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I was reading Learn You a Haskell's guide on the state monad, but I had trouble understanding it since the stack example couldn't compile. In the guide, he used the following piece of code:

import Control.Monad.State  

type Stack = [Int]

pop :: State Stack Int  
pop = State $ \(x:xs) -> (x,xs)  

push :: Int -> State Stack ()  
push a = State $ \xs -> ((),a:xs) 

While I understand what it's supposed to do, it won't compile. I have no idea why. The error message is:

Stack.hs:6:7: Not in scope: data constructor `State'

Stack.hs:9:10: Not in scope: data constructor `State'

This makes no sense to me, since "State" is, to my knowledge, in fact a data constructor, defined as

newtype State s a = State { runState :: s -> (a,s) }

Is the guide "wrong", and if so, how do I fix it?

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    Control.Monad.State doesn't export the State constructor, use state (with lower-case s). – Vitus Mar 14 '12 at 8:31
  • @Vitus Nice, I didn't know that function was exported. I think you should write it as an answer rather than a comment. – danr Mar 14 '12 at 8:38
  • @Vitus: that's odd then, because his code actually compiles and runs well on my GHCI 6.12.3 on windows. – Riccardo T. Mar 14 '12 at 8:49
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    @Riccardo State was deprecated in favor of StateT. Since the State monad can be defined as StateT on the Identity monad, and so it's now a type synonym and there's no State data constructor. – is7s Mar 14 '12 at 8:58
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    ok, so it's just because learnyouahaskell is old? :) – Undreren Mar 14 '12 at 8:59
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As I mentioned in comments, you ought to use state instead of State.


The problem is that State is not standalone data type (or rather newtype), but it is the StateT transformer applied to Identity monad. Actually, it's defined as

type State s = StateT s Indentity

and because it's just type synonym, it cannot have State constructor. That's why Control.Monad.State uses state.

| improve this answer | |
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    This no longer works. Does anyone know of the proper syntax? – hLk May 27 '17 at 6:06

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