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java.lang.Objectcom.rapidminer.operator.AbstractIOObject
com.rapidminer.operator.ResultObjectAdapter
com.rapidminer.tools.math.Averagable
com.rapidminer.operator.performance.PerformanceCriterion
com.rapidminer.operator.performance.MeasuredPerformance
com.rapidminer.operator.performance.cost.ClassificationCostCriterion
public class ClassificationCostCriterion
This performance Criterion works with a given cost matrix. Every classification result creates costs. Costs should be minimized since that the fitness is - cost.
| Constructor Summary | |
|---|---|
ClassificationCostCriterion(double[][] costMatrix,
Attribute label,
Attribute predictedLabel)
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| Method Summary | |
|---|---|
protected void |
buildSingleAverage(Averagable averagable)
This method should build the average of this and another averagable of the same type. |
void |
countExample(Example example)
Counts a single example, e.g. by summing up errors. |
java.lang.String |
getDescription()
Returns a description of the performance criterion. |
double |
getExampleCount()
Returns the number of data points which was used to determine the criterion value. |
double |
getFitness()
Returns the fitness depending on the value. |
double |
getMikroAverage()
Returns the (current) value of the averagable (the average itself). |
double |
getMikroVariance()
Returns the variance of the averagable. |
java.lang.String |
getName()
Returns the name of this averagable. |
| Methods inherited from class com.rapidminer.operator.performance.MeasuredPerformance |
|---|
startCounting, startCounting |
| Methods inherited from class com.rapidminer.operator.performance.PerformanceCriterion |
|---|
compareTo, getMaxFitness |
| Methods inherited from class com.rapidminer.tools.math.Averagable |
|---|
buildAverage, clone, cloneAveragable, formatPercent, getAverage, getAverageCount, getExtension, getFileDescription, getMakroAverage, getMakroStandardDeviation, getMakroVariance, getMikroStandardDeviation, getStandardDeviation, getVariance, getVisualizationComponent, setAverageCount, toString |
| Methods inherited from class com.rapidminer.operator.ResultObjectAdapter |
|---|
addAction, getActions, getResultIcon, isSavable, log, logError, logNote, logWarning, save, toHTML, toResultString |
| Methods inherited from class com.rapidminer.operator.AbstractIOObject |
|---|
copy, getLog, getSource, initWriting, read, setLoggingHandler, setSource, write |
| Methods inherited from class java.lang.Object |
|---|
equals, finalize, getClass, hashCode, notify, notifyAll, wait, wait, wait |
| Methods inherited from interface com.rapidminer.operator.IOObject |
|---|
copy, getLog, getSource, setLoggingHandler, setSource, write |
| Constructor Detail |
|---|
public ClassificationCostCriterion(double[][] costMatrix,
Attribute label,
Attribute predictedLabel)
| Method Detail |
|---|
public java.lang.String getDescription()
PerformanceCriterionPerformanceEvaluator operator.
getDescription in class PerformanceCriterionpublic java.lang.String getName()
Averagable
getName in interface ResultObjectgetName in class Averagablepublic void countExample(Example example)
MeasuredPerformance
countExample in class MeasuredPerformancepublic double getExampleCount()
PerformanceCriterion
getExampleCount in class PerformanceCriterionpublic double getFitness()
PerformanceCriterionReturns the fitness depending on the value. The fitness values will be used for all optimization purposes (feature space transformations, parameter optimizations...) and must always be maximized. Hence, if your criterion is better the smaller the value is you should return something like (-1 * value) or (1 / value).
Subclasses should use
Averagable.getAverage() instead of Averagable.getMikroAverage() in this method
since usually the makro average (if available) should be optmized instead
of the mikro average. The mikro average should only be used in the (rare)
cases where no makro average is available but this is automatically done
returned by Averagable.getAverage() in these cases.
getFitness in class PerformanceCriterionprotected void buildSingleAverage(Averagable averagable)
AveragableAveragable.getMikroAverage() should return the
average of this and the given averagable. Hence, this method is used to build
the actual micro average value of two criteria. Please refer to
SimpleCriterion for a simple
implementation example.
buildSingleAverage in class Averagablepublic double getMikroAverage()
AveragableAveragable.buildSingleAverage(Averagable) was used, this method must return the
micro average from both (or more) criteria. This is usually achieved by
correctly implementing Averagable.buildSingleAverage(Averagable).
getMikroAverage in class Averagablepublic double getMikroVariance()
Averagable
getMikroVariance in class Averagable
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