[3160] | 1 | #include "mbeamcyl.h"
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| 2 | #include "fftpserver.h"
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| 3 | #include "vector3d.h"
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| 4 | #include "matharr.h"
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| 5 | #include "srandgen.h"
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| 6 |
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[3192] | 7 | static double cLight=0.3; // in 1E9 m/s
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| 8 | static double tClock = 2.; // should come from param file !!!!
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| 9 | //static double cLight=1;
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| 10 | //static double tClock = 1.;
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| 11 |
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[3160] | 12 | //=================================================
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| 13 |
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[3191] | 14 | MultiBeamCyl::MultiBeamCyl(int nr, int ns, double posx, double posy)
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[3192] | 15 | : texact_(ns) , tjitt_(ns) , toffset_(nr) ,
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| 16 | gain_(nr), signal_(ns), sigjitt_(ns)
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[3160] | 17 | {
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[3192] | 18 | NR_ = nr;
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| 19 | NS_ = ns;
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| 20 | posY_ = posy;
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| 21 | posX_ = posx;
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[3160] | 22 |
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| 23 | SetPrintLevel(0);
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| 24 |
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| 25 | SetBaseFreqDa(2., 0.25);
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| 26 | SetNoiseSigma(0.);
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| 27 | SetTimeJitter(0.);
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| 28 | SetTimeOffsetSigma(0.);
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| 29 | SetGains(1., 0., 0);
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[3192] | 30 | adfg_ = false; src_ = NULL;
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[3160] | 31 | SetSources(new BRSourceGen, true);
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| 32 | }
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| 33 |
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[3192] | 34 | //-----------------------------------------------------------------------------
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[3160] | 35 | MultiBeamCyl::~MultiBeamCyl()
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| 36 | {
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[3192] | 37 | if (adfg_ && src_) delete src_;
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[3160] | 38 | }
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| 39 |
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[3192] | 40 | //-----------------------------------------------------------------------------
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[3160] | 41 | void MultiBeamCyl::SetSources(BRSourceGen* brs, bool ad)
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| 42 | {
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| 43 | if (brs == NULL) return;
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[3192] | 44 | if (adfg_ && src_) delete src_;
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| 45 | src_ = brs; adfg_=ad;
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| 46 | if (PrtLev_ > 1)
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[3160] | 47 | cout << " MultiBeamCyl::SetSources(brs=" << brs <<" ,bool) NbSrc="
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[3192] | 48 | << src_->NbSources() << endl;
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[3160] | 49 |
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| 50 | }
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| 51 |
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[3192] | 52 | //-----------------------------------------------------------------------------
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[3160] | 53 | void MultiBeamCyl::SetGains(double g, double sigg, int nzerogain)
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| 54 | {
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[3192] | 55 | if (sigg < 1.e-6) gain_ = g;
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| 56 | else gain_ = RandomSequence(RandomSequence::Gaussian, g, sigg);
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[3160] | 57 | int k;
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[3192] | 58 | for (k=0; k<NR_; k++) if (gain_(k) < 0) gain_(k) = 0.;
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[3160] | 59 | for(k=0; k<nzerogain; k++) {
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[3192] | 60 | int zg = random()%NR_;
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| 61 | if ((zg >=0) && (zg < NR_)) gain_(zg) = 0.;
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[3160] | 62 | }
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[3192] | 63 | if (PrtLev_ > 1)
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[3160] | 64 | cout << " MultiBeamCyl::SetGains(g=" << g <<" ,sigg=" << sigg
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| 65 | << " ,nzg=" << nzerogain << " )" << endl;
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| 66 | }
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| 67 |
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[3192] | 68 | //-----------------------------------------------------------------------------
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[3160] | 69 | void MultiBeamCyl::ComputeTimeVectors()
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| 70 | {
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[3192] | 71 | texact_ = RegularSequence(0., tClock); // 0, tClock, 2*tClock, ...
