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/////////////////////////////////////////////////////////////////////////////////
//
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// Copyright (C) 2011- Statoil ASA
// Copyright (C) 2013- Ceetron Solutions AS
// Copyright (C) 2011-2012 Ceetron AS
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//
// ResInsight is free software: you can redistribute it and/or modify
// it under the terms of the GNU General Public License as published by
// the Free Software Foundation, either version 3 of the License, or
// (at your option) any later version.
//
// ResInsight is distributed in the hope that it will be useful, but WITHOUT ANY
// WARRANTY; without even the implied warranty of MERCHANTABILITY or
// FITNESS FOR A PARTICULAR PURPOSE.
//
// See the GNU General Public License at <http://www.gnu.org/licenses/gpl.html>
// for more details.
//
/////////////////////////////////////////////////////////////////////////////////
#pragma once
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#include "RifReaderInterface.h"
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#include "RiaDefines.h"
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#include "cvfCollection.h"
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#include <QDateTime>
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#include <vector>
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#include <cmath>
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class RifReaderInterface ;
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class RigActiveCellInfo ;
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class RigMainGrid ;
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class RigEclipseResultInfo ;
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class RigStatisticsDataCache ;
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class RigEclipseTimeStepInfo ;
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//==================================================================================================
/// Class containing the results for the complete number of active cells. Both main grid and LGR's
//==================================================================================================
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class RigCaseCellResultsData : public cvf :: Object
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{
public :
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explicit RigCaseCellResultsData ( RigEclipseCaseData * ownerCaseData );
void setReaderInterface ( RifReaderInterface * readerInterface );
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void setHdf5Filename ( const QString & hdf5SourSimFilename );
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void setMainGrid ( RigMainGrid * ownerGrid );
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void setActiveCellInfo ( RigActiveCellInfo * activeCellInfo ) { m_activeCellInfo = activeCellInfo ;}
RigActiveCellInfo * activeCellInfo () { return m_activeCellInfo ;}
const RigActiveCellInfo * activeCellInfo () const { return m_activeCellInfo ;}
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// Max and min values of the results
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void recalculateStatistics ( size_t scalarResultIndex );
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void minMaxCellScalarValues ( size_t scalarResultIndex , double & min , double & max );
void minMaxCellScalarValues ( size_t scalarResultIndex , size_t timeStepIndex , double & min , double & max );
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void posNegClosestToZero ( size_t scalarResultIndex , double & pos , double & neg );
void posNegClosestToZero ( size_t scalarResultIndex , size_t timeStepIndex , double & pos , double & neg );
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const std :: vector < size_t >& cellScalarValuesHistogram ( size_t scalarResultIndex );
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const std :: vector < size_t >& cellScalarValuesHistogram ( size_t scalarResultIndex , size_t timeStepIndex );
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void p10p90CellScalarValues ( size_t scalarResultIndex , double & p10 , double & p90 );
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void p10p90CellScalarValues ( size_t scalarResultIndex , size_t timeStepIndex , double & p10 , double & p90 );
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void meanCellScalarValues ( size_t scalarResultIndex , double & meanValue );
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void meanCellScalarValues ( size_t scalarResultIndex , size_t timeStepIndex , double & meanValue );
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const std :: vector < int >& uniqueCellScalarValues ( size_t scalarResultIndex );
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void sumCellScalarValues ( size_t scalarResultIndex , double & sumValue );
void sumCellScalarValues ( size_t scalarResultIndex , size_t timeStepIndex , double & sumValue );
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// Access meta-information about the results
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size_t resultCount () const ;
size_t timeStepCount ( size_t scalarResultIndex ) const ;
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size_t maxTimeStepCount ( size_t * scalarResultIndex = NULL ) const ;
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QStringList resultNames ( RiaDefines :: ResultCatType type ) const ;
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bool isUsingGlobalActiveIndex ( size_t scalarResultIndex ) const ;
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bool hasFlowDiagUsableFluxes () const ;
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std :: vector < QDateTime > allTimeStepDatesFromEclipseReader () const ;
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std :: vector < QDateTime > timeStepDates () const ;
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QDateTime timeStepDate ( size_t scalarResultIndex , size_t timeStepIndex ) const ;
std :: vector < QDateTime > timeStepDates ( size_t scalarResultIndex ) const ;
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std :: vector < double > daysSinceSimulationStart () const ;
std :: vector < double > daysSinceSimulationStart ( size_t scalarResultIndex ) const ;
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int reportStepNumber ( size_t scalarResultIndex , size_t timeStepIndex ) const ;
std :: vector < int > reportStepNumbers ( size_t scalarResultIndex ) const ;
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std :: vector < RigEclipseTimeStepInfo > timeStepInfos ( size_t scalarResultIndex ) const ;
void setTimeStepInfos ( size_t scalarResultIndex , const std :: vector < RigEclipseTimeStepInfo >& timeStepInfos );
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size_t findOrLoadScalarResultForTimeStep ( RiaDefines :: ResultCatType type , const QString & resultName , size_t timeStepIndex );
size_t findOrLoadScalarResult ( RiaDefines :: ResultCatType type , const QString & resultName );
size_t findOrLoadScalarResult ( const QString & resultName ); ///< Simplified search. Assumes unique names across types.
