3

In the well-known Haskell tutorial, the function that finds a value-by-key in an associative list is first defined like that:

findKey :: (Eq k) => k -> [(k,v)] -> Maybe v  
findKey key [] = Nothing  
findKey key ((k,v):xs) = if key == k  
                            then Just v  
                            else findKey key xs

However, the author then argues that this type of "textbook recursion" should better be implemented using a fold:

findKey key = foldr (\(k,v) acc -> if key == k then Just v else acc) Nothing  

I found that confusing. Am I right that:

  1. The foldr-based function will always traverse the whole list before producing a result, whereas the first one will immediately stop upon discovery?
  2. As a consequence, the first function will work on an infinite list, whereas the second one won't?

It seems to me that the really equivalent definition would use a scanr instead and from that, take the first result that isn't Nothing. (?)

  • 1
    Try using the foldr-based version on an infinite list. Did you have to wait infinite time.for the result? If not, this version doesn't traverse the entire list. – n.m. Nov 26 '18 at 6:42
4

foldr is defined such that

foldr cons z (x:xs) = cons x (foldr cons z xs)

so if cons doesn't use its second argument, its value isn't needed. Since Haskell is call-by-need, unneeded values are not evaluated.

So no, both formulations have the same laziness characteristics.

findKey key (x:xs)
  = foldr (\(k,v) r -> if key == k then Just v else r) Nothing (x:xs)
  = (\(k,v) r -> if key == k then Just v else r) x
      (foldr (\(k,v) r -> if key == k then Just v else r) Nothing xs)
  = case x of (k,v) -> if key == k then Just v else 
      (foldr (\(k,v) r -> if key == k then Just v else r) Nothing xs)

and so if key == k holds, the recursive call (to find out the r's value) isn't triggered.

  • foldr with -O2 often ends up being more performant than doing the same thing with manual recursion thanks to fold/build fusion. – Jeremy List Jan 10 at 3:52
4
  1. No, when the function \(k,v) acc -> ... is called by foldr, the recursive call to foldr is supplied as the second argument (i.e. acc). So, keeping in mind that Haskell is lazy, if acc isn't used (i.e. if the if condition is true), the recursive call does not happen and the traversal stops.
  2. Both work fine with infinite lists.
  • @sepp2k Eventually I understood what you mean, thank you! Would you mind adding an example though? I am sure it will be useful for future readers. – wh1t3cat1k Nov 26 '18 at 6:44

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