[3787] | 1 |
|
---|
| 2 | #include "lobe.h"
|
---|
| 3 | #include "radutil.h"
|
---|
| 4 | #include "randfmt.h"
|
---|
| 5 | typedef FMTRandGen RandomGenerator ;
|
---|
| 6 |
|
---|
| 7 |
|
---|
| 8 | #include "fftwserver.h"
|
---|
| 9 | #include "ctimer.h"
|
---|
| 10 |
|
---|
| 11 |
|
---|
| 12 | /* --Methode-- */
|
---|
| 13 | BeamEffect::BeamEffect(Four2DResponse& resp)
|
---|
| 14 | : fresp_(resp)
|
---|
| 15 | // resp doit avoir sa longueur d'onde de reference en metres
|
---|
| 16 | {
|
---|
| 17 | }
|
---|
| 18 |
|
---|
| 19 | /* --Methode-- */
|
---|
| 20 | void BeamEffect::ApplyLobeK2D(TArray< complex<TF> >& fourAmp, double dkx, double dky, double lambda)
|
---|
| 21 | // dx, dy en radians, lambda en metres
|
---|
| 22 | {
|
---|
| 23 | fresp_.setLambda(lambda);
|
---|
| 24 | double kxx, kyy;
|
---|
| 25 | for(sa_size_t ky=0; ky<fourAmp.SizeY(); ky++) {
|
---|
| 26 | kyy = (ky>fourAmp.SizeY()/2) ? -(double)(fourAmp.SizeY()-ky)*dky : (double)ky*dky;
|
---|
| 27 | for(sa_size_t kx=0; kx<fourAmp.SizeX(); kx++) {
|
---|
| 28 | kxx=(double)kx*dkx;
|
---|
| 29 | fourAmp(kx, ky) *= complex<TF>(fresp_(kxx, kyy), 0.);
|
---|
| 30 | }
|
---|
| 31 | }
|
---|
| 32 | return;
|
---|
| 33 | }
|
---|
| 34 |
|
---|
| 35 |
|
---|
| 36 | /* --Methode-- */
|
---|
| 37 | void BeamEffect::ApplyLobe3D(TArray< TF >& a, double dx, double dy, double f0, double df)
|
---|
| 38 | // dx, dy en radioans, f0, df en MHz
|
---|
| 39 | {
|
---|
| 40 | Timer tm("BeamEffect::ApplyLobe3D");
|
---|
| 41 | FFTWServer ffts(true);
|
---|
| 42 | ffts.setNormalize(true);
|
---|
| 43 |
|
---|
| 44 | H21Conversions conv;
|
---|
| 45 |
|
---|
| 46 | TArray< complex<TF> > fourAmp;
|
---|
| 47 | double dkx = DeuxPI/(double)a.SizeX()/dx;
|
---|
| 48 | double dky = DeuxPI/(double)a.SizeY()/dy;
|
---|
| 49 |
|
---|
| 50 | for(sa_size_t kz=0; kz<a.SizeZ(); kz++) {
|
---|
| 51 | TArray< TF > slice( a(Range::all(), Range::all(), kz) );
|
---|
| 52 | ffts.FFTForward(slice, fourAmp);
|
---|
| 53 | conv.setFrequency(f0+kz*df);
|
---|
| 54 | ApplyLobeK2D(fourAmp, dkx, dky, conv.getLambda());
|
---|
| 55 | ffts.FFTBackward(fourAmp, slice, true);
|
---|
| 56 | if (kz%10==0) cout << "BeamEffect::ApplyLobe3D() done kz=" << kz << " / a.SizeZ()=" << a.SizeZ() << endl;
|
---|
| 57 | }
|
---|
| 58 | return;
|
---|
| 59 | }
|
---|
| 60 |
|
---|
| 61 | /* --Methode-- */
|
---|
| 62 | TArray< TF > BeamEffect::ReSample(TArray< TF >& a, double xfac, double yfac, double zfac)
|
---|
| 63 | {
|
---|
| 64 | Timer tm("BeamEffect::ReSample");
|
---|
| 65 |
|
---|
| 66 | sa_size_t szx = a.SizeX()*xfac;
|
---|
| 67 | sa_size_t szy = a.SizeY()*yfac;
|
---|
| 68 | sa_size_t szz = a.SizeZ()*zfac;
|
---|
| 69 |
|
---|
| 70 | TArray<TF> rsa(szx, szy, szz);
|
---|
| 71 | for(sa_size_t kz=0; kz<rsa.SizeZ(); kz++) {
|
---|
| 72 | sa_size_t kza=kz/zfac;
|
---|
| 73 | if ((kza<0)||(kza>=a.SizeZ())) continue;
|
---|
| 74 | for(sa_size_t ky=0; ky<rsa.SizeY(); ky++) {
|
---|
| 75 | sa_size_t kya=ky/yfac;
|
---|
| 76 | if ((kya<0)||(kya>=a.SizeY())) continue;
|
---|
| 77 | for(sa_size_t kx=0; kx<rsa.SizeX(); kx++) {
|
---|
| 78 | sa_size_t kxa=kx/xfac;
|
---|
| 79 | if ((kxa<0)||(kxa>=a.SizeX())) continue;
|
---|
| 80 | rsa(kx,ky,kz)=a(kxa,kya,kza);
|
---|
| 81 | }
|
---|
| 82 | }
|
---|
| 83 | }
|
---|
| 84 | return rsa;
|
---|
| 85 | }
|
---|
| 86 |
|
---|
| 87 |
|
---|
| 88 | /* --Methode-- */
|
---|
| 89 | void BeamEffect::AddNoise(TArray< TF >& a, double pixsignoise, bool fgcmsig)
|
---|
| 90 | {
|
---|
| 91 | cout << "BeamEffect::AddNoise() PixelSigmaNoise=" << pixsignoise << endl;
|
---|
| 92 | RandomGenerator rg;
|
---|
| 93 | for(sa_size_t kz=0; kz<a.SizeZ(); kz++)
|
---|
| 94 | for(sa_size_t ky=0; ky<a.SizeY(); ky++)
|
---|
| 95 | for(sa_size_t kx=0; kx<a.SizeX(); kx++)
|
---|
| 96 | a(kx,ky,kz) += rg.Gaussian(pixsignoise);
|
---|
| 97 | if (fgcmsig) {
|
---|
| 98 | double mean, sigma;
|
---|
| 99 | MeanSigma(a, mean, sigma);
|
---|
| 100 | cout << "BeamEffect::AddNoise()-done, Mean=" << mean << " Sigma=" << sigma << endl;
|
---|
| 101 | }
|
---|
| 102 | return;
|
---|
| 103 | }
|
---|