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G4NeutronHPVector.cc
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25 //
26 // neutron_hp -- source file
27 // J.P. Wellisch, Nov-1996
28 // A prototype of the low energy neutron transport model.
29 //
30 // 070523 bug fix for G4FPE_DEBUG on by A. Howard ( and T. Koi)
31 // 080808 bug fix in Sample() and GetXsec() by T. Koi
32 //
33 #include "G4NeutronHPVector.hh"
34 #include "G4SystemOfUnits.hh"
35 
36  // if the ranges do not match, constant extrapolation is used.
38  {
39  G4NeutronHPVector * result = new G4NeutronHPVector;
40  G4int j=0;
41  G4double x;
42  G4double y;
43  G4int running = 0;
44  for(G4int i=0; i<left.GetVectorLength(); i++)
45  {
46  while(j<right.GetVectorLength())
47  {
48  if(right.GetX(j)<left.GetX(i)*1.001)
49  {
50  x = right.GetX(j);
51  y = right.GetY(j)+left.GetY(x);
52  result->SetData(running++, x, y);
53  j++;
54  }
55  //else if(std::abs((right.GetX(j)-left.GetX(i))/(left.GetX(i)+right.GetX(j)))>0.001)
56  else if( left.GetX(i)+right.GetX(j) == 0
57  || std::abs((right.GetX(j)-left.GetX(i))/(left.GetX(i)+right.GetX(j))) > 0.001 )
58  {
59  x = left.GetX(i);
60  y = left.GetY(i)+right.GetY(x);
61  result->SetData(running++, x, y);
62  break;
63  }
64  else
65  {
66  break;
67  }
68  }
69  if(j==right.GetVectorLength())
70  {
71  x = left.GetX(i);
72  y = left.GetY(i)+right.GetY(x);
73  result->SetData(running++, x, y);
74  }
75  }
76  result->ThinOut(0.02);
77  return *result;
78  }
79 
81  {
82  theData = new G4NeutronHPDataPoint[20];
83  nPoints=20;
84  nEntries=0;
85  Verbose=0;
86  theIntegral=0;
87  totalIntegral=-1;
88  isFreed = 0;
89  maxValue = -DBL_MAX;
90  the15percentBorderCash = -DBL_MAX;
91  the50percentBorderCash = -DBL_MAX;
92  label = -DBL_MAX;
93 
94  }
95 
97  {
98  nPoints=std::max(n, 20);
99  theData = new G4NeutronHPDataPoint[nPoints];
100  nEntries=0;
101  Verbose=0;
102  theIntegral=0;
103  totalIntegral=-1;
104  isFreed = 0;
105  maxValue = -DBL_MAX;
106  the15percentBorderCash = -DBL_MAX;
107  the50percentBorderCash = -DBL_MAX;
108  }
109 
111  {
112 // if(Verbose==1)G4cout <<"G4NeutronHPVector::~G4NeutronHPVector"<<G4endl;
113  delete [] theData;
114 // if(Verbose==1)G4cout <<"Vector: delete theData"<<G4endl;
115  delete [] theIntegral;
116 // if(Verbose==1)G4cout <<"Vector: delete theIntegral"<<G4endl;
117  isFreed = 1;
118  }
119 
122  {
123  if(&right == this) return *this;
124 
125  G4int i;
126 
127  totalIntegral = right.totalIntegral;
128  if(right.theIntegral!=0) theIntegral = new G4double[right.nEntries];
129  for(i=0; i<right.nEntries; i++)
130  {
131  SetPoint(i, right.GetPoint(i)); // copy theData
132  if(right.theIntegral!=0) theIntegral[i] = right.theIntegral[i];
133  }
134  theManager = right.theManager;
135  label = right.label;
136 
137  Verbose = right.Verbose;
138  the15percentBorderCash = right.the15percentBorderCash;
139  the50percentBorderCash = right.the50percentBorderCash;
140  theHash = right.theHash;
141  return *this;
142  }
143 
144 
146  {
147  if(nEntries == 0) return 0;
148  if(!theHash.Prepared()) Hash();
149  G4int min = theHash.GetMinIndex(e);
150  G4int i;
151  for(i=min ; i<nEntries; i++)
152  {
153  //if(theData[i].GetX()>e) break;
154  if(theData[i].GetX() >= e) break;
155  }
156  G4int low = i-1;
157  G4int high = i;
158  if(i==0)
159  {
160  low = 0;
161  high = 1;
162  }
163  else if(i==nEntries)