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| 72 | // for (int i=0;i<1024;i++) {cout << texact(i)<< endl;};
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| 73 | toffset_ = RandomSequence(RandomSequence::Gaussian, 0., toffsig_);
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[3160] | 74 | NewTJitVector();
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| 75 | }
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| 76 |
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[3192] | 77 | //-----------------------------------------------------------------------------
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[3160] | 78 | void MultiBeamCyl::NewTJitVector(int num)
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| 79 | {
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[3192] | 80 | if (timejitter_ > 1.e-19) {
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| 81 | tjitt_ = RandomSequence(RandomSequence::Gaussian, 0., timejitter_);
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| 82 | tjitt_ += texact_;
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[3160] | 83 | }
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[3192] | 84 | else tjitt_ = texact_;
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| 85 | if (num >= 0) tjitt_ += toffset_(num);
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[3160] | 86 |
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| 87 | }
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| 88 |
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[3192] | 89 | //-----------------------------------------------------------------------------
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[3160] | 90 | int MultiBeamCyl::ComputeSignalVector(int num, bool fgsignojit)
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| 91 | {
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| 92 | int nok = 0;
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[3192] | 93 | signal_ = 0.;
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| 94 | sigjitt_ = 0.;
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| 95 | for(int is=0; is<src_->freq.Size(); is++) {
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| 96 | double fr = src_->freq(is);
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[3160] | 97 | if ((fr < 0.) || (fr > 0.5)) continue;
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| 98 | nok++;
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| 99 | // Pour le dephasage entre recepteurs, on doit utiliser la frequence vraie,
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| 100 | // pas celle apres shift (freq-reduite)
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| 101 | // lambda = c T = c/freq avec c = 1, dephasage = 2*pi*num*Da*sin(ang)/lambda
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[3192] | 102 | double dephasage = (posX_+num*Da_)*sin(src_->angX(is))
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| 103 | + posY_*sin(src_->angY(is)) ;
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| 104 | dephasage *= 2*M_PI*(fr+freq0_)/cLight;
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[3160] | 105 | // On ajoute alors la phase propre de chaque source
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[3192] | 106 | dephasage += src_->phase(is);
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| 107 | double amprep = src_->amp(is)*AngResponse(src_->angX(is), src_->angY(is));
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| 108 | for(int k=0; k<NS_; k++) {
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| 109 | sigjitt_(k) += amprep*sin(2.*M_PI*fr*tjitt_(k)+dephasage);
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[3160] | 110 | if (fgsignojit)
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[3192] | 111 | signal_(k) += amprep*sin(2.*M_PI*fr*texact_(k)+dephasage);
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[3160] | 112 | }
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| 113 | }
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| 114 | // Application du gain du detecteur
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[3192] | 115 | r_4 ga = gain_(num);
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[3160] | 116 | if (fabs(ga-1.) > 1.e-9) {
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[3192] | 117 | signal_ *= ga;
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| 118 | sigjitt_ *= ga;
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[3160] | 119 | }
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| 120 | // Ajout de bruit (ampli ...)
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[3192] | 121 | if (signoise_ > 1.e-18) {
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| 122 | for(int k=0; k<NS_; k++) {
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| 123 | sigjitt_(k) += GauRnd(0., signoise_);
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| 124 | if (fgsignojit) signal_(k) += GauRnd(0., signoise_);
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[3160] | 125 | }
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| 126 | }
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[3192] | 127 | //............ FFT in time
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[3160] | 128 | FFTPackServer ffts;
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[3192] | 129 | ffts.FFTForward(sigjitt_, f_sigjit_);
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| 130 | if (fgsignojit) ffts.FFTForward(signal_, f_sig_);
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[3160] | 131 |
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| 132 | return nok;
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| 133 | }
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| 134 |
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| 135 |
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[3192] | 136 | //-----------------------------------------------------------------------------
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[3160] | 137 | /* --- a supprimer ?
