| 1 | #include "fftservintf.h"
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| 2 | 
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| 3 | 
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| 4 | /*!
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| 5 |   \class SOPHYA::FFTServerInterface
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| 6 |   \ingroup NTools
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| 7 |   Defines the interface for FFT (Fast Fourier Transform) operations.
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| 8 |   Definitions : 
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| 9 |     - Sampling period \b T
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| 10 |     - Sampling frequency \b fs=1/T
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| 11 |     - Total number of samples \b N
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| 12 |     - Frequency step in Fourier space \b =fs/N=1/(N*T)
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| 13 |     - Component frequencies
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| 14 |         - k=0      ->  0
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| 15 |         - k=1      ->  1/(N*T)
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| 16 |         - k        ->  k/(N*T)
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| 17 |         - k=N/2    ->  1/(2*T)   (Nyquist frequency)
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| 18 |         - k>N/2    ->  k/(N*T)   (or negative frequency -(N-k)/(N*T))
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| 19 | 
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| 20 |   For a sampling period T=1, the computed Fourier components correspond to :
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| 21 |   \verbatim
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| 22 |   0  1/N  2/N  ... 1/2  1/2+1/N  1/2+2/N ... 1-2/N  1-1/N
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| 23 |   0  1/N  2/N  ... 1/2                   ...  -2/N   -1/N
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| 24 |   \endverbatim
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| 25 | 
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| 26 |   For complex one-dimensional transforms:
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| 27 |   \f[
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| 28 |   out(i) = F_{norm} \Sigma_{j} \ e^{-2 \pi \sqrt{-1} \ i \  j} \ {\rm (forward)}
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| 29 |   \f]
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| 30 |   \f[
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| 31 |   out(i) = F_{norm} \Sigma_{j} \ e^{2 \pi \sqrt{-1} \ i \  j} \ {\rm (backward)}
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| 32 |   \f]
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| 33 |   i,j= 0..N-1 , where N is the input or the output array size.
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| 34 | 
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| 35 |   For complex multi-dimensional transforms:
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| 36 |   \f[
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| 37 |   out(i1,i2,...,id) = F_{norm} \Sigma_{j1} \Sigma_{j2} ... \Sigma_{jd} \ 
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| 38 |   e^{-2 \pi \sqrt{-1} \ i1 \ j1} ... e^{-2 \pi \sqrt{-1} \ id \ jd} \ {\rm (forward)}
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| 39 |   \f]
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| 40 |   \f[
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| 41 |   out(i1,i2,...,id) = F_{norm} \Sigma_{j1} \Sigma_{j2} ... \Sigma_{jd} \ 
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| 42 |   e^{2 \pi \sqrt{-1} \ i1 \ j1} ... e^{2 \pi \sqrt{-1} \ id \ jd} \ {\rm (backward)}
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| 43 |   \f]
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| 44 | 
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| 45 |   For real forward transforms, the input array is real, and
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| 46 |   the output array complex, with Fourier components up to k=N/2.
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| 47 |   For real backward transforms, the input array is complex and
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| 48 |   the output array is real. 
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| 49 | */
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| 50 | 
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| 51 | /* --Methode-- */
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| 52 | FFTServerInterface::FFTServerInterface(string info)
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| 53 | {
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| 54 |   _info = info;
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| 55 |   _fgnorm = true;
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| 56 | }
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| 57 | 
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| 58 | /* --Methode-- */
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| 59 | FFTServerInterface::~FFTServerInterface()
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| 60 | {
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| 61 | }
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| 62 | 
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| 63 | // ----------------- Transforme pour les double -------------------
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| 64 | 
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| 65 | /* --Methode-- */
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| 66 | //! Forward Fourier transform for double precision complex data 
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| 67 | /*!
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| 68 |   \param in : Input complex array
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| 69 |   \param out : Output complex array
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| 70 |  */
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| 71 | void FFTServerInterface::FFTForward(TArray< complex<r_8> > const &, TArray< complex<r_8> > &)
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| 72 | {
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| 73 |   throw NotAvailableOperation("FFTServer::FFTForward(TArray...) Unsupported operation !");
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| 74 | }
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| 75 | 
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| 76 | /* --Methode-- */
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| 77 | //! Backward (inverse) Fourier transform for double precision complex data 
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| 78 | /*!
