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this is my assignment the string concatenation function is below and below that is the function that i need help with.

type Language = [String]
strcat :: String -> String -> String
strcat [] y     = y
strcat (x:xs) y = x:(strcat xs y)

concat_lang :: Language -> Language -> Language
concat_lang [] y = y
concat_lang x [] = x
concat_lang (x:xs) (y:ys) = (strcat x y):(concat_lang (x:xs) ys)

This is my input to concat_lang : concat_lang ["a","b","c"] ["d","e","f"]

i want the output to be [ad,ae,af,bd,be,bf,cd,ce,cf]

Pls help!!

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1  
Hint: Use list comprehension and (++ or concat). –  Satvik Oct 1 '13 at 4:27
1  
You nearly got it. Your strcat is correct, but you have a problem in concat_lang - it never moves on to the next character in xs. Do you need more hints? –  Sassa NF Oct 1 '13 at 7:29

4 Answers 4

List comprehension makes life much easier

lang xs ys = [x:y:[] | x <- xs , y <- ys]

lang is polymorphic, if this is undesirable, simply add a type signature.

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combinations :: [a] -> [b] -> [(a,b)]
combinations xs ys = concatMap (flip zip ys . repeat) xs


type Language = [String]

concat_lang :: Language -> Language -> Language
concat_lang xs ys = map f $ combinations xs ys
    where
        f (x,y) = x ++ y

use

concat_lang ["a","b","c"] ["d","e","f"]

to get

["ad","ae","af","bd","be","bf","cd","ce","cf"]
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concat_lang xs ys = [ x++y | x <- xs, y <- ys]

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Classic example where Applicative Functors can come in handy:

>> import Control.Applicative
>> (++) <$> ["a", "b", "c"] <*> ["d", "e", "f"]
   ["ad","ae","af","bd","be","bf","cd","ce","cf"]
>> 

You should definitely check out Aplicative Functors for this ...

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