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Split fem part results collection 5785 (#5871)
* #5785 Extract RigFemClosestResultIndexCalculator class to separate file. * #5785 Move method implementation of RigFemClosestResutIndexCalculator to cpp file. Also improve const correctness. * #5785 Extract method for calculating normal SE, ie. SE:11/22/33. * #5785 Extract method for calculating shear SE, ie. SE:12/13/23. * #5785 Create a list of result calculators. * #5785 Extract method for calculating timelapse, normalized, and gamma results. * #5785 Extract method for calculating normal ST, ie. ST:11/22/33. * #5785 Extract method for calculating shear ST, ie. ST:12/13/23. * #5785 Extract method for calculating surface angles and aligned stress. * #5785 Extract method for calculating principal strain and stress. * #5785 Extract method for calculating FOS, SFI and DSM for SE. * #5785 Extract method for calculating NE.EV, NE.ED, ST.Q and ST.STM. * #5785 Extract method for calculating compaction. * #5785 Extract method for calculating stress gradients. * #5785 Extract method for calculating SE.SEM. * #5785 Extract method for calculating NE. * #5785 Extract method for calculating formation indices. * #5785 Extract method for calculating nodal graidents, bar conversions, and EnIpPorBar. * #5785 Use std::unique_ptr to calculators. * Use std::vector<unique_ptr> Co-authored-by: Magne Sjaastad <magne.sjaastad@ceetronsolutions.com>
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/////////////////////////////////////////////////////////////////////////////////
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//
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// Copyright (C) 2020- 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 "RigFemPartResultCalculatorDSM.h"
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#include "RigFemPart.h"
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#include "RigFemPartCollection.h"
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#include "RigFemPartResultsCollection.h"
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#include "RigFemResultAddress.h"
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#include "RigFemScalarResultFrames.h"
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#include "cafProgressInfo.h"
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#include <QString>
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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RigFemPartResultCalculatorDSM::RigFemPartResultCalculatorDSM( RigFemPartResultsCollection& collection )
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: RigFemPartResultCalculator( collection )
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{
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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RigFemPartResultCalculatorDSM::~RigFemPartResultCalculatorDSM()
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{
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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bool RigFemPartResultCalculatorDSM::isMatching( const RigFemResultAddress& resVarAddr ) const
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{
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return ( resVarAddr.fieldName == "SE" && resVarAddr.componentName == "DSM" );
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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RigFemScalarResultFrames* RigFemPartResultCalculatorDSM::calculate( int partIndex, const RigFemResultAddress& resVarAddr )
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{
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CVF_ASSERT( resVarAddr.fieldName == "SE" && resVarAddr.componentName == "DSM" );
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caf::ProgressInfo frameCountProgress( m_resultCollection->frameCount() * 3, "" );
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frameCountProgress.setProgressDescription(
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"Calculating " + QString::fromStdString( resVarAddr.fieldName + ": " + resVarAddr.componentName ) );
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frameCountProgress.setNextProgressIncrement( m_resultCollection->frameCount() );
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RigFemScalarResultFrames* se1Frames =
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m_resultCollection->findOrLoadScalarResult( partIndex, RigFemResultAddress( resVarAddr.resultPosType, "SE", "S1" ) );
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frameCountProgress.incrementProgress();
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frameCountProgress.setNextProgressIncrement( m_resultCollection->frameCount() );
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RigFemScalarResultFrames* se3Frames =
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m_resultCollection->findOrLoadScalarResult( partIndex, RigFemResultAddress( resVarAddr.resultPosType, "SE", "S3" ) );
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RigFemScalarResultFrames* dstDataFrames = m_resultCollection->createScalarResult( partIndex, resVarAddr );
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frameCountProgress.incrementProgress();
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float tanFricAng = tan( m_resultCollection->parameterFrictionAngleRad() );
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float cohPrTanFricAngle = (float)( m_resultCollection->parameterCohesion() / tanFricAng );
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int frameCount = se1Frames->frameCount();
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for ( int fIdx = 0; fIdx < frameCount; ++fIdx )
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{
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const std::vector<float>& se1Data = se1Frames->frameData( fIdx );
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const std::vector<float>& se3Data = se3Frames->frameData( fIdx );
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std::vector<float>& dstFrameData = dstDataFrames->frameData( fIdx );
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size_t valCount = se1Data.size();
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dstFrameData.resize( valCount );
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#pragma omp parallel for
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for ( long vIdx = 0; vIdx < static_cast<long>( valCount ); ++vIdx )
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{
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dstFrameData[vIdx] = dsm( se1Data[vIdx], se3Data[vIdx], tanFricAng, cohPrTanFricAngle );
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}
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frameCountProgress.incrementProgress();
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}
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return dstDataFrames;
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}
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//--------------------------------------------------------------------------------------------------
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///
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//--------------------------------------------------------------------------------------------------
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float RigFemPartResultCalculatorDSM::dsm( float p1, float p3, float tanFricAng, float cohPrTanFricAngle )
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{
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if ( p1 == HUGE_VAL || p3 == HUGE_VAL )
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{
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return std::nan( "" );
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}
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CVF_ASSERT( p1 > p3 );
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float pi_4 = 0.785398163397448309616f;
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float rho = 2.0f * ( atan( sqrt( ( p1 + cohPrTanFricAngle ) / ( p3 + cohPrTanFricAngle ) ) ) - pi_4 );
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return tan( rho ) / tanFricAng;
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}
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