| 1 | #ifndef MARS_MExtralgoDigitalFilter
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| 2 | #define MARS_MExtralgoDigitalFilter
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| 3 |
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| 4 | #ifndef ROOT_TMatrix
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| 5 | #include <TMatrix.h>
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| 6 | #endif
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| 7 |
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| 8 | class TH1;
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| 9 | class TH2;
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| 10 | class TH1F;
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| 11 | class TH2F;
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| 12 | class TArrayF;
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| 13 |
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| 14 | //#include <TMatrix.h>
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| 15 |
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| 16 | class MExtralgoDigitalFilter
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| 17 | {
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| 18 | private:
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| 19 | // Input
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| 20 | const Float_t *fVal;
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| 21 | Int_t fNum;
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| 22 |
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| 23 | Float_t const *fWeightsAmp;
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| 24 | Float_t const *fWeightsTime;
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| 25 | Float_t const *fPulseShape;
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| 26 |
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| 27 | const TMatrix *fAinv;
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| 28 |
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| 29 | const Int_t fWeightsPerBin; // Number of weights per data bin
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| 30 | const Int_t fWindowSize;
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| 31 |
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| 32 | // Result
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| 33 | Float_t fTime;
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| 34 | Float_t fTimeDev;
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| 35 | Float_t fSignal;
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| 36 | Float_t fSignalDev;
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| 37 |
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| 38 | Float_t GetChisq(const Int_t maxp, const Int_t frac, const Float_t sum) const;
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| 39 |
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| 40 | inline Double_t ChiSq(const Double_t sum, const Int_t startv, const Int_t startw=0) const
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| 41 | {
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| 42 | //
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| 43 | // Slide with a window of size windowsize over the sample
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| 44 | // and multiply the entries with the corresponding weights
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| 45 | //
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| 46 | Double_t chisq = 0;
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| 47 |
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| 48 | // Shift the start of the weight to the center of sample 0
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| 49 | Float_t const *w = fPulseShape + startw;
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| 50 |
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| 51 | const Float_t *beg = fVal+startv;
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| 52 | for (Float_t const *pex=beg; pex<beg+fWindowSize; pex++)
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| 53 | {
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| 54 | const Double_t c = *w - *pex/sum;
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| 55 | chisq += c*c;
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| 56 | w += fWeightsPerBin;
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| 57 | }
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| 58 | return chisq;
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| 59 | }
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| 60 |
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| 61 | // Weights: Weights to evaluate
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| 62 | // Startv: Index of first bin of data
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| 63 | // startw: Offset on the weights
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| 64 | inline Double_t Eval(Float_t const *weights, const Int_t startv, const Int_t startw=0) const
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| 65 | {
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| 66 | //
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| 67 | // Slide with a window of size windowsize over the sample
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| 68 | // and multiply the entries with the corresponding weights
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| 69 | //
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| 70 | Double_t sum = 0;
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| 71 |
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| 72 | // Shift the start of the weight to the center of sample 0
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| 73 | Float_t const *w = weights + startw;
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| 74 |
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| 75 | const Float_t *beg = fVal+startv;
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| 76 | for (Float_t const *pex=beg; pex<beg+fWindowSize; pex++)
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| 77 | {
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| 78 | sum += *w * *pex;
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| 79 | w += fWeightsPerBin;
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| 80 | }
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| 81 | return sum;
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| 82 | }
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| 83 |
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| 84 | inline void AlignIntoLimits(Int_t &maxp, Int_t &frac) const
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| 85 | {
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| 86 | // Align maxp into available range (TO BE CHECKED)
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| 87 | if (maxp < 0)
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| 88 | {
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| 89 | maxp = 0;
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| 90 | frac = fWeightsPerBin/2-1; // Assume peak at the end of the last slice
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| 91 | }
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| 92 | if (maxp > fNum-fWindowSize)
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| 93 | {
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| 94 | maxp = fNum-fWindowSize;
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| 95 | frac = -fWeightsPerBin/2; // Assume peak at the beginning of the first slice
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| 96 | }
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| 97 | }
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| 98 |
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| 99 | inline Int_t AlignExtractionWindow(Int_t &maxp, Int_t &frac, const Double_t ampsum)
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| 100 | {
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| 101 | // Align extraction window to signal position
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| 102 |
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| 103 | const Double_t timesum = Eval(fWeightsTime, maxp, frac);
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| 104 |
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| 105 | // Because fWeightsPerBin/2 doesn't correspond to the center
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| 106 | // of a bin the time-values extracted are slightly positive.
