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The following generates a Vector of immutable Vectors:

var darr = Vector.tabulate(2, 3){ (a,b) => a*2+b }
darr: scala.collection.immutable.Vector[scala.collection.immutable.Vector[Int]] = Vector(Vector(0, 1, 2), Vector(2, 3, 4))

But what is needed for our use case is a Vector of mutable Vectors. How can that be done?

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2 Answers 2

up vote 4 down vote accepted

Just do nested calls to tabulate, where the inner call is on a mutable sequence, like Buffer:

import collection.mutable.Buffer
Vector.tabulate(2)(a => Buffer.tabulate(3)(b => a*2+b))
// Vector(ArrayBuffer(0, 1, 2), ArrayBuffer(2, 3, 4))

The 2D tabulate is really just syntactic sugar for a nested tabulate anyway:

// From GenTraversableFactory
def tabulate[A](n1: Int, n2: Int)(f: (Int, Int) => A): CC[CC[A]] =
  tabulate(n1)(i1 => tabulate(n2)(f(i1, _)))
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Thanks, that is what I want. Pls consider to upvote. –  javadba Nov 16 '13 at 20:53

If your collection stays the same size and all you're wanting is mutable entries, then I think using a 2D array might be a good solution. As an added bonus, the Array object in Scala provides tabulate methods for creating 1D through 5D arrays. All I had to do to get this to work was change the word Vector in your original example to Array and it works just fine:

scala> var darr = Array.tabulate(2, 3){ (a,b) => a*2+b }
darr: Array[Array[Int]] = Array(Array(0, 1, 2), Array(2, 3, 4))
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