The API name space for Bluetooth is bt_* and BT_* so it makes sense to align the Kconfig name space with this. The additional benefit is that this also makes the names shorter. It is also in line with what Linux uses for Bluetooth Kconfig entries. Some Bluetooth-related Networking Kconfig defines are renamed as well in order to be consistent, such as NET_L2_BLUETOOTH. Signed-off-by: Johan Hedberg <johan.hedberg@intel.com>
371 lines
7.9 KiB
C
371 lines
7.9 KiB
C
/*
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* Copyright (c) 2016 Nordic Semiconductor ASA
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* Copyright (c) 2015-2016 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 <errno.h>
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#include <stddef.h>
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#include <stdio.h>
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#include <string.h>
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#include <zephyr.h>
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#include <arch/cpu.h>
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#include <misc/byteorder.h>
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#include <logging/sys_log.h>
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#include <misc/util.h>
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#include <device.h>
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#include <init.h>
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#include <uart.h>
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#include <net/buf.h>
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#include <bluetooth/bluetooth.h>
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#include <bluetooth/l2cap.h>
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#include <bluetooth/hci.h>
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#include <bluetooth/buf.h>
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#include <bluetooth/hci_raw.h>
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#include "common/log.h"
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static struct device *hci_uart_dev;
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static BT_STACK_NOINIT(tx_thread_stack, CONFIG_BT_HCI_TX_STACK_SIZE);
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static struct k_thread tx_thread_data;
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/* HCI command buffers */
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#define CMD_BUF_SIZE BT_BUF_RX_SIZE
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NET_BUF_POOL_DEFINE(cmd_tx_pool, CONFIG_BT_HCI_CMD_COUNT, CMD_BUF_SIZE,
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BT_BUF_USER_DATA_MIN, NULL);
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#if defined(CONFIG_BT_CONTROLLER)
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#define BT_L2CAP_MTU (CONFIG_BT_CONTROLLER_TX_BUFFER_SIZE - BT_L2CAP_HDR_SIZE)
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#else
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#define BT_L2CAP_MTU 65 /* 64-byte public key + opcode */
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#endif /* CONFIG_BT_CONTROLLER */
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/** Data size needed for ACL buffers */
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#define BT_BUF_ACL_SIZE BT_L2CAP_BUF_SIZE(BT_L2CAP_MTU)
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#if defined(CONFIG_BT_CONTROLLER_TX_BUFFERS)
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#define TX_BUF_COUNT CONFIG_BT_CONTROLLER_TX_BUFFERS
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#else
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#define TX_BUF_COUNT 6
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#endif
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NET_BUF_POOL_DEFINE(acl_tx_pool, TX_BUF_COUNT, BT_BUF_ACL_SIZE,
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BT_BUF_USER_DATA_MIN, NULL);
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static K_FIFO_DEFINE(tx_queue);
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#define H4_CMD 0x01
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#define H4_ACL 0x02
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#define H4_SCO 0x03
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#define H4_EVT 0x04
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/* Length of a discard/flush buffer.
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* This is sized to align with a BLE HCI packet:
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* 1 byte H:4 header + 32 bytes ACL/event data
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* Bigger values might overflow the stack since this is declared as a local
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* variable, smaller ones will force the caller to call into discard more
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* often.
