Split BT_CTLR_CONN_RSSI option into two, the base option enables the Read RSSI command, while the new BT_CTLR_CONN_RSSI_EVENT enables the connection RSSI events. There is no handling of RSSI events, only a BT_INFO log. Signed-off-by: Joakim Andersson <joakim.andersson@nordicsemi.no>
883 lines
22 KiB
C
883 lines
22 KiB
C
/*
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* Copyright (c) 2018-2020 Nordic Semiconductor ASA
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*
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* SPDX-License-Identifier: Apache-2.0
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*/
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#include <zephyr.h>
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#include <bluetooth/hci.h>
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#include <sys/byteorder.h>
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#include "util/util.h"
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#include "util/memq.h"
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#include "util/mayfly.h"
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#include "hal/ticker.h"
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#include "hal/ccm.h"
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#include "hal/radio.h"
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#include "ticker/ticker.h"
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#include "pdu.h"
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#include "ll.h"
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#include "ll_feat.h"
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#include "ll_settings.h"
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#include "lll.h"
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#include "lll_vendor.h"
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#include "lll_clock.h"
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#include "lll_adv.h"
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#include "lll_scan.h"
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#include "lll_conn.h"
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#include "lll_master.h"
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#include "lll_filter.h"
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#include "lll_tim_internal.h"
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#include "ull_adv_types.h"
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#include "ull_scan_types.h"
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#include "ull_conn_types.h"
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#include "ull_filter.h"
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#include "ull_internal.h"
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#include "ull_scan_internal.h"
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#include "ull_conn_internal.h"
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#include "ull_master_internal.h"
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#define BT_DBG_ENABLED IS_ENABLED(CONFIG_BT_DEBUG_HCI_DRIVER)
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#define LOG_MODULE_NAME bt_ctlr_ull_master
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#include "common/log.h"
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#include <soc.h>
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#include "hal/debug.h"
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static void ticker_op_stop_scan_cb(u32_t status, void *params);
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static void ticker_op_cb(u32_t status, void *params);
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static inline void access_addr_get(u8_t access_addr[]);
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static inline void conn_release(struct ll_scan_set *scan);
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u8_t ll_create_connection(u16_t scan_interval, u16_t scan_window,
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u8_t filter_policy, u8_t peer_addr_type,
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u8_t *peer_addr, u8_t own_addr_type,
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u16_t interval, u16_t latency, u16_t timeout)
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{
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struct lll_conn *conn_lll;
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struct ll_scan_set *scan;
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u32_t conn_interval_us;
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struct lll_scan *lll;
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struct ll_conn *conn;
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memq_link_t *link;
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u8_t access_addr[4];
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u8_t hop;
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int err;
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scan = ull_scan_is_disabled_get(0);
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if (!scan) {
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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lll = &scan->lll;
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if (lll->conn) {
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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link = ll_rx_link_alloc();
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if (!link) {
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return BT_HCI_ERR_MEM_CAPACITY_EXCEEDED;
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}
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conn = ll_conn_acquire();
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if (!conn) {
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ll_rx_link_release(link);
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return BT_HCI_ERR_MEM_CAPACITY_EXCEEDED;
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}
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ull_scan_params_set(lll, 0, scan_interval, scan_window, filter_policy);
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lll->adv_addr_type = peer_addr_type;
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memcpy(lll->adv_addr, peer_addr, BDADDR_SIZE);
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lll->conn_timeout = timeout;
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lll->conn_ticks_slot = 0; /* TODO: */
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conn_lll = &conn->lll;