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| 107 | // They are roughly between -0.45 and 0.55
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| 108 | const Double_t binoffset = TMath::Even(fWeightsPerBin) ? 0.5 : 0;
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| 109 |
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| 110 | // This is the time offset from the extraction position
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| 111 | Double_t tmoffset = (frac+binoffset)/fWeightsPerBin + timesum/ampsum;
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| 112 |
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| 113 | // Convert the residual fraction of one slice into an
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| 114 | // offset position in the extraction weights
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| 115 | const Int_t integ = TMath::FloorNint(tmoffset+0.5);
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| 116 |
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| 117 | /*
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| 118 | if (integ>0)
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| 119 | tmoffset=0.49-0.05;
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| 120 | if (integ<0)
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| 121 | tmoffset=-0.49-0.05;
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| 122 | integ=0;
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| 123 | */
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| 124 |
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| 125 | // move the extractor by an offset number of slices
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| 126 | // determined by the extracted time
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| 127 | maxp -= integ;
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| 128 |
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| 129 | frac = TMath::FloorNint((tmoffset-integ)*fWeightsPerBin);
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| 130 |
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| 131 | // Align maxp into available range (TO BE CHECKED)
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| 132 | AlignIntoLimits(maxp, frac);
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| 133 |
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| 134 | return integ;
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| 135 | }
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| 136 |
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| 137 | inline void AlignExtractionWindow(Int_t &maxp, Int_t &frac)
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| 138 | {
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| 139 | const Double_t amp = Eval(fWeightsAmp, maxp, frac);
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| 140 | if (amp!=0)
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| 141 | AlignExtractionWindow(maxp, frac, amp);
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| 142 | }
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| 143 |
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| 144 | public:
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| 145 | MExtralgoDigitalFilter(Int_t res, Int_t windowsize, Float_t *wa, Float_t *wt, Float_t *ps=0, TMatrix *ainv=0)
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| 146 | : fVal(0), fNum(0), fWeightsAmp(wa+res/2), fWeightsTime(wt+res/2),
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| 147 | fPulseShape(ps), fAinv(ainv), fWeightsPerBin(res), fWindowSize(windowsize),
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| 148 | fTime(0), fTimeDev(-1), fSignal(0), fSignalDev(-1)
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| 149 | {
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| 150 | }
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| 151 |
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| 152 | void SetData(Int_t n, Float_t const *val) { fNum=n; fVal=val; }
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| 153 |
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| 154 | Float_t GetTime() const { return fTime; }
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| 155 | Float_t GetSignal() const { return fSignal; }
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| 156 |
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| 157 | Float_t GetTimeDev() const { return fTimeDev; }
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| 158 | Float_t GetSignalDev() const { return fSignalDev; }
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| 159 |
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| 160 | void GetSignal(Float_t &sig, Float_t &dsig) const { sig=fSignal; dsig=fSignalDev; }
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| 161 | void GetTime(Float_t &sig, Float_t &dsig) const { sig=fTime; dsig=fTimeDev; }
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| 162 |
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| 163 | Float_t ExtractNoise(Int_t iter) const;
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| 164 | void Extract(Int_t maxpos=-1);
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| 165 |
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| 166 | static Int_t CalculateWeights(TH1 &shape, const TH2 &autocorr, TArrayF &wa, TArrayF &wt, Int_t wpb=-1);
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| 167 | static Int_t CalculateWeights2(TH1 &shape, const TH2 &autocorr, TArrayF &wa, TArrayF &wt, Int_t wpb=-1);
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| 168 | };
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| 169 |
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| 170 |
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| 171 | #endif
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