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Migrate all assert macros in ApplicationLibCode to CAF_ASSERT and remove every use of cvfAssert.h. CVF_ASSERT is replaced one to one. CVF_TIGHT_ASSERT is also replaced by CAF_ASSERT, which is semantically exact: CVF_ENABLE_TIGHT_ASSERTS is 1 only under _DEBUG, and that is what CAF_ASSERT now does. The two CVF_FAIL_MSG sites become CAF_ASSERT( false && "message" ), preserving the message with the idiom already used elsewhere in the code base. Counts before and after: CVF_ASSERT 1044 to 0, CVF_TIGHT_ASSERT 66 to 0, CVF_FAIL_MSG 2 to 0, cvfAssert.h references 154 to 0. Include handling: files that included cvfAssert.h directly now include cafAssert.h instead, includes left dead by the migration are removed, and files that were relying on cvfAssert.h transitively get an explicit cafAssert.h. Files that reach cafAssert.h through another caf header are left unchanged; a missing include here is a compile error, not a silently disabled assert. ResultStatisticsCache links only LibCore and therefore had no path to cafAssert.h. Add the cafPdmCore directory as a private include path rather than linking the library, since cafAssert.h is header only. Note that this stops these asserts from firing in Release and RelWithDebInfo, where CVF_ASSERT was previously active.
381 lines
17 KiB
C++
381 lines
17 KiB
C++
/////////////////////////////////////////////////////////////////////////////////
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//
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// Copyright (C) 2018- Equinor ASA
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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 "RigGeoMechContourMapProjection.h"
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#include "RiaImageTools.h"
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#include "RiaWeightedMeanCalculator.h"
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#include "RigCellGeometryTools.h"
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#include "RigContourMapCalculator.h"
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#include "RigContourMapGrid.h"
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#include "RigFemAddressDefines.h"
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#include "RigFemPart.h"
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#include "RigFemPartCollection.h"
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#include "RigFemPartGrid.h"
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#include "RigFemPartResultsCollection.h"
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#include "RigGeoMechCaseData.h"
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#include "RigHexIntersectionTools.h"
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#include "RivFemElmVisibilityCalculator.h"
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#include "cvfVector3.h"
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#include "cafAssert.h"
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#include <algorithm>
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#include <array>
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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RigGeoMechContourMapProjection::RigGeoMechContourMapProjection( RigGeoMechCaseData* caseData,
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const RigContourMapGrid* contourMapGrid,
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bool limitToPorePressureRegions,
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double paddingAroundPorePressureRegion )
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: RigContourMapProjection( contourMapGrid )
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, m_caseData( caseData )
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, m_limitToPorePressureRegions( limitToPorePressureRegions )
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, m_paddingAroundPorePressureRegion( paddingAroundPorePressureRegion )
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, m_kLayers( 0u )
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{
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m_femPart = m_caseData->femParts()->part( 0 );
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m_femPartGrid = m_femPart->getOrCreateStructGrid();
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m_kLayers = m_femPartGrid->cellCountK();
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m_femPart->ensureIntersectionSearchTreeIsBuilt();
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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cvf::BoundingBox RigGeoMechContourMapProjection::calculateExpandedPorBarBBox( RigGeoMechCaseData& caseData,
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const std::string& resultComponentName,
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int timeStep,
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int frameIndex,
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double paddingAroundPorePressureRegion )
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{
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RigFemResultAddress porBarAddr( RigFemResultPosEnum::RIG_ELEMENT_NODAL, RigFemAddressDefines::porBar(), resultComponentName );
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RigFemPartResultsCollection* resultCollection = caseData.femPartResults();
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const std::vector<float>& resultValues = resultCollection->resultValues( porBarAddr, 0, timeStep, frameIndex );
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cvf::BoundingBox boundingBox;
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if ( resultValues.empty() )
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{
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return boundingBox;
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}
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auto femPart = caseData.femParts()->part( 0 );
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auto femPartGrid = femPart->getOrCreateStructGrid();
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for ( int i = 0; i < femPart->elementCount(); ++i )
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{
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size_t resValueIdx = femPart->elementNodeResultIdx( (int)i, 0 );
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CAF_ASSERT( resValueIdx < resultValues.size() );
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double scalarValue = resultValues[resValueIdx];
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bool validPorValue = scalarValue != std::numeric_limits<double>::infinity();
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if ( validPorValue )
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{
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std::array<cvf::Vec3d, 8> hexCorners = femPartGrid->cellCornerVertices( i );
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for ( size_t c = 0; c < 8; ++c )
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{
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boundingBox.add( hexCorners[c] );
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}
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}
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}
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cvf::Vec3d boxMin = boundingBox.min();
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cvf::Vec3d boxMax = boundingBox.max();
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cvf::Vec3d boxExtent = boundingBox.extent();
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boxMin.x() -= boxExtent.x() * 0.5 * paddingAroundPorePressureRegion;
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boxMin.y() -= boxExtent.y() * 0.5 * paddingAroundPorePressureRegion;
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boxMax.x() += boxExtent.x() * 0.5 * paddingAroundPorePressureRegion;
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boxMax.y() += boxExtent.y() * 0.5 * paddingAroundPorePressureRegion;
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return cvf::BoundingBox( boxMin, boxMax );
