mirror of
https://github.com/zephyrproject-rtos/zephyr
synced 2025-08-12 14:06:02 +00:00
In order to bring consistency in-tree, migrate all subsystems code to the new prefix <zephyr/...>. Note that the conversion has been scripted, refer to zephyrproject-rtos#45388 for more details. Signed-off-by: Gerard Marull-Paretas <gerard.marull@nordicsemi.no>
492 lines
12 KiB
C
492 lines
12 KiB
C
/*
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* Wireless / Bluetooth USB class
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*
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* Copyright (c) 2018 Intel Corporation
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*
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* SPDX-License-Identifier: Apache-2.0
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*/
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#include <zephyr/init.h>
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#include <zephyr/sys/byteorder.h>
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#include <zephyr/usb/usb_device.h>
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#include <usb_descriptor.h>
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#include <zephyr/net/buf.h>
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#include <zephyr/bluetooth/buf.h>
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#include <zephyr/bluetooth/hci_raw.h>
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#include <zephyr/bluetooth/l2cap.h>
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#include <zephyr/bluetooth/hci_vs.h>
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#include <zephyr/drivers/bluetooth/hci_driver.h>
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#include <zephyr/sys/atomic.h>
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#define LOG_LEVEL CONFIG_USB_DEVICE_LOG_LEVEL
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#include <zephyr/logging/log.h>
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LOG_MODULE_REGISTER(usb_bluetooth);
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#define USB_RF_SUBCLASS 0x01
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#define USB_BLUETOOTH_PROTOCOL 0x01
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static K_FIFO_DEFINE(rx_queue);
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static K_FIFO_DEFINE(tx_queue);
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#define BLUETOOTH_INT_EP_ADDR 0x81
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#define BLUETOOTH_OUT_EP_ADDR 0x02
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#define BLUETOOTH_IN_EP_ADDR 0x82
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/* HCI RX/TX threads */
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static K_KERNEL_STACK_DEFINE(rx_thread_stack, CONFIG_BT_HCI_TX_STACK_SIZE);
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static struct k_thread rx_thread_data;
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static K_KERNEL_STACK_DEFINE(tx_thread_stack, 512);
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static struct k_thread tx_thread_data;
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/* HCI USB state flags */
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static bool configured;
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/*
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* Shared variable between bluetooth_status_cb() and hci_tx_thread(),
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* where hci_tx_thread() has read-only access to it.
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*/
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static atomic_t suspended;
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static uint8_t ep_out_buf[USB_MAX_FS_BULK_MPS];
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struct usb_bluetooth_config {
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struct usb_if_descriptor if0;
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struct usb_ep_descriptor if0_int_ep;
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struct usb_ep_descriptor if0_out_ep;
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struct usb_ep_descriptor if0_in_ep;
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} __packed;
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USBD_CLASS_DESCR_DEFINE(primary, 0)
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struct usb_bluetooth_config bluetooth_cfg = {
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/* Interface descriptor 0 */
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.if0 = {
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.bLength = sizeof(struct usb_if_descriptor),
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.bDescriptorType = USB_DESC_INTERFACE,
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.bInterfaceNumber = 0,
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.bAlternateSetting = 0,
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.bNumEndpoints = 3,
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.bInterfaceClass = USB_BCC_WIRELESS_CONTROLLER,
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.bInterfaceSubClass = USB_RF_SUBCLASS,
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.bInterfaceProtocol = USB_BLUETOOTH_PROTOCOL,
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.iInterface = 0,
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},
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/* Interrupt Endpoint */
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.if0_int_ep = {
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.bLength = sizeof(struct usb_ep_descriptor),
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.bDescriptorType = USB_DESC_ENDPOINT,
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.bEndpointAddress = BLUETOOTH_INT_EP_ADDR,
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.bmAttributes = USB_DC_EP_INTERRUPT,
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.wMaxPacketSize = sys_cpu_to_le16(USB_MAX_FS_INT_MPS),
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.bInterval = 0x01,
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},
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/* Data Endpoint OUT */
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.if0_out_ep = {
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.bLength = sizeof(struct usb_ep_descriptor),
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.bDescriptorType = USB_DESC_ENDPOINT,
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.bEndpointAddress = BLUETOOTH_OUT_EP_ADDR,
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.bmAttributes = USB_DC_EP_BULK,
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.wMaxPacketSize = sys_cpu_to_le16(USB_MAX_FS_BULK_MPS),
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.bInterval = 0x01,
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},
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/* Data Endpoint IN */
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.if0_in_ep = {
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.bLength = sizeof(struct usb_ep_descriptor),
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.bDescriptorType = USB_DESC_ENDPOINT,
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.bEndpointAddress = BLUETOOTH_IN_EP_ADDR,
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.bmAttributes = USB_DC_EP_BULK,
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.wMaxPacketSize = sys_cpu_to_le16(USB_MAX_FS_BULK_MPS),
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.bInterval = 0x01,
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},
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};
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#define HCI_INT_EP_IDX 0
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#define HCI_OUT_EP_IDX 1
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#define HCI_IN_EP_IDX 2
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static struct usb_ep_cfg_data bluetooth_ep_data[] = {
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{
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.ep_cb = usb_transfer_ep_callback,
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.ep_addr = BLUETOOTH_INT_EP_ADDR,
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},