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access_addr_get(access_addr);
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memcpy(conn_lll->access_addr, &access_addr,
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sizeof(conn_lll->access_addr));
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util_rand(&conn_lll->crc_init[0], 3);
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conn_lll->handle = 0xFFFF;
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conn_lll->interval = interval;
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conn_lll->latency = latency;
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if (!conn_lll->link_tx_free) {
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conn_lll->link_tx_free = &conn_lll->link_tx;
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}
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memq_init(conn_lll->link_tx_free, &conn_lll->memq_tx.head,
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&conn_lll->memq_tx.tail);
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conn_lll->link_tx_free = NULL;
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conn_lll->packet_tx_head_len = 0;
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conn_lll->packet_tx_head_offset = 0;
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conn_lll->sn = 0;
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conn_lll->nesn = 0;
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conn_lll->empty = 0;
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#if defined(CONFIG_BT_CTLR_DATA_LENGTH)
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conn_lll->max_tx_octets = PDU_DC_PAYLOAD_SIZE_MIN;
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conn_lll->max_rx_octets = PDU_DC_PAYLOAD_SIZE_MIN;
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#if defined(CONFIG_BT_CTLR_PHY)
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conn_lll->max_tx_time = PKT_US(PDU_DC_PAYLOAD_SIZE_MIN, PHY_1M);
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conn_lll->max_rx_time = PKT_US(PDU_DC_PAYLOAD_SIZE_MIN, PHY_1M);
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#endif /* CONFIG_BT_CTLR_PHY */
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#endif /* CONFIG_BT_CTLR_DATA_LENGTH */
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#if defined(CONFIG_BT_CTLR_PHY)
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conn_lll->phy_tx = BIT(0);
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conn_lll->phy_flags = 0;
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conn_lll->phy_tx_time = BIT(0);
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conn_lll->phy_rx = BIT(0);
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#endif /* CONFIG_BT_CTLR_PHY */
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#if defined(CONFIG_BT_CTLR_CONN_RSSI)
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conn_lll->rssi_latest = 0x7F;
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#if defined(CONFIG_BT_CTLR_CONN_RSSI_EVENT)
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conn_lll->rssi_reported = 0x7F;
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conn_lll->rssi_sample_count = 0;
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#endif /* CONFIG_BT_CTLR_CONN_RSSI_EVENT */
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#endif /* CONFIG_BT_CTLR_CONN_RSSI */
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#if defined(CONFIG_BT_CTLR_TX_PWR_DYNAMIC_CONTROL)
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conn_lll->tx_pwr_lvl = RADIO_TXP_DEFAULT;
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#endif /* CONFIG_BT_CTLR_TX_PWR_DYNAMIC_CONTROL */
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/* FIXME: BEGIN: Move to ULL? */
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conn_lll->latency_prepare = 0;
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conn_lll->latency_event = 0;
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conn_lll->event_counter = 0;
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conn_lll->data_chan_count =
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ull_conn_chan_map_cpy(conn_lll->data_chan_map);
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util_rand(&hop, sizeof(u8_t));
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conn_lll->data_chan_hop = 5 + (hop % 12);
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conn_lll->data_chan_sel = 0;
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conn_lll->data_chan_use = 0;
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conn_lll->role = 0;
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/* FIXME: END: Move to ULL? */
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#if defined(CONFIG_BT_CTLR_CONN_META)
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memset(&conn_lll->conn_meta, 0, sizeof(conn_lll->conn_meta));
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#endif /* CONFIG_BT_CTLR_CONN_META */
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conn->connect_expire = 6U;
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conn->supervision_expire = 0U;
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conn_interval_us = (u32_t)interval * 1250U;
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conn->supervision_reload = RADIO_CONN_EVENTS(timeout * 10000U,
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conn_interval_us);
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conn->procedure_expire = 0U;
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conn->procedure_reload = RADIO_CONN_EVENTS(40000000,
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conn_interval_us);
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#if defined(CONFIG_BT_CTLR_LE_PING)
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conn->apto_expire = 0U;
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/* APTO in no. of connection events */
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conn->apto_reload = RADIO_CONN_EVENTS((30000000), conn_interval_us);
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conn->appto_expire = 0U;
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/* Dispatch LE Ping PDU 6 connection events (that peer would listen to)
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* before 30s timeout
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* TODO: "peer listens to" is greater than 30s due to latency
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*/
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conn->appto_reload = (conn->apto_reload > (conn_lll->latency + 6)) ?
