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I am trying to return the length of a list as an Integer type, but applying length xs returns the length as an Int type. How can I work around this issue?

This is what I am trying to achieve: (it does not work)

sizeList :: [Integer] -> Integer
sizeList xs = length xs

It works as soon as I change the return to sizeList :: [Integer] -> Int but I don't want to do so.

4
  • go with genericLength as Sebastian said - or reimplement length as an excercise :D
    – Random Dev
    Oct 21, 2014 at 8:03
  • 3
    I hope you have well though about whether this is a good idea? Usually, it's not possible to have a list so long you can't count it's length in Int – the reason being, the computer's memory is basically indexed with ints, so an architecture with sufficient memory will generally have big enough ints to measure any list. On a 64-bit platform, counting till overflow takes ages anyway, even if you use an infinite list. That's why the standard length function, IMO rightly, returns Int not Integer. Oct 21, 2014 at 8:29
  • And on a 32-bit plattform, it will take 1.4 seconds, but at that point you would use (2^32 * 8 byte ~ 34GB).
    – Zeta
    Oct 21, 2014 at 8:49
  • I know. I tried emailing my instructor and pointing that out to him, but he was scrupulous! That's how he wanted it and that's how it was going to be. Period Oct 21, 2014 at 22:16

2 Answers 2

20

You can either call genericLength from Data.List, or call length and use fromIntegral to convert the result.

1
  • Note that genericLength avoids a possible numeric overflow — although if your list is that big, you're probably doing something wrong... Oct 21, 2014 at 11:28
0

There is also one trick I've seen in Learn You a Haskell for Great Good! that could be applied:

sum [1 | _ <- list]

Could be useful in some cases, perhaps.

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