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Abstract: This is a stub class definition of CNodeIterator */ #include "lib3mf_nodeiterator.hpp" #include "lib3mf_interfaceexception.hpp" // Include custom headers here. #include "lib3mf_absnode.hpp" #include "lib3mf_additionnode.hpp" #include "lib3mf_arccosnode.hpp" #include "lib3mf_arcsinnode.hpp" #include "lib3mf_arctan2node.hpp" #include "lib3mf_arctannode.hpp" #include "lib3mf_ceilnode.hpp" #include "lib3mf_clampnode.hpp" #include "lib3mf_composematrixnode.hpp" #include "lib3mf_composevectornode.hpp" #include "lib3mf_constantnode.hpp" #include "lib3mf_constmatnode.hpp" #include "lib3mf_constvecnode.hpp" #include "lib3mf_coshnode.hpp" #include "lib3mf_cosnode.hpp" #include "lib3mf_crossnode.hpp" #include "lib3mf_decomposevectornode.hpp" #include "lib3mf_divisionnode.hpp" #include "lib3mf_dotnode.hpp" #include "lib3mf_expnode.hpp" #include "lib3mf_floornode.hpp" #include "lib3mf_fmodnode.hpp" #include "lib3mf_fractnode.hpp" #include "lib3mf_functioncallnode.hpp" #include "lib3mf_inversenode.hpp" #include "lib3mf_lengthnode.hpp" #include "lib3mf_log10node.hpp" #include "lib3mf_log2node.hpp" #include "lib3mf_lognode.hpp" #include "lib3mf_matrixfromcolumnsnode.hpp" #include "lib3mf_matrixfromrowsnode.hpp" #include "lib3mf_matvecmultiplicationnode.hpp" #include "lib3mf_maxnode.hpp" #include "lib3mf_meshnode.hpp" #include "lib3mf_minnode.hpp" #include "lib3mf_multiplicationnode.hpp" #include "lib3mf_pownode.hpp" #include "lib3mf_resourceidnode.hpp" #include "lib3mf_roundnode.hpp" #include "lib3mf_selectnode.hpp" #include "lib3mf_signnode.hpp" #include "lib3mf_sinhnode.hpp" #include "lib3mf_sinnode.hpp" #include "lib3mf_sqrtnode.hpp" #include "lib3mf_subtractionnode.hpp" #include "lib3mf_tanhnode.hpp" #include "lib3mf_tannode.hpp" #include "lib3mf_transposenode.hpp" #include "lib3mf_unsignedmeshnode.hpp" #include "lib3mf_vectorfromscalarnode.hpp" #include "lib3mf_modnode.hpp" #include "lib3mf_beamlatticenode.hpp" #include "lib3mf_functiongradientnode.hpp" #include "lib3mf_normalizedistancenode.hpp" using namespace Lib3MF::Impl; /************************************************************************************************************************* Class definition of CNodeIterator **************************************************************************************************************************/ IImplicitNode * CNodeIterator::GetCurrent() { throwIfInvalidIndex(); auto pModelNode = m_pNodes->at(static_cast(getCurrentIndex())); auto pNode = implicitNodeFromModelImplicitNode(pModelNode); if (!pNode) throw ELib3MFInterfaceException(LIB3MF_ERROR_INVALIDPARAM); return pNode; } // enum class eImplicitNodeType : Lib3MF_int32 { // Addition = 1, /** Adds to values (scalar or vector) */ // Subtraction = 2, /** Subtracts two values (scalar or vector) */ // Multiplication = 3, /** Multiplies two values (scalar or vector) */ // Division = 4, /** Divides two values (scalar or vector) */ // Constant = 5, /** A constant scalar value */ // ConstVec = 6, /** A constant vector value */ // ConstMat = 7, /** A constant matrix value */ // ComposeVector = 8, /** Creates a vector from three scalar values */ // DecomposeVector = 9, /** Decomposes a vector into three scalar values */ // ComposeMatrix = 10, /** Creates a matrix from nine scalar values */ // ComposeMatrixFromColumnVectors = 11, /** Creates a matrix from three column vector values */ // ComposeMatrixFromRowVectors = 12, /** Creates a matrix from three row vector values */ // Dot = 13, /** Calculates the dot product of two vector values */ // Cross = 14, /** Calculates the cross product of two vector values */ // MatVecMultiplication = 15, /** Multiplies a matrix with a vector */ // Transpose = 16, /** Transposes a matrix */ // Inverse = 17, /** Computes the inverse of a matrix */ // Sinus = 18, /** Calculates the sinus */ // Cosinus = 19, /** Calculates the cosinus */ // Tan = 20, /** Calculates the tangent */ // ArcSin = 21, /** Calculates the arcsinus */ // ArcCos = 22, /** Calculates the arccosinus */ // ArcTan = 23, /** Calculates the arctangent */ // ArcTan2 = 24, /** Calculates the arctangent */ // Min = 25, /** Calculates the minimum tow values */ // Max = 26, /** Calculates the maximum of two values */ // Abs = 27, /** Calcul the absolute value */ // Fmod = 28, /** Calculates the modulo of two values */ // Pow = 29, /** Calculates the power A^B */ // Sqrt = 30, /** Calculates the square root */ // Exp = 31, /** Exponential function */ // Log = 32, /** Natural logarithmus */ // Log2 = 33, /** Logarithmus to the base 2 */ // Log10 = 34, /** Logarithmus to the base 10 */ // Select = 35, /** If A is less B returns C, else D */ // Clamp = 36, /** Clamps the input value