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543 lines
21 KiB
C++
543 lines
21 KiB
C++
/////////////////////////////////////////////////////////////////////////////////
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//
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// Copyright (C) Statoil ASA
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// Copyright (C) Ceetron Solutions AS
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//
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// ResInsight is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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//
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// ResInsight is distributed in the hope that it will be useful, but WITHOUT ANY
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// WARRANTY; without even the implied warranty of MERCHANTABILITY or
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// FITNESS FOR A PARTICULAR PURPOSE.
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//
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// See the GNU General Public License at <http://www.gnu.org/licenses/gpl.html>
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// for more details.
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//
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/////////////////////////////////////////////////////////////////////////////////
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#include "RigNNCData.h"
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#include "RigMainGrid.h"
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#include "cvfGeometryTools.h"
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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RigNNCData::RigNNCData()
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{
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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void RigNNCData::processConnections(const RigMainGrid& mainGrid)
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{
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//cvf::Trace::show("NNC: Total number: " + cvf::String((int)m_connections.size()));
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for (size_t cnIdx = 0; cnIdx < m_connections.size(); ++cnIdx)
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{
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const RigCell& c1 = mainGrid.globalCellArray()[m_connections[cnIdx].m_c1GlobIdx];
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const RigCell& c2 = mainGrid.globalCellArray()[m_connections[cnIdx].m_c2GlobIdx];
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bool foundAnyOverlap = false;
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std::vector<size_t> connectionPolygon;
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std::vector<cvf::Vec3d> connectionIntersections;
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cvf::StructGridInterface::FaceType connectionFace = cvf::StructGridInterface::NO_FACE;
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connectionFace = calculateCellFaceOverlap(c1, c2, mainGrid, &connectionPolygon, &connectionIntersections);
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if (connectionFace != cvf::StructGridInterface::NO_FACE)
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{
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foundAnyOverlap = true;
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// Found an overlap polygon. Store data about connection
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m_connections[cnIdx].m_c1Face = connectionFace;
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for (size_t pIdx = 0; pIdx < connectionPolygon.size(); ++pIdx)
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{
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if (connectionPolygon[pIdx] < mainGrid.nodes().size())
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m_connections[cnIdx].m_polygon.push_back(mainGrid.nodes()[connectionPolygon[pIdx]]);
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else
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m_connections[cnIdx].m_polygon.push_back(connectionIntersections[connectionPolygon[pIdx] - mainGrid.nodes().size()]);
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}
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// Add to search map, possibly not needed
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//m_cellIdxToFaceToConnectionIdxMap[m_connections[cnIdx].m_c1GlobIdx][connectionFace].push_back(cnIdx);
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//m_cellIdxToFaceToConnectionIdxMap[m_connections[cnIdx].m_c2GlobIdx][cvf::StructGridInterface::oppositeFace(connectionFace].push_back(cnIdx);
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}
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else
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{
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//cvf::Trace::show("NNC: No overlap found for : C1: " + cvf::String((int)m_connections[cnIdx].m_c1GlobIdx) + "C2: " + cvf::String((int)m_connections[cnIdx].m_c2GlobIdx));
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}
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}
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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cvf::StructGridInterface::FaceType RigNNCData::calculateCellFaceOverlap(const RigCell &c1,
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const RigCell &c2,
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const RigMainGrid &mainGrid,
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std::vector<size_t>* connectionPolygon,
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std::vector<cvf::Vec3d>* connectionIntersections)
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{
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// Try to find the shared face
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bool isPossibleNeighborInDirection[6]={ true, true, true, true, true, true };
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if ( c1.hostGrid() == c2.hostGrid() )
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{
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char hasNeighbourInAnyDirection = 0;
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size_t i1, j1, k1;
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c1.hostGrid()->ijkFromCellIndex(c1.gridLocalCellIndex(), &i1, &j1, &k1);
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size_t i2, j2, k2;
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c2.hostGrid()->ijkFromCellIndex(c2.gridLocalCellIndex(), &i2, &j2, &k2);
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isPossibleNeighborInDirection[cvf::StructGridInterface::POS_I] = ((i1 + 1) == i2);
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isPossibleNeighborInDirection[cvf::StructGridInterface::NEG_I] = ((i2 + 1) == i1);
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isPossibleNeighborInDirection[cvf::StructGridInterface::POS_J] = ((j1 + 1) == j2);
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isPossibleNeighborInDirection[cvf::StructGridInterface::NEG_J] = ((j2 + 1) == j1);
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isPossibleNeighborInDirection[cvf::StructGridInterface::POS_K] = ((k1 + 1) == k2);
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isPossibleNeighborInDirection[cvf::StructGridInterface::NEG_K] = ((k2 + 1) == k1);
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hasNeighbourInAnyDirection =
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isPossibleNeighborInDirection[cvf::StructGridInterface::POS_I]
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+ isPossibleNeighborInDirection[cvf::StructGridInterface::NEG_I]
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+ isPossibleNeighborInDirection[cvf::StructGridInterface::POS_J]
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+ isPossibleNeighborInDirection[cvf::StructGridInterface::NEG_J]
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+ isPossibleNeighborInDirection[cvf::StructGridInterface::POS_K]
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+ isPossibleNeighborInDirection[cvf::StructGridInterface::NEG_K];
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// If cell 2 is not adjancent with respect to any of the six ijk directions,
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// assume that we have no overlapping area.
