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387 lines
14 KiB
C++
387 lines
14 KiB
C++
//
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// Copyright 2010-2011,2014 Ettus Research LLC
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// Copyright 2018 Ettus Research, a National Instruments Company
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//
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// SPDX-License-Identifier: GPL-3.0-or-later
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//
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#include "ascii_art_dft.hpp" //implementation
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#include <uhd/usrp/multi_usrp.hpp>
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#include <uhd/utils/safe_main.hpp>
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#include <uhd/utils/thread.hpp>
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#include <curses.h>
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#include <boost/format.hpp>
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#include <boost/program_options.hpp>
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#include <chrono>
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#include <complex>
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#include <cstdlib>
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#include <iostream>
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#include <thread>
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namespace po = boost::program_options;
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using std::chrono::high_resolution_clock;
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int UHD_SAFE_MAIN(int argc, char* argv[])
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{
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// variables to be set by po
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std::string args, ant, subdev, ref;
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size_t num_bins;
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double rate, freq, gain, bw, frame_rate, step, power;
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float ref_lvl, dyn_rng;
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bool show_controls, show_gain_mode;
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// setup the program options
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po::options_description desc("Allowed options");
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// clang-format off
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desc.add_options()
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("help", "help message")
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("args", po::value<std::string>(&args)->default_value(""), "multi uhd device address args")
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// hardware parameters
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("rate", po::value<double>(&rate), "rate of incoming samples (sps)")
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("freq", po::value<double>(&freq), "RF center frequency in Hz")
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("gain", po::value<double>(&gain), "gain for the RF chain")
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("power", po::value<double>(&power), "Transmit power (if USRP supports it)")
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("ant", po::value<std::string>(&ant), "antenna selection")
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("subdev", po::value<std::string>(&subdev), "subdevice specification")
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("bw", po::value<double>(&bw), "analog frontend filter bandwidth in Hz")
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// display parameters
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("num-bins", po::value<size_t>(&num_bins)->default_value(512), "the number of bins in the DFT")
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("frame-rate", po::value<double>(&frame_rate)->default_value(5), "frame rate of the display (fps)")
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("ref-lvl", po::value<float>(&ref_lvl)->default_value(0), "reference level for the display (dB)")
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("dyn-rng", po::value<float>(&dyn_rng)->default_value(60), "dynamic range for the display (dB)")
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("ref", po::value<std::string>(&ref), "reference source (internal, external, gpsdo, mimo)")
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("step", po::value<double>(&step)->default_value(1e6), "tuning step for rate/bw/freq")
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("show-controls", po::value<bool>(&show_controls)->default_value(true), "show the keyboard controls")
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("int-n", "tune USRP with integer-N tuning")
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;
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// clang-format on
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po::variables_map vm;
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po::store(po::parse_command_line(argc, argv, desc), vm);
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po::notify(vm);
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// print the help message
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if (vm.count("help") or not vm.count("rate")) {
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std::cout << boost::format("UHD RX ASCII Art DFT %s") % desc << std::endl;
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return EXIT_FAILURE;
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}
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// create a usrp device
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std::cout << std::endl;
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std::cout << boost::format("Creating the usrp device with: %s...") % args
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<< std::endl;
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uhd::usrp::multi_usrp::sptr usrp = uhd::usrp::multi_usrp::make(args);
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// Lock mboard clocks
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if (vm.count("ref")) {
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usrp->set_clock_source(ref);
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}
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// always select the subdevice first, the channel mapping affects the other settings
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if (vm.count("subdev"))
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usrp->set_rx_subdev_spec(subdev);
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std::cout << boost::format("Using Device: %s") % usrp->get_pp_string() << std::endl;
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// set the sample rate
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if (not vm.count("rate")) {
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std::cerr << "Please specify the sample rate with --rate" << std::endl;
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return EXIT_FAILURE;
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}
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std::cout << boost::format("Setting RX Rate: %f Msps...") % (rate / 1e6) << std::endl;
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usrp->set_rx_rate(rate);
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std::cout << boost::format("Actual RX Rate: %f Msps...") % (usrp->get_rx_rate() / 1e6)
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<< std::endl
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<< std::endl;
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// set the center frequency
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if (not vm.count("freq")) {
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std::cerr << "Please specify the center frequency with --freq" << std::endl;
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return EXIT_FAILURE;
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}
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std::cout << boost::format("Setting RX Freq: %f MHz...") % (freq / 1e6) << std::endl;
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uhd::tune_request_t tune_request(freq);
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if (vm.count("int-n"))
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tune_request.args = uhd::device_addr_t("mode_n=integer");
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usrp->set_rx_freq(tune_request);
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std::cout << boost::format("Actual RX Freq: %f MHz...") % (usrp->get_rx_freq() / 1e6)
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<< std::endl
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<< std::endl;
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// set the antenna
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// note: must be set before any operation that requires the calibration table (like
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// power reference) otherwise the driver will look up the wrong antenna for the table
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if (vm.count("ant"))
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usrp->set_rx_antenna(ant);
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// set the rf gain
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if (vm.count("power")) {
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if (!usrp->has_rx_power_reference()) {
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std::cout << "ERROR: USRP does not have a reference power API on channel "
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<< 0 << "!" << std::endl;
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return EXIT_FAILURE;
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}
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std::cout << "Setting RX reference power level: " << power << " dBm..."
