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I have an Option:

val myOption: Option[Int] = fooBar()

And a method that takes a varargs param:

def myMethod(a: String, b: Int*) = {...}

Is there any way to pass the option to the method as a varargs param? i.e. if the option is Some(3) then pass 3, and if it is None then pass nothing.

Experimenting with the answer to scala: How to pass an expanded list as varargs into a method? I tried explicitly typing the argument:

myMethod("xyz", myOption: _*)

but the compiler complains that it requires a Seq[Int]. It seems that Option does not implement Seq and there is no predef implicit conversion.

Given that the compiler wants a Seq, I can of course pass myOption.toList: _*, but is there a nicer way?

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What does your method require of a Seq? It's possible you can write it with more general collection operations (i.e. foreach, map, filter, etc.) –  schmmd Nov 30 '11 at 18:26
    
@schmmd In this particular case, myMethod is part of a third-party library, so I have no choice but to use varargs. It it were my own code, I would probably just rewrite the method to take Iterable[Int] instead of Int*, and save myself all this trouble! –  Chris B Dec 1 '11 at 0:44

1 Answer 1

up vote 4 down vote accepted
myMethod("xyz", myOption.toSeq: _*)
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Am I right in thinking that this will internally call myOption.toList, via the Option object's implicit def option2Iterable method? –  Chris B Nov 30 '11 at 4:27
    
@ChrisB Ouch! You are absolutely right... Yes, toList is better. –  Daniel C. Sobral Nov 30 '11 at 13:28

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