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I am new in Haskell programming. While practicing I was asked to make a recursive function that looks like this:

repeat1 5 [1,2,3] = [[1,2,3],[1,2,3],[1,2,3],[1,2,3],[1,2,3]]

which is

repeat1 :: Int -> a -> [a]
repeat1 0 x = []
repeat1 num x = x : repeat1 (num-1) x

I want to convert it into a foldr function but I can't :(
I have read about the lambda functions and the folding(foldr and foldl) functions from http://en.wikibooks.org/wiki/Haskell/List_processing

Can anybody help please?
Thanks in advance

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2  
You can of course write repeat1 num x = foldr (\_ xs -> x : xs) [] [1 .. num], but that's not really a good way to write it. The explicit recursion is the best way. –  Daniel Fischer Nov 14 '12 at 20:43
    
@hammar, you might expand your unfoldr comment into a full answer. –  Jamey Sharp Nov 14 '12 at 21:09

3 Answers 3

up vote 3 down vote accepted

foldr is for functions that consume lists. For producing lists, unfoldr is a more natural choice:

repeat1 :: Int -> a -> [a]
repeat1 n x = unfoldr f n
  where f 0 = Nothing
        f n = Just (x, n-1)

That said, I think writing it as a plain recursion is more clear in this case.

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Thank you so much :) –  MohamedMansour Nov 18 '12 at 6:04

As hammar pointed out, foldr isn't the right tool here, as you first need a list to work on. Why not simply...

repeat1 n = take n . repeat 
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why not just replicate? –  John L Nov 15 '12 at 8:10
    
That would spoil the fun... –  Landei Nov 15 '12 at 13:18

If you really want to use foldr, you could do something like that:

repeat' n x = foldr (\_ acc -> x:acc) [] [1..n]

You basically create a list of size n with [1..n] and for each element of that list, you append x to your accumulator (base value []). In the end you have a n-elements list of x.

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