Github user jkbradley commented on a diff in the pull request: https://github.com/apache/spark/pull/17373#discussion_r133322927 --- Diff: mllib/src/test/scala/org/apache/spark/ml/classification/MultilayerPerceptronClassifierSuite.scala --- @@ -82,6 +83,49 @@ class MultilayerPerceptronClassifierSuite } } + test("strong dataset test") { + val layers = Array[Int](4, 5, 5, 2) + + val strongDataset = Seq( + (Vectors.dense(1, 2, 3, 4), 0d, Vectors.dense(1d, 0d)), + (Vectors.dense(4, 3, 2, 1), 1d, Vectors.dense(0d, 1d)), + (Vectors.dense(1, 1, 1, 1), 0d, Vectors.dense(.5, .5)), + (Vectors.dense(1, 1, 1, 1), 1d, Vectors.dense(.5, .5)) + ).toDF("features", "label", "expectedProbability") + val trainer = new MultilayerPerceptronClassifier() + .setLayers(layers) + .setBlockSize(1) + .setSeed(123L) + .setMaxIter(100) + .setSolver("l-bfgs") + val model = trainer.fit(strongDataset) + val result = model.transform(strongDataset) + model.setProbabilityCol("probability") + MLTestingUtils.checkCopyAndUids(trainer, model) + // result.select("probability").show(false) + result.select("probability", "expectedProbability").collect().foreach { + case Row(p: Vector, e: Vector) => + assert(p ~== e absTol 1e-3) + } + } + + test("test model probability") { + val layers = Array[Int](2, 5, 2) + val trainer = new MultilayerPerceptronClassifier() + .setLayers(layers) + .setBlockSize(1) + .setSeed(123L) + .setMaxIter(100) + .setSolver("l-bfgs") + val model = trainer.fit(dataset) + model.setProbabilityCol("probability") --- End diff -- Ping --- this should not be necessary
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