4

I'm just trying to understand why this doesn't error:

Prelude> Nothing >>= (\x -> Just $ x + 3)
Nothing

If I break the lambda down into individual steps:

Prelude> Nothing + 3

<interactive>:8:1: error:
    • Non type-variable argument in the constraint: Num (Maybe a)
      (Use FlexibleContexts to permit this)
    • When checking the inferred type
        it :: forall a. Num (Maybe a) => Maybe a

and

Prelude> Just Nothing
Just Nothing
  • 9
    It doesn't really boil down to Nothing + 3 because you aren't passing directly Nothing to the lambda (as in (\x -> Just $ x + 3) Nothing). You have to consider what >>= does with Maybe-values. – duplode Apr 24 at 1:32
  • 1
    IOW, because =<< is not $. – Will Ness Apr 24 at 10:33
19

When you write Nothing >>= (\x -> Just $ x + 3), this is not at all the same as Just $ Nothing + 3. You're not actually passing Nothing as the value of x.

Instead, you're calling operator >>=, and you're passing into it two arguments: Nothing on the left and the lambda expression on the right.

Therefore, the result of this expression would be determined by the definition of operator >>=. Let's take a look at how it is defined for Maybe:

(Just x) >>= f  =  f x
Nothing  >>= f  =  Nothing

As you can see, when passed Nothing as left argument, operator >>= simply returns Nothing right away, and doesn't even bother with the function that is passed as right argument.

  • Perhaps more clearly, the Nothing case can be written as Nothing >>= _ = Nothing to emphasize that the right-hand operand is ignored. – chepner Apr 24 at 12:33
  • 2
    @chepner I have considered that, but decided that it may actually prove confusing, because now I also need to explain what an underscore means, and that it's not part of the magic. – Fyodor Soikin Apr 24 at 14:54

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