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Following code is from my REPL:

scala> words.zipWithIndex.filter((x:java.lang.String,index:Int)=>index%2==0)
<console>:9: error: type mismatch;
found : (java.lang.String, Int) => Boolean
required: (java.lang.String, Int) => Boolean
words.zipWithIndex.filter((x:java.lang.String,index:Int)=>index%2==0)

Here found and required are the same. Could anyone help me understand the problem.

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up vote 10 down vote accepted

They are not really the same -- that's just a badly formatted error message. Scala 2.10 will have a better error message.

Basically, one is a tuple while the other is a two-parameters argument list. Specifically:

words.zipWithIndex // Creates a tuple

(x: String, index: Int) => index % 2 == 0 // is a function with two parameters

You can fix it in two ways:

filter((t: (String, Index)) => t._2 % 2 == 0) // use a tuple as parameter
filter { case (x: String, index: Int) => index % 2 == 0 } // use pattern matching
share|improve this answer
    
Thanks for the clarification. I should update to newest version of scala perhaps. Also, I found a better way of filtering which allows me disregard the type of list element: e.g. list.filter(x=> x._something....) – riship89 Jan 21 '12 at 9:50
1  
@hrishikeshp19 Scala 2.10 is not available yet. Version 2.9.1 is the latest, but I can assure you that 2.10 will have a better error message. – Daniel C. Sobral Jan 21 '12 at 11:23
    
@DanielC.Sobral I'm assuming you meant filter(t: (String, Int))? – Yuval Itzchakov Dec 16 '15 at 8:16
    
@YuvalItzchakov Mind you that I wrote this 3 years ago, but I don't think I did. It looks correct to me up there. – Daniel C. Sobral Dec 18 '15 at 6:22

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