| 1 | #include "fftpserver.h"
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| 2 | #include "fftpackc.h"
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| 3 | 
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| 4 | #include <iostream.h>
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| 5 | 
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| 6 | 
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| 7 | /*! 
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| 8 | \class SOPHYA::FFTPackServer
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| 9 | A class that calculates Fourier transforms forwards and backwards.
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| 10 | 
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| 11 | The class calls the c library ``fftpack'', which is accessible and documented
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| 12 | at http://www.netlib.org/fftpack/.  However, the class functions do not
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| 13 | necessarily correspond with the equivalent fftpack function.  For example,
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| 14 | fftpack "forward" transformations are in fact inverse fourier transformations.
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| 15 | Otherwise, the output is in the fftpack format.
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| 16 | 
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| 17 | 
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| 18 | Due to the way that fftpack manages
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| 19 | its work arrays, an object can run faster if the length of the input arrays
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| 20 | does not change.  For example, if you need to do a series of FFT's
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| 21 | of differing length, it may be more efficient to create an fftserver object
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| 22 | for each length.
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| 23 | */
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| 24 | 
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| 25 | /* \fn virtual void FFTServer::fftf(int l, r_4* inout)
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| 26 |   \param l length of array
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| 27 |   \param inout input array /output forward FFT (original array destroyed)
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| 28 | */
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| 29 | /*! \fn virtual void FFTServer::fftb(int l, r_4* inout)
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| 30 |   \param l length of array
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| 31 |   \param inout input array /output backward FFT (original array destroyed)
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| 32 | */
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| 33 | /* \fn virtual void FFTServer::fftf(int l, r_8* inout)
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| 34 |   \param l length of array
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| 35 |   \param inout input array /output forward FFT (original array destroyed)
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| 36 |   \param inout input/output array (original array destroyed)
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| 37 | */
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| 38 | /* \fn virtual void FFTServer::fftb(int l, r_8* inout)
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| 39 |   \param l length of array
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| 40 |   \param inout input array /output backward FFT(original array destroyed)
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| 41 | */
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| 42 | /*\fn  virtual void FFTServer::fftf(int l, complex<r_4>* inout)
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| 43 |   \param l length of array
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| 44 |   \param inout input array /output forward FFT (original array destroyed)
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| 45 | */
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| 46 | /* \fn virtual void FFTServer::fftb(int l, complex<r_4>* inout)
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| 47 |   \param l length of array
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| 48 |   \param inout input array /output backward FFT (original array destroyed)
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| 49 | */
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| 50 | /* \fn virtual void FFTServer::fftf(int l, complex<r_8>* inout)
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| 51 |   \param l length of array
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| 52 |   \param inout input array /output forward FFT (original array destroyed)
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| 53 | */
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| 54 | /* \fn virtual void FFTServer::fftb(int l, complex<r_8>* inout)
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| 55 |   \param l length of array
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| 56 |   \param inout input array /output backward FFT(original array destroyed)
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| 57 | */
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| 58 | /*\fn  virtual void FFTServer::fftf(Vector& in, Vector& out)
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| 59 |   \param in input array
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| 60 |   \param out forward FFT
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| 61 | */
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| 62 | /* \fn virtual void FFTServer::fftb(Vector& in, Vector& out)
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| 63 |   \param in input array
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| 64 |   \param out backward FFT
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| 65 | */
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| 66 | 
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| 67 | FFTPackServer::FFTPackServer()
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| 68 |    : FFTServerInterface("FFTPackServer using extended FFTPack (C-version) package")
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| 69 | 
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| 70 | {
