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I'm taking my first interesting steps (non-hello-world level) with Scala (2.9.1) and I'm stuck trying to understand a very uninformative error message. It goes much like this:

error: type mismatch;
found   : (Int, Array[InputEntry]) => (Int, Double)
required: (Int, Array[InputEntry]) => ?
entries.groupBy(grouper).map((k: Int, ies: Array[InputEntry]) => (k, doMyStuff(ies)))

As you can guess process in this snippet is supposed to be where some processing goes on, and it's actually a well defined function with signature Array[InputEntry] => Double.

Grouper's signature, instead, is Array[InputEntry] => Int.

I've tried to extract a function and replace the lambda but it was useless, and I'm stuck trying to understand the question mark in the error...

Any ideas?

Edit: I should clarify that InputEntry is a class I've defined, but for the sake of this example it seems to me like it's hardly relevant.

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We need to see some of the code. The part of the code that was printed with the error message is not enough. In particular, what's the type signature of doMyStuff, and what kind of variable are you trying to write the result to? –  Ken Bloom Jan 11 '12 at 0:10
    
Are you sure the error message doesn't say required: ((Int, List[InputEntry])) => ? –  Ken Bloom Jan 11 '12 at 0:23
    
I guess I should have made it more specific that entries is a Map. Thanks anyway –  emaster70 Jan 11 '12 at 7:07

1 Answer 1

up vote 9 down vote accepted

This looks like the problem:

.map((k: Int, ies: Array[InputEntry]) => (k, doMyStuff(ies)))

You need to use a case statement to unapply the params and assign them to local variables. You also need to use {} instead of () because it is an anonymous function now.

entries.groupBy(grouper).map{case (k, ies) => (k, doMyStuff(ies))}

Here's a more simple example.

scala> val x = List(("a",1),("b",2))
x: List[(java.lang.String, Int)] = List((a,1), (b,2))
scala> x.map{ case (str, num) => num }
res5: List[Int] = List(1, 2)

If you don't want to use a case statement, you have to keep the tuple as a single variable.

scala> x.map(tuple => tuple._2)
res6: List[Int] = List(1, 2)
share|improve this answer
    
-1: That part of the code is right. –  Ken Bloom Jan 11 '12 at 0:19
    
Whoops I'm wrong: he reported the error message wrong. Once you account for this, I should actually give a +1 instead. –  Ken Bloom Jan 11 '12 at 0:21
1  
The corresponding bug is marked fixed, so it should not be there in the next version : issues.scala-lang.org/browse/SI-5067 –  Didier Dupont Jan 11 '12 at 0:54
    
@KenBloom: please read my comment, I actually copy-pasted the error message. Thanks everybody, anyway :) –  emaster70 Jan 11 '12 at 7:10
    
+1: Like the use of case to destructure args. Better than val (k: Int, ies: Array[InputEntry]) = tuple –  karmakaze Mar 3 at 17:11

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