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now I already have a function that takes the minimum of the list of tuples' first element, for example;

mymin [(3,4),(3,2),(4,3)] = 3

By using this function, I'd like to take all the tuples which has 3 as its first element. I tried to filter the ones that has 3 on its first element but;

filter (\a -> mymin (x:xs) == fst x) (x:xs)

which gives

[(3,4),(3,2),(4,3)]

again because everytime it cuts the list, it finds mymin again, but I just want to take the

[(3,4),(3,2)]

part, what track should I follow, I stuck. Thanks for any help.

share|improve this question
1  
head . groupBy ((==) `on` fst) . sortBy (comparing fst) – Niklas B. Mar 30 '13 at 14:50
    
this code is beyond of my haskell experience :p – Karavana Mar 30 '13 at 19:34
up vote 8 down vote accepted

Why not use let or where to precompute the minimum value prior to filtering based on it?

yourFilter list = 
  let m = yourMin list
  in filter (\(a, _) -> a == m) list

Alternatively, with a point-free style lambda:

yourFilter list = 
  let m = yourMin list
  in filter ((== m) . fst) list
share|improve this answer
    
yes the scope perform, I totally forgot about that one, suits perfectly thank you. – Karavana Mar 30 '13 at 13:48

You only have to replace x with a in

filter (\a -> mymin (x:xs) == fst x) (x:xs)

(fst a instead of fst x)

share|improve this answer
    
thanks that solved it as well :) – Karavana Mar 30 '13 at 19:32

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