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<bool> RigGeoMechContourMapProjection::getMapCellVisibility( int viewStepIndex,
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RigContourMapCalculator::ResultAggregationType resultAggregation )
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{
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m_mapCellVisibility = getMapCellVisibility( m_currentResultAddr, viewStepIndex, resultAggregation );
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return m_mapCellVisibility;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<bool> RigGeoMechContourMapProjection::getMapCellVisibility( RigFemResultAddress resAddr,
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int viewStepIndex,
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RigContourMapCalculator::ResultAggregationType resultAggregation )
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{
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cvf::Vec2ui nCellsIJ = numberOfElementsIJ();
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std::vector<std::vector<unsigned int>> distanceImage( nCellsIJ.x(), std::vector<unsigned int>( nCellsIJ.y(), 0u ) );
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std::vector<bool> mapCellVisibility;
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if ( m_limitToPorePressureRegions )
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{
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resAddr = RigFemAddressDefines::elementNodalPorBarAddress();
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}
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std::vector<double> cellResults = generateResultsFromAddress( resAddr, mapCellVisibility, resultAggregation, viewStepIndex );
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mapCellVisibility.resize( numberOfCells(), true );
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CAF_ASSERT( mapCellVisibility.size() == cellResults.size() );
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{
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cvf::BoundingBox validResBoundingBox;
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for ( size_t cellIndex = 0; cellIndex < cellResults.size(); ++cellIndex )
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{
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cvf::Vec2ui ij = m_contourMapGrid->ijFromCellIndex( cellIndex );
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if ( cellResults[cellIndex] != std::numeric_limits<double>::infinity() )
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{
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distanceImage[ij.x()][ij.y()] = 1u;
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validResBoundingBox.add( cvf::Vec3d( m_contourMapGrid->cellCenterPosition( ij.x(), ij.y() ), 0.0 ) );
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}
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else
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{
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mapCellVisibility[cellIndex] = false;
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}
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}
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if ( m_limitToPorePressureRegions && m_paddingAroundPorePressureRegion > 0.0 )
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{
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RiaImageTools::distanceTransform2d( distanceImage );
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cvf::Vec3d porExtent = validResBoundingBox.extent();
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double radius = std::max( porExtent.x(), porExtent.y() ) * 0.25;
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double expansion = m_paddingAroundPorePressureRegion * radius;
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size_t cellPadding = std::ceil( expansion / m_contourMapGrid->sampleSpacing() );
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for ( size_t cellIndex = 0; cellIndex < cellResults.size(); ++cellIndex )
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{
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if ( !mapCellVisibility[cellIndex] )
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{
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cvf::Vec2ui ij = m_contourMapGrid->ijFromCellIndex( cellIndex );
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if ( distanceImage[ij.x()][ij.y()] < cellPadding * cellPadding )
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{
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mapCellVisibility[cellIndex] = true;
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}
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}
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}
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}
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}
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return mapCellVisibility;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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void RigGeoMechContourMapProjection::generateAndSaveResults( RigFemResultAddress resultAddress,
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RigContourMapCalculator::ResultAggregationType resultAggregation,
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int viewerStepIndex )
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{
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m_aggregatedResults = generateResultsFromAddress( resultAddress, m_mapCellVisibility, resultAggregation, viewerStepIndex );
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m_currentResultAddr = resultAddress;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<double> RigGeoMechContourMapProjection::generateResultsFromAddress( RigFemResultAddress resultAddress,
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const std::vector<bool>& mapCellVisibility,
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RigContourMapCalculator::ResultAggregationType resultAggregation,
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int viewerStepIndex ) const
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{
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RigFemPartResultsCollection* resultCollection = m_caseData->femPartResults();
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size_t nCells = numberOfCells();
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std::vector<double> aggregatedResults = std::vector<double>( nCells, std::numeric_limits<double>::infinity() );
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auto [stepIdx, frameIdx] = m_caseData->femPartResults()->stepListIndexToTimeStepAndDataFrameIndex( viewerStepIndex );
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bool wasInvalid = false;
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if ( !resultAddress.isValid() )
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{
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wasInvalid = true;
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resultAddress = RigFemAddressDefines::elementNodalPorBarAddress();
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}
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if ( resultAddress.fieldName == "PP" )
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{
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resultAddress.fieldName = RigFemAddressDefines::porBar(); // More likely to be in memory than POR
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}
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if ( resultAddress.fieldName == RigFemAddressDefines::porBar() )
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{
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resultAddress.resultPosType = RIG_ELEMENT_NODAL;
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}
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else if ( resultAddress.resultPosType == RIG_FORMATION_NAMES )
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{
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resultAddress.resultPosType = RIG_ELEMENT_NODAL; // formation indices are stored per element node result.
