218 lines
12 KiB
C++
218 lines
12 KiB
C++
// Jolt Physics Library (https://github.com/jrouwe/JoltPhysics)
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// SPDX-FileCopyrightText: 2021 Jorrit Rouwe
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// SPDX-License-Identifier: MIT
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#pragma once
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#include <Jolt/Physics/Collision/Shape/Shape.h>
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#include <Jolt/Physics/Collision/PhysicsMaterial.h>
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#include <Jolt/Core/ByteBuffer.h>
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#include <Jolt/Geometry/Triangle.h>
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#include <Jolt/Geometry/IndexedTriangle.h>
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#ifdef JPH_DEBUG_RENDERER
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#include <Jolt/Renderer/DebugRenderer.h>
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#endif // JPH_DEBUG_RENDERER
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JPH_NAMESPACE_BEGIN
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class ConvexShape;
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class CollideShapeSettings;
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/// Class that constructs a MeshShape
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class JPH_EXPORT MeshShapeSettings final : public ShapeSettings
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{
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JPH_DECLARE_SERIALIZABLE_VIRTUAL(JPH_EXPORT, MeshShapeSettings)
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public:
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/// Default constructor for deserialization
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MeshShapeSettings() = default;
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/// Create a mesh shape.
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MeshShapeSettings(const TriangleList &inTriangles, PhysicsMaterialList inMaterials = PhysicsMaterialList());
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MeshShapeSettings(VertexList inVertices, IndexedTriangleList inTriangles, PhysicsMaterialList inMaterials = PhysicsMaterialList());
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/// Sanitize the mesh data. Remove duplicate and degenerate triangles. This is called automatically when constructing the MeshShapeSettings with a list of (indexed-) triangles.
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void Sanitize();
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// See: ShapeSettings
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virtual ShapeResult Create() const override;
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/// Vertices belonging to mIndexedTriangles
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VertexList mTriangleVertices;
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/// Original list of indexed triangles (triangles will be reordered internally in the mesh shape).
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/// Triangles must be provided in counter clockwise order.
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/// Degenerate triangles will automatically be removed during mesh creation but no other mesh simplifications are performed, use an external library if this is desired.
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/// For simulation, the triangles are considered to be single sided.
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/// For ray casts you can choose to make triangles double sided by setting RayCastSettings::mBackFaceMode to EBackFaceMode::CollideWithBackFaces.
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/// For collide shape tests you can use CollideShapeSettings::mBackFaceMode and for shape casts you can use ShapeCastSettings::mBackFaceModeTriangles.
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IndexedTriangleList mIndexedTriangles;
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/// Materials assigned to the triangles. Each triangle specifies which material it uses through its mMaterialIndex
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PhysicsMaterialList mMaterials;
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/// Maximum number of triangles in each leaf of the axis aligned box tree. This is a balance between memory and performance. Can be in the range [1, MeshShape::MaxTrianglesPerLeaf].
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/// Sensible values are between 4 (for better performance) and 8 (for less memory usage).
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uint mMaxTrianglesPerLeaf = 8;
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/// Cosine of the threshold angle (if the angle between the two triangles is bigger than this, the edge is active, note that a concave edge is always inactive).
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/// Setting this value too small can cause ghost collisions with edges, setting it too big can cause depenetration artifacts (objects not depenetrating quickly).
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/// Valid ranges are between cos(0 degrees) and cos(90 degrees). The default value is cos(5 degrees).
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float mActiveEdgeCosThresholdAngle = 0.996195f; // cos(5 degrees)
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/// When true, we store the user data coming from Triangle::mUserData or IndexedTriangle::mUserData in the mesh shape.
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/// This can be used to store additional data like the original index of the triangle in the mesh.
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/// Can be retrieved using MeshShape::GetTriangleUserData.
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/// Turning this on increases the memory used by the MeshShape by roughly 25%.
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bool mPerTriangleUserData = false;
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};
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/// A mesh shape, consisting of triangles. Mesh shapes are mostly used for static geometry.
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/// They can be used by dynamic or kinematic objects but only if they don't collide with other mesh or heightfield shapes as those collisions are currently not supported.
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/// Note that if you make a mesh shape a dynamic or kinematic object, you need to provide a mass yourself as mesh shapes don't need to form a closed hull so don't have a well defined volume from which the mass can be calculated.
