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/**
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*
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* \section COPYRIGHT
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*
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* Copyright 2013-2021 Software Radio Systems Limited
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*
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* By using this file, you agree to the terms and conditions set
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* forth in the LICENSE file which can be found at the top level of
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* the distribution.
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*
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*/
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#ifndef SRSRAN_DUMMY_UE_STACK_H
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#define SRSRAN_DUMMY_UE_STACK_H
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#include "dummy_rx_harq_proc.h"
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#include "dummy_tx_harq_proc.h"
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#include "srsran/asn1/rrc_nr.h"
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#include "srsran/interfaces/ue_nr_interfaces.h"
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class ue_dummy_stack : public srsue::stack_interface_phy_nr
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{
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public:
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struct prach_metrics_t {
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uint32_t count;
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};
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struct metrics_t {
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std::map<uint32_t, prach_metrics_t> prach = {}; ///< PRACH metrics indexed with premable index
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uint32_t sr_count = 0; ///< Counts number of transmitted SR
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};
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private:
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srslog::basic_logger& logger = srslog::fetch_basic_logger("UE-STCK");
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std::mutex rnti_mutex;
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srsran_random_t random_gen = srsran_random_init(0x1323);
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srsran_rnti_type_t dl_rnti_type = srsran_rnti_type_c;
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uint16_t rnti = 0;
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bool valid = false;
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uint32_t sr_period = 0;
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uint32_t sr_count = 0;
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uint32_t prach_period = 0;
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uint32_t prach_preamble = 0;
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bool prach_pending = false;
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metrics_t metrics = {};
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srsue::phy_interface_stack_nr& phy;
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dummy_tx_harq_entity tx_harq_proc;
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dummy_rx_harq_entity rx_harq_proc;
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public:
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struct args_t {
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uint16_t rnti = 0x1234; ///< C-RNTI for PUSCH and PDSCH transmissions
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uint32_t sr_period = 0; ///< Indicates positive SR period in number of opportunities. Set to 0 to disable.
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uint32_t prach_period = 0; ///< Requests PHY to transmit PRACH periodically in frames. Set to 0 to disable.
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std::string log_level = "warning";
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};
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ue_dummy_stack(const args_t& args, srsue::phy_interface_stack_nr& phy_) :
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rnti(args.rnti), sr_period(args.sr_period), prach_period(args.prach_period), phy(phy_)
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{
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logger.set_level(srslog::str_to_basic_level(args.log_level));
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valid = true;
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}
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~ue_dummy_stack() { srsran_random_free(random_gen); }
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virtual void wait_tti()
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{
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// Do nothing
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}
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void in_sync() override {}
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void out_of_sync() override {}
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void run_tti(const uint32_t tti, const uint32_t tti_jump) override
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{
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wait_tti();
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// Run PRACH
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if (prach_period != 0) {
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uint32_t slot_idx = tti % SRSRAN_NSLOTS_PER_FRAME_NR(srsran_subcarrier_spacing_15kHz);
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uint32_t sfn = tti / SRSRAN_NSLOTS_PER_FRAME_NR(srsran_subcarrier_spacing_15kHz);
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if (not prach_pending and slot_idx == 0 and sfn % prach_period == 0) {
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prach_preamble = srsran_random_uniform_int_dist(random_gen, 0, 63);
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phy.send_prach(0, prach_preamble, 0.0f, 0.0f);
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prach_pending = true;
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}
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}
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}
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sched_rnti_t get_dl_sched_rnti_nr(const uint32_t tti) override
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{
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std::unique_lock<std::mutex> lock(rnti_mutex);
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return {rnti, dl_rnti_type};
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}
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sched_rnti_t get_ul_sched_rnti_nr(const uint32_t tti) override
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{
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std::unique_lock<std::mutex> lock(rnti_mutex);
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return {rnti, srsran_rnti_type_c};
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}
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void new_grant_dl(const uint32_t cc_idx, const mac_nr_grant_dl_t& grant, tb_action_dl_t* action) override
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{
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action->tb.enabled = true;
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action->tb.softbuffer = &rx_harq_proc[grant.pid].get_softbuffer(grant.ndi, grant.tbs);
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}
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void tb_decoded(const uint32_t cc_idx, const mac_nr_grant_dl_t& grant, tb_action_dl_result_t result) override {}
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void new_grant_ul(const uint32_t cc_idx, const mac_nr_grant_ul_t& grant, tb_action_ul_t* action) override
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{
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if (action == nullptr) {
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return;
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}
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action->tb.enabled = true;
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action->tb.payload = tx_harq_proc[grant.pid].get_tb(grant.tbs);
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action->tb.softbuffer = &tx_harq_proc[grant.pid].get_softbuffer(grant.ndi);
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}
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void prach_sent(uint32_t tti, uint32_t s_id, uint32_t t_id, uint32_t f_id, uint32_t ul_carrier_id) override
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{
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std::unique_lock<std::mutex> lock(rnti_mutex);
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dl_rnti_type = srsran_rnti_type_ra;
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rnti = 1 + s_id + 14 * t_id + 14 * 80 * f_id + 14 * 80 * 8 * ul_carrier_id;
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metrics.prach[prach_preamble].count++;
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prach_pending = false;
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}
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bool sr_opportunity(uint32_t tti, uint32_t sr_id, bool meas_gap, bool ul_sch_tx) override
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{
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if (sr_period == 0) {
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return false;
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}
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if (sr_count >= (sr_period - 1) and not ul_sch_tx) {
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metrics.sr_count++;
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sr_count = 0;
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return true;
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}
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sr_count++;
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return false;
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}
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bool is_valid() const { return valid; }
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metrics_t get_metrics() { return metrics; }
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void set_phy_config_complete(bool status) override {}
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void cell_search_found_cell(const cell_search_result_t& result) override
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{
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if (result.cell_found) {
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// Unpack MIB with ASN1
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asn1::rrc_nr::mib_s mib_asn1;
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asn1::cbit_ref cbit(result.pbch_msg.payload, SRSRAN_PBCH_MSG_NR_SZ);
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mib_asn1.unpack(cbit);
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// Convert MIB to JSON
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asn1::json_writer json;
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mib_asn1.to_json(json);
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// Unpack MIB with C lib
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srsran_mib_nr_t mib_c = {};
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srsran_pbch_msg_nr_mib_unpack(&result.pbch_msg, &mib_c);
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// Convert MIB from C lib to info
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std::array<char, 512> mib_info = {};
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srsran_pbch_msg_nr_mib_info(&mib_c, mib_info.data(), (uint32_t)mib_info.size());
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// Convert CSI to string
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std::array<char, 512> csi_info = {};
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srsran_csi_meas_info_short(&result.measurements, csi_info.data(), (uint32_t)csi_info.size());
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logger.info(
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"Cell found pci=%d %s %s ASN1: %s", result.pci, mib_info.data(), csi_info.data(), json.to_string().c_str());
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} else {
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logger.info("Cell not found\n");
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}
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}
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};
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#endif // SRSRAN_DUMMY_UE_STACK_H
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