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media :: (Num a) => [a] -> a
media [] = 0
media lst = (head lst) + media (tail lst)

This is a working function that goes through a number list and sum each element with the following element.

media2 :: (Num a) => [a] -> a
media2 str = (media str) / (length str)

This second function was supposed to get that sum and divide it by the length of the list, thus getting the arithmetic mean of the list. BUT the compiler returns me this

src/Main.hs@6:29-6:39Could not deduce (a ~ Int)
from the context (Num a)
bound by the type signature for media2 :: Num a => [a] -> a
at /home/app/isolation-runner-work/projects/32614/src.207/Main.hs:6:1-39
`a' is a rigid type variable bound by
the type signature for media2 :: Num a => [a] -> a
at /home/app/isolation-runner-work/projects/32614/src.207/Main.hs:6:1
In the return type of a call of `length'
In the second argument of `(/)', namely `(length str)'
In the expression: (media str) / (length str)

I don't understand what I am doing wrong, can someone please tell me?

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marked as duplicate by Eric, mhwombat, AndrewC Jun 8 '14 at 23:00

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
It says media str has type a, and length str has type Int, and you cannot divide one by the other because it cannot prove that a is actually Int. –  n.m. Jun 2 '14 at 3:39
1  
Haskell already has a function to do what media does; it's called sum. –  jwodder Jun 2 '14 at 3:46

2 Answers 2

The length function always returns an Int, so you are trying to divide a (Num a) => a by an Int. The fromIntegral function will convert the Int into any Num type:

media2 :: (Fractional a) => [a] -> a
media2 str = (media str) / (fromIntegral $ length str)

EDIT

Just a couple of words about some insightful comments:

  1. Your media function is just the Prelude's sum.
  2. I'll assume you don't always want an Integral average, so I've changed the constraint on media2 to be Fractional instead of Num. This is because / has the type (/) :: (Fractional a) => a -> a -> a. Alternatively, you could use

    media2 :: (Integral a) => [a] -> a
    media2 str = (media str) `div` (fromIntegral $ length str)
    

    but you'll always get an integral average, which is probably not what you want.

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3  
The nonintuitive bit for people coming from other languages is that / is not overloaded to work on Ints in Haskell. You either have to explicitly use integer division (using quot or div) or convert the numerator and denominator to something that implements Fractional. –  rampion Jun 2 '14 at 3:57
2  
The type for media2 should be Fractional a => [a] -> a. Num a is insufficient. –  rampion Jun 2 '14 at 3:59

You can use genericLength from Data.List:

The genericLength function is an overloaded version of length. In particular, instead of returning an Int, it returns any type which is an instance of Num. It is, however, less efficient than length.

It's type signature is

genericLength :: Num i => [a] -> i 

Usage:

import Data.List

media2 :: (Num a) => [a] -> a
media2 str = (media str) / (genericLength str)
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