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The function I'm trying to write should remove the element at the given index from the given list of any type.

Here is what I have already done:

           delAtIdx :: [x] -> Int -> [x]

           delAtIdx x y = let g = take y x
                          in let h = reverse x
                          in let b = take (((length x) - y) - 1) h
                          in let j = g ++ (reverse b)
                          in j

Is this correct? Could anyone suggest another approach?

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1  
consider drop instead of reverse - take - reverse –  newacct Apr 21 '12 at 8:21

2 Answers 2

up vote 6 down vote accepted

It's much simpler to define it in terms of splitAt, which splits a list before a given index. Then, you just need to remove the first element from the second part and glue them back together.

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I already did that, too :) But I thought there is built-in function –  MIH1406 Apr 21 '12 at 4:57
    
@MIH1406: Removing an element of a list at a specific location is not very idiomatic in Haskell, that's why there isn't a build-in function. –  Vitus Apr 21 '12 at 10:28

reverse and concatenation are things to avoid if you can in haskell. It looks like it would work to me, but I am not entirely sure about that.

However, to answer the "real" question: Yes there is another (easier) way. Basically, you should look in the same direction as you always do when working in haskell: recursion. See if you can make a recursive version of this function.

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