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if ( !hasNeighbourInAnyDirection )
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{
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// Add to search map
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//m_cellIdxToFaceToConnectionIdxMap[m_connections[cnIdx].m_c1GlobIdx][cvf::StructGridInterface::NO_FACE].push_back(cnIdx);
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//m_cellIdxToFaceToConnectionIdxMap[m_connections[cnIdx].m_c2GlobIdx][cvf::StructGridInterface::NO_FACE].push_back(cnIdx);
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//cvf::Trace::show("NNC: No direct neighbors : C1: " + cvf::String((int)m_connections[cnIdx].m_c1GlobIdx) + " C2: " + cvf::String((int)m_connections[cnIdx].m_c2GlobIdx));
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return cvf::StructGridInterface::NO_FACE;
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}
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}
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#if 0
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// Possibly do some testing to avoid unneccesary overlap calculations
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cvf::Vec3d normal;
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for ( char fIdx = 0; fIdx < 6; ++fIdx )
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{
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if ( isPossibleNeighborInDirection[fIdx] )
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{
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cvf::Vec3d fc1 = c1.faceCenter((cvf::StructGridInterface::FaceType)(fIdx));
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cvf::Vec3d fc2 = c2.faceCenter(cvf::StructGridInterface::oppositeFace((cvf::StructGridInterface::FaceType)(fIdx)));
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cvf::Vec3d fc1ToFc2 = fc2 - fc1;
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normal = c1.faceNormalWithAreaLenght((cvf::StructGridInterface::FaceType)(fIdx));
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normal.normalize();
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// Check that face centers are approx in the face plane
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if ( normal.dot(fc1ToFc2) < 0.01*fc1ToFc2.length() )
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{
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}
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}
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}
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#endif
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for ( unsigned char fIdx = 0; fIdx < 6; ++fIdx )
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{
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if ( !isPossibleNeighborInDirection[fIdx] )
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{
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continue;
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}
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// Calculate connection polygon
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std::vector<size_t> polygon;
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std::vector<cvf::Vec3d> intersections;
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std::array<size_t, 4> face1;
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std::array<size_t, 4> face2;
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c1.faceIndices((cvf::StructGridInterface::FaceType)(fIdx), &face1);
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c2.faceIndices(cvf::StructGridInterface::oppositeFace((cvf::StructGridInterface::FaceType)(fIdx)), &face2);
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bool foundOverlap = cvf::GeometryTools::calculateOverlapPolygonOfTwoQuads(
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&polygon,
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&intersections,
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(cvf::EdgeIntersectStorage<size_t>*)nullptr,
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cvf::wrapArrayConst(&mainGrid.nodes()),
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face1.data(),
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face2.data(),
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1e-6);
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if ( foundOverlap )
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{
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if (connectionPolygon)(*connectionPolygon) = polygon;
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if (connectionIntersections) (*connectionIntersections) = intersections;
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return (cvf::StructGridInterface::FaceType)(fIdx);
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}
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}
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return cvf::StructGridInterface::NO_FACE;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<double>& RigNNCData::makeStaticConnectionScalarResult(QString nncDataType)
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{
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std::vector< std::vector<double> >& results = m_connectionResults[nncDataType];
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results.resize(1);
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results[0].resize(m_connections.size(), HUGE_VAL);
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return results[0];
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<double>* RigNNCData::staticConnectionScalarResult(size_t scalarResultIndex) const
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return nullptr;
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std::map<QString, std::vector< std::vector<double> > >::const_iterator it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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CVF_ASSERT(it->second.size() == 1);
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return &(it->second[0]);
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}
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else
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{
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return nullptr;
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}
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<double>* RigNNCData::staticConnectionScalarResultByName(const QString& nncDataType) const
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{
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std::map<QString, std::vector< std::vector<double> > >::const_iterator it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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CVF_ASSERT(it->second.size() == 1);
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return &(it->second[0]);
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}
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else
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{
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return nullptr;
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}
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector< std::vector<double> >& RigNNCData::makeDynamicConnectionScalarResult(QString nncDataType, size_t timeStepCount)
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{
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auto& results = m_connectionResults[nncDataType];
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results.resize(timeStepCount);
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return results;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector< std::vector<double> >* RigNNCData::dynamicConnectionScalarResult(size_t scalarResultIndex) const
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return nullptr;
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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return &(it->second);
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}
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else
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{
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return nullptr;
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}
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<double>* RigNNCData::dynamicConnectionScalarResult(size_t scalarResultIndex, size_t timeStep) const
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return nullptr;
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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if (it->second.size() > timeStep)
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{
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return &(it->second[timeStep]);
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}
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<std::vector<double>>* RigNNCData::dynamicConnectionScalarResultByName(const QString& nncDataType) const
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{
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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return &(it->second);
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<double>* RigNNCData::dynamicConnectionScalarResultByName(const QString& nncDataType, size_t timeStep) const
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{
