source: BAORadio/AmasNancay/trunk/analyse.cc @ 592

Last change on this file since 592 was 584, checked in by campagne, 13 years ago

correct bug: threshold to detect 1st level of DAB (jec)

File size: 56.0 KB
Line 
1//
2// Analyse of Amas@Nancay runs by J.E Campagne (LAL)
3// Version 0: 1/6/2011
4//-----------------------------
5
6// Utilisation de SOPHYA pour faciliter les tests ...
7#include "sopnamsp.h"
8#include "machdefs.h"
9
10#include <stdlib.h>
11#include <dirent.h>
12#include <matharr.h>
13
14// include standard c/c++
15#include <iostream>
16#include <fstream>
17#include <string>
18#include <vector>
19#include <map>
20#include <functional>
21#include <algorithm>
22#include <numeric>
23#include <list>
24#include <exception>
25
26// include sophya mesure ressource CPU/memoire ...
27#include "resusage.h"
28#include "ctimer.h"
29#include "timing.h"
30#include "timestamp.h"
31#include "strutilxx.h"
32#include "ntuple.h"
33#include "fioarr.h"
34#include "tarrinit.h"
35#include "histinit.h"
36#include "fitsioserver.h"
37#include "fiosinit.h"
38#include "ppersist.h"
39
40
41const sa_size_t NUMBER_OF_CHANNELS = 2;
42const sa_size_t  NUMBER_OF_FREQ = 8192;
43const r_4    LOWER_FREQUENCY = 1250.0; //MHz
44const r_4    TOTAL_BANDWIDTH = 250.0; //MHz
45
46//decalration of non class members functions
47extern "C" {
48  int Usage(bool);
49}
50
51
52//----------------------------------------------------------
53//Utility fonctions
54// Function for deleting pointers in map.
55template<class A, class B>
56struct DeleteMapFntor
57{
58    // Overloaded () operator.
59    // This will be called by for_each() function.
60    bool operator()(pair<A,B> x) const
61    {
62        // Assuming the second item of map is to be
63        // deleted. Change as you wish.
64        delete x.second;
65        return true;
66    }
67};
68//-----
69bool compare(const pair<string,r_4>& i, const pair<string,r_4>& j) {
70  return i.second < j.second;
71}
72//-----
73sa_size_t round_sa(r_4 r) {
74  return static_cast<sa_size_t>((r > 0.0) ? (r + 0.5) : (r - 0.5));
75}
76//-----
77string StringToLower(string strToConvert){
78  //change each element of the string to lower case
79  for(unsigned int i=0;i<strToConvert.length();i++) {
80    strToConvert[i] = tolower(strToConvert[i]);
81  }
82  return strToConvert;//return the converted string
83}
84//-----
85//JEC 22/9/11 comparison, not case sensitive to sort File liste START
86bool stringCompare( const string &left, const string &right ){
87   if( left.size() < right.size() )
88      return true;
89   ////////////POSSIBLY A BUG return false;
90   for( string::const_iterator lit = left.begin(), rit = right.begin(); lit != left.end() && rit != right.end(); ++lit, ++rit )
91      if( tolower( *lit ) < tolower( *rit ) )
92         return true;
93      else if( tolower( *lit ) > tolower( *rit ) )
94         return false;
95   return false; ///////TO BE FIXED
96}//JEC 22/9/11 comparison, not case sensitive to sort File liste END
97//-----
98list<string> ListOfFileInDir(string dir, string filePettern) throw(string) {
99  list<string> theList;
100
101
102  DIR *dip;
103  struct dirent *dit;
104  string msg;  string fileName;
105  string fullFileName;
106  size_t found;
107
108  if ((dip=opendir(dir.c_str())) == NULL ) {
109    msg = "opendir failed on directory "+dir;
110    throw msg;
111  }
112  while ( (dit = readdir(dip)) != NULL ) {
113    fileName = dit->d_name;
114    found=fileName.find(filePettern);
115    if (found != string::npos) {
116      fullFileName = dir + "/";
117      fullFileName += fileName;
118      theList.push_back(fullFileName);
119    }
120  }//eo while
121  if (closedir(dip) == -1) {
122    msg = "closedir failed on directory "+dir;
123    throw msg;
124  }
125 
126  //JEC 22/9/11 START
127  theList.sort(stringCompare);
128  //JEC 22/9/11 END
129
130  return theList;
131}
132
133
134//Declaration of local classes
135//----------------------------------------------
136//Process Interface
137class IProcess {
138public:
139  IProcess() {}
140  virtual ~IProcess() {}
141  virtual int processCmd() throw(string) =0;
142};
143//------------
144//Common Process
145class ProcessBase : public IProcess {
146public:
147  ProcessBase();
148  virtual ~ProcessBase();
149  void SetInputPath(const string& inputPath) {inputPath_ = inputPath;}
150  void SetOutputPath(const string& outputPath) {outputPath_ = outputPath;}
151  void SetSourceName(const string& sourceName) {sourceName_ = sourceName;}
152  void SetDateOfRun(const string& dateOfRun) {dateOfRun_ = dateOfRun;}
153  void SetSpectraDirectory(const string& spectraDirectory) {spectraDirectory_ = spectraDirectory;}
154  void SetTypeOfFile(const string& typeOfFile) { typeOfFile_ = typeOfFile; }
155  void SetNumCycle(const string& numcycle) {numcycle_ = numcycle; }
156  void SetScaFileName(const string& scaFileName) { scaFileName_ =scaFileName; }
157
158  void SetDebugLevel(const string& debuglev) {
159    debuglev_ = atoi(debuglev.c_str());
160  }
161
162  virtual int processCmd() throw(string);
163 
164protected:
165  string inputPath_;
166  string outputPath_;
167  string sourceName_;
168  string dateOfRun_;
169  string spectraDirectory_;
170  string typeOfFile_;
171
172  string numcycle_; //cycle numbers format="first,last"
173  sa_size_t ifirstCycle_;
174  sa_size_t ilastCycle_;
175
176
177  uint_4 debuglev_; 
178  string scaFileName_;
179  NTuple* scaTuple_;
180  map<sa_size_t,sa_size_t> idCycleInTuple_;
181};
182ProcessBase::ProcessBase() {
183  scaTuple_ = 0;
184}
185ProcessBase::~ProcessBase() {
186  if (scaTuple_) delete scaTuple_;
187  scaTuple_ = 0;
188}
189//------------
190//Process ON/OFF data
191//------------
192class ProcessONOFFData : public ProcessBase {
193protected:
194  string  freqBAOCalibration_;//string MHz
195public:
196  ProcessONOFFData(){}
197  virtual ~ProcessONOFFData(){}
198
199  void SetFreqBAOCalibration(const string& freqBAOCalibration) { 
200    freqBAOCalibration_ = freqBAOCalibration; 
201  }
202 
203  virtual int processCmd() throw(string);
204};
205
206//JEC 22/9/11 Make ON-OFF analysis WO any calibration START
207//------------
208//Process ON/OFF Raw data
209//------------
210class ProcessONOFFRawData : public ProcessBase {
211
212public:
213  ProcessONOFFRawData(){}
214  virtual ~ProcessONOFFRawData(){}
215 
216  virtual int processCmd() throw(string);
217};
218//JEC 22/9/11 Make ON-OFF analysis WO any calibration END
219
220//------------
221//Process Gain
222//------------
223class ProcessGain : public ProcessBase {
224protected:
225  string mode_; //mode of data taken for gain computation On || Off
226public:
227  ProcessGain(){}
228  virtual ~ProcessGain(){}
229
230  void SetMode(const string& mode) {mode_ = mode;}
231 
232  virtual int processCmd() throw(string);
233};
234//------------
235//Process Calibration
236//------------
237class ProcessCalibration : public ProcessBase {
238protected:
239  string option_; //option of calibration procedure
240  string  freqBAOCalibration_;//string MHz
241  r_4 valfreqBAOCalibration_; //value MHz
242  string bandWidthBAOCalibration_;//string MHz
243  r_4 valbandWidthBAOCalibration_;//value MHz
244 
245  sa_size_t lowerFreqBin_;
246  sa_size_t upperFreqBin_;
247
248public:
249  ProcessCalibration() {}
250  virtual ~ProcessCalibration(){}
251
252  void SetOption(const string& option) {option_ = option;}
253  void SetFreqBAOCalibration(const string& freqBAOCalibration) { 
254    freqBAOCalibration_ = freqBAOCalibration; 
255    valfreqBAOCalibration_ = atof(freqBAOCalibration_.c_str());
256  }
257  void SetBandWidthBAOCalibration(const string& bandWidthBAOCalibration) { 
258    bandWidthBAOCalibration_ = bandWidthBAOCalibration; 
259    valbandWidthBAOCalibration_ = atof(bandWidthBAOCalibration_.c_str());
260  }
261
262  void ComputeLowerUpperFreqBin();
263     
264  virtual int processCmd() throw(string);
265};
266void ProcessCalibration::ComputeLowerUpperFreqBin() {
267  sa_size_t c0 = round_sa(NUMBER_OF_FREQ*(valfreqBAOCalibration_-LOWER_FREQUENCY)/TOTAL_BANDWIDTH);
268  sa_size_t dc = round_sa(NUMBER_OF_FREQ*valbandWidthBAOCalibration_/TOTAL_BANDWIDTH);
269  lowerFreqBin_ = c0-dc/2;
270  upperFreqBin_ = c0+dc/2;
271}
272
273
274//----------------------------------------------------
275//----------------------------------------------------
276int main(int narg, char* arg[])
277{
278
279  //Init process types
280  map<string,IProcess*> process;
