Github user tmyklebu commented on a diff in the pull request:

    https://github.com/apache/spark/pull/407#discussion_r11795406
  
    --- Diff: 
mllib/src/test/scala/org/apache/spark/mllib/recommendation/ALSSuite.scala ---
    @@ -128,6 +128,34 @@ class ALSSuite extends FunSuite with LocalSparkContext 
{
         assert(u11 != u2)
       }
     
    +  test("custom partitioner") {
    +    testALS(50, 50, 2, 15, 0.7, 0.3, false, false, false, 3, null)
    +    testALS(50, 50, 2, 15, 0.7, 0.3, false, false, false, 3, new 
Partitioner {
    +      def numPartitions(): Int = 3
    +      def getPartition(x: Any): Int = x match {
    +        case null => 0
    +        case _ => x.hashCode % 2
    +      }
    +    })
    +  }
    +
    +  test("negative ids") {
    +    val data = ALSSuite.generateRatings(50, 50, 2, 0.7, false, false)
    +    val ratings = sc.parallelize(data._1.map { case Rating(u,p,r) => 
Rating(u-25,p-25,r) })
    +    val correct = data._2
    +    val model = ALS.train(ratings, 5, 15)
    +
    +    val pairs = Array.tabulate(50, 50)((u,p) => (u-25,p-25)).flatten
    +    val ans = model.predict(sc.parallelize(pairs)).collect
    +    ans.foreach { r =>
    +      val u = r.user + 25
    +      val p = r.product + 25
    +      val v = r.rating
    +      val error = v - correct.get(u, p)
    +      assert(math.abs(error) < 0.4)
    --- End diff --
    
    That's what testALS() does.  Monkey see, monkey do.  (I can compute RMSE 
instead, of course; but any fragility here you'll also find in testALS.)


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