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| 79 |   \param in : Input complex array
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| 80 |   \param out : Output complex array
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| 81 |  */
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| 82 | void FFTServerInterface::FFTBackward(TArray< complex<r_8> > const &, TArray< complex<r_8> > &)
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| 83 | {
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| 84 |   throw NotAvailableOperation("FFTServer::FFTBackward(TArray...) Unsupported operation !");
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| 85 | }
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| 86 | 
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| 87 | /* --Methode-- */
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| 88 | //! Forward Fourier transform for double precision real input data
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| 89 | /*!
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| 90 |   \param in : Input real array
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| 91 |   \param out : Output complex array
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| 92 |  */
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| 93 | void FFTServerInterface::FFTForward(TArray< r_8 > const &, TArray< complex<r_8> > &)
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| 94 | {
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| 95 |   throw NotAvailableOperation("FFTServer::FFTForward(TArray...) Unsupported operation !");
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| 96 | }
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| 97 | 
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| 98 | /* --Methode-- */
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| 99 | //! Backward (inverse) Fourier transform for double precision real output data 
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| 100 | /*!
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| 101 |   \param in : Input complex array
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| 102 |   \param out : Output real array
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| 103 |   \param usoutsz : if true, use the output array size for computing the inverse FFT.
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| 104 |  */
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| 105 | void FFTServerInterface::FFTBackward(TArray< complex<r_8> > const &, TArray< r_8 > &, bool)
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| 106 | {
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| 107 |   throw NotAvailableOperation("FFTServer::FFTBackward(TArray...) Unsupported operation !");
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| 108 | }
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| 109 | 
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| 110 | 
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| 111 | // ----------------- Transforme pour les float -------------------
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| 112 | 
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| 113 | /* --Methode-- */
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| 114 | //! Forward Fourier transform for complex data 
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| 115 | /*!
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| 116 |   \param in : Input complex array
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| 117 |   \param out : Output complex array
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| 118 |  */
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| 119 | void FFTServerInterface::FFTForward(TArray< complex<r_4> > const &, TArray< complex<r_4> > &)
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| 120 | {
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| 121 |   throw NotAvailableOperation("FFTServer::FFTForward(TArray r_4 ... ) Unsupported operation !");
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| 122 | }
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| 123 | 
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| 124 | /* --Methode-- */
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| 125 | //! Backward (inverse) Fourier transform for complex data 
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| 126 | /*!
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| 127 |   \param in : Input complex array
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| 128 |   \param out : Output complex array
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| 129 |  */
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| 130 | void FFTServerInterface::FFTBackward(TArray< complex<r_4> > const &, TArray< complex<r_4> > &)
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| 131 | {
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| 132 |   throw NotAvailableOperation("FFTServer::FFTBackward(TArray r_4 ... ) Unsupported operation !");
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| 133 | }
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| 134 | 
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| 135 | /* --Methode-- */
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| 136 | //! Forward Fourier transform for real input data
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| 137 | /*!
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| 138 |   \param in : Input real array
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| 139 |   \param out : Output complex array
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| 140 |  */
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| 141 | void FFTServerInterface::FFTForward(TArray< r_4 > const &, TArray< complex<r_4> > &)
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| 142 | {
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| 143 |   throw NotAvailableOperation("FFTServer::FFTForward(TArray r_4 ... ) Unsupported operation !");
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| 144 | }
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| 145 | 
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| 146 | /* --Methode-- */
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| 147 | //! Backward (inverse) Fourier transform for real output data 
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| 148 | /*!
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| 149 |   \param in : Input complex array
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| 150 |   \param out : Output real array
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| 151 |   \param usoutsz : if true, use the output array size for computing the inverse FFT.
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| 152 |  */
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| 153 | void FFTServerInterface::FFTBackward(TArray< complex<r_4> > const &, TArray< r_4 > &, bool)
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| 154 | {
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| 155 |   throw NotAvailableOperation("FFTServer::FFTBackward(TArray r_4 ... ) Unsupported operation !");
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| 156 | }
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| 157 | 
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| 158 | 
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| 159 | // ----------------- Transformation de normalisation pour les energies -------------------
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| 160 | 
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| 161 | /* --Methode-- */
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| 162 | //! Compute the transform to be applied to "fftx=FFT(x)" so that "x" and "FFT(x)" have the same energy
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| 163 | /*!
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| 164 | \return The factor to be applied to the FFT energy such that we get the same energy as for the x.
