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ResInsight/ApplicationLibCode/ProjectDataModel/Jobs/RimKeywordFactory.cpp
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/////////////////////////////////////////////////////////////////////////////////
//
// Copyright (C) 2025 Equinor ASA
//
// 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.
//
/////////////////////////////////////////////////////////////////////////////////
#include "RimKeywordFactory.h"
#include "Commands/CompletionExportCommands/RicWellPathExportCompletionDataFeatureImpl.h"
#include "RiaResultNames.h"
#include "RifEclipseInputFileTools.h"
#include "RifOpmDeckTools.h"
#include "RigEclipseResultTools.h"
#include "RigFault.h"
#include "RigMainGrid.h"
#include "RimEclipseCase.h"
#include "RimWellPath.h"
#include "RimWellPathCompletionSettings.h"
#include "cvfStructGrid.h"
#include "opm/input/eclipse/Deck/Deck.hpp"
#include "opm/input/eclipse/Deck/DeckItem.hpp"
#include "opm/input/eclipse/Deck/DeckKeyword.hpp"
#include "opm/input/eclipse/Deck/DeckRecord.hpp"
#include "opm/input/eclipse/Parser/ParserKeywords/B.hpp"
#include "opm/input/eclipse/Parser/ParserKeywords/C.hpp"
#include "opm/input/eclipse/Parser/ParserKeywords/F.hpp"
#include "opm/input/eclipse/Parser/ParserKeywords/O.hpp"
#include "opm/input/eclipse/Parser/ParserKeywords/W.hpp"
#include "opm/input/eclipse/Parser/ErrorGuard.hpp"
#include "opm/input/eclipse/Parser/InputErrorAction.hpp"
#include "opm/input/eclipse/Parser/ParseContext.hpp"
#include "opm/input/eclipse/Parser/Parser.hpp"
namespace internal
{
//--------------------------------------------------------------------------------------------------
/// Temporary methods for MSW data while waiting for MSW export rewrite
//--------------------------------------------------------------------------------------------------
static Opm::ParseContext defaultParseContext()
{
// Use the same default ParseContext as flow.
Opm::ParseContext pc( Opm::InputErrorAction::WARN );
pc.update( Opm::ParseContext::PARSE_RANDOM_SLASH, Opm::InputErrorAction::IGNORE );
pc.update( Opm::ParseContext::PARSE_MISSING_DIMS_KEYWORD, Opm::InputErrorAction::WARN );
pc.update( Opm::ParseContext::SUMMARY_UNKNOWN_WELL, Opm::InputErrorAction::WARN );
pc.update( Opm::ParseContext::SUMMARY_UNKNOWN_GROUP, Opm::InputErrorAction::WARN );
return pc;
}
} // namespace internal
//==================================================================================================
///
///
//==================================================================================================
namespace RimKeywordFactory
{
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword welspecsKeyword( const std::string wellGrpName, RimEclipseCase* eCase, RimWellPath* wellPath )
{
if ( eCase == nullptr || wellPath == nullptr || wellPath->completionSettings() == nullptr || eCase->eclipseCaseData() == nullptr )
{
return Opm::DeckKeyword();
}
auto ijPos = RicWellPathExportCompletionDataFeatureImpl::wellPathUpperGridIntersectionIJ( eCase, wellPath );
auto compSettings = wellPath->completionSettings();
auto wellName = compSettings->wellNameForExport().toStdString();
using W = Opm::ParserKeywords::WELSPECS;
std::vector<Opm::DeckItem> items;
items.push_back( RifOpmDeckTools::item( W::WELL::itemName, wellName ) );
items.push_back( RifOpmDeckTools::item( W::GROUP::itemName, wellGrpName ) );
