346 lines
13 KiB
C++
346 lines
13 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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// G4ExtrudedSolid
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//
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// Class description:
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//
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// G4ExtrudedSolid is a solid which represents the extrusion of an arbitrary
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// polygon with fixed outline in the defined Z sections.
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// The z-sides of the solid are the scaled versions of the same polygon.
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// The solid is implemented as a specification of G4TessellatedSolid.
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//
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// Parameters in the constructor:
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// const G4String& pName - solid name
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// std::vector<G4TwoVector> polygon - the vertices of the outlined polygon
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// defined in clockwise or anti-clockwise order
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// std::vector<ZSection> - the z-sections defined by
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// z position, offset and scale
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// in increasing z-position order
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//
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// Parameters in the special constructor (for solid with 2 z-sections:
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// G4double halfZ - the solid half length in Z
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// G4TwoVector off1 - offset of the side in -halfZ
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// G4double scale1 - scale of the side in -halfZ
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// G4TwoVector off2 - offset of the side in +halfZ
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// G4double scale2 - scale of the side in +halfZ
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// Author: Ivana Hrivnacova (IPN, Orsay), 09.02.2007 - First implementation
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// --------------------------------------------------------------------
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#ifndef G4EXTRUDEDSOLID_HH
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#define G4EXTRUDEDSOLID_HH
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#include "G4GeomTypes.hh"
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#if defined(G4GEOM_USE_USOLIDS)
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#define G4GEOM_USE_UEXTRUDEDSOLID 1
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#endif
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#if defined(G4GEOM_USE_UEXTRUDEDSOLID)
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#define G4UExtrudedSolid G4ExtrudedSolid
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#include "G4UExtrudedSolid.hh"
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#else
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#include <vector>
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#include "G4TwoVector.hh"
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#include "G4TessellatedSolid.hh"
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/**
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* @brief G4ExtrudedSolid is a is a solid which represents the extrusion
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* of an arbitrary polygon with fixed outline in the defined Z sections.
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* The z-sides of the solid are the scaled versions of the same polygon.
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* The solid is implemented as a specification of a G4TessellatedSolid.
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*/
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class G4ExtrudedSolid : public G4TessellatedSolid
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{
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public:
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/**
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* Structure defining a Z section composing the solid.
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*/
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struct ZSection
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{
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ZSection() : fZ(0.), fOffset(0.,0.), fScale(1.) {}
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ZSection(G4double z, const G4TwoVector& offset, G4double scale)
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: fZ(z), fOffset(offset), fScale(scale) {}
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G4double fZ;
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G4TwoVector fOffset;
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G4double fScale;
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};
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/**
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* General constructor for an extruded polygon, through contour and polyline.
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* @param[in] pName The solid name.
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* @param[in] polygon The 2D polygonal contour, i.e. the vertices of the
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* outlined polygon defined in clock-wise order.
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* @param[in] zsections The 3D polyline with scale factors, i.e. the
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* Z-sections defined by Z position in increasing order.
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*/
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G4ExtrudedSolid( const G4String& pName,
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const std::vector<G4TwoVector>& polygon,
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const std::vector<ZSection>& zsections);
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/**
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* Special constructor for an extruded polygon with 2 Z-sections.
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* @param[in] pName The solid name.
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* @param[in] polygon The 2D polygonal contour, i.e. the vertices of the
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* outlined polygon defined in clock-wise order.
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* @param[in] halfZ Half length in Z, i.e. the distance from the origin
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* to the sections.
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* @param[in] off1 (X, Y) position of the first polygon in -halfZ.
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* @param[in] scale1 Scale factor at -halfZ.
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* @param[in] off2 (X, Y) position of the second polygon in +halfZ.
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* @param[in] scale2 Scale factor at +halfZ.
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*/
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G4ExtrudedSolid( const G4String& pName,
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const std::vector<G4TwoVector>& polygon,
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G4double halfZ,
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const G4TwoVector& off1 = G4TwoVector(0.,0.),
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G4double scale1 = 1.,
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const G4TwoVector& off2 = G4TwoVector(0.,0.),
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G4double scale2 = 1. );
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/**
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* Default Destructor.
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*/
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~G4ExtrudedSolid() override = default;
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/**
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* Accessors.
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*/
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inline G4int GetNofVertices() const;
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inline G4TwoVector GetVertex(G4int index) const;
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inline std::vector<G4TwoVector> GetPolygon() const;
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inline G4int GetNofZSections() const;
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inline ZSection GetZSection(G4int index) const;
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inline std::vector<ZSection> GetZSections() const;
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/**
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* Concrete implementations of the expected query interfaces for
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* solids, as defined in the base class G4VSolid.
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*/
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EInside Inside(const G4ThreeVector& p) const override;
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G4ThreeVector SurfaceNormal(const G4ThreeVector& p) const override;
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G4double DistanceToIn(const G4ThreeVector& p,
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const G4ThreeVector& v) const override;
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G4double DistanceToIn(const G4ThreeVector& p ) const override;
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G4double DistanceToOut(const G4ThreeVector& p,
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const G4ThreeVector& v,
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const G4bool calcNorm = false,
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G4bool* validNorm = nullptr,
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G4ThreeVector* n = nullptr) const override;
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G4double DistanceToOut(const G4ThreeVector& p) const override;
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/**
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* Computes the bounding limits of the solid.
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* @param[out] pMin The minimum bounding limit point.
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* @param[out] pMax The maximum bounding limit point.
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*/
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void BoundingLimits(G4ThreeVector& pMin, G4ThreeVector& pMax) const override;
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/**
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* Calculates the minimum and maximum extent of the solid, when under the
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* specified transform, and within the specified limits.
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* @param[in] pAxis The axis along which compute the extent.
