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How do you define state in Haskell? My first idea was to use algebraic data types. I've also heard about the state monad, but I don't really know what it is. As an example, lets use Texas hold'em poker. We have to represent the following states:

  • The two cards you hold in your hands
  • The cards on the board
  • The actions of the players before you, which can be:
    • fold
    • check
    • bet x
    • raise x
  • The size of the pot
  • The amount of money to call
  • The amount of money to raise (limited poker)
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possible duplicate of Haskell and State –  John L Oct 14 '11 at 15:52
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2 Answers

up vote 9 down vote accepted

There are two parts to using state in Haskell. The first one is just modeling and creating Datatypes to represent your things (just like in any other language). For example:

data Card = NumberCard Int | Jack | Queen | King | Ace
type Hand = (Card, Card)
data Player = Player Hand Int --a hand and his purse
data Action = Fold | Check | Bet Int | Raise Int
type Deck = [Card]
type TableState = ([Player], Deck)
--and functions to manipulate these, of course...

Then there is the part of how you use this state. You don't need to know monads to start making stuff (and you should only bother with the advanced topics when you have the basics mastered anyway). In particular you don't really need to use "state", you just need to receive and return these values in functional style.

For example, a round would be a function that takes a table state (list of players and the deck), a list of player actions and returns a new table state (after the roud had been played given these actions).

playRound :: TableState -> [Action] -> TableState
playRound (players, deck) actions = ...

Of course it is now your responsibility to make sure that the old table state is forgotten after you create a new one. Things like the State monad help with this kind of organizational issue.

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"you should only bother with the advanced topics when you have the basics mastered anyway" -- meh, to each his own. Forcing myself into the basics before allowing myself to think about the stuff that excites me is the surest way to kill my inspiration. –  luqui Oct 14 '11 at 17:12
    
I'm with @luqui on this one. You gotta run before you can walk. –  rampion Oct 14 '11 at 17:47
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I am not that sure. I can only really grok an abstraction after I know what it is replacing and why replacing that is a good idea in the first place. –  missingno Oct 14 '11 at 18:43
    
@missingno: Agreed. But I don't always need to grok in full before I can use something. –  rampion Oct 14 '11 at 19:46
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Haskell is a purely functional language, which means that Haskell avoids state and mutable variables. The way to do this in Haskell without using a state monad would be to make functions to operate on the data and return all of the different variables, and pass these variables around the program. Of course, this would mean you would have to recreate all of the data every step of the game, and would inefficient.

The state monad is simply a way of passing around data without all of that hassle.

I recommend a simple search for "State Haskell" here on stack overflow, there are plenty of good answers already out there. (And in the future try to search before posting.) :D

Haskell and State

state monad haskell

This is a good post about the different state monads you could implement.

Difference between State, ST, IORef, and MVar

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I think this is a useful answer, but I'm...troubled by the claim that "Haskell has no concept of state". I think that Haskell certainly emphasizes stateless programming, but surely it has a concept of state. –  Daniel Pratt Oct 14 '11 at 14:07
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-1 for "The Haskell Way ... terribly inefficient". –  Rotsor Oct 14 '11 at 14:48
    
@Rotsor Haskell is actually my favorite language right now, I was just trying to emphasize that the method I was going to talk about was a functional approach to the problem. –  D. Nusbaum Oct 14 '11 at 15:55
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Perhaps, "Haskell has no intrinsic concept of state". That is, in Haskell, you have to say what state means, rather than assuming it as an axiom. –  luqui Oct 14 '11 at 17:13
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@D. Nusbaum If you are talking about efficiency at all, try to be objective about it. First, "...functions to operate on the data ... and pass these variables around..." does not imply that you have to "recreate all of the data". A simple example of a function not recreating anything is id x = x. Second, even if you do recreate everything, it is not necessarily inefficient if everything does indeed change. These two facts make the claim of "Pure functional == inefficient" dubious. Also, reading your post one may think that the State monad helps to avoid that inefficiency. It does not. –  Rotsor Oct 14 '11 at 18:07
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