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findMatch :: [String] -> [String]
findMatch xs =
    let keywords = [("data", "set")]
    in [ if null x then "null" else fst y | x <- xs, y <- keywords, (snd y) == x]

Everything in this function works except for the then. If the (snd y) can't be matched to x (the x is drawn from a list of words sent by the user), I'd like to return a string that says "null."

in [ if (snd y) == x then fst y else "null" | x <- xs, y <- keywords]

Writing the list comprehension this way (thanks byorgey) works better, but then "null" is returned more times than I need it to be when more than 1 set of words are used in my keywords variable. I only need the string "null" to return once.

Maybe Haskell has a kind of break that I could add?

Any help would be appreciated.

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can you add an example input and output? I'm new to Haskell but I'm hoping to help you figure this one out. –  Scott M. Feb 13 '12 at 17:54
    
Userinput could be "search for a set", and this list comprehension see the word "set", and return the word "data" which is used by another part of my program. But if no matches can be found, I want it to return "null" which will trigger another part of the program. The comprehension works fine. The then just isn't working right. –  Subtle Array Feb 13 '12 at 18:09

3 Answers 3

up vote 1 down vote accepted

I think what you want is

let keywords = [("data","set")]
in [maybe "null" fst $ find ((== x) . snd) keywords | x <- xs]

unless the keywords list can contain several pairs with the same second component and you want them all listed, then it would be

in concat [case [key | (key,word) <- keywords, word == x] of { [] -> ["null"]; ms -> ms; } | x <- xs]

In the first case, it would be nicer if the keywords pairs were swapped,

let keywords = [("set", "data")]
in [fromMaybe "null" $ lookup x keywords | x <- xs]
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I think that's it. I'm testing it out now. –  Subtle Array Feb 13 '12 at 18:39
    
This did the trick! Only one problem remaining: This function seems to cancel out the other functions I have that do the same thing but with other keywords. But I think I can figure out a solution. I'm going to try to put all of the functions into 1 function. Thank you for the help. –  Subtle Array Feb 13 '12 at 18:54
    
Making the keyword list an argument of the function might be a good idea. –  Daniel Fischer Feb 13 '12 at 19:01

I think the problem lies in your understanding of list comprehension. Try the following:

[(x, y) | x <- [1,2,3], y <- [1,2]]

This does a Cartesian product, returning [(1,1), (1,2), (2,1), (2,2), (3,1), (3,2)].

The easiest way to get what you want (if I understood you correctly) is probably write the recursion yourself. It also might very well be possible to do it with a combination of list functions.

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My list comprehension does exactly what I want it to do. The only problem is that (in the second example) it returns "null" more times than I need it. I only need it to return once. –  Subtle Array Feb 13 '12 at 18:07
1  
@Subtle If what you mean is that xs=["s1", "s3"], keywords=[("d1","s1"),("d2","s2")] gives you something like ["d1", null, null, null] it is because list comprehension produces every possible combination of (x,y), i.e., a Cartesian product. The answer by pmr indicates why the first way doesn't work. –  sxu Feb 13 '12 at 18:14
    
Maybe I could append the result to a list, and then return only the first element in that list? It wouldn't be the most elegant solution, but it would rectify the problem. –  Subtle Array Feb 13 '12 at 18:19
    
@Subtle Well since list comprehension already does a nested loop kind of thing, you might as well search keywords for each element in xs. I'm not sure how your suggestion is going to work, seems you want a list of (duplicate) results for each element in xs, but how are you going to keep track of them? –  sxu Feb 13 '12 at 18:25
    
There wouldn't be much to keep track of because there are only 2 possible outputs: a string from the keywords variable, or the string "null." I'm going to try to see what happens when I split this into 2 separate functions. –  Subtle Array Feb 13 '12 at 18:33

null x would only return false if a list is empty. Here you are applying null to [Char] a.k.a. String. But you predicate in the list comprehension prevents x from ever being something else than equal to the 2nd element of the tuple in the keywords.

In a list comprehension, an element is only included, when it matches all predicates.

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