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 have to make three functions for replacing of flat strings and in lists.

I don't know, whether there is a replace function like in other languages. I searched for that however unfortunately without success :-(

So my attempt is yet quite thin.

1st function:

replace  ::  String  ->  String  ->  String  ->  String
replace findStr replaceStr myText = replace()??

My approach for the 1st function:

replace :: String -> String -> String -> String
replace [] old new = []

replace str old new = loop str
  where
    loop [] = []
    loop str =
      let (prefix, rest) = splitAt n str
      in
        if old == prefix                -- found an occurrence?
        then new ++ loop rest           -- yes: replace

        else head str : loop (tail str) -- no: keep looking
    n = length old  

2nd function:

replaceBasedIdx ::  String  ->  [String]  ->  String  ->  String
replaceBasedIdx findStr replaceStrList myText = replace()???

This function should replace the 1st findStr in myTxt with the 1st element of replaceStrList, the 2nd findStr with the 2nd element and so on...

Example:

replaceBasedIdx   "a"  ["G","V","X"]  "Haskell is a language"
"HGskell is V lXnguage"

My approach for the 2nd function:

replaceBasedIdx    ::  String  ->  [String]  ->  String  ->  String
replaceBasedIdx    findStr replaceStrList myText = replaceBasedIdxSub findStr replaceStrList myText 0

replaceBasedIdxSub  ::  String  ->  [String]  ->  String  -> Int -> String
replaceBasedIdxSub findStr replaceStrList myText counter = loop myText
  where
    loop [] = []
    loop myText =
      let (prefix, rest) = splitAt n myText
      in
        if findStr == prefix                                -- found an occurrence?
        then (replaceStrList !! (counter+1)) ++ loop rest   -- yes: replace it

        else head myText : loop (tail myText)               -- no: keep looking
    n = length findStr

I'm now very near to the final result, however the counter doesn't increment.

Could you please tell me, where my mistake is? And how could I modifey the 1st or 2nd function to get the 3rd function also?

3rd function:

replaceBasedIdxMultiple  ::  [String]  ->  [String]  ->  String  ->  String
replaceBasedIdxMultiple  findStrList replaceStrList myText = replace()???

This function should replace each element of findStrList in myTxt with the corresponding element from the replaceStrList, so 1. with 1., 2. with 2. and so on...

Example:

replaceBasedIdxMultiple ["A","X","G"] ["N","Y","K"]  "ABXMG"
"NBYMK"

Could you help me with this? some tips and hints, how to begin with it?

I'm really disparate :-(

Thanks a lot in advance

Kind greetings!

share|improve this question
2  
If you want to replace single characters, then replace can be written as a map. –  larsmans May 7 '13 at 19:20
    
I don't really see any "attempt", only type signatures. Have you actually tried to write one of these? It's not that difficult... –  leftaroundabout May 7 '13 at 19:23
    
@leftaroundabout I'm totaly new to Haskell and I don't know anything about replacing in Haskell. If it was an imperative language like C# or Java or so, it would be very simple, but in Haskell is everything difficult for me. please help, so that I can pass tomorrow my exam :-( @larsmans what do you mean bei map . -.? Do you have an example for me please? –  John May 7 '13 at 19:46
    
for the first function I found this code, I don't understand it completely but I will attempt to comprehend it. However it works just for plain text not for lists. How could I modifie it in order to get it functional for lists too? Isn't it too long and complicated than necessary?? –  John May 7 '13 at 19:50
4  
If your exam is tomorrow and you don't even know how to start on this, it's probably too late. –  C. A. McCann May 7 '13 at 19:55

2 Answers 2

replace exists in Data.List.Utils, part of MissingH package.

Actually, it's a really concise implementation:

replace :: Eq a => [a] -> [a] -> [a] -> [a]
replace old new = join new . split old
share|improve this answer
    
When I attempt to access this library import Data.List.Utils. it throws an error Could not find module `Data.List.Utils'. How can I make it it accessable? –  John May 7 '13 at 23:50
2  
cabal install MissingH. –  Koterpillar May 7 '13 at 23:54
    
what does it mean? shoul I install something or is it the code? how do I use it, if it's code? –  John May 8 '13 at 0:00
    
Cabal is the tool for installing Haskell packages, read more on the wiki: haskell.org/haskellwiki/Cabal-install –  Koterpillar May 8 '13 at 0:01
1  
You can still look at its source (or even steal the whole thing). –  Koterpillar May 8 '13 at 0:16

First off, join is a bad name as that's already a standard function. Also, I have no idea why you define this function, in this way – it doesn't seem to do anything much useful.

But ok, you did try something. So let's now find a proper solution...

As is usually a good idea in Haskell, we want to break this up into sub-problems. What's first needed is to find the sub-strings you'd like to replace. This could look something like

locateSub :: (Eq a) =>
        [a]             -- ^ The sought sublist.
     -> [a]             -- ^ The source list.
     -> Maybe ([a],[a]) -- ^ Everything to the left and, if found, everything
                        -- to the right of the sought sublist. No need to return
                        -- the sublist itself in between since we already know it!

Using this function, replace is straight-forward:

replace oldSub newSub list
    = case locateSub oldSub list of
        Nothing -> list   -- Sublist not found: we're done already!
        Just (l, r) -> l ++ newSub ++ replace oldSub newSub r

replaceBasedIdx isn't much more difficult, you only need to recurse over a list of newSubs rather than passing it always as-is.

So what you need to do is implement locateSub. With isPrefixOf you're already on the right track. Actually it looks a lot like your _replace (BTW: it's custumary in Haskell to use the prime ' rather than underscores to name "local variants / helpers" of a function, so you'd rather call it replace'.)

share|improve this answer
    
thanks a lot for your help first! Now I try to use your code and I get an compiling error Not in scope: `locateSub'. Is there something wrong with the code? –  John May 7 '13 at 21:18
    
No, just as I said: what you need to do is implement locateSub. –  leftaroundabout May 7 '13 at 22:08
    
what are l and r in your code? –  John May 7 '13 at 22:43
1  
l and r would be left and right. –  Varun Madiath May 7 '13 at 22:48
    
ok, I tried this but it doesn't work at all locateSub :: (Eq a) => [a] -> [a] -> Maybe ([a], [a]) locateSub oldSub newSub list = map (== oldSub) (tails list). I can't comprehend it at all :-( Could you please help me out of the fix? I'll set tomorrow and learn your code... –  John May 7 '13 at 22:54

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.