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#1354 Only use active cells in statistics for active cells
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@ -41,26 +41,10 @@ RigEclipseNativeStatCalc::RigEclipseNativeStatCalc(RigCaseCellResultsData* cellR
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//--------------------------------------------------------------------------------------------------
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void RigEclipseNativeStatCalc::minMaxCellScalarValues(size_t timeStepIndex, double& min, double& max)
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{
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std::vector<double>& values = m_resultsData->cellScalarResults(m_scalarResultIndex, timeStepIndex);
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size_t i;
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for (i = 0; i < values.size(); i++)
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{
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if (values[i] == HUGE_VAL)
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{
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continue;
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}
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if (values[i] < min)
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{
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min = values[i];
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}
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if (values[i] > max)
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{
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max = values[i];
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}
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}
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MinMaxAccumulator acc(min, max);
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traverseCells(acc, timeStepIndex);
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min = acc.min;
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max = acc.max;
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}
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//--------------------------------------------------------------------------------------------------
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@ -68,9 +52,10 @@ void RigEclipseNativeStatCalc::minMaxCellScalarValues(size_t timeStepIndex, doub
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//--------------------------------------------------------------------------------------------------
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void RigEclipseNativeStatCalc::posNegClosestToZero(size_t timeStepIndex, double& pos, double& neg)
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{
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std::vector<double>& values = m_resultsData->cellScalarResults(m_scalarResultIndex, timeStepIndex);
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RigStatisticsCalculator::posNegClosestToZero(values, pos, neg);
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PosNegAccumulator acc(pos, neg);
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traverseCells(acc, timeStepIndex);
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pos = acc.pos;
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neg = acc.neg;
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}
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//--------------------------------------------------------------------------------------------------
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@ -78,9 +63,7 @@ void RigEclipseNativeStatCalc::posNegClosestToZero(size_t timeStepIndex, double&
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//--------------------------------------------------------------------------------------------------
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void RigEclipseNativeStatCalc::addDataToHistogramCalculator(size_t timeStepIndex, RigHistogramCalculator& histogramCalculator)
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{
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std::vector<double>& values = m_resultsData->cellScalarResults(m_scalarResultIndex, timeStepIndex);
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histogramCalculator.addData(values);
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traverseCells(histogramCalculator, timeStepIndex);
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}
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//--------------------------------------------------------------------------------------------------
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@ -88,12 +71,9 @@ void RigEclipseNativeStatCalc::addDataToHistogramCalculator(size_t timeStepIndex
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//--------------------------------------------------------------------------------------------------
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void RigEclipseNativeStatCalc::uniqueValues(size_t timeStepIndex, std::set<int>& values)
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{
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std::vector<double>& doubleValues = m_resultsData->cellScalarResults(m_scalarResultIndex, timeStepIndex);
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for (size_t cIdx = 0; cIdx < doubleValues.size(); ++cIdx)
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{
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values.insert(std::floor(doubleValues[cIdx]));
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}
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UniqueValueAccumulator acc;
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traverseCells(acc, timeStepIndex);
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values = acc.uniqueValues;
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}
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//--------------------------------------------------------------------------------------------------
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@ -101,22 +81,10 @@ void RigEclipseNativeStatCalc::uniqueValues(size_t timeStepIndex, std::set<int>&
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//--------------------------------------------------------------------------------------------------
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void RigEclipseNativeStatCalc::valueSumAndSampleCount(size_t timeStepIndex, double& valueSum, size_t& sampleCount)
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{
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std::vector<double>& values = m_resultsData->cellScalarResults(m_scalarResultIndex, timeStepIndex);
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size_t undefValueCount = 0;
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for (size_t cIdx = 0; cIdx < values.size(); ++cIdx)
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{
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double value = values[cIdx];
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if (value == HUGE_VAL || value != value)
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{
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++undefValueCount;
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continue;
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}
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valueSum += value;
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}
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sampleCount += values.size();
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sampleCount -= undefValueCount;
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SumCountAccumulator acc(valueSum, sampleCount);
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traverseCells(acc, timeStepIndex);
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valueSum = acc.valueSum;
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sampleCount = acc.sampleCount;
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}
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//--------------------------------------------------------------------------------------------------
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@ -20,6 +20,7 @@
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#pragma once
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#include "RigStatisticsCalculator.h"
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#include "RigActiveCellInfo.h"
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class RigHistogramCalculator;
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class RigCaseCellResultsData;
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@ -43,4 +44,35 @@ public:
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private:
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RigCaseCellResultsData* m_resultsData;
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size_t m_scalarResultIndex;
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template <typename StatisticsAccumulator>
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void traverseCells(StatisticsAccumulator& accumulator, size_t timeStepIndex)
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{
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std::vector<double>& values = m_resultsData->cellScalarResults(m_scalarResultIndex, timeStepIndex);
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if (values.empty())
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{
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// Can happen if values do not exist for the current time step index.
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return;
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}
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const RigActiveCellInfo* actCellInfo = m_resultsData->activeCellInfo();
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for (size_t cIdx = 0; cIdx < values.size(); ++cIdx)
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{
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// Filter out inactive cells
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if (!actCellInfo->isActive(cIdx)) continue;
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size_t cellResultIndex = cIdx;
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if (m_resultsData->isUsingGlobalActiveIndex(m_scalarResultIndex))
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{
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cellResultIndex = actCellInfo->cellResultIndex(cIdx);
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}
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if (cellResultIndex != cvf::UNDEFINED_SIZE_T && cellResultIndex < values.size())
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{
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accumulator.addValue(values[cellResultIndex]);
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}
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}
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}
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};
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