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I have two lists. One list contains some random data and other list contains the index of first list which needs to be deleted.

For example, let us consider two lists:

let a = [3,4,5,6,6,7,8]
let b = [1,3]

Then, the resultant output should be [3,5,6,7,8]. The number 4 and 6 are deleted since they are on index positions 1 and 3 respectively.

I'm new to Haskell, so finding it difficult to find the solution.

Update: Following code makes it work

import Data.List
dele :: Eq a => [a] -> [Int] -> [a]
dele [] _ = []
dele x [] = x
dele x (y:ys) = dele (delete (x !! y) x) ys

I was just wondering, is there a way to solve it through map/fold way ?

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What have you tried? –  Matt Clark Dec 31 '12 at 5:02
    
@MattClark Updated. –  Sibi Dec 31 '12 at 5:06
    
it's a functional programming language, which means that side effects and mutable data structures are out the door! Any solution will involve recreating a partial list with the items you want. –  Aram Kocharyan Dec 31 '12 at 5:09
    
    
Question Updated. Made it work now, through pattern matching. I'm wondering if there is a better way of solving this ? –  Sibi Dec 31 '12 at 5:24
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3 Answers

up vote 2 down vote accepted
deleteByIndex :: (Enum a, Eq a, Num a) => [a] -> [b] -> [b]
deleteByIndex r = map snd . filter (\(i, _) -> notElem i r) . zip [0..]

[0..] produces an infinite list [0, 1, 2, 3, ...]

zip constructs a list of pairs with the values of this list and your input list in the form [(0,x), (1, y), ...]

filter takes a function a -> Bool. The lambda checks if the index (first element of the pair) is in your input list r.

map snd returns the second element of each pair of the zip list.

zip,filter, map and notElem are documented here

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It gives wrong output: *Main Data.List> deleteByIndex [1,2,3,4,5,6] [0,3,2]. That gives me a resultant list of [0] but the correct output list should be [2,4,5,6] –  Sibi Dec 31 '12 at 5:30
    
Sorry, wrong formatting. Updated the comment. –  Sibi Dec 31 '12 at 5:33
    
Flip the arguments. The output is correct. –  Sec Oe Dec 31 '12 at 5:33
    
Thanks, it's working. A brief explanation would be nice. –  Sibi Dec 31 '12 at 5:34
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Off the top of my head:

removeByIndex :: [Integer] -> [a] -> [a]
removeByIndex indices = map snd . filter notInIndices . zip [0..]
    where notInIndices (i,_) = i `notElem` indices
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Zounds, beaten to the punch! :D –  Chris Barrett Dec 31 '12 at 5:48
1  
Nice answer! This is how I thought of it: [ x | x <- a , notElem (fromJust $ x ``elemIndex`` a) b] (The only issue is that now b has to be let b= [1, 3] :: [Int]) –  elaRosca Dec 31 '12 at 6:29
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An alternative answer using the lens library which has received considerable attention recently

import Control.Lens
>let a = [3,4,5,6,6,7,8]
>let b = [1,3]
>a^..elements (`notElem`b)
[3,5,6,7,8]

(^..) is jus the infix for of toListOf which can be used to traverse a structure and make a list out of its parts. The elements function just lets you choose which ones to include.

Other options are 'traverse' to traverse a traversables, 'both' to traverse a (,) and they compose together with (.) so traverse.both would traverse [(1,2), (3,4)] for example.

[(1,2), (3,4)]^..traverse.both [1,2,3,4]

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