281  //JEC 22/9/11 Make ON-OFF analysis WO any calibration START
282  process["rawOnOff"] = new ProcessONOFFRawData();
283  //JEC 22/9/11 Make ON-OFF analysis WO any calibration END
284  process["dataOnOff"] = new ProcessONOFFData();
285  process["gain"]      = new ProcessGain();
286  process["calib"]     = new ProcessCalibration();
287
288  //Init Sophya related modules
289  //  SophyaInit();
290  TArrayInitiator _inia; //nneded for TArray persistancy
291  FitsIOServerInit(); //needed for input file
292
293  //message used in Exceptions
294  string msg;
295
296  //Return code
297  int rc = 0;
298
299  //Arguments managements
300  if ((narg>1)&&(strcmp(arg[1],"-h")==0))  return Usage(false);
301  if (narg<11) return Usage(true);
302
303  string action;
304  string inputPath = "."; 
305  string outputPath = "."; 
306  string sourceName;
307  string scaFile;
308  string dateOfRun;
309  string spectraDirectory;
310  string freqBAOCalib = "";
311  string bandWidthBAOCalib = "";
312  string debuglev = "0";
313  string mode = "";
314  string numcycle;
315  string calibrationOpt = ""; 
316
317  string typeOfFile="medfiltmtx";
318 
319
320  //  bool okarg=false;
321  int ka=1;
322  while (ka<(narg-1)) {
323    cout << "Debug arglist: <" << arg[ka] <<">" << endl;
324    if (strcmp(arg[ka],"-debug")==0) {
325      debuglev=arg[ka+1];
326      ka+=2;
327    }
328    else if (strcmp(arg[ka],"-act")==0) {
329      action=arg[ka+1];
330      ka+=2;
331    }
332    else if (strcmp(arg[ka],"-inPath")==0) {
333      inputPath=arg[ka+1];
334      ka+=2;
335    }
336    else if (strcmp(arg[ka],"-outPath")==0) {
337      outputPath=arg[ka+1];
338      ka+=2;
339    }
340    else if (strcmp(arg[ka],"-source")==0) {
341      sourceName=arg[ka+1];
342      ka+=2;
343    }
344    else if (strcmp(arg[ka],"-sca")==0) {
345      scaFile=arg[ka+1];
346      ka+=2;
347    }
348    else if (strcmp(arg[ka],"-date")==0) {
349      dateOfRun=arg[ka+1];
350      ka+=2;
351    }
352    else if (strcmp(arg[ka],"-specdir")==0) {
353      spectraDirectory=arg[ka+1];
354      ka+=2;
355    }
356    else if (strcmp(arg[ka],"-specname")==0) {
357      typeOfFile=arg[ka+1];
358      ka+=2;
359    }   
360    else if (strcmp(arg[ka],"-freqBAOCalib")==0) {
361      freqBAOCalib = arg[ka+1];
362      ka+=2;
363    }
364    else if (strcmp(arg[ka],"-bwBAOCalib")==0) {
365      bandWidthBAOCalib = arg[ka+1];
366      ka+=2;
367    } 
368    else if (strcmp(arg[ka],"-mode")==0) {
369      mode =arg[ka+1];
370      ka+=2; 
371    }
372    else if (strcmp(arg[ka],"-numcycle")==0) {
373      numcycle =arg[ka+1];
374      ka+=2; 
375    }
376    else if (strcmp(arg[ka],"-calibopt")==0) {
377      calibrationOpt =arg[ka+1];
378      ka+=2; 
379    }
380    else ka++;
381  }//eo while
382
383
384  //JEC 21/9/11 Give the input parameters START
385  cout << "Dump Iiitial parameters ............" << endl;
386  cout << " action = " << action << "\n"
387       << " inputPath = " << inputPath << "\n" 
388       << " outputPath = " << outputPath << "\n"
389       << " sourceName = " << sourceName << "\n"
390       << " scaFile = " << scaFile << "\n"
391       << " dateOfRun = " << dateOfRun << "\n"
392       << " spectraDirectory = " << spectraDirectory << "\n"
393       << " freqBAOCalib = " << freqBAOCalib  << "\n"
394       << " bandWidthBAOCalib = " << bandWidthBAOCalib << "\n"
395       << " debuglev = "  << debuglev  << "\n"
396       << " mode = " << mode << "\n"
397       << " numcycle = " << numcycle << "\n"
398       << " calibrationOpt = " << calibrationOpt << endl;
399  cout << "...................................." << endl;
400  //JEC 21/9/11 Give the input parameters END
401
402
403  try {
404    //verification of action
405    if(process.find(action) == process.end()) {
406      msg = "action ";
407      msg += action + " not valid... FATAL";
408      rc = 999;
409      throw msg;
410    }
411   
412
413    //
414    //Process initialisation...
415    //
416    try {
417      ProcessBase* procbase = dynamic_cast<ProcessBase*>(process[action]);
418      if (procbase == 0) {
419        msg= "action ";
420        msg += action + "Not a <process base> type...FATAL";
421        rc = 999;
422        throw msg;
423      }
424      procbase->SetInputPath(inputPath);
425      procbase->SetOutputPath(outputPath);
426
427      if ("" == sourceName) {
428        msg = "(FATAL) missingsourceName  for action " + action;
429        Usage(true);
430        throw msg;
431      }
432      procbase->SetSourceName(sourceName);
433
434      if ("" == dateOfRun) {
435        msg = "(FATAL) missing dateOfRun for action " + action;
436        Usage(true);
437        throw msg;
438      }
439      procbase->SetDateOfRun(dateOfRun);
440
441     
442      if ("" == spectraDirectory) {
443        msg = "(FATAL) missing spectraDirectory for action " + action;
444        Usage(true);
445        throw msg;
446      }
447      procbase->SetSpectraDirectory(spectraDirectory);
448
449      if ("" == scaFile) {
450        msg = "(FATAL) missing scaFile for action " + action;
451        Usage(true);
452        throw msg;
453      }
454      procbase->SetScaFileName(scaFile);
455
456      if ("" == numcycle) {
457        msg = "(FATAL) missing cycle number for action " + action;
458        Usage(true);
459        throw msg;
460      }
461      procbase->SetNumCycle(numcycle);
462
463
464      procbase->SetTypeOfFile(typeOfFile);
465
466      procbase->SetDebugLevel(debuglev);
467    }
468    catch(exception& e){
469      throw e.what();
470    }
471
472    //JEC 22/9/11 Make ON-OFF analysis WO any calibration START
473//     try {
474//       ProcessONOFFRawData* procRawdata = dynamic_cast<ProcessONOFFRawData*>(process[action]);
475//     }
476//     catch(exception& e){
477//       throw e.what();
478//     }
479    //JEC 22/9/11 Make ON-OFF analysis WO any calibration END
480
481
482    try {
483      ProcessONOFFData* procdata = dynamic_cast<ProcessONOFFData*>(process[action]);
484      if (procdata) {
485        if (freqBAOCalib == "") {
486          msg = "(FATAL) missing calibration BAO frequency for action " + action;
487          Usage(true);
488          throw msg;
489        }
490        procdata->SetFreqBAOCalibration(freqBAOCalib);
491      }
492    }
493    catch(exception& e){
494      throw e.what();
495    }
496   
497
498    try {
499      ProcessGain* procgain = dynamic_cast<ProcessGain*>(process[action]);
500      if(procgain) {
501        if (mode == "") {
502          msg = "(FATAL) missing mode-type for action " + action;
503          Usage(true);
504          throw msg;
505        }
506        procgain->SetMode(mode);
507      }
508    }
509    catch(exception& e){
510      throw e.what();
511    }
512
513    try {
514      ProcessCalibration* proccalib = dynamic_cast<ProcessCalibration*>(process[action]);
515      if(proccalib) {
516        if (calibrationOpt == "") {
517          msg = "(FATAL) missing calibration option";
518          Usage(true);
519          throw msg;
520        }
521        if (freqBAOCalib == "") {
522          msg = "(FATAL) missing calibration BAO frequency for action " + action;
523          Usage(true);
524          throw msg;
525        }
526        if (bandWidthBAOCalib == "") {
527          msg = "(FATAL) missing calibration BAO frequency band width for action " + action;
528          Usage(true);
529          throw msg;
530        }
531        proccalib->SetOption(calibrationOpt);
532        proccalib->SetFreqBAOCalibration(freqBAOCalib);
533        proccalib->SetBandWidthBAOCalibration(bandWidthBAOCalib);
534        proccalib->ComputeLowerUpperFreqBin();
535      }
536    }
537    catch(exception& e){
538      throw e.what();
539    }
540
541    //
542    //execute command
543    //
544    rc = process[action]->processCmd();
545
546  }
547  catch (std::exception& sex) {
548    cerr << "\n analyse.cc std::exception :"  << (string)typeid(sex).name() 
549         << "\n msg= " << sex.what() << endl;
550    rc = 78;
551  }
552  catch ( string str ) {
553    cerr << "analyse.cc Exception raised: " << str << endl;
554  }
555  catch (...) {
556    cerr << " analyse.cc catched unknown (...) exception  " << endl; 
557    rc = 79; 
558  } 
559
560 
561
562
563  cout << ">>>> analyse.cc ------- END ----------- RC=" << rc << endl;
564 
565  //Delete processes
566  for_each(process.begin(),process.end(), DeleteMapFntor<string,IProcess*>());
567
568  return rc;
569}
570