items.push_back( RifOpmDeckTools::item( W::HEAD_I::itemName, ijPos.second.x() + 1 ) );
items.push_back( RifOpmDeckTools::item( W::HEAD_J::itemName, ijPos.second.y() + 1 ) );
auto refDepth = compSettings->referenceDepth();
items.push_back( refDepth.has_value() ? RifOpmDeckTools::item( W::REF_DEPTH::itemName, refDepth.value() )
: RifOpmDeckTools::defaultItem( W::REF_DEPTH::itemName ) );
items.push_back( RifOpmDeckTools::item( W::PHASE::itemName, compSettings->wellTypeNameForExport().toStdString() ) );
auto dRadius = compSettings->drainageRadius();
items.push_back( dRadius.has_value() ? RifOpmDeckTools::item( W::D_RADIUS::itemName, dRadius.value() )
: RifOpmDeckTools::defaultItem( W::D_RADIUS::itemName ) );
items.push_back( RifOpmDeckTools::item( W::INFLOW_EQ::itemName, compSettings->gasInflowEquationForExport().toStdString() ) );
items.push_back( RifOpmDeckTools::item( W::AUTO_SHUTIN::itemName, compSettings->automaticWellShutInForExport().toStdString() ) );
items.push_back( RifOpmDeckTools::item( W::CROSSFLOW::itemName, compSettings->allowWellCrossFlowForExport().toStdString() ) );
items.push_back( RifOpmDeckTools::item( W::P_TABLE::itemName, compSettings->wellBoreFluidPVT() ) );
items.push_back( RifOpmDeckTools::item( W::DENSITY_CALC::itemName, compSettings->hydrostaticDensityForExport().toStdString() ) );
items.push_back( RifOpmDeckTools::item( W::FIP_REGION::itemName, compSettings->fluidInPlaceRegion() ) );
Opm::DeckKeyword kw( ( Opm::ParserKeywords::WELSPECS() ) );
kw.addRecord( Opm::DeckRecord{ std::move( items ) } );
return kw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword compdatKeyword( RimEclipseCase* eCase, RimWellPath* wellPath )
{
if ( eCase == nullptr || wellPath == nullptr || wellPath->completionSettings() == nullptr || eCase->eclipseCaseData() == nullptr )
{
return Opm::DeckKeyword();
}
auto compdata = RicWellPathExportCompletionDataFeatureImpl::completionDataForWellPath( wellPath, eCase );
using C = Opm::ParserKeywords::COMPDAT;
Opm::DeckKeyword kw( ( Opm::ParserKeywords::COMPDAT() ) );
auto wellName = wellPath->completionSettings()->wellNameForExport().toStdString();
for ( auto& cd : compdata )
{
std::vector<Opm::DeckItem> items;
items.push_back( RifOpmDeckTools::item( C::WELL::itemName, wellName ) );
items.push_back( RifOpmDeckTools::item( C::I::itemName, cd.completionDataGridCell().localCellIndexI() + 1 ) );
items.push_back( RifOpmDeckTools::item( C::J::itemName, cd.completionDataGridCell().localCellIndexJ() + 1 ) );
items.push_back( RifOpmDeckTools::item( C::K1::itemName, cd.completionDataGridCell().localCellIndexK() + 1 ) );
items.push_back( RifOpmDeckTools::item( C::K2::itemName, cd.completionDataGridCell().localCellIndexK() + 1 ) );
items.push_back( RifOpmDeckTools::item( C::STATE::itemName, "OPEN" ) );
auto satTable = cd.saturation();
items.push_back( satTable != RigCompletionData::defaultValue() ? RifOpmDeckTools::item( C::SAT_TABLE::itemName, satTable )
: RifOpmDeckTools::defaultItem( C::SAT_TABLE::itemName ) );
auto transmissibility = cd.transmissibility();
items.push_back( transmissibility != RigCompletionData::defaultValue()
? RifOpmDeckTools::item( C::CONNECTION_TRANSMISSIBILITY_FACTOR::itemName, transmissibility )
: RifOpmDeckTools::defaultItem( C::CONNECTION_TRANSMISSIBILITY_FACTOR::itemName ) );
auto diameter = cd.diameter();
items.push_back( diameter != RigCompletionData::defaultValue() ? RifOpmDeckTools::item( C::DIAMETER::itemName, diameter )
