source: trunk/src/Scantable.cpp @ 2276

Last change on this file since 2276 was 2276, checked in by Malte Marquarding, 13 years ago

Created 3.1.0 release tag

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1//
2// C++ Implementation: Scantable
3//
4// Description:
5//
6//
7// Author: Malte Marquarding <asap@atnf.csiro.au>, (C) 2005
8//
9// Copyright: See COPYING file that comes with this distribution
10//
11//
12#include <map>
13
14#include <atnf/PKSIO/SrcType.h>
15
16#include <casa/aips.h>
17#include <casa/iomanip.h>
18#include <casa/iostream.h>
19#include <casa/OS/File.h>
20#include <casa/OS/Path.h>
21#include <casa/Arrays/Array.h>
22#include <casa/Arrays/ArrayAccessor.h>
23#include <casa/Arrays/ArrayLogical.h>
24#include <casa/Arrays/ArrayMath.h>
25#include <casa/Arrays/MaskArrMath.h>
26#include <casa/Arrays/Slice.h>
27#include <casa/Arrays/Vector.h>
28#include <casa/Arrays/VectorSTLIterator.h>
29#include <casa/BasicMath/Math.h>
30#include <casa/BasicSL/Constants.h>
31#include <casa/Containers/RecordField.h>
32#include <casa/Logging/LogIO.h>
33#include <casa/Quanta/MVAngle.h>
34#include <casa/Quanta/MVTime.h>
35#include <casa/Utilities/GenSort.h>
36
37#include <coordinates/Coordinates/CoordinateUtil.h>
38
39// needed to avoid error in .tcc
40#include <measures/Measures/MCDirection.h>
41//
42#include <measures/Measures/MDirection.h>
43#include <measures/Measures/MEpoch.h>
44#include <measures/Measures/MFrequency.h>
45#include <measures/Measures/MeasRef.h>
46#include <measures/Measures/MeasTable.h>
47#include <measures/TableMeasures/ScalarMeasColumn.h>
48#include <measures/TableMeasures/TableMeasDesc.h>
49#include <measures/TableMeasures/TableMeasRefDesc.h>
50#include <measures/TableMeasures/TableMeasValueDesc.h>
51
52#include <tables/Tables/ArrColDesc.h>
53#include <tables/Tables/ExprNode.h>
54#include <tables/Tables/ScaColDesc.h>
55#include <tables/Tables/SetupNewTab.h>
56#include <tables/Tables/TableCopy.h>
57#include <tables/Tables/TableDesc.h>
58#include <tables/Tables/TableIter.h>
59#include <tables/Tables/TableParse.h>
60#include <tables/Tables/TableRecord.h>
61#include <tables/Tables/TableRow.h>
62#include <tables/Tables/TableVector.h>
63
64#include "MathUtils.h"
65#include "STAttr.h"
66#include "STLineFinder.h"
67#include "STPolCircular.h"
68#include "STPolLinear.h"
69#include "STPolStokes.h"
70#include "Scantable.h"
71
72using namespace casa;
73
74namespace asap {
75
76std::map<std::string, STPol::STPolFactory *> Scantable::factories_;
77
78void Scantable::initFactories() {
79  if ( factories_.empty() ) {
80    Scantable::factories_["linear"] = &STPolLinear::myFactory;
81    Scantable::factories_["circular"] = &STPolCircular::myFactory;
82    Scantable::factories_["stokes"] = &STPolStokes::myFactory;
83  }
84}
85
86Scantable::Scantable(Table::TableType ttype) :
87  type_(ttype)
88{
89  initFactories();
90  setupMainTable();
91  freqTable_ = STFrequencies(*this);
92  table_.rwKeywordSet().defineTable("FREQUENCIES", freqTable_.table());
93  weatherTable_ = STWeather(*this);
94  table_.rwKeywordSet().defineTable("WEATHER", weatherTable_.table());
95  focusTable_ = STFocus(*this);
96  table_.rwKeywordSet().defineTable("FOCUS", focusTable_.table());
97  tcalTable_ = STTcal(*this);
98  table_.rwKeywordSet().defineTable("TCAL", tcalTable_.table());
99  moleculeTable_ = STMolecules(*this);
100  table_.rwKeywordSet().defineTable("MOLECULES", moleculeTable_.table());
101  historyTable_ = STHistory(*this);
102  table_.rwKeywordSet().defineTable("HISTORY", historyTable_.table());
103  fitTable_ = STFit(*this);
104  table_.rwKeywordSet().defineTable("FIT", fitTable_.table());
105  table_.tableInfo().setType( "Scantable" ) ;
106  originalTable_ = table_;
107  attach();
108}
109
110Scantable::Scantable(const std::string& name, Table::TableType ttype) :
111  type_(ttype)
112{
113  initFactories();
114
115  Table tab(name, Table::Update);
116  uInt version = tab.keywordSet().asuInt("VERSION");
117  if (version != version_) {
118    if ( version == 2 && version_ == 3 ) {
119      // run asap2to3 command
120      LogIO os( LogOrigin( "Scantable" ) ) ;
121      string command="asap2to3" ;
122      string exec=command+" in="+name ;
123      string outname=name ;
124      if ( name.at(name.length()-1) == '/' )
125        outname = outname.substr( 0, name.length()-1 ) ;
126      outname += ".asap3" ;
127      os << LogIO::WARN
128         << name << " is incompatible data format (Scantable v2)." << endl
129         << "Running " << command << " to create " << outname << ", " << endl 
130         << "which is identical to " << name << " but compatible " << endl
131         << "data format with current software version (Scantable v3)."
132         << LogIO::POST ; 
133      int ret = system( string("which "+command+" > /dev/null 2>&1").c_str() ) ;
134      if ( ret != 0 )
135        throw(AipsError(command+" is not installed")) ;
136      os << LogIO::WARN
137         << "Data will be loaded from " << outname << " instead of "
138         << name << LogIO::POST ;
139      int tmp = system( exec.c_str() ) ;
140      (void) tmp;
141      tab = Table(outname, Table::Update ) ;
142      //os << "tab.tableName()=" << tab.tableName() << LogIO::POST ;
143    }
144    else {
145      throw(AipsError("Unsupported version of ASAP file."));
146    }
147  }
148  if ( type_ == Table::Memory ) {
149    table_ = tab.copyToMemoryTable(generateName());
150  } else {
151    table_ = tab;
152  }
153  table_.tableInfo().setType( "Scantable" ) ;
154
155  attachSubtables();
156  originalTable_ = table_;
157  attach();
158}
159/*
160Scantable::Scantable(const std::string& name, Table::TableType ttype) :
161  type_(ttype)
162{
163  initFactories();
164  Table tab(name, Table::Update);
165  uInt version = tab.keywordSet().asuInt("VERSION");
166  if (version != version_) {
167    throw(AipsError("Unsupported version of ASAP file."));
168  }
169  if ( type_ == Table::Memory ) {
170    table_ = tab.copyToMemoryTable(generateName());
171  } else {
172    table_ = tab;
173  }
174
175  attachSubtables();
176  originalTable_ = table_;
177  attach();
178}
179*/
180
181Scantable::Scantable( const Scantable& other, bool clear ):
182  Logger()
183{
184  // with or without data
185  String newname = String(generateName());
186  type_ = other.table_.tableType();
187  if ( other.table_.tableType() == Table::Memory ) {
188      if ( clear ) {
189        table_ = TableCopy::makeEmptyMemoryTable(newname,
190                                                 other.table_, True);
191      } else
192        table_ = other.table_.copyToMemoryTable(newname);
193  } else {
194      other.table_.deepCopy(newname, Table::New, False,
195                            other.table_.endianFormat(),
196                            Bool(clear));
197      table_ = Table(newname, Table::Update);
198      table_.markForDelete();
199  }
200  table_.tableInfo().setType( "Scantable" ) ;
201  /// @todo reindex SCANNO, recompute nbeam, nif, npol
202  if ( clear ) copySubtables(other);
203  attachSubtables();
204  originalTable_ = table_;
205  attach();
206}
207
208void Scantable::copySubtables(const Scantable& other) {
209  Table t = table_.rwKeywordSet().asTable("FREQUENCIES");
210  TableCopy::copyRows(t, other.freqTable_.table());
211  t = table_.rwKeywordSet().asTable("FOCUS");
212  TableCopy::copyRows(t, other.focusTable_.table());
213  t = table_.rwKeywordSet().asTable("WEATHER");
214  TableCopy::copyRows(t, other.weatherTable_.table());
215  t = table_.rwKeywordSet().asTable("TCAL");
216  TableCopy::copyRows(t, other.tcalTable_.table());
217  t = table_.rwKeywordSet().asTable("MOLECULES");
218  TableCopy::copyRows(t, other.moleculeTable_.table());
219  t = table_.rwKeywordSet().asTable("HISTORY");
220  TableCopy::copyRows(t, other.historyTable_.table());
221  t = table_.rwKeywordSet().asTable("FIT");
222  TableCopy::copyRows(t, other.fitTable_.table());
223}
224
225void Scantable::attachSubtables()
226{
227  freqTable_ = STFrequencies(table_);
228  focusTable_ = STFocus(table_);
229  weatherTable_ = STWeather(table_);
230  tcalTable_ = STTcal(table_);
231  moleculeTable_ = STMolecules(table_);
232  historyTable_ = STHistory(table_);
233  fitTable_ = STFit(table_);
234}
235
236Scantable::~Scantable()
237{
238  //cout << "~Scantable() " << this << endl;
239}
240
241void Scantable::setupMainTable()
242{
243  TableDesc td("", "1", TableDesc::Scratch);
244  td.comment() = "An ASAP Scantable";
245  td.rwKeywordSet().define("VERSION", uInt(version_));
246
247  // n Cycles
248  td.addColumn(ScalarColumnDesc<uInt>("SCANNO"));
249  // new index every nBeam x nIF x nPol
250  td.addColumn(ScalarColumnDesc<uInt>("CYCLENO"));
251
252  td.addColumn(ScalarColumnDesc<uInt>("BEAMNO"));
253  td.addColumn(ScalarColumnDesc<uInt>("IFNO"));
254  // linear, circular, stokes
255  td.rwKeywordSet().define("POLTYPE", String("linear"));
256  td.addColumn(ScalarColumnDesc<uInt>("POLNO"));
257
258  td.addColumn(ScalarColumnDesc<uInt>("FREQ_ID"));
259  td.addColumn(ScalarColumnDesc<uInt>("MOLECULE_ID"));
260
261  ScalarColumnDesc<Int> refbeamnoColumn("REFBEAMNO");
262  refbeamnoColumn.setDefault(Int(-1));
263  td.addColumn(refbeamnoColumn);
264
265  ScalarColumnDesc<uInt> flagrowColumn("FLAGROW");
266  flagrowColumn.setDefault(uInt(0));
267  td.addColumn(flagrowColumn);
268
269  td.addColumn(ScalarColumnDesc<Double>("TIME"));
270  TableMeasRefDesc measRef(MEpoch::UTC); // UTC as default
271  TableMeasValueDesc measVal(td, "TIME");
272  TableMeasDesc<MEpoch> mepochCol(measVal, measRef);
273  mepochCol.write(td);
274
275  td.addColumn(ScalarColumnDesc<Double>("INTERVAL"));
276
277  td.addColumn(ScalarColumnDesc<String>("SRCNAME"));
278  // Type of source (on=0, off=1, other=-1)
279  ScalarColumnDesc<Int> stypeColumn("SRCTYPE");
280  stypeColumn.setDefault(Int(-1));
281  td.addColumn(stypeColumn);
282  td.addColumn(ScalarColumnDesc<String>("FIELDNAME"));
283
284  //The actual Data Vectors
285  td.addColumn(ArrayColumnDesc<Float>("SPECTRA"));
286  td.addColumn(ArrayColumnDesc<uChar>("FLAGTRA"));
287  td.addColumn(ArrayColumnDesc<Float>("TSYS"));
288
289  td.addColumn(ArrayColumnDesc<Double>("DIRECTION",
290                                       IPosition(1,2),
291                                       ColumnDesc::Direct));
292  TableMeasRefDesc mdirRef(MDirection::J2000); // default
293  TableMeasValueDesc tmvdMDir(td, "DIRECTION");
294  // the TableMeasDesc gives the column a type
295  TableMeasDesc<MDirection> mdirCol(tmvdMDir, mdirRef);
296  // a uder set table type e.g. GALCTIC, B1950 ...
297  td.rwKeywordSet().define("DIRECTIONREF", String("J2000"));
298  // writing create the measure column
299  mdirCol.write(td);
300  td.addColumn(ScalarColumnDesc<Float>("AZIMUTH"));
301  td.addColumn(ScalarColumnDesc<Float>("ELEVATION"));
302  td.addColumn(ScalarColumnDesc<Float>("OPACITY"));
303
304  td.addColumn(ScalarColumnDesc<uInt>("TCAL_ID"));
305  ScalarColumnDesc<Int> fitColumn("FIT_ID");
306  fitColumn.setDefault(Int(-1));
307  td.addColumn(fitColumn);
308
309  td.addColumn(ScalarColumnDesc<uInt>("FOCUS_ID"));
310  td.addColumn(ScalarColumnDesc<uInt>("WEATHER_ID"));
311
312  // columns which just get dragged along, as they aren't used in asap
313  td.addColumn(ScalarColumnDesc<Double>("SRCVELOCITY"));
314  td.addColumn(ArrayColumnDesc<Double>("SRCPROPERMOTION"));
315  td.addColumn(ArrayColumnDesc<Double>("SRCDIRECTION"));
316  td.addColumn(ArrayColumnDesc<Double>("SCANRATE"));
317
318  td.rwKeywordSet().define("OBSMODE", String(""));
319
320  // Now create Table SetUp from the description.
