87{
91
93
95 JLimit_t& numberOfEvents = inputFile.getLimit();
97 string detectorFile;
99 double laserFrequency_Hz;
100 bool overwriteDetector;
102 string option;
103 double Wmin = 1e3;
107
108 try {
109
111
113
114 JParser<> zap(
"Application for dark room time calibration.");
115
116 zap[
'f'] =
make_field(inputFile,
"input file (time slice data from laser calibration).");
118 zap[
'a'] =
make_field(detectorFile,
"detector file.");
120 "Set reference PMTs, e.g."
121 "\n-! \"808969848 0 808982077 23\" sets PMT 0 of module 808969848 and PMT 23 of module 808982077 as references.");
123 zap[
'l'] =
make_field(laserFrequency_Hz,
"laser frequency [Hz]") = 10000;
124 zap[
'A'] =
make_field(overwriteDetector,
"overwrite detector file provided through '-a' with correct time offsets.");
125 zap[
'O'] =
make_field(option,
"ROOT fit option, see TH1::Fit.") =
"LS";
128 zap[
'T'] =
make_field(T_ns,
"time window for time-over-threshold monitor") =
JRange_t(-10.0, +10.0);
131
132 zap(argc, argv);
133 }
134 catch(const exception& error) {
135 FATAL(error.what() << endl);
136 }
137
138
140
141 if (laserFrequency_Hz <= 0.0) {
142 FATAL(
"Invalid laser frequency " << laserFrequency_Hz << endl);
143 }
144
145 const double laserPeriod_ns = 1.0e9 / laserFrequency_Hz;
146
147 if (option.find('R') == string::npos) { option += 'R'; }
148 if (option.find('S') == string::npos) { option += 'S'; }
150
151
153
154 try {
156 }
159 }
160
162
163
164
165
167
169
171
172 map_type zmap;
173
176 const int nx = 2 * (int) (xmax - xmin);
177
178 TH1D h0("h0", NULL, nx, xmin, xmax);
179 TH1D h1("h1", NULL, 256, -0.5, +255.5);
180
182
183 for (JDetector::iterator module =
detector.begin(); module !=
detector.end(); ++module) {
184
186
187 for (JTDC_t::const_iterator i = range.first; i != range.second; ++i) {
188
190 << " string " << setw(3) << module->getString()
191 << " floor " << setw(2) << module->getFloor()
192 << " module " << setw(8) << module->getID()
193 << " channel " << setw(2) << i->second << endl);
194
196
197 ostringstream os;
198
200
201 zmap.insert(make_pair(id, new TH1D(os.str().c_str(), NULL, nx, xmin, xmax)));
202 }
203 }
204
205
207
209
210
212
214
215 for ( ; in.hasNext() && counter != inputFile.getLimit(); ++counter) {
216
217 STATUS(
"event: " << setw(10) << counter <<
'\r');
DEBUG(endl);
218
220
221 for (JDAQTimeslice::const_iterator frame = timeslice->begin(); frame != timeslice->end(); ++frame) {
222
224
225 if (range.first != range.second) {
226
227 const double t0 = get_time(
getTimeOfFrame(frame->getFrameIndex()), laserPeriod_ns);
228
229 JDataL0_t dataL0;
230
231 buildL0(*frame, moduleRouter.getModule(frame->getModuleID()), back_inserter(dataL0));
232
233 for (JDataL0_t::const_iterator hit = dataL0.begin(); hit != dataL0.end(); ++hit) {
234
236
237 map_type::const_iterator p = zmap.find(id);
238
239 if (p != zmap.end()) {
240
241 const double t1 = get_time(t0 + hit->getT(), laserPeriod_ns);
242
243 p->second->Fill(t1);
244
245 h0.Fill(t1);
246
247 if (T_ns(t1)) {
248
249 h1.Fill(hit->getToT());
250
251 counts[id] += 1;
252 }
253 }
254 }
255 }
256 }
257 }
259
260
262
263
264 TF1
f1(
"f1",
"[0]*exp(-0.5*(x-[1])*(x-[1])/([2]*[2]))/(TMath::Sqrt(2.0*TMath::Pi())*[2]) + [3]");
265
266 for (map_type::iterator it = zmap.begin(); it != zmap.end(); ++it) {
267
269 TH1D* h1 = it->second;
270
271 if (h1->GetEntries() == 0) {
272 WARNING(
"Histogram " << h1->GetName() <<
" empty" << endl);
273 continue;
274 }
275
276 STATUS(
"--- PMT = " << pmt <<
"; histogram " << h1->GetName() << endl);
277
278
279
280 Double_t ymax = 0.0;
281 Double_t x0 = 0.0;
282 Double_t
sigma = 2.0;
283 Double_t ymin = 0.0;
284
285 for (int i = 1; i != h1->GetNbinsX(); ++i) {
286
287 const Double_t
x = h1->GetBinCenter (i);
288 const Double_t
y = h1->GetBinContent(i);
289
290 if (y > ymax) {
293 }
294 }
295
296 f1.SetParameter(0, ymax/sigma);
297 f1.SetParameter(1, x0);
298 f1.SetParameter(2, sigma);
299 f1.SetParameter(3, ymin);
300
301 for (Int_t i = 0; i !=
f1.GetNpar(); ++i) {
302 f1.SetParError(i, 0.0);
303 }
304
305
306
307
308 TFitResultPtr
result = h1->Fit(&f1, option.c_str(),
"same", x0 - 3 * sigma, x0 + 3 * sigma);
309
310 if (
result.Get() == NULL) {
311 FATAL(
"Invalid TFitResultPtr " << h1->GetName() << endl);
312 }
313
315 cout <<
"Histogram " << h1->GetName() <<
" fit " << (
result->IsValid() ?