571//---------------------------------------------------
572int Usage(bool flag) {
573  cout << "Analyse.cc usage...." << endl;
574  cout << "analyse  -act <action_type>: dataOnOff, rawOnOff, gain, calib\n"
575       << "         -inPath <path for input files: default='.'>\n"
576       << "         -outPath <path for output files: default='.'>\n"
577       << "         -source <source name> \n" 
578       << "         -date <YYYYMMDD>\n"
579       << "         -sca <file name scaXYZ.sum.trans>\n"
580       << "         -specdir <generic directory name of spectra fits files>\n"
581       << "         -specname <generic name of spectra fits files>\n"
582       << "         -freqBAOCalib <freq in MHZ> freq. of calibration BAO\n"
583       << "            valid for act=dataOnOff\n"
584       << "         -bwBAOCalib <band width MHz> band width arround central freq. for calibration BAO\n"
585       << "            valid for act=calib\n"
586       << "         -mode <mode_type>:\n"
587       << "            valid for act=gain, mode_type: On, Off\n"
588       << "         -numcycle <number>,<number>:\n"
589       << "            valid for all actions"
590       << "         -calibopt <option>:\n"
591       << "            valid for act=calib: indiv OR mean (NOT USED)"
592       << "         -debuglev <number> [0=default]\n"
593       << "           1: normal print\n"
594       << "           2: save intermediate spectra\n"
595       << endl;
596  if (flag) {
597    cout << "use <path>/analyse -h for detailed instructions" << endl;
598    return 5;
599  }
600  return 1;
601}
602
603int ProcessBase::processCmd() throw(string) {
604  int rc =0;
605  string msg;
606  if(debuglev_>0)cout << "Process Base" << endl;
607  //------------------------
608  //Use the sca file informations
609  //------------------------
610  //  string scaFullPathName = "./";
611  //TOBE FIXED  scaFullPathName += sourceName_+"/"+dateOfRun_ + StringToLower(sourceName_)+"/";
612  string scaFullPathName = inputPath_ + "/" 
613    + sourceName_+ "/" +dateOfRun_ + StringToLower(sourceName_)+ "/" + scaFileName_;
614  char* scaTupleColumnName[9] = {"cycle","stcalOn","spcalOn","stOn","spOn","stcalOff","spcalOff","stOff","spOff"};
615  scaTuple_ = new NTuple(9,scaTupleColumnName);
616  int n = scaTuple_->FillFromASCIIFile(scaFullPathName);
617  if(n<0){ //Error
618    msg = "(FATAL) NTuple error loading "+ scaFullPathName;
619    rc = 999;
620    throw msg;
621  }
622 
623  if(debuglev_>1){
624    cout << "ProcessBase::processCmd: dump tuple in " << scaFullPathName << endl;
625    scaTuple_->Show(cout);
626  }
627 
628 
629  //Get the cycles (here consider consecutive cycles)   
630  //The SCA file cannot be used as the DAQ can miss some cycles...
631  //     r_8 firstCycle, lastCycle;
632  //     scaTuple_->GetMinMax("cycle",firstCycle,lastCycle);
633  //     ifirstCycle_ = (sa_size_t)firstCycle;
634  //     ilastCycle_  = (sa_size_t)lastCycle;
635  //Analyse the string given by -numcycle command line
636  int ai1=0,ai2=0;
637  sscanf(numcycle_.c_str(),"%d,%d",&ai1,&ai2);
638  ifirstCycle_ = (sa_size_t)ai1;
639  ilastCycle_  = (sa_size_t)ai2;
640 
641
642  //associate cycle number to index line in tuple
643  sa_size_t nLines = scaTuple_->NbLines();
644  for(sa_size_t iL=0; iL<nLines; ++iL){
645    idCycleInTuple_[(sa_size_t)scaTuple_->GetCell(iL,"cycle")]=iL;
646  }
647
648
649  return rc;
650}
651//JEC 22/9/11 Make ON-OFF analysis WO any calibration START
652//----------------------------------------------
653int ProcessONOFFRawData::processCmd() throw(string) {
654  int rc = 0;
655  try {
656    rc = ProcessBase::processCmd();
657  } 
658  catch (string s) {
659    throw s;
660  }
661  if(debuglev_>0)cout << "Process Raw Data ON OFF" << endl;
662  vector<string> modeList;
663  modeList.push_back("On");
664  modeList.push_back("Off");
665  vector<string>::const_iterator iMode;
666 
667  uint_4 id; 
668  string tag;
669
670  //
671  //Process to get sucessively
672  //Raw Spectra,
673  //The pocesses are separated to allow intermediate save of results
674
675  map< pair<string, sa_size_t>, TMatrix<r_4> > spectreCollect;
676  map< pair<string, sa_size_t>, TMatrix<r_4> >::iterator iSpectre, iSpectreEnd;
677 
678  for (iMode = modeList.begin(); iMode != modeList.end(); ++iMode) {
679    string mode = *iMode;
680    if(debuglev_>0)cout << "Process RAW Mode " << mode << endl;
681
682    //------------------------------------------
683    //Produce Raw spectra per cycle
684    //------------------------------------------
685
686    string directoryName;
687    list<string> listOfSpecFiles;
688    list<string>::const_iterator iFile, iFileEnd;
689   
690       
691    //
692    //loop on cycles
693    //
694    for (sa_size_t icycle = ifirstCycle_; icycle <= ilastCycle_; icycle++) {
695      directoryName = "./" + mode + "/";
696      stringstream sicycle;
697      sicycle << icycle;
698      directoryName += spectraDirectory_ + sicycle.str() + "/";
699
700      //read directory
701      listOfSpecFiles = ListOfFileInDir(directoryName,typeOfFile_);
702     
703
704      //compute mean of spectra created in a cycle
705      if(debuglev_>0)cout << "compute mean for cycle " << icycle << endl;
706      TMatrix<r_4> spectreMean(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ); //implicit init to 0
707      iFileEnd = listOfSpecFiles.end();
708      r_4 nSpectres  = 0;
709      for (iFile = listOfSpecFiles.begin(); iFile != iFileEnd; ++iFile) {
710        FitsInOutFile aSpectrum(*iFile,FitsInOutFile::Fits_RO);
711        TMatrix<r_4> spectre(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ);
712        aSpectrum >> spectre;
713        spectreMean += spectre;
714        nSpectres++;
715      }// end of for files
716      if(nSpectres>0) spectreMean /= nSpectres;
717     
718      //save mean spectrum
719      spectreCollect.insert( pair< pair<string,sa_size_t>, TMatrix<r_4> >(make_pair(mode,icycle),TMatrix<r_4>(spectreMean,false) ));
720    }//end of for cycles
721  }//end loop on mode for raw preocess
722
723  //JEC 23/9/11 DO IT
724  //  if(debuglev_>1) {//save mean spectra on file
725  cout << "Save mean raw spectra" << endl;
726  string fileName;
727  fileName = "./dataRaw_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";
728
729  POutPersist fos(fileName);
730  id=0;
731  iSpectreEnd = spectreCollect.end();
732  for (iSpectre = spectreCollect.begin();
733       iSpectre != iSpectreEnd ; ++iSpectre, ++id) {
734    tag = "specRaw";
735    tag += (iSpectre->first).first;
736    stringstream sid;
737    sid << (iSpectre->first).second;
738    tag += sid.str();
739    if(debuglev_>9) {
740      cout << "save tag<" << tag << ">" << endl;
741    }
742    fos << PPFNameTag(tag) << iSpectre->second;
743  }
744    //  }//end of save fits
745 
746
747  //------------------------------------------
748  // Perform ON-OFF
749  //------------------------------------------
750 
751  map< sa_size_t, TMatrix<r_4> > diffCollect;
752  map< sa_size_t, TMatrix<r_4> >::iterator iDiff, iDiffEnd;
753
754  TMatrix<r_4> diffMeanOnOff(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ); //init zero
755  r_4 nCycles = 0;
756  for (sa_size_t icycle = ifirstCycle_; icycle <= ilastCycle_; icycle++) {
757    nCycles++;
758    TMatrix<r_4> specmtxOn(spectreCollect[make_pair(modeList[0],icycle)],false); //clone the memory
759    TMatrix<r_4> specmtxOff(spectreCollect[make_pair(modeList[1],icycle)],false); //clone the memory
760    TMatrix<r_4> diffOnOff = specmtxOn - specmtxOff;
761    diffCollect.insert(pair< sa_size_t,TMatrix<r_4> >(icycle,TMatrix<r_4>(diffOnOff,false) ));
762    diffMeanOnOff += diffOnOff;
763  }//end loop on cycle
764  if(nCycles>0) diffMeanOnOff/=nCycles;
765
766  //exctract channels and do the mean
767  TVector<r_4> meanOfChan(NUMBER_OF_FREQ); //implicitly init to 0
768  for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; ++iCh) {
769    meanOfChan += diffMeanOnOff.Row(iCh).Transpose();
770  }
771  meanOfChan /= (r_4)NUMBER_OF_CHANNELS;
772 
773
774
775  {//save diff ON-OFF on Raw data
776    if(debuglev_>0)cout << "save ON-OFF RAW spectra" << endl;
777    string fileName;
778    fileName = "./diffOnOffRaw_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";
779    POutPersist fos(fileName);
780    iDiffEnd = diffCollect.end();
781    id = 0;
782
783    //JEC 22/9/11 Mean & Sigma in 32-bins size START
784    sa_size_t nSliceFreq = 32; //TODO: put as an input parameter option ?