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class JPH_EXPORT MeshShape final : public Shape
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{
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public:
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JPH_OVERRIDE_NEW_DELETE
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/// Constructor
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MeshShape() : Shape(EShapeType::Mesh, EShapeSubType::Mesh) { }
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MeshShape(const MeshShapeSettings &inSettings, ShapeResult &outResult);
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// See Shape::MustBeStatic
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virtual bool MustBeStatic() const override { return true; }
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// See Shape::GetLocalBounds
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virtual AABox GetLocalBounds() const override;
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// See Shape::GetSubShapeIDBitsRecursive
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virtual uint GetSubShapeIDBitsRecursive() const override;
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// See Shape::GetInnerRadius
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virtual float GetInnerRadius() const override { return 0.0f; }
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// See Shape::GetMassProperties
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virtual MassProperties GetMassProperties() const override;
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// See Shape::GetMaterial
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virtual const PhysicsMaterial * GetMaterial(const SubShapeID &inSubShapeID) const override;
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/// Get the list of all materials
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const PhysicsMaterialList & GetMaterialList() const { return mMaterials; }
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/// Determine which material index a particular sub shape uses (note that if there are no materials this function will return 0 so check the array size)
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/// Note: This could for example be used to create a decorator shape around a mesh shape that overrides the GetMaterial call to replace a material with another material.
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uint GetMaterialIndex(const SubShapeID &inSubShapeID) const;
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// See Shape::GetSurfaceNormal
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virtual Vec3 GetSurfaceNormal(const SubShapeID &inSubShapeID, Vec3Arg inLocalSurfacePosition) const override;
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// See Shape::GetSupportingFace
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virtual void GetSupportingFace(const SubShapeID &inSubShapeID, Vec3Arg inDirection, Vec3Arg inScale, Mat44Arg inCenterOfMassTransform, SupportingFace &outVertices) const override;
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#ifdef JPH_DEBUG_RENDERER
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// See Shape::Draw
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virtual void Draw(DebugRenderer *inRenderer, RMat44Arg inCenterOfMassTransform, Vec3Arg inScale, ColorArg inColor, bool inUseMaterialColors, bool inDrawWireframe) const override;
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#endif // JPH_DEBUG_RENDERER
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// See Shape::CastRay
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virtual bool CastRay(const RayCast &inRay, const SubShapeIDCreator &inSubShapeIDCreator, RayCastResult &ioHit) const override;
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virtual void CastRay(const RayCast &inRay, const RayCastSettings &inRayCastSettings, const SubShapeIDCreator &inSubShapeIDCreator, CastRayCollector &ioCollector, const ShapeFilter &inShapeFilter = { }) const override;
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/// See: Shape::CollidePoint
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/// Note that for CollidePoint to work for a mesh shape, the mesh needs to be closed (a manifold) or multiple non-intersecting manifolds. Triangles may be facing the interior of the manifold.
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/// Insideness is tested by counting the amount of triangles encountered when casting an infinite ray from inPoint. If the number of hits is odd we're inside, if it's even we're outside.
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virtual void CollidePoint(Vec3Arg inPoint, const SubShapeIDCreator &inSubShapeIDCreator, CollidePointCollector &ioCollector, const ShapeFilter &inShapeFilter = { }) const override;
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// See: Shape::CollideSoftBodyVertices
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virtual void CollideSoftBodyVertices(Mat44Arg inCenterOfMassTransform, Vec3Arg inScale, const CollideSoftBodyVertexIterator &inVertices, uint inNumVertices, int inCollidingShapeIndex) const override;
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// See Shape::GetTrianglesStart
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virtual void GetTrianglesStart(GetTrianglesContext &ioContext, const AABox &inBox, Vec3Arg inPositionCOM, QuatArg inRotation, Vec3Arg inScale) const override;
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// See Shape::GetTrianglesNext
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virtual int GetTrianglesNext(GetTrianglesContext &ioContext, int inMaxTrianglesRequested, Float3 *outTriangleVertices, const PhysicsMaterial **outMaterials = nullptr) const override;
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// See Shape::GetSubmergedVolume
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virtual void GetSubmergedVolume(Mat44Arg inCenterOfMassTransform, Vec3Arg inScale, const Plane &inSurface, float &outTotalVolume, float &outSubmergedVolume, Vec3 &outCenterOfBuoyancy JPH_IF_DEBUG_RENDERER(, RVec3Arg inBaseOffset)) const override { JPH_ASSERT(false, "Not supported"); }
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// See Shape
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virtual void SaveBinaryState(StreamOut &inStream) const override;
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virtual void SaveMaterialState(PhysicsMaterialList &outMaterials) const override;
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virtual void RestoreMaterialState(const PhysicsMaterialRefC *inMaterials, uint inNumMaterials) override;
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// See Shape::GetStats
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virtual Stats GetStats() const override;
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// See Shape::GetVolume
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virtual float GetVolume() const override { return 0; }
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// When MeshShape::mPerTriangleUserData is true, this function can be used to retrieve the user data that was stored in the mesh shape.
