/*! * \file galileo_e5a_pcps_acquisition.cc * \brief Adapts a PCPS acquisition block to an AcquisitionInterface for * Galileo E5a data and pilot Signals * \author Antonio Ramos, 2018. antonio.ramos(at)cttc.es * ------------------------------------------------------------------------- * * Copyright (C) 2010-2018 (see AUTHORS file for a list of contributors) * * GNSS-SDR is a software defined Global Navigation * Satellite Systems receiver * * This file is part of GNSS-SDR. * * GNSS-SDR is free software: you can redistribute it and/or modify * it under the terms of the GNU General Public License as published by * the Free Software Foundation, either version 3 of the License, or * (at your option) any later version. * * GNSS-SDR is distributed in the hope that it will be useful, * but WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the * GNU General Public License for more details. * * You should have received a copy of the GNU General Public License * along with GNSS-SDR. If not, see . * * ------------------------------------------------------------------------- */ #include "galileo_e5a_pcps_acquisition.h" #include "Galileo_E5a.h" #include "acq_conf.h" #include "configuration_interface.h" #include "galileo_e5_signal_processing.h" #include "gnss_sdr_flags.h" #include #include #include using google::LogMessage; GalileoE5aPcpsAcquisition::GalileoE5aPcpsAcquisition(ConfigurationInterface* configuration, const std::string& role, unsigned int in_streams, unsigned int out_streams) : role_(role), in_streams_(in_streams), out_streams_(out_streams) { configuration_ = configuration; std::string default_item_type = "gr_complex"; std::string default_dump_filename = "./acquisition.mat"; DLOG(INFO) << "Role " << role; item_type_ = configuration_->property(role + ".item_type", default_item_type); int64_t fs_in_deprecated = configuration_->property("GNSS-SDR.internal_fs_hz", 32000000); fs_in_ = configuration_->property("GNSS-SDR.internal_fs_sps", fs_in_deprecated); acq_parameters_.fs_in = fs_in_; acq_pilot_ = configuration_->property(role + ".acquire_pilot", false); acq_iq_ = configuration_->property(role + ".acquire_iq", false); if (acq_iq_) { acq_pilot_ = false; } dump_ = configuration_->property(role + ".dump", false); acq_parameters_.dump = dump_; acq_parameters_.dump_channel = configuration_->property(role + ".dump_channel", 0); doppler_max_ = configuration_->property(role + ".doppler_max", 5000); if (FLAGS_doppler_max != 0) { doppler_max_ = FLAGS_doppler_max; } acq_parameters_.doppler_max = doppler_max_; sampled_ms_ = 1; max_dwells_ = configuration_->property(role + ".max_dwells", 1); acq_parameters_.max_dwells = max_dwells_; dump_filename_ = configuration_->property(role + ".dump_filename", default_dump_filename); acq_parameters_.dump_filename = dump_filename_; bit_transition_flag_ = configuration_->property(role + ".bit_transition_flag", false); acq_parameters_.bit_transition_flag = bit_transition_flag_; use_CFAR_ = configuration_->property(role + ".use_CFAR_algorithm", false); acq_parameters_.use_CFAR_algorithm_flag = use_CFAR_; blocking_ = configuration_->property(role + ".blocking", true); acq_parameters_.blocking = blocking_; acq_parameters_.use_automatic_resampler = configuration_->property("GNSS-SDR.use_acquisition_resampler", false); if (acq_parameters_.use_automatic_resampler == true and item_type_ != "gr_complex") { LOG(WARNING) << "Galileo E5a acquisition disabled the automatic resampler feature because its item_type is not set to gr_complex"; acq_parameters_.use_automatic_resampler = false; } if (acq_parameters_.use_automatic_resampler) { if (acq_parameters_.fs_in > GALILEO_E5A_OPT_ACQ_FS_HZ) { acq_parameters_.resampler_ratio = floor(static_cast(acq_parameters_.fs_in) / GALILEO_E5A_OPT_ACQ_FS_HZ); uint32_t decimation = acq_parameters_.fs_in / GALILEO_E5A_OPT_ACQ_FS_HZ; while (acq_parameters_.fs_in % decimation > 0) { decimation--; }; acq_parameters_.resampler_ratio = decimation; acq_parameters_.resampled_fs = acq_parameters_.fs_in / static_cast(acq_parameters_.resampler_ratio); } //--- Find number of samples per spreading code ------------------------- code_length_ = static_cast(std::floor(static_cast(acq_parameters_.resampled_fs) / (GALILEO_E5A_CODE_CHIP_RATE_HZ / GALILEO_E5A_CODE_LENGTH_CHIPS))); acq_parameters_.samples_per_ms = static_cast(acq_parameters_.resampled_fs) * 0.001; acq_parameters_.samples_per_chip = static_cast(ceil((1.0 / GALILEO_E5A_CODE_CHIP_RATE_HZ) * static_cast(acq_parameters_.resampled_fs))); } else { acq_parameters_.resampled_fs = fs_in_; //--- Find number of samples per spreading code ------------------------- code_length_ = static_cast(std::floor(static_cast(fs_in_) / (GALILEO_E5A_CODE_CHIP_RATE_HZ / GALILEO_E5A_CODE_LENGTH_CHIPS))); acq_parameters_.samples_per_ms = static_cast(fs_in_) * 0.001; acq_parameters_.samples_per_chip = static_cast(ceil((1.0 / GALILEO_E5A_CODE_CHIP_RATE_HZ) * static_cast(acq_parameters_.fs_in))); } //--- Find number of samples per spreading code (1ms)------------------------- code_length_ = static_cast(std::round(static_cast(fs_in_) / GALILEO_E5A_CODE_CHIP_RATE_HZ * static_cast(GALILEO_E5A_CODE_LENGTH_CHIPS))); vector_length_ = code_length_ * sampled_ms_; code_ = new gr_complex[vector_length_]; if (item_type_ == "gr_complex") { item_size_ = sizeof(gr_complex); } else if (item_type_ == "cshort") { item_size_ = sizeof(lv_16sc_t); } else { item_size_ = sizeof(gr_complex); LOG(WARNING) << item_type_ << " unknown acquisition item type"; } acq_parameters_.it_size = item_size_; acq_parameters_.sampled_ms = sampled_ms_; acq_parameters_.ms_per_code = 1; acq_parameters_.samples_per_code = acq_parameters_.samples_per_ms * static_cast(GALILEO_E5A_CODE_PERIOD_MS); acq_parameters_.num_doppler_bins_step2 = configuration_->property(role + ".second_nbins", 4); acq_parameters_.doppler_step2 = configuration_->property(role + ".second_doppler_step", 125.0); acq_parameters_.make_2_steps = configuration_->property(role + ".make_two_steps", false); acq_parameters_.blocking_on_standby = configuration_->property(role + ".blocking_on_standby", false); acquisition_ = pcps_make_acquisition(acq_parameters_); channel_ = 0; threshold_ = 0.0; doppler_step_ = 0; gnss_synchro_ = nullptr; if (in_streams_ > 1) { LOG(ERROR) << "This implementation only supports one input stream"; } if (out_streams_ > 0) { LOG(ERROR) << "This implementation does not provide an output stream"; } } GalileoE5aPcpsAcquisition::~GalileoE5aPcpsAcquisition() { delete[] code_; } void GalileoE5aPcpsAcquisition::stop_acquisition() { } void GalileoE5aPcpsAcquisition::set_channel(unsigned int channel) { channel_ = channel; acquisition_->set_channel(channel_); } void GalileoE5aPcpsAcquisition::set_threshold(float threshold) { float pfa = configuration_->property(role_ + std::to_string(channel_) + ".pfa", 0.0); if (pfa == 0.0) { pfa = configuration_->property(role_ + ".pfa", 0.0); } if (pfa == 0.0) { threshold_ = threshold; } else { threshold_ = calculate_threshold(pfa); } DLOG(INFO) << "Channel " << channel_ << " Threshold = " << threshold_; acquisition_->set_threshold(threshold_); } void GalileoE5aPcpsAcquisition::set_doppler_max(unsigned int doppler_max) { doppler_max_ = doppler_max; acquisition_->set_doppler_max(doppler_max_); } void GalileoE5aPcpsAcquisition::set_doppler_step(unsigned int doppler_step) { doppler_step_ = doppler_step; acquisition_->set_doppler_step(doppler_step_); } void GalileoE5aPcpsAcquisition::set_gnss_synchro(Gnss_Synchro* gnss_synchro) { gnss_synchro_ = gnss_synchro; acquisition_->set_gnss_synchro(gnss_synchro_); } signed int GalileoE5aPcpsAcquisition::mag() { return acquisition_->mag(); } void GalileoE5aPcpsAcquisition::init() { acquisition_->init(); } void GalileoE5aPcpsAcquisition::set_local_code() { auto* code = new gr_complex[code_length_]; char signal_[3]; if (acq_iq_) { strcpy(signal_, "5X"); } else if (acq_pilot_) { strcpy(signal_, "5Q"); } else { strcpy(signal_, "5I"); } if (acq_parameters_.use_automatic_resampler) { galileo_e5_a_code_gen_complex_sampled(code, signal_, gnss_synchro_->PRN, acq_parameters_.resampled_fs, 0); } else { galileo_e5_a_code_gen_complex_sampled(code, signal_, gnss_synchro_->PRN, fs_in_, 0); } for (unsigned int i = 0; i < sampled_ms_; i++) { memcpy(code_ + (i * code_length_), code, sizeof(gr_complex) * code_length_); } acquisition_->set_local_code(code_); delete[] code; } void GalileoE5aPcpsAcquisition::reset() { acquisition_->set_active(true); } float GalileoE5aPcpsAcquisition::calculate_threshold(float pfa) { unsigned int frequency_bins = 0; for (int doppler = static_cast(-doppler_max_); doppler <= static_cast(doppler_max_); doppler += doppler_step_) { frequency_bins++; } DLOG(INFO) << "Channel " << channel_ << " Pfa = " << pfa; unsigned int ncells = vector_length_ * frequency_bins; double exponent = 1 / static_cast(ncells); double val = pow(1.0 - pfa, exponent); auto lambda = double(vector_length_); boost::math::exponential_distribution mydist(lambda); auto threshold = static_cast(quantile(mydist, val)); return threshold; } void GalileoE5aPcpsAcquisition::set_state(int state) { acquisition_->set_state(state); } void GalileoE5aPcpsAcquisition::connect(gr::top_block_sptr top_block __attribute__((unused))) { if (item_type_ == "gr_complex") { // nothing to connect } else if (item_type_ == "cshort") { // nothing to connect } else { LOG(WARNING) << item_type_ << " unknown acquisition item type"; } } void GalileoE5aPcpsAcquisition::disconnect(gr::top_block_sptr top_block __attribute__((unused))) { if (item_type_ == "gr_complex") { // nothing to disconnect } else if (item_type_ == "cshort") { // nothing to disconnect } else { LOG(WARNING) << item_type_ << " unknown acquisition item type"; } } gr::basic_block_sptr GalileoE5aPcpsAcquisition::get_left_block() { return acquisition_; } gr::basic_block_sptr GalileoE5aPcpsAcquisition::get_right_block() { return acquisition_; } void GalileoE5aPcpsAcquisition::set_resampler_latency(uint32_t latency_samples) { acquisition_->set_resampler_latency(latency_samples); }