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{
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.ep_cb = usb_transfer_ep_callback,
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.ep_addr = BLUETOOTH_OUT_EP_ADDR,
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},
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{
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.ep_cb = usb_transfer_ep_callback,
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.ep_addr = BLUETOOTH_IN_EP_ADDR,
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},
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};
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static void hci_tx_thread(void)
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{
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LOG_DBG("Start USB Bluetooth thread");
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while (true) {
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struct net_buf *buf;
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buf = net_buf_get(&tx_queue, K_FOREVER);
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if (IS_ENABLED(CONFIG_USB_DEVICE_BLUETOOTH_VS_H4) &&
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bt_hci_raw_get_mode() == BT_HCI_RAW_MODE_H4) {
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/* Force to sent over bulk if H4 is selected */
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bt_buf_set_type(buf, BT_BUF_ACL_IN);
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}
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if (atomic_get(&suspended)) {
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if (usb_wakeup_request()) {
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LOG_DBG("Remote wakeup not enabled/supported");
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}
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/*
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* Let's wait until operation is resumed.
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* This is independent of usb_wakeup_request() result,
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* as long as device is suspended it should not start
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* any transfers.
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*/
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while (atomic_get(&suspended)) {
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k_sleep(K_MSEC(1));
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}
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}
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switch (bt_buf_get_type(buf)) {
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case BT_BUF_EVT:
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usb_transfer_sync(
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bluetooth_ep_data[HCI_INT_EP_IDX].ep_addr,
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buf->data, buf->len,
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USB_TRANS_WRITE | USB_TRANS_NO_ZLP);
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break;
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case BT_BUF_ACL_IN:
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usb_transfer_sync(
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bluetooth_ep_data[HCI_IN_EP_IDX].ep_addr,
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buf->data, buf->len,
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USB_TRANS_WRITE);
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break;
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default:
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LOG_ERR("Unknown type %u", bt_buf_get_type(buf));
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break;
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}
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net_buf_unref(buf);
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}
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}
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static void hci_rx_thread(void)
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{
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while (true) {
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struct net_buf *buf;
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int err;
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buf = net_buf_get(&rx_queue, K_FOREVER);
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err = bt_send(buf);
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if (err) {
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LOG_ERR("Error sending to driver");
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net_buf_unref(buf);
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}
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}
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}
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static uint16_t hci_pkt_get_len(struct net_buf *buf,
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const uint8_t *data, size_t size)
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{
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uint16_t len = 0;
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size_t hdr_len = 0;
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switch (bt_buf_get_type(buf)) {
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case BT_BUF_CMD: {
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struct bt_hci_cmd_hdr *cmd_hdr;
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hdr_len = sizeof(*cmd_hdr);
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cmd_hdr = (struct bt_hci_cmd_hdr *)data;
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len = cmd_hdr->param_len + hdr_len;
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break;
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}
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case BT_BUF_ACL_OUT: {
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struct bt_hci_acl_hdr *acl_hdr;
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hdr_len = sizeof(*acl_hdr);
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acl_hdr = (struct bt_hci_acl_hdr *)data;
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len = sys_le16_to_cpu(acl_hdr->len) + hdr_len;
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break;
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}
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case BT_BUF_ISO_OUT: {
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struct bt_hci_iso_hdr *iso_hdr;
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hdr_len = sizeof(*iso_hdr);
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iso_hdr = (struct bt_hci_iso_hdr *)data;
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len = bt_iso_hdr_len(sys_le16_to_cpu(iso_hdr->len)) + hdr_len;
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break;
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}
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default:
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LOG_ERR("Unknown bt buffer type");
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return 0;
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}
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return (size < hdr_len) ? 0 : len;
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}
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static void acl_read_cb(uint8_t ep, int size, void *priv)
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{
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static struct net_buf *buf;
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static uint16_t pkt_len;
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uint8_t *data = ep_out_buf;
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if (size == 0) {
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goto restart_out_transfer;
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}
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if (buf == NULL) {
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/*
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* Obtain the first chunk and determine the length
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* of the HCI packet.
