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172 lines
6.3 KiB
C
172 lines
6.3 KiB
C
/**
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* Copyright 2013-2021 Software Radio Systems Limited
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*
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* This file is part of srsRAN.
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*
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* srsRAN is free software: you can redistribute it and/or modify
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* it under the terms of the GNU Affero General Public License as
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* published by the Free Software Foundation, either version 3 of
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* the License, or (at your option) any later version.
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*
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* srsRAN is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU Affero General Public License for more details.
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*
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* A copy of the GNU Affero General Public License can be found in
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* the LICENSE file in the top-level directory of this distribution
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* and at http://www.gnu.org/licenses/.
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*
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*/
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/******************************************************************************
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* File: enb_dl.h
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*
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* Description: ENB downlink object.
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*
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* This module is a frontend to all the downlink data and control
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* channel processing modules for the ENB transmitter side.
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*
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* Reference:
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*****************************************************************************/
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#ifndef SRSRAN_ENB_DL_H
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#define SRSRAN_ENB_DL_H
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#include <stdbool.h>
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#include "srsran/phy/ch_estimation/refsignal_dl.h"
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#include "srsran/phy/common/phy_common.h"
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#include "srsran/phy/dft/ofdm.h"
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#include "srsran/phy/phch/dci.h"
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#include "srsran/phy/phch/pbch.h"
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#include "srsran/phy/phch/pcfich.h"
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#include "srsran/phy/phch/pdcch.h"
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#include "srsran/phy/phch/pdsch.h"
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#include "srsran/phy/phch/pdsch_cfg.h"
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#include "srsran/phy/phch/phich.h"
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#include "srsran/phy/phch/pmch.h"
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#include "srsran/phy/phch/ra.h"
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#include "srsran/phy/phch/regs.h"
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#include "srsran/phy/sync/pss.h"
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#include "srsran/phy/sync/sss.h"
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#include "srsran/phy/enb/enb_ul.h"
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#include "srsran/phy/ue/ue_dl.h"
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#include "srsran/phy/utils/debug.h"
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#include "srsran/phy/utils/vector.h"
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#include "srsran/config.h"
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typedef struct SRSRAN_API {
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srsran_cell_t cell;
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srsran_dl_sf_cfg_t dl_sf;
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cf_t* sf_symbols[SRSRAN_MAX_PORTS];
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cf_t* out_buffer[SRSRAN_MAX_PORTS];
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srsran_ofdm_t ifft[SRSRAN_MAX_PORTS];
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srsran_ofdm_t ifft_mbsfn;
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srsran_pbch_t pbch;
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srsran_pcfich_t pcfich;
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srsran_regs_t regs;
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srsran_pdcch_t pdcch;
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srsran_pdsch_t pdsch;
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srsran_pmch_t pmch;
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srsran_phich_t phich;
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srsran_refsignal_t csr_signal;
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srsran_refsignal_t mbsfnr_signal;
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cf_t pss_signal[SRSRAN_PSS_LEN];
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float sss_signal0[SRSRAN_SSS_LEN];
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float sss_signal5[SRSRAN_SSS_LEN];
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uint32_t nof_common_locations[3];
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srsran_dci_location_t common_locations[3][SRSRAN_MAX_CANDIDATES_COM];
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} srsran_enb_dl_t;
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typedef struct {
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uint8_t ack;
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uint32_t n_prb_lowest;
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uint32_t n_dmrs;
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} srsran_enb_dl_phich_t;
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/* This function shall be called just after the initial synchronization */
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SRSRAN_API int srsran_enb_dl_init(srsran_enb_dl_t* q, cf_t* out_buffer[SRSRAN_MAX_PORTS], uint32_t max_prb);
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SRSRAN_API void srsran_enb_dl_free(srsran_enb_dl_t* q);
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SRSRAN_API int srsran_enb_dl_set_cell(srsran_enb_dl_t* q, srsran_cell_t cell);
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SRSRAN_API bool srsran_enb_dl_location_is_common_ncce(srsran_enb_dl_t* q, uint32_t ncce);
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SRSRAN_API void srsran_enb_dl_put_base(srsran_enb_dl_t* q, srsran_dl_sf_cfg_t* dl_sf);
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SRSRAN_API void srsran_enb_dl_put_phich(srsran_enb_dl_t* q, srsran_phich_grant_t* grant, bool ack);
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SRSRAN_API int srsran_enb_dl_put_pdcch_dl(srsran_enb_dl_t* q, srsran_dci_cfg_t* dci_cfg, srsran_dci_dl_t* dci_dl);
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SRSRAN_API int srsran_enb_dl_put_pdcch_ul(srsran_enb_dl_t* q, srsran_dci_cfg_t* dci_cfg, srsran_dci_ul_t* dci_ul);
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SRSRAN_API int
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srsran_enb_dl_put_pdsch(srsran_enb_dl_t* q, srsran_pdsch_cfg_t* pdsch, uint8_t* data[SRSRAN_MAX_CODEWORDS]);
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SRSRAN_API int srsran_enb_dl_put_pmch(srsran_enb_dl_t* q, srsran_pmch_cfg_t* pmch_cfg, uint8_t* data);
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SRSRAN_API void srsran_enb_dl_gen_signal(srsran_enb_dl_t* q);
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SRSRAN_API bool srsran_enb_dl_gen_cqi_periodic(const srsran_cell_t* cell,
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const srsran_dl_cfg_t* dl_cfg,
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uint32_t tti,
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uint32_t last_ri,
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srsran_cqi_cfg_t* cqi_cfg);
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SRSRAN_API bool srsran_enb_dl_gen_cqi_aperiodic(const srsran_cell_t* cell,
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const srsran_dl_cfg_t* dl_cfg,
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uint32_t ri,
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srsran_cqi_cfg_t* cqi_cfg);
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SRSRAN_API void srsran_enb_dl_save_signal(srsran_enb_dl_t* q);
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/**
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* Generates the uplink control information configuration from the cell, subframe and HARQ ACK information. Note that
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* it expects the UCI configuration shall have been configured already with scheduling request and channel quality
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* information prior to this call.
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*
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* @param cell points to the physical layer cell parameters
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* @param sf points to the subframe configuration
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* @param ack_info is the HARQ-ACK information
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* @param uci_cfg the UCI configuration destination
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*/
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SRSRAN_API void srsran_enb_dl_gen_ack(const srsran_cell_t* cell,
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const srsran_dl_sf_cfg_t* sf,
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const srsran_pdsch_ack_t* ack_info,
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srsran_uci_cfg_t* uci_cfg);
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/**
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* gets the HARQ-ACK values from the received Uplink Control Information configuration, the cell, and HARQ ACK
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* info itself. Note that it expects that the HARQ-ACK info has been set prior the UCI Data decoding.
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*
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* @param cell points to the physical layer cell parameters
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* @param uci_cfg points to the UCI configration
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* @param uci_value points to the received UCI values
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* @param ack_info is the HARQ-ACK information
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*/
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SRSRAN_API void srsran_enb_dl_get_ack(const srsran_cell_t* cell,
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const srsran_uci_cfg_t* uci_cfg,
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const srsran_uci_value_t* uci_value,
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srsran_pdsch_ack_t* pdsch_ack);
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/**
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* Gets the maximum signal power in decibels full scale. It is equivalent to the transmit power if all resource elements
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* were populated.
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* @return The maximum power
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*/
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SRSRAN_API float srsran_enb_dl_get_maximum_signal_power_dBfs(uint32_t nof_prb);
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#endif // SRSRAN_ENB_DL_H
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