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(conn->apto_reload - (conn_lll->latency + 6)) :
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conn->apto_reload;
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#endif /* CONFIG_BT_CTLR_LE_PING */
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conn->common.fex_valid = 0U;
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conn->master.terminate_ack = 0U;
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conn->llcp_req = conn->llcp_ack = conn->llcp_type = 0U;
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conn->llcp_rx = NULL;
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conn->llcp_cu.req = conn->llcp_cu.ack = 0;
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conn->llcp_feature.req = conn->llcp_feature.ack = 0;
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conn->llcp_feature.features = LL_FEAT;
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conn->llcp_version.req = conn->llcp_version.ack = 0;
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conn->llcp_version.tx = conn->llcp_version.rx = 0U;
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conn->llcp_terminate.reason_peer = 0U;
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/* NOTE: use allocated link for generating dedicated
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* terminate ind rx node
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*/
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conn->llcp_terminate.node_rx.hdr.link = link;
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#if defined(CONFIG_BT_CTLR_LE_ENC)
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conn_lll->enc_rx = conn_lll->enc_tx = 0U;
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conn->llcp_enc.req = conn->llcp_enc.ack = 0U;
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conn->llcp_enc.pause_tx = conn->llcp_enc.pause_rx = 0U;
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conn->llcp_enc.refresh = 0U;
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#endif /* CONFIG_BT_CTLR_LE_ENC */
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#if defined(CONFIG_BT_CTLR_CONN_PARAM_REQ)
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conn->llcp_conn_param.req = 0U;
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conn->llcp_conn_param.ack = 0U;
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conn->llcp_conn_param.disabled = 0U;
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#endif /* CONFIG_BT_CTLR_CONN_PARAM_REQ */
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#if defined(CONFIG_BT_CTLR_DATA_LENGTH)
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conn->llcp_length.req = conn->llcp_length.ack = 0U;
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conn->llcp_length.disabled = 0U;
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conn->llcp_length.cache.tx_octets = 0U;
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conn->default_tx_octets = ull_conn_default_tx_octets_get();
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#if defined(CONFIG_BT_CTLR_PHY)
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conn->default_tx_time = ull_conn_default_tx_time_get();
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#endif /* CONFIG_BT_CTLR_PHY */
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#endif /* CONFIG_BT_CTLR_DATA_LENGTH */
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#if defined(CONFIG_BT_CTLR_PHY)
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conn->llcp_phy.req = conn->llcp_phy.ack = 0U;
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conn->llcp_phy.disabled = 0U;
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conn->llcp_phy.pause_tx = 0U;
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conn->phy_pref_tx = ull_conn_default_phy_tx_get();
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conn->phy_pref_rx = ull_conn_default_phy_rx_get();
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conn->phy_pref_flags = 0U;
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#endif /* CONFIG_BT_CTLR_PHY */
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conn->tx_head = conn->tx_ctrl = conn->tx_ctrl_last =
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conn->tx_data = conn->tx_data_last = 0;
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lll->conn = conn_lll;
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ull_hdr_init(&conn->ull);
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lll_hdr_init(&conn->lll, conn);
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#if defined(CONFIG_BT_CTLR_PRIVACY)
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ull_filter_scan_update(filter_policy);
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lll->rl_idx = FILTER_IDX_NONE;
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lll->rpa_gen = 0;
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if (!filter_policy && ull_filter_lll_rl_enabled()) {
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/* Look up the resolving list */
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lll->rl_idx = ull_filter_rl_find(peer_addr_type, peer_addr,
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NULL);
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}
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if (own_addr_type == BT_ADDR_LE_PUBLIC_ID ||
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own_addr_type == BT_ADDR_LE_RANDOM_ID) {
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/* Generate RPAs if required */
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ull_filter_rpa_update(false);
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own_addr_type &= 0x1;
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lll->rpa_gen = 1;
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}
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#endif
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scan->own_addr_type = own_addr_type;
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/* wait for stable clocks */
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err = lll_clock_wait();
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if (err) {
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conn_release(scan);
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return BT_HCI_ERR_HW_FAILURE;
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}
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return ull_scan_enable(scan);
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}
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u8_t ll_connect_disable(void **rx)
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{
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struct lll_conn *conn_lll;
