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concatr ::Integer -> [[Integer]] -> [[Integer]]
concatr x (y)    = [x] : y
concatr x (y:ys) = concatr x y:  concatr x ys

I have tried so many combinations of this that my head is starting to hurt. What exactly am i doing wrong? I just want an integer to be put in every sublist of a list passed in.

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Notice that for the posted "solution" the first pattern always matches (concatr x (y) == concatr x y), so this is always equal to [ [x] , rest or original list ]. You must deconstruct the original list, as you tried to do in the second case (but failed to use (x:y) instead of concatr x y) and terminate with a null case concatr x []. –  Thomas M. DuBuisson May 13 '12 at 3:03
    
Sorry, I said "the posted solution" when referring to the proposed code in the question. That is probably confusing. –  Thomas M. DuBuisson May 13 '12 at 4:02

2 Answers 2

up vote 8 down vote accepted

You can use the map function.

concatr :: Integer -> [[Integer]] -> [[Integer]]
concatr x ys = map (x:) ys

Eta reduce for a terse solution:

concatr x = map (x:)
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1  
I made the answer a little bit more liberal. –  pmr May 13 '12 at 1:13
    
Thanks. Didn't mean for it to sound like there was a unique solution! –  rotskoff May 13 '12 at 1:49
5  
You can go right down to concatr = map . (:) for a fully point-free (point-less?) styled function! –  ScottWest May 13 '12 at 8:43

If you want to avoid map:

concatr :: Integer -> [[Integer]] -> [[Integer]]
concatr x []     = []
concatr x (y:ys) = (x:y):concatr x ys

Two cases:

  • If the list is empty, we return an empty list.
  • If the list is y:ys, the new head is x:y, and we call recursively concatr on remaining part.

Example: concatr 1 [[0],[2]] is [[1,0],[1,2].

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