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* @param[in] pVoxelLimit The limiting space dictated by voxels.
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* @param[in] pTransform The internal transformation applied to the solid.
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* @param[out] pMin The minimum extent value.
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* @param[out] pMax The maximum extent value.
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* @returns True if the solid is intersected by the extent region.
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*/
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G4bool CalculateExtent(const EAxis pAxis,
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const G4VoxelLimits& pVoxelLimit,
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const G4AffineTransform& pTransform,
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G4double& pMin, G4double& pMax) const override;
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/**
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* Returns the type ID, "G4ExtrudedSolid" of the solid.
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*/
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G4GeometryType GetEntityType () const override;
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/**
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* Returns true as the solid has only planar faces.
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*/
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G4bool IsFaceted () const override;
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/**
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* Makes a clone of the object for use in multi-treading.
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* @returns A pointer to the new cloned allocated solid.
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*/
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G4VSolid* Clone() const override;
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/**
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* Streams the object contents to an output stream.
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*/
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std::ostream& StreamInfo(std::ostream& os) const override;
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/**
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* Fake default constructor for usage restricted to direct object
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* persistency for clients requiring preallocation of memory for
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* persistifiable objects.
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*/
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G4ExtrudedSolid(__void__&);
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/**
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* Copy constructor and assignment operator.
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*/
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G4ExtrudedSolid(const G4ExtrudedSolid& rhs) = default;
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G4ExtrudedSolid& operator=(const G4ExtrudedSolid& rhs);
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private:
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/**
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* Algorithm for SurfaceNormal() following the original
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* specification for points not on the surface.
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*/
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G4ThreeVector ApproxSurfaceNormal(const G4ThreeVector& p) const;
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/**
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* Computes parameters for point projections p(z)
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* to the polygon scale & offset.
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*/
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void ComputeProjectionParameters();
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/**
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* Computes the lateral planes: a*x + b*y + c*z + d = 0.
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*/
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void ComputeLateralPlanes();
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/**
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* Returns if point 'p' is within the polygon.
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*/
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inline G4bool PointInPolygon(const G4ThreeVector& p) const;
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/**
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* Returns the square distance of point 'p' from the polygon.
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*/
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inline G4double DistanceToPolygonSqr(const G4ThreeVector& p) const;
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/**
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* Returns the vertex coordinates, given the indeces for the
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* polygons and Z sections.
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* @param[in] iz Index for the Z section.
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* @param[in] ind Index for the polygon.
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* @returns The shifted and scaled coordinates of the vertex.
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*/
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G4ThreeVector GetVertex(G4int iz, G4int ind) const;
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/**
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* Returns the projected point of 'p' in the polygon scale.
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*/
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G4TwoVector ProjectPoint(const G4ThreeVector& point) const;
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/**
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* Returns true if 'p' is on the line through 'l1', 'l2'.
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*/
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G4bool IsSameLine(const G4TwoVector& p,
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const G4TwoVector& l1,
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const G4TwoVector& l2) const;
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/**
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* Returns true if 'p' is on the line through 'l1', 'l2'
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* and lies between 'l1' and 'l2'.
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*/
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G4bool IsSameLineSegment(const G4TwoVector& p,
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const G4TwoVector& l1,
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const G4TwoVector& l2) const;
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/**
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* Returns true if 'p1' and 'p2' are on the same side of the line
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* through 'l1', 'l2'.
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*/
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G4bool IsSameSide(const G4TwoVector& p1,
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const G4TwoVector& p2,
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const G4TwoVector& l1,
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const G4TwoVector& l2) const;
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/**
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* Returns true if 'p' is inside of triangle abc or on its edges.
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*/
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G4bool IsPointInside(const G4TwoVector& a,
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const G4TwoVector& b,
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const G4TwoVector& c,
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const G4TwoVector& p) const;
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/**
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* Returns the angle of the vertex in 'p0'.
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*/
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G4double GetAngle(const G4TwoVector& p0,
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const G4TwoVector& pa,
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const G4TwoVector& pb) const;
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/**
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* Returns a pointer to a triangular facet from the polygon points
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* given by indices forming the down side ( the normal goes in -z).
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*/
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G4VFacet* MakeDownFacet(G4int ind1, G4int ind2, G4int ind3) const;
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/**
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* Returns a pointer to a triangular facet from the polygon points
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* given by indices forming the upper side ( z>0 ).
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*/
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G4VFacet* MakeUpFacet(G4int ind1, G4int ind2, G4int ind3) const;
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/**
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* Decomposes polygonal sides in triangular facets.
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* @returns false if failing to define a facet.
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*/
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G4bool AddGeneralPolygonFacets();
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/**
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* Generates the tessellated structure of the solid creating the
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* triangular or quadrangular facets from the vertices.
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* @returns false if failing to define a facet.
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*/
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G4bool MakeFacets();
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private:
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std::size_t fNv;
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std::size_t fNz;
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std::vector<G4TwoVector> fPolygon;
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std::vector<ZSection> fZSections;
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std::vector< std::vector<G4int> > fTriangles;
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G4bool fIsConvex = false;
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G4GeometryType fGeometryType;
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G4int fSolidType = 0;
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struct plane { G4double a,b,c,d; }; // a*x + b*y + c*z + d = 0
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std::vector<plane> fPlanes;
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struct line { G4double k,m; }; // x = k*y + m;
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std::vector<line> fLines;
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std::vector<G4double> fLengths; // edge lengths
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std::vector<G4double> fKScales;
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std::vector<G4double> fScale0s;
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std::vector<G4TwoVector> fKOffsets;
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std::vector<G4TwoVector> fOffset0s;
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};
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#include "G4ExtrudedSolid.icc"
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#endif
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#endif
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