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Is there a better and more concise way to write the following code in Haskell? I've tried using if..else but that is getting less readable than the following. I want to avoid traversing the xs list (which is huge!) 8 times to just separate the elements into 8 groups. groupBy from Data.List takes only one test condition function: (a -> a -> Bool) -> [a] -> [[a]].

x1 = filter (check condition1) xs
x2 = filter (check condition2) xs
x3 = filter (check condition3) xs
x4 = filter (check condition4) xs
x5 = filter (check condition5) xs
x6 = filter (check condition6) xs
x7 = filter (check condition7) xs
x8 = filter (check condition8) xs
results = [x1,x2,x3,x4,x5,x6,x7,x8]
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7 Answers 7

up vote 5 down vote accepted

This only traverses the list once:

import Data.Functor
import Control.Monad

filterN :: [a -> Bool] -> [a] -> [[a]]
filterN ps =
    map catMaybes . transpose .
    map (\x -> map (\p -> x <$ guard (p x)) ps)

For each element of the list, the map produces a list of Maybes, each Maybe corresponding to one of the predicates; it is Nothing if the element does not satisfy the predicate, or Just x if it does satisfy the predicate. Then, the transpose shuffles all these lists so that the list is organised by predicate, rather than by element, and the map catMaybes discards the entries for elements that did not satisfy a predicate.

Some explanation: x <$ m is fmap (const x) m, and for Maybe, guard b is if b then Just () else Nothing, so x <$ guard b is if b then Just x else Nothing.

The map could also be written as map (\x -> [x <$ guard (p x) | p <- ps]).

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Very elegant, though I think Landei's answer is more efficient. –  is7s Mar 24 '12 at 15:26
    
I'm not so sure. For a start, Landei's reverses the entire list before doing anything. –  ehird Mar 24 '12 at 17:53
    
After some discussion elsewhere, I came up with a nicer implementation. I've updated my answer. –  ehird Mar 24 '12 at 20:48
    
The new answer is really nice! –  is7s Mar 25 '12 at 1:32

If you insist on one traversing the list only once, you can write

filterMulti :: [a -> Bool] -> [a] -> [[a]]
filterMulti fs xs = go (reverse xs) (repeat []) where
  go [] acc = acc 
  go (y:ys) acc = go ys $ zipWith (\f a -> if f y then y:a else a) fs acc
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map (\ cond -> filter (check cond) xs) [condition1, condition2, ..., condition8]
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This is traversing the list again for each condition. –  vis Mar 24 '12 at 11:56
2  
But is multiple traversals with simple functions slower than one traversal with a complicated function? –  augustss Mar 24 '12 at 14:59
    
Oh, absolutely. It's just the simplest thing that works. –  Louis Wasserman Mar 24 '12 at 16:56

I think you could use groupWith from GHC.Exts.

If you write the a -> b function to assign every element in xs its 'class', I belive groupWith would split xs just the way you want it to, traversing the list just once.

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groupBy doesn't really do what you're wanting; even if it did accept multiple predicate functions, it doesn't do any filtering on the list. It just groups together contiguous runs of list elements that satisfy some condition. Even if your filter conditions, when combined, cover all of the elements in the supplied list, this is still a different operation. For instance, groupBy won't modify the order of the list elements, nor will it have the possibility of including a given element more than once in the result, while your operation can do both of those things.

This function will do what you're looking for:

import Control.Applicative

filterMulti :: [a -> Bool] -> [a] -> [[a]]
filterMulti ps as = filter <$> ps <*> pure as

As an example:

> filterMulti [(<2), (>=5)] [2, 5, 1, -2, 5, 1, 7, 3, -20, 76, 8]
[[1, -2, 1, -20], [5, 5, 7, 76, 8]]
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this looks like an elegant solution but could you confirm this is not causing the list to be traversed each time for each condition. –  vis Mar 24 '12 at 11:59
    
It does traverse the list each time, but so does the example you gave in the question. You can't filter the same list multiple times without traversing it multiple times. –  bitbucket Mar 24 '12 at 12:02
    
I took it from the "separate the elements into 8 groups" that we don't need to filter the list, just split it into separate groups without omitting any elements... –  nietaki Mar 24 '12 at 12:02
    
@nietaki If that's the case, then my mistake. I was merely trying to emulate the behavior of the original example in a more concise manner. The example he gave is equivalent to what I wrote, just longer and more tedious to type. :) –  bitbucket Mar 24 '12 at 12:05
    
@vis If your condition functions overlap and you're only traversing the list once, how should it behave if a given list element satisfies more than one of the conditions? –  bitbucket Mar 24 '12 at 12:11

As an addendum to nietaki's answer (this should be a comment but it's too long, so if his answer is correct, accept his!), the function a -> b could be written as a series of nested if ... then .. else, but that is not very idiomatic Haskell and not very extensible. This might be slightly better:

import Data.List (elemIndex)
import GHC.Exts (groupWith)

f xs = groupWith test xs
   where test x = elemIndex . map ($ x) $ [condition1, ..., condition8]

It categorises each element by the first condition_ it satisfies (and puts those that don't satisfy any into their own category).

(The documentation for elemIndex is here.)

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The first function will return a list of "uppdated" lists and the second function will go through the whole list and for each value uppdate the list

myfilter :: a -> [a -> Bool] -> [[a]] -> [[a]]
myfilter _ []   []   = []
myfilter x f:fs l:ls | f x       = (x:l): Myfilter x fs ls
                     | otherwise = l:Myfilter x fs ls


filterall :: [a] -> [a -> Bool] -> [[a]] -> [[a]]
filterall []   _  l    = l
filterall x:xs fl l:ls = filterall xs fl (myfilter x fl l)

This should be called with filterall xs [condition1,condition2...] [[],[]...]

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Don't forget that a name of function in Haskell cannot start with a capital letter. –  Vitus Mar 24 '12 at 16:18

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