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I was using this example for testing with the simulator. If there is a flow control failure, the original example would just silently finish, outputing the message "Done!" (Not even printing a timeout message). This commit asserts that the number of samples sent is equal to the number of samples provided. Signed-off-by: Samuel O'Brien <sam.obrien@ni.com>
243 lines
9.2 KiB
C++
243 lines
9.2 KiB
C++
//
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// Copyright 2011-2012,2014 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 <uhd/types/tune_request.hpp>
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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 <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 <csignal>
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#include <fstream>
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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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static bool stop_signal_called = false;
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void sig_int_handler(int)
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{
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stop_signal_called = true;
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}
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template <typename samp_type>
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void send_from_file(
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uhd::tx_streamer::sptr tx_stream, const std::string& file, size_t samps_per_buff)
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{
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uhd::tx_metadata_t md;
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md.start_of_burst = false;
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md.end_of_burst = false;
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std::vector<samp_type> buff(samps_per_buff);
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std::ifstream infile(file.c_str(), std::ifstream::binary);
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// loop until the entire file has been read
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while (not md.end_of_burst and not stop_signal_called) {
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infile.read((char*)&buff.front(), buff.size() * sizeof(samp_type));
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size_t num_tx_samps = size_t(infile.gcount() / sizeof(samp_type));
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md.end_of_burst = infile.eof();
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const size_t samples_sent = tx_stream->send(&buff.front(), num_tx_samps, md);
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if (samples_sent != num_tx_samps) {
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UHD_LOG_ERROR("TX-STREAM",
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"The tx_stream timed out sending " << num_tx_samps << " samples ("
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<< samples_sent << " sent).");
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return;
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}
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}
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infile.close();
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}
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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, file, type, ant, subdev, ref, wirefmt, channel;
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size_t spb;
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double rate, freq, gain, bw, delay, lo_offset;
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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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("file", po::value<std::string>(&file)->default_value("usrp_samples.dat"), "name of the file to read binary samples from")
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("type", po::value<std::string>(&type)->default_value("short"), "sample type: double, float, or short")
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("spb", po::value<size_t>(&spb)->default_value(10000), "samples per buffer")
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("rate", po::value<double>(&rate), "rate of outgoing samples")
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("freq", po::value<double>(&freq), "RF center frequency in Hz")
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("lo-offset", po::value<double>(&lo_offset)->default_value(0.0),
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"Offset for frontend LO in Hz (optional)")
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("gain", po::value<double>(&gain), "gain for the RF chain")
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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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("ref", po::value<std::string>(&ref)->default_value("internal"), "reference source (internal, external, mimo)")
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("wirefmt", po::value<std::string>(&wirefmt)->default_value("sc16"), "wire format (sc8 or sc16)")
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("delay", po::value<double>(&delay)->default_value(0.0), "specify a delay between repeated transmission of file (in seconds)")
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("channel", po::value<std::string>(&channel)->default_value("0"), "which channel to use")
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("repeat", "repeatedly transmit file")
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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")) {
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std::cout << boost::format("UHD TX samples from file %s") % desc << std::endl;
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return ~0;
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}
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bool repeat = vm.count("repeat") > 0;
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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_tx_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 ~0;
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}
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std::cout << boost::format("Setting TX Rate: %f Msps...") % (rate / 1e6) << std::endl;
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usrp->set_tx_rate(rate);
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std::cout << boost::format("Actual TX Rate: %f Msps...") % (usrp->get_tx_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 ~0;
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}
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std::cout << boost::format("Setting TX Freq: %f MHz...") % (freq / 1e6) << std::endl;
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std::cout << boost::format("Setting TX LO Offset: %f MHz...") % (lo_offset / 1e6)
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<< std::endl;
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uhd::tune_request_t tune_request;
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tune_request = uhd::tune_request_t(freq, lo_offset);
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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_tx_freq(tune_request);
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std::cout << boost::format("Actual TX Freq: %f MHz...") % (usrp->get_tx_freq() / 1e6)
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<< std::endl
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<< std::endl;
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// set the rf gain
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if (vm.count("gain")) {
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std::cout << boost::format("Setting TX Gain: %f dB...") % gain << std::endl;
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usrp->set_tx_gain(gain);
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std::cout << boost::format("Actual TX Gain: %f dB...") % usrp->get_tx_gain()
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<< std::endl
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<< std::endl;
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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 TX Bandwidth: %f MHz...") % (bw / 1e6)
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<< std::endl;
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usrp->set_tx_bandwidth(bw);
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std::cout << boost::format("Actual TX Bandwidth: %f MHz...")
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% (usrp->get_tx_bandwidth() / 1e6)
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<< std::endl
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<< std::endl;
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}
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// set the antenna
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if (vm.count("ant"))
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usrp->set_tx_antenna(ant);
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// allow for some setup time:
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std::this_thread::sleep_for(std::chrono::seconds(1));
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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_tx_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_tx_sensor("lo_locked", 0);
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std::cout << boost::format("Checking TX: %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 TX: %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 TX: %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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// set sigint if user wants to receive
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if (repeat) {
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std::signal(SIGINT, &sig_int_handler);
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std::cout << "Press Ctrl + C to stop streaming..." << std::endl;
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}
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// create a transmit streamer
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std::string cpu_format;
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std::vector<size_t> channel_nums;
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if (type == "double")
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cpu_format = "fc64";
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else if (type == "float")
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cpu_format = "fc32";
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else if (type == "short")
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cpu_format = "sc16";
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uhd::stream_args_t stream_args(cpu_format, wirefmt);
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channel_nums.push_back(boost::lexical_cast<size_t>(channel));
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stream_args.channels = channel_nums;
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uhd::tx_streamer::sptr tx_stream = usrp->get_tx_stream(stream_args);
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// send from file
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do {
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if (type == "double")
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send_from_file<std::complex<double>>(tx_stream, file, spb);
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else if (type == "float")
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send_from_file<std::complex<float>>(tx_stream, file, spb);
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else if (type == "short")
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send_from_file<std::complex<short>>(tx_stream, file, spb);
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else
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throw std::runtime_error("Unknown type " + type);
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if (repeat and delay > 0.0) {
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std::this_thread::sleep_for(std::chrono::milliseconds(int64_t(delay * 1000)));
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}
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} while (repeat and not stop_signal_called);
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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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