46 double MINIMAL_RATE_HZ = 1.0e-2;
48 size_t MAXIMAL_COUNTS = 10;
61 int main(
int argc,
char **argv)
65 using namespace KM3NETDAQ;
77 bool overwriteDetector;
101 JParser<> zap(
"Auxiliary program to fit PMT parameters from JMergeCalibrateK40 output.");
104 zap[
'f'] =
make_field(inputFile,
"input file (output from JMergeCalibrateK40).");
106 zap[
'a'] =
make_field(detectorFile,
"detector file.");
107 zap[
'P'] =
make_field(pmtFile,
"specify PMT file name that can be given to JTriggerEfficiency.") =
"";
109 "Fix time offset(s) of PMT(s) of certain module(s), e.g."
110 "\n-! \"808969848 0 808982077 23\" will fix time offsets of PMT 0 of module 808969848 and of PMT 23 of module 808982077."
111 "\nSame PMT offset can be fixed for all optical modules, e.g."
112 "\n-! \"-1 0 -1 23\" will fix time offsets of PMTs 0 and 23 of all optical modules.") =
JPARSER::initialised();
113 zap[
'r'] =
make_field(reverse,
"reverse TDC constraints due to option -! <TDC>.");
114 zap[
'A'] =
make_field(overwriteDetector,
"overwrite detector file provided through '-a' with fitted time offsets.");
115 zap[
'w'] =
make_field(writeFits,
"write fit results to ROOT file; -ww also write fitted TTS to PMT file.");
116 zap[
'D'] =
make_field(fitAngle,
"fit angular distribution; fix normalisation.");
117 zap[
'B'] =
make_field(fitNoise,
"fit background.");
118 zap[
'M'] =
make_field(fitModel,
"fit angular distribution as well as normalisation; fix PMT QEs = 1.0.");
119 zap[
'Q'] =
make_field(fixQE,
"fix PMT QEs = 1.0.");
126 catch(
const exception &error) {
127 FATAL(error.what() << endl);
131 if ((fitModel ? 1 : 0) +
134 (fixQE ? 1 : 0) > 1) {
135 FATAL(
"Use either option -M, -D, -B or -Q" << endl);
148 for (JTDC_t::const_iterator
i =
TDC.begin();
i !=
TDC.end(); ++
i) {
149 DEBUG(
"PMT " << setw(10) <<
i->first <<
' ' << setw(2) <<
i->second <<
" constrain t0." << endl);
155 catch(
const exception &error) {
156 FATAL(error.what() << endl);
175 catch(
const exception& error) {}
181 TFile*
in = TFile::Open(inputFile.c_str(),
"exist");
183 if (
in == NULL || !
in->IsOpen()) {
184 FATAL(
"File: " << inputFile <<
" not opened." << endl);
190 TH1D h0(
"chi2", NULL, 500, 0.0, 5.0);
191 TH1D hn(
"hn", NULL, 501, -0.5, 500.0);
192 TH1D hr(
"rate", NULL, 500, 0.0, 25.0);
193 TH1D h1(
"p1", NULL, 500, -5.0, +5.0);
194 TH1D h2(
"p2", NULL, 500, -5.0, +5.0);
195 TH1D h3(
"p3", NULL, 500, -5.0, +5.0);
196 TH1D h4(
"p4", NULL, 500, -5.0, +5.0);
197 TH1D hc(
"cc", NULL, 500, -0.1, +0.1);
202 TH2D H2(
"detector", NULL,
203 string.size() + 0, -0.5,
string.size() - 0.5,
204 range.getUpperLimit(), 1 - 0.5,
range.getUpperLimit() + 0.5);
206 for (Int_t
i = 1;
i <= H2.GetXaxis()->GetNbins(); ++
i) {
209 for (Int_t
i = 1;
i <= H2.GetYaxis()->GetNbins(); ++
i) {
216 for (JDetector::iterator module =
detector.begin(); module !=
