Github user yinxusen commented on a diff in the pull request:
https://github.com/apache/spark/pull/11053#discussion_r52957867
--- Diff:
examples/src/main/java/org/apache/spark/examples/ml/JavaEstimatorTransformerParamExample.java
---
@@ -0,0 +1,118 @@
+/*
+ * Licensed to the Apache Software Foundation (ASF) under one or more
+ * 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
+ *
+ * Unless required by applicable law or agreed to in writing, software
+ * distributed under the License is distributed on an "AS IS" BASIS,
+ * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
+ * See the License for the specific language governing permissions and
+ * limitations under the License.
+ */
+
+package org.apache.spark.examples.ml;
+
+//$example on$
+import java.util.Arrays;
+
+import org.apache.spark.SparkConf;
+import org.apache.spark.SparkContext;
+import org.apache.spark.ml.classification.LogisticRegression;
+import org.apache.spark.ml.classification.LogisticRegressionModel;
+import org.apache.spark.ml.param.ParamMap;
+import org.apache.spark.mllib.linalg.Vectors;
+import org.apache.spark.mllib.regression.LabeledPoint;
+import org.apache.spark.sql.DataFrame;
+import org.apache.spark.sql.Row;
+import org.apache.spark.sql.SQLContext;
+
+//$example off$
+
+/**
+ * Java example for Estimator, Transformer, and Param.
+ */
+public class JavaEstimatorTransformerParamExample {
+ public static void main(String[] args) {
+ SparkConf conf = new SparkConf()
+ .setAppName("JavaEstimatorTransformerParamExample");
+ SparkContext sc = new SparkContext(conf);
+ SQLContext sqlContext = new SQLContext(sc);
+
+ // $example on$
+ // Prepare training data.
+ // We use LabeledPoint, which is a JavaBean. Spark SQL can convert
RDDs of
+ // JavaBeans
+ // into DataFrames, where it uses the bean metadata to infer the
schema.
+ DataFrame training = sqlContext.createDataFrame(Arrays.asList(
+ new LabeledPoint(1.0, Vectors.dense(0.0, 1.1, 0.1)), new
LabeledPoint(
+ 0.0, Vectors.dense(2.0, 1.0, -1.0)),
+ new LabeledPoint(0.0, Vectors.dense(2.0, 1.3, 1.0)), new
LabeledPoint(
+ 1.0, Vectors.dense(0.0, 1.2, -0.5))), LabeledPoint.class);
+
+ // Create a LogisticRegression instance. This instance is an Estimator.
+ LogisticRegression lr = new LogisticRegression();
+ // Print out the parameters, documentation, and any default values.
+ System.out.println("LogisticRegression parameters:\n" +
lr.explainParams()
+ + "\n");
--- End diff --
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