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*/
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if (IS_ENABLED(CONFIG_USB_DEVICE_BLUETOOTH_VS_H4) &&
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bt_hci_raw_get_mode() == BT_HCI_RAW_MODE_H4) {
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buf = bt_buf_get_tx(BT_BUF_H4, K_FOREVER, data, size);
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if (!buf) {
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LOG_ERR("Failed to allocate buffer");
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goto restart_out_transfer;
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}
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pkt_len = hci_pkt_get_len(buf, &data[1], size - 1);
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LOG_DBG("pkt_len %u, chunk %u", pkt_len, size);
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} else {
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buf = bt_buf_get_tx(BT_BUF_ACL_OUT, K_FOREVER,
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data, size);
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if (!buf) {
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LOG_ERR("Failed to allocate buffer");
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goto restart_out_transfer;
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}
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pkt_len = hci_pkt_get_len(buf, data, size);
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LOG_DBG("pkt_len %u, chunk %u", pkt_len, size);
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}
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if (pkt_len == 0) {
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LOG_ERR("Failed to get packet length");
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net_buf_unref(buf);
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buf = NULL;
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}
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} else {
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if (net_buf_tailroom(buf) < size) {
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LOG_ERR("Buffer tailroom too small");
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net_buf_unref(buf);
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buf = NULL;
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goto restart_out_transfer;
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}
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/*
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* Take over the next chunk if HCI packet is
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* larger than USB_MAX_FS_BULK_MPS.
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*/
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net_buf_add_mem(buf, data, size);
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LOG_DBG("len %u, chunk %u", buf->len, size);
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}
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if (buf != NULL && pkt_len == buf->len) {
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net_buf_put(&rx_queue, buf);
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LOG_DBG("put");
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buf = NULL;
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pkt_len = 0;
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}
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restart_out_transfer:
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usb_transfer(bluetooth_ep_data[HCI_OUT_EP_IDX].ep_addr, ep_out_buf,
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sizeof(ep_out_buf), USB_TRANS_READ | USB_TRANS_NO_ZLP,
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acl_read_cb, NULL);
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}
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static void bluetooth_status_cb(struct usb_cfg_data *cfg,
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enum usb_dc_status_code status,
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const uint8_t *param)
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{
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ARG_UNUSED(cfg);
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atomic_val_t tmp;
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/* Check the USB status and do needed action if required */
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switch (status) {
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case USB_DC_RESET:
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LOG_DBG("Device reset detected");
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configured = false;
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atomic_clear(&suspended);
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break;
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case USB_DC_CONFIGURED:
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LOG_DBG("Device configured");
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if (!configured) {
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configured = true;
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/* Start reading */
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acl_read_cb(bluetooth_ep_data[HCI_OUT_EP_IDX].ep_addr,
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0, NULL);
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}
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break;
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case USB_DC_DISCONNECTED:
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LOG_DBG("Device disconnected");
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/* Cancel any transfer */
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usb_cancel_transfer(bluetooth_ep_data[HCI_INT_EP_IDX].ep_addr);
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usb_cancel_transfer(bluetooth_ep_data[HCI_IN_EP_IDX].ep_addr);
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usb_cancel_transfer(bluetooth_ep_data[HCI_OUT_EP_IDX].ep_addr);
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configured = false;
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atomic_clear(&suspended);
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break;
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case USB_DC_SUSPEND:
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LOG_DBG("Device suspended");
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atomic_set(&suspended, 1);
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break;
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case USB_DC_RESUME:
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tmp = atomic_clear(&suspended);
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if (tmp) {
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LOG_DBG("Device resumed from suspend");
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if (configured) {
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/* Start reading */
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acl_read_cb(bluetooth_ep_data[HCI_OUT_EP_IDX].ep_addr,
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0, NULL);
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}
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} else {
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LOG_DBG("Spurious resume event");
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}
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break;
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case USB_DC_UNKNOWN:
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default:
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LOG_DBG("Unknown state");
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break;
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}
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}
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static uint8_t vs_read_usb_transport_mode(struct net_buf *buf)
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{
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struct net_buf *rsp;