321  SetupNewTable aNewTab(generateName(), td, Table::Scratch);
322  table_ = Table(aNewTab, type_, 0);
323  originalTable_ = table_;
324}
325
326void Scantable::attach()
327{
328  timeCol_.attach(table_, "TIME");
329  srcnCol_.attach(table_, "SRCNAME");
330  srctCol_.attach(table_, "SRCTYPE");
331  specCol_.attach(table_, "SPECTRA");
332  flagsCol_.attach(table_, "FLAGTRA");
333  tsysCol_.attach(table_, "TSYS");
334  cycleCol_.attach(table_,"CYCLENO");
335  scanCol_.attach(table_, "SCANNO");
336  beamCol_.attach(table_, "BEAMNO");
337  ifCol_.attach(table_, "IFNO");
338  polCol_.attach(table_, "POLNO");
339  integrCol_.attach(table_, "INTERVAL");
340  azCol_.attach(table_, "AZIMUTH");
341  elCol_.attach(table_, "ELEVATION");
342  dirCol_.attach(table_, "DIRECTION");
343  fldnCol_.attach(table_, "FIELDNAME");
344  rbeamCol_.attach(table_, "REFBEAMNO");
345
346  mweatheridCol_.attach(table_,"WEATHER_ID");
347  mfitidCol_.attach(table_,"FIT_ID");
348  mfreqidCol_.attach(table_, "FREQ_ID");
349  mtcalidCol_.attach(table_, "TCAL_ID");
350  mfocusidCol_.attach(table_, "FOCUS_ID");
351  mmolidCol_.attach(table_, "MOLECULE_ID");
352
353  //Add auxiliary column for row-based flagging (CAS-1433 Wataru Kawasaki)
354  attachAuxColumnDef(flagrowCol_, "FLAGROW", 0);
355
356}
357
358template<class T, class T2>
359void Scantable::attachAuxColumnDef(ScalarColumn<T>& col,
360                                   const String& colName,
361                                   const T2& defValue)
362{
363  try {
364    col.attach(table_, colName);
365  } catch (TableError& err) {
366    String errMesg = err.getMesg();
367    if (errMesg == "Table column " + colName + " is unknown") {
368      table_.addColumn(ScalarColumnDesc<T>(colName));
369      col.attach(table_, colName);
370      col.fillColumn(static_cast<T>(defValue));
371    } else {
372      throw;
373    }
374  } catch (...) {
375    throw;
376  }
377}
378
379template<class T, class T2>
380void Scantable::attachAuxColumnDef(ArrayColumn<T>& col,
381                                   const String& colName,
382                                   const Array<T2>& defValue)
383{
384  try {
385    col.attach(table_, colName);
386  } catch (TableError& err) {
387    String errMesg = err.getMesg();
388    if (errMesg == "Table column " + colName + " is unknown") {
389      table_.addColumn(ArrayColumnDesc<T>(colName));
390      col.attach(table_, colName);
391
392      int size = 0;
393      ArrayIterator<T2>& it = defValue.begin();
394      while (it != defValue.end()) {
395        ++size;
396        ++it;
397      }
398      IPosition ip(1, size);
399      Array<T>& arr(ip);
400      for (int i = 0; i < size; ++i)
401        arr[i] = static_cast<T>(defValue[i]);
402
403      col.fillColumn(arr);
404    } else {
405      throw;
406    }
407  } catch (...) {
408    throw;
409  }
410}
411
412void Scantable::setHeader(const STHeader& sdh)
413{
414  table_.rwKeywordSet().define("nIF", sdh.nif);
415  table_.rwKeywordSet().define("nBeam", sdh.nbeam);
416  table_.rwKeywordSet().define("nPol", sdh.npol);
417  table_.rwKeywordSet().define("nChan", sdh.nchan);
418  table_.rwKeywordSet().define("Observer", sdh.observer);
419  table_.rwKeywordSet().define("Project", sdh.project);
420  table_.rwKeywordSet().define("Obstype", sdh.obstype);
421  table_.rwKeywordSet().define("AntennaName", sdh.antennaname);
422  table_.rwKeywordSet().define("AntennaPosition", sdh.antennaposition);
423  table_.rwKeywordSet().define("Equinox", sdh.equinox);
424  table_.rwKeywordSet().define("FreqRefFrame", sdh.freqref);
425  table_.rwKeywordSet().define("FreqRefVal", sdh.reffreq);
426  table_.rwKeywordSet().define("Bandwidth", sdh.bandwidth);
427  table_.rwKeywordSet().define("UTC", sdh.utc);
428  table_.rwKeywordSet().define("FluxUnit", sdh.fluxunit);
429  table_.rwKeywordSet().define("Epoch", sdh.epoch);
430  table_.rwKeywordSet().define("POLTYPE", sdh.poltype);
431}
432
433STHeader Scantable::getHeader() const
434{
435  STHeader sdh;
436  table_.keywordSet().get("nBeam",sdh.nbeam);
437  table_.keywordSet().get("nIF",sdh.nif);
438  table_.keywordSet().get("nPol",sdh.npol);
439  table_.keywordSet().get("nChan",sdh.nchan);
440  table_.keywordSet().get("Observer", sdh.observer);
441  table_.keywordSet().get("Project", sdh.project);
442  table_.keywordSet().get("Obstype", sdh.obstype);
443  table_.keywordSet().get("AntennaName", sdh.antennaname);
444  table_.keywordSet().get("AntennaPosition", sdh.antennaposition);
445  table_.keywordSet().get("Equinox", sdh.equinox);
446  table_.keywordSet().get("FreqRefFrame", sdh.freqref);
447  table_.keywordSet().get("FreqRefVal", sdh.reffreq);
448  table_.keywordSet().get("Bandwidth", sdh.bandwidth);
449  table_.keywordSet().get("UTC", sdh.utc);
450  table_.keywordSet().get("FluxUnit", sdh.fluxunit);
451  table_.keywordSet().get("Epoch", sdh.epoch);
452  table_.keywordSet().get("POLTYPE", sdh.poltype);
453  return sdh;
454}
455
456void Scantable::setSourceType( int stype )
457{
458  if ( stype < 0 || stype > 1 )
459    throw(AipsError("Illegal sourcetype."));
460  TableVector<Int> tabvec(table_, "SRCTYPE");
461  tabvec = Int(stype);
462}
463
464bool Scantable::conformant( const Scantable& other )
465{
466  return this->getHeader().conformant(other.getHeader());
467}
468
469
470
471std::string Scantable::formatSec(Double x) const
472{
473  Double xcop = x;
474  MVTime mvt(xcop/24./3600.);  // make days
475
476  if (x < 59.95)
477    return  String("      ") + mvt.string(MVTime::TIME_CLEAN_NO_HM, 7)+"s";
478  else if (x < 3599.95)
479    return String("   ") + mvt.string(MVTime::TIME_CLEAN_NO_H,7)+" ";
480  else {
481    ostringstream oss;
482    oss << setw(2) << std::right << setprecision(1) << mvt.hour();
483    oss << ":" << mvt.string(MVTime::TIME_CLEAN_NO_H,7) << " ";
484    return String(oss);
485  }
486};
487
488std::string Scantable::formatDirection(const MDirection& md) const
489{
490  Vector<Double> t = md.getAngle(Unit(String("rad"))).getValue();
491  Int prec = 7;
492
493  MVAngle mvLon(t[0]);
494  String sLon = mvLon.string(MVAngle::TIME,prec);
495  uInt tp = md.getRef().getType();
496  if (tp == MDirection::GALACTIC ||
497      tp == MDirection::SUPERGAL ) {
498    sLon = mvLon(0.0).string(MVAngle::ANGLE_CLEAN,prec);
499  }
500  MVAngle mvLat(t[1]);
501  String sLat = mvLat.string(MVAngle::ANGLE+MVAngle::DIG2,prec);
502  return sLon + String(" ") + sLat;
503}
504
505
506std::string Scantable::getFluxUnit() const
507{
508  return table_.keywordSet().asString("FluxUnit");
509}
510
511void Scantable::setFluxUnit(const std::string& unit)
512{
513  String tmp(unit);
514  Unit tU(tmp);
515  if (tU==Unit("K") || tU==Unit("Jy")) {
516     table_.rwKeywordSet().define(String("FluxUnit"), tmp);
517  } else {
518     throw AipsError("Illegal unit - must be compatible with Jy or K");
519  }
520}
521
522void Scantable::setInstrument(const std::string& name)
523{
524  bool throwIt = true;
525  // create an Instrument to see if this is valid
526  STAttr::convertInstrument(name, throwIt);
527  String nameU(name);
528  nameU.upcase();
529  table_.rwKeywordSet().define(String("AntennaName"), nameU);
530}
531
532void Scantable::setFeedType(const std::string& feedtype)
533{
534  if ( Scantable::factories_.find(feedtype) ==  Scantable::factories_.end() ) {
535    std::string msg = "Illegal feed type "+ feedtype;
536    throw(casa::AipsError(msg));
537  }
538  table_.rwKeywordSet().define(String("POLTYPE"), feedtype);
539}
540
541MPosition Scantable::getAntennaPosition() const
542{
543  Vector<Double> antpos;
544  table_.keywordSet().get("AntennaPosition", antpos);
545  MVPosition mvpos(antpos(0),antpos(1),antpos(2));
546  return MPosition(mvpos);
547}
548
549void Scantable::makePersistent(const std::string& filename)
550{
551  String inname(filename);
552  Path path(inname);
553  /// @todo reindex SCANNO, recompute nbeam, nif, npol
554  inname = path.expandedName();
555  // 2011/03/04 TN
556  // We can comment out this workaround since the essential bug is
557  // fixed in casacore (r20889 in google code).
558  table_.deepCopy(inname, Table::New);
559//   // WORKAROUND !!! for Table bug
560//   // Remove when fixed in casacore
561//   if ( table_.tableType() == Table::Memory  && !selector_.empty() ) {
562//     Table tab = table_.copyToMemoryTable(generateName());
563//     tab.deepCopy(inname, Table::New);
564//     tab.markForDelete();
565//
566//   } else {
567//     table_.deepCopy(inname, Table::New);
568//   }
569}
570
571int Scantable::nbeam( int scanno ) const
572{
573  if ( scanno < 0 ) {
574    Int n;
575    table_.keywordSet().get("nBeam",n);
576    return int(n);
577  } else {
578    // take the first POLNO,IFNO,CYCLENO as nbeam shouldn't vary with these
579    Table t = table_(table_.col("SCANNO") == scanno);
580    ROTableRow row(t);
581    const TableRecord& rec = row.get(0);
582    Table subt = t( t.col("IFNO") == Int(rec.asuInt("IFNO"))
583                    && t.col("POLNO") == Int(rec.asuInt("POLNO"))
584                    && t.col("CYCLENO") == Int(rec.asuInt("CYCLENO")) );
585    ROTableVector<uInt> v(subt, "BEAMNO");
586    return int(v.nelements());
587  }
588  return 0;
589}
590
591int Scantable::nif( int scanno ) const
592{
593  if ( scanno < 0 ) {
594    Int n;
595    table_.keywordSet().get("nIF",n);
596    return int(n);
597  } else {
598    // take the first POLNO,BEAMNO,CYCLENO as nbeam shouldn't vary with these
599    Table t = table_(table_.col("SCANNO") == scanno);
600    ROTableRow row(t);
601    const TableRecord& rec = row.get(0);
602    Table subt = t( t.col("BEAMNO") == Int(rec.asuInt("BEAMNO"))
603                    && t.col("POLNO") == Int(rec.asuInt("POLNO"))
604                    && t.col("CYCLENO") == Int(rec.asuInt("CYCLENO")) );
605    if ( subt.nrow() == 0 ) return 0;
606    ROTableVector<uInt> v(subt, "IFNO");
607    return int(v.nelements());
608  }
609  return 0;
610}
611
612int Scantable::npol( int scanno ) const
613{
614  if ( scanno < 0 ) {
615    Int n;
616    table_.keywordSet().get("nPol",n);
617    return n;
618  } else {
619    // take the first POLNO,IFNO,CYCLENO as nbeam shouldn't vary with these
620    Table t = table_(table_.col("SCANNO") == scanno);
621    ROTableRow row(t);
622    const TableRecord& rec = row.get(0);
623    Table subt = t( t.col("BEAMNO") == Int(rec.asuInt("BEAMNO"))
624                    && t.col("IFNO") == Int(rec.asuInt("IFNO"))
625                    && t.col("CYCLENO") == Int(rec.asuInt("CYCLENO")) );
626    if ( subt.nrow() == 0 ) return 0;
627    ROTableVector<uInt> v(subt, "POLNO");
628    return int(v.nelements());
629  }
630  return 0;
631}
632
633int Scantable::ncycle( int scanno ) const
634{
635  if ( scanno < 0 ) {
636    Block<String> cols(2);
637    cols[0] = "SCANNO";
638    cols[1] = "CYCLENO";
639    TableIterator it(table_, cols);
640    int n = 0;
641    while ( !it.pastEnd() ) {
642      ++n;
643      ++it;
644    }
645    return n;
646  } else {
647    Table t = table_(table_.col("SCANNO") == scanno);
648    ROTableRow row(t);
649    const TableRecord& rec = row.get(0);
650    Table subt = t( t.col("BEAMNO") == Int(rec.asuInt("BEAMNO"))
651                    && t.col("POLNO") == Int(rec.asuInt("POLNO"))
652                    && t.col("IFNO") == Int(rec.asuInt("IFNO")) );
653    if ( subt.nrow() == 0 ) return 0;
654    return int(subt.nrow());
655  }
656  return 0;
657}
658
659
660int Scantable::nrow( int scanno ) const
661{
662  return int(table_.nrow());
663}
664
665int Scantable::nchan( int ifno ) const
666{
667  if ( ifno < 0 ) {
668    Int n;
669    table_.keywordSet().get("nChan",n);
670    return int(n);
671  } else {
672    // take the first SCANNO,POLNO,BEAMNO,CYCLENO as nbeam shouldn't
673    // vary with these
674    Table t = table_(table_.col("IFNO") == ifno, 1);
675    if ( t.nrow() == 0 ) return 0;
676    ROArrayColumn<Float> v(t, "SPECTRA");
677    return v.shape(0)(0);
678  }
679  return 0;
680}
681
682int Scantable::nscan() const {
683  Vector<uInt> scannos(scanCol_.getColumn());
684  uInt nout = genSort( scannos, Sort::Ascending,
685                       Sort::QuickSort|Sort::NoDuplicates );
686  return int(nout);
687}
688
689int Scantable::getChannels(int whichrow) const
690{
691  return specCol_.shape(whichrow)(0);
692}
693
694int Scantable::getBeam(int whichrow) const
695{
696  return beamCol_(whichrow);
697}
698
699std::vector<uint> Scantable::getNumbers(const ScalarColumn<uInt>& col) const
700{
701  Vector<uInt> nos(col.getColumn());
702  uInt n = genSort( nos, Sort::Ascending, Sort::QuickSort|Sort::NoDuplicates );
703  nos.resize(n, True);
704  std::vector<uint> stlout;
705  nos.tovector(stlout);
706  return stlout;
707}
708
709int Scantable::getIF(int whichrow) const
710{
711  return ifCol_(whichrow);
712}
713
714int Scantable::getPol(int whichrow) const
715{
716  return polCol_(whichrow);
717}
718
719std::string Scantable::formatTime(const MEpoch& me, bool showdate) const
720{
721  return formatTime(me, showdate, 0);
722}
723
724std::string Scantable::formatTime(const MEpoch& me, bool showdate, uInt prec) const
725{
726  MVTime mvt(me.getValue());
727  if (showdate)
728    //mvt.setFormat(MVTime::YMD);
729    mvt.setFormat(MVTime::YMD, prec);
730  else
731    //mvt.setFormat(MVTime::TIME);
732    mvt.setFormat(MVTime::TIME, prec);
733  ostringstream oss;
734  oss << mvt;
735  return String(oss);
736}
737
738void Scantable::calculateAZEL()
739{
740  MPosition mp = getAntennaPosition();
741  MEpoch::ROScalarColumn timeCol(table_, "TIME");
742  ostringstream oss;
743  oss << "Computed azimuth/elevation using " << endl
744      << mp << endl;
745  for (Int i=0; i<nrow(); ++i) {
746    MEpoch me = timeCol(i);
747    MDirection md = getDirection(i);
748    oss  << " Time: " << formatTime(me,False) << " Direction: " << formatDirection(md)
749         << endl << "     => ";
750    MeasFrame frame(mp, me);
751    Vector<Double> azel =
752        MDirection::Convert(md, MDirection::Ref(MDirection::AZEL,
753                                                frame)
754                            )().getAngle("rad").getValue();
755    azCol_.put(i,Float(azel[0]));
756    elCol_.put(i,Float(azel[1]));
757    oss << "azel: " << azel[0]/C::pi*180.0 << " "
758        << azel[1]/C::pi*180.0 << " (deg)" << endl;
759  }
760  pushLog(String(oss));
761}
762
763void Scantable::clip(const Float uthres, const Float dthres, bool clipoutside, bool unflag)
764{
765  for (uInt i=0; i<table_.nrow(); ++i) {
766    Vector<uChar> flgs = flagsCol_(i);
767    srchChannelsToClip(i, uthres, dthres, clipoutside, unflag, flgs);
768    flagsCol_.put(i, flgs);
769  }
770}
771
772std::vector<bool> Scantable::getClipMask(int whichrow, const Float uthres, const Float dthres, bool clipoutside, bool unflag)
773{
774  Vector<uChar> flags;
775  flagsCol_.get(uInt(whichrow), flags);
776  srchChannelsToClip(uInt(whichrow), uthres, dthres, clipoutside, unflag, flags);
777  Vector<Bool> bflag(flags.shape());
778  convertArray(bflag, flags);
779  //bflag = !bflag;
780
781  std::vector<bool> mask;
782  bflag.tovector(mask);
783  return mask;
784}
785
786void Scantable::srchChannelsToClip(uInt whichrow, const Float uthres, const Float dthres, bool clipoutside, bool unflag,
787                                   Vector<uChar> flgs)
788{
789    Vector<Float> spcs = specCol_(whichrow);
790    uInt nchannel = nchan();
791    if (spcs.nelements() != nchannel) {
792      throw(AipsError("Data has incorrect number of channels"));
793    }
794    uChar userflag = 1 << 7;
795    if (unflag) {
796      userflag = 0 << 7;
797    }
798    if (clipoutside) {
799      for (uInt j = 0; j < nchannel; ++j) {
800        Float spc = spcs(j);
801        if ((spc >= uthres) || (spc <= dthres)) {
802          flgs(j) = userflag;
803        }
804      }
805    } else {
806      for (uInt j = 0; j < nchannel; ++j) {
807        Float spc = spcs(j);
808        if ((spc < uthres) && (spc > dthres)) {
809          flgs(j) = userflag;
810        }
811      }
812    }
813}
814
815
816void Scantable::flag( int whichrow, const std::vector<bool>& msk, bool unflag ) {
817  std::vector<bool>::const_iterator it;
818  uInt ntrue = 0;
819  if (whichrow >= int(table_.nrow()) ) {
820    throw(AipsError("Invalid row number"));
821  }
822  for (it = msk.begin(); it != msk.end(); ++it) {
823    if ( *it ) {
824      ntrue++;
825    }
826  }
827  //if ( selector_.empty()  && (msk.size() == 0 || msk.size() == ntrue) )
828  if ( whichrow == -1 && !unflag && selector_.empty() && (msk.size() == 0 || msk.size() == ntrue) )
829    throw(AipsError("Trying to flag whole scantable."));
830  uChar userflag = 1 << 7;
831  if ( unflag ) {
832    userflag = 0 << 7;
833  }
834  if (whichrow > -1 ) {
835    applyChanFlag(uInt(whichrow), msk, userflag);
836  } else {
837    for ( uInt i=0; i<table_.nrow(); ++i) {
838      applyChanFlag(i, msk, userflag);
839    }
840  }
841}
842
843void Scantable::applyChanFlag( uInt whichrow, const std::vector<bool>& msk, uChar flagval )
844{
845  if (whichrow >= table_.nrow() ) {
846    throw( casa::indexError<int>( whichrow, "asap::Scantable::applyChanFlag: Invalid row number" ) );
847  }
848  Vector<uChar> flgs = flagsCol_(whichrow);
849  if ( msk.size() == 0 ) {
850    flgs = flagval;
851    flagsCol_.put(whichrow, flgs);
852    return;
853  }
854  if ( int(msk.size()) != nchan() ) {
855    throw(AipsError("Mask has incorrect number of channels."));
856  }
857  if ( flgs.nelements() != msk.size() ) {
858    throw(AipsError("Mask has incorrect number of channels."
