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Say I've written the following amazin piece of code:

func = do
  a <- Just 5
  return a

It's pretty pointless, I know. Here, a is 5, and func returns Just 5.

Now I rewrite my awesome (yet pointless) function:

func' = do
  a <- Nothing
  return a

This function returns Nothing, but what the heck is a? There's nothing to extract from a Nothing value, yet the program doesn't whine when I do something like this:

func'' = do
  a <- Nothing
  b <- Just 5
  return $ a+b

I just have a hard time seeing what actually happens. What is a? In other words: What does <- actually do? Saying it "extracts the value from right-side and binds it to the left-side" is obviously over-simplifying it. What is it I'm not getting?

Thanks :)

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1  
<- translates to >>=. In case of Maybe monad, if the first argument (i.e. the part right to <-) is Nothing, nothing else is evaluated and >>= just returns Nothing. So, to answer your question: the execution doesn't even reach a. –  Vitus Apr 18 '12 at 7:41
    
Thinking of monads as containers, do-notation lets you assign labels to the values (if any) inside the monads, and then define functions to apply to those values. But the extraction is an illusion - functions are applied inside the monad (using >>=) because there is no general way to extract a value from a monad. Notice how you end every do-block by putting the result back into the monad, often using return. You never really had a variable a that was equal to 5. –  Nefrubyr Apr 19 '12 at 13:38

5 Answers 5

up vote 11 down vote accepted

Let's try and desugar the do-notation of that last example.

func'' = Nothing >>= (\a -> Just 5 >>= (\b -> return $ a+b))

Now, let's see how >>= is defined for Maybe. It's in the Prelude:

instance  Monad Maybe  where
    (Just x) >>= k   =  k x
    Nothing  >>= k   =  Nothing
    return           =  Just
    fail s           =  Nothing

So Nothing >>= foo is simply Nothing

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Thank you :) I guess I'm not very good at desugaring do-notation... –  Undreren Apr 18 '12 at 7:59
1  
Every foo <- bar follows the scheme bar >>= (\foo -> ...). Now you can also see why there must be an expression at the end of every do-block, or one of those (possibly nested) lambda expressions would have an empty function body. Perhaps this link will help: book.realworldhaskell.org/read/monads.html#monads.do –  Sarah Apr 18 '12 at 8:20

The answer lies in the definition of the Monad instance of Maybe:

instance Monad Maybe where
   (Just x) >>= k      = k x
   Nothing  >>= _      = Nothing
   (Just _) >>  k      = k
   Nothing  >>  _      = Nothing
   return              = Just

Your func'' translates to:

Nothing >>= (\a -> (Just 5 >>= (\b -> return (a+b))))

From the definition of (>>=) you can see that the first Nothing is just threaded through to the result.

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Let's look at the definition of Maybe monad.

instance Monad Maybe where
  return = Just

  Just a  >>= f = f a
  Nothing >>= _ = Nothing

And desugar the do-notation in your function:

func' =
  Nothing >>= \a ->
  return a

The first argument to >>= is Nothing and from the definition above we can see that >>= just ignores the second argument. So we get:

func' = Nothing

Since the function \a -> ... is never called, a never gets assigned. So the answer is: a is not even reached.


As for desugaring do-notation, here's a quick sketch of how it's done (there's one simplification I've made - handling of fail, i.e. patterns that do not match):

do {a; rest} → a >> do rest

Note that >> is usually implemented in terms of >>= as a >>= \_ -> do rest (i.e. the second function just ignores the argument).

do {p <- a; rest} → a >>= \p -> do rest

do {let x = a; rest} → let x = a in do rest

And finally:

do {a} = a

Here's an example:

main = do
  name <- getLine
  let msg = "Hello " ++ name
  putStrLn msg
  putStrLn "Good bye!"

desugars to:

main =
  getLine >>= \name ->
  let msg = "Hello " ++ name in
  putStrLn msg >>
  putStrLn "Good bye!"

And to make it complete for those who are curious, here's the "right" translation of do {p <- a; rest} (taken directly from Haskell report):

do {pattern <- a; rest} → let ok pattern = do rest
                              ok _       = fail "error message"
                          in  a >>= ok
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Nothing isn't really "nothing", it's actually a possible value of something in the Maybe monad:

data Maybe t = Nothing | Just t

That is, if you have something of type Maybe t for some type t, it can have the value Just x (where x is anything of type t) or Nothing; in this sense Maybe just extends t to have one more possible value, Nothing. (It has other properties because it's a monad, but that doesn't really concern us here, except for the syntactic sugar of do and <-.)

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Let's take your example:

func = do
  a <- Just 5
  return a

Just like in other programming languages you can break this into two pieces correspond to "what's been done up to now" and "what's is yet to be done". For example we can make the break between Just 5 and

a <- ...
return a

In many popular programming languages you expect the Just 5 to be stuffed into the variable a and the code would continue.

Haskell does something different. The "rest of the code" can be thought of as a function describing what you would do with a if you had a value to put in it. This function is then applied to Just 5. But it's not applied directly. It's applied using whatever definition of >>= applies, depending on the type of your expression. For Maybe, >>= is defined so that when dealing with Just X, the "rest of the code" function is applied to X. But it's also defined so that when dealing with Nothing the "rest of the code" function is simply ignored and Nothing is returned.

We can now interpret your other example

func'' = do
  a <- Nothing
  b <- Just 5
  return $ a+b

Break it into Nothing and:

  a <- ...
  b <- Just 5
  return $ a+b

As I say above, this block of code can be thought of a function applied to a possible value of a. But it's being used with Nothing and in this case >>= is defined to ignore the "rest of the code" and just return Nothing. And that's the result you got.

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