164  {
165  low = nEntries-2;
166  high = nEntries-1;
167  }
168  G4double y;
169  if(e<theData[nEntries-1].GetX())
170  {
171  // Protect against doubled-up x values
172  //if( (theData[high].GetX()-theData[low].GetX())/theData[high].GetX() < 0.000001)
173  if ( theData[high].GetX() !=0
174  //080808 TKDB
175  //&&( theData[high].GetX()-theData[low].GetX())/theData[high].GetX() < 0.000001)
176  &&( std::abs( (theData[high].GetX()-theData[low].GetX())/theData[high].GetX() ) < 0.000001 ) )
177  {
178  y = theData[low].GetY();
179  }
180  else
181  {
182  y = theInt.Interpolate(theManager.GetScheme(high), e,
183  theData[low].GetX(), theData[high].GetX(),
184  theData[low].GetY(), theData[high].GetY());
185  }
186  }
187  else
188  {
189  y=theData[nEntries-1].GetY();
190  }
191  return y;
192  }
193 
195  {
196  G4cout << nEntries<<G4endl;
197  for(G4int i=0; i<nEntries; i++)
198  {
199  G4cout << theData[i].GetX()<<" ";
200  G4cout << theData[i].GetY()<<" ";
201 // if (i!=1&&i==5*(i/5)) G4cout << G4endl;
202  G4cout << G4endl;
203  }
204  G4cout << G4endl;
205  }
206 
207  void G4NeutronHPVector::Check(G4int i)
208  {
209  if(i>nEntries) throw G4HadronicException(__FILE__, __LINE__, "Skipped some index numbers in G4NeutronHPVector");
210  if(i==nPoints)
211  {
212  nPoints = static_cast<G4int>(1.2*nPoints);
213  G4NeutronHPDataPoint * buff = new G4NeutronHPDataPoint[nPoints];
214  for (G4int j=0; j<nEntries; j++) buff[j] = theData[j];
215  delete [] theData;
216  theData = buff;
217  }
218  if(i==nEntries) nEntries=i+1;
219  }
220 
224  {
225  // interpolate between labels according to aScheme, cut at aValue,
226  // continue in unknown areas by substraction of the last difference.
227 
228  CleanUp();
229  G4int s_tmp = 0, n=0, m_tmp=0;
230  G4NeutronHPVector * tmp;
231  G4int a = s_tmp, p = n, t;
232  while ( a<active->GetVectorLength() )
233  {
234  if(active->GetEnergy(a) <= passive->GetEnergy(p))
235  {
236  G4double xa = active->GetEnergy(a);
237  G4double yy = theInt.Interpolate(aScheme, aValue, active->GetLabel(), passive->GetLabel(),
238  active->GetXsec(a), passive->GetXsec(xa));
239  SetData(m_tmp, xa, yy);
240  theManager.AppendScheme(m_tmp, active->GetScheme(a));
241  m_tmp++;
242  a++;
243  G4double xp = passive->GetEnergy(p);
244  //if( std::abs(std::abs(xp-xa)/xa)<0.0000001&&a<active->GetVectorLength() )
245  if ( xa != 0
246  && std::abs(std::abs(xp-xa)/xa) < 0.0000001
247  && a < active->GetVectorLength() )
248  {
249  p++;
250  tmp = active; t=a;
251  active = passive; a=p;
252  passive = tmp; p=t;
253  }
254  } else {
255  tmp = active; t=a;
256  active = passive; a=p;
257  passive = tmp; p=t;
258  }
259  }
260 
261  G4double deltaX = passive->GetXsec(GetEnergy(m_tmp-1)) - GetXsec(m_tmp-1);
262  while (p!=passive->GetVectorLength()&&passive->GetEnergy(p)<=aValue)
263  {
264  G4double anX;
265  anX = passive->GetXsec(p)-deltaX;
266  if(anX>0)
267  {
268  //if(std::abs(GetEnergy(m-1)-passive->GetEnergy(p))/passive->GetEnergy(p)>0.0000001)
269  if ( passive->GetEnergy(p) == 0
270  || std::abs(GetEnergy(m_tmp-1)-passive->GetEnergy(p))/passive->GetEnergy(p) > 0.0000001 )
271  {
272  SetData(m_tmp, passive->GetEnergy(p), anX);
273  theManager.AppendScheme(m_tmp++, passive->GetScheme(p));
274  }
275  }
276  p++;
277  }
278  // Rebuild the Hash;
279  if(theHash.Prepared())
280  {
281  ReHash();
282  }
283  }
284 
286  {
287  // anything in there?
