407 lines
17 KiB
C++
407 lines
17 KiB
C++
//
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// ********************************************************************
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// * License and Disclaimer *
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// * *
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// * The Geant4 software is copyright of the Copyright Holders of *
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// * the Geant4 Collaboration. It is provided under the terms and *
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// * conditions of the Geant4 Software License, included in the file *
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// * LICENSE and available at http://cern.ch/geant4/license . These *
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// * include a list of copyright holders. *
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// * *
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// * Neither the authors of this software system, nor their employing *
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// * institutes,nor the agencies providing financial support for this *
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// * work make any representation or warranty, express or implied, *
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// * regarding this software system or assume any liability for its *
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// * use. Please see the license in the file LICENSE and URL above *
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// * for the full disclaimer and the limitation of liability. *
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// * *
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// * This code implementation is the result of the scientific and *
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// * technical work of the GEANT4 collaboration. *
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// * By using, copying, modifying or distributing the software (or *
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// * any work based on the software) you agree to acknowledge its *
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// * use in resulting scientific publications, and indicate your *
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// * acceptance of all terms of the Geant4 Software license. *
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// ********************************************************************
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//
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//
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// $Id: G4GDMLWriteParamvol.cc,v 1.23 2008/08/20 08:56:32 gcosmo Exp $
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// GEANT4 tag $Name: geant4-09-02 $
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//
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// class G4GDMLParamVol Implementation
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//
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// Original author: Zoltan Torzsok, November 2007
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//
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// --------------------------------------------------------------------
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#include "G4GDMLWriteParamvol.hh"
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#include <sstream>
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void G4GDMLWriteParamvol::
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Box_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Box* const box)
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{
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xercesc::DOMElement* box_dimensionsElement = NewElement("box_dimensions");
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box_dimensionsElement->
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setAttributeNode(NewAttribute("x",2.0*box->GetXHalfLength()/mm));
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box_dimensionsElement->
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setAttributeNode(NewAttribute("y",2.0*box->GetYHalfLength()/mm));
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box_dimensionsElement->
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setAttributeNode(NewAttribute("z",2.0*box->GetZHalfLength()/mm));
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box_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(box_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Trd_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Trd* const trd)
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{
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xercesc::DOMElement* trd_dimensionsElement = NewElement("trd_dimensions");
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trd_dimensionsElement->
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setAttributeNode(NewAttribute("x1",2.0*trd->GetXHalfLength1()/mm));
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trd_dimensionsElement->
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setAttributeNode(NewAttribute("x2",2.0*trd->GetXHalfLength2()/mm));
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trd_dimensionsElement->
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setAttributeNode(NewAttribute("y1",2.0*trd->GetYHalfLength1()/mm));
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trd_dimensionsElement->
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setAttributeNode(NewAttribute("y2",2.0*trd->GetYHalfLength2()/mm));
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trd_dimensionsElement->
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setAttributeNode(NewAttribute("z",2.0*trd->GetZHalfLength()/mm));
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trd_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(trd_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Trap_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Trap* const trap)
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{
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const G4ThreeVector simaxis = trap->GetSymAxis();
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const G4double phi = (simaxis.z() != 1.0)
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? (std::atan(simaxis.y()/simaxis.x())) : (0.0);
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const G4double theta = std::acos(simaxis.z());
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const G4double alpha1 = std::atan(trap->GetTanAlpha1());
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const G4double alpha2 = std::atan(trap->GetTanAlpha2());
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xercesc::DOMElement* trap_dimensionsElement = NewElement("trap");
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("z",2.0*trap->GetZHalfLength()/mm));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("theta",theta/degree));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("phi",phi/degree));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("y1",2.0*trap->GetYHalfLength1()/mm));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("x1",2.0*trap->GetXHalfLength1()/mm));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("x2",2.0*trap->GetXHalfLength2()/mm));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("alpha1",alpha1/degree));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("y2",2.0*trap->GetYHalfLength2()/mm));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("x3",2.0*trap->GetXHalfLength3()/mm));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("x4",2.0*trap->GetXHalfLength4()/mm));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("alpha2",alpha2/degree));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("aunit","deg"));
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trap_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(trap_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Tube_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Tubs* const tube)
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{
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xercesc::DOMElement* tube_dimensionsElement = NewElement("tube_dimensions");
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tube_dimensionsElement->
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setAttributeNode(NewAttribute("InR",tube->GetInnerRadius()/mm));
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tube_dimensionsElement->
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setAttributeNode(NewAttribute("OutR",tube->GetOuterRadius()/mm));
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tube_dimensionsElement->
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setAttributeNode(NewAttribute("hz",2.0*tube->GetZHalfLength()/mm));
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tube_dimensionsElement->
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setAttributeNode(NewAttribute("StartPhi",tube->GetStartPhiAngle()/degree));
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tube_dimensionsElement->
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setAttributeNode(NewAttribute("DeltaPhi",tube->GetDeltaPhiAngle()/degree));
