleep_range(10000, 20000);
895 btrtl_free(btrtl_dev
);
900 static void h5_btrtl_open(struct h5
*h5
)
902 /* Devices always start with these fixed parameters */
903 serdev_device_set_flow_control(h5
->hu
->serdev
, false);
904 serdev_device_set_parity(h5
->hu
->serdev
, SERDEV_PARITY_EVEN
);
905 serdev_device_set_baudrate(h5
->hu
->serdev
, 115200);
907 /* The controller needs up to 500ms to wakeup */
908 gpiod_set_value_cansleep(h5
->enable_gpio
, 1);
909 gpiod_set_value_cansleep(h5
->device_wake_gpio
, 1);
913 static void h5_btrtl_close(struct h5
*h5
)
915 gpiod_set_value_cansleep(h5
->device_wake_gpio
, 0);
916 gpiod_set_value_cansleep(h5
->enable_gpio
, 0);
919 /* Suspend/resume support. On many devices the RTL BT device loses power during
920 * suspend/resume, causing it to lose its firmware and all state. So we simply
921 * turn it off on suspend and reprobe on resume. This mirrors how RTL devices
922 * are handled in the USB driver, where the USB_QUIRK_RESET_RESUME is used which
923 * also causes a reprobe on resume.
925 static int h5_btrtl_suspend(struct h5
*h5
)
927 serdev_device_set_flow_control(h5
->hu
->serdev
, false);
928 gpiod_set_value_cansleep(h5
->device_wake_gpio
, 0);
929 gpiod_set_value_cansleep(h5
->enable_gpio
, 0);
933 struct h5_btrtl_reprobe
{
935 struct work_struct work
;
938 static void h5_btrtl_reprobe_worker(struct work_struct
*work
)
940 struct h5_btrtl_reprobe
*reprobe
=
941 container_of(work
, struct h5_btrtl_reprobe
, work
);
944 ret
= device_reprobe(reprobe
->dev
);
945 if (ret
&& ret
!= -EPROBE_DEFER
)
946 dev_err(reprobe
->dev
, "Reprobe error %d\n", ret
);
948 put_device(reprobe
->dev
);
950 module_put(THIS_MODULE
);
953 static int h5_btrtl_resume(struct h5
*h5
)
955 struct h5_btrtl_reprobe
*reprobe
;
957 reprobe
= kzalloc(sizeof(*reprobe
), GFP_KERNEL
);
961 __module_get(THIS_MODULE
);
963 INIT_WORK(&reprobe
->work
, h5_btrtl_reprobe_worker
);
964 reprobe
->dev
= get_device(&h5
->hu
->serdev
->dev
);
965 queue_work(system_long_wq
, &reprobe
->work
);
969 static const struct acpi_gpio_params btrtl_device_wake_gpios
= { 0, 0, false };
970 static const struct acpi_gpio_params btrtl_enable_gpios
= { 1, 0, false };
971 static const struct acpi_gpio_params btrtl_host_wake_gpios
= { 2, 0, false };
972 static const struct acpi_gpio_mapping acpi_btrtl_gpios
[] = {
973 { "device-wake-gpios", &btrtl_device_wake_gpios
, 1 },
974 { "enable-gpios", &btrtl_enable_gpios
, 1 },
975 { "host-wake-gpios", &btrtl_host_wake_gpios
, 1 },
979 static struct h5_vnd rtl_vnd
= {
980 .setup
= h5_btrtl_setup
,
981 .open
= h5_btrtl_open
,
982 .close
= h5_btrtl_close
,
983 .suspend
= h5_btrtl_suspend
,
984 .resume
= h5_btrtl_resume
,
985 .acpi_gpio_map
= acpi_btrtl_gpios
,
990 static const struct acpi_device_id h5_acpi_match
[] = {
991 #ifdef CONFIG_BT_HCIUART_RTL
992 { "OBDA8723", (kernel_ulong_t
)&rtl_vnd
},
996 MODULE_DEVICE_TABLE(acpi
, h5_acpi_match
);
999 static const struct dev_pm_ops h5_serdev_pm_ops
= {
1000 SET_SYSTEM_SLEEP_PM_OPS(h5_serdev_suspend
, h5_serdev_resume
)
1003 static struct serdev_device_driver h5_serdev_driver
= {
1004 .probe
= h5_serdev_probe
,
1005 .remove
= h5_serdev_remove
,
1007 .name
= "hci_uart_h5",
1008 .acpi_match_table
= ACPI_PTR(h5_acpi_match
),
1009 .pm
= &h5_serdev_pm_ops
,
1013 int __init
h5_init(void)
1015 serdev_device_driver_register(&h5_serdev_driver
);
1016 return hci_uart_register_proto(&h5p
);
1019 int __exit
h5_deinit(void)
1021 serdev_device_driver_unregister(&h5_serdev_driver
);
1022 return hci_uart_unregister_proto(&h5p
);