859                    " Probably varying with IF. Please flag per IF"));
860  }
861  std::vector<bool>::const_iterator it;
862  uInt j = 0;
863  for (it = msk.begin(); it != msk.end(); ++it) {
864    if ( *it ) {
865      flgs(j) = flagval;
866    }
867    ++j;
868  }
869  flagsCol_.put(whichrow, flgs);
870}
871
872void Scantable::flagRow(const std::vector<uInt>& rows, bool unflag)
873{
874  if ( selector_.empty() && (rows.size() == table_.nrow()) )
875    throw(AipsError("Trying to flag whole scantable."));
876
877  uInt rowflag = (unflag ? 0 : 1);
878  std::vector<uInt>::const_iterator it;
879  for (it = rows.begin(); it != rows.end(); ++it)
880    flagrowCol_.put(*it, rowflag);
881}
882
883std::vector<bool> Scantable::getMask(int whichrow) const
884{
885  Vector<uChar> flags;
886  flagsCol_.get(uInt(whichrow), flags);
887  Vector<Bool> bflag(flags.shape());
888  convertArray(bflag, flags);
889  bflag = !bflag;
890  std::vector<bool> mask;
891  bflag.tovector(mask);
892  return mask;
893}
894
895std::vector<float> Scantable::getSpectrum( int whichrow,
896                                           const std::string& poltype ) const
897{
898  String ptype = poltype;
899  if (poltype == "" ) ptype = getPolType();
900  if ( whichrow  < 0 || whichrow >= nrow() )
901    throw(AipsError("Illegal row number."));
902  std::vector<float> out;
903  Vector<Float> arr;
904  uInt requestedpol = polCol_(whichrow);
905  String basetype = getPolType();
906  if ( ptype == basetype ) {
907    specCol_.get(whichrow, arr);
908  } else {
909    CountedPtr<STPol> stpol(STPol::getPolClass(Scantable::factories_,
910                                               basetype));
911    uInt row = uInt(whichrow);
912    stpol->setSpectra(getPolMatrix(row));
913    Float fang,fhand;
914    fang = focusTable_.getTotalAngle(mfocusidCol_(row));
915    fhand = focusTable_.getFeedHand(mfocusidCol_(row));
916    stpol->setPhaseCorrections(fang, fhand);
917    arr = stpol->getSpectrum(requestedpol, ptype);
918  }
919  if ( arr.nelements() == 0 )
920    pushLog("Not enough polarisations present to do the conversion.");
921  arr.tovector(out);
922  return out;
923}
924
925void Scantable::setSpectrum( const std::vector<float>& spec,
926                                   int whichrow )
927{
928  Vector<Float> spectrum(spec);
929  Vector<Float> arr;
930  specCol_.get(whichrow, arr);
931  if ( spectrum.nelements() != arr.nelements() )
932    throw AipsError("The spectrum has incorrect number of channels.");
933  specCol_.put(whichrow, spectrum);
934}
935
936
937String Scantable::generateName()
938{
939  return (File::newUniqueName("./","temp")).baseName();
940}
941
942const casa::Table& Scantable::table( ) const
943{
944  return table_;
945}
946
947casa::Table& Scantable::table( )
948{
949  return table_;
950}
951
952std::string Scantable::getPolType() const
953{
954  return table_.keywordSet().asString("POLTYPE");
955}
956
957void Scantable::unsetSelection()
958{
959  table_ = originalTable_;
960  attach();
961  selector_.reset();
962}
963
964void Scantable::setSelection( const STSelector& selection )
965{
966  Table tab = const_cast<STSelector&>(selection).apply(originalTable_);
967  if ( tab.nrow() == 0 ) {
968    throw(AipsError("Selection contains no data. Not applying it."));
969  }
970  table_ = tab;
971  attach();
972//   tab.rwKeywordSet().define("nBeam",(Int)(getBeamNos().size())) ;
973//   vector<uint> selectedIFs = getIFNos() ;
974//   Int newnIF = selectedIFs.size() ;
975//   tab.rwKeywordSet().define("nIF",newnIF) ;
976//   if ( newnIF != 0 ) {
977//     Int newnChan = 0 ;
978//     for ( Int i = 0 ; i < newnIF ; i++ ) {
979//       Int nChan = nchan( selectedIFs[i] ) ;
980//       if ( newnChan > nChan )
981//         newnChan = nChan ;
982//     }
983//     tab.rwKeywordSet().define("nChan",newnChan) ;
984//   }
985//   tab.rwKeywordSet().define("nPol",(Int)(getPolNos().size())) ;
986  selector_ = selection;
987}
988
989
990std::string Scantable::headerSummary()
991{
992  // Format header info
993//   STHeader sdh;
994//   sdh = getHeader();
995//   sdh.print();
996  ostringstream oss;
997  oss.flags(std::ios_base::left);
998  oss << setw(15) << "Beams:" << setw(4) << nbeam() << endl
999      << setw(15) << "IFs:" << setw(4) << nif() << endl
1000      << setw(15) << "Polarisations:" << setw(4) << npol()
1001      << "(" << getPolType() << ")" << endl
1002      << setw(15) << "Channels:" << nchan() << endl;
1003  String tmp;
1004  oss << setw(15) << "Observer:"
1005      << table_.keywordSet().asString("Observer") << endl;
1006  oss << setw(15) << "Obs Date:" << getTime(-1,true) << endl;
1007  table_.keywordSet().get("Project", tmp);
1008  oss << setw(15) << "Project:" << tmp << endl;
1009  table_.keywordSet().get("Obstype", tmp);
1010  oss << setw(15) << "Obs. Type:" << tmp << endl;
1011  table_.keywordSet().get("AntennaName", tmp);
1012  oss << setw(15) << "Antenna Name:" << tmp << endl;
1013  table_.keywordSet().get("FluxUnit", tmp);
1014  oss << setw(15) << "Flux Unit:" << tmp << endl;
1015  //Vector<Double> vec(moleculeTable_.getRestFrequencies());
1016  int nid = moleculeTable_.nrow();
1017  Bool firstline = True;
1018  oss << setw(15) << "Rest Freqs:";
1019  for (int i=0; i<nid; i++) {
1020    Table t = table_(table_.col("MOLECULE_ID") == i, 1);
1021      if (t.nrow() >  0) {
1022          Vector<Double> vec(moleculeTable_.getRestFrequency(i));
1023          if (vec.nelements() > 0) {
1024               if (firstline) {
1025                   oss << setprecision(10) << vec << " [Hz]" << endl;
1026                   firstline=False;
1027               }
1028               else{
1029                   oss << setw(15)<<" " << setprecision(10) << vec << " [Hz]" << endl;
1030               }
1031          } else {
1032              oss << "none" << endl;
1033          }
1034      }
1035  }
1036
1037  oss << setw(15) << "Abcissa:" << getAbcissaLabel(0) << endl;
1038  oss << selector_.print() << endl;
1039  return String(oss);
1040}
1041
1042std::string Scantable::summary()
1043{
1044  ostringstream oss;
1045  oss << endl;
1046  oss << asap::SEPERATOR << endl;
1047  oss << " Scan Table Summary" << endl;
1048  oss << asap::SEPERATOR << endl;
1049
1050  // Format header info
1051  oss << headerSummary();
1052  oss << endl;
1053
1054  // main table
1055  String dirtype = "Position ("
1056                  + getDirectionRefString()
1057                  + ")";
1058  oss.flags(std::ios_base::left);
1059  oss << setw(5) << "Scan" << setw(15) << "Source"
1060      << setw(10) << "Time" << setw(18) << "Integration"
1061      << setw(15) << "Source Type" << endl;
1062  oss << setw(5) << "" << setw(5) << "Beam" << setw(3) << "" << dirtype << endl;
1063  oss << setw(10) << "" << setw(3) << "IF" << setw(3) << ""
1064      << setw(8) << "Frame" << setw(16)
1065      << "RefVal" << setw(10) << "RefPix" << setw(12) << "Increment"
1066      << setw(7) << "Channels"
1067      << endl;
1068  oss << asap::SEPERATOR << endl;
1069  TableIterator iter(table_, "SCANNO");
1070  while (!iter.pastEnd()) {
1071    Table subt = iter.table();
1072    ROTableRow row(subt);
1073    MEpoch::ROScalarColumn timeCol(subt,"TIME");
1074    const TableRecord& rec = row.get(0);
1075    oss << setw(4) << std::right << rec.asuInt("SCANNO")
1076        << std::left << setw(1) << ""
1077        << setw(15) << rec.asString("SRCNAME")
1078        << setw(10) << formatTime(timeCol(0), false);
1079    // count the cycles in the scan
1080    TableIterator cyciter(subt, "CYCLENO");
1081    int nint = 0;
1082    while (!cyciter.pastEnd()) {
1083      ++nint;
1084      ++cyciter;
1085    }
1086    oss << setw(3) << std::right << nint  << setw(3) << " x " << std::left
1087        << setw(11) <<  formatSec(rec.asFloat("INTERVAL")) << setw(1) << ""
1088        << setw(15) << SrcType::getName(rec.asInt("SRCTYPE")) << endl;
1089
1090    TableIterator biter(subt, "BEAMNO");
1091    while (!biter.pastEnd()) {
1092      Table bsubt = biter.table();
1093      ROTableRow brow(bsubt);
1094      const TableRecord& brec = brow.get(0);
1095      uInt row0 = bsubt.rowNumbers(table_)[0];
1096      oss << setw(5) << "" <<  setw(4) << std::right << brec.asuInt("BEAMNO")<< std::left;
1097      oss  << setw(4) << ""  << formatDirection(getDirection(row0)) << endl;
1098      TableIterator iiter(bsubt, "IFNO");
1099      while (!iiter.pastEnd()) {
1100        Table isubt = iiter.table();
1101        ROTableRow irow(isubt);
1102        const TableRecord& irec = irow.get(0);
1103        oss << setw(9) << "";
1104        oss << setw(3) << std::right << irec.asuInt("IFNO") << std::left
1105            << setw(1) << "" << frequencies().print(irec.asuInt("FREQ_ID"))
1106            << setw(3) << "" << nchan(irec.asuInt("IFNO"))
1107            << endl;
1108
1109        ++iiter;
1110      }
1111      ++biter;
1112    }
1113    ++iter;
1114  }
1115  return String(oss);
1116}
1117
1118// std::string Scantable::getTime(int whichrow, bool showdate) const
1119// {
1120//   MEpoch::ROScalarColumn timeCol(table_, "TIME");
1121//   MEpoch me;
1122//   if (whichrow > -1) {
1123//     me = timeCol(uInt(whichrow));
1124//   } else {
1125//     Double tm;
1126//     table_.keywordSet().get("UTC",tm);
1127//     me = MEpoch(MVEpoch(tm));
1128//   }
1129//   return formatTime(me, showdate);
1130// }
1131
1132std::string Scantable::getTime(int whichrow, bool showdate, uInt prec) const
1133{
1134  MEpoch me;
1135  me = getEpoch(whichrow);
1136  return formatTime(me, showdate, prec);
1137}
1138
1139MEpoch Scantable::getEpoch(int whichrow) const
1140{
1141  if (whichrow > -1) {
1142    return timeCol_(uInt(whichrow));
1143  } else {
1144    Double tm;
1145    table_.keywordSet().get("UTC",tm);
1146    return MEpoch(MVEpoch(tm));
1147  }
1148}
1149
1150std::string Scantable::getDirectionString(int whichrow) const
1151{
1152  return formatDirection(getDirection(uInt(whichrow)));
1153}
1154
1155
1156SpectralCoordinate Scantable::getSpectralCoordinate(int whichrow) const {
1157  const MPosition& mp = getAntennaPosition();
1158  const MDirection& md = getDirection(whichrow);
1159  const MEpoch& me = timeCol_(whichrow);
1160  //Double rf = moleculeTable_.getRestFrequency(mmolidCol_(whichrow));
1161  Vector<Double> rf = moleculeTable_.getRestFrequency(mmolidCol_(whichrow));
1162  return freqTable_.getSpectralCoordinate(md, mp, me, rf,
1163                                          mfreqidCol_(whichrow));
1164}
1165
1166std::vector< double > Scantable::getAbcissa( int whichrow ) const
1167{
1168  if ( whichrow > int(table_.nrow()) ) throw(AipsError("Illegal row number"));
1169  std::vector<double> stlout;
1170  int nchan = specCol_(whichrow).nelements();
1171  String us = freqTable_.getUnitString();
1172  if ( us == "" || us == "pixel" || us == "channel" ) {
1173    for (int i=0; i<nchan; ++i) {
1174      stlout.push_back(double(i));
1175    }
1176    return stlout;
1177  }
1178  SpectralCoordinate spc = getSpectralCoordinate(whichrow);
1179  Vector<Double> pixel(nchan);
1180  Vector<Double> world;
1181  indgen(pixel);
1182  if ( Unit(us) == Unit("Hz") ) {
1183    for ( int i=0; i < nchan; ++i) {
1184      Double world;
1185      spc.toWorld(world, pixel[i]);
1186      stlout.push_back(double(world));
1187    }
1188  } else if ( Unit(us) == Unit("km/s") ) {
1189    Vector<Double> world;
1190    spc.pixelToVelocity(world, pixel);
1191    world.tovector(stlout);
1192  }
1193  return stlout;
1194}
1195void Scantable::setDirectionRefString( const std::string & refstr )
1196{
1197  MDirection::Types mdt;
1198  if (refstr != "" && !MDirection::getType(mdt, refstr)) {
1199    throw(AipsError("Illegal Direction frame."));
1200  }
1201  if ( refstr == "" ) {
1202    String defaultstr = MDirection::showType(dirCol_.getMeasRef().getType());
1203    table_.rwKeywordSet().define("DIRECTIONREF", defaultstr);
1204  } else {
1205    table_.rwKeywordSet().define("DIRECTIONREF", String(refstr));
1206  }
1207}
1208
1209std::string Scantable::getDirectionRefString( ) const
1210{
1211  return table_.keywordSet().asString("DIRECTIONREF");
1212}
1213
1214MDirection Scantable::getDirection(int whichrow ) const
1215{
1216  String usertype = table_.keywordSet().asString("DIRECTIONREF");
1217  String type = MDirection::showType(dirCol_.getMeasRef().getType());
1218  if ( usertype != type ) {
1219    MDirection::Types mdt;
1220    if (!MDirection::getType(mdt, usertype)) {
1221      throw(AipsError("Illegal Direction frame."));
1222    }
1223    return dirCol_.convert(uInt(whichrow), mdt);
1224  } else {
1225    return dirCol_(uInt(whichrow));
1226  }
1227}
1228
1229std::string Scantable::getAbcissaLabel( int whichrow ) const
1230{
1231  if ( whichrow > int(table_.nrow()) ) throw(AipsError("Illegal ro number"));
1232  const MPosition& mp = getAntennaPosition();
1233  const MDirection& md = getDirection(whichrow);
1234  const MEpoch& me = timeCol_(whichrow);
1235  //const Double& rf = mmolidCol_(whichrow);