785    sa_size_t deltaFreq = NUMBER_OF_FREQ/nSliceFreq;
786    //JEC 22/9/11 Mean & Sigma in 32-bins size END
787
788    for (iDiff = diffCollect.begin();iDiff != iDiffEnd ; ++iDiff, id++) {
789      tag = "specONOFFRaw";
790      stringstream sid;
791      sid << iDiff->first;
792      tag += sid.str();
793      fos << PPFNameTag(tag) << iDiff->second;
794
795      //JEC 22/9/11 Mean & Sigma in 32-bins size START
796      if (debuglev_>9) {
797        cout << "Debug slicing: slice/delta " << nSliceFreq << " " << deltaFreq << endl;
798      }
799      TMatrix<r_4> reducedMeanDiffOnOff(NUMBER_OF_CHANNELS,nSliceFreq); //init 0 by default
800      TMatrix<r_4> reducedSigmaDiffOnOff(NUMBER_OF_CHANNELS,nSliceFreq); //init 0 by default
801      for (sa_size_t iSlice=0; iSlice<nSliceFreq; iSlice++){
802        sa_size_t freqLow= iSlice*deltaFreq;
803        sa_size_t freqHigh= freqLow + deltaFreq -1;
804        if (debuglev_>9) {
805          cout << "Debug .......... slicing ["<< iSlice << "]: low/high freq" << freqLow << "/" << freqHigh << endl;
806        }
807        for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; ++iCh){
808          if (debuglev_>9) {
809            cout << "Debug .......... Channel " << iCh;
810          }
811          TVector<r_4> reducedRow;
812          reducedRow = (iDiff->second).SubMatrix(Range(iCh),Range(freqLow,freqHigh)).CompactAllDimensions();
813          double mean; 
814          double sigma;
815          MeanSigma(reducedRow,mean,sigma);
816          if (debuglev_>9) {
817            cout << "mean/signa " << mean << "/" << sigma << endl;
818          }
819          reducedMeanDiffOnOff(iCh,iSlice) = mean;
820          reducedSigmaDiffOnOff(iCh,iSlice) = sigma;
821        }//loop on Channel
822      }//loop on Freq. slice
823      tag = "redMeanONOFFRaw";
824      tag += sid.str();
825      fos << PPFNameTag(tag) << reducedMeanDiffOnOff;
826      tag = "redSigmaONOFFRaw";
827      tag += sid.str();
828      fos << PPFNameTag(tag) << reducedSigmaDiffOnOff;
829      //JEC 22/9/11 END
830
831    }//loop on ON-OFF spectre
832    //save the mean also
833    fos << PPFNameTag("specONOFFRawMean") << diffMeanOnOff;
834
835    //JEC 22/9/11 START
836    TMatrix<r_4> reducedMeanDiffOnOffAll(NUMBER_OF_CHANNELS,nSliceFreq); //init 0 by default
837    TMatrix<r_4> reducedSigmaDiffOnOffAll(NUMBER_OF_CHANNELS,nSliceFreq); //init 0 by default
838    for (sa_size_t iSlice=0; iSlice<nSliceFreq; iSlice++){
839      sa_size_t freqLow= iSlice*deltaFreq;
840      sa_size_t freqHigh= freqLow + deltaFreq -1;
841      if (debuglev_>9) {
842        cout << "Debug .......... slicing ["<< iSlice << "]: low/high freq" << freqLow << "/" << freqHigh << endl;
843      }
844      for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; ++iCh){
845        if (debuglev_>9) {
846          cout << "Debug .......... Channel " << iCh;
847        }
848        TVector<r_4> reducedRow;
849        reducedRow = diffMeanOnOff.SubMatrix(Range(iCh),Range(freqLow,freqHigh)).CompactAllDimensions();
850        double mean; 
851        double sigma;
852        MeanSigma(reducedRow,mean,sigma);
853        if (debuglev_>9) {
854          cout << "mean/signa " << mean << "/" << sigma << endl;
855        }
856        reducedMeanDiffOnOffAll(iCh,iSlice) = mean;
857        reducedSigmaDiffOnOffAll(iCh,iSlice) = sigma;
858      }//loop on Channel
859    }//loop on Freq. slice
860    tag = "redMeanONOFFRawAll";
861    fos << PPFNameTag(tag) << reducedMeanDiffOnOffAll;
862    tag = "redSigmaONOFFRawAll";
863    fos << PPFNameTag(tag) << reducedSigmaDiffOnOffAll;
864    //JEC 22/9/11 END
865
866
867
868    fos << PPFNameTag("specONOFFRaw2ChanMean") << meanOfChan;
869  }//end of save fits
870
871 
872  cout << "OK rawOnOff finished" <<endl;
873  return rc;
874} //ProcessONOFFRawData::processCmd
875
876//JEC 22/9/11 Make ON-OFF analysis WO any calibration END
877//----------------------------------------------
878int ProcessONOFFData::processCmd() throw(string) {
879  int rc = 0;
880  try {
881    rc = ProcessBase::processCmd();
882  } 
883  catch (string s) {
884    throw s;
885  }
886   if(debuglev_>0)cout << "Process Data" << endl;
887  vector<string> modeList;
888  modeList.push_back("On");
889  modeList.push_back("Off");
890  vector<string>::const_iterator iMode;
891 
892  uint_4 id; 
893  string tag;
894
895  //
896  //Process to get sucessively
897  //Raw Spectra,
898  //BAO Calibrated Spectra
899  //and RT Calibrated Spectra
900  //The pocesses are separated to allow intermediate save of results
901
902  map< pair<string, sa_size_t>, TMatrix<r_4> > spectreCollect;
903  map< pair<string, sa_size_t>, TMatrix<r_4> >::iterator iSpectre, iSpectreEnd;
904 
905  for (iMode = modeList.begin(); iMode != modeList.end(); ++iMode) {
906    string mode = *iMode;
907    if(debuglev_>0)cout << "Process RAW Mode " << mode << endl;
908
909    //------------------------------------------
910    //Produce Raw spectra per cycle
911    //------------------------------------------
912
913    string directoryName;
914    list<string> listOfSpecFiles;
915    list<string>::const_iterator iFile, iFileEnd;
916   
917       
918    //
919    //loop on cycles
920    //
921    for (sa_size_t icycle = ifirstCycle_; icycle <= ilastCycle_; icycle++) {
922      //TOBE FIXED      directoryName = "./" + sourceName_ + "/"+ dateOfRun_ + StringToLower(sourceName_) + "/" +mode + "/";
923      directoryName = "./" + mode + "/";
924      stringstream sicycle;
925      sicycle << icycle;
926      directoryName += spectraDirectory_ + sicycle.str() + "/";
927
928      //read directory
929      listOfSpecFiles = ListOfFileInDir(directoryName,typeOfFile_);
930     
931
932      //compute mean of spectra created in a cycle
933      if(debuglev_>0)cout << "compute mean for cycle " << icycle << endl;
934      TMatrix<r_4> spectreMean(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ); //implicit init to 0
935      iFileEnd = listOfSpecFiles.end();
936      r_4 nSpectres  = 0;
937      for (iFile = listOfSpecFiles.begin(); iFile != iFileEnd; ++iFile) {
938        FitsInOutFile aSpectrum(*iFile,FitsInOutFile::Fits_RO);
939        TMatrix<r_4> spectre(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ);
940        aSpectrum >> spectre;
941        spectreMean += spectre;
942        nSpectres++;
943      }// end of for files
944      if(nSpectres>0) spectreMean /= nSpectres;
945     
946      //save mean spectrum
947      spectreCollect.insert( pair< pair<string,sa_size_t>, TMatrix<r_4> >(make_pair(mode,icycle),TMatrix<r_4>(spectreMean,false) ));
948    }//end of for cycles
949  }//end loop on mode for raw preocess
950
951  if(debuglev_>1) {//save mean spectra on file
952    cout << "Save mean raw spectra" << endl;
953    string fileName;
954    //TOBE FIXED    fileName = "./" + sourceName_ + "/" + dateOfRun_ + "_" + StringToLower(sourceName_) + "_" + "dataRaw" + ".ppf";
955    fileName = "./dataRaw_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";
956
957    POutPersist fos(fileName);
958    id=0;
959    iSpectreEnd = spectreCollect.end();
960    for (iSpectre = spectreCollect.begin();
961         iSpectre != iSpectreEnd ; ++iSpectre, ++id) {
962      tag = "specRaw";
963
964      //JEC 20/9/11 modif tag to take into account Mode and Cycle number START
965//       stringstream sid;
966//       sid << id;
967//       tag += sid.str();
968      tag += (iSpectre->first).first;
969      stringstream sid;
970      sid << (iSpectre->first).second;
971      tag += sid.str();
972      if(debuglev_>9) {
973        cout << "save tag<" << tag << ">" << endl;
974      }
975      //JEC 20/9/11 modif tag to take into account Mode and Cycle number END
976
977      fos << PPFNameTag(tag) << iSpectre->second;
978    }
979  }//end of save fits
980 
981
982
983  for (iMode = modeList.begin(); iMode != modeList.end(); ++iMode) {
984    string mode = *iMode;
985    if(debuglev_>0)cout << "Process CALIB BAO Mode " << mode << endl;
986    //------------------------------------------
987    // Correct Raw spectra for BAO calibration
988    //------------------------------------------
989    //Read BAO calibration files
990    sa_size_t nr,nc; //values read
991   
992    //JEC 20/9/11 use mean calibration coeff upon all cycles START
993    string calibFileName = inputPath_+ "/" 
994      + sourceName_ + "/" + dateOfRun_ + StringToLower(sourceName_) 
995      + "/calib_" + dateOfRun_ + "_" + StringToLower(sourceName_) + "_"