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| 165 | \verbatim
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| 166 |   fftx is computed by: FFTForward(x,fftx)
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| 167 |   Energy of x    : Ex    = sum{|x(i)|^2}      i=0,x.Size()-1
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| 168 |   Energy of fftx : Efftx = sum{|fftx(i)^2|}   i=0,fftx.Size()-1
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| 169 |         ( usually x.Size() != fftx.Size() )
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| 170 |   -------------------------------------------------------------------
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| 171 |   |  TransfEnergyFFT return A and B such that : Ex = A * Efftx + B  |
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| 172 |   |                  and Norm such that : Ex = Norm * Efftx         |
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| 173 |   -------------------------------------------------------------------
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| 174 |   To normalize the fftx vector apply : "fftx *= sqrt(Norm)"
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| 175 | \endverbatim
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| 176 | */
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| 177 | r_8 FFTServerInterface::TransfEnergyFFT
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| 178 |      (TVector< complex<r_8> > const& x, TVector< complex<r_8> > const& fftx, r_8& A, r_8& B)
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| 179 | {
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| 180 |   B=0.;
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| 181 |   if(getNormalize()) A = x.Size(); else A = 1./x.Size();
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| 182 |   r_8 norm = A;
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| 183 |   return norm;
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| 184 | }
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| 185 | 
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| 186 | //! Compute the transform to be applied to "fftx=FFT(x)" so that "x" and "FFT(x)" have the same energy
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| 187 | r_8 FFTServerInterface::TransfEnergyFFT
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| 188 |      (TVector< complex<r_4> > const & x, TVector< complex<r_4> > const & fftx, r_8& A, r_8& B)
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| 189 | {
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| 190 |   B=0.;
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| 191 |   if(getNormalize()) A = x.Size(); else A = 1./x.Size();
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| 192 |   r_8 norm = A;
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| 193 |   return norm;
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| 194 | }
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| 195 | 
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| 196 | //! Compute the transform to be applied to "fftx=FFT(x)" so that "x" and "FFT(x)" have the same energy
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| 197 | r_8 FFTServerInterface::TransfEnergyFFT
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| 198 |      (TVector< r_8 > const & x, TVector< complex<r_8> > const & fftx, r_8& A, r_8& B)
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| 199 | {
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| 200 |   A= 2.;
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| 201 |   B=  - abs(fftx(0)*fftx(0));
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| 202 |   if(x.Size()%2 == 0) B -= abs(fftx(fftx.Size()-1)*fftx(fftx.Size()-1));
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| 203 |   if(getNormalize()) {A *= x.Size(); B *= x.Size();}
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| 204 |      else            {A /= x.Size(); B /= x.Size();}
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| 205 |   r_8 norm = 0.;
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| 206 |   for(int_4 i=0;i<fftx.Size();i++) norm += abs(fftx(i)*fftx(i));
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| 207 |   if(norm>0.) norm = (A*norm+B)/norm;
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| 208 |   return norm;
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| 209 | }
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| 210 | 
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| 211 | //! Compute the transform to be applied to "fftx=FFT(x)" so that "x" and "FFT(x)" have the same energy
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| 212 | r_8 FFTServerInterface::TransfEnergyFFT
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| 213 |      (TVector< r_4 > const & x, TVector< complex<r_4> > const & fftx, r_8& A, r_8& B)
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| 214 | {
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| 215 |   A= 2.;
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| 216 |   B=  - abs(fftx(0)*fftx(0));
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| 217 |   if(x.Size()%2 == 0) B -= abs(fftx(fftx.Size()-1)*fftx(fftx.Size()-1));
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| 218 |   if(getNormalize()) {A *= x.Size(); B *= x.Size();}
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| 219 |      else            {A /= x.Size(); B /= x.Size();}
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| 220 |   r_8 norm = 0.;
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| 221 |   for(int_4 i=0;i<fftx.Size();i++) norm += abs(fftx(i)*fftx(i));
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| 222 |   if(norm>0.) norm = (A*norm+B)/norm;
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| 223 |   return norm;
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| 224 | }
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| 225 | 
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| 226 | 
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| 227 | /* --Methode-- */
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| 228 | /*!