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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if (it->second.size() > timeStep)
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{
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return &(it->second[timeStep]);
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}
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector< std::vector<double> >& RigNNCData::makeGeneratedConnectionScalarResult(QString nncDataType, size_t timeStepCount)
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{
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auto& results = m_connectionResults[nncDataType];
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results.resize(timeStepCount);
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return results;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector< std::vector<double> >* RigNNCData::generatedConnectionScalarResult(size_t scalarResultIndex) const
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return nullptr;
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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return &(it->second);
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}
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else
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{
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return nullptr;
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}
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<double>* RigNNCData::generatedConnectionScalarResult(size_t scalarResultIndex, size_t timeStep) const
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return nullptr;
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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if (it->second.size() > timeStep)
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{
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return &(it->second[timeStep]);
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}
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector< std::vector<double> >* RigNNCData::generatedConnectionScalarResult(size_t scalarResultIndex)
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return nullptr;
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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return &(it->second);
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}
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else
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{
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return nullptr;
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}
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<double>* RigNNCData::generatedConnectionScalarResult(size_t scalarResultIndex, size_t timeStep)
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return nullptr;
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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if (it->second.size() > timeStep)
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{
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return &(it->second[timeStep]);
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}
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<std::vector<double>>* RigNNCData::generatedConnectionScalarResultByName(const QString& nncDataType) const
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{
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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return &(it->second);
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const std::vector<double>* RigNNCData::generatedConnectionScalarResultByName(const QString& nncDataType, size_t timeStep) const
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{
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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if (it->second.size() > timeStep)
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{
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return &(it->second[timeStep]);
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}
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<std::vector<double>>* RigNNCData::generatedConnectionScalarResultByName(const QString& nncDataType)
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{
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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return &(it->second);
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<double>* RigNNCData::generatedConnectionScalarResultByName(const QString& nncDataType, size_t timeStep)
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{
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auto it = m_connectionResults.find(nncDataType);
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if (it != m_connectionResults.end())
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{
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if (it->second.size() > timeStep)
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{
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return &(it->second[timeStep]);
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}
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}
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return nullptr;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<QString> RigNNCData::availableProperties(NNCResultType resultType) const
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{
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std::vector<QString> properties;
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for (auto it : m_connectionResults)
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{
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if (resultType == NNC_STATIC && it.second.size() == 1 && it.second[0].size() > 0 && isNative(it.first))
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{
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properties.push_back(it.first);
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}
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else if (resultType == NNC_DYNAMIC && it.second.size() > 1 && it.second[0].size() > 0 && isNative(it.first))
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{
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properties.push_back(it.first);
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}
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else if (resultType == NNC_GENERATED && !isNative(it.first))
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{
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properties.push_back(it.first);
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}
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}
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return properties;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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void RigNNCData::setScalarResultIndex(const QString& nncDataType, size_t scalarResultIndex)
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{
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m_resultIndexToNNCDataType[scalarResultIndex] = nncDataType;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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bool RigNNCData::hasScalarValues(size_t scalarResultIndex)
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{
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QString nncDataType = getNNCDataTypeFromScalarResultIndex(scalarResultIndex);
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if (nncDataType.isNull()) return false;
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auto it = m_connectionResults.find(nncDataType);
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return (it != m_connectionResults.end());
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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const QString RigNNCData::getNNCDataTypeFromScalarResultIndex(size_t scalarResultIndex) const
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{
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auto it = m_resultIndexToNNCDataType.find(scalarResultIndex);
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if (it != m_resultIndexToNNCDataType.end())
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|
{
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|
return it->second;
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|
}
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return QString();
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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bool RigNNCData::isNative(QString nncDataType) const
|
|
{
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|
if (nncDataType == RigNNCData::propertyNameCombTrans() ||
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nncDataType == RigNNCData::propertyNameFluxGas() ||
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|
nncDataType == RigNNCData::propertyNameFluxOil() ||
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|
nncDataType == RigNNCData::propertyNameFluxWat() ||
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|
nncDataType == RigNNCData::propertyNameRiCombMult() ||
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|
nncDataType == RigNNCData::propertyNameRiCombTrans() ||
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|
nncDataType == RigNNCData::propertyNameRiCombTransByArea())
|
|
{
|
|
return true;
|
|
}
|
|
return false;
|
|
}
|