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No instance for (Fractional Int) arising from a use of `leap'
Possible fix: add an instance declaration for (Fractional Int)
In the first argument of `(==)', namely `leap (x)'
In the second argument of `(&&)', namely `leap (x) == 1'
In the expression: (y == 2) && leap (x) == 1

getting this error when loading the file in ghci

this is the func that's causing the error

daysInMonth :: Int -> Int -> Int
daysInMonth y x
    | (y == 1 || y == 3 || y == 5 || y == 7 || y == 8 || y == 10 || y == 12) = 31
    | (y == 4 || y == 6 || y == 9 || y == 11) = 30
    | (y == 2) && leap(x) == 1 = 28
    | (y == 2) && leap(x) == 0 = 29
    where
    leap a = if (a / 4) == 0 then return 1 else return 0
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1 Answer 1

up vote 3 down vote accepted

You're trying to calculate a / 4 where a (which only ever equals x, an Int) is an Int. The Int type does not belong to the Fractional typeclass, and thus / is not defined for Ints. In order to do what you want, you can:

  1. Convert a to a Fractional type by writing if fromIntegral a / 4 == 0 then ...

  2. Or, if you want to do "integer division" and discard the remainder, write if quot a 4 == 0 then ...

Also, return in Haskell is not like return in other languages. Get rid of it here.

(Also also, that's not how you determine leap years.)

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okay thanks for the advice :) yeh i know our lecturer said use that for the purposes of making it simpler. –  rob1994 Oct 28 '13 at 21:16

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