1236  const Vector<Double> rf = moleculeTable_.getRestFrequency(mmolidCol_(whichrow));
1237  SpectralCoordinate spc =
1238    freqTable_.getSpectralCoordinate(md, mp, me, rf, mfreqidCol_(whichrow));
1239
1240  String s = "Channel";
1241  Unit u = Unit(freqTable_.getUnitString());
1242  if (u == Unit("km/s")) {
1243    s = CoordinateUtil::axisLabel(spc, 0, True,True,  True);
1244  } else if (u == Unit("Hz")) {
1245    Vector<String> wau(1);wau = u.getName();
1246    spc.setWorldAxisUnits(wau);
1247    s = CoordinateUtil::axisLabel(spc, 0, True, True, False);
1248  }
1249  return s;
1250
1251}
1252
1253/**
1254void asap::Scantable::setRestFrequencies( double rf, const std::string& name,
1255                                          const std::string& unit )
1256**/
1257void Scantable::setRestFrequencies( vector<double> rf, const vector<std::string>& name,
1258                                          const std::string& unit )
1259
1260{
1261  ///@todo lookup in line table to fill in name and formattedname
1262  Unit u(unit);
1263  //Quantum<Double> urf(rf, u);
1264  Quantum<Vector<Double> >urf(rf, u);
1265  Vector<String> formattedname(0);
1266  //cerr<<"Scantable::setRestFrequnecies="<<urf<<endl;
1267
1268  //uInt id = moleculeTable_.addEntry(urf.getValue("Hz"), name, "");
1269  uInt id = moleculeTable_.addEntry(urf.getValue("Hz"), mathutil::toVectorString(name), formattedname);
1270  TableVector<uInt> tabvec(table_, "MOLECULE_ID");
1271  tabvec = id;
1272}
1273
1274/**
1275void asap::Scantable::setRestFrequencies( const std::string& name )
1276{
1277  throw(AipsError("setRestFrequencies( const std::string& name ) NYI"));
1278  ///@todo implement
1279}
1280**/
1281
1282void Scantable::setRestFrequencies( const vector<std::string>& name )
1283{
1284  (void) name; // suppress unused warning
1285  throw(AipsError("setRestFrequencies( const vector<std::string>& name ) NYI"));
1286  ///@todo implement
1287}
1288
1289std::vector< unsigned int > Scantable::rownumbers( ) const
1290{
1291  std::vector<unsigned int> stlout;
1292  Vector<uInt> vec = table_.rowNumbers();
1293  vec.tovector(stlout);
1294  return stlout;
1295}
1296
1297
1298Matrix<Float> Scantable::getPolMatrix( uInt whichrow ) const
1299{
1300  ROTableRow row(table_);
1301  const TableRecord& rec = row.get(whichrow);
1302  Table t =
1303    originalTable_( originalTable_.col("SCANNO") == Int(rec.asuInt("SCANNO"))
1304                    && originalTable_.col("BEAMNO") == Int(rec.asuInt("BEAMNO"))
1305                    && originalTable_.col("IFNO") == Int(rec.asuInt("IFNO"))
1306                    && originalTable_.col("CYCLENO") == Int(rec.asuInt("CYCLENO")) );
1307  ROArrayColumn<Float> speccol(t, "SPECTRA");
1308  return speccol.getColumn();
1309}
1310
1311std::vector< std::string > Scantable::columnNames( ) const
1312{
1313  Vector<String> vec = table_.tableDesc().columnNames();
1314  return mathutil::tovectorstring(vec);
1315}
1316
1317MEpoch::Types Scantable::getTimeReference( ) const
1318{
1319  return MEpoch::castType(timeCol_.getMeasRef().getType());
1320}
1321
1322void Scantable::addFit( const STFitEntry& fit, int row )
1323{
1324  //cout << mfitidCol_(uInt(row)) << endl;
1325  LogIO os( LogOrigin( "Scantable", "addFit()", WHERE ) ) ;
1326  os << mfitidCol_(uInt(row)) << LogIO::POST ;
1327  uInt id = fitTable_.addEntry(fit, mfitidCol_(uInt(row)));
1328  mfitidCol_.put(uInt(row), id);
1329}
1330
1331void Scantable::shift(int npix)
1332{
1333  Vector<uInt> fids(mfreqidCol_.getColumn());
1334  genSort( fids, Sort::Ascending,
1335           Sort::QuickSort|Sort::NoDuplicates );
1336  for (uInt i=0; i<fids.nelements(); ++i) {
1337    frequencies().shiftRefPix(npix, fids[i]);
1338  }
1339}
1340
1341String Scantable::getAntennaName() const
1342{
1343  String out;
1344  table_.keywordSet().get("AntennaName", out);
1345  String::size_type pos1 = out.find("@") ;
1346  String::size_type pos2 = out.find("//") ;
1347  if ( pos2 != String::npos )
1348    out = out.substr(pos2+2,pos1-pos2-2) ;
1349  else if ( pos1 != String::npos )
1350    out = out.substr(0,pos1) ;
1351  return out;
1352}
1353
1354int Scantable::checkScanInfo(const std::vector<int>& scanlist) const
1355{
1356  String tbpath;
1357  int ret = 0;
1358  if ( table_.keywordSet().isDefined("GBT_GO") ) {
1359    table_.keywordSet().get("GBT_GO", tbpath);
1360    Table t(tbpath,Table::Old);
1361    // check each scan if other scan of the pair exist
1362    int nscan = scanlist.size();
1363    for (int i = 0; i < nscan; i++) {
1364      Table subt = t( t.col("SCAN") == scanlist[i]+1 );
1365      if (subt.nrow()==0) {
1366        //cerr <<"Scan "<<scanlist[i]<<" cannot be found in the scantable."<<endl;
1367        LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1368        os <<LogIO::WARN<<"Scan "<<scanlist[i]<<" cannot be found in the scantable."<<LogIO::POST;
1369        ret = 1;
1370        break;
1371      }
1372      ROTableRow row(subt);
1373      const TableRecord& rec = row.get(0);
1374      int scan1seqn = rec.asuInt("PROCSEQN");
1375      int laston1 = rec.asuInt("LASTON");
1376      if ( rec.asuInt("PROCSIZE")==2 ) {
1377        if ( i < nscan-1 ) {
1378          Table subt2 = t( t.col("SCAN") == scanlist[i+1]+1 );
1379          if ( subt2.nrow() == 0) {
1380            LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1381
1382            //cerr<<"Scan "<<scanlist[i+1]<<" cannot be found in the scantable."<<endl;
1383            os<<LogIO::WARN<<"Scan "<<scanlist[i+1]<<" cannot be found in the scantable."<<LogIO::POST;
1384            ret = 1;
1385            break;
1386          }
1387          ROTableRow row2(subt2);
1388          const TableRecord& rec2 = row2.get(0);
1389          int scan2seqn = rec2.asuInt("PROCSEQN");
1390          int laston2 = rec2.asuInt("LASTON");
1391          if (scan1seqn == 1 && scan2seqn == 2) {
1392            if (laston1 == laston2) {
1393              LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1394              //cerr<<"A valid scan pair ["<<scanlist[i]<<","<<scanlist[i+1]<<"]"<<endl;
1395              os<<"A valid scan pair ["<<scanlist[i]<<","<<scanlist[i+1]<<"]"<<LogIO::POST;
1396              i +=1;
1397            }
1398            else {
1399              LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1400              //cerr<<"Incorrect scan pair ["<<scanlist[i]<<","<<scanlist[i+1]<<"]"<<endl;
1401              os<<LogIO::WARN<<"Incorrect scan pair ["<<scanlist[i]<<","<<scanlist[i+1]<<"]"<<LogIO::POST;
1402            }
1403          }
1404          else if (scan1seqn==2 && scan2seqn == 1) {
1405            if (laston1 == laston2) {
1406              LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1407              //cerr<<"["<<scanlist[i]<<","<<scanlist[i+1]<<"] is a valid scan pair but in incorrect order."<<endl;
1408              os<<LogIO::WARN<<"["<<scanlist[i]<<","<<scanlist[i+1]<<"] is a valid scan pair but in incorrect order."<<LogIO::POST;
1409              ret = 1;
1410              break;
1411            }
1412          }
1413          else {
1414            LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1415            //cerr<<"The other scan for  "<<scanlist[i]<<" appears to be missing. Check the input scan numbers."<<endl;
1416            os<<LogIO::WARN<<"The other scan for  "<<scanlist[i]<<" appears to be missing. Check the input scan numbers."<<LogIO::POST;
1417            ret = 1;
1418            break;
1419          }
1420        }
1421      }
1422      else {
1423        LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1424        //cerr<<"The scan does not appear to be standard obsevation."<<endl;
1425        os<<LogIO::WARN<<"The scan does not appear to be standard obsevation."<<LogIO::POST;
1426      }
1427    //if ( i >= nscan ) break;
1428    }
1429  }
1430  else {
1431    LogIO os( LogOrigin( "Scantable", "checkScanInfo()", WHERE ) ) ;
1432    //cerr<<"No reference to GBT_GO table."<<endl;
1433    os<<LogIO::WARN<<"No reference to GBT_GO table."<<LogIO::POST;
1434    ret = 1;
1435  }
1436  return ret;
1437}
1438
1439std::vector<double> Scantable::getDirectionVector(int whichrow) const
1440{
1441  Vector<Double> Dir = dirCol_(whichrow).getAngle("rad").getValue();
1442  std::vector<double> dir;
1443  Dir.tovector(dir);
1444  return dir;
1445}
1446
1447void asap::Scantable::reshapeSpectrum( int nmin, int nmax )
1448  throw( casa::AipsError )
1449{
1450  // assumed that all rows have same nChan
1451  Vector<Float> arr = specCol_( 0 ) ;
1452  int nChan = arr.nelements() ;
1453
1454  // if nmin < 0 or nmax < 0, nothing to do
1455  if (  nmin < 0 ) {
1456    throw( casa::indexError<int>( nmin, "asap::Scantable::reshapeSpectrum: Invalid range. Negative index is specified." ) ) ;
1457    }
1458  if (  nmax < 0  ) {
1459    throw( casa::indexError<int>( nmax, "asap::Scantable::reshapeSpectrum: Invalid range. Negative index is specified." ) ) ;
1460  }
1461
1462  // if nmin > nmax, exchange values
1463  if ( nmin > nmax ) {
1464    int tmp = nmax ;
1465    nmax = nmin ;
1466    nmin = tmp ;
1467    LogIO os( LogOrigin( "Scantable", "reshapeSpectrum()", WHERE ) ) ;
1468    os << "Swap values. Applied range is ["
1469       << nmin << ", " << nmax << "]" << LogIO::POST ;
1470  }
1471
1472  // if nmin exceeds nChan, nothing to do
1473  if ( nmin >= nChan ) {
1474    throw( casa::indexError<int>( nmin, "asap::Scantable::reshapeSpectrum: Invalid range. Specified minimum exceeds nChan." ) ) ;
1475  }
1476
1477  // if nmax exceeds nChan, reset nmax to nChan
1478  if ( nmax >= nChan ) {
1479    if ( nmin == 0 ) {
1480      // nothing to do
1481      LogIO os( LogOrigin( "Scantable", "reshapeSpectrum()", WHERE ) ) ;
1482      os << "Whole range is selected. Nothing to do." << LogIO::POST ;
1483      return ;
1484    }
1485    else {
1486      LogIO os( LogOrigin( "Scantable", "reshapeSpectrum()", WHERE ) ) ;
1487      os << "Specified maximum exceeds nChan. Applied range is ["
1488         << nmin << ", " << nChan-1 << "]." << LogIO::POST ;
1489      nmax = nChan - 1 ;
1490    }
1491  }
1492
1493  // reshape specCol_ and flagCol_
1494  for ( int irow = 0 ; irow < nrow() ; irow++ ) {
1495    reshapeSpectrum( nmin, nmax, irow ) ;
1496  }
1497
1498  // update FREQUENCIES subtable
1499  Double refpix ;
1500  Double refval ;
1501  Double increment ;
1502  int freqnrow = freqTable_.table().nrow() ;
1503  Vector<uInt> oldId( freqnrow ) ;
1504  Vector<uInt> newId( freqnrow ) ;
1505  for ( int irow = 0 ; irow < freqnrow ; irow++ ) {
1506    freqTable_.getEntry( refpix, refval, increment, irow ) ;
1507    /***
1508     * need to shift refpix to nmin
1509     * note that channel nmin in old index will be channel 0 in new one
1510     ***/
1511    refval = refval - ( refpix - nmin ) * increment ;
1512    refpix = 0 ;
1513    freqTable_.setEntry( refpix, refval, increment, irow ) ;
1514  }
1515
1516  // update nchan
1517  int newsize = nmax - nmin + 1 ;
1518  table_.rwKeywordSet().define( "nChan", newsize ) ;
1519
1520  // update bandwidth
1521  // assumed all spectra in the scantable have same bandwidth
1522  table_.rwKeywordSet().define( "Bandwidth", increment * newsize ) ;
1523
1524  return ;
1525}
1526
1527void asap::Scantable::reshapeSpectrum( int nmin, int nmax, int irow )
1528{
1529  // reshape specCol_ and flagCol_
1530  Vector<Float> oldspec = specCol_( irow ) ;
1531  Vector<uChar> oldflag = flagsCol_( irow ) ;
1532  uInt newsize = nmax - nmin + 1 ;
1533  specCol_.put( irow, oldspec( Slice( nmin, newsize, 1 ) ) ) ;
1534  flagsCol_.put( irow, oldflag( Slice( nmin, newsize, 1 ) ) ) ;
1535
1536  return ;
1537}
1538
1539void asap::Scantable::regridChannel( int nChan, double dnu )
1540{
1541  LogIO os( LogOrigin( "Scantable", "regridChannel()", WHERE ) ) ;
1542  os << "Regrid abcissa with channel number " << nChan << " and spectral resoultion " << dnu << "Hz." << LogIO::POST ;
1543  // assumed that all rows have same nChan
1544  Vector<Float> arr = specCol_( 0 ) ;
1545  int oldsize = arr.nelements() ;
1546
1547  // if oldsize == nChan, nothing to do
1548  if ( oldsize == nChan ) {
1549    os << "Specified channel number is same as current one. Nothing to do." << LogIO::POST ;
1550    return ;
1551  }
1552
1553  // if oldChan < nChan, unphysical operation
1554  if ( oldsize < nChan ) {
1555    os << "Unphysical operation. Nothing to do." << LogIO::POST ;
1556    return ;
1557  }
1558
1559  // change channel number for specCol_ and flagCol_
1560  Vector<Float> newspec( nChan, 0 ) ;
1561  Vector<uChar> newflag( nChan, false ) ;
1562  vector<string> coordinfo = getCoordInfo() ;
1563  string oldinfo = coordinfo[0] ;
1564  coordinfo[0] = "Hz" ;
1565  setCoordInfo( coordinfo ) ;
1566  for ( int irow = 0 ; irow < nrow() ; irow++ ) {
1567    regridChannel( nChan, dnu, irow ) ;
1568  }
1569  coordinfo[0] = oldinfo ;
1570  setCoordInfo( coordinfo ) ;
1571
1572
1573  // NOTE: this method does not update metadata such as
1574  //       FREQUENCIES subtable, nChan, Bandwidth, etc.
