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How do I convert a scala.collection.Iterator containing thousands of objects to a scala.collection.immutable.Vector?

I do not believe that I can use _* because of the number of items.

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3 Answers 3

up vote 8 down vote accepted

You can

Vector() ++ myIterator

which gives the correct thing with the correct type. For very small vectors and iterators, in high-performance loops, you may instead wish to

val b = Vector.newBuilder[WhateverType]
while (myIterator.hasNext) { b += myIterator.next }
b.result

which does the minimum work necessary (as far as I know) to create a vector. toIndexedSeq does essentially this, but returns a more generic type (so you're not actually guaranteed a Vector, even if it does return a Vector now.)

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You can use toIndexedSeq. It doesn't statically return a Vector, but it actually is one.

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3  
Chances are OP does indeed just want some indexed sequence, and not necessarily a Vector specifically. –  Dan Burton Mar 13 '12 at 4:06
    
You are right. I need (near) constant-time random access and length calculations. –  Ralph Mar 13 '12 at 11:07

You can use _*, since all it does is pass a Seq with all the arguments. It will be inefficient, however, since it will first convert the iterator into a sequence, and then use that sequence to create another sequence.

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