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| 229 |   \class SOPHYA::FFTArrayChecker
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| 230 |   \ingroup NTools
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| 231 |   Service class for checking array size and resizing output arrays,
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| 232 |   to be used by FFTServer classes
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| 233 | */
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| 234 | 
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| 235 | template <class T>
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| 236 | FFTArrayChecker<T>::FFTArrayChecker(string msg, bool checkpack, bool onedonly)
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| 237 | {
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| 238 |   _msg = msg + " FFTArrayChecker::";
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| 239 |   _checkpack = checkpack;
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| 240 |   _onedonly = onedonly;
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| 241 | }
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| 242 | 
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| 243 | /* --Methode-- */
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| 244 | template <class T>
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| 245 | FFTArrayChecker<T>::~FFTArrayChecker()
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| 246 | {
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| 247 | }
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| 248 | 
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| 249 | template <class T>
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| 250 | T FFTArrayChecker<T>::ZeroThreshold()
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| 251 | {
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| 252 |   return(0);
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| 253 | }
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| 254 | 
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| 255 | DECL_TEMP_SPEC  /* equivalent a template <> , pour SGI-CC en particulier */
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| 256 | r_8 FFTArrayChecker< r_8 >::ZeroThreshold()
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| 257 | {
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| 258 |   return(1.e-39);
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| 259 | }
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| 260 | 
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| 261 | DECL_TEMP_SPEC  /* equivalent a template <> , pour SGI-CC en particulier */
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| 262 | r_4 FFTArrayChecker< r_4 >::ZeroThreshold()
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| 263 | {
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| 264 |   return(1.e-19);
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| 265 | }
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| 266 | 
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| 267 | /* --Methode-- */
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| 268 | template <class T>
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| 269 | int FFTArrayChecker<T>::CheckResize(TArray< complex<T> > const & in, TArray< complex<T> > & out)
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| 270 | {
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| 271 |   int k;
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| 272 |   string msg;
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| 273 |   if (in.Size() < 1) {
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| 274 |     msg = _msg + "CheckResize(complex in, complex out) - Unallocated input array !";
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| 275 |     throw(SzMismatchError(msg));
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| 276 |   }
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| 277 |   if (_checkpack) 
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| 278 |     if ( !in.IsPacked() ) {
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| 279 |       msg = _msg + "CheckResize(complex in, complex out) - Not packed input array !";
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| 280 |       throw(SzMismatchError(msg));
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| 281 |     }
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| 282 |   int ndg1 = 0;
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| 283 |   for(k=0; k<in.NbDimensions(); k++) 
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| 284 |     if (in.Size(k) > 1)  ndg1++;
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| 285 |   if (_onedonly) 
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| 286 |     if (ndg1 > 1) {
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| 287 |       msg = _msg + "CheckResize(complex in, complex out) - Only 1-D array accepted !";
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| 288 |       throw(SzMismatchError(msg));
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| 289 |     }
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| 290 |   out.ReSize(in);
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| 291 |   //  sa_size_t sz[BASEARRAY_MAXNDIMS];
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| 292 |   //  for(k=0; k<in.NbDimensions(); k++) 
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| 293 |   //    sz[k] = in.Size(k);
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| 294 |   //  out.ReSize(in.NbDimensions(), sz);
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| 295 | 
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| 296 |   return(ndg1);
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| 297 | }
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| 298 | 
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| 299 | /* --Methode-- */
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| 300 | template <class T>
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| 301 | int FFTArrayChecker<T>::CheckResize(TArray< T > const & in, TArray< complex<T> > & out)
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| 302 | {
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| 303 |   int k;
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| 304 |   string msg;
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| 305 |   if (in.Size() < 1) {
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| 306 |     msg = _msg + "CheckResize(real in, complex out) - Unallocated input array !";
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| 307 |     throw(SzMismatchError(msg));
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| 308 |   }
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| 309 |   if (_checkpack) 
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| 310 |     if ( !in.IsPacked() ) {
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| 311 |       msg = _msg + "CheckResize(real in, complex out) - Not packed input array !";
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| 312 |       throw(SzMismatchError(msg));
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| 313 |     }
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| 314 |   int ndg1 = 0;
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| 315 |   for(k=0; k<in.NbDimensions(); k++) 
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| 316 |     if (in.Size(k) > 1)  ndg1++;
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| 317 |   if (_onedonly) 
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| 318 |     if (ndg1 > 1) {
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| 319 |       msg = _msg + "CheckResize(real in, complex out) - Only 1-D array accepted !";
