Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have just typed in the RandomState example from real world haskell. It looks like this:

import System.Random
import Control.Monad.State

type RandomState a = State StdGen a

getRandom :: Random a => RandomState a
getRandom =
  get >>= \gen ->
  let (val, gen') = random gen in
  put gen' >>
  return val

getTwoRandoms :: Random a => RandomState (a, a)
getTwoRandoms = liftM2 (,) getRandom getRandom

It works, but the result doesn't get displayed. I get the error message:

No instance for (Show (RandomState (Int, Int)))
  arising from a use of `print' at <interactive>:1:0-38
Possible fix:
  add an instance declaration for (Show (RandomState (Int, Int)))
In a stmt of a 'do' expression: print it

I am having some trouble adding an instance for Show RandomState. Can anyone show me how this is done?

Thanks.

share|improve this question
1  
To diagnose this, we'll need the code you used to try to print. I'm guessing you forgot a runState? –  Don Stewart Jun 22 '10 at 6:18
    
I didn't write any extra code for printing, I simply ran: getTwoRandoms :: (RandomState (Int, Int)) but RandomState doesn't know how to display itself. Sounds like I did forget a runState. –  Kurt Jun 22 '10 at 8:02
    
Maybe you want the runTwoRandoms one section below instead? –  KennyTM Jun 22 '10 at 11:47

2 Answers 2

up vote 3 down vote accepted

For the sake of being explicit, as jberryman and the comments on the question imply: Something of type RandomState (a, a) is a function, not a value. To do anything with it, you want to run it with an initial state.

I'm guessing you want something like this:

> fmap (runState getTwoRandoms) getStdGen
((809219598,1361755735),767966517 1872071452)

This is essentially what the runTwoRandoms function a bit further in RWH is doing.

share|improve this answer
    
I am going to have to read that chapter again. I really thought I was starting to get it. –  Kurt Jun 22 '10 at 14:54
1  
@Kurt: Is it the "hidden" function that's tripping you up? It is kind of confusing that you can treat something of type State s a like a value of type a inside a do block, despite it actually being a function of type s -> (a, s). Walking through a reimplementation of State seems to help some people get a better feel for how and why it works--I did that in one of my previous answers and I've seen a blog post or two go through it as well. –  C. A. McCann Jun 22 '10 at 15:05
    
@Kurt: The State monad is weird. Think about it this way: all the monadic machinery (>>=, return, etc.) is composing a big function in the State wrapper. You then do stuff with that monad/function by applying runState which just take that function out of the State wrapper (like fst pulls the first element of a tuple, they just gave runState a clever name to confuse you) –  jberryman Jun 22 '10 at 17:01

Since RandomState is a synonym for State and there isn't an instance of show defined for State, you won't be able to show it.

You would also not be able to derive show because State is just a wrapper for a function and Haskell has no way to define a show for functions that would be useful:

Prelude> show (+)

<interactive>:1:0:
    No instance for (Show (a -> a -> a))
      arising from a use of `show' at <interactive>:1:0-7
    Possible fix: add an instance declaration for (Show (a -> a -> a))
    In the expression: show (+)
    In the definition of `it': it = show (+)

EDIT: Forgot to add the other piece: GHCi is giving you that error because it uses show behind the scenes on the expressions you enter... REPL and all that.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.