288  if(GetVectorLength()==0) return;
289  // make the new vector
290  G4NeutronHPDataPoint * aBuff = new G4NeutronHPDataPoint[nPoints];
291  G4double x, x1, x2, y, y1, y2;
292  G4int count = 0, current = 2, start = 1;
293 
294  // First element always goes and is never tested.
295  aBuff[0] = theData[0];
296 
297  // Find the rest
298  while(current < GetVectorLength())
299  {
300  x1=aBuff[count].GetX();
301  y1=aBuff[count].GetY();
302  x2=theData[current].GetX();
303  y2=theData[current].GetY();
304  for(G4int j=start; j<current; j++)
305  {
306  x = theData[j].GetX();
307  if(x1-x2 == 0) y = (y2+y1)/2.;
308  else y = theInt.Lin(x, x1, x2, y1, y2);
309  if (std::abs(y-theData[j].GetY())>precision*y)
310  {
311  aBuff[++count] = theData[current-1]; // for this one, everything was fine
312  start = current; // the next candidate
313  break;
314  }
315  }
316  current++ ;
317  }
318  // The last one also always goes, and is never tested.
319  aBuff[++count] = theData[GetVectorLength()-1];
320  delete [] theData;
321  theData = aBuff;
322  nEntries = count+1;
323 
324  // Rebuild the Hash;
325  if(theHash.Prepared())
326  {
327  ReHash();
328  }
329  }
330 
331  G4bool G4NeutronHPVector::IsBlocked(G4double aX)
332  {
333  G4bool result = false;
334  std::vector<G4double>::iterator i;
335  for(i=theBlocked.begin(); i!=theBlocked.end(); i++)
336  {
337  G4double aBlock = *i;
338  if(std::abs(aX-aBlock) < 0.1*MeV)
339  {
340  result = true;
341  theBlocked.erase(i);
342  break;
343  }
344  }
345  return result;
346  }
347 
348  G4double G4NeutronHPVector::Sample() // Samples X according to distribution Y
349  {
350  G4double result;
351  G4int j;
352  for(j=0; j<GetVectorLength(); j++)
353  {
354  if(GetY(j)<0) SetY(j, 0);
355  }
356 
357  if(theBuffered.size() !=0 && G4UniformRand()<0.5)
358  {
359  result = theBuffered[0];
360  theBuffered.erase(theBuffered.begin());
361  if(result < GetX(GetVectorLength()-1) ) return result;
362  }
363  if(GetVectorLength()==1)
364  {
365  result = theData[0].GetX();
366  }
367  else
368  {
369  if(theIntegral==0) { IntegrateAndNormalise(); }
370  do
371  {
372 //080808
373 /*
374  G4double rand;
375  G4double value, test, baseline;
376  baseline = theData[GetVectorLength()-1].GetX()-theData[0].GetX();
377  do
378  {
379  value = baseline*G4UniformRand();
380  value += theData[0].GetX();
381  test = GetY(value)/maxValue;
382  rand = G4UniformRand();
383  }
384  //while(test<rand);
385  while( test < rand && test > 0 );
386  result = value;
387 */
388  G4double rand;
390  do
391  {
392  rand = G4UniformRand();
393  G4int ibin = -1;
394  for ( G4int i = 0 ; i < GetVectorLength() ; i++ )
395  {
396  if ( rand < theIntegral[i] )
397  {
398  ibin = i;
399  break;
400  }
401  }
402  if ( ibin < 0 ) G4cout << "TKDB 080807 " << rand << G4endl;
403  // result
404  rand = G4UniformRand();
405  G4double x1, x2;
406  if ( ibin == 0 )
407  {
408  x1 = theData[ ibin ].GetX();
409  value = x1;
410  break;
411  }
412  else
413  {
414  x1 = theData[ ibin-1 ].GetX();
415  }
416 
417  x2 = theData[ ibin ].GetX();
418  value = rand * ( x2 - x1 ) + x1;
419  //***********************************************************************
420  /*
421  test = GetY ( value ) / std::max ( GetY( ibin-1 ) , GetY ( ibin ) );
422  */
423  //***********************************************************************
424  //EMendoza - Always linear interpolation:
425  G4double y1=theData[ ibin-1 ].GetY();
426  G4double y2=theData[ ibin ].GetY();
427  G4double mval=(y2-y1)/(x2-x1);
428  G4double bval=y1-mval*x1;
429  test =(mval*value+bval)/std::max ( GetY( ibin-1 ) , GetY ( ibin ) );
