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.

I want to create a function in haskell, that returns the number of times a single word is a prefix of a list of words. For example: for the word "go" and the list of words ["ace","going", "gone", "golf"], it should return 3. What I have so far is this:

numberOfPrefixes _ [] = error ("Empty list of strings")

numberOfPrefixes [] _ = error ("No word")

numberOfPrefixes (x:xs) (y:ys)

                       | isPrefixOf (x:xs) y = 1 + numberOfPrefixes(x:xs) ys

                       | otherwise = 0

But this only works if the first element of the list of words is actually a prefix. If the first element is not a prefix, the whole thing falls apart. Any help making this right?

isPrefixOf :: (Eq a) => [a] -> [a] -> Bool
isPrefixOf [] _ = True
isPrefixOf _ [] = False
isPrefixOf (x:xs) (y:ys) = x == y  && isPrefixOf xs ys
share|improve this question
    
Hi, I know you're new to SO, but if you have a question on my answer, post as it as a comment on my answer so that I see it :) Second, fix you're indentation and change y:ys to just y in the check and it works fine –  jozefg Oct 14 '13 at 14:26
    
So i've got another question now. Any help ? And thank you for your advice, it was very helpful –  dcarou Oct 14 '13 at 15:09
    
Post this as a seperate question and I'd be happy to. –  jozefg Oct 14 '13 at 15:16
    
Please don't completely change your question after receiving an answer. It's very frustrating for the people who took the time to answer and who ever finds the question in the future gains no benefit from it since the answers are now without a question. –  jozefg Oct 14 '13 at 15:19
    
Sorry i understand, i posted the new question here: stackoverflow.com/questions/19363151/… –  dcarou Oct 14 '13 at 15:22

1 Answer 1

Here's how I'd write this

 (.:) :: (b -> c) -> (a -> a1 -> b) -> a -> a1 -> c
 (.:) = (.) . (.) -- A common utility definition
 infixr 9 .:

 prefixCount :: Eq a => [a] -> [[a]] -> Integer
 prefixCount = length .: filter . isPrefixOf

Or writing it pointfully

 prefixCount l ls = length $ filter (isPrefixOf l) ls

If you really want to write it recursively

 prefixCount l [] = 0
 prefixCount x (l:ls) | <is prefix?> = 1 + prefixCount x ls
                      | otherwise    = prefixCount x ls

and just fill in <is prefix?> with a check whether x is a prefix is of l

share|improve this answer
    
Can you explain the recursive solution? Because i'm having a hard time trying to understand it. Is it possible to make a little more simple ? –  dcarou Oct 14 '13 at 14:15
    
@user2878641 An empty list has 0 elements with the right prefix. Otherwise, get the first element, add 1 to the rest of the count of the rest of the list. Otherwise, add 0 to the count of the rest of the list –  jozefg Oct 14 '13 at 14:17
    
i want to use this function that i created earlier to write this one: isPrefixOf :: (Eq a) => [a] -> [a] -> Bool isPrefixOf [] _ = True isPrefixOf _ [] = False isPrefixOF (x:xs) (y:ys) = x == y && isPrefixOf xs ys –  dcarou Oct 14 '13 at 14:19
    
@user2878641 Ok, that works fine. This is the same as yours, just cleaned up. And instead of returning 0 when it's not a prefix, it returns the count of the rest of the list –  jozefg Oct 14 '13 at 14:19
    
Try writing this out long hand for your example. –  jozefg Oct 14 '13 at 14:20

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.