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| 138 | inline float myZmodule(complex<r_4>& z)
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| 139 | {
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| 140 | return (float)sqrt((double)(z.real()*z.real()+z.imag()*z.imag()));
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| 141 | }
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| 142 | ----- */
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| 143 |
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[3192] | 144 | //-----------------------------------------------------------------------------
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[3160] | 145 | void MultiBeamCyl::ReconstructSourcePlane(bool fgzerocentre)
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| 146 | {
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| 147 | ComputeTimeVectors();
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| 148 | int noksrc = ComputeSignalVector(0, false);
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| 149 | vector<TVector< complex<r_4> > > vvfc;
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[3192] | 150 | cout << "MultiBeamCyl::ReconstructSourcePlane() NR=" << NR_
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| 151 | << " PosY=" << posY_ << " NFreq=" << f_sigjit_.Size()-1 << " NOkSrc=" << noksrc << endl;
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| 152 | if (PrtLev_ > 0) {
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| 153 | cout << " ... posY= " << posY_ << " MeanGain=" << Mean(gain_) << " MeanAmpSrc="
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| 154 | << Mean(src_->amp) << endl;
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| 155 | cout << " ...SigNoise=" << signoise_ << " TimeJitter=" << timejitter_
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| 156 | << " TOffSig=" << toffsig_ << " Da=" << Da_ << " Freq0=" << freq0_ << endl;
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[3160] | 157 | }
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| 158 | // On ne s'occupe pas de la composante continue
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[3192] | 159 | for(int jf=1; jf<f_sigjit_.Size(); jf++) {
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| 160 | TVector<complex<r_4> > cf(NR_);
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[3160] | 161 | vvfc.push_back(cf);
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| 162 | }
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| 163 | cout << "ReconstructSourcePlane()/Info: computing s(t) for each receptor ..." << endl;
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[3192] | 164 | int pmod = NR_/10;
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| 165 | for(int ir=0; ir<NR_; ir++) {
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| 166 | if (timejitter_ > 1.e-19) NewTJitVector(ir);
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[3160] | 167 | noksrc = ComputeSignalVector(ir, false);
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[3192] | 168 | for(int jf=1; jf<f_sigjit_.Size(); jf++)
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| 169 | vvfc[jf-1](ir) = f_sigjit_(jf);
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| 170 | if ( (PrtLev_>0) && (ir%pmod == 0) )
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| 171 | cout << " OK s(t) for ir=" << ir << " / NR=" << NR_ << " NOkSrc=" << noksrc << endl;
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[3160] | 172 | }
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| 173 |
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| 174 | cout << "ReconstructSourcePlane()/Info: computing s(ang) for each freq by FFT" << endl;
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[3192] | 175 | cmplx_srcplane_.SetSize(f_sigjit_.Size()-1, NR_);
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| 176 | // rec_srcplane.SetSize(f_sigjit_.Size()-1, NR_);
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[3160] | 177 | FFTPackServer ffts;
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| 178 | TVector<complex<r_4> > fcf;
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| 179 | pmod = vvfc.size()/10;
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[3192] | 180 | for(int jf=0; jf<(int)vvfc.size(); jf++) { // loop over frequencies
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| 181 | ffts.FFTForward(vvfc[jf], fcf); // FFT alomg cylinder
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| 182 | if (fcf.Size() != NR_) {
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[3160] | 183 | cout << "ReconstructSourcePlane()/BUG jf=" << jf << " fcf.Size() != NR "
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[3192] | 184 | << fcf.Size() << " != " << NR_ << endl;
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[3160] | 185 | continue;
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| 186 | }
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| 187 | if (fgzerocentre) { // On veut avoir la direction angle=0 au milieu de la matrice
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[3192] | 188 | int milieu = (NR_-1)/2;
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| 189 | if (NR_%2 == 0) milieu++;
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| 190 | int decal = NR_ - milieu - 1;
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[3160] | 191 | for (int ir=0; ir<=milieu; ir++)
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[3192] | 192 | cmplx_srcplane_(jf, ir+decal) = fcf(ir);
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[3160] | 193 | // rec_srcplane(jf, ir+decal) = myZmodule(fcf(ir));
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| 194 |
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[3192] | 195 | for (int ir=milieu+1; ir<NR_; ir++)
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| 196 | cmplx_srcplane_(jf, decal-(NR_-ir)) = fcf(ir);
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| 197 | // rec_srcplane_(jf, decal-(NR_-ir)) = myZmodule(fcf(ir));
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[3160] | 198 |
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| 199 | }
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[3192] | 200 | else for (int ir=0; ir<NR_; ir++)
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| 201 | cmplx_srcplane_(jf, ir) = fcf(ir);
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[3160] | 202 | // rec_srcplane(jf, ir) = myZmodule(fcf(ir));
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| 203 |
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[3192] | 204 | if ( (PrtLev_ > 0) && (jf%pmod == 0))
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[3160] | 205 | cout << " OK rec_srcplane(jf, ir) for jf=" << jf << endl;
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| 206 | }
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| 207 |
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| 208 |
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| 209 | cout << "ReconstructSourcePlane()/Info: rec_srcplane computed OK" << endl;
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| 210 | }
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| 211 |
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| 212 |
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