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| 71 |   sz_rfft = 0;     //the working array and its size for the different
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| 72 |   ws_rfft = NULL;  //possible numerical types
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| 73 |   sz_cfft = 0;
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| 74 |   ws_cfft = NULL;
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| 75 |   sz_cdfft = 0;
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| 76 |   ws_cdfft = NULL;
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| 77 | }
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| 78 | 
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| 79 | FFTPackServer::~FFTPackServer()
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| 80 | {
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| 81 | if (ws_rfft) delete[] ws_rfft;
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| 82 | if (ws_cfft) delete[] ws_cfft;
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| 83 | if (ws_cdfft) delete[] ws_cdfft;
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| 84 | }
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| 85 | 
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| 86 | FFTServerInterface * FFTPackServer::Clone()
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| 87 | {
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| 88 |   return (new FFTPackServer);
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| 89 | }
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| 90 | 
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| 91 | 
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| 92 | void FFTPackServer::FFTForward(TVector< complex<r_8> > const & in, TVector< complex<r_8> > & out)
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| 93 | {
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| 94 |   out = in;
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| 95 |   fftf(out.NElts(), out.Data());
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| 96 |   if (getNormalize()) out *= (1./(r_8)(in.NElts()));
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| 97 | }
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| 98 | 
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| 99 | void FFTPackServer::FFTBackward(TVector< complex<r_8> > const & in, TVector< complex<r_8> > & out)
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| 100 | {
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| 101 |   out = in;
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| 102 |   fftb(out.NElts(), out.Data());
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| 103 | }
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| 104 | 
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| 105 | 
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| 106 | 
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| 107 | void FFTPackServer::FFTForward(TVector< complex<r_4> > const & in, TVector< complex<r_4> > & out)
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| 108 | {
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| 109 |   out = in;
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| 110 |   fftf(out.NElts(), out.Data());
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| 111 |   if (getNormalize()) out *= (1./(r_4)(in.NElts()));
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| 112 | }
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| 113 | 
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| 114 | void FFTPackServer::FFTBackward(TVector< complex<r_4> > const & in, TVector< complex<r_4> > & out)
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| 115 | {
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| 116 |   out = in;
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| 117 |   fftb(out.NElts(), out.Data());
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| 118 | }
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| 119 | 
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| 120 | void FFTPackServer::FFTForward(TVector< r_4 > const & in, TVector< complex<r_4> > & out)
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| 121 | {
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| 122 |   TVector< r_4 > inout(in);
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| 123 |   fftf(inout.NElts(), inout.Data());
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| 124 |   ReShapetoCompl(inout, out);
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| 125 |   if (getNormalize()) out *= (1./(r_4)(in.NElts()));
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| 126 | }
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| 127 | 
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| 128 | void FFTPackServer::FFTBackward(TVector< complex<r_4> > const & in, TVector< r_4 > & out)
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| 129 | {
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| 130 |   ReShapetoReal(in, out);
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| 131 |   fftb(out.NElts(), out.Data());
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| 132 | }
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| 133 | 
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| 134 | 
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| 135 | void FFTPackServer::FFTForward(TVector< r_8 > const & in, TVector< complex<r_8> > & out)
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| 136 | {
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| 137 |   TVector< r_8 > inout(in);
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| 138 |   fftf(inout.NElts(), inout.Data());
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| 139 |   ReShapetoCompl(inout, out);
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| 140 |   if (getNormalize()) out *= (1./(r_8)(in.NElts()));
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| 141 | }
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| 142 | 
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| 143 | void FFTPackServer::FFTBackward(TVector< complex<r_8> > const & in, TVector< r_8 > & out)
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| 144 | {
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| 145 |   ReShapetoReal(in, out);
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| 146 |   fftb(out.NElts(), out.Data());
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| 147 | }
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| 148 | 