1575
1576  return ;
1577}
1578
1579void asap::Scantable::regridChannel( int nChan, double dnu, int irow )
1580{
1581  // logging
1582  //ofstream ofs( "average.log", std::ios::out | std::ios::app ) ;
1583  //ofs << "IFNO = " << getIF( irow ) << " irow = " << irow << endl ;
1584
1585  Vector<Float> oldspec = specCol_( irow ) ;
1586  Vector<uChar> oldflag = flagsCol_( irow ) ;
1587  Vector<Float> newspec( nChan, 0 ) ;
1588  Vector<uChar> newflag( nChan, false ) ;
1589
1590  // regrid
1591  vector<double> abcissa = getAbcissa( irow ) ;
1592  int oldsize = abcissa.size() ;
1593  double olddnu = abcissa[1] - abcissa[0] ;
1594  //int refChan = 0 ;
1595  //double frac = 0.0 ;
1596  //double wedge = 0.0 ;
1597  //double pile = 0.0 ;
1598  int ichan = 0 ;
1599  double wsum = 0.0 ;
1600  Vector<Float> zi( nChan+1 ) ;
1601  Vector<Float> yi( oldsize + 1 ) ;
1602  zi[0] = abcissa[0] - 0.5 * olddnu ;
1603  zi[1] = zi[1] + dnu ;
1604  for ( int ii = 2 ; ii < nChan ; ii++ )
1605    zi[ii] = zi[0] + dnu * ii ;
1606  zi[nChan] = zi[nChan-1] + dnu ;
1607  yi[0] = abcissa[0] - 0.5 * olddnu ;
1608  yi[1] = abcissa[1] + 0.5 * olddnu ;
1609  for ( int ii = 2 ; ii < oldsize ; ii++ )
1610    yi[ii] = abcissa[ii-1] + olddnu ;
1611  yi[oldsize] = abcissa[oldsize-1] + 0.5 * olddnu ;
1612  if ( dnu > 0.0 ) {
1613    for ( int ii = 0 ; ii < nChan ; ii++ ) {
1614      double zl = zi[ii] ;
1615      double zr = zi[ii+1] ;
1616      for ( int j = ichan ; j < oldsize ; j++ ) {
1617        double yl = yi[j] ;
1618        double yr = yi[j+1] ;
1619        if ( yl <= zl ) {
1620          if ( yr <= zl ) {
1621            continue ;
1622          }
1623          else if ( yr <= zr ) {
1624            newspec[ii] += oldspec[j] * ( yr - zl ) ;
1625            newflag[ii] = newflag[ii] || oldflag[j] ;
1626            wsum += ( yr - zl ) ;
1627          }
1628          else {
1629            newspec[ii] += oldspec[j] * dnu ;
1630            newflag[ii] = newflag[ii] || oldflag[j] ;
1631            wsum += dnu ;
1632            ichan = j ;
1633            break ;
1634          }
1635        }
1636        else if ( yl < zr ) {
1637          if ( yr <= zr ) {
1638              newspec[ii] += oldspec[j] * ( yr - yl ) ;
1639              newflag[ii] = newflag[ii] || oldflag[j] ;
1640              wsum += ( yr - yl ) ;
1641          }
1642          else {
1643            newspec[ii] += oldspec[j] * ( zr - yl ) ;
1644            newflag[ii] = newflag[ii] || oldflag[j] ;
1645            wsum += ( zr - yl ) ;
1646            ichan = j ;
1647            break ;
1648          }
1649        }
1650        else {
1651          ichan = j - 1 ;
1652          break ;
1653        }
1654      }
1655      if ( wsum != 0.0 )
1656        newspec[ii] /= wsum ;
1657      wsum = 0.0 ;
1658    }
1659  }
1660  else if ( dnu < 0.0 ) {
1661    for ( int ii = 0 ; ii < nChan ; ii++ ) {
1662      double zl = zi[ii] ;
1663      double zr = zi[ii+1] ;
1664      for ( int j = ichan ; j < oldsize ; j++ ) {
1665        double yl = yi[j] ;
1666        double yr = yi[j+1] ;
1667        if ( yl >= zl ) {
1668          if ( yr >= zl ) {
1669            continue ;
1670          }
1671          else if ( yr >= zr ) {
1672            newspec[ii] += oldspec[j] * abs( yr - zl ) ;
1673            newflag[ii] = newflag[ii] || oldflag[j] ;
1674            wsum += abs( yr - zl ) ;
1675          }
1676          else {
1677            newspec[ii] += oldspec[j] * abs( dnu ) ;
1678            newflag[ii] = newflag[ii] || oldflag[j] ;
1679            wsum += abs( dnu ) ;
1680            ichan = j ;
1681            break ;
1682          }
1683        }
1684        else if ( yl > zr ) {
1685          if ( yr >= zr ) {
1686            newspec[ii] += oldspec[j] * abs( yr - yl ) ;
1687            newflag[ii] = newflag[ii] || oldflag[j] ;
1688            wsum += abs( yr - yl ) ;
1689          }
1690          else {
1691            newspec[ii] += oldspec[j] * abs( zr - yl ) ;
1692            newflag[ii] = newflag[ii] || oldflag[j] ;
1693            wsum += abs( zr - yl ) ;
1694            ichan = j ;
1695            break ;
1696          }
1697        }
1698        else {
1699          ichan = j - 1 ;
1700          break ;
1701        }
1702      }
1703      if ( wsum != 0.0 )
1704        newspec[ii] /= wsum ;
1705      wsum = 0.0 ;
1706    }
1707  }
1708//    * ichan = 0
1709//    ***/
1710//   //ofs << "olddnu = " << olddnu << ", dnu = " << dnu << endl ;
1711//   pile += dnu ;
1712//   wedge = olddnu * ( refChan + 1 ) ;
1713//   while ( wedge < pile ) {
1714//     newspec[0] += olddnu * oldspec[refChan] ;
1715//     newflag[0] = newflag[0] || oldflag[refChan] ;
1716//     //ofs << "channel " << refChan << " is included in new channel 0" << endl ;
1717//     refChan++ ;
1718//     wedge += olddnu ;
1719//     wsum += olddnu ;
1720//     //ofs << "newspec[0] = " << newspec[0] << " wsum = " << wsum << endl ;
1721//   }
1722//   frac = ( wedge - pile ) / olddnu ;
1723//   wsum += ( 1.0 - frac ) * olddnu ;
1724//   newspec[0] += ( 1.0 - frac ) * olddnu * oldspec[refChan] ;
1725//   newflag[0] = newflag[0] || oldflag[refChan] ;
1726//   //ofs << "channel " << refChan << " is partly included in new channel 0" << " with fraction of " << ( 1.0 - frac ) << endl ;
1727//   //ofs << "newspec[0] = " << newspec[0] << " wsum = " << wsum << endl ;
1728//   newspec[0] /= wsum ;
1729//   //ofs << "newspec[0] = " << newspec[0] << endl ;
1730//   //ofs << "wedge = " << wedge << ", pile = " << pile << endl ;
1731
1732//   /***
1733//    * ichan = 1 - nChan-2
1734//    ***/
1735//   for ( int ichan = 1 ; ichan < nChan - 1 ; ichan++ ) {
1736//     pile += dnu ;
1737//     newspec[ichan] += frac * olddnu * oldspec[refChan] ;
1738//     newflag[ichan] = newflag[ichan] || oldflag[refChan] ;
1739//     //ofs << "channel " << refChan << " is partly included in new channel " << ichan << " with fraction of " << frac << endl ;
1740//     refChan++ ;
1741//     wedge += olddnu ;
1742//     wsum = frac * olddnu ;
1743//     //ofs << "newspec[" << ichan << "] = " << newspec[ichan] << " wsum = " << wsum << endl ;
1744//     while ( wedge < pile ) {
1745//       newspec[ichan] += olddnu * oldspec[refChan] ;
1746//       newflag[ichan] = newflag[ichan] || oldflag[refChan] ;
1747//       //ofs << "channel " << refChan << " is included in new channel " << ichan << endl ;
1748//       refChan++ ;
1749//       wedge += olddnu ;
1750//       wsum += olddnu ;
1751//       //ofs << "newspec[" << ichan << "] = " << newspec[ichan] << " wsum = " << wsum << endl ;
1752//     }
1753//     frac = ( wedge - pile ) / olddnu ;
1754//     wsum += ( 1.0 - frac ) * olddnu ;
1755//     newspec[ichan] += ( 1.0 - frac ) * olddnu * oldspec[refChan] ;
1756//     newflag[ichan] = newflag[ichan] || oldflag[refChan] ;
1757//     //ofs << "channel " << refChan << " is partly included in new channel " << ichan << " with fraction of " << ( 1.0 - frac ) << endl ;
1758//     //ofs << "wedge = " << wedge << ", pile = " << pile << endl ;
1759//     //ofs << "newspec[" << ichan << "] = " << newspec[ichan] << " wsum = " << wsum << endl ;
1760//     newspec[ichan] /= wsum ;
1761//     //ofs << "newspec[" << ichan << "] = " << newspec[ichan] << endl ;
1762//   }
1763
1764//   /***
1765//    * ichan = nChan-1
1766//    ***/
1767//   // NOTE: Assumed that all spectra have the same bandwidth
1768//   pile += dnu ;
1769//   newspec[nChan-1] += frac * olddnu * oldspec[refChan] ;
1770//   newflag[nChan-1] = newflag[nChan-1] || oldflag[refChan] ;
1771//   //ofs << "channel " << refChan << " is partly included in new channel " << nChan-1 << " with fraction of " << frac << endl ;
1772//   refChan++ ;
1773//   wedge += olddnu ;
1774//   wsum = frac * olddnu ;
1775//   //ofs << "newspec[" << nChan - 1 << "] = " << newspec[nChan-1] << " wsum = " << wsum << endl ;
1776//   for ( int jchan = refChan ; jchan < oldsize ; jchan++ ) {
1777//     newspec[nChan-1] += olddnu * oldspec[jchan] ;
1778//     newflag[nChan-1] = newflag[nChan-1] || oldflag[jchan] ;
1779//     wsum += olddnu ;
1780//     //ofs << "channel " << jchan << " is included in new channel " << nChan-1 << " with fraction of " << frac << endl ;
1781//     //ofs << "newspec[" << nChan - 1 << "] = " << newspec[nChan-1] << " wsum = " << wsum << endl ;
1782//   }
1783//   //ofs << "wedge = " << wedge << ", pile = " << pile << endl ;
1784//   //ofs << "newspec[" << nChan - 1 << "] = " << newspec[nChan-1] << " wsum = " << wsum << endl ;
1785//   newspec[nChan-1] /= wsum ;
1786//   //ofs << "newspec[" << nChan - 1 << "] = " << newspec[nChan-1] << endl ;
1787
1788//   // ofs.close() ;
1789
1790  specCol_.put( irow, newspec ) ;
1791  flagsCol_.put( irow, newflag ) ;
1792
1793  return ;
1794}
1795
1796std::vector<float> Scantable::getWeather(int whichrow) const
1797{
1798  std::vector<float> out(5);
1799  //Float temperature, pressure, humidity, windspeed, windaz;
1800  weatherTable_.getEntry(out[0], out[1], out[2], out[3], out[4],
1801                         mweatheridCol_(uInt(whichrow)));
1802
1803
1804  return out;
1805}
1806
1807bool Scantable::getFlagtraFast(uInt whichrow)
1808{
1809  uChar flag;
1810  Vector<uChar> flags;
1811  flagsCol_.get(whichrow, flags);
1812  flag = flags[0];
1813  for (uInt i = 1; i < flags.size(); ++i) {
1814    flag &= flags[i];
1815  }
1816  return ((flag >> 7) == 1);
1817}
1818
1819void Scantable::polyBaseline(const std::vector<bool>& mask, int order,
1820                             bool getResidual, const std::string& progressInfo,
1821                             const bool outLogger, const std::string& blfile)
1822{
1823  try {
1824    ofstream ofs;
1825    String coordInfo = "";
1826    bool hasSameNchan = true;
1827    bool outTextFile = false;
1828
1829    if (blfile != "") {
1830      ofs.open(blfile.c_str(), ios::out | ios::app);
1831      if (ofs) outTextFile = true;
1832    }
1833
1834    if (outLogger || outTextFile) {
1835      coordInfo = getCoordInfo()[0];
1836      if (coordInfo == "") coordInfo = "channel";
1837      hasSameNchan = hasSameNchanOverIFs();
1838    }
1839
1840    Fitter fitter = Fitter();
1841    fitter.setExpression("poly", order);
1842    //fitter.setIterClipping(thresClip, nIterClip);
1843
1844    int nRow = nrow();
1845    std::vector<bool> chanMask;
1846    bool showProgress;
1847    int minNRow;
1848    parseProgressInfo(progressInfo, showProgress, minNRow);
1849
1850    for (int whichrow = 0; whichrow < nRow; ++whichrow) {
1851      chanMask = getCompositeChanMask(whichrow, mask);
1852      fitBaseline(chanMask, whichrow, fitter);
1853      setSpectrum((getResidual ? fitter.getResidual() : fitter.getFit()), whichrow);
1854      outputFittingResult(outLogger, outTextFile, chanMask, whichrow,
1855                          coordInfo, hasSameNchan, ofs, "polyBaseline()",
1856                          fitter);
1857      showProgressOnTerminal(whichrow, nRow, showProgress, minNRow);
1858    }
1859
1860    if (outTextFile) ofs.close();
1861
1862  } catch (...) {
1863    throw;
1864  }
1865}
1866
1867void Scantable::autoPolyBaseline(const std::vector<bool>& mask, int order, const std::vector<int>& edge, float threshold, int chanAvgLimit, bool getResidual, const std::string& progressInfo, const bool outLogger, const std::string& blfile)
1868{
1869  try {
1870    ofstream ofs;
1871    String coordInfo = "";
1872    bool hasSameNchan = true;
1873    bool outTextFile = false;
1874
1875    if (blfile != "") {
1876      ofs.open(blfile.c_str(), ios::out | ios::app);
1877      if (ofs) outTextFile = true;
1878    }
1879
1880    if (outLogger || outTextFile) {
1881      coordInfo = getCoordInfo()[0];
1882      if (coordInfo == "") coordInfo = "channel";
1883      hasSameNchan = hasSameNchanOverIFs();
1884    }
1885
1886    Fitter fitter = Fitter();
1887    fitter.setExpression("poly", order);
1888    //fitter.setIterClipping(thresClip, nIterClip);
1889
1890    int nRow = nrow();
1891    std::vector<bool> chanMask;
1892    int minEdgeSize = getIFNos().size()*2;
1893    STLineFinder lineFinder = STLineFinder();
1894    lineFinder.setOptions(threshold, 3, chanAvgLimit);
1895
1896    bool showProgress;
1897    int minNRow;
1898    parseProgressInfo(progressInfo, showProgress, minNRow);
1899
1900    for (int whichrow = 0; whichrow < nRow; ++whichrow) {
1901
1902      //-------------------------------------------------------
1903      //chanMask = getCompositeChanMask(whichrow, mask, edge, minEdgeSize, lineFinder);
1904      //-------------------------------------------------------
1905      int edgeSize = edge.size();
1906      std::vector<int> currentEdge;
1907      if (edgeSize >= 2) {
1908        int idx = 0;
1909        if (edgeSize > 2) {
1910          if (edgeSize < minEdgeSize) {
1911            throw(AipsError("Length of edge element info is less than that of IFs"));
1912          }
1913          idx = 2 * getIF(whichrow);
1914        }
1915        currentEdge.push_back(edge[idx]);
1916        currentEdge.push_back(edge[idx+1]);
1917      } else {
1918        throw(AipsError("Wrong length of edge element"));
1919      }
1920      lineFinder.setData(getSpectrum(whichrow));
1921      lineFinder.findLines(getCompositeChanMask(whichrow, mask), currentEdge, whichrow);
1922      chanMask = lineFinder.getMask();
1923      //-------------------------------------------------------
1924
1925      fitBaseline(chanMask, whichrow, fitter);
1926      setSpectrum((getResidual ? fitter.getResidual() : fitter.getFit()), whichrow);
1927
1928      outputFittingResult(outLogger, outTextFile, chanMask, whichrow, coordInfo, hasSameNchan, ofs, "autoPolyBaseline()", fitter);
1929      showProgressOnTerminal(whichrow, nRow, showProgress, minNRow);
1930    }
1931
1932    if (outTextFile) ofs.close();
1933
1934  } catch (...) {
1935    throw;
1936  }
1937}
1938
1939void Scantable::cubicSplineBaseline(const std::vector<bool>& mask, int nPiece, float thresClip, int nIterClip, bool getResidual, const std::string& progressInfo, const bool outLogger, const std::string& blfile)
1940{
1941  try {
1942    ofstream ofs;
1943    String coordInfo = "";
1944    bool hasSameNchan = true;
1945    bool outTextFile = false;
1946
1947    if (blfile != "") {
1948      ofs.open(blfile.c_str(), ios::out | ios::app);
1949      if (ofs) outTextFile = true;
1950    }
1951
1952    if (outLogger || outTextFile) {
1953      coordInfo = getCoordInfo()[0];
1954      if (coordInfo == "") coordInfo = "channel";
1955      hasSameNchan = hasSameNchanOverIFs();
1956    }
1957
1958    //Fitter fitter = Fitter();
1959    //fitter.setExpression("cspline", nPiece);
1960    //fitter.setIterClipping(thresClip, nIterClip);
1961
1962    int nRow = nrow();
1963    std::vector<bool> chanMask;
1964    bool showProgress;
1965    int minNRow;
1966    parseProgressInfo(progressInfo, showProgress, minNRow);
1967
1968    for (int whichrow = 0; whichrow < nRow; ++whichrow) {
1969      chanMask = getCompositeChanMask(whichrow, mask);
1970      //fitBaseline(chanMask, whichrow, fitter);
1971      //setSpectrum((getResidual ? fitter.getResidual() : fitter.getFit()), whichrow);
1972      std::vector<int> pieceEdges;
1973      std::vector<float> params;
1974      int nClipped = 0;
1975      std::vector<float> res = doCubicSplineFitting(getSpectrum(whichrow), chanMask, nPiece, pieceEdges, params, nClipped, thresClip, nIterClip, getResidual);
1976      setSpectrum(res, whichrow);
1977      //
1978
1979      outputFittingResult(outLogger, outTextFile, chanMask, whichrow, coordInfo, hasSameNchan, ofs, "cubicSplineBaseline()", pieceEdges, params, nClipped);
1980      showProgressOnTerminal(whichrow, nRow, showProgress, minNRow);
1981    }
1982
1983    if (outTextFile) ofs.close();
1984
1985  } catch (...) {
1986    throw;
1987  }
1988}
1989
1990void Scantable::autoCubicSplineBaseline(const std::vector<bool>& mask, int nPiece, float thresClip, int nIterClip, const std::vector<int>& edge, float threshold, int chanAvgLimit, bool getResidual, const std::string& progressInfo, const bool outLogger, const std::string& blfile)
1991{
1992  try {
1993    ofstream ofs;
1994    String coordInfo = "";
1995    bool hasSameNchan = true;
1996    bool outTextFile = false;
1997
1998    if (blfile != "") {
1999      ofs.open(blfile.c_str(), ios::out | ios::app);
2000      if (ofs) outTextFile = true;
2001    }
2002
2003    if (outLogger || outTextFile) {
2004      coordInfo = getCoordInfo()[0];
2005      if (coordInfo == "") coordInfo = "channel";
2006      hasSameNchan = hasSameNchanOverIFs();
2007    }
2008
2009    //Fitter fitter = Fitter();
2010    //fitter.setExpression("cspline", nPiece);
2011    //fitter.setIterClipping(thresClip, nIterClip);
2012
2013    int nRow = nrow();
2014    std::vector<bool> chanMask;
2015    int minEdgeSize = getIFNos().size()*2;
2016    STLineFinder lineFinder = STLineFinder();
2017    lineFinder.setOptions(threshold, 3, chanAvgLimit);
2018
2019    bool showProgress;
2020    int minNRow;
2021    parseProgressInfo(progressInfo, showProgress, minNRow);
2022
2023    for (int whichrow = 0; whichrow < nRow; ++whichrow) {
2024
2025      //-------------------------------------------------------
2026      //chanMask = getCompositeChanMask(whichrow, mask, edge, minEdgeSize, lineFinder);
2027      //-------------------------------------------------------
2028      int edgeSize = edge.size();
2029      std::vector<int> currentEdge;
2030      if (edgeSize >= 2) {
2031        int idx = 0;
2032        if (edgeSize > 2) {
2033          if (edgeSize < minEdgeSize) {
2034            throw(AipsError("Length of edge element info is less than that of IFs"));
2035          }
2036          idx = 2 * getIF(whichrow);
2037        }
2038        currentEdge.push_back(edge[idx]);
2039        currentEdge.push_back(edge[idx+1]);
2040      } else {
2041        throw(AipsError("Wrong length of edge element"));
2042      }
2043      lineFinder.setData(getSpectrum(whichrow));
2044      lineFinder.findLines(getCompositeChanMask(whichrow, mask), currentEdge, whichrow);
2045      chanMask = lineFinder.getMask();
2046      //-------------------------------------------------------
2047
2048
2049      //fitBaseline(chanMask, whichrow, fitter);
2050      //setSpectrum((getResidual ? fitter.getResidual() : fitter.getFit()), whichrow);
2051      std::vector<int> pieceEdges;
2052      std::vector<float> params;
2053      int nClipped = 0;
2054      std::vector<float> res = doCubicSplineFitting(getSpectrum(whichrow), chanMask, nPiece, pieceEdges, params, nClipped, thresClip, nIterClip, getResidual);
2055      setSpectrum(res, whichrow);
2056      //
2057
2058      outputFittingResult(outLogger, outTextFile, chanMask, whichrow, coordInfo, hasSameNchan, ofs, "autoCubicSplineBaseline()", pieceEdges, params, nClipped);
2059      showProgressOnTerminal(whichrow, nRow, showProgress, minNRow);
2060    }
2061
2062    if (outTextFile) ofs.close();
2063
2064  } catch (...) {
2065    throw;
2066  }
2067}
2068
2069std::vector<float> Scantable::doCubicSplineFitting(const std::vector<float>& data, const std::vector<bool>& mask, int nPiece, std::vector<int>& idxEdge, std::vector<float>& params, int& nClipped, float thresClip, int nIterClip, bool getResidual)
2070{
2071  if (data.size() != mask.size()) {
2072    throw(AipsError("data and mask sizes are not identical"));
2073  }
2074  if (nPiece < 1) {
2075    throw(AipsError("number of the sections must be one or more"));
2076  }
2077
2078  int nChan = data.size();
2079  std::vector<int> maskArray;
2080  std::vector<int> x;
2081  for (int i = 0; i < nChan; ++i) {
2082    maskArray.push_back(mask[i] ? 1 : 0);
2083    if (mask[i]) {
2084      x.push_back(i);
2085    }
2086  }
2087
2088  int initNData = x.size();
2089  if (initNData < nPiece) {
2090    throw(AipsError("too few non-flagged channels"));
2091  }
2092
2093  int nElement = (int)(floor(floor((double)(initNData/nPiece))+0.5));
2094  std::vector<double> invEdge;
2095  idxEdge.clear();
2096  idxEdge.push_back(x[0]);
2097  for (int i = 1; i < nPiece; ++i) {
2098    int valX = x[nElement*i];
2099    idxEdge.push_back(valX);
2100    invEdge.push_back(1.0/(double)valX);
2101  }
2102  idxEdge.push_back(x[x.size()-1]+1);
2103
2104  int nData = initNData;
2105  int nDOF = nPiece + 3;  //number of parameters to solve, namely, 4+(nPiece-1).
