149 JParser<> zap(
"Auxiliary program to check t0's.");
156 zap[
'f'] =
make_field(inputFile,
"pair of input files (output of JCalibrateK40)");
158 zap[
'e'] =
make_field(precision,
"precision for HV comparison") = 0.5;
160 zap[
'x'] =
make_field(X,
"ROOT fit range (PMT pairs).") =
JRange_t(300, numeric_limits<size_t>::max());
161 zap[
'O'] =
make_field(option,
"ROOT fit option, see TH1::Fit.") =
"";
167 catch(
const exception &error) {
168 FATAL(error.what() << endl);
175 catch(
const exception& error) {
176 FATAL(error.what() << endl);
184 for (
int i = 0; i != 2; ++i) {
185 DEBUG(setw(32) << setups[i].file_name <<
' ' << setups[i].header.getDetectorID() <<
' ' << setups[i].header.getRunNumber() << endl);
197 if (option.find(
'S') == string::npos) { option +=
'S'; }
204 TF1
f1(
"f1",
"[0]*TMath::Gaus(x,[1],[2]) + [3]");
206 for (JDetector::const_iterator module =
detector.begin(); module !=
detector.end(); ++module) {
213 DEBUG(
"Module " << setw(10) << module->getID() <<
' ' << (h2[0] != NULL) << (h2[0] != NULL) << endl);
232 const JLocation_t location_1(module->getString(), module->getFloor(),
pair.first);
233 const JLocation_t location_2(module->getString(), module->getFloor(),
pair.second);
235 const bool hv_1 = (fabs(setups[0].HV[location_1] - setups[1].HV[location_1]) < precision);
236 const bool hv_2 = (fabs(setups[0].HV[location_2] - setups[1].HV[location_2]) < precision);
239 numeric_limits<double>::max(),
240 numeric_limits<double>::max()
243 const Int_t ix = ip + 1;
245 for (
int i = 0; i != 2; ++i) {
247 TH1D h1(
"__py", NULL, h2[i]->GetYaxis()->GetNbins(), h2[i]->GetYaxis()->GetXmin(), h2[i]->GetYaxis()->GetXmax());
251 Double_t ymin = numeric_limits<double>::max();
252 Double_t ymax = numeric_limits<double>::lowest();
254 Double_t
sigma = 4.5;
257 for (
int iy = 1; iy <= h1.GetNbinsX(); ++iy) {
259 const Double_t
x = h1.GetBinCenter(iy);
260 const Double_t
y = h2[i]->GetBinContent(ix,iy);
262 h1.SetBinContent(iy,
y);
263 h1.SetBinError (iy, sqrt(
y));
279 f1.SetParameter(0, ymax);
280 f1.SetParameter(1, mean);
282 f1.SetParameter(3, ymin);
284 for (Int_t i = 0; i !=
f1.GetNpar(); ++i) {
285 f1.SetParError(i, 0.0);
288 TFitResultPtr
result = h1.Fit(&
f1, option.c_str(),
"same");
290 if (
result.Get() == NULL) {
291 FATAL(
"Invalid TFitResultPtr " << h1.GetName() << endl);
295 cout <<
"Histogram slice: "
296 << setw(3) << ix <<
' '
297 <<
FIXED(7,3) <<
f1.GetParameter(1) <<
" +/- "
298 <<
FIXED(7,3) <<
f1.GetParError(1) <<
' '
301 << (
result->IsValid() ?
"" :
"failed") << endl;
304 t1[i] =
f1.GetParameter(1);
308 if (t1[0] != numeric_limits<double>::max() &&
309 t1[1] != numeric_limits<double>::max()) {
324 cout << setw(10) << module->getID() <<
"." <<
FILL(2,
'0') << p2.first <<
FILL() <<
' ';
325 cout <<
"(" <<
FILL(2,
'0') << p2.second <<
FILL() <<
")" <<
' ';
326 cout <<
FIXED(6,2) << (combinatorics.
getSign(p2) * (t1[1] - t1[0])) << endl;
329 Q[p2.first].put(combinatorics.
getSign(p2) * (t1[1] - t1[0]));
336 H1[module->getID()]->SetBinContent(i+1, Q[i].
getMean());
337 H1[module->getID()]->SetBinError (i+1, Q[i].getSTDev());
double getMean(vector< double > &v)
get mean of vector content
#define DEBUG(A)
Message macros.
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object
#define MAKE_CSTRING(A)
Make C-string.
#define gmake_property(A)
macros to convert (template) parameter to JPropertiesElement object
Utility class to parse parameter values.
Utility class to parse command line options.
Auxiliary class to manage set of compatible ROOT objects (e.g. histograms) using unique keys.
const JPolynome f1(1.0, 2.0, 3.0)
Function.
static const char *const _2S
Name extension for 2D counts.
JCombinatorics::pair_type pair_type
std::vector< JServer > getServernames()
Get list of names of available database servers.
void load(const std::string &file_name, JDetector &detector)
Load detector from input file.
size_t getCount(const array_type< T > &buffer, const JCompare_t &compare)
Count number of unique values.
This name space includes all other name spaces (except KM3NETDAQ, KM3NET and ANTARES).
KM3NeT DAQ data structures and auxiliaries.
static const int NUMBER_OF_PMTS
Total number of PMTs in module.
Auxiliary data structure for sequence of same character.
Auxiliary data structure for floating point format specification.
Type definition of range.
Auxiliary data structure for setup of complete system.
Auxiliary class to sort pairs of PMT addresses within optical module.
Auxiliary data structure for location of product in detector.
Wrapper class for server name.
Empty structure for specification of parser element that is initialised (i.e. does not require input)...