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<< std::endl;
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usrp->set_rx_power_reference(power);
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std::cout << "Actual RX reference power level: " << usrp->get_rx_power_reference()
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<< " dBm..." << std::endl;
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if (vm.count("gain")) {
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std::cout << "WARNING: If you specify both --power and --gain, "
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" the latter will be ignored."
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<< std::endl;
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}
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show_gain_mode = false;
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} else if (vm.count("gain")) {
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std::cout << boost::format("Setting RX Gain: %f dB...") % gain << std::endl;
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usrp->set_rx_gain(gain);
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std::cout << boost::format("Actual RX Gain: %f dB...") % usrp->get_rx_gain()
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<< std::endl
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<< std::endl;
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show_gain_mode = true;
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} else {
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gain = usrp->get_rx_gain();
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show_gain_mode = true;
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}
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// set the analog frontend filter bandwidth
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if (vm.count("bw")) {
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std::cout << boost::format("Setting RX Bandwidth: %f MHz...") % (bw / 1e6)
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<< std::endl;
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usrp->set_rx_bandwidth(bw);
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bw = usrp->get_rx_bandwidth();
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std::cout << boost::format("Actual RX Bandwidth: %f MHz...") % (bw / 1e6)
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<< std::endl
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<< std::endl;
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} else {
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bw = usrp->get_rx_bandwidth();
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}
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std::this_thread::sleep_for(std::chrono::seconds(1)); // allow for some setup time
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// Check Ref and LO Lock detect
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std::vector<std::string> sensor_names;
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sensor_names = usrp->get_rx_sensor_names(0);
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if (std::find(sensor_names.begin(), sensor_names.end(), "lo_locked")
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!= sensor_names.end()) {
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uhd::sensor_value_t lo_locked = usrp->get_rx_sensor("lo_locked", 0);
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std::cout << boost::format("Checking RX: %s ...") % lo_locked.to_pp_string()
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<< std::endl;
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UHD_ASSERT_THROW(lo_locked.to_bool());
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}
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sensor_names = usrp->get_mboard_sensor_names(0);
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if ((ref == "mimo")
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and (std::find(sensor_names.begin(), sensor_names.end(), "mimo_locked")
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!= sensor_names.end())) {
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uhd::sensor_value_t mimo_locked = usrp->get_mboard_sensor("mimo_locked", 0);
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std::cout << boost::format("Checking RX: %s ...") % mimo_locked.to_pp_string()
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<< std::endl;
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UHD_ASSERT_THROW(mimo_locked.to_bool());
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}
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if ((ref == "external")
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and (std::find(sensor_names.begin(), sensor_names.end(), "ref_locked")
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!= sensor_names.end())) {
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uhd::sensor_value_t ref_locked = usrp->get_mboard_sensor("ref_locked", 0);
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std::cout << boost::format("Checking RX: %s ...") % ref_locked.to_pp_string()
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<< std::endl;
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UHD_ASSERT_THROW(ref_locked.to_bool());
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}
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// create a receive streamer
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uhd::stream_args_t stream_args("fc32"); // complex floats
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uhd::rx_streamer::sptr rx_stream = usrp->get_rx_stream(stream_args);
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// allocate recv buffer and metatdata
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uhd::rx_metadata_t md;
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std::vector<std::complex<float>> buff(num_bins);
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//------------------------------------------------------------------
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//-- Initialize
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//------------------------------------------------------------------
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initscr(); // curses init
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rx_stream->issue_stream_cmd(uhd::stream_cmd_t::STREAM_MODE_START_CONTINUOUS);
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auto next_refresh = high_resolution_clock::now();
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//------------------------------------------------------------------
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//-- Main loop
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//------------------------------------------------------------------
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while (true) {
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// read a buffer's worth of samples every iteration
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size_t num_rx_samps = rx_stream->recv(&buff.front(), buff.size(), md);
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if (num_rx_samps != buff.size())
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continue;
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// check and update the display refresh condition
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if (high_resolution_clock::now() < next_refresh) {
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continue;
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}
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next_refresh = high_resolution_clock::now()
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+ std::chrono::microseconds(int64_t(1e6 / frame_rate));
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// calculate the dft and create the ascii art frame
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ascii_art_dft::log_pwr_dft_type lpdft(
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ascii_art_dft::log_pwr_dft(&buff.front(), num_rx_samps));
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std::string frame = ascii_art_dft::dft_to_plot(lpdft,
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COLS,
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(show_controls ? LINES - 6 : LINES),
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usrp->get_rx_rate(),
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usrp->get_rx_freq(),
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dyn_rng,
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ref_lvl);
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std::string border = std::string((COLS), '-');
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// curses screen handling: clear and print frame
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clear();
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if (show_controls) {
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printw("%s", border.c_str());
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if (show_gain_mode) {
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printw("[f-F]req: %4.3f MHz | [r-R]ate: %2.2f Msps |"
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" [b-B]w: %2.2f MHz | [g-G]ain: %2.0f dB\n\n",
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freq / 1e6,
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rate / 1e6,
