Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Suppose I need to construct a tuple of length three:

(x , y, z)

And I have a function which returns a tuple of length two - exampleFunction and the last two elements of the tuple to be constructed are from this tuple.

How can I do this without having to call the exampleFunction two times:

(x, fst exampleFunction , snd exampleFunction)

I just want to do / achieve something like

(x, exampleFunction)

but it complains that the tuples have unmatched length ( of course )

Not looking at doing let y,z = exampleFunction()

share|improve this question

4 Answers 4

up vote 3 down vote accepted

There may be a built in function, but a custom one would work just as well.

let repack (a,(b,c)) = (a,b,c)
repack (x,exampleFunction)
share|improve this answer
    
Simple. This should work. –  manojlds Mar 21 '12 at 23:48

I'm not sure it if worth a separate answer, but both answers provided above are not optimal since both construct redundant Tuple<'a, Tuple<'b, 'c>> upon invocation of the helper function. I would say a custom operator would be better for both readability and performance:

let inline ( +@ ) a (b,c) = a, b, c
let result = x +@ yz // result is ('x, 'y, 'z)
share|improve this answer

The problem you have is that the function return a*b so the return type becomes 'a*('b*'c) which is different to 'a*'b*'c the best solution is a small helper function like

let inline flatten (a,(b,c)) = a,b,c

then you can do

(x,examplefunction) |> flatten
share|improve this answer
    
Yeah understand the why, looking for a way to do this. Pretty simple, still learning :) –  manojlds Mar 21 '12 at 23:47
    
@manojlds - you may be better off using record types for this sort of problem –  John Palmer Mar 22 '12 at 0:22

I have the following function in my common extension file. You may find this useful.

   let inline squash12 ((a,(b,c)  ):('a*('b*'c)   )):('a*'b*'c   ) = (a,b,c  )
   let inline squash21 (((a,b),c  ):(('a*'b)*'c   )):('a*'b*'c   ) = (a,b,c  )
   let inline squash13 ((a,(b,c,d)):('a*('b*'c*'d))):('a*'b*'c*'d) = (a,b,c,d)

   let seqsquash12 (sa:seq<'a*('b*'c)   >) = sa |> Seq.map squash12
   let seqsquash21 (sa:seq<('a*'b)*'c   >) = sa |> Seq.map squash21
   let seqsquash13 (sa:seq<'a*('b*'c*'d)>) = sa |> Seq.map squash13

   let arrsquash12 (sa:('a*('b*'c)   ) array) = sa |> Array.map squash12
   let arrsquash21 (sa:(('a*'b)*'c   ) array) = sa |> Array.map squash21
   let arrsquash13 (sa:('a*('b*'c*'d)) array) = sa |> Array.map squash13
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.