detector.end(); ++module) {
218 if (module->getFloor() == 0) {
224 NOTICE(
"Module " << setw(10) << module->getID() <<
' ' <<
getLabel(module->getLocation()) <<
" !" <<
distance(range.first, range.second) << endl);
228 if (h2d == NULL || h2d->GetEntries() == 0) {
230 NOTICE(
"No data for module " << module->getID() <<
" -> set QEs to 0." << endl);
246 for (
int ix = 1; ix <= h2d->GetXaxis()->GetNbins(); ++ix) {
250 auto& buffer = data[pair];
255 for (
int iy = 1; iy <= h2d->GetYaxis()->GetNbins(); ++iy) {
257 const double x = h2d->GetXaxis()->GetBinCenter(ix);
258 const double y = h2d->GetYaxis()->GetBinCenter(iy);
262 double value = h2d->GetBinContent(ix,iy);
263 double error = h2d->GetBinError (ix,iy);
265 buffer.push_back(
rate_type(y, value, error));
267 double width = h2d->GetYaxis()->GetBinWidth(iy);
279 if (V <= 0.0 - STDEV*W) {
280 count[0][pair.first] += 1;
281 count[0][pair.second] += 1;
284 if (V <= MINIMAL_RATE_HZ + STDEV*W) {
285 count[1][pair.first] += 1;
286 count[1][pair.second] += 1;
292 if (count[0][pmt] >= MAXIMAL_COUNTS) {
294 WARNING(
"PMT " << setw(10) << module->getID() <<
'.' <<
FILL(2,
'0') << pmt <<
FILL() <<
" some rates negative -> fit background" << endl);
296 if (fit.value.parameters[pmt].status) {
297 model.parameters[pmt].bg.set();
303 WARNING(
"PMT " << setw(10) << module->getID() <<
'.' <<
FILL(2,
'0') << pmt <<
FILL() <<
" all rates to low -> disable" << endl);
305 model.parameters[pmt].disable();
309 DEBUG(
"Start value:" << endl << model << endl);
321 if (fit.value.parameters[pmt].QE() < QE_MIN && fit.value.parameters[pmt].status) {
323 WARNING(
"PMT " << setw(10) << module->getID() <<
'.' <<
FILL(2,
'0') << pmt <<
FILL() <<
' ' <<
FIXED(5,3) << fit.value.parameters[pmt].QE() <<
" < " <<
FIXED(5,3) << QE_MIN <<
" -> disable" << (!refit ?
" and refit" :
"") << endl);
325 fit.value.parameters[pmt].disable();
336 NOTICE(
"Fit result " << setw(10) << module->getID() <<
" chi2 / NDF " <<
FIXED(10,2) <<
result.chi2 <<
" / " << setw(5) <<
result.ndf <<
' ' << setw(5) << fit.numberOfIterations << endl);
343 hn.Fill(fit.numberOfIterations);
344 hr.Fill(fit.value.R );
345 h1.Fill(fit.value.p1);
346 h2.Fill(fit.value.p2);
347 h3.Fill(fit.value.p3);
348 h4.Fill(fit.value.p4);
349 hc.Fill(fit.value.cc);
351 for (
int ix = 1; ix <= h2d->GetXaxis()->GetNbins(); ++ix) {
355 for (
int iy = 1; iy <= h2d->GetYaxis()->GetNbins(); ++iy) {
357 const double dt_ns = h2d->GetYaxis()->GetBinCenter(iy);
359 h2d->SetBinContent(ix, iy, fit.value.getValue(pair, dt_ns));
360 h2d->SetBinError (ix, iy, 0.0);
367 H2.Fill((
double)
string.
getIndex(module->getString()), (
double) module->getFloor(),
result.chi2 /
result.ndf);
370 const double t0 = (fit.value.hasFixedTimeOffset() ? fit.value.getFixedTimeOffset() : 0.0);
379 data.
QE = fit.value.parameters[pmt].QE /
P;
384 data.