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bw / 1e6,
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gain);
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} else {
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printw("[f-F]req: %4.3f MHz | [r-R]ate: %2.2f Msps |"
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" [b-B]w: %2.2f MHz | [p-P]ower: %2.0f dBm\n\n",
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freq / 1e6,
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rate / 1e6,
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bw / 1e6,
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power);
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}
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printw("[d-D]yn Range: %2.0f dB | Ref [l-L]evel: %2.0f dB |"
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" fp[s-S] : %2.0f | [t-T]uning step: %3.3f M\n",
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dyn_rng,
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ref_lvl,
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frame_rate,
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step / 1e6);
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printw("(press c to toggle controls)\n");
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printw("%s", border.c_str());
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}
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printw("%s", frame.c_str());
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// curses key handling: no timeout, any key to exit
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timeout(0);
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int ch = getch();
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// Key handling.
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if (ch == 'r') {
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rate -= step;
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usrp->set_rx_rate(rate);
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freq = usrp->get_rx_freq();
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}
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else if (ch == 'R') {
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rate += step;
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usrp->set_rx_rate(rate);
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freq = usrp->get_rx_freq();
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}
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else if (ch == 'p' && !show_gain_mode) {
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power -= 1;
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usrp->set_rx_power_reference(power);
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power = usrp->get_rx_power_reference();
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}
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else if (ch == 'P' && !show_gain_mode) {
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power += 1;
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usrp->set_rx_power_reference(power);
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power = usrp->get_rx_power_reference();
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}
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else if (ch == 'g' && show_gain_mode) {
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gain -= 1;
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usrp->set_rx_gain(gain);
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gain = usrp->get_rx_gain();
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}
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else if (ch == 'G' && show_gain_mode) {
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gain += 1;
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usrp->set_rx_gain(gain);
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gain = usrp->get_rx_gain();
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}
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else if (ch == 'b') {
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bw -= step;
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usrp->set_rx_bandwidth(bw);
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bw = usrp->get_rx_bandwidth();
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}
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else if (ch == 'B') {
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bw += step;
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usrp->set_rx_bandwidth(bw);
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bw = usrp->get_rx_bandwidth();
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}
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else if (ch == 'f') {
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freq -= step;
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usrp->set_rx_freq(freq);
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freq = usrp->get_rx_freq();
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}
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else if (ch == 'F') {
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freq += step;
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usrp->set_rx_freq(freq);
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freq = usrp->get_rx_freq();
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}
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else if (ch == 'l')
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ref_lvl -= 10;
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else if (ch == 'L')
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ref_lvl += 10;
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else if (ch == 'd') {
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if (dyn_rng > 10) {
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dyn_rng -= 10;
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}
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} else if (ch == 'D')
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dyn_rng += 10;
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else if (ch == 's') {
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if (frame_rate > 1) {
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frame_rate -= 1;
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}
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} else if (ch == 'S') {
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frame_rate += 1;
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} else if (ch == 't') {
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if (step > 1) {
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step /= 2;
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}
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} else if (ch == 'T')
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step *= 2;
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else if (ch == 'c' || ch == 'C') {
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show_controls = !show_controls;
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}
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// Arrow keypress generates 3 characters:
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// '\033', '[', 'A'/'B'/'C'/'D' for Up / Down / Right / Left
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else if (ch == '\033') {
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getch();
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switch (getch()) {
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case 'A':
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case 'C':
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freq += step;
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usrp->set_rx_freq(freq);
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freq = usrp->get_rx_freq();
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break;
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case 'B':
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case 'D':
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freq -= step;
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usrp->set_rx_freq(freq);
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freq = usrp->get_rx_freq();
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break;
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}
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} else if (ch != KEY_RESIZE and ch != ERR)
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break;
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}
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//------------------------------------------------------------------
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//-- Cleanup
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//------------------------------------------------------------------
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rx_stream->issue_stream_cmd(uhd::stream_cmd_t::STREAM_MODE_STOP_CONTINUOUS);
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endwin(); // curses done
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// finished
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std::cout << std::endl << "Done!" << std::endl << std::endl;
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return EXIT_SUCCESS;
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}
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