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I can't get my mind in a functional mindset to solve this problem in a simple way that could also work for very long lists. If you have a list like:

["one", "two", "three", "four", "five"]

I can tell what the length of the longest word is pretty simply with:

maximum $ map length ["one", "two", "three", "four", "five"]

How would I modify the previous statement to return the string three?

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@Mark Byers Return the first occurrence of the longest word. –  Jason Christa Jan 16 '11 at 21:19

5 Answers 5

up vote 30 down vote accepted

Using maximumBy, on and compare you can write the expression like this:

import Data.List (maximumBy)
import Data.Function (on)

maximumBy (compare `on` length)  ["one", "two", "three", "four", "five"]
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compare `on` length is comparing length where comparing is from Data.Ord. –  Peaker Feb 6 '11 at 22:05
Really elegant. Nice solution. –  Daniel Buckmaster Oct 31 '12 at 3:28

btw, if one had no ready-to-use maximumBy, a simple way would be the decorate-sort-undecorate pattern/idiom (which works in other languages like Python or Scheme as well):

snd $ maximum $ map (\x -> (length x, x)) ["one", "two", "three", "four", "five"]

But since the original payload is also part of the sort-key, the result is not always the first occurrence of the longest word (in this case there was only one word with the longest length)

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Even with maximumBy, this is useful. The maximumBy function will recalculate the length (or whichever comparison function is being used) of the longest current token at each comparison, whereas decorate-sort-undecorate only calculates the length once. This version is noticeably more efficient even with modest-sized inputs. Of course, if you're using lists of any length, you probably shouldn't be using lists. –  John L Jan 16 '11 at 23:07
@John if you're just doing a single pass over a stream of data, a list of any length is perfectly fine. Now strings on the other hand... –  sclv Jan 16 '11 at 23:10
@John, thanks for pointing out the issue of maximum(By) re-evaluating max, which I wasn't aware of and surprised me a bit (implementing maximum by simply foldl1 max is without doubt elegant nevertheless) –  hvr Jan 17 '11 at 7:14
@hvr, ghc isn't nearly as aggressive about sharing values as one might expect (or hope). Apparently it's very difficult to guarantee sharing won't be much less efficient than re-calculating, so ghc requires sharing be made explicit with let-bound expressions. And although the maximumBy implementation is very elegant, it doesn't share computations. –  John L Jan 17 '11 at 9:06
@hvr: The problem with the decorate method is that it requires that x have an Ord instance, even though you're only comparing the decorations. For performance reasons, you may use the decorate method along with maximumBy fst to avoid the need for Ord on the list elements themselves. –  Peaker Feb 6 '11 at 22:09

This function(or even library) doesn't seem to be well known, but Haskell actually has a module called Data.Ord which contains the function comparing which is almost like using Data.Function.on in the top answer, except the code ends up more idiomatic.

g>import Data.Ord
g>import Data.List
g>let getLongestElement = maximumBy (comparing length)
getLongestElement :: [[a]] -> [a]
g>getLongestElement ["one", "two", "three", "four", "five"]

The code practically reads like English. "Get maximum by comparing length."

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Others disagree, and think comparing is a silly special case. I don't care, myself, but I've heard experienced people complain about it. –  dfeuer Dec 17 '14 at 18:29

maximumBy (\x -> (x, length x)), fst, and snd in a straightforward composition do the trick.

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To compute length a, you need to traverse the entire list a. In this particular use case, you are only concerned about the longest word, and not exactly how long they are, so you may write a function that only go as far as it is needed in each list to determine which one is the longest. This may save you some processing:

module Main where

main = putStrLn $ longestWordInList ["one", "two", "three", "four"]

longestWordInList = go ""
  where go result [] = result
        go result (x:xs) = let result' = longestWord result x in
                               result' `seq` go result' xs

longestWord a b = go a b a b
  where go a _ _ [] = a
        go _ b [] _ = b
        go a b (_:as) (_:bs) = go a b as bs
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You don't need so many arguments to go. Just use different names and refer to the ones in the outer scope. longestWord a b = go a b where go a' _ = a ... –  dfeuer Dec 17 '14 at 18:28

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