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Given a list of tuples like this:

dic = [(1,"aa"),(1,"cc"),(2,"aa"),(3,"ff"),(3,"gg"),(1,"bb")]

How to group items of dic resulting in a list grp where,

grp  = [(1,["aa","bb","cc"]), (2, ["aa"]), (3, ["ff","gg"])]

I'm actually a newcomer to Haskell...and seems to be falling in love with it..
Using group or groupBy in Data.List will only group similar adjacent items in a list. I wrote an inefficient function for this, but it results in memory failures as I need to process a very large coded string list. Hope you would help me find a more efficient way.

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2  
Looks like a homework or something. Better to add your approach and ask the community for ways to improve it instead of just asking the answer. –  Satvik Sep 13 '12 at 2:07
1  
Sorry, I'm a newcomer to stackoverflow..apologies for not being aware of community rules. –  td123 Sep 13 '12 at 2:36

4 Answers 4

up vote 2 down vote accepted

Here's my solution:

import Data.Function (on)
import Data.List (sortBy, groupBy)
import Data.Ord (comparing)

myGroup :: (Eq a, Ord a) => [(a, b)] -> [(a, [b])]
myGroup = map (\l -> (fst . head $ l, map snd l)) . groupBy ((==) `on` fst)
          . sortBy (comparing fst)

This works by first sorting the list with sortBy:

[(1,"aa"),(1,"cc"),(2,"aa"),(3,"ff"),(3,"gg"),(1,"bb")]     
=> [(1,"aa"),(1,"bb"),(1,"cc"),(2,"aa"),(3,"ff"),(3,"gg")]

then grouping the list elements by the associated key with groupBy:

[(1,"aa"),(1,"bb"),(1,"cc"),(2,"aa"),(3,"ff"),(3,"gg")] 
=> [[(1,"aa"),(1,"bb"),(1,"cc")],[(2,"aa")],[(3,"ff"),(3,"gg")]]

and then transforming the grouped items to tuples with map:

[[(1,"aa"),(1,"bb"),(1,"cc")],[(2,"aa")],[(3,"ff"),(3,"gg")]] 
=> [(1,["aa","bb","cc"]), (2, ["aa"]), (3, ["ff","gg"])]`)

Testing:

> myGroup dic
[(1,["aa","bb","cc"]),(2,["aa"]),(3,["ff","gg"])]
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Thank you so much. This really works. I'm actually a newcomer to Haskell and I wasn't aware much about libraries. Thanks again for the clever answer!. –  td123 Sep 13 '12 at 2:18
    
@ Mikhail : Hey, are you sure this works even if similar keyed values are not adjacent? for an example if dic = [(1,"aa"),(2,"bb"),(1,"cc")]? result should be [(1, ["aa","cc"]), (2, "bb")]. –  td123 Sep 13 '12 at 2:22
    
^@td123 In this case, you should sort the list beforehand. –  Mikhail Glushenkov Sep 13 '12 at 2:24
    
OH..Thank You So much. –  td123 Sep 13 '12 at 2:27
    
@td123 I've updated the code to support unsorted lists. –  Mikhail Glushenkov Sep 13 '12 at 2:29

Whenever possible, reuse library code.

import Data.Map
sortAndGroup assocs = fromListWith (++) [(k, [v]) | (k, v) <- assocs]

Try it out in ghci:

*Main> sortAndGroup [(1,"aa"),(1,"cc"),(2,"aa"),(3,"ff"),(3,"gg"),(1,"bb")]
fromList [(1,["bb","cc","aa"]),(2,["aa"]),(3,["gg","ff"])]
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Really cool solution. Never would've thought of it, but it makes a lot of sense, considering the nature of Data.Map. –  identity Sep 13 '12 at 6:10
    
This was going to be my answer. I briefly gave pause to think about efficiency though - I use the toList . fromListWith op pattern a lot, but I wonder how expensive the conversions to and from Map are compared to walking over the list and grouping manually. –  Chris Taylor Sep 13 '12 at 8:09
    
@ChrisTaylor This solution is O(n log n), which is the best you can hope for given the constraints. –  Daniel Wagner Sep 13 '12 at 8:12
    
Thank You So Much! –  td123 Sep 14 '12 at 4:40

Also you can use TransformListComp extension, for example:

Prelude> :set -XTransformListComp 
Prelude> import GHC.Exts (groupWith, the)
Prelude GHC.Exts> let dic = [ (1, "aa"), (1, "bb"), (1, "cc") , (2, "aa"), (3, "ff"), (3, "gg")]
Prelude GHC.Exts> [(the key, value) | (key, value) <- dic, then group by key using groupWith]
[(1,["aa","bb","cc"]),(2,["aa"]),(3,["ff","gg"])]
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  1. If the list is not sorted on the first element, I don't think you can do better than O(nlog(n)).

    • One simple way would be to just sort and then use anything from the answer of second part.

    • You can use from Data.Map a map like Map k [a] to use first element of tuple as key and keep on adding to the values.

    • You can write your own complex function, which even after you all the attempts will still take O(nlog(n)).

  2. If list is sorted on the first element as is the case in your example, then the task is trivial for something like groupBy as given in the answer by @Mikhail or use foldr and there are numerous other ways.

An example of using foldr is here:

  grp :: Eq a => [(a,b)] -> [(a,[b])]
  grp = foldr f []
     where 
       f (z,s) [] = [(z,[s])] 
       f (z,s) a@((x,y):xs)  | x == z = (x,s:y):xs 
                             | otherwise = (z,[s]):a
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Thank you for the info...I'm going to use Data.Map. –  td123 Sep 13 '12 at 2:53

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