996      + mode + "_" + freqBAOCalibration_ + "MHz-All.txt";
997
998    if(debuglev_>0) cout << "Read file " << calibFileName << endl;
999    ifstream ifs(calibFileName.c_str());
1000    if ( ! ifs.is_open() ) {
1001      rc = 999;
1002      throw calibFileName + " cannot be opened...";
1003    }   
1004    TVector<r_4> calibBAOfactors;
1005    if(debuglev_>9) cout << "Debug 1" << endl;
1006    calibBAOfactors.ReadASCII(ifs,nr,nc);
1007    if(debuglev_>9){
1008      cout << "Debug 2: (nr,nc): "<< nr << "," << nc << endl;
1009      calibBAOfactors.Print(cout);
1010    }
1011
1012    //JEC 20/9/11 use mean calibration coeff upon all cycles END
1013
1014    //
1015    //spectra corrected by BAO calibration factor
1016    //-----make it different on Channels and Cycles (1/06/2011) OBSOLETE
1017    //use mean calibration coeff upon all cycles (20/6/11)
1018    //warning cycles are numbered from 1,...,N
1019    //
1020    if(debuglev_>0)cout << "do calibration..." << endl;
1021    for (sa_size_t icycle = ifirstCycle_; icycle <= ilastCycle_; icycle++) {
1022      TMatrix<r_4> specmtx(spectreCollect[make_pair(mode,icycle)],true); //share the memory
1023     
1024      for (sa_size_t iCh=0;iCh<NUMBER_OF_CHANNELS;++iCh){
1025        //JEC 20/9/11 use mean calibration coeff upon all cycles START
1026
1027        //      specmtx( Range(iCh), Range::all() ) /= calibBAOfactors(iCh,icycle-1);
1028        specmtx( Range(iCh), Range::all() ) /= calibBAOfactors(iCh);
1029        //JEC 20/9/11 use mean calibration coeff upon all cycles END
1030      }
1031    }
1032  } //end loop mode for BAO calib
1033
1034  cout << "save calibrated BAO spectra" << endl;
1035  string fileName;
1036  //TO BE FIXED    fileName = "./" + sourceName_ + "/" + dateOfRun_ + "_" + StringToLower(sourceName_) + "_" + "dataBAOCalib" + ".ppf";
1037  fileName = "./dataBAOCalib_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";
1038 
1039  POutPersist fos(fileName);
1040  iSpectreEnd = spectreCollect.end();
1041  id=0;
1042  for (iSpectre = spectreCollect.begin();iSpectre != iSpectreEnd ; ++iSpectre, ++id) {
1043   
1044    tag = "specBAOCalib";
1045    //JEC 20/9/11 modif tag to take into account Mode and Cycle number START
1046    //       stringstream sid;
1047    //       sid << id;
1048    //       tag += sid.str();
1049    tag += (iSpectre->first).first;
1050    stringstream sid;
1051    sid << (iSpectre->first).second;
1052    tag += sid.str();
1053    if(debuglev_>9) {
1054      cout << "save tag<" << tag << ">" << endl;
1055    }
1056    //JEC 20/9/11 modif tag to take into account Mode and Cycle number END
1057   
1058    fos << PPFNameTag(tag) << iSpectre->second;
1059  }
1060 
1061  for (iMode = modeList.begin(); iMode != modeList.end(); ++iMode) {
1062    string mode = *iMode;
1063    if(debuglev_>0)cout << "Process CALIB RT Mode " << mode << endl;
1064    //------------------------------------------
1065    // Correct BAO calib spectra for RT calibration
1066    //------------------------------------------
1067    //Very Preliminary May-June 11
1068    //coef RT @ 1346MHz Ouest - Est associees a Ch 0 et 1
1069    r_4 calibRT[NUMBER_OF_CHANNELS] = {27.724, 22.543};
1070    for (sa_size_t icycle = ifirstCycle_; icycle <= ilastCycle_; icycle++) {
1071      TMatrix<r_4> specmtx(spectreCollect[make_pair(mode,icycle)],true); //share the memory   
1072      for (sa_size_t iCh=0;iCh<NUMBER_OF_CHANNELS;++iCh){
1073        specmtx( Range(iCh), Range::all() ) *= calibRT[iCh];
1074      }
1075    }
1076  }//end loop on mode RT calib
1077
1078  {//save mean spectra BAO & RT calibrated on file
1079    if(debuglev_>0)cout << "save calibrated BAO & RT spectra" << endl;
1080    string fileName;
1081    //TO BE FIXED    fileName = "./" + sourceName_ + "/" + dateOfRun_ + "_" + StringToLower(sourceName_) + "_" + "dataBAORTCalib" + ".ppf";
1082     fileName = "./dataBAORTCalib_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";   
1083    POutPersist fos(fileName);
1084    iSpectreEnd = spectreCollect.end();
1085    id = 0;
1086    for (iSpectre = spectreCollect.begin();iSpectre != iSpectreEnd ; ++iSpectre, ++id) {
1087      tag = "specBAORTCalib";
1088      //JEC 20/9/11 modif tag to take into account Mode and Cycle number START
1089//       stringstream sid;
1090//       sid << id;
1091//       tag += sid.str();
1092      tag += (iSpectre->first).first;
1093      stringstream sid;
1094      sid << (iSpectre->first).second;
1095      tag += sid.str();
1096      if(debuglev_>9) {
1097        cout << "save tag<" << tag << ">" << endl;
1098      }
1099      //JEC 20/9/11 modif tag to take into account Mode and Cycle number END
1100      fos << PPFNameTag(tag) << iSpectre->second;
1101    }
1102  }//end of save fits
1103
1104  //------------------------------------------
1105  // Perform ON-OFF
1106  //------------------------------------------
1107 
1108  map< sa_size_t, TMatrix<r_4> > diffCollect;
1109  map< sa_size_t, TMatrix<r_4> >::iterator iDiff, iDiffEnd;
1110
1111  TMatrix<r_4> diffMeanOnOff(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ); //init zero
1112  r_4 nCycles = 0;
1113  for (sa_size_t icycle = ifirstCycle_; icycle <= ilastCycle_; icycle++) {
1114    nCycles++;
1115    TMatrix<r_4> specmtxOn(spectreCollect[make_pair(modeList[0],icycle)],false); //clone the memory
1116    TMatrix<r_4> specmtxOff(spectreCollect[make_pair(modeList[1],icycle)],false); //clone the memory
1117    TMatrix<r_4> diffOnOff = specmtxOn - specmtxOff;
1118    diffCollect.insert(pair< sa_size_t,TMatrix<r_4> >(icycle,TMatrix<r_4>(diffOnOff,false) ));
1119    diffMeanOnOff += diffOnOff;
1120  }//end loop on cycle
1121  if(nCycles>0) diffMeanOnOff/=nCycles;
1122
1123  //exctract channels and do the mean
1124  TVector<r_4> meanOfChan(NUMBER_OF_FREQ); //implicitly init to 0
1125  for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; ++iCh) {
1126    meanOfChan += diffMeanOnOff.Row(iCh).Transpose();
1127  }
1128  meanOfChan /= (r_4)NUMBER_OF_CHANNELS;
1129 
1130
1131
1132  {//save diff ON-OFF BAO & RT calibrated
1133    if(debuglev_>0)cout << "save ON-OFF spectra" << endl;
1134    string fileName;
1135    //TO BE FIXED    fileName = "./" + sourceName_ + "/" + dateOfRun_ + "_" + StringToLower(sourceName_) + "_" + "diffOnOff" + ".ppf";
1136    fileName = "./diffOnOff_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";
1137    POutPersist fos(fileName);
1138    iDiffEnd = diffCollect.end();
1139    id = 0;
1140    for (iDiff = diffCollect.begin();iDiff != iDiffEnd ; ++iDiff, id++) {
1141      tag = "specONOFF";
1142      stringstream sid;
1143      //JEC 20/9/11      sid << id;
1144      sid << iDiff->first;
1145      tag += sid.str();
1146      if(debuglev_>9) {
1147        cout << "save tag<" << tag << ">" << endl;
1148      }
1149      fos << PPFNameTag(tag) << iDiff->second;
1150    }
1151    //save the mean also
1152    fos << PPFNameTag("specONOFFMean") << diffMeanOnOff;
1153    fos << PPFNameTag("specONOFF2ChanMean") << meanOfChan;
1154  }//end of save fits
1155
1156  cout << "OK dataOnOff finished";
1157
1158  return rc;
1159} //ProcessONOFFData::processCmd
1160//
1161//----------------------------------------------
1162//
1163int ProcessGain::processCmd() throw(string) {
1164  int rc = 0;
1165  string msg = "";
1166
1167  try {
1168    rc = ProcessBase::processCmd();
1169  } 
1170  catch (string s) {
1171    throw s;
1172  }
1173  if(debuglev_>0)cout << "Process Gain" << endl;
1174 
1175  string directoryName;
1176  //TOBE FIXED  directoryName = "./" + sourceName_ + "/"+ dateOfRun_ + StringToLower(sourceName_) + "/" +mode_ + "/";
1177  //JEC 6/09/2011 numcycle_ repalced by ifirstCycle_ according to definition of numcycle_ and the fact that for GAIN 1 cycle is involved
1178  stringstream thegaincycle;
1179  thegaincycle << ifirstCycle_;
1180  directoryName = inputPath_ + "/" 
1181    + sourceName_ + "/" + dateOfRun_ + StringToLower(sourceName_) + "/" 
1182    + mode_ + "/" + spectraDirectory_ + thegaincycle.str()  + "/";
1183 
1184  list<string> listOfSpecFiles;
1185  list<string>::const_iterator iFile, iFileEnd;
1186  //read directory
1187
1188  listOfSpecFiles = ListOfFileInDir(directoryName,typeOfFile_);
1189 
1190  //Mean power computed over the N channels to select the spectra for gain computation
1191  //The threshold is computed "on-line" as  1%  of the difference (max power -min power) over the
1192  // the min power.