430  //***********************************************************************
431  }
432  while ( G4UniformRand() > test );
433  result = value;
434 //080807
435  }
436  while(IsBlocked(result));
437  }
438  return result;
439  }
440 
442  {
443  if(the15percentBorderCash>-DBL_MAX/2.) return the15percentBorderCash;
444  G4double result;
445  if(GetVectorLength()==1)
446  {
447  result = theData[0].GetX();
448  the15percentBorderCash = result;
449  }
450  else
451  {
452  if(theIntegral==0) { IntegrateAndNormalise(); }
453  G4int i;
454  result = theData[GetVectorLength()-1].GetX();
455  for(i=0;i<GetVectorLength();i++)
456  {
457  if(theIntegral[i]/theIntegral[GetVectorLength()-1]>0.15)
458  {
459  result = theData[std::min(i+1, GetVectorLength()-1)].GetX();
460  the15percentBorderCash = result;
461  break;
462  }
463  }
464  the15percentBorderCash = result;
465  }
466  return result;
467  }
468 
470  {
471  if(the50percentBorderCash>-DBL_MAX/2.) return the50percentBorderCash;
472  G4double result;
473  if(GetVectorLength()==1)
474  {
475  result = theData[0].GetX();
476  the50percentBorderCash = result;
477  }
478  else
479  {
480  if(theIntegral==0) { IntegrateAndNormalise(); }
481  G4int i;
482  G4double x = 0.5;
483  result = theData[GetVectorLength()-1].GetX();
484  for(i=0;i<GetVectorLength();i++)
485  {
486  if(theIntegral[i]/theIntegral[GetVectorLength()-1]>x)
487  {
488  G4int it;
489  it = i;
490  if(it == GetVectorLength()-1)
491  {
492  result = theData[GetVectorLength()-1].GetX();
493  }
494  else
495  {
496  G4double x1, x2, y1, y2;
497  x1 = theIntegral[i-1]/theIntegral[GetVectorLength()-1];
498  x2 = theIntegral[i]/theIntegral[GetVectorLength()-1];
499  y1 = theData[i-1].GetX();
500  y2 = theData[i].GetX();
501  result = theLin.Lin(x, x1, x2, y1, y2);
502  }
503  the50percentBorderCash = result;
504  break;
505  }
506  }
507  the50percentBorderCash = result;
508  }
509  return result;
510  }
G4double GetEnergy(G4int i) const
G4double Get50percentBorder()
G4double GetY(G4double x)
G4int GetVectorLength() const
void SetPoint(G4int i, const G4NeutronHPDataPoint &it)
G4int GetMinIndex(G4double e) const
void ThinOut(G4double precision)
const char * p
Definition: xmltok.h:285
BasicVector3D< float > operator+(const BasicVector3D< float > &v)
void Merge(G4NeutronHPVector *active, G4NeutronHPVector *passive)
G4double GetX(G4int i) const
void SetData(G4int i, G4double x, G4double y)
int G4int
Definition: G4Types.hh:78
G4double Interpolate(G4InterpolationScheme aScheme, G4double x, G4double x1, G4double x2, G4double y1, G4double y2) const
G4InterpolationScheme GetScheme(G4int anIndex)
void AppendScheme(G4int aPoint, const G4InterpolationScheme &aScheme)
void SetY(G4int i, G4double x)
#define G4UniformRand()
Definition: Randomize.hh:87
G4GLOB_DLL std::ostream G4cout
G4double Get15percentBorder()
bool G4bool
Definition: G4Types.hh:79
G4InterpolationScheme GetScheme(G4int index) const
const G4int n
G4InterpolationScheme
G4double GetXsec(G4int i)
const G4NeutronHPDataPoint & GetPoint(G4int i) const
T max(const T t1, const T t2)
brief Return the largest of the two arguments
G4bool Prepared() const
T min(const T t1, const T t2)
brief Return the smallest of the two arguments
const XML_Char int const XML_Char * value
#define G4endl
Definition: G4ios.hh:61
G4double Lin(G4double x, G4double x1, G4double x2, G4double y1, G4double y2)
def test
Definition: mcscore.py:117
double G4double
Definition: G4Types.hh:76
G4NeutronHPVector & operator=(const G4NeutronHPVector &right)
#define DBL_MAX
Definition: templates.hh:83