2106
2107  std::vector<double> x1, x2, x3, z1, x1z1, x2z1, x3z1, r1, residual;
2108  for (int i = 0; i < nChan; ++i) {
2109    double di = (double)i;
2110    double dD = (double)data[i];
2111    x1.push_back(di);
2112    x2.push_back(di*di);
2113    x3.push_back(di*di*di);
2114    z1.push_back(dD);
2115    x1z1.push_back(dD*di);
2116    x2z1.push_back(dD*di*di);
2117    x3z1.push_back(dD*di*di*di);
2118    r1.push_back(0.0);
2119    residual.push_back(0.0);
2120  }
2121
2122  for (int nClip = 0; nClip < nIterClip+1; ++nClip) {
2123    // xMatrix : horizontal concatenation of
2124    //           the least-sq. matrix (left) and an
2125    //           identity matrix (right).
2126    // the right part is used to calculate the inverse matrix of the left part.
2127    double xMatrix[nDOF][2*nDOF];
2128    double zMatrix[nDOF];
2129    for (int i = 0; i < nDOF; ++i) {
2130      for (int j = 0; j < 2*nDOF; ++j) {
2131        xMatrix[i][j] = 0.0;
2132      }
2133      xMatrix[i][nDOF+i] = 1.0;
2134      zMatrix[i] = 0.0;
2135    }
2136
2137    for (int n = 0; n < nPiece; ++n) {
2138      int nUseDataInPiece = 0;
2139      for (int i = idxEdge[n]; i < idxEdge[n+1]; ++i) {
2140
2141        if (maskArray[i] == 0) continue;
2142
2143        xMatrix[0][0] += 1.0;
2144        xMatrix[0][1] += x1[i];
2145        xMatrix[0][2] += x2[i];
2146        xMatrix[0][3] += x3[i];
2147        xMatrix[1][1] += x2[i];
2148        xMatrix[1][2] += x3[i];
2149        xMatrix[1][3] += x2[i]*x2[i];
2150        xMatrix[2][2] += x2[i]*x2[i];
2151        xMatrix[2][3] += x3[i]*x2[i];
2152        xMatrix[3][3] += x3[i]*x3[i];
2153        zMatrix[0] += z1[i];
2154        zMatrix[1] += x1z1[i];
2155        zMatrix[2] += x2z1[i];
2156        zMatrix[3] += x3z1[i];
2157
2158        for (int j = 0; j < n; ++j) {
2159          double q = 1.0 - x1[i]*invEdge[j];
2160          q = q*q*q;
2161          xMatrix[0][j+4] += q;
2162          xMatrix[1][j+4] += q*x1[i];
2163          xMatrix[2][j+4] += q*x2[i];
2164          xMatrix[3][j+4] += q*x3[i];
2165          for (int k = 0; k < j; ++k) {
2166            double r = 1.0 - x1[i]*invEdge[k];
2167            r = r*r*r;
2168            xMatrix[k+4][j+4] += r*q;
2169          }
2170          xMatrix[j+4][j+4] += q*q;
2171          zMatrix[j+4] += q*z1[i];
2172        }
2173
2174        nUseDataInPiece++;
2175      }
2176
2177      if (nUseDataInPiece < 1) {
2178        std::vector<string> suffixOfPieceNumber(4);
2179        suffixOfPieceNumber[0] = "th";
2180        suffixOfPieceNumber[1] = "st";
2181        suffixOfPieceNumber[2] = "nd";
2182        suffixOfPieceNumber[3] = "rd";
2183        int idxNoDataPiece = (n % 10 <= 3) ? n : 0;
2184        ostringstream oss;
2185        oss << "all channels clipped or masked in " << n << suffixOfPieceNumber[idxNoDataPiece];
2186        oss << " piece of the spectrum. can't execute fitting anymore.";
2187        throw(AipsError(String(oss)));
2188      }
2189    }
2190
2191    for (int i = 0; i < nDOF; ++i) {
2192      for (int j = 0; j < i; ++j) {
2193        xMatrix[i][j] = xMatrix[j][i];
2194      }
2195    }
2196
2197    std::vector<double> invDiag;
2198    for (int i = 0; i < nDOF; ++i) {
2199      invDiag.push_back(1.0/xMatrix[i][i]);
2200      for (int j = 0; j < nDOF; ++j) {
2201        xMatrix[i][j] *= invDiag[i];
2202      }
2203    }
2204
2205    for (int k = 0; k < nDOF; ++k) {
2206      for (int i = 0; i < nDOF; ++i) {
2207        if (i != k) {
2208          double factor1 = xMatrix[k][k];
2209          double factor2 = xMatrix[i][k];
2210          for (int j = k; j < 2*nDOF; ++j) {
2211            xMatrix[i][j] *= factor1;
2212            xMatrix[i][j] -= xMatrix[k][j]*factor2;
2213            xMatrix[i][j] /= factor1;
2214          }
2215        }
2216      }
2217      double xDiag = xMatrix[k][k];
2218      for (int j = k; j < 2*nDOF; ++j) {
2219        xMatrix[k][j] /= xDiag;
2220      }
2221    }
2222   
2223    for (int i = 0; i < nDOF; ++i) {
2224      for (int j = 0; j < nDOF; ++j) {
2225        xMatrix[i][nDOF+j] *= invDiag[j];
2226      }
2227    }
2228    //compute a vector y which consists of the coefficients of the best-fit spline curves
2229    //(a0,a1,a2,a3(,b3,c3,...)), namely, the ones for the leftmost piece and the ones of
2230    //cubic terms for the other pieces (in case nPiece>1).
2231    std::vector<double> y;
2232    y.clear();
2233    for (int i = 0; i < nDOF; ++i) {
2234      y.push_back(0.0);
2235      for (int j = 0; j < nDOF; ++j) {
2236        y[i] += xMatrix[i][nDOF+j]*zMatrix[j];
2237      }
2238    }
2239
2240    double a0 = y[0];
2241    double a1 = y[1];
2242    double a2 = y[2];
2243    double a3 = y[3];
2244    params.clear();
2245
2246    for (int n = 0; n < nPiece; ++n) {
2247      for (int i = idxEdge[n]; i < idxEdge[n+1]; ++i) {
2248        r1[i] = a0 + a1*x1[i] + a2*x2[i] + a3*x3[i];
2249        residual[i] = z1[i] - r1[i];
2250      }
2251      params.push_back(a0);
2252      params.push_back(a1);
2253      params.push_back(a2);
2254      params.push_back(a3);
2255
2256      if (n == nPiece-1) break;
2257
2258      double d = y[4+n];
2259      double iE = invEdge[n];
2260      a0 +=     d;
2261      a1 -= 3.0*d*iE;
2262      a2 += 3.0*d*iE*iE;
2263      a3 -=     d*iE*iE*iE;
2264    }
2265
2266    if ((nClip == nIterClip) || (thresClip <= 0.0)) {
2267      break;
2268    } else {
2269      double stdDev = 0.0;
2270      for (int i = 0; i < nChan; ++i) {
2271        stdDev += residual[i]*residual[i]*(double)maskArray[i];
2272      }
2273      stdDev = sqrt(stdDev/(double)nData);
2274     
2275      double thres = stdDev * thresClip;
2276      int newNData = 0;
2277      for (int i = 0; i < nChan; ++i) {
2278        if (abs(residual[i]) >= thres) {
2279          maskArray[i] = 0;
2280        }
2281        if (maskArray[i] > 0) {
2282          newNData++;
2283        }
2284      }
2285      if (newNData == nData) {
2286        break; //no more flag to add. iteration stops.