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struct ll_scan_set *scan;
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u8_t status;
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scan = ull_scan_is_enabled_get(0);
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if (!scan) {
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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conn_lll = scan->lll.conn;
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if (!conn_lll) {
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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status = ull_scan_disable(0, scan);
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if (!status) {
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struct ll_conn *conn = (void *)HDR_LLL2EVT(conn_lll);
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struct node_rx_ftr *ftr;
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struct node_rx_pdu *cc;
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memq_link_t *link;
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cc = (void *)&conn->llcp_terminate.node_rx;
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link = cc->hdr.link;
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LL_ASSERT(link);
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/* free the memq link early, as caller could overwrite it */
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ll_rx_link_release(link);
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cc->hdr.type = NODE_RX_TYPE_CONNECTION;
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cc->hdr.handle = 0xffff;
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*((u8_t *)cc->pdu) = BT_HCI_ERR_UNKNOWN_CONN_ID;
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ftr = &(cc->hdr.rx_ftr);
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ftr->param = &scan->lll;
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*rx = cc;
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}
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return status;
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}
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u8_t ll_chm_update(u8_t *chm)
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{
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u16_t handle;
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u8_t ret;
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ull_conn_chan_map_set(chm);
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handle = CONFIG_BT_MAX_CONN;
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while (handle--) {
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struct ll_conn *conn;
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conn = ll_connected_get(handle);
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if (!conn || conn->lll.role) {
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continue;
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}
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ret = ull_conn_llcp_req(conn);
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if (ret) {
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return ret;
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}
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memcpy(conn->llcp.chan_map.chm, chm,
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sizeof(conn->llcp.chan_map.chm));
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/* conn->llcp.chan_map.instant = 0; */
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conn->llcp.chan_map.initiate = 1U;
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conn->llcp_type = LLCP_CHAN_MAP;
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conn->llcp_req++;
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}
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return 0;
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}
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#if defined(CONFIG_BT_CTLR_LE_ENC)
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u8_t ll_enc_req_send(u16_t handle, u8_t *rand, u8_t *ediv, u8_t *ltk)
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{
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struct ll_conn *conn;
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struct node_tx *tx;
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conn = ll_connected_get(handle);
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if (!conn) {
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return BT_HCI_ERR_UNKNOWN_CONN_ID;
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}
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if ((conn->llcp_enc.req != conn->llcp_enc.ack) ||
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((conn->llcp_req != conn->llcp_ack) &&
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(conn->llcp_type == LLCP_ENCRYPTION))) {
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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tx = ll_tx_mem_acquire();
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if (tx) {
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struct pdu_data *pdu_data_tx;
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pdu_data_tx = (void *)tx->pdu;
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memcpy(&conn->llcp_enc.ltk[0], ltk, sizeof(conn->llcp_enc.ltk));
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if (!conn->lll.enc_rx && !conn->lll.enc_tx) {
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struct pdu_data_llctrl_enc_req *enc_req;
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pdu_data_tx->ll_id = PDU_DATA_LLID_CTRL;
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pdu_data_tx->len =
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offsetof(struct pdu_data_llctrl, enc_rsp) +
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sizeof(struct pdu_data_llctrl_enc_req);
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pdu_data_tx->llctrl.opcode =
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PDU_DATA_LLCTRL_TYPE_ENC_REQ;
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enc_req = (void *)
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&pdu_data_tx->llctrl.enc_req;
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memcpy(enc_req->rand, rand, sizeof(enc_req->rand));
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enc_req->ediv[0] = ediv[0];
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enc_req->ediv[1] = ediv[1];
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util_rand(enc_req->skdm, sizeof(enc_req->skdm));
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util_rand(enc_req->ivm, sizeof(enc_req->ivm));