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| 149 |  
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| 150 | 
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| 151 | void FFTPackServer::checkint_rfft(int_4 l)
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| 152 | {
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| 153 |   if (sz_rfft == l) return;       //checkint functions check and reallocate
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| 154 |                                   //memory for the work arrays when performing
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| 155 |   if (ws_rfft) delete[] ws_rfft;  //a transform
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| 156 |   sz_rfft = l;
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| 157 |   ws_rfft = new r_4[2*l+15];
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| 158 |   rffti_(&l, ws_rfft);
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| 159 | }
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| 160 | 
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| 161 | void FFTPackServer::checkint_cfft(int_4 l)
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| 162 | {
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| 163 |   if (sz_cfft == l) return;
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| 164 | 
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| 165 |   if (ws_cfft) delete[] ws_cfft;
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| 166 |   sz_cfft = l;
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| 167 |   ws_cfft = new r_4[4*l+15];
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| 168 |   cffti_(&l, ws_cfft);
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| 169 | }
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| 170 | 
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| 171 | void FFTPackServer::checkint_dfft(int_4 l)
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| 172 | {
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| 173 |   if (sz_dfft == l) return;
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| 174 | 
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| 175 |   if (ws_dfft) delete[] ws_dfft;
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| 176 |   sz_dfft = l;
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| 177 |   ws_dfft = new r_8[2*l+15];
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| 178 |   dffti_(&l, ws_dfft);
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| 179 | }
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| 180 | 
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| 181 | void FFTPackServer::checkint_cdfft(int_4 l)
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| 182 | {
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| 183 |   if (sz_cdfft == l) return;
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| 184 | 
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| 185 |   if (ws_cdfft) delete[] ws_cdfft;
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| 186 |   sz_cdfft = l;
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| 187 |   ws_cdfft = new r_8[4*l+15];
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| 188 |   cdffti_(&l, ws_cdfft);
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| 189 | }
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| 190 | 
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| 191 | /* In general forward transformations are resorted since fftpack functions
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| 192 |    return inverse transformations */
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| 193 | 
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| 194 | void FFTPackServer::fftf(int_4 l, r_4* inout)
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| 195 | {
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| 196 |   checkint_rfft(l);
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| 197 |   rfftf_(&l, inout, ws_rfft);
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| 198 |   //  for (int k= 2;k<=(l+1)/2;k++) inout[2*k-2]=-inout[2*k-2];
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| 199 | }
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| 200 | 
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| 201 | void FFTPackServer::fftf(int_4 l, r_8* inout)
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| 202 | {
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| 203 |   checkint_dfft(l);
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| 204 |   dfftf_(&l, inout, ws_dfft);
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| 205 |   //  for (int k= 2;k<=(l+1)/2;k++) inout[2*k-2]=-inout[2*k-2];
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| 206 | }
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| 207 | 
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| 208 | void FFTPackServer::fftf(int_4 l, complex<r_4>* inout)
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| 209 | {
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| 210 |   checkint_cfft(l);
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| 211 |   cfftf_(&l, (r_4 *)(inout), ws_cfft);
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| 212 | }
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| 213 | 
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| 214 | void FFTPackServer::fftf(int_4 l, complex<r_8>* inout)
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| 215 | {
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| 216 |   checkint_cdfft(l);
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| 217 |   cdfftf_(&l, (r_8*)(inout), ws_cdfft);
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| 218 | }
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| 219 | 
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| 220 | void FFTPackServer::fftb(int_4 l, r_4* inout)
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| 221 | {
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| 222 |   checkint_rfft(l);
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| 223 |   rfftb_(&l, inout, ws_rfft);
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| 224 | }
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| 225 | 
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| 226 | void FFTPackServer::fftb(int_4 l, r_8* inout)
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| 227 | {
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| 228 |   checkint_dfft(l);
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| 229 |   dfftb_(&l, inout, ws_dfft);
