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How can I access list by index like this C code with Haskell list?

int a[] = { 34, 45, 56 };
return a[1];
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3 Answers

up vote 18 down vote accepted

Look here, operator !!.

I.e. [1,2,3]!!1 gives you 2, since lists are 0-indexed.

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I'm not saying that there's anything wrong with your question or the answer given, but maybe you'd like to know about the wonderful tool that is Hoogle to save yourself time in the future: With Hoogle, you can search for standard library functions that match a given signature. So, not knowing anything about !!, in your case you might search for "something that takes an Int and a list of whatevers and returns a single such whatever", namely

Int -> [a] -> a

Lo and behold, with !! as the first result (although the type signature actually has the two arguments in reverse compared to what we searched for). Neat, huh?

Also, if your code relies on indexing (instead of consuming from the front of the list), lists may in fact not be the proper data structure. For O(1) index-based access there are more efficient alternatives, such as arrays or vectors.

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Oh this look nice. Thanks for letting me know it! As you thought, I'm complete newbie :) –  Eonil Mar 7 '11 at 8:21
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Hoogle is absolutely great. Every Haskell programmer should know it. There is an alternative called Hayoo (holumbus.fh-wedel.de/hayoo/hayoo.html). It searches as you type but doesn't seem to be as clever as Hoogle. –  musiKk Mar 7 '11 at 8:27
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@musiKk *oogle is winning at search even in Haskell... –  Eonil Mar 7 '11 at 9:00
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The straigt answer was already given: Use !!.

However newbies often tend to overuse this operator, which is expensive in Haskell (because you work on single linked lists, not on arrays). There are several useful techniques to avoid this, the easiest one is using zip. If you write zip ["foo","bar","baz"] [0..], you get a new list with the indizes "attached" to each element in a pair: [("foo",0),("bar",1),("baz",2)], which is often exactly what you need.

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Not what I wanted, but valuable information for me. –  Eonil Mar 7 '11 at 8:44
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You also need to be careful about your types there. Most of the time you don't want to end up with the indices being slow Integers rather than fast machine Ints. Depending on what exactly your function does and how explicit your typing is, Haskell might infer the type of [0..] to be [Integer] instead of [Int]. –  chrisdb Mar 7 '11 at 10:24
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