1193  //A possible alternative is to set an absolute value...
1194  if(debuglev_>0)cout << "compute mean poser spectra for files in " << directoryName << endl;
1195  iFileEnd = listOfSpecFiles.end();
1196  map<string, r_4> meanpowerCollect;
1197  //JEC 21/9/11 add meanpower for each Channels START
1198  map<string, r_4> meanPowerPerChanCollect;
1199  //JEC 21/9/11 add meanpower for each Channels END
1200
1201  map<string, r_4>::const_iterator iMeanPow, iMeanPowEnd;
1202
1203  for (iFile = listOfSpecFiles.begin(); iFile != iFileEnd; ++iFile) {
1204    FitsInOutFile aSpectrum(*iFile,FitsInOutFile::Fits_RO);
1205    TMatrix<r_4> spectre(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ);
1206    aSpectrum >> spectre;
1207    meanpowerCollect[*iFile] = spectre.Sum()/spectre.Size();
1208    //JEC 21/9/11 add meanpower for each Channels START
1209    for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; ++iCh) {
1210      TVector<r_4> specChan(NUMBER_OF_FREQ);
1211      specChan = spectre.Row(iCh).Transpose();
1212      stringstream tmp;
1213      tmp << iCh;
1214      string tag = *iFile + "_" + tmp.str();
1215      meanPowerPerChanCollect[tag] = specChan.Sum()/specChan.Size();
1216    }
1217    //JEC 21/9/11 add meanpower for each Channels END
1218  }//end of for files
1219  pair<string, r_4> minelement = *min_element(meanpowerCollect.begin(),meanpowerCollect.end(),compare);
1220  pair<string, r_4> maxelement = *max_element(meanpowerCollect.begin(),meanpowerCollect.end(),compare);
1221  if(debuglev_>1){
1222    cout << "meanpowerCollect has " << meanpowerCollect.size() << " spectra registered" << endl;
1223    cout << "find min mean power "<<minelement.second << " for " << minelement.first << endl;
1224    cout << "find max mean power "<<maxelement.second << " for " << maxelement.first << endl;
1225  }
1226  r_4 threshold = minelement.second + 0.01*(maxelement.second-minelement.second);
1227  if(debuglev_>1){
1228    cout << "threshold found at " << threshold <<endl;
1229  } 
1230
1231  TMatrix<r_4> spectreMean(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ); //implicit init to 0
1232  r_4 nSpectres  = 0;
1233  iMeanPowEnd = meanpowerCollect.end();
1234  for (iMeanPow = meanpowerCollect.begin(); iMeanPow != iMeanPowEnd; ++iMeanPow) {
1235    if ( iMeanPow->second <= threshold ) {
1236      //TODO avoid the reloading of the file may speed up
1237      FitsInOutFile aSpectrum(iMeanPow->first,FitsInOutFile::Fits_RO);
1238      TMatrix<r_4> spectre(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ);
1239      aSpectrum >> spectre;
1240      spectreMean += spectre;
1241      nSpectres++;
1242    }
1243  }
1244  if(debuglev_>1){
1245    cout << "Number of files selected for gain " << nSpectres <<endl;
1246  }   
1247  if(nSpectres>0) {
1248    spectreMean /= nSpectres;
1249  } else {
1250    stringstream tmp;
1251    tmp << threshold;
1252    msg = "Gain: cannot find a spectra above threshold value =" + tmp.str() + " ... FATAL";
1253    throw msg;
1254  }
1255
1256  //Save gain spectra
1257  {
1258    //use ! to override the file: special features of cfitsio library
1259    string fileName;
1260    //TOBE FIXED   fileName = "!./" + sourceName_ + "/gain_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".fits";
1261    fileName = "!"+ outputPath_ + "/gain_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".fits";
1262    if(debuglev_>1){
1263      cout << "save gains in " << fileName << endl;
1264    }
1265    FitsInOutFile fos(fileName, FitsInOutFile::Fits_Create);
1266    fos << spectreMean;
1267  }
1268  //save mean power values
1269  {
1270    vector<r_4> tmp;
1271    //JEC 21/9/11 add meanpower for each Channels START
1272    vector<r_4> tmpCh0; //for Chan 0
1273    vector<r_4> tmpCh1; //for Chan 1
1274    //JEC 21/9/11 add meanpower for each Channels END
1275    for (iFile = listOfSpecFiles.begin(); iFile != iFileEnd; ++iFile) {
1276      if (debuglev_>9) {
1277        cout << "Gain: save mean power of file: " << *iFile << endl;
1278      }
1279      tmp.push_back(meanpowerCollect[*iFile]);
1280      //JEC 21/9/11 add meanpower for each Channels START 
1281      stringstream tmp0;
1282      tmp0 << (sa_size_t)0;
1283      string tag0 = *iFile + "_" + tmp0.str();
1284      tmpCh0.push_back(meanPowerPerChanCollect[tag0]);
1285      if (NUMBER_OF_CHANNELS>1){
1286        stringstream tmp1;
1287        tmp1 << (sa_size_t)1;
1288        string tag1 = *iFile + "_" + tmp1.str();
1289        tmpCh1.push_back(meanPowerPerChanCollect[tag1]);
1290      }
1291      //JEC 21/9/11 add meanpower for each Channels END
1292    }
1293    string fileName;
1294    //TOBE FIXED    fileName = "./" + sourceName_ + "/gain_monitor_" + dateOfRun_
1295    fileName = outputPath_ + "/gain_monitor_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";
1296    POutPersist fos(fileName); 
1297    TVector<r_4> tvtmp(tmp);
1298    fos.PutObject(tvtmp,"gainmoni"); //Attention initialement le tag etait "monitor"...
