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How to do that without creating any new collections? Is there something better than this?

val m = scala.collection.mutable.Map[String, Long]("1" -> 1, "2" -> 2, "3" -> 3, "4" -> 4)
m.foreach(t => if (t._2 % 2 == 0) m.remove(t._1))
println(m)

P.S. in Scala 2.8

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4  
Questions about collections should say whether a 2.7 or a 2.8 answer is sought. –  Randall Schulz Mar 23 '10 at 14:27
    
Using 2.8 for quite a long time, already forgot about 2.7. Thanks, added P.S. –  Oleg Galako Mar 24 '10 at 8:24
2  
There's a Scala-2.8 tag you could add as an indication that this is a 2.8 specific question. –  ams Mar 24 '10 at 10:09
    
Thanks, replaced "predicate" with it –  Oleg Galako Mar 25 '10 at 9:44

3 Answers 3

up vote 10 down vote accepted

retain does what you want. In 2.7:

val a = collection.mutable.Map(1->"one",2->"two",3->"three")
a: scala.collection.mutable.Map[Int,java.lang.String] = 
  Map(2 -> two, 1 -> one, 3 -> three)

scala> a.retain((k,v) => v.length < 4)   

scala> a
res0: scala.collection.mutable.Map[Int,java.lang.String] =
  Map(2 -> two, 1 -> one)

It also works, but I think is still in flux, in 2.8.

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1  
Looks like retain is deprecated in 2.8: scala-lang.org/archives/downloads/distrib/files/nightly/docs/… deprecated: cannot be type inferred because of retain in Iterable. –  Oleg Galako Mar 23 '10 at 18:19
    
Indeed; they might have to rename it, or come up with some other workaround. I don't think it will just vanish; that would be kind of silly. I'm interpreting that deprecation as "in flux, might change". –  Rex Kerr Mar 23 '10 at 19:27
    
Looks like deprecation is going to be removed. So the answer is correct. –  Oleg Galako Mar 28 '10 at 13:28

If you are using an immutable.Map, in 2.7 it might have to be something like:

def pred(k: Int, v: String) = k % 2 == 0

m --= (m.filter(pred(_, _)).keys

As there is no retain method available. Obviously in this case m must be declared as a var

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If you're using an immutable Map and hence must create a new one, it's pretty easy to simply filter with the negation of the predicate. –  Randall Schulz Mar 23 '10 at 16:31
    
Indeed, this is true: it depends what you feel is more readable in a given situation –  oxbow_lakes Mar 23 '10 at 16:32

Per the Scala mutable map reference page, you can remove a single element with either -= or remove, like so:

val m = scala.collection.mutable.Map[String, Long]("1" -> 1, "2" -> 2, "3" -> 3, "4" -> 4)
m -= "1" // returns m
m.remove("2") // returns Some(2)

The difference is that -= returns the original map object, while remove returns an Option containing the value corresponding to the removed key (if there was one.)

Of course, as other answers indicate, if you want to remove many elements based on a condition, you should look into retain, filter, etc.

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