: RifOpmDeckTools::defaultItem( C::DIAMETER::itemName ) );
auto kh = cd.kh();
items.push_back( kh != RigCompletionData::defaultValue() ? RifOpmDeckTools::item( C::Kh::itemName, kh )
: RifOpmDeckTools::defaultItem( C::Kh::itemName ) );
auto skinFactor = cd.skinFactor();
items.push_back( skinFactor != RigCompletionData::defaultValue() ? RifOpmDeckTools::item( C::SKIN::itemName, skinFactor )
: RifOpmDeckTools::defaultItem( C::SKIN::itemName ) );
auto dFactor = cd.dFactor();
items.push_back( dFactor != RigCompletionData::defaultValue() ? RifOpmDeckTools::item( C::D_FACTOR::itemName, dFactor )
: RifOpmDeckTools::defaultItem( C::D_FACTOR::itemName ) );
items.push_back( RifOpmDeckTools::item( C::DIR::itemName, cd.directionStringXYZ().toStdString() ) );
kw.addRecord( Opm::DeckRecord{ std::move( items ) } );
}
return kw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword welsegsKeyword( RimEclipseCase* eCase, RimWellPath* wellPath, const std::string completionText )
{
if ( eCase == nullptr || wellPath == nullptr || wellPath->completionSettings() == nullptr || eCase->eclipseCaseData() == nullptr )
{
return Opm::DeckKeyword();
}
Opm::ErrorGuard errors{};
bool headerDone = false;
Opm::DeckKeyword newKw( ( Opm::ParserKeywords::WELSEGS() ) );
auto deck = Opm::Parser{}.parseString( completionText, internal::defaultParseContext(), errors );
for ( auto kwit = deck.begin(); kwit != deck.end(); kwit++ )
{
auto& existingKw = *kwit;
if ( existingKw.name() != Opm::ParserKeywords::WELSEGS::keywordName ) continue;
for ( size_t i = 0; i < existingKw.size(); i++ )
{
Opm::DeckRecord newRec( existingKw.getRecord( i ) );
if ( newRec.getItem( 0 ).is_string() && headerDone ) continue;
newKw.addRecord( std::move( newRec ) );
headerDone = true;
}
}
return newKw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword compsegsKeyword( RimEclipseCase* eCase, RimWellPath* wellPath, const std::string completionText )
{
if ( eCase == nullptr || wellPath == nullptr || wellPath->completionSettings() == nullptr || eCase->eclipseCaseData() == nullptr )
{
return Opm::DeckKeyword();
}
Opm::ErrorGuard errors{};
bool headerDone = false;
Opm::DeckKeyword newKw( ( Opm::ParserKeywords::COMPSEGS() ) );
auto deck = Opm::Parser{}.parseString( completionText, internal::defaultParseContext(), errors );
for ( auto kwit = deck.begin(); kwit != deck.end(); kwit++ )
{
auto& existingKw = *kwit;
if ( existingKw.name() != Opm::ParserKeywords::COMPSEGS::keywordName ) continue;
for ( size_t i = 0; i < existingKw.size(); i++ )
{
Opm::DeckRecord newRec( existingKw.getRecord( i ) );
if ( newRec.size() == 1 && headerDone ) continue;
newKw.addRecord( std::move( newRec ) );
headerDone = true;
}
}
return newKw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword wsegvalvKeyword( RimEclipseCase* eCase, RimWellPath* wellPath, const std::string completionText )
{
if ( eCase == nullptr || wellPath == nullptr || wellPath->completionSettings() == nullptr || eCase->eclipseCaseData() == nullptr )
{
return Opm::DeckKeyword();
}
Opm::ErrorGuard errors{};
Opm::DeckKeyword newKw( ( Opm::ParserKeywords::WSEGVALV() ) );
auto deck = Opm::Parser{}.parseString( completionText, internal::defaultParseContext(), errors );
for ( auto kwit = deck.begin(); kwit != deck.end(); kwit++ )
{
auto& existingKw = *kwit;