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*/
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#define H4_DISCARD_LEN 33
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static int h4_read(struct device *uart, u8_t *buf,
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size_t len, size_t min)
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{
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int total = 0;
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while (len) {
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int rx;
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rx = uart_fifo_read(uart, buf, len);
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if (rx == 0) {
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SYS_LOG_DBG("Got zero bytes from UART");
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if (total < min) {
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continue;
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}
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break;
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}
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SYS_LOG_DBG("read %d remaining %d", rx, len - rx);
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len -= rx;
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total += rx;
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buf += rx;
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}
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return total;
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}
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static size_t h4_discard(struct device *uart, size_t len)
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{
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u8_t buf[H4_DISCARD_LEN];
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return uart_fifo_read(uart, buf, min(len, sizeof(buf)));
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}
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static struct net_buf *h4_cmd_recv(int *remaining)
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{
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struct bt_hci_cmd_hdr hdr;
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struct net_buf *buf;
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/* We can ignore the return value since we pass len == min */
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h4_read(hci_uart_dev, (void *)&hdr, sizeof(hdr), sizeof(hdr));
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*remaining = hdr.param_len;
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buf = net_buf_alloc(&cmd_tx_pool, K_NO_WAIT);
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if (buf) {
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bt_buf_set_type(buf, BT_BUF_CMD);
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net_buf_add_mem(buf, &hdr, sizeof(hdr));
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} else {
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SYS_LOG_ERR("No available command buffers!");
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}
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SYS_LOG_DBG("len %u", hdr.param_len);
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return buf;
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}
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static struct net_buf *h4_acl_recv(int *remaining)
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{
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struct bt_hci_acl_hdr hdr;
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struct net_buf *buf;
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/* We can ignore the return value since we pass len == min */
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h4_read(hci_uart_dev, (void *)&hdr, sizeof(hdr), sizeof(hdr));
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buf = net_buf_alloc(&acl_tx_pool, K_NO_WAIT);
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if (buf) {
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bt_buf_set_type(buf, BT_BUF_ACL_OUT);
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net_buf_add_mem(buf, &hdr, sizeof(hdr));
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} else {
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SYS_LOG_ERR("No available ACL buffers!");
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}
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*remaining = sys_le16_to_cpu(hdr.len);
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SYS_LOG_DBG("len %u", *remaining);
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return buf;
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}
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static void bt_uart_isr(struct device *unused)
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{
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static struct net_buf *buf;
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static int remaining;
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ARG_UNUSED(unused);
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while (uart_irq_update(hci_uart_dev) &&
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uart_irq_is_pending(hci_uart_dev)) {
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int read;
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if (!uart_irq_rx_ready(hci_uart_dev)) {
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if (uart_irq_tx_ready(hci_uart_dev)) {
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SYS_LOG_DBG("transmit ready");
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} else {
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SYS_LOG_DBG("spurious interrupt");
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}
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/* Only the UART RX path is interrupt-enabled */
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break;
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}
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/* Beginning of a new packet */
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if (!remaining) {
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u8_t type;
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/* Get packet type */
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read = h4_read(hci_uart_dev, &type, sizeof(type), 0);
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if (read != sizeof(type)) {
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SYS_LOG_WRN("Unable to read H4 packet type");
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continue;
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}
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switch (type) {
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case H4_CMD:
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buf = h4_cmd_recv(&remaining);
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break;
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case H4_ACL:
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buf = h4_acl_recv(&remaining);
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break;
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default:
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SYS_LOG_ERR("Unknown H4 type %u", type);
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return;
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}
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SYS_LOG_DBG("need to get %u bytes", remaining);
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if (buf && remaining > net_buf_tailroom(buf)) {
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SYS_LOG_ERR("Not enough space in buffer");
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net_buf_unref(buf);
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buf = NULL;
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}
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}
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if (!buf) {
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read = h4_discard(hci_uart_dev, remaining);
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SYS_LOG_WRN("Discarded %d bytes", read);
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remaining -= read;
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continue;
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}
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read = h4_read(hci_uart_dev, net_buf_tail(buf), remaining, 0);
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buf->len += read;
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remaining -= read;
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SYS_LOG_DBG("received %d bytes", read);
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if (!remaining) {
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SYS_LOG_DBG("full packet received");
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/* Put buffer into TX queue, thread will dequeue */
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net_buf_put(&tx_queue, buf);
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buf = NULL;
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}
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}
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}
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static void tx_thread(void *p1, void *p2, void *p3)
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{
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while (1) {
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struct net_buf *buf;
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/* Wait until a buffer is available */
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buf = net_buf_get(&tx_queue, K_FOREVER);
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/* Pass buffer to the stack */
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bt_send(buf);
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/* Give other threads a chance to run if tx_queue keeps getting
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* new data all the time.