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} else if (conn->lll.enc_rx && conn->lll.enc_tx) {
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memcpy(&conn->llcp_enc.rand[0], rand,
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sizeof(conn->llcp_enc.rand));
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conn->llcp_enc.ediv[0] = ediv[0];
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conn->llcp_enc.ediv[1] = ediv[1];
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pdu_data_tx->ll_id = PDU_DATA_LLID_CTRL;
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pdu_data_tx->len = offsetof(struct pdu_data_llctrl,
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enc_req);
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pdu_data_tx->llctrl.opcode =
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PDU_DATA_LLCTRL_TYPE_PAUSE_ENC_REQ;
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} else {
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ll_tx_mem_release(tx);
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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if (ll_tx_mem_enqueue(handle, tx)) {
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ll_tx_mem_release(tx);
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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conn->llcp_enc.req++;
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return 0;
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}
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return BT_HCI_ERR_CMD_DISALLOWED;
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}
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#endif /* CONFIG_BT_CTLR_LE_ENC */
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void ull_master_setup(memq_link_t *link, struct node_rx_hdr *rx,
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struct node_rx_ftr *ftr, struct lll_conn *lll)
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{
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u32_t conn_offset_us, conn_interval_us;
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u8_t ticker_id_scan, ticker_id_conn;
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u8_t peer_addr[BDADDR_SIZE];
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u32_t ticks_slot_overhead;
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u32_t ticks_slot_offset;
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struct ll_scan_set *scan;
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struct node_rx_cc *cc;
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struct ll_conn *conn;
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struct pdu_adv *pdu_tx;
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u8_t peer_addr_type;
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u32_t ticker_status;
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u8_t chan_sel;
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((struct lll_scan *)ftr->param)->conn = NULL;
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scan = ((struct lll_scan *)ftr->param)->hdr.parent;
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conn = lll->hdr.parent;
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pdu_tx = (void *)((struct node_rx_pdu *)rx)->pdu;
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peer_addr_type = pdu_tx->rx_addr;
|
|
memcpy(peer_addr, &pdu_tx->connect_ind.adv_addr[0], BDADDR_SIZE);
|
|
|
|
/* This is the chan sel bit from the received adv pdu */
|
|
chan_sel = pdu_tx->chan_sel;
|
|
|
|
cc = (void *)pdu_tx;
|
|
cc->status = 0U;
|
|
cc->role = 0U;
|
|
|
|
#if defined(CONFIG_BT_CTLR_PRIVACY)
|
|
u8_t rl_idx = ftr->rl_idx;
|
|
|
|
if (ftr->lrpa_used) {
|
|
memcpy(&cc->local_rpa[0], &pdu_tx->connect_ind.init_addr[0],
|
|
BDADDR_SIZE);
|
|
} else {
|
|
memset(&cc->local_rpa[0], 0x0, BDADDR_SIZE);
|
|
}
|
|
|
|
if (rl_idx != FILTER_IDX_NONE) {
|
|
/* Store identity address */
|
|
ll_rl_id_addr_get(rl_idx, &cc->peer_addr_type,
|
|
&cc->peer_addr[0]);
|
|
/* Mark it as identity address from RPA (0x02, 0x03) */
|
|
cc->peer_addr_type += 2;
|
|
|
|
/* Store peer RPA */
|
|
memcpy(&cc->peer_rpa[0], &peer_addr[0], BDADDR_SIZE);
|
|
} else {
|
|
memset(&cc->peer_rpa[0], 0x0, BDADDR_SIZE);
|
|
#else
|
|
if (1) {
|
|
#endif /* CONFIG_BT_CTLR_PRIVACY */
|
|
cc->peer_addr_type = peer_addr_type;
|
|
memcpy(cc->peer_addr, &peer_addr[0], BDADDR_SIZE);
|
|
}
|
|
|
|
cc->interval = lll->interval;
|
|
cc->latency = lll->latency;
|
|
cc->timeout = scan->lll.conn_timeout;
|
|
cc->sca = lll_conn_sca_local_get();
|
|
|
|
lll->handle = ll_conn_handle_get(conn);
|
|
rx->handle = lll->handle;
|
|
|
|
#if defined(CONFIG_BT_CTLR_TX_PWR_DYNAMIC_CONTROL)
|
|
lll->tx_pwr_lvl = RADIO_TXP_DEFAULT;
|
|
#endif /* CONFIG_BT_CTLR_TX_PWR_DYNAMIC_CONTROL */
|
|
|
|
/* Use Channel Selection Algorithm #2 if peer too supports it */
|
|
if (IS_ENABLED(CONFIG_BT_CTLR_CHAN_SEL_2)) {
|
|
struct node_rx_pdu *rx_csa;
|
|
struct node_rx_cs *cs;
|
|
|
|
/* pick the rx node instance stored within the connection
|
|
* rx node.
|
|
*/
|
|
rx_csa = (void *)ftr->extra;
|
|
|
|
/* Enqueue the connection event */
|
|
ll_rx_put(link, rx);
|
|
|
|
/* use the rx node for CSA event */
|
|
rx = (void *)rx_csa;
|
|
link = rx->link;
|
|
|
|
rx->handle = lll->handle;
|
|
rx->type = NODE_RX_TYPE_CHAN_SEL_ALGO;
|
|
|
|
cs = (void *)rx_csa->pdu;
|
|
|
|
if (chan_sel) {
|
|
u16_t aa_ls = ((u16_t)lll->access_addr[1] << 8) |
|
|
lll->access_addr[0];
|
|
u16_t aa_ms = ((u16_t)lll->access_addr[3] << 8) |
|
|
lll->access_addr[2];
|
|
|
|
lll->data_chan_sel = 1;
|
|
lll->data_chan_id = aa_ms ^ aa_ls;
|
|
|
|
cs->csa = 0x01;
|
|
} else {
|
|
cs->csa = 0x00;
|
|
}
|
|
}
|
|
|
|
ll_rx_put(link, rx);
|
|
ll_rx_sched();
|
|
|
|
/* TODO: active_to_start feature port */
|
|
conn->evt.ticks_active_to_start = 0U;
|
|
conn->evt.ticks_xtal_to_start =
|
|
HAL_TICKER_US_TO_TICKS(EVENT_OVERHEAD_XTAL_US);
|
|
conn->evt.ticks_preempt_to_start =
|
|
HAL_TICKER_US_TO_TICKS(EVENT_OVERHEAD_PREEMPT_MIN_US);
|
|
conn->evt.ticks_slot =
|
|
HAL_TICKER_US_TO_TICKS(EVENT_OVERHEAD_START_US +
|
|
ftr->us_radio_rdy + 328 + EVENT_IFS_US +
|
|
328);
|
|
|
|
ticks_slot_offset = MAX(conn->evt.ticks_active_to_start,
|
|
conn->evt.ticks_xtal_to_start);
|
|
|
|
if (IS_ENABLED(CONFIG_BT_CTLR_LOW_LAT)) {
|
|
ticks_slot_overhead = ticks_slot_offset;
|
|
} else {
|
|
ticks_slot_overhead = 0U;
|
|
}
|
|
|
|
conn_interval_us = lll->interval * 1250;
|
|
conn_offset_us = ftr->us_radio_end;
|
|
conn_offset_us += HAL_TICKER_TICKS_TO_US(1);
|
|
conn_offset_us -= EVENT_OVERHEAD_START_US;
|
|
conn_offset_us -= ftr->us_radio_rdy;
|
|
|
|
#if (CONFIG_BT_CTLR_ULL_HIGH_PRIO == CONFIG_BT_CTLR_ULL_LOW_PRIO)
|
|
/* disable ticker job, in order to chain stop and start to avoid RTC
|
|
* being stopped if no tickers active.
