org.apache.spark.examples.mllib.PMMLModelExportExample.scala Maven / Gradle / Ivy
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* contributor license agreements. See the NOTICE file distributed with
* this work for additional information regarding copyright ownership.
* The ASF licenses this file to You under the Apache License, Version 2.0
* (the "License"); you may not use this file except in compliance with
* the License. You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
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// scalastyle:off println
package org.apache.spark.examples.mllib
import org.apache.spark.{SparkConf, SparkContext}
// $example on$
import org.apache.spark.mllib.clustering.KMeans
import org.apache.spark.mllib.linalg.Vectors
// $example off$
object PMMLModelExportExample {
def main(args: Array[String]): Unit = {
val conf = new SparkConf().setAppName("PMMLModelExportExample")
val sc = new SparkContext(conf)
// $example on$
// Load and parse the data
val data = sc.textFile("data/mllib/kmeans_data.txt")
val parsedData = data.map(s => Vectors.dense(s.split(' ').map(_.toDouble))).cache()
// Cluster the data into two classes using KMeans
val numClusters = 2
val numIterations = 20
val clusters = KMeans.train(parsedData, numClusters, numIterations)
// Export to PMML to a String in PMML format
println(s"PMML Model:\n ${clusters.toPMML}")
// Export the model to a local file in PMML format
clusters.toPMML("/tmp/kmeans.xml")
// Export the model to a directory on a distributed file system in PMML format
clusters.toPMML(sc, "/tmp/kmeans")
// Export the model to the OutputStream in PMML format
clusters.toPMML(System.out)
// $example off$
sc.stop()
}
}
// scalastyle:on println
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