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uint32 GetTriangleUserData(const SubShapeID &inSubShapeID) const;
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#ifdef JPH_DEBUG_RENDERER
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// Settings
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static bool sDrawTriangleGroups;
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static bool sDrawTriangleOutlines;
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#endif // JPH_DEBUG_RENDERER
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// Register shape functions with the registry
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static void sRegister();
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protected:
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// See: Shape::RestoreBinaryState
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virtual void RestoreBinaryState(StreamIn &inStream) override;
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private:
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struct MSGetTrianglesContext; ///< Context class for GetTrianglesStart/Next
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static constexpr int NumTriangleBits = 3; ///< How many bits to reserve to encode the triangle index
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static constexpr int MaxTrianglesPerLeaf = 1 << NumTriangleBits; ///< Number of triangles that are stored max per leaf aabb node
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/// Find and flag active edges
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static void sFindActiveEdges(const MeshShapeSettings &inSettings, IndexedTriangleList &ioIndices);
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/// Visit the entire tree using a visitor pattern
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template <class Visitor>
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void WalkTree(Visitor &ioVisitor) const;
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/// Same as above but with a callback per triangle instead of per block of triangles
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template <class Visitor>
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void WalkTreePerTriangle(const SubShapeIDCreator &inSubShapeIDCreator2, Visitor &ioVisitor) const;
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/// Decode a sub shape ID
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inline void DecodeSubShapeID(const SubShapeID &inSubShapeID, const void *&outTriangleBlock, uint32 &outTriangleIndex) const;
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// Helper functions called by CollisionDispatch
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static void sCollideConvexVsMesh(const Shape *inShape1, const Shape *inShape2, Vec3Arg inScale1, Vec3Arg inScale2, Mat44Arg inCenterOfMassTransform1, Mat44Arg inCenterOfMassTransform2, const SubShapeIDCreator &inSubShapeIDCreator1, const SubShapeIDCreator &inSubShapeIDCreator2, const CollideShapeSettings &inCollideShapeSettings, CollideShapeCollector &ioCollector, const ShapeFilter &inShapeFilter);
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static void sCollideSphereVsMesh(const Shape *inShape1, const Shape *inShape2, Vec3Arg inScale1, Vec3Arg inScale2, Mat44Arg inCenterOfMassTransform1, Mat44Arg inCenterOfMassTransform2, const SubShapeIDCreator &inSubShapeIDCreator1, const SubShapeIDCreator &inSubShapeIDCreator2, const CollideShapeSettings &inCollideShapeSettings, CollideShapeCollector &ioCollector, const ShapeFilter &inShapeFilter);
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static void sCastConvexVsMesh(const ShapeCast &inShapeCast, const ShapeCastSettings &inShapeCastSettings, const Shape *inShape, Vec3Arg inScale, const ShapeFilter &inShapeFilter, Mat44Arg inCenterOfMassTransform2, const SubShapeIDCreator &inSubShapeIDCreator1, const SubShapeIDCreator &inSubShapeIDCreator2, CastShapeCollector &ioCollector);
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static void sCastSphereVsMesh(const ShapeCast &inShapeCast, const ShapeCastSettings &inShapeCastSettings, const Shape *inShape, Vec3Arg inScale, const ShapeFilter &inShapeFilter, Mat44Arg inCenterOfMassTransform2, const SubShapeIDCreator &inSubShapeIDCreator1, const SubShapeIDCreator &inSubShapeIDCreator2, CastShapeCollector &ioCollector);
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/// Materials assigned to the triangles. Each triangle specifies which material it uses through its mMaterialIndex
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PhysicsMaterialList mMaterials;
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ByteBuffer mTree; ///< Resulting packed data structure
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/// 8 bit flags stored per triangle
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enum ETriangleFlags
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{
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/// Material index
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FLAGS_MATERIAL_BITS = 5,
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FLAGS_MATERIAL_MASK = (1 << FLAGS_MATERIAL_BITS) - 1,
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/// Active edge bits
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FLAGS_ACTIVE_EGDE_SHIFT = FLAGS_MATERIAL_BITS,
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FLAGS_ACTIVE_EDGE_BITS = 3,
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FLAGS_ACTIVE_EDGE_MASK = (1 << FLAGS_ACTIVE_EDGE_BITS) - 1
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};
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#ifdef JPH_DEBUG_RENDERER
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mutable DebugRenderer::GeometryRef mGeometry; ///< Debug rendering data
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mutable bool mCachedTrianglesColoredPerGroup = false; ///< This is used to regenerate the triangle batch if the drawing settings change
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mutable bool mCachedUseMaterialColors = false; ///< This is used to regenerate the triangle batch if the drawing settings change
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#endif // JPH_DEBUG_RENDERER
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};
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JPH_NAMESPACE_END
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