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// Find or create a slot for the results
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size_t findOrCreateScalarResultIndex ( RiaDefines :: ResultCatType type , const QString & resultName , bool needsToBeStored );
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size_t findScalarResultIndex ( RiaDefines :: ResultCatType type , const QString & resultName ) const ;
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size_t findScalarResultIndex ( const QString & resultName ) const ;
QString makeResultNameUnique ( const QString & resultNameProposal ) const ;
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void createPlaceholderResultEntries ();
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void computeDepthRelatedResults ();
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void clearScalarResult ( RiaDefines :: ResultCatType type , const QString & resultName );
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void clearAllResults ();
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void freeAllocatedResultsData ();
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// Access the results data
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const std :: vector < std :: vector < double > > & cellScalarResults ( size_t scalarResultIndex ) const ;
std :: vector < std :: vector < double > > & cellScalarResults ( size_t scalarResultIndex );
std :: vector < double >& cellScalarResults ( size_t scalarResultIndex , size_t timeStepIndex );
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bool updateResultName ( RiaDefines :: ResultCatType resultType , QString & oldName , const QString & newName );
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public :
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const std :: vector < RigEclipseResultInfo >& infoForEachResultIndex () { return m_resultInfos ;}
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bool mustBeCalculated ( size_t scalarResultIndex ) const ;
void setMustBeCalculated ( size_t scalarResultIndex );
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void eraseAllSourSimData ();
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public :
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size_t addStaticScalarResult ( RiaDefines :: ResultCatType type ,
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const QString & resultName ,
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bool needsToBeStored ,
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size_t resultValueCount );
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bool
findTransmissibilityResults ( size_t & tranX , size_t & tranY , size_t & tranZ ) const ;
private : // from RimReservoirCellResultsStorage
void computeSOILForTimeStep ( size_t timeStepIndex );
void computeRiTransComponent ( const QString & riTransComponentResultName );
void computeNncCombRiTrans ();
void computeRiMULTComponent ( const QString & riMultCompName );
void computeNncCombRiMULT ();
void computeRiTRANSbyAreaComponent ( const QString & riTransByAreaCompResultName );
void computeNncCombRiTRANSbyArea ();
void computeCompletionTypeForTimeStep ( size_t timeStep );
double darchysValue ();
bool isDataPresent ( size_t scalarResultIndex ) const ;
cvf :: ref < RifReaderInterface > m_readerInterface ;
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private :
std :: vector < std :: vector < std :: vector < double > > > m_cellScalarResults ; ///< Scalar results on the complete reservoir for each Result index (ResultVariable) and timestep
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cvf :: Collection < RigStatisticsDataCache > m_statisticsDataCache ;
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private :
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std :: vector < RigEclipseResultInfo > m_resultInfos ;
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RigMainGrid * m_ownerMainGrid ;
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RigEclipseCaseData * m_ownerCaseData ;
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RigActiveCellInfo * m_activeCellInfo ;
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};