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tube_dimensionsElement->
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setAttributeNode(NewAttribute("aunit","deg"));
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tube_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(tube_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Cone_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Cons* const cone)
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{
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xercesc::DOMElement* cone_dimensionsElement = NewElement("cone_dimensions");
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("rmin1",cone->GetInnerRadiusMinusZ()/mm));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("rmax1",cone->GetOuterRadiusMinusZ()/mm));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("rmin2",cone->GetInnerRadiusPlusZ()/mm));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("rmax2",cone->GetOuterRadiusPlusZ()/mm));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("z",2.0*cone->GetZHalfLength()/mm));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("startphi",cone->GetStartPhiAngle()/degree));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("deltaphi",cone->GetDeltaPhiAngle()/degree));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("aunit","deg"));
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cone_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(cone_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Sphere_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Sphere* const sphere)
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{
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xercesc::DOMElement* sphere_dimensionsElement =
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NewElement("sphere_dimensions");
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sphere_dimensionsElement->setAttributeNode(NewAttribute("rmin",
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sphere->GetInsideRadius()/mm));
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sphere_dimensionsElement->setAttributeNode(NewAttribute("rmax",
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sphere->GetOuterRadius()/mm));
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sphere_dimensionsElement->setAttributeNode(NewAttribute("startphi",
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sphere->GetStartPhiAngle()/degree));
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sphere_dimensionsElement->setAttributeNode(NewAttribute("deltaphi",
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sphere->GetDeltaPhiAngle()/degree));
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sphere_dimensionsElement->setAttributeNode(NewAttribute("starttheta",
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sphere->GetStartThetaAngle()/degree));
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sphere_dimensionsElement->setAttributeNode(NewAttribute("deltatheta",
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sphere->GetDeltaThetaAngle()/degree));
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sphere_dimensionsElement->setAttributeNode(NewAttribute("aunit","deg"));
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sphere_dimensionsElement->setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(sphere_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Orb_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Orb* const orb)
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{
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xercesc::DOMElement* orb_dimensionsElement = NewElement("orb_dimensions");
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orb_dimensionsElement->setAttributeNode(NewAttribute("r",
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orb->GetRadius()/mm));
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orb_dimensionsElement->setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(orb_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Torus_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Torus* const torus)
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{
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xercesc::DOMElement* torus_dimensionsElement =
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NewElement("torus_dimensions");
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torus_dimensionsElement->
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setAttributeNode(NewAttribute("rmin",torus->GetRmin()/mm));
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torus_dimensionsElement->
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setAttributeNode(NewAttribute("rmax",torus->GetRmax()/mm));
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torus_dimensionsElement->
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setAttributeNode(NewAttribute("rtor",torus->GetRtor()/mm));
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torus_dimensionsElement->
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setAttributeNode(NewAttribute("startphi",torus->GetSPhi()/degree));
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torus_dimensionsElement->
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setAttributeNode(NewAttribute("deltaphi",torus->GetDPhi()/degree));
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torus_dimensionsElement->
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setAttributeNode(NewAttribute("aunit","deg"));
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torus_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(torus_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Para_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Para* const para)
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{
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const G4ThreeVector simaxis = para->GetSymAxis();
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const G4double alpha = std::atan(para->GetTanAlpha());
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const G4double theta = std::acos(simaxis.z());
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const G4double phi = (simaxis.z() != 1.0)
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? (std::atan(simaxis.y()/simaxis.x())) : (0.0);
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xercesc::DOMElement* para_dimensionsElement = NewElement("para_dimensions");
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para_dimensionsElement->
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setAttributeNode(NewAttribute("x",2.0*para->GetXHalfLength()/mm));
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para_dimensionsElement->
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setAttributeNode(NewAttribute("y",2.0*para->GetYHalfLength()/mm));
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para_dimensionsElement->
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setAttributeNode(NewAttribute("z",2.0*para->GetZHalfLength()/mm));
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para_dimensionsElement->
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setAttributeNode(NewAttribute("alpha",alpha/degree));
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para_dimensionsElement->
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setAttributeNode(NewAttribute("theta",theta/degree));
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para_dimensionsElement->
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setAttributeNode(NewAttribute("phi",phi/degree));
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para_dimensionsElement->
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setAttributeNode(NewAttribute("aunit","deg"));
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para_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(para_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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Hype_dimensionsWrite(xercesc::DOMElement* parametersElement,
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const G4Hype* const hype)
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{
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xercesc::DOMElement* hype_dimensionsElement = NewElement("hype_dimensions");
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hype_dimensionsElement->
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setAttributeNode(NewAttribute("rmin",hype->GetInnerRadius()/mm));
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hype_dimensionsElement->
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setAttributeNode(NewAttribute("rmax",hype->GetOuterRadius()/mm));
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hype_dimensionsElement->
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setAttributeNode(NewAttribute("inst",hype->GetInnerStereo()/degree));
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hype_dimensionsElement->
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setAttributeNode(NewAttribute("outst",hype->GetOuterStereo()/degree));
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hype_dimensionsElement->
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setAttributeNode(NewAttribute("z",2.0*hype->GetZHalfLength()/mm));
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hype_dimensionsElement->
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setAttributeNode(NewAttribute("aunit","deg"));