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}
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std::vector<float> resultValuesF = resultCollection->resultValues( resultAddress, 0, stepIdx, frameIdx );
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if ( resultValuesF.empty() ) return aggregatedResults;
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std::vector<double> resultValues = gridCellValues( resultAddress, resultValuesF );
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if ( wasInvalid )
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{
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// For invalid result addresses we just use the POR-Bar result to get the reservoir region
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// And display a dummy 0-result in the region.
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for ( double& value : resultValues )
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{
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if ( value != std::numeric_limits<double>::infinity() )
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{
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value = 0.0;
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}
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}
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}
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#pragma omp parallel for
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for ( int index = 0; index < static_cast<int>( nCells ); ++index )
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{
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if ( mapCellVisibility.empty() || mapCellVisibility[index] )
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{
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cvf::Vec2ui ij = m_contourMapGrid->ijFromCellIndex( index );
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aggregatedResults[index] = calculateValueInMapCell( ij.x(), ij.y(), resultValues, resultAggregation );
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}
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}
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return aggregatedResults;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<size_t> RigGeoMechContourMapProjection::findIntersectingCells( const cvf::BoundingBox& bbox ) const
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{
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return m_femPart->findIntersectingElementsWithExistingSearchTree( bbox );
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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size_t RigGeoMechContourMapProjection::kLayer( size_t globalCellIdx ) const
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{
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size_t i, j, k;
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m_femPartGrid->ijkFromCellIndex( globalCellIdx, &i, &j, &k );
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return k;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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size_t RigGeoMechContourMapProjection::kLayers() const
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{
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return m_kLayers;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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double RigGeoMechContourMapProjection::calculateOverlapVolume( size_t globalCellIdx, const cvf::BoundingBox& bbox ) const
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{
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std::array<cvf::Vec3d, 8> hexCorners = m_femPartGrid->cellCornerVertices( globalCellIdx );
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cvf::BoundingBox overlapBBox;
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std::array<cvf::Vec3d, 8> overlapCorners;
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if ( RigCellGeometryTools::estimateHexOverlapWithBoundingBox( hexCorners, bbox, &overlapCorners, &overlapBBox ) )
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{
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double overlapVolume = RigCellGeometryTools::calculateCellVolume( overlapCorners );
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return overlapVolume;
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}
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return 0.0;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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double RigGeoMechContourMapProjection::calculateRayLengthInCell( size_t globalCellIdx,
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const cvf::Vec3d& highestPoint,
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const cvf::Vec3d& lowestPoint ) const
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{
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std::array<cvf::Vec3d, 8> hexCorners = m_femPartGrid->cellCornerVertices( globalCellIdx );
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std::vector<HexIntersectionInfo> intersections;
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if ( RigHexIntersectionTools::lineHexCellIntersection( highestPoint, lowestPoint, hexCorners, 0, &intersections ) )
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{
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double lengthInCell = ( intersections.back().m_intersectionPoint - intersections.front().m_intersectionPoint ).length();
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return lengthInCell;
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}
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return 0.0;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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double RigGeoMechContourMapProjection::getParameterWeightForCell( size_t globalCellIdx, const std::vector<double>& parameterWeights ) const
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{
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if ( parameterWeights.empty() ) return 1.0;
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return parameterWeights[globalCellIdx];
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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std::vector<double> RigGeoMechContourMapProjection::gridCellValues( RigFemResultAddress resAddr, std::vector<float>& resultValues ) const
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{
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std::vector<double> gridCellValues( m_femPart->elementCount(), std::numeric_limits<double>::infinity() );
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for ( size_t globalCellIdx = 0; globalCellIdx < static_cast<size_t>( m_femPart->elementCount() ); ++globalCellIdx )
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{
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RigElementType elmType = m_femPart->elementType( globalCellIdx );
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if ( !RigFemTypes::is8NodeElement( elmType ) ) continue;
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if ( resAddr.resultPosType == RIG_ELEMENT )
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{
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gridCellValues[globalCellIdx] = static_cast<double>( resultValues[globalCellIdx] );
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}
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else if ( resAddr.resultPosType == RIG_ELEMENT_NODAL )
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{
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RiaWeightedMeanCalculator<float> cellAverage;
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for ( int i = 0; i < 8; ++i )
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{
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size_t gridResultValueIdx =
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m_femPart->resultValueIdxFromResultPosType( resAddr.resultPosType, static_cast<int>( globalCellIdx ), i );
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cellAverage.addValueAndWeight( resultValues[gridResultValueIdx], 1.0 );
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}
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gridCellValues[globalCellIdx] = static_cast<double>( cellAverage.weightedMean() );
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}
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else
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{
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RiaWeightedMeanCalculator<float> cellAverage;
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const int* elmNodeIndices = m_femPart->connectivities( globalCellIdx );
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for ( int i = 0; i < 8; ++i )
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{
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cellAverage.addValueAndWeight( resultValues[elmNodeIndices[i]], 1.0 );
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}
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gridCellValues[globalCellIdx] = static_cast<double>( cellAverage.weightedMean() );
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}
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}
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return gridCellValues;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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bool RigGeoMechContourMapProjection::isCellActive( size_t globalCellIdx ) const
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{
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// For GeoMech grids, all cells are considered active
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return true;
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}
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