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| 320 |       throw(SzMismatchError(msg));
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| 321 |     }
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| 322 |   sa_size_t sz[BASEARRAY_MAXNDIMS];
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| 323 |   // 
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| 324 |   if (ndg1 > 1) {
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| 325 |     sz[0] = in.Size(0)/2+1; 
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| 326 |     for(k=1; k<in.NbDimensions(); k++) 
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| 327 |       sz[k] = in.Size(k); 
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| 328 |   }
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| 329 |   else {
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| 330 |     for(k=0; k<BASEARRAY_MAXNDIMS; k++)  sz[k] = 1; 
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| 331 |     sz[in.MaxSizeKA()] = in.Size(in.MaxSizeKA())/2+1;
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| 332 |     //    sz[k] = in.Size(k)/2+1; 
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| 333 |     //    sz[k] = (in.Size(k)%2 != 0) ? in.Size(k)/2+1 : in.Size(k)/2;
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| 334 |   }
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| 335 |   out.ReSize(in.NbDimensions(), sz);
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| 336 | 
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| 337 |   return(ndg1);
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| 338 | }
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| 339 | 
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| 340 | /* --Methode-- */
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| 341 | template <class T>
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| 342 | int FFTArrayChecker<T>::CheckResize(TArray< complex<T> > const & in, TArray< T > & out, 
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| 343 |                                     bool usoutsz)
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| 344 | {
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| 345 |   int k;
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| 346 |   string msg;
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| 347 |   if (in.Size() < 1) {
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| 348 |     msg = _msg + "CheckResize(complex in, real out) - Unallocated input array !";
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| 349 |     throw(SzMismatchError(msg));
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| 350 |   }
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| 351 |   if (_checkpack) 
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| 352 |     if ( !in.IsPacked() ) {
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| 353 |       msg = _msg + "CheckResize(complex in, real out) - Not packed input array !";
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| 354 |       throw(SzMismatchError(msg));
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| 355 |     }
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| 356 |   int ndg1 = 0;
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| 357 |   for(k=0; k<in.NbDimensions(); k++) 
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| 358 |     if (in.Size(k) > 1)  ndg1++;
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| 359 |   if (_onedonly) 
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| 360 |     if (ndg1 > 1) {
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| 361 |       msg = _msg + "CheckResize(complex in, real out) - Only 1-D array accepted !";
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| 362 |       throw(SzMismatchError(msg));
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| 363 |     }
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| 364 |   if (usoutsz) { // We have to use output array size 
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| 365 |     bool fgerr = false;
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| 366 |     if (ndg1 > 1) {
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| 367 |       if (in.Size(0) != out.Size(0)/2+1) fgerr = true;
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| 368 |     }      
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| 369 |     else {
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| 370 |       if (in.Size(in.MaxSizeKA()) != out.Size(in.MaxSizeKA())/2+1) fgerr = true;
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| 371 |     }
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| 372 |     if (fgerr) {
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| 373 |         msg = _msg + "CheckResize(complex in, real out) - Incompatible in-out sizes !";
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| 374 |         throw(SzMismatchError(msg));
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| 375 |     }
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| 376 |   }
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| 377 |   else {  // We have to resize the output array 
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| 378 |     sa_size_t sz[BASEARRAY_MAXNDIMS];
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| 379 |     if (ndg1 > 1) {
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| 380 |       sz[0] = 2*in.Size(0)-1;
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| 381 |       for(k=1; k<in.NbDimensions(); k++) 
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| 382 |         sz[k] = in.Size(k);
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| 383 |     //      sz[k] = in.Size(k)*2-1;
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| 384 |     }
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| 385 |     else {
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| 386 |       for(k=0; k<BASEARRAY_MAXNDIMS; k++)  sz[k] = 1; 
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| 387 |       T thr = ZeroThreshold();
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| 388 |       sa_size_t n = in.Size(in.MaxSizeKA());
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| 389 |       sa_size_t ncs = ( (in[n-1].imag() < -thr) || (in[n-1].imag() > thr) )
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| 390 |                       ? 2*n-1 : 2*n-2;
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| 391 |       sz[in.MaxSizeKA()] = ncs;
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| 392 |     }
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| 393 |   out.ReSize(in.NbDimensions(), sz);
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| 394 |   }
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| 395 | 
 | 
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| 396 |   return(ndg1);
 | 
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| 397 | 
 | 
|---|
| 398 | }
 | 
|---|
| 399 | 
 | 
|---|
| 400 | 
 | 
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| 401 | #ifdef __CXX_PRAGMA_TEMPLATES__
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| 402 | #pragma define_template FFTArrayChecker<r_4>
 | 
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| 403 | #pragma define_template FFTArrayChecker<r_8>
 | 
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| 404 | #endif
 | 
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| 405 | 
 | 
|---|
| 406 | #if defined(ANSI_TEMPLATES) || defined(GNU_TEMPLATES)
 | 
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| 407 | template class FFTArrayChecker<r_4>;
 | 
|---|
| 408 | template class FFTArrayChecker<r_8>;
 | 
|---|
| 409 | #endif
 | 
|---|