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I find it a little difficult to understand the Haskell world, so I would really appreciate some help!

I want to create 2 dimensional array of Chars (a matrix 10x10 of symbols) and it should be mutable, so I tried this:

import Data.Array.IO
arr <- newArray ((1,10), (1,10)) '!' :: IO (IOArray (Int, Int) Char)
a <- readArray arr (1,1)

but it didn't worked out. Could you please tell me how to create the array and how to access its members, or if this isn't a good way, another way to do this?

And also I would like to ask if there is a way to color some of the elements in the array in a different color. I imported System.Console.ANSI but I'm not quite sure how exactly to color what I want to be in a different color. A example of outputting a red letter would be really helpfull.

Thank you very much in advance! :)

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Two things: First, why do you want a mutable array? Chances are you actually don't. Second, coloring "elements of the array" makes no sense as such. That's an output issue, and a completely separate question. –  C. A. McCann Jan 4 '13 at 17:35
    
I'm not sure if it has to be mutable, I would like to try to implement game of life and the array will be changing on each iteration, so I thought that it's better to be mutable. As for the coloring, I wanted the cells which are dead and alive to be in different colors. I know that it is another topic, but I would feel a bit guilty for posting two haskell questions at the same time. –  Faery Jan 4 '13 at 18:28
    
You're more likely to get helpful answers if your question has a single purpose and clearly explains the problem you're trying to solve. I'd suggest clarifying your overall goal (instead of assuming a particular kind of solution) and posting a separate question about colored output, possibly after getting the rest of the program working if you're worried about posting too many questions at once. –  C. A. McCann Jan 4 '13 at 18:39
    
I will take it in mind. Thank you for your advice! :) –  Faery Jan 4 '13 at 18:42
    
For a "Game of Life", if memory serves, an array is not the best choice (and that comes from someone who loves arrays, in particular mutable arrays [the ST kind, not the IO kind, though]). There are typically so many free cells that scanning them is much more expensive than a lookup in e.g. a Map. –  Daniel Fischer Jan 4 '13 at 20:08
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1 Answer 1

up vote 1 down vote accepted

This compiles and runs without error on my laptop.

import Data.Array.IO       -- from the array package
import System.Console.ANSI -- from the ansi-terminal package

main :: IO ()
main = do
        arr <- newArray ((1,1), (10,10)) '!' :: IO (IOArray (Int, Int) Char)
        -- You had ((1,10), (1,10)), in the line above.
        -- That meant (1,10) was the only valid index!
        ch <- readArray arr (1,1)
        setSGR [SetColor Foreground Dull Red]   -- set foreground colour to red
        putStr [ch]
        setSGR []                               -- reset colours
        putStrLn ""

I second C. A. McCann's suggestion of using normal, immutable arrays instead of mutable arrays. (Unfortunately I have little experience of using arrays in Haskell, so I'll leave it to someone else to suggest how to compute an updated array from the old array in a single step.)

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Oooh! Thank you so much! That was exactly what I needed! –  Faery Jan 4 '13 at 18:41
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