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Following an example in http://en.wikibooks.org/wiki/Haskell/Beginning

Prelude> let abs x = if x < 0 then -x else x
Prelude> abs 5
5
Prelude> abs -3

<interactive>:1:6:
    No instance for (Num (a0 -> a0))
      arising from the literal `3'
    Possible fix: add an instance declaration for (Num (a0 -> a0))
    In the second argument of `(-)', namely `3'
    In the expression: abs - 3
    In an equation for `it': it = abs - 3

What's wrong?

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The explanation of the error message, just for future reference: a0 -> a0 is the type of abs. (Type :t abs in your ghci to see it.) The error message is saying that this type a0 -> a0 is not an instance of the type class Num, as only Nums can be subtracted from each other, and in any case the 3 means that the first argument must be of some type in Num. (In ghci type :t (-) and :t 3 to see what's going on.) The line "in the second argument of `(-)', namely `3'" is most revealing: it shows that - is being treated as an infix operator with two arguments, not unary minus. –  ShreevatsaR Jun 3 '11 at 7:52

2 Answers 2

up vote 14 down vote accepted

Haskell thinks you're trying to subtract 3 from abs, and is complaining that abs is not a number. You need to add parenthesis when using the unary negation operator:

abs (-3)
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Beat me to it :) –  Oscar Mederos Jun 3 '11 at 7:30
    
Cheers. The wikibooks documentation seems to be incoreect in several places. –  zaf Jun 12 '11 at 13:05

The interpreter thinks you mean abs - 3 not abs (-3). You need brackets to disambiguate the code and make sure it's clear that you intend to use the unary "-" function, not the subtraction operator.

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