2287      } else {
2288        nData = newNData;
2289      }
2290    }
2291  }
2292
2293  nClipped = initNData - nData;
2294
2295  std::vector<float> result;
2296  if (getResidual) {
2297    for (int i = 0; i < nChan; ++i) {
2298      result.push_back((float)residual[i]);
2299    }
2300  } else {
2301    for (int i = 0; i < nChan; ++i) {
2302      result.push_back((float)r1[i]);
2303    }
2304  }
2305
2306  return result;
2307}
2308
2309  void Scantable::selectWaveNumbers(const int whichrow, const std::vector<bool>& chanMask, const bool applyFFT, const std::string& fftMethod, const std::string& fftThresh, const std::vector<int>& addNWaves, const std::vector<int>& rejectNWaves, std::vector<int>& nWaves)
2310{
2311  nWaves.clear();
2312
2313  if (applyFFT) {
2314    string fftThAttr;
2315    float fftThSigma;
2316    int fftThTop;
2317    parseThresholdExpression(fftThresh, fftThAttr, fftThSigma, fftThTop);
2318    doSelectWaveNumbers(whichrow, chanMask, fftMethod, fftThSigma, fftThTop, fftThAttr, nWaves);
2319  }
2320
2321  addAuxWaveNumbers(addNWaves, rejectNWaves, nWaves);
2322}
2323
2324void Scantable::parseThresholdExpression(const std::string& fftThresh, std::string& fftThAttr, float& fftThSigma, int& fftThTop)
2325{
2326  uInt idxSigma = fftThresh.find("sigma");
2327  uInt idxTop   = fftThresh.find("top");
2328
2329  if (idxSigma == fftThresh.size() - 5) {
2330    std::istringstream is(fftThresh.substr(0, fftThresh.size() - 5));
2331    is >> fftThSigma;
2332    fftThAttr = "sigma";
2333  } else if (idxTop == 0) {
2334    std::istringstream is(fftThresh.substr(3));
2335    is >> fftThTop;
2336    fftThAttr = "top";
2337  } else {
2338    bool isNumber = true;
2339    for (uInt i = 0; i < fftThresh.size()-1; ++i) {
2340      char ch = (fftThresh.substr(i, 1).c_str())[0];
2341      if (!(isdigit(ch) || (fftThresh.substr(i, 1) == "."))) {
2342        isNumber = false;
2343        break;
2344      }
2345    }
2346    if (isNumber) {
2347      std::istringstream is(fftThresh);
2348      is >> fftThSigma;
2349      fftThAttr = "sigma";
2350    } else {
2351      throw(AipsError("fftthresh has a wrong value"));
2352    }
2353  }
2354}
2355
2356void Scantable::doSelectWaveNumbers(const int whichrow, const std::vector<bool>& chanMask, const std::string& fftMethod, const float fftThSigma, const int fftThTop, const std::string& fftThAttr, std::vector<int>& nWaves)
2357{
2358  std::vector<float> fspec;
2359  if (fftMethod == "fft") {
2360    fspec = execFFT(whichrow, chanMask, false, true);
2361  //} else if (fftMethod == "lsp") {
2362  //  fspec = lombScarglePeriodogram(whichrow);
2363  }
2364
2365  if (fftThAttr == "sigma") {
2366    float mean  = 0.0;
2367    float mean2 = 0.0;
2368    for (uInt i = 0; i < fspec.size(); ++i) {
2369      mean  += fspec[i];
2370      mean2 += fspec[i]*fspec[i];
2371    }
2372    mean  /= float(fspec.size());
2373    mean2 /= float(fspec.size());
2374    float thres = mean + fftThSigma * float(sqrt(mean2 - mean*mean));
2375
2376    for (uInt i = 0; i < fspec.size(); ++i) {
2377      if (fspec[i] >= thres) {
2378        nWaves.push_back(i);
2379      }
2380    }
2381
2382  } else if (fftThAttr == "top") {
2383    for (int i = 0; i < fftThTop; ++i) {
2384      float max = 0.0;
2385      int maxIdx = 0;
2386      for (uInt j = 0; j < fspec.size(); ++j) {
2387        if (fspec[j] > max) {
2388          max = fspec[j];
2389          maxIdx = j;
2390        }
2391      }
2392      nWaves.push_back(maxIdx);
2393      fspec[maxIdx] = 0.0;
2394    }
2395
2396  }
2397
2398  if (nWaves.size() > 1) {
2399    sort(nWaves.begin(), nWaves.end());
2400  }
2401}
2402
2403void Scantable::addAuxWaveNumbers(const std::vector<int>& addNWaves, const std::vector<int>& rejectNWaves, std::vector<int>& nWaves)
2404{
2405  for (uInt i = 0; i < addNWaves.size(); ++i) {
2406    bool found = false;
2407    for (uInt j = 0; j < nWaves.size(); ++j) {
2408      if (nWaves[j] == addNWaves[i]) {
2409        found = true;
2410        break;
2411      }
2412    }
2413    if (!found) nWaves.push_back(addNWaves[i]);
2414  }
2415
2416  for (uInt i = 0; i < rejectNWaves.size(); ++i) {
2417    for (std::vector<int>::iterator j = nWaves.begin(); j != nWaves.end(); ) {
2418      if (*j == rejectNWaves[i]) {
2419        j = nWaves.erase(j);
2420      } else {
2421        ++j;
2422      }
2423    }
2424  }
2425
2426  if (nWaves.size() > 1) {
2427    sort(nWaves.begin(), nWaves.end());
2428    unique(nWaves.begin(), nWaves.end());
2429  }
2430}
2431
2432void Scantable::sinusoidBaseline(const std::vector<bool>& mask, const bool applyFFT, const std::string& fftMethod, const std::string& fftThresh, const std::vector<int>& addNWaves, const std::vector<int>& rejectNWaves, float thresClip, int nIterClip, bool getResidual, const std::string& progressInfo, const bool outLogger, const std::string& blfile)
2433{
2434  try {
2435    ofstream ofs;
2436    String coordInfo = "";
2437    bool hasSameNchan = true;
2438    bool outTextFile = false;
2439
2440    if (blfile != "") {
2441      ofs.open(blfile.c_str(), ios::out | ios::app);
2442      if (ofs) outTextFile = true;
2443    }
2444
2445    if (outLogger || outTextFile) {
2446      coordInfo = getCoordInfo()[0];
2447      if (coordInfo == "") coordInfo = "channel";
2448      hasSameNchan = hasSameNchanOverIFs();
2449    }
2450
2451    //Fitter fitter = Fitter();
2452    //fitter.setExpression("sinusoid", nWaves);
2453    //fitter.setIterClipping(thresClip, nIterClip);
2454
2455    int nRow = nrow();
2456    std::vector<bool> chanMask;
2457    std::vector<int> nWaves;
2458
2459    bool showProgress;
2460    int minNRow;
2461    parseProgressInfo(progressInfo, showProgress, minNRow);
2462
2463    for (int whichrow = 0; whichrow < nRow; ++whichrow) {
2464      chanMask = getCompositeChanMask(whichrow, mask);
2465      selectWaveNumbers(whichrow, chanMask, applyFFT, fftMethod, fftThresh, addNWaves, rejectNWaves, nWaves);
2466
2467      //FOR DEBUGGING------------
2468      if (whichrow < 0) {// == nRow -1) {
2469        cout << "+++ i=" << setw(3) << whichrow << ", IF=" << setw(2) << getIF(whichrow);
2470        if (applyFFT) {
2471          cout << "[ ";
2472          for (uInt j = 0; j < nWaves.size(); ++j) {
2473            cout << nWaves[j] << ", ";
2474          }
2475          cout << " ]    " << endl;
2476        }
2477        cout << flush;
2478      }
2479      //-------------------------
2480
2481      //fitBaseline(chanMask, whichrow, fitter);
2482      //setSpectrum((getResidual ? fitter.getResidual() : fitter.getFit()), whichrow);
2483      std::vector<float> params;
2484      int nClipped = 0;
2485      std::vector<float> res = doSinusoidFitting(getSpectrum(whichrow), chanMask, nWaves, params, nClipped, thresClip, nIterClip, getResidual);
2486      setSpectrum(res, whichrow);
2487      //
2488
2489      outputFittingResult(outLogger, outTextFile, chanMask, whichrow, coordInfo, hasSameNchan, ofs, "sinusoidBaseline()", params, nClipped);
2490      showProgressOnTerminal(whichrow, nRow, showProgress, minNRow);
2491    }
2492
2493    if (outTextFile) ofs.close();
2494
2495  } catch (...) {
2496    throw;
2497  }
2498}
2499
2500void Scantable::autoSinusoidBaseline(const std::vector<bool>& mask, const bool applyFFT, const std::string& fftMethod, const std::string& fftThresh, const std::vector<int>& addNWaves, const std::vector<int>& rejectNWaves, float thresClip, int nIterClip, const std::vector<int>& edge, float threshold, int chanAvgLimit, bool getResidual, const std::string& progressInfo, const bool outLogger, const std::string& blfile)
2501{
2502  try {
2503    ofstream ofs;
2504    String coordInfo = "";
2505    bool hasSameNchan = true;
2506    bool outTextFile = false;
2507
2508    if (blfile != "") {
2509      ofs.open(blfile.c_str(), ios::out | ios::app);
2510      if (ofs) outTextFile = true;
2511    }
2512
2513    if (outLogger || outTextFile) {
2514      coordInfo = getCoordInfo()[0];
2515      if (coordInfo == "") coordInfo = "channel";
2516      hasSameNchan = hasSameNchanOverIFs();
2517    }
2518
2519    //Fitter fitter = Fitter();
2520    //fitter.setExpression("sinusoid", nWaves);
2521    //fitter.setIterClipping(thresClip, nIterClip);
2522
2523    int nRow = nrow();
2524    std::vector<bool> chanMask;
2525    std::vector<int> nWaves;
2526
2527    int minEdgeSize = getIFNos().size()*2;
2528    STLineFinder lineFinder = STLineFinder();
2529    lineFinder.setOptions(threshold, 3, chanAvgLimit);
2530
2531    bool showProgress;
2532    int minNRow;
2533    parseProgressInfo(progressInfo, showProgress, minNRow);
2534
2535    for (int whichrow = 0; whichrow < nRow; ++whichrow) {
2536
2537      //-------------------------------------------------------
2538      //chanMask = getCompositeChanMask(whichrow, mask, edge, minEdgeSize, lineFinder);
2539      //-------------------------------------------------------
2540      int edgeSize = edge.size();
2541      std::vector<int> currentEdge;
2542      if (edgeSize >= 2) {
2543        int idx = 0;
2544        if (edgeSize > 2) {
2545          if (edgeSize < minEdgeSize) {
2546            throw(AipsError("Length of edge element info is less than that of IFs"));
2547          }
2548          idx = 2 * getIF(whichrow);
2549        }
2550        currentEdge.push_back(edge[idx]);
2551        currentEdge.push_back(edge[idx+1]);
2552      } else {
2553        throw(AipsError("Wrong length of edge element"));
2554      }
2555      lineFinder.setData(getSpectrum(whichrow));
2556      lineFinder.findLines(getCompositeChanMask(whichrow, mask), currentEdge, whichrow);
2557      chanMask = lineFinder.getMask();
2558      //-------------------------------------------------------
2559
2560      selectWaveNumbers(whichrow, chanMask, applyFFT, fftMethod, fftThresh, addNWaves, rejectNWaves, nWaves);
2561
2562      //fitBaseline(chanMask, whichrow, fitter);
2563      //setSpectrum((getResidual ? fitter.getResidual() : fitter.getFit()), whichrow);
2564      std::vector<float> params;
2565      int nClipped = 0;
2566      std::vector<float> res = doSinusoidFitting(getSpectrum(whichrow), chanMask, nWaves, params, nClipped, thresClip, nIterClip, getResidual);
2567      setSpectrum(res, whichrow);
2568      //
2569
2570      outputFittingResult(outLogger, outTextFile, chanMask, whichrow, coordInfo, hasSameNchan, ofs, "autoSinusoidBaseline()", params, nClipped);
2571      showProgressOnTerminal(whichrow, nRow, showProgress, minNRow);
2572    }
2573
2574    if (outTextFile) ofs.close();
2575
2576  } catch (...) {
2577    throw;
2578  }
2579}
2580
2581std::vector<float> Scantable::doSinusoidFitting(const std::vector<float>& data, const std::vector<bool>& mask, const std::vector<int>& waveNumbers, std::vector<float>& params, int& nClipped, float thresClip, int nIterClip, bool getResidual)
2582{
2583  if (data.size() != mask.size()) {
2584    throw(AipsError("data and mask sizes are not identical"));
2585  }
2586  if (data.size() < 2) {
2587    throw(AipsError("data size is too short"));
2588  }
2589  if (waveNumbers.size() == 0) {
2590    throw(AipsError("no wave numbers given"));
2591  }
2592  std::vector<int> nWaves;  // sorted and uniqued array of wave numbers
2593  nWaves.reserve(waveNumbers.size());
2594  copy(waveNumbers.begin(), waveNumbers.end(), back_inserter(nWaves));
2595  sort(nWaves.begin(), nWaves.end());
2596  std::vector<int>::iterator end_it = unique(nWaves.begin(), nWaves.end());
2597  nWaves.erase(end_it, nWaves.end());
2598
2599  int minNWaves = nWaves[0];
2600  if (minNWaves < 0) {
2601    throw(AipsError("wave number must be positive or zero (i.e. constant)"));
2602  }
2603  bool hasConstantTerm = (minNWaves == 0);
2604
2605  int nChan = data.size();
2606  std::vector<int> maskArray;
2607  std::vector<int> x;
2608  for (int i = 0; i < nChan; ++i) {
2609    maskArray.push_back(mask[i] ? 1 : 0);
2610    if (mask[i]) {
2611      x.push_back(i);
2612    }
2613  }
2614
2615  int initNData = x.size();
2616
2617  int nData = initNData;
2618  int nDOF = nWaves.size() * 2 - (hasConstantTerm ? 1 : 0);  //number of parameters to solve.
2619
2620  const double PI = 6.0 * asin(0.5); // PI (= 3.141592653...)
2621  double baseXFactor = 2.0*PI/(double)(nChan-1);  //the denominator (nChan-1) should be changed to (xdata[nChan-1]-xdata[0]) for accepting x-values given in velocity or frequency when this function is moved to fitter. (2011/03/30 WK)
2622
2623  // xArray : contains elemental values for computing the least-square matrix.
2624  //          xArray.size() is nDOF and xArray[*].size() is nChan.
2625  //          Each xArray element are as follows:
2626  //          xArray[0]    = {1.0, 1.0, 1.0, ..., 1.0},
2627  //          xArray[2n-1] = {sin(nPI/L*x[0]), sin(nPI/L*x[1]), ..., sin(nPI/L*x[nChan])},
2628  //          xArray[2n]   = {cos(nPI/L*x[0]), cos(nPI/L*x[1]), ..., cos(nPI/L*x[nChan])},
2629  //          where (1 <= n <= nMaxWavesInSW),
2630  //          or,
2631  //          xArray[2n-1] = {sin(wn[n]PI/L*x[0]), sin(wn[n]PI/L*x[1]), ..., sin(wn[n]PI/L*x[nChan])},
2632  //          xArray[2n]   = {cos(wn[n]PI/L*x[0]), cos(wn[n]PI/L*x[1]), ..., cos(wn[n]PI/L*x[nChan])},
2633  //          where wn[n] denotes waveNumbers[n] (1 <= n <= waveNumbers.size()).
2634  std::vector<std::vector<double> > xArray;
2635  if (hasConstantTerm) {
2636    std::vector<double> xu;
2637    for (int j = 0; j < nChan; ++j) {
2638      xu.push_back(1.0);
2639    }
2640    xArray.push_back(xu);
2641  }
2642  for (uInt i = (hasConstantTerm ? 1 : 0); i < nWaves.size(); ++i) {
2643    double xFactor = baseXFactor*(double)nWaves[i];
2644    std::vector<double> xs, xc;
2645    xs.clear();
2646    xc.clear();
2647    for (int j = 0; j < nChan; ++j) {
2648      xs.push_back(sin(xFactor*(double)j));
2649      xc.push_back(cos(xFactor*(double)j));
2650    }
2651    xArray.push_back(xs);
2652    xArray.push_back(xc);
2653  }
2654
2655  std::vector<double> z1, r1, residual;
2656  for (int i = 0; i < nChan; ++i) {
2657    z1.push_back((double)data[i]);
2658    r1.push_back(0.0);
2659    residual.push_back(0.0);
2660  }
2661
2662  for (int nClip = 0; nClip < nIterClip+1; ++nClip) {
2663    // xMatrix : horizontal concatenation of
2664    //           the least-sq. matrix (left) and an
2665    //           identity matrix (right).
2666    // the right part is used to calculate the inverse matrix of the left part.
2667    double xMatrix[nDOF][2*nDOF];
2668    double zMatrix[nDOF];
2669    for (int i = 0; i < nDOF; ++i) {
2670      for (int j = 0; j < 2*nDOF; ++j) {
2671        xMatrix[i][j] = 0.0;
2672      }
2673      xMatrix[i][nDOF+i] = 1.0;
2674      zMatrix[i] = 0.0;
2675    }
2676
2677    int nUseData = 0;
2678    for (int k = 0; k < nChan; ++k) {
2679      if (maskArray[k] == 0) continue;
2680
2681      for (int i = 0; i < nDOF; ++i) {
2682        for (int j = i; j < nDOF; ++j) {
2683          xMatrix[i][j] += xArray[i][k] * xArray[j][k];
2684        }
2685        zMatrix[i] += z1[k] * xArray[i][k];
2686      }
2687
2688      nUseData++;
2689    }
2690
2691    if (nUseData < 1) {
2692        throw(AipsError("all channels clipped or masked. can't execute fitting anymore."));     
2693    }
2694
2695    for (int i = 0; i < nDOF; ++i) {
2696      for (int j = 0; j < i; ++j) {
2697        xMatrix[i][j] = xMatrix[j][i];
2698      }
2699    }
2700
2701    std::vector<double> invDiag;
2702    for (int i = 0; i < nDOF; ++i) {
2703      invDiag.push_back(1.0/xMatrix[i][i]);
2704      for (int j = 0; j < nDOF; ++j) {
2705        xMatrix[i][j] *= invDiag[i];
2706      }
2707    }
2708
2709    for (int k = 0; k < nDOF; ++k) {
2710      for (int i = 0; i < nDOF; ++i) {
2711        if (i != k) {
2712          double factor1 = xMatrix[k][k];
2713          double factor2 = xMatrix[i][k];
2714          for (int j = k; j < 2*nDOF; ++j) {
2715            xMatrix[i][j] *= factor1;
2716            xMatrix[i][j] -= xMatrix[k][j]*factor2;
2717            xMatrix[i][j] /= factor1;
2718          }
2719        }
2720      }
2721      double xDiag = xMatrix[k][k];
2722      for (int j = k; j < 2*nDOF; ++j) {
2723        xMatrix[k][j] /= xDiag;
2724      }
2725    }
2726   
2727    for (int i = 0; i < nDOF; ++i) {
2728      for (int j = 0; j < nDOF; ++j) {
2729        xMatrix[i][nDOF+j] *= invDiag[j];
2730      }
2731    }
2732    //compute a vector y which consists of the coefficients of the sinusoids forming the
2733    //best-fit curves (a0,s1,c1,s2,c2,...), where a0 is constant and s* and c* are of sine
2734    //and cosine functions, respectively.
2735    std::vector<double> y;
2736    params.clear();
2737    for (int i = 0; i < nDOF; ++i) {
2738      y.push_back(0.0);
2739      for (int j = 0; j < nDOF; ++j) {
2740        y[i] += xMatrix[i][nDOF+j]*zMatrix[j];
2741      }
2742      params.push_back(y[i]);
2743    }
2744
2745    for (int i = 0; i < nChan; ++i) {
2746      r1[i] = y[0];
2747      for (int j = 1; j < nDOF; ++j) {
2748        r1[i] += y[j]*xArray[j][i];
2749      }
2750      residual[i] = z1[i] - r1[i];
2751    }
2752
2753    if ((nClip == nIterClip) || (thresClip <= 0.0)) {
2754      break;
2755    } else {
2756      double stdDev = 0.0;
2757      for (int i = 0; i < nChan; ++i) {
2758        stdDev += residual[i]*residual[i]*(double)maskArray[i];
2759      }
2760      stdDev = sqrt(stdDev/(double)nData);
2761     
2762      double thres = stdDev * thresClip;
2763      int newNData = 0;
2764      for (int i = 0; i < nChan; ++i) {
2765        if (abs(residual[i]) >= thres) {
2766          maskArray[i] = 0;
2767        }
2768        if (maskArray[i] > 0) {
2769          newNData++;
2770        }
2771      }
2772      if (newNData == nData) {
2773        break; //no more flag to add. iteration stops.
