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SPARK ML
A new High-Level API for MLlib
Spark 1.4.0 preview
Matthieu Blanc
Instructor
Spark DevelopperTraining
@matthieublanc
MLLIB
Makes Machine Learning Easy and Scalable
Selection of Machine Learning Algorithms
Several design flaws :
• machine learning workflows/pipelines
• make MLlib itself a scalable project
• lack of homogeneity
org.apache.spark.ml to the rescue!
Machine Learning
Train
Dataset ML Algorithm
Model
Test
Dataset
Predictions
Feature
Engineering
Feature
Engineering
label
features
features
features
prediction
Machine Learning Pipeline
• Simple construction of ML workflow
• Inspect and debug it
• Tune parameters
• Re-run it on new data
Dataframes
org.apache.spark.ml
Key concepts
• DataFrame as ML Datasets
• Abstractions :
• Transformers
• Estimators
• Evaluators
• Parameters API -> CrossValidator
Transformers
DataFrame DataFrame
def transform(dataset: DataFrame): DataFrame
colA
colB
…
colX
colA
colB
…
colX
newCol
Transformer Usage
// Add a categoryVec column to the DataFrame
// by applying OneHotEncoder transformation to the column category

val classEncoder = new OneHotEncoder()

.setInputCol("catergory")

.setOutputCol("catergoryVec")



val newDataFrame = classEncoder.transform(dataFrame)
dataFrame newDataFrame
colA
colB
…
category: double
colA
colB
…
category: double
categoryVec: vector
Transformers Examples
Normalizer
VectorAssembler
PolynomialExpansion
Model
Tokenizer
OneHotEncoder
HashingTF
Binarizer
Estimators
DataFrame
Model
def fit(dataset: DataFrame): Model
label: double
features: vector
…
extends Transformer
Model is aTransformer
DataFrame DataFrame
def transform(dataset: DataFrame): DataFrame
features: vector
…
features: vector
prediction: double
…
Estimator + Model Usage
// Apply logisticRegression on a training dataset to create a model

// used to compute predictions on a test dataset

val logisticRegression = new LogisticRegression()

.setMaxIter(50)

.setRegParam(0.01)

// train
val lrModel = logisticRegression.fit(trainDF)

// predict

val newDataFrameWithPredictions = lrModel.transform(testDF)
Estimators Examples
StringIndexer
StandardScaler
CrossValidator
Pipeline
LinearRegression
LogisticRegression
DecisionTreeClassifier
RandomForestClassifier
GBTClassifier
ALS
Evaluators
DataFrame Metric (Double)
area under ROC curve
area under PR curve
root mean square error
def evaluate(dataset: DataFrame): Double
label: Double
prediction: Double
…
Estimator + Model Usage
// Area under the ROC curve for the validation set

val evaluator = new BinaryClassificationEvaluator()

println(evaluator.evaluate(dataFrameWithLabelAndPrediction))
Evaluators Examples
RegressionEvaluator
BinaryClassificationEvaluator
Pipeline
Train
Dataset
ML Algorithm
Model
Test
Dataset
Predictions
Feature
Engineering
Feature
Engineering
Pipeline
Transformer EstimatorDataFrame
PipelineModel
Transformer
Estimator
DataFrame DataFrame
Pipeline is an Estimator
Pipeline Usage
// The stages of our pipeline

val classEncoder = new OneHotEncoder()

.setInputCol("class")

.setOutputCol("classVec")

val vectorAssembler = new VectorAssembler()

.setInputCols(Array("age", "fare", "classVec"))

.setOutputCol("features")

val logisticRegression = new LogisticRegression()

.setMaxIter(50)

.setRegParam(0.01)



// the pipeline

val pipeline = new Pipeline()

.setStages(Array(classEncoder, vectorAssembler, logisticRegression))



// train
val pipelineModel = pipeline.fit(trainSet)



// predict
val validationPredictions = pipelineModel.transform(testSet)
CrossValidator
Given
• Estimator
• Parameter Grid
• Evaluator
Find the Model with the best Parameters
CrossValidator is also an Estimator
CrossValidator Usage
// We will cross validate our pipeline

val crossValidator = new CrossValidator()

.setEstimator(pipeline)

.setEvaluator(new BinaryClassificationEvaluator)



// The params we want to test

val paramGrid = new ParamGridBuilder()

.addGrid(hashingTF.numFeatures, Array(2, 5, 1000))

.addGrid(logisticRegression.regParam, Array(1, 0.1, 0.01))

.addGrid(logisticRegression.maxIter, Array(10, 50, 100))

.build()

crossValidator.setEstimatorParamMaps(paramGrid)



// We will use a 3-fold cross validation

crossValidator.setNumFolds(3)



// train
val cvModel = crossValidator.fit(trainSet)

// predict with the best model

val testSetWithPrediction = cvModel.transform(testSet)
DEMO
https://github.com/mblanc/spark-ml
Conclusion
DataFrame
o.a.spark.ml
RDD
o.a.spark.mllib
Today Tomorrow
uses uses
uses
uses
Summary
• Integration with DataFrames
• Familiar API based on scikit-learn
• Simple parameters tuning
• Schema validation
• User-defined Transformers and
Estimators
• Composable and DAG Pipelines
1.4.1? 1.5.0?
MERCI

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