class ChiSqSelector extends Serializable
Creates a ChiSquared feature selector.
The selector supports different selection methods: numTopFeatures
, percentile
, fpr
,
fdr
, fwe
.
numTopFeatures
chooses a fixed number of top features according to a chi-squared test.percentile
is similar but chooses a fraction of all features instead of a fixed number.fpr
chooses all features whose p-values are below a threshold, thus controlling the false positive rate of selection.fdr
uses the [Benjamini-Hochberg procedure] (https://en.wikipedia.org/wiki/False_discovery_rate#Benjamini.E2.80.93Hochberg_procedure) to choose all features whose false discovery rate is below a threshold.fwe
chooses all features whose p-values are below a threshold. The threshold is scaled by 1/numFeatures, thus controlling the family-wise error rate of selection. By default, the selection method isnumTopFeatures
, with the default number of top features set to 50.
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- @Since( "1.3.0" )
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- ChiSqSelector.scala
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- var fdr: Double
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def
fit(data: RDD[LabeledPoint]): ChiSqSelectorModel
Returns a ChiSquared feature selector.
Returns a ChiSquared feature selector.
- data
an
RDD[LabeledPoint]
containing the labeled dataset with categorical features. Real-valued features will be treated as categorical for each distinct value. Apply feature discretizer before using this function.
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- var fpr: Double
- var fwe: Double
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- var numTopFeatures: Int
- var percentile: Double
- var selectorType: String
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def
setFdr(value: Double): ChiSqSelector.this.type
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def
setFpr(value: Double): ChiSqSelector.this.type
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def
setFwe(value: Double): ChiSqSelector.this.type
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def
setNumTopFeatures(value: Int): ChiSqSelector.this.type
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def
setPercentile(value: Double): ChiSqSelector.this.type
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setSelectorType(value: String): ChiSqSelector.this.type
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