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I was wondering if it's possible to generate random tuples with a code like:

take 4 $ randomRs ((0,0),(70,100)) $ mkStdGen x  :: [(Double,Double)]

when I try this one I get the error:

No instance for (Random (Float, Float)) arising from a use of 'randoms'

Is there a way to get random tuples without using zip?

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2 Answers 2

up vote 6 down vote accepted

Basically the error message is saying that there isn't a defined way of making random tuples. But you can of course add one yourself.

Off the top of my head (i.e., I haven't actually tested this), you can do something like

instance (Random x, Random y) => Random (x, y) where
  randomR ((x1, y1), (x2, y2)) gen1 =
    let (x, gen2) = randomR (x1, x2) gen1
        (y, gen3) = randomR (y1, y2) gen2
    in ((x, y), gen3)

Now you can use randomR on tuples (provided that the types in the tuple support random generation).

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Drat! I was just about to post this answer! :) (Note you also need an instance for random, which is exactly the same as that of randomR but with only the gen argument.) –  dbaupp Dec 2 '12 at 14:05
    
@dbaupp Yeah, I wasn't exactly sure off the top of my head which methods constitute the minimal definition for Random. IIRC there's about six or so methods in there... –  MathematicalOrchid Dec 2 '12 at 20:40
    
how to implement the random method? –  osager Apr 10 at 12:33

You can use a state monad to generate random tuples conveniently:

import Control.Applicative
import Control.Monad.State
import System.Random

randomTupleR ::
    (Random a, Random b, RandomGen g)
    => (a, a)
    -> (b, b)
    -> g
    -> ((a, b), g)
randomTupleR xb yb =
    runState (liftA2 (,) (state $ randomR xb) (state $ randomR yb))
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