|
|
*/
|
|
mayfly_enable(TICKER_USER_ID_ULL_HIGH, TICKER_USER_ID_ULL_LOW, 0);
|
|
#endif
|
|
|
|
/* Stop Scanner */
|
|
ticker_id_scan = TICKER_ID_SCAN_BASE + ull_scan_handle_get(scan);
|
|
ticker_status = ticker_stop(TICKER_INSTANCE_ID_CTLR,
|
|
TICKER_USER_ID_ULL_HIGH,
|
|
ticker_id_scan, ticker_op_stop_scan_cb,
|
|
(void *)(u32_t)ticker_id_scan);
|
|
ticker_op_stop_scan_cb(ticker_status, (void *)(u32_t)ticker_id_scan);
|
|
|
|
/* Scanner stop can expire while here in this ISR.
|
|
* Deferred attempt to stop can fail as it would have
|
|
* expired, hence ignore failure.
|
|
*/
|
|
ticker_stop(TICKER_INSTANCE_ID_CTLR, TICKER_USER_ID_ULL_HIGH,
|
|
TICKER_ID_SCAN_STOP, NULL, NULL);
|
|
|
|
/* Start master */
|
|
ticker_id_conn = TICKER_ID_CONN_BASE + ll_conn_handle_get(conn);
|
|
ticker_status = ticker_start(TICKER_INSTANCE_ID_CTLR,
|
|
TICKER_USER_ID_ULL_HIGH,
|
|
ticker_id_conn,
|
|
ftr->ticks_anchor - ticks_slot_offset,
|
|
HAL_TICKER_US_TO_TICKS(conn_offset_us),
|
|
HAL_TICKER_US_TO_TICKS(conn_interval_us),
|
|
HAL_TICKER_REMAINDER(conn_interval_us),
|
|
TICKER_NULL_LAZY,
|
|
(conn->evt.ticks_slot +
|
|
ticks_slot_overhead),
|
|
ull_master_ticker_cb, conn, ticker_op_cb,
|
|
(void *)__LINE__);
|
|
LL_ASSERT((ticker_status == TICKER_STATUS_SUCCESS) ||
|
|
(ticker_status == TICKER_STATUS_BUSY));
|
|
|
|
#if (CONFIG_BT_CTLR_ULL_HIGH_PRIO == CONFIG_BT_CTLR_ULL_LOW_PRIO)
|
|
/* enable ticker job, irrespective of disabled in this function so
|
|
* first connection event can be scheduled as soon as possible.
|
|
*/
|
|
mayfly_enable(TICKER_USER_ID_ULL_HIGH, TICKER_USER_ID_ULL_LOW, 1);
|
|
#endif
|
|
}
|
|
|
|
void ull_master_ticker_cb(u32_t ticks_at_expire, u32_t remainder, u16_t lazy,
|
|
void *param)
|
|
{
|
|
static memq_link_t link;
|
|
static struct mayfly mfy = {0, 0, &link, NULL, lll_master_prepare};
|
|
static struct lll_prepare_param p;
|
|
struct ll_conn *conn = param;
|
|
u32_t err;
|
|
u8_t ref;
|
|
|
|
DEBUG_RADIO_PREPARE_M(1);
|
|
|
|
/* If this is a must-expire callback, LLCP state machine does not need
|
|
* to know. Will be called with lazy > 0 when scheduled in air.