if ( existingKw.name() != Opm::ParserKeywords::WSEGVALV::keywordName ) continue;
for ( size_t i = 0; i < existingKw.size(); i++ )
{
Opm::DeckRecord newRec( existingKw.getRecord( i ) );
newKw.addRecord( std::move( newRec ) );
}
}
return newKw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword wsegaicdKeyword( RimEclipseCase* eCase, RimWellPath* wellPath, const std::string completionText )
{
if ( eCase == nullptr || wellPath == nullptr || wellPath->completionSettings() == nullptr || eCase->eclipseCaseData() == nullptr )
{
return Opm::DeckKeyword();
}
Opm::ErrorGuard errors{};
Opm::DeckKeyword newKw( ( Opm::ParserKeywords::WSEGAICD() ) );
auto deck = Opm::Parser{}.parseString( completionText, internal::defaultParseContext(), errors );
for ( auto kwit = deck.begin(); kwit != deck.end(); kwit++ )
{
auto& existingKw = *kwit;
if ( existingKw.name() != Opm::ParserKeywords::WSEGAICD::keywordName ) continue;
for ( size_t i = 0; i < existingKw.size(); i++ )
{
Opm::DeckRecord newRec( existingKw.getRecord( i ) );
newKw.addRecord( std::move( newRec ) );
}
}
return newKw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword faultsKeyword( const RigMainGrid* mainGrid, const cvf::Vec3st& min, const cvf::Vec3st& max, const cvf::Vec3st& refinement )
{
if ( mainGrid == nullptr )
{
return Opm::DeckKeyword();
}
// Helper lambda to convert FaceType to Eclipse face string
auto faceTypeToString = []( cvf::StructGridInterface::FaceType faceType ) -> std::string
{
switch ( faceType )
{
case cvf::StructGridInterface::POS_I:
return "I";
case cvf::StructGridInterface::NEG_I:
return "I-";
case cvf::StructGridInterface::POS_J:
return "J";
case cvf::StructGridInterface::NEG_J:
return "J-";
case cvf::StructGridInterface::POS_K:
return "K";
case cvf::StructGridInterface::NEG_K:
return "K-";
default:
return "";
}
};
using F = Opm::ParserKeywords::FAULTS;
Opm::DeckKeyword kw{ Opm::ParserKeywords::FAULTS() };
// Process all faults in the grid
const cvf::Collection<RigFault>& faults = mainGrid->faults();
for ( const auto& fault : faults )
{
// Skip undefined faults
if ( fault->name() == RiaResultNames::undefinedGridFaultName() || fault->name() == RiaResultNames::undefinedGridFaultWithInactiveName() )
{
continue;
}
// Extract fault cell and face data for this fault
std::vector<RigFault::CellAndFace> faultCellAndFaces =
RifEclipseInputFileTools::extractFaults( mainGrid, fault->faultFaces(), min, max, refinement );
// Group consecutive cells in K direction and create fault records
size_t lastI = std::numeric_limits<size_t>::max();
size_t lastJ = std::numeric_limits<size_t>::max();
size_t lastK = std::numeric_limits<size_t>::max();
size_t startK = std::numeric_limits<size_t>::max();
cvf::StructGridInterface::FaceType lastFaceType = cvf::StructGridInterface::FaceType::NO_FACE;
for ( const RigFault::CellAndFace& faultCellAndFace : faultCellAndFaces )
{
size_t i, j, k;
cvf::StructGridInterface::FaceType faceType;
std::tie( i, j, k, faceType ) = faultCellAndFace;
// Check if we need to write out the previous range
if ( i != lastI || j != lastJ || lastFaceType != faceType || k != lastK + 1 )
{
// Write out previous fault line if valid
if ( lastFaceType != cvf::StructGridInterface::FaceType::NO_FACE )
{
// Convert from 0-based to 1-based Eclipse indexing
int i1 = static_cast<int>( lastI ) + 1;
int j1 = static_cast<int>( lastJ ) + 1;
int k1 = static_cast<int>( startK ) + 1;
int k2 = static_cast<int>( lastK ) + 1;
