Expose predictLeaf functionality in Scala XGBoostModel (#1351)
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@ -59,3 +59,4 @@ List of Contributors
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* [Sam Thomson](https://github.com/sammthomson)
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* [ganesh-krishnan](https://github.com/ganesh-krishnan)
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* [Damien Carol](https://github.com/damiencarol)
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* [Alex Bain](https://github.com/convexquad)
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@ -26,9 +26,9 @@ import ml.dmlc.xgboost4j.scala.{DMatrix, Booster}
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class XGBoostModel(_booster: Booster) extends Serializable {
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/**
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* Predict result with the given testset (represented as RDD)
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* Predict result with the given test set (represented as RDD)
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*
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* @param testSet test set representd as RDD
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* @param testSet test set represented as RDD
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* @param useExternalCache whether to use external cache for the test set
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*/
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def predict(testSet: RDD[Vector], useExternalCache: Boolean = false): RDD[Array[Array[Float]]] = {
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@ -53,8 +53,9 @@ class XGBoostModel(_booster: Booster) extends Serializable {
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}
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/**
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* Predict result with the given testset (represented as RDD)
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* @param testSet test set representd as RDD
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* Predict result with the given test set (represented as RDD)
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*
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* @param testSet test set represented as RDD
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* @param missingValue the specified value to represent the missing value
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*/
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def predict(testSet: RDD[DenseVector], missingValue: Float): RDD[Array[Array[Float]]] = {
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@ -78,12 +79,41 @@ class XGBoostModel(_booster: Booster) extends Serializable {
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}
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/**
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* predict result given the test data (represented as DMatrix)
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* Predict result with the given test set (represented as DMatrix)
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*
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* @param testSet test set represented as DMatrix
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*/
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def predict(testSet: DMatrix): Array[Array[Float]] = {
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_booster.predict(testSet, true, 0)
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}
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/**
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* Predict leaf instances with the given test set (represented as RDD)
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*
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* @param testSet test set represented as RDD
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*/
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def predictLeaves(testSet: RDD[Vector]): RDD[Array[Array[Float]]] = {
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import DataUtils._
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val broadcastBooster = testSet.sparkContext.broadcast(_booster)
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testSet.mapPartitions { testSamples =>
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if (testSamples.hasNext) {
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val dMatrix = new DMatrix(new JDMatrix(testSamples, null))
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Iterator(broadcastBooster.value.predictLeaf(dMatrix, 0))
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} else {
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Iterator()
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}
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}
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}
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/**
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* Predict leaf instances with the given test set (represented as DMatrix)
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*
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* @param testSet test set represented as DMatrix
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*/
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def predictLeaves(testSet: DMatrix): Array[Array[Float]] = {
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_booster.predictLeaf(testSet, 0)
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}
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/**
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* Save the model as to HDFS-compatible file system.
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*
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@ -97,7 +127,7 @@ class XGBoostModel(_booster: Booster) extends Serializable {
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}
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/**
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* get the booster instance of this model
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* Get the booster instance of this model
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*/
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def booster: Booster = _booster
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}
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