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If you have a list such as this in Haskell:

data TestType = A | B | C deriving (Ord, Eq, Show) 

List1 :: [TestType]
List1 = [A,B,C,B,C,A,B,C,C,C]

Is it possible to write a function to determin which element is represented the least in a list (so in this case 'A')

My initial thought was to write a helper function such as this but now I am not sure if this is the right approach:

appears :: TestType -> [TestType] -> Int
appears _ [] = 0
appears x (y:ys) | x==y = 1 + (appears x ys)
                 | otherwise = appears x ys

I am still fairly new to Haskell, so apologies for the potentially silly question.

Many thanks

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4 Answers 4

up vote 7 down vote accepted

Slightly alternative version to Matt's approach

import Data.List
import Data.Ord

leastFrequent :: Ord a => [a] -> a
leastFrequent = head . minimumBy (comparing length) . group . sort
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1  
I knew there had to be a prettier way to do it. Nice! –  Matt Fenwick Feb 18 '12 at 11:54
    
Fantastic! Just what I am after! –  Ed George Feb 18 '12 at 12:00
    
much more pretty and shortly than mine +1 –  epsilonhalbe Feb 18 '12 at 12:07
3  
An element that is not in the list at all occurs 0 times, which is less than 1. This solution does not account for that. –  augustss Feb 18 '12 at 12:35
1  
@EdGeorge You didn't really specify if you only wanted elements in the list, or elements from the type in general. Anyway, it's easy to get the one I suggest by . (++ [minBound .. maxBound]) at the end. –  augustss Feb 18 '12 at 13:42

You can build a map counting how often each item occurs in the list

import qualified Data.Map as Map

frequencies list = Map.fromListWith (+) $ zip list (repeat 1)

Then you can find the least/most represented using minimumBy or maximumBy from Data.List on the list of Map.assocs of the frequency map, or even sort it by frequency using sortBy.

module Frequencies where

import Data.Ord
import Data.List
import qualified Data.Map as Map

frequencyMap :: Ord a => [a] -> Map.Map a Int
frequencyMap list = Map.fromListWith (+) $ zip list (repeat 1)

-- Caution: leastFrequent will cause an error if called on an empty list!
leastFrequent :: Ord a => [a] -> a
leastFrequent = fst . minimumBy (comparing snd) . Map.assocs . frequencyMap

ascendingFrequencies :: Ord a => [a] -> [(a,Int)]
ascendingFrequencies = sortBy (comparing snd) . Map.assocs . frequencyMap
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Here's another way to do it:

  1. sort the list
  2. group the list
  3. find the length of each group
  4. return the group with the shortest length

Example:

import GHC.Exts
import Data.List

fewest :: (Eq a) => [a] -> a
fewest xs = fst $ head sortedGroups 
where 
  sortedGroups = sortWith snd $ zip (map head groups) (map length groups)
  groups = group $ sort xs
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A less elegant idea would be:

  • At first sort and group the list
  • then pairing the cases with their number of representations
  • at last sort them relative to their num of representations

In code this looks like

import Data.List                                                                 

sortByRepr :: (Ord a) => [a] ->[(a,Int)]
sortByRepr xx = sortBy compareSnd $ map numOfRepres $ group $ sort xx
              where compareSnd x y = compare (snd x) (snd y)
                    numOfRepres x = (head x, length x)

the least you get by applying head to the resulting list.

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