1299    //JEC 21/9/11 add meanpower for each Channels START 
1300    TVector<r_4> tvtmp0(tmpCh0);
1301    fos.PutObject(tvtmp0,"gainmoni0");
1302    if (NUMBER_OF_CHANNELS>1){
1303      TVector<r_4> tvtmp1(tmpCh1);
1304      fos.PutObject(tvtmp1,"gainmoni1");
1305    }
1306    //JEC 21/9/11 add meanpower for each Channels END
1307  }
1308 
1309  cout << "OK gain finished" <<endl;
1310   return rc;
1311}//ProcessGain::processCmd
1312//
1313//----------------------------------------------
1314//
1315int ProcessCalibration::processCmd() throw(string) {
1316  int rc = 0;
1317  string msg = "";
1318
1319  try {
1320    rc = ProcessBase::processCmd();
1321  } 
1322  catch (string s) {
1323    throw s;
1324  }
1325  if(debuglev_>0)cout << "Process Calibration with option "<< option_ << endl;
1326 
1327  vector<string> modeList;
1328  modeList.push_back("On");
1329  modeList.push_back("Off");
1330
1331  r_8 t0absolute = -1;  //TIMEWIN of the first spectra used
1332  r_8 timeTag0   = -1;   //MEANTT, mean TIME TAG of the first paquet window 
1333  bool first = true;     // for initialisation
1334 
1335  // Power Tuple
1336  // mode, cycle, time, {Ch0, ... ,ChN} mean poser in the range [f0-Bw/2, f0+Bw/2]
1337  vector<string> varPowerTupleName; //ntuple variable naming
1338  varPowerTupleName.push_back("mode");
1339  varPowerTupleName.push_back("cycle"); 
1340  varPowerTupleName.push_back("time");
1341  for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS;++iCh){
1342    stringstream tmp;
1343    tmp << iCh;
1344    varPowerTupleName.push_back("Ch"+tmp.str());
1345  }
1346  r_4 valPowerTuple[varPowerTupleName.size()];
1347  NTuple powerEvolution(varPowerTupleName); 
1348 
1349 
1350  //-----------------
1351  //Start real process
1352  //------------------
1353  for (size_t iMode = 0; iMode < modeList.size(); ++iMode) {
1354    string mode = modeList[iMode];
1355    if(debuglev_>0)cout << "Process Calibration for Mode " << mode << endl;
1356
1357    //initialize the start of each calibration procedure given by the RT SCA file
1358    //see ProcessBase::processCmd for the structure of the sca file
1359    string scaStartCalibName = "stcal"+mode; 
1360    sa_size_t idStartCalib   = scaTuple_->ColumnIndex(scaStartCalibName);
1361
1362    string directoryName;
1363    list<string> listOfSpecFiles;
1364    list<string>::const_iterator iFile, iFileEnd;           
1365    //
1366    //loop on cycles
1367    //
1368    for (sa_size_t icycle = ifirstCycle_; icycle <= ilastCycle_; icycle++) {
1369
1370      directoryName = inputPath_ + "/" 
1371        + sourceName_ + "/"+ dateOfRun_ + StringToLower(sourceName_) + "/" +mode + "/";
1372      stringstream sicycle;
1373      sicycle << icycle;
1374      directoryName += spectraDirectory_ + sicycle.str() + "/";
1375     
1376      //read directory
1377      listOfSpecFiles = ListOfFileInDir(directoryName,typeOfFile_);
1378
1379      iFileEnd = listOfSpecFiles.end();
1380      DVList header;
1381      TMatrix<r_4> spectre(NUMBER_OF_CHANNELS,NUMBER_OF_FREQ); //implicit init to 0
1382
1383      for (iFile = listOfSpecFiles.begin(); iFile != iFileEnd; ++iFile) {
1384        FitsInOutFile aSpectrum(*iFile,FitsInOutFile::Fits_RO);
1385        aSpectrum.GetHeaderRecords(header);
1386        aSpectrum >> spectre;
1387
1388        if(first){//initialise the timer
1389          first = false;
1390          t0absolute = header.GetD("TIMEWIN")/1000.;
1391          timeTag0 = header.GetD("MEANTT");
1392          if (debuglev_>1){
1393            cout << "debug Header of " << *iFile << endl;
1394            cout << "TIMEWIN = " << setprecision(12) << t0absolute << " "
1395                 << "MEANTT = " << setprecision(12) << timeTag0 << endl;
1396          }
1397        }//end init timer
1398       
1399        //Set time of current file
1400        //Add to the non-precise absolute origin an precise increment
1401        r_4 timeTag = t0absolute + (header.GetD("MEANTT") - timeTag0);
1402        int index=0;
1403        valPowerTuple[index++] = iMode;
1404        valPowerTuple[index++] = icycle;
1405        valPowerTuple[index++] = timeTag-scaTuple_->GetCell(idCycleInTuple_[icycle],idStartCalib); //take the RT time start as refernce
1406
1407        //Compute the mean power of the two channel (separatly) in the range [f-bw/2, f+bw/2]
1408        for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS;++iCh){
1409          TMatrix<r_4> tmp(spectre(Range(iCh),Range(lowerFreqBin_,upperFreqBin_)),false);
1410          r_4 mean = tmp.Sum()/(r_4)tmp.Size();
1411          valPowerTuple[index++] = mean;
1412        }//end of channel loop
1413       
1414        //Fill Tuple
1415        powerEvolution.Fill(valPowerTuple);
1416      }//end of files loop
1417    }//end of cycles loop
1418  }//end of mode loop
1419
1420  //store power evolution Tuple
1421  if(debuglev_>0){
1422    cout << "ProcessCalibration::processCmd: dump powerEvolution tuple" << endl;
1423    powerEvolution.Show(cout);
1424  }
1425  //
1426  //Compute Calibration Coefficients as function of mode/cycle/channels
1427  //
1428
1429  //Tsys,Incremant Intensity... Tuple
1430  //mode mode cycle [(tsys0,dint0),...,(tsysN,dintN)]
1431  vector<string> varCalibTupleName;
1432  varCalibTupleName.push_back("mode");
1433  varCalibTupleName.push_back("cycle");
1434  for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS;++iCh){
1435    stringstream tmp;
1436    tmp << iCh;
1437    varCalibTupleName.push_back("tsys"+tmp.str());
1438    varCalibTupleName.push_back("dint"+tmp.str());
1439  }
1440  r_4 valCalibTuple[varCalibTupleName.size()];
1441  NTuple calibEvolution(varCalibTupleName);
1442
1443  // select time E [twin0,twin1] U [twin2,twin3] for Tsys
1444  // time unit = second
1445  const r_4 twin0 = -3.;
1446  const r_4 twin1 = -1.;
1447  const r_4 twin2 =  6.;
1448  const r_4 twin3 =  8;
1449  const r_4 thresholdFactor = 0.20; //80% of the diff. Max-Min intensity
1450
1451  sa_size_t inModeIdx = powerEvolution.ColumnIndex("mode");
1452  sa_size_t inCycleIdx= powerEvolution.ColumnIndex("cycle");
1453  sa_size_t inTimeIdx = powerEvolution.ColumnIndex("time");
1454  sa_size_t inOffsetCh0 = powerEvolution.ColumnIndex("Ch0"); //nb Ch0 position in the powerEvolution tuple 
1455  if(debuglev_>1) cout << "DEBUG: in Idx: (" 
1456                       << inModeIdx << ", "
1457                       << inCycleIdx << ", "
1458                       << inTimeIdx << ", "
1459                       << inOffsetCh0 << ")"
1460                       << endl;
1461
1462 
1463  size_t outModeIdx = calibEvolution.ColumnIndex("mode");
1464  size_t outCycleIdx= calibEvolution.ColumnIndex("cycle");
1465  size_t outOffsetCh0 = calibEvolution.ColumnIndex("tsys0"); //nb Ch0 position in the monitor tuple 
1466  size_t outNDataPerCh= 2;
1467  if(debuglev_>1)  cout << "DEBUG: out Idx: (" 
1468                        << outModeIdx << ", "
1469                        << outCycleIdx << ", "
1470                        << outOffsetCh0 << ")"
1471                        << endl;
1472
1473  sa_size_t nPowerEvolEntry = powerEvolution.NEntry();
1474  double minMode;
1475  double maxMode;
1476  powerEvolution.GetMinMax("mode",minMode,maxMode);
1477  double minCycleNum;
1478  double maxCycleNum;
1479  powerEvolution.GetMinMax("cycle",minCycleNum,maxCycleNum);
1480  if(debuglev_>1)  cout << "DEBUG mode ("<<minMode<<","<<maxMode<<")\n"
1481                        << "cycle ("<<minCycleNum<<","<<maxCycleNum<<")"
1482                        << endl;
1483
1484  r_4* aPowerEvolEntry; // a ligne of the powerEvolution tuple
1485//   r_4* aPowerEvolEntry = new r_4[powerEvolution.NbColumns()]; // a ligne of the powerEvolution tuple
1486
1487  r_4 minMean;
1488  r_4 maxMean;
1489
1490  for (size_t iMode = (size_t)minMode; iMode <= (size_t)maxMode; iMode++){
1491    for (size_t iCycle = (size_t)minCycleNum; iCycle <= (size_t)maxCycleNum; iCycle++ ){
1492      if(debuglev_>1) cout<<"DEBUG >>>>>>> mode/cycle: " << iMode << "/" << iCycle << endl;
1493 
1494      valCalibTuple[outModeIdx]=iMode;
1495      valCalibTuple[outCycleIdx]=iCycle;
1496      //
1497      //Compute the Min && Max value of each Ch<i> data
1498      if(debuglev_>1) cout<<"DEBUG compute Min and Max for each channels" << endl;
1499      //
1500      TVector<r_4> chMean[NUMBER_OF_CHANNELS];
1501      for (sa_size_t iCh=0;iCh<NUMBER_OF_CHANNELS;iCh++){
1502        chMean[iCh].SetSize(nPowerEvolEntry);
1503      }
1504      for (sa_size_t ie=0; ie<nPowerEvolEntry; ie++){
1505        aPowerEvolEntry = powerEvolution.GetVec(ie);
1506        if ( (size_t)aPowerEvolEntry[inModeIdx] == iMode && (size_t)aPowerEvolEntry[inCycleIdx] == iCycle ){
1507          for (sa_size_t iCh=0;iCh<NUMBER_OF_CHANNELS;iCh++){
1508            chMean[iCh](ie) = aPowerEvolEntry[iCh+inOffsetCh0];
1509          }//end cut
1510        }
1511      }//eo loop on tuple entries
1512      for (sa_size_t iCh=0;iCh<NUMBER_OF_CHANNELS;iCh++){
1513        //
1514        //select values to compute background Tsys
1515        if(debuglev_>1) {
1516          cout<< "DEBUG >>>> Ch[" << iCh << "]" << endl;
1517          cout<< "DEBUG select values to compute background Tsys " << endl;