2774      } else {
2775        nData = newNData;
2776      }
2777    }
2778  }
2779
2780  nClipped = initNData - nData;
2781
2782  std::vector<float> result;
2783  if (getResidual) {
2784    for (int i = 0; i < nChan; ++i) {
2785      result.push_back((float)residual[i]);
2786    }
2787  } else {
2788    for (int i = 0; i < nChan; ++i) {
2789      result.push_back((float)r1[i]);
2790    }
2791  }
2792
2793  return result;
2794}
2795
2796void Scantable::fitBaseline(const std::vector<bool>& mask, int whichrow, Fitter& fitter)
2797{
2798  std::vector<double> dAbcissa = getAbcissa(whichrow);
2799  std::vector<float> abcissa;
2800  for (uInt i = 0; i < dAbcissa.size(); ++i) {
2801    abcissa.push_back((float)dAbcissa[i]);
2802  }
2803  std::vector<float> spec = getSpectrum(whichrow);
2804
2805  fitter.setData(abcissa, spec, mask);
2806  fitter.lfit();
2807}
2808
2809std::vector<bool> Scantable::getCompositeChanMask(int whichrow, const std::vector<bool>& inMask)
2810{
2811  std::vector<bool> mask = getMask(whichrow);
2812  uInt maskSize = mask.size();
2813  if (maskSize != inMask.size()) {
2814    throw(AipsError("mask sizes are not the same."));
2815  }
2816  for (uInt i = 0; i < maskSize; ++i) {
2817    mask[i] = mask[i] && inMask[i];
2818  }
2819
2820  return mask;
2821}
2822
2823/*
2824std::vector<bool> Scantable::getCompositeChanMask(int whichrow, const std::vector<bool>& inMask, const std::vector<int>& edge, const int minEdgeSize, STLineFinder& lineFinder)
2825{
2826  int edgeSize = edge.size();
2827  std::vector<int> currentEdge;
2828  if (edgeSize >= 2) {
2829      int idx = 0;
2830      if (edgeSize > 2) {
2831        if (edgeSize < minEdgeSize) {
2832          throw(AipsError("Length of edge element info is less than that of IFs"));
2833        }
2834        idx = 2 * getIF(whichrow);
2835      }
2836      currentEdge.push_back(edge[idx]);
2837      currentEdge.push_back(edge[idx+1]);
2838  } else {
2839    throw(AipsError("Wrong length of edge element"));
2840  }
2841
2842  lineFinder.setData(getSpectrum(whichrow));
2843  lineFinder.findLines(getCompositeChanMask(whichrow, inMask), currentEdge, whichrow);
2844
2845  return lineFinder.getMask();
2846}
2847*/
2848
2849/* for poly. the variations of outputFittingResult() should be merged into one eventually (2011/3/10 WK)  */
2850void Scantable::outputFittingResult(bool outLogger, bool outTextFile, const std::vector<bool>& chanMask, int whichrow, const casa::String& coordInfo, bool hasSameNchan, ofstream& ofs, const casa::String& funcName, Fitter& fitter)
2851{
2852  if (outLogger || outTextFile) {
2853    std::vector<float> params = fitter.getParameters();
2854    std::vector<bool>  fixed  = fitter.getFixedParameters();
2855    float rms = getRms(chanMask, whichrow);
2856    String masklist = getMaskRangeList(chanMask, whichrow, coordInfo, hasSameNchan);
2857
2858    if (outLogger) {
2859      LogIO ols(LogOrigin("Scantable", funcName, WHERE));
2860      ols << formatBaselineParams(params, fixed, rms, -1, masklist, whichrow, false) << LogIO::POST ;
2861    }
2862    if (outTextFile) {
2863      ofs << formatBaselineParams(params, fixed, rms, -1, masklist, whichrow, true) << flush;
2864    }
2865  }
2866}
2867
2868/* for cspline. will be merged once cspline is available in fitter (2011/3/10 WK) */
2869void Scantable::outputFittingResult(bool outLogger, bool outTextFile, const std::vector<bool>& chanMask, int whichrow, const casa::String& coordInfo, bool hasSameNchan, ofstream& ofs, const casa::String& funcName, const std::vector<int>& edge, const std::vector<float>& params, const int nClipped)
2870{
2871  if (outLogger || outTextFile) {
2872    float rms = getRms(chanMask, whichrow);
2873    String masklist = getMaskRangeList(chanMask, whichrow, coordInfo, hasSameNchan);
2874    std::vector<bool> fixed;
2875    fixed.clear();
2876
2877    if (outLogger) {
2878      LogIO ols(LogOrigin("Scantable", funcName, WHERE));
2879      ols << formatPiecewiseBaselineParams(edge, params, fixed, rms, nClipped, masklist, whichrow, false) << LogIO::POST ;
2880    }
2881    if (outTextFile) {
2882      ofs << formatPiecewiseBaselineParams(edge, params, fixed, rms, nClipped, masklist, whichrow, true) << flush;
2883    }
2884  }
2885}
2886
2887/* for sinusoid. will be merged once sinusoid is available in fitter (2011/3/10 WK) */
2888void Scantable::outputFittingResult(bool outLogger, bool outTextFile, const std::vector<bool>& chanMask, int whichrow, const casa::String& coordInfo, bool hasSameNchan, ofstream& ofs, const casa::String& funcName, const std::vector<float>& params, const int nClipped)
2889{
2890  if (outLogger || outTextFile) {
2891    float rms = getRms(chanMask, whichrow);
2892    String masklist = getMaskRangeList(chanMask, whichrow, coordInfo, hasSameNchan);
2893    std::vector<bool> fixed;
2894    fixed.clear();
2895
2896    if (outLogger) {
2897      LogIO ols(LogOrigin("Scantable", funcName, WHERE));
2898      ols << formatBaselineParams(params, fixed, rms, nClipped, masklist, whichrow, false) << LogIO::POST ;
2899    }
2900    if (outTextFile) {
2901      ofs << formatBaselineParams(params, fixed, rms, nClipped, masklist, whichrow, true) << flush;
2902    }
2903  }
2904}
2905
2906void Scantable::parseProgressInfo(const std::string& progressInfo, bool& showProgress, int& minNRow)
2907{
2908  int idxDelimiter = progressInfo.find(",");
2909  if (idxDelimiter < 0) {
2910    throw(AipsError("wrong value in 'showprogress' parameter")) ;
2911  }
2912  showProgress = (progressInfo.substr(0, idxDelimiter) == "true");
2913  std::istringstream is(progressInfo.substr(idxDelimiter+1));
2914  is >> minNRow;
2915}
2916
2917void Scantable::showProgressOnTerminal(const int nProcessed, const int nTotal, const bool showProgress, const int nTotalThreshold)
2918{
2919  if (showProgress && (nTotal >= nTotalThreshold)) {
2920    int nInterval = int(floor(double(nTotal)/100.0));
2921    if (nInterval == 0) nInterval++;
2922
2923    if (nProcessed % nInterval == 0) {
2924      printf("\r");                          //go to the head of line
2925      printf("\x1b[31m\x1b[1m");             //set red color, highlighted
2926      printf("[%3d%%]", (int)(100.0*(double(nProcessed+1))/(double(nTotal))) );
2927      printf("\x1b[39m\x1b[0m");             //set default attributes
2928      fflush(NULL);
2929    }
2930
2931    if (nProcessed == nTotal - 1) {
2932      printf("\r\x1b[K");                    //clear
2933      fflush(NULL);
2934    }
2935
2936  }
2937}
2938
2939std::vector<float> Scantable::execFFT(const int whichrow, const std::vector<bool>& inMask, bool getRealImag, bool getAmplitudeOnly)
2940{
2941  std::vector<bool>  mask = getMask(whichrow);
2942
2943  if (inMask.size() > 0) {
2944    uInt maskSize = mask.size();
2945    if (maskSize != inMask.size()) {
2946      throw(AipsError("mask sizes are not the same."));
2947    }
2948    for (uInt i = 0; i < maskSize; ++i) {
2949      mask[i] = mask[i] && inMask[i];
2950    }
2951  }
2952
2953  Vector<Float> spec = getSpectrum(whichrow);
2954  mathutil::doZeroOrderInterpolation(spec, mask);
2955
2956  FFTServer<Float,Complex> ffts;
2957  Vector<Complex> fftres;
2958  ffts.fft0(fftres, spec);
2959
2960  std::vector<float> res;
2961  float norm = float(2.0/double(spec.size()));
2962
2963  if (getRealImag) {
2964    for (uInt i = 0; i < fftres.size(); ++i) {
2965      res.push_back(real(fftres[i])*norm);
2966      res.push_back(imag(fftres[i])*norm);
2967    }
2968  } else {
2969    for (uInt i = 0; i < fftres.size(); ++i) {
2970      res.push_back(abs(fftres[i])*norm);
2971      if (!getAmplitudeOnly) res.push_back(arg(fftres[i]));
2972    }
2973  }
2974
2975  return res;
2976}
2977
2978
2979float Scantable::getRms(const std::vector<bool>& mask, int whichrow)
2980{
2981  Vector<Float> spec;
2982  specCol_.get(whichrow, spec);
2983
2984  float mean = 0.0;
2985  float smean = 0.0;
2986  int n = 0;
2987  for (uInt i = 0; i < spec.nelements(); ++i) {
2988    if (mask[i]) {
2989      mean += spec[i];
2990      smean += spec[i]*spec[i];
2991      n++;
2992    }
2993  }
2994
2995  mean /= (float)n;
2996  smean /= (float)n;
2997
2998  return sqrt(smean - mean*mean);
2999}
3000
3001
3002std::string Scantable::formatBaselineParamsHeader(int whichrow, const std::string& masklist, bool verbose) const
3003{
3004  ostringstream oss;
3005
3006  if (verbose) {
3007    oss <<  " Scan[" << getScan(whichrow)  << "]";
3008    oss <<  " Beam[" << getBeam(whichrow)  << "]";
3009    oss <<    " IF[" << getIF(whichrow)    << "]";
3010    oss <<   " Pol[" << getPol(whichrow)   << "]";
3011    oss << " Cycle[" << getCycle(whichrow) << "]: " << endl;
3012    oss << "Fitter range = " << masklist << endl;
3013    oss << "Baseline parameters" << endl;
3014    oss << flush;
3015  }
3016
3017  return String(oss);
3018}
3019
3020std::string Scantable::formatBaselineParamsFooter(float rms, int nClipped, bool verbose) const
3021{
3022  ostringstream oss;
3023
3024  if (verbose) {
3025    oss << "Results of baseline fit" << endl;
3026    oss << "  rms = " << setprecision(6) << rms << endl;
3027    if (nClipped >= 0) {
3028      oss << "  Number of clipped channels = " << nClipped << endl;
3029    }
3030    for (int i = 0; i < 60; ++i) {
3031      oss << "-";
3032    }
3033    oss << endl;
3034    oss << flush;
3035  }
3036
3037  return String(oss);
3038}
3039
3040std::string Scantable::formatBaselineParams(const std::vector<float>& params,
3041                                            const std::vector<bool>& fixed,
3042                                            float rms,
3043                                            int nClipped,
3044                                            const std::string& masklist,
3045                                            int whichrow,
3046                                            bool verbose,
3047                                            int start, int count,
3048                                            bool resetparamid) const
3049{
3050  int nParam = (int)(params.size());
3051
3052  if (nParam < 1) {
3053    return("  Not fitted");
3054  } else {
3055
3056    ostringstream oss;
3057    oss << formatBaselineParamsHeader(whichrow, masklist, verbose);
3058
3059    if (start < 0) start = 0;
3060    if (count < 0) count = nParam;
3061    int end = start + count;
3062    if (end > nParam) end = nParam;
3063    int paramidoffset = (resetparamid) ? (-start) : 0;
3064
3065    for (int i = start; i < end; ++i) {
3066      if (i > start) {
3067        oss << ",";
3068      }
3069      std::string sFix = ((fixed.size() > 0) && (fixed[i]) && verbose) ? "(fixed)" : "";
3070      oss << "  p" << (i+paramidoffset) << sFix << "= " << right << setw(13) << setprecision(6) << params[i];
3071    }
3072
3073    oss << endl;
3074    oss << formatBaselineParamsFooter(rms, nClipped, verbose);
3075
3076    return String(oss);
3077  }
3078
3079}
3080
3081  std::string Scantable::formatPiecewiseBaselineParams(const std::vector<int>& ranges, const std::vector<float>& params, const std::vector<bool>& fixed, float rms, int nClipped, const std::string& masklist, int whichrow, bool verbose) const
3082{
3083  int nOutParam = (int)(params.size());
3084  int nPiece = (int)(ranges.size()) - 1;
3085
3086  if (nOutParam < 1) {
3087    return("  Not fitted");
3088  } else if (nPiece < 0) {
3089    return formatBaselineParams(params, fixed, rms, nClipped, masklist, whichrow, verbose);
3090  } else if (nPiece < 1) {
3091    return("  Bad count of the piece edge info");
3092  } else if (nOutParam % nPiece != 0) {
3093    return("  Bad count of the output baseline parameters");
3094  } else {
3095
3096    int nParam = nOutParam / nPiece;
3097
3098    ostringstream oss;
3099    oss << formatBaselineParamsHeader(whichrow, masklist, verbose);
3100
3101    stringstream ss;
3102    ss << ranges[nPiece] << flush;
3103    int wRange = ss.str().size() * 2 + 5;
3104
3105    for (int i = 0; i < nPiece; ++i) {
3106      ss.str("");
3107      ss << "  [" << ranges[i] << "," << (ranges[i+1]-1) << "]";
3108      oss << left << setw(wRange) << ss.str();
3109      oss << formatBaselineParams(params, fixed, rms, 0, masklist, whichrow, false, i*nParam, nParam, true);
3110    }
3111
3112    oss << formatBaselineParamsFooter(rms, nClipped, verbose);
3113
3114    return String(oss);
3115  }
3116
3117}
3118
3119bool Scantable::hasSameNchanOverIFs()
3120{
3121  int nIF = nif(-1);
3122  int nCh;
3123  int totalPositiveNChan = 0;
3124  int nPositiveNChan = 0;
3125
3126  for (int i = 0; i < nIF; ++i) {
3127    nCh = nchan(i);
3128    if (nCh > 0) {
3129      totalPositiveNChan += nCh;
3130      nPositiveNChan++;
3131    }
3132  }
3133
3134  return (totalPositiveNChan == (nPositiveNChan * nchan(0)));
3135}
3136
3137std::string Scantable::getMaskRangeList(const std::vector<bool>& mask, int whichrow, const casa::String& coordInfo, bool hasSameNchan, bool verbose)
3138{
3139  if (mask.size() < 2) {
3140    throw(AipsError("The mask elements should be > 1"));
3141  }
3142  int IF = getIF(whichrow);
3143  if (mask.size() != (uInt)nchan(IF)) {
3144    throw(AipsError("Number of channels in scantable != number of mask elements"));
3145  }
3146
3147  if (verbose) {
3148    LogIO logOs(LogOrigin("Scantable", "getMaskRangeList()", WHERE));
3149    logOs << LogIO::WARN << "The current mask window unit is " << coordInfo;
3150    if (!hasSameNchan) {
3151      logOs << endl << "This mask is only valid for IF=" << IF;
3152    }
3153    logOs << LogIO::POST;
3154  }
3155
3156  std::vector<double> abcissa = getAbcissa(whichrow);
3157  std::vector<int> edge = getMaskEdgeIndices(mask);
3158
3159  ostringstream oss;
3160  oss.setf(ios::fixed);
3161  oss << setprecision(1) << "[";
3162  for (uInt i = 0; i < edge.size(); i+=2) {
3163    if (i > 0) oss << ",";
3164    oss << "[" << (float)abcissa[edge[i]] << "," << (float)abcissa[edge[i+1]] << "]";
3165  }
3166  oss << "]" << flush;
3167
3168  return String(oss);
3169}
3170
3171std::vector<int> Scantable::getMaskEdgeIndices(const std::vector<bool>& mask)
3172{
3173  if (mask.size() < 2) {
3174    throw(AipsError("The mask elements should be > 1"));
3175  }
3176
3177  std::vector<int> out, startIndices, endIndices;
3178  int maskSize = mask.size();
3179
3180  startIndices.clear();
3181  endIndices.clear();
3182
3183  if (mask[0]) {
3184    startIndices.push_back(0);
3185  }
3186  for (int i = 1; i < maskSize; ++i) {
3187    if ((!mask[i-1]) && mask[i]) {
3188      startIndices.push_back(i);
3189    } else if (mask[i-1] && (!mask[i])) {
3190      endIndices.push_back(i-1);
3191    }
3192  }
3193  if (mask[maskSize-1]) {
3194    endIndices.push_back(maskSize-1);
3195  }
3196
3197  if (startIndices.size() != endIndices.size()) {
3198    throw(AipsError("Inconsistent Mask Size: bad data?"));
3199  }
3200  for (uInt i = 0; i < startIndices.size(); ++i) {
3201    if (startIndices[i] > endIndices[i]) {
3202      throw(AipsError("Mask start index > mask end index"));
3203    }
3204  }
3205
3206  out.clear();
3207  for (uInt i = 0; i < startIndices.size(); ++i) {
3208    out.push_back(startIndices[i]);
3209    out.push_back(endIndices[i]);
3210  }
3211
3212  return out;
3213}
3214
3215vector<float> Scantable::getTsysSpectrum( int whichrow ) const
3216{
3217  Vector<Float> tsys( tsysCol_(whichrow) ) ;
3218  vector<float> stlTsys ;
3219  tsys.tovector( stlTsys ) ;
3220  return stlTsys ;
3221}
3222
3223
3224}
3225//namespace asap
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