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scala - How to encode categorical features in Apache Spark

I have a set of data based on which I want to create a classification model. Each row has the following form:

user1,class1,product1
user1,class1,product2
user1,class1,product5
user2,class1,product2
user2,class1,product5
user3,class2,product1

There are about 1M users, 2 classes, and 1M products. What I would like to do next is create the sparse vectors (something already supported by MLlib) BUT in order to apply that function I have to create the dense vectors (with the 0s), first. In other words, I have to binarize my data. What's the easiest (or most elegant) way of doing that?

Given that I am a newbie in regards to MLlib, may I ask you to provide a concrete example? I am using MLlib 1.2.

EDIT

I have ended up with the following piece of code but is turns out to be really slow... Any other ideas provided that I can only use MLlib 1.2?

val data = test11.map(x=> ((x(0) , x(1)) , x(2))).groupByKey().map(x=> (x._1 , x._2.toArray)).map{x=>
  var lt : Array[Double] = new Array[Double](test12.size)
  val id = x._1._1
  val cl = x._1._2
  val dt = x._2
  var i = -1
  test12.foreach{y => i += 1; lt(i) = if(dt contains y) 1.0 else 0.0}
  val vs = Vectors.dense(lt)
  (id , cl , vs)
}
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You can use spark.ml's OneHotEncoder.

You first use:

OneHotEncoder.categories(rdd, categoricalFields)

Where categoricalField is the sequence of indexes at which your RDD contains categorical data. categories, given a dataset and the index of columns which are categorical variables, returns a structure that, for each field, describes the values that are present for in the dataset. That map is meant to be used as input to the encode method:

OneHotEncoder.encode(rdd, categories)

Which returns your vectorized RDD[Array[T]].


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