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I would like to know how to remove specific duplicates from a string. An example would be:

"|Hello|| My|| Name|| Is|| XYZ|"

Should become:

"|Hello| My| Name| Is| XYZ|"

Thanks

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5  
How do you deal with "|||" ? is this "|" or "||"? –  Sassa NF Sep 18 '13 at 11:18

5 Answers 5

up vote 2 down vote accepted

A very simple and rather obvious solution would be to pattern-match on double head:

foo :: Char -> String -> String
foo elem (xa:xb:xs) = ...

Then check if xa is equal to xb, and either return them both with the rest or just one of them if they are duplicated, then move one character forward.

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foo "Hello" -> "Helo" You also need a Char parameter –  Anton Guryanov Sep 18 '13 at 11:23
    
Ah indeed I forgot about the parameter. –  Bartek Banachewicz Sep 18 '13 at 11:25
    
It is indeed an obvious solution, thanks! –  Paktwis Homayun Sep 18 '13 at 11:59

If you allow yourself Data.List.Split (which you should!) you can split your string into words with

splitOn "|" "|Hello|| My|| Name|| Is|| XYZ|"

which yields

["","Hello",""," My",""," Name",""," Is",""," XYZ",""]

in which you want to replace all occurrences of "" with "|" and then merge the words together. This is simply a call to concatMap, like so:

concatMap (\s -> if s == "" then "|" else s) $
  splitOn "|" "|Hello|| My|| Name|| Is|| XYZ|"

which yields

"|Hello| My| Name| Is| XYZ|"

Another alternative is to split on "||" and join the parts together while inserting "|" in between. This is just

intercalate "|" $ splitOn "||" "|Hello|| My|| Name|| Is|| XYZ|"

Yet another alternative, and arguably the easiest to fix if it goes awry with weird edge cases is to just use regexes. It would look something like this:

subRegex (mkRegex "\\|\\|") "|Hello|| My|| Name|| Is|| XYZ|" "|"

To show what I mean by easy to fix – imagine you want to reduce any number of |s in sequence to just a single |. With the regex solution, you just have to change the regex like so:

> subRegex (mkRegex "\\|+") "|||Hello||||||| My|| Name|||| Is|| XYZ|||||" "|"
"|Hello| My| Name| Is| XYZ|"
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The key question here is what you do with more than two | in a row. The solutions offered here differ very much in this particular aspect.

  1. Do you interpret deduplication of |||| as "remove a | before another |", so, like all solutions based on splitOn thus far, will only rip off that |, turning "Hello ||||" into "Hello |||"?

  2. Do you interpret deduplication of |||| as "reduce all pairs of || into one |", so should it translate "Hello ||||" into "Hello ||"?

  3. Do you interpret deduplication of |||| as "reduce the string until only singular | occur", so should translate "Hello ||||" into "Hello |"?

So, solution for (1) has been suggested. Solutions for (2) and (3) can be built in a way similar to each other:

Solution for (2):

dedup c (x:y:xs) | x == c && x == y = x: dedup c xs
dedup c (x:xs) = x: dedup c xs
dedup c _ = []

Solution for (3):

dedup c (x:y:xs) | x == c && x == y = dedup c (y:xs)
dedup c (x:xs) = x: dedup c xs
dedup c _ = []

Just a minor tweak in when to append the | when a pair was found causes a big difference in behaviour.

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import Data.List.Split(splitOn)

removeDup d = concat . map rep . splitOn d
      where 
      rep s = if null s then d else s

> removeDup "|" "|Hello|| My|| Name|| Is|| XYZ|"
"|Hello| My| Name| Is| XYZ|"
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ghci> :m Data.List
ghci> let myGroupFunc = groupBy (\a b -> a == '|' && b == '|') 
ghci> map head $ myGroupFunc "|Hello|| My|| Name|| Is|| XYZ|"
"|Hello| My| Name| Is| XYZ|"
ghci> 

groupBy is of type (a -> a -> Bool) -> [a] -> [[a]]. It takes a function and a list and returns a list of lists. groupBy takes the function of type (a -> a -> Bool) (which I will refer to as f) and traverses the list, passing in two elements of a time. If f returns True, then the two elements are put together in the same sublist, while if f returns False, a new sublist is created.

One way to experiment with groupBy is to set f to (==):

ghci> groupBy (==) "aaabbbcccdeffg"
["aaa","bbb","ccc","d","e","ff","g"]

This groups elements together when they are equal or when (==) returns True, so the same letters get grouped together.

(As an aside, remember that in Haskell, a String is actually a [Char], so an equivalent representation of "aaabbbcccdeffg" is: ['a','a','a','b','b','b','c','c','c','d','e','f','f',g']

and an equivalent representation of the result is

[['a','a','a'],['b','b','b'],['c','c','c'],['d'],['e'],['f','f'],['g']].)

Now lets try groupBy (==) on your sample input:

ghci> groupBy (==) "|Hello|| My|| Name|| Is|| XYZ|"
["|","H","e","ll","o","||"," ","M","y","||"," ","N","a","m","e","||"," ","I","s","||"," ","X","Y","Z","|"]

Notice that it groups elements together, every time of a pair of them are the same. But that's not what you want, as the above also groups "ll" together in "Hello".

So we change the function passed to groupBy to only return True when a pair of elements are the same and they are the character that you want: '|':

ghci> groupBy (\a b -> a == '|' && b == '|') "|Hello|| My|| Name|| Is|| XYZ|"
["|","H","e","l","l","o","||"," ","M","y","||"," ","N","a","m","e","||"," ","I","s","||"," ","X","Y","Z","|"]

Notice that it only groups the character you want together, the '|'. Now, since we only need one of duplicated elements, we can just take the first Char of each String and combine them to get our result:

ghci> map head $ groupBy (\a b -> a == '|' && b == '|') "|Hello|| My|| Name|| Is|| XYZ|"
"|Hello| My| Name| Is| XYZ|"

Which is the solution from the top of this answer, accept we apply f directly, without using a let expression.

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Why the downvote? –  dg123 Sep 18 '13 at 11:50
2  
Because it's just a ready solution with no explanation whatsoever and thus has little learning benefit. –  Bartek Banachewicz Sep 18 '13 at 11:53
    
Answers provide explanations, optionally accompanied by code examples. Code dumps are not answers. –  Lightness Races in Orbit Sep 18 '13 at 12:24
    
@BartekBanachewicz and others, please remove your downvotes. –  dg123 Sep 18 '13 at 12:51
1  
I still disagree that a "ready solution" has no learning benefit. My original answer still had functions that you could lookup and play with in ghci. You can learn a lot from reading source code, and it is especially helpful when you can see which part of the source code does what. –  dg123 Sep 18 '13 at 14:26

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