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*/
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k_yield();
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}
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}
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static int h4_send(struct net_buf *buf)
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{
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SYS_LOG_DBG("buf %p type %u len %u", buf, bt_buf_get_type(buf),
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buf->len);
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switch (bt_buf_get_type(buf)) {
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case BT_BUF_ACL_IN:
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uart_poll_out(hci_uart_dev, H4_ACL);
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break;
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case BT_BUF_EVT:
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uart_poll_out(hci_uart_dev, H4_EVT);
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break;
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default:
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SYS_LOG_ERR("Unknown type %u", bt_buf_get_type(buf));
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net_buf_unref(buf);
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return -EINVAL;
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}
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while (buf->len) {
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uart_poll_out(hci_uart_dev, net_buf_pull_u8(buf));
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}
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net_buf_unref(buf);
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return 0;
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}
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#if defined(CONFIG_BT_CONTROLLER_ASSERT_HANDLER)
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void bt_controller_assert_handle(char *file, u32_t line)
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{
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u32_t len = 0, pos = 0;
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/* Disable interrupts, this is unrecoverable */
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(void)irq_lock();
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uart_irq_rx_disable(hci_uart_dev);
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uart_irq_tx_disable(hci_uart_dev);
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if (file) {
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while (file[len] != '\0') {
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if (file[len] == '/') {
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pos = len + 1;
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}
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len++;
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}
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file += pos;
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len -= pos;
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}
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uart_poll_out(hci_uart_dev, H4_EVT);
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/* Vendor-Specific debug event */
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uart_poll_out(hci_uart_dev, 0xff);
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/* 0xAA + strlen + \0 + 32-bit line number */
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uart_poll_out(hci_uart_dev, 1 + len + 1 + 4);
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uart_poll_out(hci_uart_dev, 0xAA);
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if (len) {
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while (*file != '\0') {
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uart_poll_out(hci_uart_dev, *file);
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file++;
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}
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uart_poll_out(hci_uart_dev, 0x00);
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}
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uart_poll_out(hci_uart_dev, line >> 0 & 0xff);
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uart_poll_out(hci_uart_dev, line >> 8 & 0xff);
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uart_poll_out(hci_uart_dev, line >> 16 & 0xff);
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uart_poll_out(hci_uart_dev, line >> 24 & 0xff);
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while (1) {
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}
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}
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#endif /* CONFIG_BT_CONTROLLER_ASSERT_HANDLER */
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static int hci_uart_init(struct device *unused)
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{
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SYS_LOG_DBG("");
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hci_uart_dev =
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device_get_binding(CONFIG_BT_CONTROLLER_TO_HOST_UART_DEV_NAME);
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if (!hci_uart_dev) {
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return -EINVAL;
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}
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uart_irq_rx_disable(hci_uart_dev);
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uart_irq_tx_disable(hci_uart_dev);
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uart_irq_callback_set(hci_uart_dev, bt_uart_isr);
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uart_irq_rx_enable(hci_uart_dev);
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return 0;
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}
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DEVICE_INIT(hci_uart, "hci_uart", &hci_uart_init, NULL, NULL,
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APPLICATION, CONFIG_KERNEL_INIT_PRIORITY_DEVICE);
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void main(void)
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{
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/* incoming events and data from the controller */
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static K_FIFO_DEFINE(rx_queue);
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int err;
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SYS_LOG_DBG("Start");
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/* Enable the raw interface, this will in turn open the HCI driver */
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bt_enable_raw(&rx_queue);
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/* Spawn the TX thread and start feeding commands and data to the
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* controller
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*/
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k_thread_create(&tx_thread_data, tx_thread_stack,
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K_THREAD_STACK_SIZEOF(tx_thread_stack), tx_thread,
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NULL, NULL, NULL, K_PRIO_COOP(7), 0, K_NO_WAIT);
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while (1) {
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struct net_buf *buf;
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buf = net_buf_get(&rx_queue, K_FOREVER);
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err = h4_send(buf);
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if (err) {
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SYS_LOG_ERR("Failed to send");
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}
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}
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}
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