Class PseudoRefRecall
- java.lang.Object
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- org.aksw.limes.core.evaluation.qualititativeMeasures.APRF
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- org.aksw.limes.core.evaluation.qualititativeMeasures.APseudoPRF
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- org.aksw.limes.core.evaluation.qualititativeMeasures.PseudoRecall
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- org.aksw.limes.core.evaluation.qualititativeMeasures.PseudoRefRecall
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- All Implemented Interfaces:
IQualitativeMeasure
public class PseudoRefRecall extends PseudoRecall
Implements a quality measure for unsupervised ML algorihtms, dubbed pseudo Reference Recall.
Thereby, not relying on any gold standard. The basic idea is to measure the quality of the given Mapping by calculating how close it is to an assumed 1-to-1 Mapping between source and target.- Since:
- 1.0
- Version:
- 1.0
- Author:
- Klaus Lyko (lyko@informatik.uni-leipzig.de), Axel-C. Ngonga Ngomo (ngonga@informatik.uni-leipzig.de), Mofeed Hassan (mounir@informatik.uni-leipzig.de)
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Field Summary
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Fields inherited from class org.aksw.limes.core.evaluation.qualititativeMeasures.APseudoPRF
symmetricPrecision
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Constructor Summary
Constructors Constructor Description PseudoRefRecall()
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Method Summary
All Methods Instance Methods Concrete Methods Modifier and Type Method Description doublecalculate(AMapping predictions, GoldStandard goldStandard)The method calculates the pseudo reference Recall of the machine learning predictions compared to a gold standard for beta = 1 .-
Methods inherited from class org.aksw.limes.core.evaluation.qualititativeMeasures.APseudoPRF
getUse1To1Mapping, isSymmetricPrecision, isUse1To1Mapping, setSymmetricPrecision, setUse1To1Mapping
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Methods inherited from class org.aksw.limes.core.evaluation.qualititativeMeasures.APRF
falseNegative, trueFalsePositive, trueNegative
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Method Detail
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calculate
public double calculate(AMapping predictions, GoldStandard goldStandard)
The method calculates the pseudo reference Recall of the machine learning predictions compared to a gold standard for beta = 1 .- Specified by:
calculatein interfaceIQualitativeMeasure- Overrides:
calculatein classPseudoRecall- Parameters:
predictions- The predictions provided by a machine learning algorithm.goldStandard- It contains the gold standard (reference mapping) combined with the source and target URIs.- Returns:
- double - This returns the calculated pseudo reference Recall.
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