std::string faceStr = faceTypeToString( lastFaceType );
// Create a record for this fault line
std::vector<Opm::DeckItem> items;
items.push_back( RifOpmDeckTools::item( F::NAME::itemName, fault->name().toStdString() ) );
items.push_back( RifOpmDeckTools::item( F::IX1::itemName, i1 ) );
items.push_back( RifOpmDeckTools::item( F::IX2::itemName, i1 ) );
items.push_back( RifOpmDeckTools::item( F::IY1::itemName, j1 ) );
items.push_back( RifOpmDeckTools::item( F::IY2::itemName, j1 ) );
items.push_back( RifOpmDeckTools::item( F::IZ1::itemName, k1 ) );
items.push_back( RifOpmDeckTools::item( F::IZ2::itemName, k2 ) );
items.push_back( RifOpmDeckTools::item( F::FACE::itemName, faceStr ) );
kw.addRecord( Opm::DeckRecord{ std::move( items ) } );
}
// Start new range
lastI = i;
lastJ = j;
lastK = k;
lastFaceType = faceType;
startK = k;
}
else
{
// Continue current range
lastK = k;
}
}
// Write out final fault line for this fault if valid
if ( lastFaceType != cvf::StructGridInterface::FaceType::NO_FACE )
{
// Convert from 0-based to 1-based Eclipse indexing
int i1 = static_cast<int>( lastI ) + 1;
int j1 = static_cast<int>( lastJ ) + 1;
int k1 = static_cast<int>( startK ) + 1;
int k2 = static_cast<int>( lastK ) + 1;
std::string faceStr = faceTypeToString( lastFaceType );
// Create a record for this fault line
std::vector<Opm::DeckItem> items;
items.push_back( RifOpmDeckTools::item( F::NAME::itemName, fault->name().toStdString() ) );
items.push_back( RifOpmDeckTools::item( F::IX1::itemName, i1 ) );
items.push_back( RifOpmDeckTools::item( F::IX2::itemName, i1 ) );
items.push_back( RifOpmDeckTools::item( F::IY1::itemName, j1 ) );
items.push_back( RifOpmDeckTools::item( F::IY2::itemName, j1 ) );
items.push_back( RifOpmDeckTools::item( F::IZ1::itemName, k1 ) );
items.push_back( RifOpmDeckTools::item( F::IZ2::itemName, k2 ) );
items.push_back( RifOpmDeckTools::item( F::FACE::itemName, faceStr ) );
kw.addRecord( Opm::DeckRecord{ std::move( items ) } );
}
}
return kw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword bcconKeyword( const std::vector<RigEclipseResultTools::BorderCellFace>& borderCellFaces )
{
if ( borderCellFaces.empty() )
{
return Opm::DeckKeyword();
}
// Helper lambda to convert FaceType to Eclipse face string
auto faceTypeToString = []( cvf::StructGridInterface::FaceType faceType ) -> std::string
{
switch ( faceType )
{
case cvf::StructGridInterface::POS_I:
return "X";
case cvf::StructGridInterface::NEG_I:
return "X-";
case cvf::StructGridInterface::POS_J:
return "Y";
case cvf::StructGridInterface::NEG_J:
return "Y-";
case cvf::StructGridInterface::POS_K:
return "Z";
case cvf::StructGridInterface::NEG_K:
return "Z-";
default:
return "";
}
};
using B = Opm::ParserKeywords::BCCON;
Opm::DeckKeyword kw{ Opm::ParserKeywords::BCCON() };
for ( const auto& borderFace : borderCellFaces )
{
// Convert from 0-based to 1-based Eclipse indexing
int i1 = static_cast<int>( borderFace.ijk[0] ) + 1;
int j1 = static_cast<int>( borderFace.ijk[1] ) + 1;
int k1 = static_cast<int>( borderFace.ijk[2] ) + 1;
std::string faceStr = faceTypeToString( borderFace.faceType );
// Create items for the record
std::vector<Opm::DeckItem> items;
items.push_back( RifOpmDeckTools::item( B::INDEX::itemName, borderFace.boundaryCondition ) );
items.push_back( RifOpmDeckTools::item( B::I1::itemName, i1 ) );
items.push_back( RifOpmDeckTools::item( B::I2::itemName, i1 ) );