|
|
*/
|
|
if (!IS_ENABLED(CONFIG_BT_CTLR_CONN_META) ||
|
|
(lazy != TICKER_LAZY_MUST_EXPIRE)) {
|
|
int ret;
|
|
|
|
/* Handle any LL Control Procedures */
|
|
ret = ull_conn_llcp(conn, ticks_at_expire, lazy);
|
|
if (ret) {
|
|
return;
|
|
}
|
|
}
|
|
|
|
/* Increment prepare reference count */
|
|
ref = ull_ref_inc(&conn->ull);
|
|
LL_ASSERT(ref);
|
|
|
|
/* De-mux 1 tx node from FIFO */
|
|
ull_conn_tx_demux(1);
|
|
|
|
/* Enqueue towards LLL */
|
|
ull_conn_tx_lll_enqueue(conn, 1);
|
|
|
|
/* Append timing parameters */
|
|
p.ticks_at_expire = ticks_at_expire;
|
|
p.remainder = remainder;
|
|
p.lazy = lazy;
|
|
p.param = &conn->lll;
|
|
mfy.param = &p;
|
|
|
|
/* Kick LLL prepare */
|
|
err = mayfly_enqueue(TICKER_USER_ID_ULL_HIGH, TICKER_USER_ID_LLL,
|
|
0, &mfy);
|
|
LL_ASSERT(!err);
|
|
|
|
/* De-mux remaining tx nodes from FIFO */
|
|
ull_conn_tx_demux(UINT8_MAX);
|
|
|
|
/* Enqueue towards LLL */
|
|
ull_conn_tx_lll_enqueue(conn, UINT8_MAX);
|
|
|
|
DEBUG_RADIO_PREPARE_M(1);
|
|
}
|
|
|
|
static void ticker_op_stop_scan_cb(u32_t status, void *params)
|
|
{
|
|
/* TODO: */
|
|
}
|
|
|
|
static void ticker_op_cb(u32_t status, void *params)
|
|
{
|
|
ARG_UNUSED(params);
|
|
|
|
LL_ASSERT(status == TICKER_STATUS_SUCCESS);
|
|
}
|
|
|
|
/** @brief Prepare access address as per BT Spec.
|
|
*
|
|
* - It shall have no more than six consecutive zeros or ones.
|
|
* - It shall not be the advertising channel packets' Access Address.
|
|
* - It shall not be a sequence that differs from the advertising channel
|
|
* packets Access Address by only one bit.
|
|
* - It shall not have all four octets equal.
|
|
* - It shall have no more than 24 transitions.
|
|
* - It shall have a minimum of two transitions in the most significant six
|
|
* bits.
|
|
*
|
|
* LE Coded PHY requirements:
|
|
* - It shall have at least three ones in the least significant 8 bits.
|
|
* - It shall have no more than eleven transitions in the least significant 16
|
|
* bits.
|
|
*/
|
|
static inline void access_addr_get(u8_t access_addr[])
|
|
{
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
u8_t transitions_lsb16;
|
|
u8_t ones_count_lsb8;
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
u8_t consecutive_cnt;
|
|
u8_t consecutive_bit;
|
|
u32_t adv_aa_check;
|
|
u32_t aa;
|
|
u8_t transitions;
|
|
u8_t bit_idx;
|
|
u8_t retry;
|
|
|
|
retry = 3U;
|
|
again:
|
|
LL_ASSERT(retry);
|
|
retry--;
|
|
|
|
util_rand(access_addr, 4);
|
|
aa = sys_get_le32(access_addr);
|
|
|
|
bit_idx = 31U;
|
|
transitions = 0U;
|
|
consecutive_cnt = 1U;
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
ones_count_lsb8 = 0U;
|
|
transitions_lsb16 = 0U;
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
consecutive_bit = (aa >> bit_idx) & 0x01;
|
|
while (bit_idx--) {
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
u8_t transitions_lsb16_prev = transitions_lsb16;
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
u8_t consecutive_cnt_prev = consecutive_cnt;
|
|
u8_t transitions_prev = transitions;
|
|
u8_t bit;
|
|
|
|
bit = (aa >> bit_idx) & 0x01;
|
|
if (bit == consecutive_bit) {
|
|
consecutive_cnt++;
|
|
} else {
|
|
consecutive_cnt = 1U;
|
|
consecutive_bit = bit;
|
|
transitions++;
|
|
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
if (bit_idx < 15) {
|
|
transitions_lsb16++;
|
|
}
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
}
|
|
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
if ((bit_idx < 8) && consecutive_bit) {
|
|
ones_count_lsb8++;
|
|
}
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
|
|
/* It shall have no more than six consecutive zeros or ones. */
|
|
/* It shall have a minimum of two transitions in the most
|
|
* significant six bits.
