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I have a function that makes use of an implicit view to a Seq[A], you can see it makes use of the head method and preserves types:-

scala> def needSeq[A, C <% Seq[A]](col: C) = { (col.head , col) }
needSeq: [A, C](col: C)(implicit evidence$1: C => Seq[A])(A, C)

scala> needSeq(List(1,2,3))
res0: (Int, List[Int]) = (1,List(1, 2, 3))

scala> needSeq(List("a","b"))
res1: (java.lang.String, List[java.lang.String]) = (a,List(a, b))

scala> needSeq(Array("a","b"))
res2: (java.lang.String, Array[java.lang.String]) = (a,Array(a, b))

I want to write a function that takes functions like needSeq and applies them to arguments

scala> def useFunc[A, C <% Seq[A], R](col: C)(f: C => R) = { f(col) }
useFunc: [A, C, R](col: C)(f: C => R)(implicit evidence$1: C => Seq[A])R

The problem is because only one type (C) is provided in the parameter list there is no implicit view from C => Seq[A] available

scala> useFunc(List(1,2,3))(needSeq)
<console>:10: error: No implicit view available from C => Seq[A].
              useFunc(List(1,2,3))(needSeq)
                                   ^

How should I write useFunc?

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Using useFunc(List(1,2,3))(x => needSeq(x)) instead of useFunc(List(1,2,3))(needSeq) –  Eastsun Feb 9 '13 at 1:12
    
Thanks @Eastsun that works :-) ,and of course useFunc(List(1,2,3))(needSeq(_)) works too... could you please explain why the compiler can now find the implicit view? Is it because the evaluation is somehow delayed more until useFunc makes use of the 'f' ? –  user2056182 Feb 9 '13 at 4:48
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2 Answers

up vote 0 down vote accepted

I think that solution from @Eastsun

 useFunc(List(1,2,3))(x => needSeq(x))

works because the C from

def useFunc[A, C <% Seq[A], R](col: C)(f: C => R)

is now represented by the x and kind of connects the type of the List with the type of parameter that the needSeq takes

or one could say that the two lines above better resemble each other that way :

 def useFunc[A, C <% Seq[A], R]  (col: C)   (f: C => R)
     useFunc                  (List(1,2,3)) (x => needSeq(x))
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The problem is in definition needSeq..
if you can try to refactor it to..

def needSeq[A](col : Seq[A]) = (col.head , col) 

then both of these cases works..

useFunc(List(1,2,3))(needSeq) //> res1: (Int, Seq[Int]) = (1,List(1, 2, 3))

useFunc(List(1,2,3))(x => needSeq(x)) //> res2: (Int, Seq[Int]) = (1,List(1, 2, 3))
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Hi Thanks @Shrey, the trouble is that that messes up the use case with Array ,see above example, which now gives returns a runtime type of WrappedArray, ie it looses some type information... so I'm still looking for the solution :-/ –  user2056182 Feb 10 '13 at 3:44
    
in fact it loosses type info in the List use case too, see how it returns (Int, Seq[Int]) in stead of (Int, List(1,2,3)) ? –  user2056182 Feb 11 '13 at 5:36
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