items.push_back( RifOpmDeckTools::item( B::J1::itemName, j1 ) );
items.push_back( RifOpmDeckTools::item( B::J2::itemName, j1 ) );
items.push_back( RifOpmDeckTools::item( B::K1::itemName, k1 ) );
items.push_back( RifOpmDeckTools::item( B::K2::itemName, k1 ) );
items.push_back( RifOpmDeckTools::item( B::DIRECTION::itemName, faceStr ) );
kw.addRecord( Opm::DeckRecord{ std::move( items ) } );
}
return kw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword bcpropKeyword( const std::vector<RigEclipseResultTools::BorderCellFace>& boundaryConditions,
const std::vector<Opm::DeckRecord>& boundaryConditionProperties )
{
if ( boundaryConditions.empty() )
{
return Opm::DeckKeyword();
}
using B = Opm::ParserKeywords::BCPROP;
Opm::DeckKeyword kw{ Opm::ParserKeywords::BCPROP() };
// Add one entry per boundary condition
for ( const auto& bc : boundaryConditions )
{
if ( bc.boundaryCondition <= 0 ) continue; // Skip entries without a valid boundary condition
// Find the corresponding property record
// The properties vector should be indexed by boundaryCondition - 1
size_t propIndex = static_cast<size_t>( bc.boundaryCondition - 1 );
if ( propIndex < boundaryConditionProperties.size() )
{
const auto& propRecord = boundaryConditionProperties[propIndex];
// Create a new record with the boundary condition INDEX
std::vector<Opm::DeckItem> items;
// Add INDEX field
items.push_back( RifOpmDeckTools::item( B::INDEX::itemName, bc.boundaryCondition ) );
// Copy all items from the property record (which doesn't include INDEX)
for ( size_t i = 0; i < propRecord.size(); ++i )
{
items.push_back( propRecord.getItem( i ) );
}
kw.addRecord( Opm::DeckRecord{ std::move( items ) } );
}
}
return kw;
}
//--------------------------------------------------------------------------------------------------
///
//--------------------------------------------------------------------------------------------------
Opm::DeckKeyword operaterKeyword( std::string targetProperty,
int regionId,
std::string equation,
std::string inputProperty,
std::optional<float> alpha,
std::optional<float> beta )
{
using O = Opm::ParserKeywords::OPERATER;
// Create the OPERATER keyword
Opm::DeckKeyword operaterKw( ( Opm::ParserKeywords::OPERATER() ) );
std::vector<Opm::DeckItem> recordItems;
recordItems.push_back( RifOpmDeckTools::item( O::TARGET_ARRAY::itemName, targetProperty ) );
recordItems.push_back( RifOpmDeckTools::item( O::REGION_NUMBER::itemName, regionId ) );
recordItems.push_back( RifOpmDeckTools::item( O::OPERATION::itemName, equation ) );
recordItems.push_back( RifOpmDeckTools::item( O::ARRAY_PARAMETER::itemName, inputProperty ) );
// Add alpha parameter
if ( alpha.has_value() )
{
recordItems.push_back( RifOpmDeckTools::item( O::PARAM1::itemName, std::to_string( alpha.value() ) ) );
}
else
{
recordItems.push_back( RifOpmDeckTools::defaultItem( O::PARAM1::itemName ) );
}
// Add beta parameter
if ( beta.has_value() )
{
recordItems.push_back( RifOpmDeckTools::item( O::PARAM2::itemName, std::to_string( beta.value() ) ) );
}
else
{
recordItems.push_back( RifOpmDeckTools::defaultItem( O::PARAM2::itemName ) );
}
// Add final default item
recordItems.push_back( RifOpmDeckTools::defaultItem( O::REGION_NAME::itemName ) ); // 1* for the last field
operaterKw.addRecord( Opm::DeckRecord{ std::move( recordItems ) } );
return operaterKw;
}
} // namespace RimKeywordFactory