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hype_dimensionsElement->
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setAttributeNode(NewAttribute("lunit","mm"));
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parametersElement->appendChild(hype_dimensionsElement);
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}
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void G4GDMLWriteParamvol::
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ParametersWrite(xercesc::DOMElement* paramvolElement,
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const G4VPhysicalVolume* const paramvol,const G4int& index)
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{
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paramvol->GetParameterisation()
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->ComputeTransformation(index, const_cast<G4VPhysicalVolume*>(paramvol));
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G4ThreeVector Angles;
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G4String name = GenerateName(paramvol->GetName(),paramvol);
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std::stringstream os;
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os.precision(15);
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os << index;
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G4String sncopie = os.str();
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xercesc::DOMElement* parametersElement = NewElement("parameters");
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parametersElement->setAttributeNode(NewAttribute("number",index+1));
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PositionWrite(parametersElement, name+sncopie+"_pos",
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paramvol->GetObjectTranslation());
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Angles=GetAngles(paramvol->GetObjectRotationValue());
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if (Angles.mag2()>DBL_EPSILON)
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{
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RotationWrite(parametersElement, name+sncopie+"_rot",
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GetAngles(paramvol->GetObjectRotationValue()));
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}
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paramvolElement->appendChild(parametersElement);
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G4VSolid* solid = paramvol->GetLogicalVolume()->GetSolid();
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if (G4Box* box = dynamic_cast<G4Box*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*box,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Box_dimensionsWrite(parametersElement,box);
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} else
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if (G4Trd* trd = dynamic_cast<G4Trd*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*trd,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Trd_dimensionsWrite(parametersElement,trd);
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} else
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if (G4Trap* trap = dynamic_cast<G4Trap*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*trap,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Trap_dimensionsWrite(parametersElement,trap);
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} else
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if (G4Tubs* tube = dynamic_cast<G4Tubs*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*tube,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Tube_dimensionsWrite(parametersElement,tube);
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} else
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if (G4Cons* cone = dynamic_cast<G4Cons*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*cone,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Cone_dimensionsWrite(parametersElement,cone);
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} else
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if (G4Sphere* sphere = dynamic_cast<G4Sphere*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*sphere,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Sphere_dimensionsWrite(parametersElement,sphere);
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} else
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if (G4Orb* orb = dynamic_cast<G4Orb*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*orb,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Orb_dimensionsWrite(parametersElement,orb);
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} else
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if (G4Torus* torus = dynamic_cast<G4Torus*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*torus,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Torus_dimensionsWrite(parametersElement,torus);
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} else
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if (G4Para* para = dynamic_cast<G4Para*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*para,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Para_dimensionsWrite(parametersElement,para);
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} else
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if (G4Hype* hype = dynamic_cast<G4Hype*>(solid))
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{
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paramvol->GetParameterisation()->ComputeDimensions(*hype,index,
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const_cast<G4VPhysicalVolume*>(paramvol));
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Hype_dimensionsWrite(parametersElement,hype);
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}
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else
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{
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G4String error_msg = "Solid '" + solid->GetName()
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+ "' cannot be used in parameterised volume!";
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G4Exception("G4GDMLWriteParamvol::ParametersWrite()",
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"InvalidSetup", FatalException, error_msg);
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}
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}
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void G4GDMLWriteParamvol::
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ParamvolWrite(xercesc::DOMElement* volumeElement,
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const G4VPhysicalVolume* const paramvol)
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{
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const G4String volumeref =
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GenerateName(paramvol->GetLogicalVolume()->GetName(),
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paramvol->GetLogicalVolume());
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xercesc::DOMElement* paramvolElement = NewElement("paramvol");
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paramvolElement->setAttributeNode(NewAttribute("ncopies",
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paramvol->GetMultiplicity()));
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xercesc::DOMElement* volumerefElement = NewElement("volumeref");
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volumerefElement->setAttributeNode(NewAttribute("ref",volumeref));
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xercesc::DOMElement* algorithmElement =
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NewElement("parameterised_position_size");
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paramvolElement->appendChild(volumerefElement);
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paramvolElement->appendChild(algorithmElement);
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ParamvolAlgorithmWrite(algorithmElement,paramvol);
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volumeElement->appendChild(paramvolElement);
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}
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void G4GDMLWriteParamvol::
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ParamvolAlgorithmWrite(xercesc::DOMElement* paramvolElement,
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const G4VPhysicalVolume* const paramvol)
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{
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const G4String volumeref =
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GenerateName(paramvol->GetLogicalVolume()->GetName(),
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paramvol->GetLogicalVolume());
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const G4int parameterCount = paramvol->GetMultiplicity();
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for (G4int i=0; i<parameterCount; i++)
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{
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ParametersWrite(paramvolElement,paramvol,i);
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}
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}
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