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How would I combine the following 2 functions:

replaceNth n newVal (x:xs)
 | n == 0 = newVal:xs
 | otherwise = x:replaceNth (n-1) newVal xs

replaceMthNth m n v arg = replaceNth m (replaceNth n v (arg !! m)) arg

into a single function?

Is it possible?

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3  
What do you want the new function to do? –  interjay May 3 '11 at 22:59
    
@interjay I'd like it to convert a series of list elements e.g: from: [["Off","Off","Off"],["Off,"Off","Off"]] ETA: Basically so I don't need the replaceNth function, I only need the replaceMthNth function to: [["Off","Off","Off"],["Off,"On","Off"]] –  maclunian May 3 '11 at 23:02
1  
You mean that you want to implement replaceMthNth without calling other functions? If so, why would you want to do that? It would just complicate the code. –  interjay May 3 '11 at 23:05
    
@interjay it's mainly for a small project and I can't call any other functions - that's the criteria. –  maclunian May 3 '11 at 23:19
1  
cause I hate to tell you, but replaceNth m is a new function. –  rampion May 4 '11 at 0:47

5 Answers 5

up vote 3 down vote accepted

This is pretty hideous but it does the job:

replacemn 0 0 z ((x : xs) : xss) = (z : xs) : xss
replacemn 0 n z ((x : xs) : xss) =
  let (ys : yss) = replacemn 0 (n-1) z (xs : xss)
  in ((x : ys) : yss)
replacemn m n z (xs:xss) = xs : replacemn (m-1) n z xss
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Function composition

Functions in Haskell may be composed at no cost. E.g. given two functions, f and g, you can compose them into a new function: f . g, which applies g to an argument, then applies f to the result. You should be able to use composition in the same way here.

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Ok, here it is with no other named functions in the global namespace, or using any where or let clauses or any other global functions.

{-# LANGUAGE ScopedTypeVariables,RankNTypes #-}
module Temp where
newtype Mu a = Mu (Mu a -> a)

replaceMthNth :: Int -> Int -> a -> [[a]] -> [[a]]
replaceMthNth = (\h (f :: Int -> forall b . b -> [b] -> [b]) -> h f f)
                  ( \replaceNth replaceNth' ->
                    -- definition of replaceMthNth in terms of some replaceNth and replaceNth'
                    \m n v arg -> replaceNth m (replaceNth' n v (arg !! m)) arg
                  )
                  $
                    -- y combinator
                    ((\f -> (\h -> h $ Mu h) $ \x -> f $ (\(Mu g) -> g) x $ x) :: (a -> a) -> a) $
                    (\replaceNth ->
                      -- definition of replaceNth given a recursive definition 
                      (\(n::Int) newVal xs -> case xs of
                          [] -> []
                          (x:xs) -> if n == 0 then newVal:xs else x:replaceNth (n-1) newVal xs
                      )
                    )
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This is great! :) However, you are using an additional function fix. –  Rotsor May 4 '11 at 3:19
    
@Rotsor: I'm using lots of anonymous functions too... should we count those? –  rampion May 4 '11 at 14:10
    
@Rotsor: Ok, I removed fix. (Mu is a constructor, not a function). –  rampion May 4 '11 at 15:11
1  
This is cool, but it should be noted that this is terribly advanced fro a beginner question about function composition. –  Don Stewart May 4 '11 at 18:14

I don't understand what the question is at all :), but here is how I would implement it:

modifyNth :: Int -> (a -> a) -> [a] -> [a]
modifyNth n f (x:xs)
  | n == 0 = f x : xs
  | otherwise = x : modifyNth (n-1) f xs

replaceNthMth :: Int -> Int -> a -> [[a]] -> [[a]]
replaceNthMth m n v = modifyNth m (modifyNth n (const v))

This way you don't need to traverse the list twice (first time with !!, second time with replaceNth)

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Here's a grotesque implementation that rebuilds the 2d list structure with nested list comprehensions over zips with infinite lists:

replaceMthNth :: Int -> Int -> a -> [[a]] -> [[a]]
replaceMthNth m n v ass = [[if (x,y) == (m,n) then v else a
                            | (y, a) <- zip [0..] as]
                           | (x, as) <- zip [0..] ass]
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