to min and max */ // Sinh = 37, /** Calculates the hyperbolic sine */ // Cosh = 38, /** Calculates the hyperbolic cosine */ // Tanh = 39, /** Calculates the hyperbolic tangent */ // Round = 40, /** Rounds a scalar value to the nearest integer */ // Ceil = 41, /** Rounds a scalar value up to the nearest integer */ // Floor = 42, /** Rounds a scalar value down to the nearest integer */ // Sign = 43, /** Returns the sign */ // Fract = 44, /** Returns the fractional part */ // FunctionCall = 45, /** Calls a function */ // Mesh = 46, /** Calculates the signed distance to a mesh */ // Length = 47, /** Calculates the length of a vector */ // Resource = 48 /** Selects a resource (function, mesh etc.) */ // }; IImplicitNode* Lib3MF::Impl::CNodeIterator::implicitNodeFromModelImplicitNode( NMR::PModelImplicitNode pNode) { if (!pNode) throw ELib3MFInterfaceException(LIB3MF_ERROR_INVALIDPARAM); switch (pNode->getNodeType()) { case eImplicitNodeType::Addition: return new CAdditionNode(pNode); case eImplicitNodeType::Subtraction: return new CSubtractionNode(pNode); case eImplicitNodeType::Multiplication: return new CMultiplicationNode(pNode); case eImplicitNodeType::Division: return new CDivisionNode(pNode); case eImplicitNodeType::Constant: return new CConstantNode(pNode); case eImplicitNodeType::ConstVec: return new CConstVecNode(pNode); case eImplicitNodeType::ConstMat: return new CConstMatNode(pNode); case eImplicitNodeType::ComposeVector: return new CComposeVectorNode(pNode); case eImplicitNodeType::VectorFromScalar: return new CVectorFromScalarNode(pNode); case eImplicitNodeType::DecomposeVector: return new CDecomposeVectorNode(pNode); case eImplicitNodeType::ComposeMatrix: return new CComposeMatrixNode(pNode); case eImplicitNodeType::MatrixFromColumns: return new CMatrixFromColumnsNode(pNode); case eImplicitNodeType::MatrixFromRows: return new CMatrixFromRowsNode(pNode); case eImplicitNodeType::Dot: return new CDotNode(pNode); case eImplicitNodeType::Cross: return new CCrossNode(pNode); case eImplicitNodeType::MatVecMultiplication: return new CMatVecMultiplicationNode(pNode); case eImplicitNodeType::Transpose: return new CTransposeNode(pNode); case eImplicitNodeType::Inverse: return new CInverseNode(pNode); case eImplicitNodeType::Sinus: return new CSinNode(pNode); case eImplicitNodeType::Cosinus: return new CCosNode(pNode); case eImplicitNodeType::Tan: return new CTanNode(pNode); case eImplicitNodeType::ArcSin: return new CArcSinNode(pNode); case eImplicitNodeType::ArcCos: return new CArcCosNode(pNode); case eImplicitNodeType::ArcTan: return new CArcTanNode(pNode); case eImplicitNodeType::ArcTan2: return new CArcTan2Node(pNode); case eImplicitNodeType::Min: return new CMinNode(pNode); case eImplicitNodeType::Max: return new CMaxNode(pNode); case eImplicitNodeType::Abs: return new CAbsNode(pNode); case eImplicitNodeType::Fmod: return new CFmodNode(pNode); case eImplicitNodeType::Pow: return new CPowNode(pNode); case eImplicitNodeType::Sqrt: return new CSqrtNode(pNode); case eImplicitNodeType::Exp: return new CExpNode(pNode); case eImplicitNodeType::Log: return new CLogNode(pNode); case eImplicitNodeType::Log2: return new CLog2Node(pNode); case eImplicitNodeType::Log10: return new CLog10Node(pNode); case eImplicitNodeType::Select: return new CSelectNode(pNode); case eImplicitNodeType::Clamp: return new CClampNode(pNode); case eImplicitNodeType::Sinh: return new CSinhNode(pNode); case eImplicitNodeType::Cosh: return new CCoshNode(pNode); case eImplicitNodeType::Tanh: return new CTanhNode(pNode); case eImplicitNodeType::Round: return new CRoundNode(pNode); case eImplicitNodeType::Ceil: return new CCeilNode(pNode); case eImplicitNodeType::Floor: return new CFloorNode(pNode); case eImplicitNodeType::Sign: return new CSignNode(pNode); case eImplicitNodeType::Fract: return new CFractNode(pNode); case eImplicitNodeType::FunctionCall: return new CFunctionCallNode(pNode); case eImplicitNodeType::Mesh: return new CMeshNode(pNode); case eImplicitNodeType::UnsignedMesh: return new CUnsignedMeshNode(pNode); case eImplicitNodeType::Length: return new CLengthNode(pNode); case eImplicitNodeType::ConstResourceID: return new CResourceIdNode(pNode); case eImplicitNodeType::Mod: return new CModNode(pNode); case eImplicitNodeType::BeamLattice: return new CBeamLatticeNode(pNode); case eImplicitNodeType::FunctionGradient: return new CFunctionGradientNode(pNode); case eImplicitNodeType::NormalizeDistance: return new CNormalizeDistanceNode(pNode); default: throw ELib3MFInterfaceException(LIB3MF_ERROR_INVALIDPARAM); } } Lib3MF::Impl::CNodeIterator::CNodeIterator(NMR::PImplicitNodes pNodes) : m_pNodes(pNodes) { } Lib3MF_uint64 Lib3MF::Impl::CNodeIterator::Count() { return static_cast(m_pNodes->size()); }