131   tripods_container       tripods;                              
 
  132   hydrophones_container   hydrophones;                          
 
  138     JParser<> zap(
"Example program to plot hydrophone data.");
 
  141     zap[
'n'] = 
make_field(numberOfEvents)   = JLimit::max();
 
  146     zap[
'T'] = 
make_field(tripods,      
"tripod data");
 
  154   catch(
const exception &error) {
 
  155     FATAL(error.what() << endl);
 
  173   for (hydrophones_container::const_iterator i = hydrophones.begin(); i != hydrophones.end(); ++i) {
 
  175     for (JDetector::const_iterator module = 
detector.begin(); module != 
detector.end(); ++module) {
 
  177       if (i->getLocation() == module->getLocation()) {
 
  179         receivers[module->getID()] = 
JReceiver(module->getID(),
 
  180                                                module->getPosition() + i->getPosition(),
 
  181                                                module->getT0() * 1.0e-9);
 
  187   for (tripods_container::const_iterator i = tripods.begin(); i != tripods.end(); ++i) {
 
  188     emitters[i->getID()]  = 
JEmitter(i->getID(),
 
  189                                      i->getUTMPosition() - 
detector.getUTMPosition());
 
  195   while (inputFile.hasNext()) {
 
  197     STATUS(
"event: " << setw(10) << inputFile.getCounter() << 
'\r'); 
DEBUG(endl);
 
  199     const JEvent* evt = inputFile.next();
 
  202       buffer[evt->
getID()].push_back((*evt)[0].getToE());
 
  211   TH1D h0(
MAKE_CSTRING(
"Q0 " << T0), NULL, 100, 0.0, 8.0);
 
  216   for (
int counter = 0; toashortFile.hasNext(); ++counter) {
 
  218     if (counter%1000 == 0) {
 
  219       STATUS(
"counter: " << setw(8) << counter << 
'\r' << flush); 
DEBUG(endl);
 
  228       if (emitters.has(
id) && receivers.has(parameters->
DOMID) && !buffer[id].empty()) {
 
  232         const JTransmission transmission = transceiver.getTransmission(*parameters, V);
 
  234         double t1 = numeric_limits<double>::max();
 
  235         double w1 = 1.0 / (double) buffer[
id].size();
 
  239           const double ti = transmission.
getToE() - *i;
 
  241           if (fabs(ti) < fabs(t1)) {
 
  246         H1[key_type(parameters->
DOMID, 
id)]->Fill(t1); 
 
  250         const double Q = log10(transmission.
getQ());
 
  252         if (T0(t1)) { h0.Fill(Q); }
 
  253         if (T1(t1)) { 
h1.Fill(Q); }
 
  261   out << h0 << 
h1 << 
H1;
 
Utility class to parse command line options. 
 
Q(UTCMax_s-UTCMin_s)-livetime_s
 
double getQ() const 
Get quality. 
 
*fatal Wrong number of arguments esac JCookie sh typeset Z DETECTOR typeset Z SOURCE_RUN typeset Z TARGET_RUN set_variable PARAMETERS_FILE $WORKDIR parameters
 
#define MAKE_CSTRING(A)
Make C-string. 
 
then for HISTOGRAM in h0 h1
 
Empty structure for specification of parser element that is initialised (i.e. does not require input)...
 
double getToE() const 
Get estimated time of emission. 
 
Auxiliary class for defining the range of iterations of objects. 
 
static const JSoundVelocity getSoundVelocity(1541.0,-17.0e-3,-2000.0)
Function object for velocity of sound. 
 
Auxiliary class to manage set of compatible ROOT objects (e.g. histograms) using unique keys...
 
Auxiliary wrapper for I/O of container with optional comment (see JComment). 
 
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object 
 
Implementation for velocity of sound. 
 
void load(const std::string &file_name, JDetector &detector)
Load detector from input file. 
 
General purpose class for object reading from a list of file names. 
 
then usage $script< input_file >< detector_file > fi set_variable OUTPUT_DIR set_variable SELECTOR JDAQTimesliceL1 set_variable DEBUG case set_variable DEBUG
 
const JLimit & getLimit() const 
Get limit. 
 
static JEmitterID getEmitterID
Function object for emitter identification. 
 
do set_variable DETECTOR_TXT $WORKDIR detector
 
int getID() const 
Get identifier. 
 
int EMITTERID
waveform identifier