"ok" :
"failed") << endl;
316 cout <<
"\tw = " <<
FIXED(12,3) <<
f1.GetParameter(0) << endl;
317 cout <<
"\tx0 = " <<
FIXED(12,3) << x0 << endl;
318 cout <<
"\tt0 = " <<
FIXED(12,3) <<
f1.GetParameter(1) << endl;
319 }
320
321
322
323
324 int number_of_peaks = 0;
325
326 Double_t dx = 2.0 *
f1.GetParameter(2);
327 Double_t W = 0.0;
328 Double_t Y =
f1.GetParameter(3);
329
330 if (dx < (xmax - xmin) / nx) {
332 }
333
334 for (Int_t il = 1, ir = il; ir <= nx; ) {
335
336 for ( ; ir <= nx && h1->GetBinCenter(ir) <= h1->GetBinCenter(il) + dx; ++ir) {
337 W += h1->GetBinContent(ir) - Y;
338 }
339
340 if (W >= Wmin) {
341
342 number_of_peaks += 1;
343
344 W = 0.0;
345 il = ir;
346 ir = il;
347
348 } else {
349
350 W -= h1->GetBinContent(il) - Y;
351 il += 1;
352 }
353 }
354
355 if (number_of_peaks != 1) {
356 WARNING(
"Number of peaks " << h1->GetName() <<
' ' << number_of_peaks <<
" != 1" << endl);
357 }
358
359 if (
result->IsValid() &&
f1.GetParameter(0) >= Wmin) {
360 t0[pmt] =
f1.GetParameter(1);
361 }
362 }
363
364 out.Write();
365 out.Close();
366
367
368 if (counter != 0) {
369
370 const double W = laserFrequency_Hz * counter *
getFrameTime() * 1.0e-9;
371
372 NOTICE(
"Expection values [npe]" << endl);
373
375 NOTICE(i->first <<
' ' <<
FIXED(7,3) << i->second / W << endl);
376 }
377 }
378
379
380 if (overwriteDetector) {
381
382 int errors = 0;
383
384 for (JDetector::iterator module =
detector.begin(); module !=
detector.end(); ++module) {
385
387
388 if (range.first != range.second) {
389
391
393
394 if (p0 != t0.end()) {
395
396 const double t1 = p0->second;
397
399
401
403 module->getPMT(pmt).subT0(p1->second);
404 else
405 module->getPMT(pmt).subT0(t1);
406 }
407
408 } else {
409
410 if (!module->getPMT(
id.getPMTAddress()).has(
PMT_DISABLE)) {
411 ++errors;
412 }
413
415 << setw(10) << module->getID() <<
"/" <<
FILL(2,
'0') <<
id.getPMTAddress() <<
FILL() <<
' '
416 << "missing or insufficient signal." << endl);
417 }
418 }
419 }
420
421 if (errors == 0) {
422
423 NOTICE(
"Store calibration data on file " << detectorFile << endl);
424
426
428
429 } else {
430
431 FATAL(
"Number of errors " << errors <<
" != 0" << endl);
432 }
433 }
434}
#define DEBUG(A)
Message macros.
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object
#define gmake_property(A)
macros to convert (template) parameter to JPropertiesElement object
Router for direct addressing of module data in detector data structure.
Utility class to parse parameter values.
Auxiliary class for multiplexing object iterators.
Utility class to parse command line options.
General purpose class for object reading from a list of file names.
const JPolynome f1(1.0, 2.0, 3.0)
Function.
std::string getLabel(const JLocation &location)
Get module label for monitoring and other applications.
void load(const std::string &file_name, JDetector &detector)
Load detector from input file.
void store(const std::string &file_name, const JDetector &detector)
Store detector to output file.
This name space includes all other name spaces (except KM3NETDAQ, KM3NET and ANTARES).
bool putObject(TDirectory &dir, const TObject &object)
Write object to ROOT directory.
std::set< JROOTClassSelector > getROOTClassSelection(const bool option=false)
Get ROOT class selection.
Long64_t counter_type
Type definition for counter.
KM3NeT DAQ data structures and auxiliaries.
double getFrameTime()
Get frame time duration.
double getTimeOfFrame(const int frame_index)
Get start time of frame in ns since start of run for a given frame index.
static const int NUMBER_OF_PMTS
Total number of PMTs in module.
std::map< int, range_type > map_type
static const int PMT_DISABLE
KM3NeT Data Definitions v3.6.0 https://git.km3net.de/common/km3net-dataformat.
Auxiliary data structure for sequence of same character.
Auxiliary data structure for floating point format specification.
Type definition of range.
Auxiliary class for TDC constraints.
range_type equal_range(const int id)
Get range of constraints for given module.
bool is_valid(const bool option=false) const
Check validity of TDC constrants.
Empty structure for specification of parser element that is initialised (i.e. does not require input)...
Auxiliary class to select ROOT class based on class name.
Auxiliary class for defining the range of iterations of objects.
static counter_type max()
Get maximum counter value.