1518        }
1519        //
1520       
1521        std::vector<r_4> lowerInt;
1522        for (sa_size_t ie=0; ie<nPowerEvolEntry; ie++){
1523          aPowerEvolEntry = powerEvolution.GetVec(ie);
1524          if ( (size_t)aPowerEvolEntry[inModeIdx] == iMode && (size_t)aPowerEvolEntry[inCycleIdx] == iCycle ){
1525            r_4 time = aPowerEvolEntry[inTimeIdx];
1526            if ( (time >= twin0 && time <= twin1) ||
1527                 (time >= twin2 && time <= twin3)
1528                 ) lowerInt.push_back(aPowerEvolEntry[iCh+inOffsetCh0]);
1529          }//end cut
1530        } //end loop entries
1531        //
1532        //compute the Tsys
1533        if(debuglev_>1) cout <<"DEBUG compute Tsys" << endl;
1534        //
1535        std::nth_element(lowerInt.begin(),
1536                         lowerInt.begin()+lowerInt.size()/2,
1537                         lowerInt.end());
1538        r_4 tsys = *(lowerInt.begin()+lowerInt.size()/2);
1539        if(debuglev_>1) cout << "DEBUG tsys["<<iCh<<"] : " << tsys <<endl;
1540        //
1541        //set the threshold for DAB detection
1542        //
1543        chMean[iCh].MinMax(minMean,maxMean);
1544        minMean = (tsys > minMean) ? tsys : minMean; //pb of empty vector
1545        if(debuglev_>1) cout << "DEBUG min["<<iCh<<"] : " << minMean
1546                             << " max["<<iCh<<"] : " << maxMean
1547                             <<endl;
1548        r_4 deltathres = thresholdFactor * (maxMean-minMean);
1549        r_4 thres =  tsys + deltathres;
1550        if(debuglev_>1) cout << "DEBUG thres["<<iCh<<"] : " << thres <<endl;
1551        //
1552        //collect upper part of the DAB
1553        if(debuglev_>1) cout <<"DEBUG collect upper part of the DAB" << endl;
1554        //
1555        std::vector<r_4> upperInt;
1556        for (sa_size_t ie=0; ie<nPowerEvolEntry; ie++){
1557          aPowerEvolEntry = powerEvolution.GetVec(ie);
1558          if ( (size_t)aPowerEvolEntry[inModeIdx] == iMode && (size_t)aPowerEvolEntry[inCycleIdx] == iCycle ){
1559            r_4 mean = aPowerEvolEntry[iCh+inOffsetCh0];
1560            if (mean >= thres) upperInt.push_back(mean);
1561          }//end cut
1562        }//eo loop on channels
1563        //
1564        //compute adjacent differences to detect the 2 DAB levels
1565        //
1566        if(debuglev_>1) cout << "(DEBUG )size upper [" << iCh << "]: " << upperInt.size() <<endl;
1567        std::vector<r_4> upperIntAdjDiff(upperInt.size());
1568        std::adjacent_difference(upperInt.begin(),
1569                                 upperInt.end(),
1570                                 upperIntAdjDiff.begin());
1571        //
1572        //Search the 2 DAB states
1573        if(debuglev_>1) cout<<"DEBUG Search the 2 DAB states" << endl;
1574        //
1575        std::vector<r_4> upIntState[2];
1576        int state=-1;
1577        for (size_t i=1;i<upperInt.size();i++) {//skip first value
1578          if (fabs(upperIntAdjDiff[i])<upperInt[i]*0.010) {
1579            if(state == -1) state=0;
1580            if(state == -2) state=1;
1581            upIntState[state].push_back(upperInt[i]);
1582          } else {
1583            if (state == 0) state=-2;
1584          }
1585        }
1586        //
1587        //Take the mean of the median values of each levels
1588        if(debuglev_>1)cout << "DEBUG mean of the median values of each levels" << endl;       
1589        //
1590        r_4 meanUpper = 0;
1591        r_4 nval = 0;
1592        for (int i=0;i<2;i++) {
1593          if (!upIntState[i].empty()) {
1594            std::nth_element(upIntState[i].begin(),
1595                             upIntState[i].begin()+upIntState[i].size()/2,
1596                             upIntState[i].end());
1597            meanUpper += *(upIntState[i].begin()+upIntState[i].size()/2);
1598            nval++;
1599          } 
1600        }
1601        meanUpper /= nval;
1602        //
1603        //Finaly the increase of power due to the DAB is:
1604        //
1605        r_4 deltaInt = meanUpper - tsys;
1606        if(debuglev_>1) cout << "DEBUG deltaInt["<<iCh<<"] : " << deltaInt <<endl;
1607        //
1608        //Save for monitoring and final calibration operations
1609        //
1610        valCalibTuple[outOffsetCh0+outNDataPerCh*iCh]   = tsys;
1611        valCalibTuple[outOffsetCh0+outNDataPerCh*iCh+1] = deltaInt;
1612      }//end loop on channels
1613      if(debuglev_>1) cout<<"DEBUG Fill the calibEvolution tuple" << endl;
1614      calibEvolution.Fill(valCalibTuple);
1615    }//eo loop on Cycles
1616  }//eo loop on Modes
1617  //
1618  //store calibration evolution Tuple
1619  //
1620  if(debuglev_>0){
1621    cout << "ProcessCalibration::processCmd: dump calibEvolution tuple" << endl;
1622    calibEvolution.Show(cout);
1623  }
1624  //
1625  //Compute the means per channel of the calibration coefficients (deltaInt)
1626  //and save cycle based Calibration Ctes in file named as
1627  //    <source>-<date>-<mode>-<fcalib>MHz-Ch<channel>Cycles.txt
1628  //   format <cycle> <coef>
1629  //the means are stored in files     
1630  //    <source>-<date>-<mode>-<fcalib>MHz-All.txt
1631  //   format <channel> <coef>
1632  //
1633  sa_size_t nModes = (sa_size_t)(maxMode - minMode) + 1;
1634  string calibCoefFileName;
1635  ofstream  calibMeanCoefFile[nModes]; //Mean over cycles
1636  ofstream  calibCoefFile[nModes][NUMBER_OF_CHANNELS]; //cycle per cycle
1637  for (sa_size_t iMode=0; iMode<nModes; iMode++){
1638    //The file for the Means Coeff.
1639    calibCoefFileName = outputPath_ + "/calib_" 
1640      + dateOfRun_ + "_" + StringToLower(sourceName_) + "_"
1641      + modeList[iMode] + "_"
1642      + freqBAOCalibration_ + "MHz-All.txt";
1643    calibMeanCoefFile[iMode].open(calibCoefFileName.c_str());
1644    //The file for the cycle per cycle Coeff.
1645    for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; iCh++){
1646      stringstream chString;
1647      chString << iCh;
1648      calibCoefFileName = outputPath_ + "/calib_" 
1649        + dateOfRun_ + "_" + StringToLower(sourceName_) + "_"
1650        + modeList[iMode] + "_"
1651        + freqBAOCalibration_ + "MHz-Ch" + chString.str() + "Cycles.txt";
1652      calibCoefFile[iMode][iCh].open(calibCoefFileName.c_str());
1653    }
1654  }
1655
1656  r_4* aCalibEvolEntry;
1657  sa_size_t nCalibEvolEntry = calibEvolution.NEntry();
1658
1659  TMatrix<r_4> meanCalibCoef(nModes,NUMBER_OF_CHANNELS); //by default init to 0
1660  TMatrix<r_4> nData4Mean(nModes,NUMBER_OF_CHANNELS);
1661
1662  //READ the calibration tuple, fill the array for mean and write to ascii file
1663  for (sa_size_t ie=0; ie<nCalibEvolEntry; ie++){
1664    aCalibEvolEntry = calibEvolution.GetVec(ie);
1665    if(debuglev_>1){
1666      cout << "DEBUG mode/cycle/Coef " 
1667           << aCalibEvolEntry[outModeIdx] << " "
1668           << aCalibEvolEntry[outCycleIdx] << " ";
1669    }
1670    for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; iCh++){
1671      if(debuglev_>1) cout << aCalibEvolEntry[outOffsetCh0+outNDataPerCh*iCh+1] << " "; // for debug
1672      sa_size_t currentMode = (sa_size_t)(aCalibEvolEntry[outModeIdx] - minMode); //ok even if minMode <> 0
1673      nData4Mean(currentMode,iCh)++;
1674      meanCalibCoef(currentMode,iCh) += aCalibEvolEntry[outOffsetCh0+outNDataPerCh*iCh+1];
1675
1676      calibCoefFile[currentMode][iCh] << aCalibEvolEntry[outCycleIdx] << " "
1677                                      << setprecision(12)
1678                                      << aCalibEvolEntry[outOffsetCh0+outNDataPerCh*iCh+1]
1679                                      << endl;
1680    }
1681    if(debuglev_>1) cout << endl; //for debug
1682  }
1683 
1684  //Perform means: true means that div per 0 is treated (slower but safer)
1685  meanCalibCoef.Div(nData4Mean,true);
1686 
1687  if(debuglev_>0){
1688    cout << "DEBUG nData4Mean" << endl;
1689    nData4Mean.Print(cout);
1690    cout << "DEBUG meanCalibCoef (averaged)" << endl;
1691    meanCalibCoef.Print(cout);
1692  }
1693
1694  //Save means Coef
1695  for (sa_size_t iMode=0; iMode<nModes; iMode++){
1696    for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; iCh++){
1697      calibMeanCoefFile[iMode] << setprecision(12)
1698                               << meanCalibCoef(iMode,iCh)
1699                               << endl;
1700    }
1701  }
1702
1703  //Save Monitor File
1704  {
1705    string fileName = outputPath_ + "/calib_monitor_" + dateOfRun_ + "_" + StringToLower(sourceName_) + ".ppf";
1706    POutPersist calibMonitorFile(fileName);
1707    calibMonitorFile << PPFNameTag("powermoni") <<  powerEvolution;
1708    calibMonitorFile << PPFNameTag("calibmoni") <<  calibEvolution;
1709  }
1710
1711  //Clean & Return
1712  for (sa_size_t iMode=0; iMode<nModes; iMode++){
1713    calibMeanCoefFile[iMode].close();
1714    for (sa_size_t iCh=0; iCh<NUMBER_OF_CHANNELS; iCh++){
1715      calibCoefFile[iMode][iCh].close();
1716    }
1717  }
1718
1719  cout << "Ok calibration finished" << endl; 
1720  return rc;
1721}//ProcessCalibration::processCmd
1722
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