Deal with missing alpha line for beta-NMR.
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@ -105,26 +105,25 @@ PRunAsymmetryBNMR::PRunAsymmetryBNMR(PMsrHandler *msrInfo, PRunDataHandler *rawD
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PMsrParamList *param = msrInfo->GetMsrParamList();
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// check if alpha is given
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Bool_t alphaFixedToOne = false;
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if (fRunInfo->GetAlphaParamNo() == -1) { // no alpha given
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cerr << endl << ">> PRunAsymmetryBNMR::PRunAsymmetryBNMR(): **ERROR** no alpha parameter given! This is needed for an asymmetry fit!";
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cerr << endl;
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fValid = false;
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return;
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}
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// check if alpha parameter is within proper bounds
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if ((fRunInfo->GetAlphaParamNo() < 0) || (fRunInfo->GetAlphaParamNo() > (Int_t)param->size())) {
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// cerr << endl << ">> PRunAsymmetryBNMR::PRunAsymmetryBNMR(): **ERROR** no alpha parameter given! This is needed for an asymmetry fit!";
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// cerr << endl;
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// fValid = false;
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// return;
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alphaFixedToOne = true;
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} else if ((fRunInfo->GetAlphaParamNo() < 0) || (fRunInfo->GetAlphaParamNo() > (Int_t)param->size())) { // check if alpha parameter is within proper bounds
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cerr << endl << ">> PRunAsymmetryBNMR::PRunAsymmetryBNMR(): **ERROR** alpha parameter no = " << fRunInfo->GetAlphaParamNo();
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cerr << endl << ">> This is out of bound, since there are only " << param->size() << " parameters.";
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cerr << endl;
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fValid = false;
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return;
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} else { // check if alpha is fixed
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if (((*param)[fRunInfo->GetAlphaParamNo()-1].fStep == 0.0) &&
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((*param)[fRunInfo->GetAlphaParamNo()-1].fValue == 1.0))
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alphaFixedToOne = true;
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}
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// check if alpha is fixed
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Bool_t alphaFixedToOne = false;
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if (((*param)[fRunInfo->GetAlphaParamNo()-1].fStep == 0.0) &&
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((*param)[fRunInfo->GetAlphaParamNo()-1].fValue == 1.0))
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alphaFixedToOne = true;
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// check if beta is given
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Bool_t betaFixedToOne = false;
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if (fRunInfo->GetBetaParamNo() == -1) { // no beta given hence assuming beta == 1
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@ -222,18 +221,18 @@ Double_t PRunAsymmetryBNMR::CalcChiSquare(const std::vector<Double_t>& par)
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break;
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case 2: // alpha != 1, beta == 1
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a = par[fRunInfo->GetAlphaParamNo()-1];
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f = fTheory->Func(time, par, fFuncValues)/2;
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f = fTheory->Func(time, par, fFuncValues)/2.0;
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asymFcnValue = (f*(a+1.0)-(a-1.0))/((a+1.0)-f*(a-1.0)) - (-f*(a+1.0)-(a-1.0))/((a+1.0)+f*(a-1.0));
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break;
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case 3: // alpha == 1, beta != 1
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b = par[fRunInfo->GetBetaParamNo()-1];
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f = fTheory->Func(time, par, fFuncValues)/2;
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f = fTheory->Func(time, par, fFuncValues)/2.0;
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asymFcnValue = f*(b+1.0)/(2.0-f*(b-1.0))-f*(b+1.0)/(2.0+f*(b-1.0));
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break;
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case 4: // alpha != 1, beta != 1
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a = par[fRunInfo->GetAlphaParamNo()-1];
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b = par[fRunInfo->GetBetaParamNo()-1];
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f = fTheory->Func(time, par, fFuncValues)/2;
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f = fTheory->Func(time, par, fFuncValues)/2.0;
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asymFcnValue = (f*(a*b+1.0)-(a-1.0))/((a+1.0)-f*(a*b-1.0))-(-f*(a*b+1.0)-(a-1.0))/((a+1.0)+f*(a*b-1.0));
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break;
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default:
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