|
|
*/
|
|
if ((consecutive_cnt > 6) ||
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
(!consecutive_bit && (((bit_idx < 6) &&
|
|
(ones_count_lsb8 < 1)) ||
|
|
((bit_idx < 5) &&
|
|
(ones_count_lsb8 < 2)) ||
|
|
((bit_idx < 4) &&
|
|
(ones_count_lsb8 < 3)))) ||
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
((consecutive_cnt < 6) &&
|
|
(((bit_idx < 29) && (transitions < 1)) ||
|
|
((bit_idx < 28) && (transitions < 2))))) {
|
|
if (consecutive_bit) {
|
|
consecutive_bit = 0U;
|
|
aa &= ~BIT(bit_idx);
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
if (bit_idx < 8) {
|
|
ones_count_lsb8--;
|
|
}
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
} else {
|
|
consecutive_bit = 1U;
|
|
aa |= BIT(bit_idx);
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
if (bit_idx < 8) {
|
|
ones_count_lsb8++;
|
|
}
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
}
|
|
|
|
if (transitions != transitions_prev) {
|
|
consecutive_cnt = consecutive_cnt_prev;
|
|
transitions = transitions_prev;
|
|
} else {
|
|
consecutive_cnt = 1U;
|
|
transitions++;
|
|
}
|
|
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
if (bit_idx < 15) {
|
|
if (transitions_lsb16 !=
|
|
transitions_lsb16_prev) {
|
|
transitions_lsb16 =
|
|
transitions_lsb16_prev;
|
|
} else {
|
|
transitions_lsb16++;
|
|
}
|
|
}
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
}
|
|
|
|
/* It shall have no more than 24 transitions
|
|
* It shall have no more than eleven transitions in the least
|
|
* significant 16 bits.
|
|
*/
|
|
if ((transitions > 24) ||
|
|
#if defined(CONFIG_BT_CTLR_PHY_CODED)
|
|
(transitions_lsb16 > 11) ||
|
|
#endif /* CONFIG_BT_CTLR_PHY_CODED */
|
|
0) {
|
|
if (consecutive_bit) {
|
|
aa &= ~(BIT(bit_idx + 1) - 1);
|
|
} else {
|
|
aa |= (BIT(bit_idx + 1) - 1);
|
|
}
|
|
|
|
break;
|
|
}
|
|
}
|
|
|
|
/* It shall not be the advertising channel packets Access Address.
|
|
* It shall not be a sequence that differs from the advertising channel
|
|
* packets Access Address by only one bit.
|
|
*/
|
|
adv_aa_check = aa ^ PDU_AC_ACCESS_ADDR;
|
|
if (util_ones_count_get((u8_t *)&adv_aa_check,
|
|
sizeof(adv_aa_check)) <= 1) {
|
|
goto again;
|
|
}
|
|
|
|
/* It shall not have all four octets equal. */
|
|
if (!((aa & 0xFFFF) ^ (aa >> 16)) &&
|
|
!((aa & 0xFF) ^ (aa >> 24))) {
|
|
goto again;
|
|
}
|
|
|
|
sys_put_le32(aa, access_addr);
|
|
}
|
|
|
|
static inline void conn_release(struct ll_scan_set *scan)
|
|
{
|
|
struct lll_conn *lll = scan->lll.conn;
|
|
struct node_rx_pdu *cc;
|
|
struct ll_conn *conn;
|
|
memq_link_t *link;
|
|
|
|
LL_ASSERT(!lll->link_tx_free);
|
|
link = memq_deinit(&lll->memq_tx.head, &lll->memq_tx.tail);
|
|
LL_ASSERT(link);
|
|
lll->link_tx_free = link;
|
|
|
|
conn = (void *)HDR_LLL2EVT(lll);
|
|
|
|
cc = (void *)&conn->llcp_terminate.node_rx;
|
|
link = cc->hdr.link;
|
|
LL_ASSERT(link);
|
|
|
|
ll_rx_link_release(link);
|
|
|
|
ll_conn_release(conn);
|
|
scan->lll.conn = NULL;
|
|
}
|