TTS_ns = fit.value.parameters[pmt].TTS();
387 module->getPMT(pmt).addT0(fit.value.parameters[pmt].t0.get() - t0);
390 catch(
const exception& error) {
392 ERROR(
"Module " << setw(10) << module->getID() <<
' ' << error.what() <<
" -> set QEs to 0." << endl);
415 if (overwriteDetector) {
417 NOTICE(
"Store calibration data on file " << detectorFile << endl);
436 out << h0 << hn << hr << h1 << h2 << h3 << h4 << hc << H2;
Data structure for measured coincidence rate of pair of PMTs.
Utility class to parse command line options.
int main(int argc, char *argv[])
std::vector< T >::difference_type distance(typename std::vector< T >::const_iterator first, typename PhysicsEvent::const_iterator< T > second)
Specialisation of STL distance.
#define gmake_property(A)
macros to convert (template) parameter to JPropertiesElement object
std::string getLabel(const JLocation &location)
Get module label for monitoring and other applications.
Auxiliary class for TDC constraints.
Utility class to parse parameter values.
*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.
Empty structure for specification of parser element that is initialised (i.e. does not require input)...
then fatal Wrong number of arguments fi set_variable STRING $argv[1] set_variable DETECTORXY_TXT $WORKDIR $DETECTORXY_TXT tail read X Y CHI2 RMS printf optimum n $X $Y $CHI2 $RMS awk v Y
Auxiliary data structure for floating point format specification.
V(JDAQEvent-JTriggerReprocessor)*1.0/(JDAQEvent+1.0e-10)
floor_range getRangeOfFloors(const JDetector &detector)
Get range of floors.
Data structure for detector geometry and calibration.
Utility class to parse parameter values.
Implementation of object output from STD container.
Scanning of objects from a single file according a format that follows from the extension of each fil...
Model for fit to acoustics data.
Type definition of range.
static const char *const _2F
Name extension for 2F rate fitted.
I/O formatting auxiliaries.
Fit parameters for two-fold coincidence rate due to K40.
T & getInstance(const T &object)
Get static instance from temporary object.
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object
fit parameters of PMTs and background
void store(const std::string &file_name, const JDetector &detector)
Store detector to output file.
fit parameters of PMTs and angular dependence of K40 rate
static const char *const _2R
Name extension for 2D rate measured.
Auxiliary class for map of PMT parameters.
int getIndex()
Get index for user I/O manipulation.
bool putObject(TDirectory &dir, const TObject &object)
Write object to ROOT directory.
General purpose messaging.
Auxiliary data structure for sequence of same character.
Direct access to string in detector data structure.
fit parameters of PMTs with QE fixed
z range($ZMAX-$ZMIN)< $MINIMAL_DZ." fi fi typeset -Z 4 STRING typeset -Z 2 FLOOR JPlot1D -f $
void load(const std::string &file_name, JDetector &detector)
Load detector from input file.
double TTS_ns
transition time spread [ns]
Auxiliary class to define a range between two values.
Router for mapping of string identifier to index.
then fatal Wrong number of arguments fi set_variable DETECTOR $argv[1] set_variable INPUT_FILE $argv[2] eval JPrintDetector a $DETECTOR O IDENTIFIER eval JPrintDetector a $DETECTOR O SUMMARY JAcoustics sh $DETECTOR_ID source JAcousticsToolkit sh CHECK_EXIT_CODE typeset A EMITTERS get_tripods $WORKDIR tripod txt EMITTERS get_transmitters $WORKDIR transmitter txt EMITTERS for EMITTER in
Utility class to parse command line options.
fit parameters of K40 rate and TTSs of PMTs
double getSurvivalProbability(const JPMTParameters ¶meters)
Get model dependent probability that a one photo-electron hit survives the simulation of the PMT assu...
Data structure for measured coincidence rates of all pairs of PMTs in optical module.
no fit printf nominal n $STRING awk v X
Object reading from a list of files.
Data structure for PMT parameters.
do set_variable DETECTOR_TXT $WORKDIR detector
KM3NeT DAQ constants, bit handling, etc.
static const int NUMBER_OF_PMTS
Total number of PMTs in module.
double QE
relative quantum efficiency
#define DEBUG(A)
Message macros.