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https://github.com/RangeNetworks/openbts.git
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Replace the polyphase filter and resampler with a separate implementation using SSE enabled convolution. The USRP2 (including derived devices N200, N210) are the only supported devices that require sample rate conversion, so set the default resampling parameters for the 100 MHz FPGA clock. This changes the previous resampling ratios. 270.833 kHz -> 400 kHz (65 / 96) 270.833 kHz -> 390.625 kHz (52 / 75) The new resampling factor uses a USRP resampling factor of 256 instead of 250. On the device, this allows two halfband filters to be used rather than one. The end result is reduced distortial and aliasing effecits from CIC filter rolloff. B100 and USRP1 will no be supported at 400 ksps with these changes. Signed-off-by: Thomas Tsou <tom@tsou.cc> git-svn-id: http://wush.net/svn/range/software/public/openbts/trunk@6733 19bc5d8c-e614-43d4-8b26-e1612bc8e597
216 lines
5.3 KiB
C++
216 lines
5.3 KiB
C++
/*
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* Copyright 2008, 2009, 2010 Free Software Foundation, Inc.
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* Copyright 2010 Kestrel Signal Processing, Inc.
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*
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* This software is distributed under the terms of the GNU Affero Public License.
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* See the COPYING file in the main directory for details.
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*
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* This use of this software may be subject to additional restrictions.
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* See the LEGAL file in the main directory for details.
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This program 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 published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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This program 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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You should have received a copy of the GNU Affero General Public License
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along with this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include "Transceiver.h"
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#include "radioDevice.h"
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#include "DummyLoad.h"
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#include <time.h>
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#include <signal.h>
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#include <GSMCommon.h>
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#include <Logger.h>
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#include <Configuration.h>
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#define CONFIGDB "/etc/OpenBTS/OpenBTS.db"
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using namespace std;
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ConfigurationKeyMap getConfigurationKeys();
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ConfigurationTable gConfig(CONFIGDB, 0, getConfigurationKeys());
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volatile bool gbShutdown = false;
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static void ctrlCHandler(int signo)
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{
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cout << "Received shutdown signal" << endl;;
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gbShutdown = true;
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}
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/*
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* Attempt to open and test the database file before
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* accessing the configuration table. We do this because
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* the global table constructor cannot provide notification
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* in the event of failure.
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*/
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int testConfig(const char *filename)
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{
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int rc, val = 9999;
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sqlite3 *db;
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std::string test = "sadf732zdvj2";
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const char *keys[3] = {
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"Log.Level",
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"TRX.Port",
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"TRX.IP",
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};
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/* Try to open the database */
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rc = sqlite3_open(filename, &db);
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if (rc || !db) {
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std::cerr << "Config: Database could not be opened" << std::endl;
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return -1;
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} else {
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sqlite3_close(db);
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}
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/* Attempt to set a value in the global config */
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if (!gConfig.set(test, val)) {
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std::cerr << "Config: Failed to set test key - "
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<< "permission to access the database?" << std::endl;
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return -1;
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} else {
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gConfig.remove(test);
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}
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/* Attempt to query */
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for (int i = 0; i < 3; i++) {
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try {
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gConfig.getStr(keys[i]);
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} catch (...) {
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std::cerr << "Config: Failed query on " << keys[i] << std::endl;
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return -1;
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}
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}
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return 0;
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}
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int main(int argc, char *argv[])
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{
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int trxPort;
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std::string deviceArgs, logLevel, trxAddr;
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if (argc == 3)
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{
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deviceArgs = std::string(argv[2]);
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}
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else
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{
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deviceArgs = "";
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}
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if ( signal( SIGINT, ctrlCHandler ) == SIG_ERR )
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{
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cerr << "Couldn't install signal handler for SIGINT" << endl;
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exit(1);
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}
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if ( signal( SIGTERM, ctrlCHandler ) == SIG_ERR )
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{
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cerr << "Couldn't install signal handler for SIGTERM" << endl;
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exit(1);
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}
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// Configure logger.
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if (testConfig(CONFIGDB) < 0) {
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std::cerr << "Config: Database failure" << std::endl;
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return EXIT_FAILURE;
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}
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logLevel = gConfig.getStr("Log.Level");
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trxPort = gConfig.getNum("TRX.Port");
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trxAddr = gConfig.getStr("TRX.IP");
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gLogInit("transceiver", logLevel.c_str(), LOG_LOCAL7);
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srandom(time(NULL));
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RadioDevice *usrp = RadioDevice::make(SAMPSPERSYM);
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int radioType = usrp->open(deviceArgs);
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if (radioType < 0) {
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LOG(ALERT) << "Transceiver exiting..." << std::endl;
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return EXIT_FAILURE;
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}
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RadioInterface* radio;
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switch (radioType) {
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case RadioDevice::NORMAL:
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radio = new RadioInterface(usrp, 3, SAMPSPERSYM, false);
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break;
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case RadioDevice::RESAMP:
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radio = new RadioInterfaceResamp(usrp, 3, SAMPSPERSYM, false);
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break;
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default:
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LOG(ALERT) << "Unsupported configuration";
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return EXIT_FAILURE;
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}
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if (!radio->init()) {
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LOG(ALERT) << "Failed to initialize radio interface";
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}
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Transceiver *trx = new Transceiver(trxPort, trxAddr.c_str(),
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SAMPSPERSYM, GSM::Time(3,0), radio);
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if (!trx->init()) {
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LOG(ALERT) << "Failed to initialize transceiver";
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}
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trx->receiveFIFO(radio->receiveFIFO());
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trx->start();
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while (!gbShutdown) {
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sleep(1);
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}
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cout << "Shutting down transceiver..." << endl;
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delete trx;
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}
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ConfigurationKeyMap getConfigurationKeys()
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{
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ConfigurationKeyMap map;
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ConfigurationKey *tmp;
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tmp = new ConfigurationKey("TRX.RadioFrequencyOffset","128",
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"~170Hz steps",
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ConfigurationKey::FACTORY,
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ConfigurationKey::VALRANGE,
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"96:160",// educated guess
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true,
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"Fine-tuning adjustment for the transceiver master clock. "
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"Roughly 170 Hz/step. "
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"Set at the factory. "
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"Do not adjust without proper calibration."
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);
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map[tmp->getName()] = *tmp;
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delete tmp;
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tmp = new ConfigurationKey("TRX.TxAttenOffset","0",
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"dB of attenuation",
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ConfigurationKey::FACTORY,
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ConfigurationKey::VALRANGE,
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"0:100",// educated guess
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true,
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"Hardware-specific gain adjustment for transmitter, matched to the power amplifier, expessed as an attenuationi in dB. "
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"Set at the factory. "
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"Do not adjust without proper calibration."
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);
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map[tmp->getName()] = *tmp;
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delete tmp;
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return map;
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}
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