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struct bt_hci_rp_vs_read_usb_transport_mode *rp;
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rsp = bt_hci_cmd_complete_create(BT_HCI_OP_VS_READ_USB_TRANSPORT_MODE,
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sizeof(*rp) + 2);
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rp = net_buf_add(rsp, sizeof(*rp));
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rp->status = BT_HCI_ERR_SUCCESS;
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rp->num_supported_modes = 2;
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net_buf_add_u8(rsp, BT_HCI_VS_USB_H2_MODE);
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net_buf_add_u8(rsp, BT_HCI_VS_USB_H4_MODE);
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net_buf_put(&tx_queue, rsp);
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return BT_HCI_ERR_EXT_HANDLED;
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}
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static uint8_t vs_set_usb_transport_mode(struct net_buf *buf)
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{
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struct bt_hci_cp_vs_set_usb_transport_mode *cp;
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uint8_t mode;
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cp = net_buf_pull_mem(buf, sizeof(*cp));
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switch (cp->mode) {
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case BT_HCI_VS_USB_H2_MODE:
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mode = BT_HCI_RAW_MODE_PASSTHROUGH;
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break;
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case BT_HCI_VS_USB_H4_MODE:
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mode = BT_HCI_RAW_MODE_H4;
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break;
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default:
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LOG_DBG("Invalid mode: %u", cp->mode);
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return BT_HCI_ERR_INVALID_PARAM;
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}
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LOG_DBG("mode %u", mode);
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bt_hci_raw_set_mode(mode);
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return BT_HCI_ERR_SUCCESS;
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}
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static struct bt_hci_raw_cmd_ext cmd_ext[] = {
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BT_HCI_RAW_CMD_EXT(BT_OCF(BT_HCI_OP_VS_READ_USB_TRANSPORT_MODE), 0,
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vs_read_usb_transport_mode),
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BT_HCI_RAW_CMD_EXT(BT_OCF(BT_HCI_OP_VS_SET_USB_TRANSPORT_MODE),
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sizeof(struct bt_hci_cp_vs_set_usb_transport_mode),
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vs_set_usb_transport_mode),
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};
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static int bluetooth_class_handler(struct usb_setup_packet *setup,
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int32_t *len, uint8_t **data)
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{
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struct net_buf *buf;
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if (usb_reqtype_is_to_host(setup) ||
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setup->RequestType.type != USB_REQTYPE_TYPE_CLASS) {
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return -ENOTSUP;
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}
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LOG_DBG("len %u", *len);
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buf = bt_buf_get_tx(BT_BUF_CMD, K_NO_WAIT, *data, *len);
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if (!buf) {
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LOG_ERR("Cannot get free buffer\n");
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return -ENOMEM;
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}
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net_buf_put(&rx_queue, buf);
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return 0;
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}
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static void bluetooth_interface_config(struct usb_desc_header *head,
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uint8_t bInterfaceNumber)
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{
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ARG_UNUSED(head);
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bluetooth_cfg.if0.bInterfaceNumber = bInterfaceNumber;
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}
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USBD_DEFINE_CFG_DATA(bluetooth_config) = {
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.usb_device_description = NULL,
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.interface_config = bluetooth_interface_config,
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.interface_descriptor = &bluetooth_cfg.if0,
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.cb_usb_status = bluetooth_status_cb,
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.interface = {
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.class_handler = bluetooth_class_handler,
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.custom_handler = NULL,
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.vendor_handler = NULL,
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},
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.num_endpoints = ARRAY_SIZE(bluetooth_ep_data),
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.endpoint = bluetooth_ep_data,
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};
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static int bluetooth_init(const struct device *dev)
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{
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int ret;
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LOG_DBG("Initialization");
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ret = bt_enable_raw(&tx_queue);
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if (ret) {
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LOG_ERR("Failed to open Bluetooth raw channel: %d", ret);
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return ret;
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}
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if (IS_ENABLED(CONFIG_USB_DEVICE_BLUETOOTH_VS_H4)) {
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bt_hci_raw_cmd_ext_register(cmd_ext, ARRAY_SIZE(cmd_ext));
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}
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k_thread_create(&rx_thread_data, rx_thread_stack,
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K_KERNEL_STACK_SIZEOF(rx_thread_stack),
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(k_thread_entry_t)hci_rx_thread, NULL, NULL, NULL,
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K_PRIO_COOP(8), 0, K_NO_WAIT);
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k_thread_name_set(&rx_thread_data, "usb_bt_rx");
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k_thread_create(&tx_thread_data, tx_thread_stack,
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K_KERNEL_STACK_SIZEOF(tx_thread_stack),
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(k_thread_entry_t)hci_tx_thread, NULL, NULL, NULL,
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K_PRIO_COOP(8), 0, K_NO_WAIT);
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k_thread_name_set(&tx_thread_data, "usb_bt_tx");
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return 0;
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}
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SYS_INIT(bluetooth_init, APPLICATION, CONFIG_KERNEL_INIT_PRIORITY_DEVICE);
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