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| 230 | }
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| 231 | 
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| 232 | void FFTPackServer::fftb(int_4 l, complex<r_4>* inout)
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| 233 | {
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| 234 |   checkint_cfft(l);
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| 235 |   cfftb_(&l, (r_4 *)(inout), ws_cfft);
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| 236 | }
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| 237 | 
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| 238 | void FFTPackServer::fftb(int_4 l, complex<r_8>* inout)
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| 239 | {
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| 240 |   checkint_cdfft(l);
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| 241 |   cdfftb_(&l, (r_8 *)(inout), ws_cdfft);
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| 242 | }
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| 243 | 
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| 244 | // Methodes pour reordonner les donnees 
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| 245 | 
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| 246 | /* --Methode-- */
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| 247 | void FFTPackServer::ReShapetoReal( TVector< complex<r_8> > const & in, TVector< r_8 >  & out)
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| 248 | {
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| 249 |   int n = in.NElts();
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| 250 |   int ncs = (fabs(in(n-1).imag()) > 1.e-12) ? ncs = 2*n-1 : ncs = n*2-2; 
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| 251 |   out.ReSize(ncs);
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| 252 |   int k;
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| 253 |   out(0) = in(0).real();
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| 254 |   for(k=1;k<n-1;k++) {
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| 255 |     out(2*k-1) = in(k).real();
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| 256 |     out(2*k) = in(k).imag();
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| 257 |   }
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| 258 |   if (ncs == n*2-2)  out(ncs-1) = in(n-1).real();
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| 259 |   else { out(ncs-2) = in(n-1).real();  out(ncs-1) = in(n-1).imag(); }
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| 260 | }
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| 261 | 
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| 262 | /* --Methode-- */
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| 263 | void FFTPackServer::ReShapetoReal( TVector< complex<r_4> > const & in, TVector< r_4 >  & out)
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| 264 | {
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| 265 |   int n = in.NElts();
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| 266 |   int ncs = (fabs(in(n-1).imag()) > 1.e-12) ? ncs = 2*n-1 : ncs = n*2-2; 
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| 267 |   out.ReSize(ncs);
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| 268 |   int k;
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| 269 |   out(0) = in(0).real();
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| 270 |   for(k=1;k<n-1;k++) {
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| 271 |     out(2*k-1) = in(k).real();
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| 272 |     out(2*k) = in(k).imag();
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| 273 |   }
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| 274 |   if (ncs == n*2-2)  out(ncs-1) = in(n-1).real();
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| 275 |   else { out(ncs-2) = in(n-1).real();  out(ncs-1) = in(n-1).imag(); }
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| 276 | }
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| 277 | 
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| 278 | 
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| 279 | /* --Methode-- */
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| 280 | void FFTPackServer::ReShapetoCompl(TVector< r_8 > const & in, TVector< complex<r_8> > & out)
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| 281 | {
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| 282 |   uint_4 n =  in.NElts();
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| 283 |   uint_4 ncs = n/2+1;
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| 284 |   uint_4 nc = (n%2 != 0) ? n/2+1 : n/2;
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| 285 |   out.ReSize(ncs);
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| 286 |   out(0) = complex<r_8> (in(0),0.);
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| 287 |   for(int k=1;k<nc;k++) 
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| 288 |     out(k) =  complex<r_4> (in(2*k-1), in(2*k));
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| 289 |   if (n%2 == 0) out(ncs-1) = complex<r_8>(in(n-1), 0.);
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| 290 | 
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| 291 | }
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| 292 | 
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| 293 | /* --Methode-- */
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| 294 | void FFTPackServer::ReShapetoCompl(TVector< r_4 > const & in, TVector< complex<r_4> > & out)
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| 295 | {
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| 296 |   uint_4 n =  in.NElts();
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| 297 |   uint_4 ncs = n/2+1;
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| 298 |   uint_4 nc = (n%2 != 0) ? n/2+1 : n/2;
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| 299 |   out.ReSize(ncs);
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| 300 |   out(0) = complex<r_4> (in(0),0.);
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| 301 |   for(int k=1;k<nc;k++) 
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| 302 |     out(k) =  complex<r_4> (in(2*k-1), in(2*k));
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| 303 |   if (n%2 == 0) out(ncs-1) = complex<r_4>(in(n-1), 0.);
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| 304 | }
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