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if i say i have two strings or character lists,

list1 = ["c","a","t"]
 list2 = ["d","o","g"]

and if i read a string using Input Output "ct" and pass it to the function,the function should return "dg".

Please give me any idea about such a function.

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3 Answers

up vote 5 down vote accepted

I would consider taking those two lists, zipping them together, use Data.Map.fromList to create a lookup Map, then map over the input String and use the Map to work out what to replace them with.

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For a nice intro to lookup and Data.Map, see learnyouahaskell.com/modules#data-map –  Dan Burton Feb 7 '12 at 19:33
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I'll first assume list1 and list2 have type [Char] (i.e. String), since that's what your text seems to indicate (your code has them as [String]s -- if you really want this, see the generalized version in the addendum).

If you zip the two lists, you end up with a list of pairs indicating how to translate characters. In your example, zip list1 list2 = [('c','d'), ('a','o'), ('t','g')]. We'll call this our lookup list. Now consider the function lookup:

lookup :: Eq a => a -> [(a, b)] -> Maybe b

In our case, we can specialize this to

lookup :: Char -> [(Char, Char)] -> Maybe Char

so we have something that takes a character and a lookup list and returns a substituted character if the input character is in the lookup list (otherwise a Nothing). Now we just need to glue the things we've found together: We essentially need to map \c -> lookup c lookupList (more elegantly written as flip lookup) over the input string while throwing out any characters not found in the lookup list. Well, enter mapMaybe:

mapMaybe :: (a -> Maybe b) -> [a] -> [b]

It does exactly what we want. Now your function can be written as

replace :: String -> String -> String -> String
replace list1 list2 = mapMaybe ((flip lookup) (zip list1 list2))

You'll need to import Data.Maybe.

Addendum, for when you understand the above: Observe how what we did above had nothing to do with the fact that we were working with lists of characters. We could do everything above with lists of any type for which equality makes sense, i.e. for (lists of) any type which is an instance of the Eq typeclass (cf the signature of lookup above). Moreover, we don't have to translate from that type to itself -- for example, each character above could be sent to say, an integer! So really, we can write

replace :: (Eq a) => [a] -> [b] -> [a] -> [b]
replace list1 list2 = mapMaybe ((flip lookup) (zip list1 list2))

and now our function works as long as list1 is a list of something for which equality makes sense. Replacement of characters just becomes a special case.

A quick example:

> replace "cat" "dog" "ct"
"dg"
> replace "cat" [1,2,3] "ct"
[1,3]
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oh nw i got that logic, ya it will be a huge favor if u can provide more . –  punnakku Feb 7 '12 at 10:38
    
as in ill be taking input from user a string then ill convert tha characters in the string with my own [char] list.. something like a Cesar encryption. –  punnakku Feb 7 '12 at 10:41
    
thank you verymuch i think i got wht i needed !! bless u –  punnakku Feb 7 '12 at 10:48
    
*** Expression : replace *** Expected type : Eq a => [a] -> [b] -> [a] -> [c] *** Inferred type : Eq a => [a] -> [b] -> [a] -> [b] –  punnakku Feb 7 '12 at 11:08
    
Note that ivanm's answer (using a Map) will perform better than my list-based solution. I deliberately avoided introducing the (better-suited) Map data structure to keep it simple, but keep in mind ivanm's solution is better. –  gspr Feb 7 '12 at 11:09
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For two string you may do as follows:

patt :: String -> String -> String -> String
patt (x : xs) (y : ys) p'@(p : ps)
  | p == x = y : patt xs ys ps
  | otherwise = patt xs ys p'
patt _ _ [] = []

main :: IO ()
main = do
  putStrLn $ patt "cat" "dog" "ct"
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This only walks down the lists of substitutions once, so patt "cat" "dog" "ctc" gives an incomplete pattern match error, while I think it's supposed to return "dgd". –  hammar Feb 7 '12 at 12:40
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