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As per the title.

I have the following code which creates a binary search tree, but if I want it created and changed dynamically with user input, how would I do that if I can't change the value of a variable in haskell?!?

find :: (Ord a) => Node a -> a -> Bool
find (Node val left right) s
    | s == val		= True
    | s < val		= find left s
    | s > val		= find right s

find Empty s = False

data Node a = Node a (Node a) (Node a)
              | Empty

myTree = Node "m"   (Node "a" Empty Empty)
    				(Node "z" Empty Empty)

Thanks in advance!

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3 Answers 3

The idea behind purely functional data structures is to compute new values instead of changing them and to pass them (recursively) in parameters instead of storing them globally.

So given a function

insert :: Ord a => Node a -> a -> Node a

your programm could look like this

-- Let the user enter k values that are stored in a tree structure
addTreeItems :: Int -> Node Int -> IO (Node Int)
addTreeItems 0 tree = return tree
addTreeItems k tree = do
    putStr "Enter new item: "
    item <- readLn
    addTreeItems (k - 1) (insert tree item) -- Recursively pass the tree

main = do
    tree <- addTreeItems 10 Empty
    -- ...

Using monadic helper functions, this could be simplified to things like

(foldl insert Empty) `liftM` (sequence $ replicate k (putStr "Enter new item: " >> readLn))

If you want to update values at a certain position, you'll need more advanced datastructures like a zipper, that are nevertheless still purely functional!

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Thanks for the reply. I don't mean to be dense but with the example given I still seem to have the same problem. You get to 'insert tree item', tree is a node with left and right nodes attached which may be 'Empty' or not. The first time addTreeItems is called it is called again with a tree returned by 'insert tree item' which would just have a single node with presumably two empty branches. The second recursion has this root node passed into insert along with a new item, but how is that item added to the node if the node's branches cannot be changed (from empty in this case)? Thanks! –  Thomas King Nov 27 '09 at 12:02
    
Nevermind I was being dense, forgot that I need to create an entirely new tree, I'm close to my own solution I think now. –  Thomas King Nov 27 '09 at 13:02

Dario gave a good direct answer. If you want more in-depth information, there's Purely Functional Data Structures by Chris Okasaki, an entire book on the subject. I bought it myself, but sadly, I don't have the time to experiment with the ideas.

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4  
The book is based on his Ph.D. thesis, so if you can't afford it, you can peruse the thesis. –  Don Wakefield Nov 26 '09 at 16:49
1  
@Don Wakefield Thank you for that. Honestly any day where you find a reference or knowledge you didn't have yesterday is a good day. Thank you so much for referencing that thesis! –  Spence Nov 26 '09 at 23:37

You allocate a new tree node and the old one sticks around. This technique requires a really good allocator, but it enables all sorts of nifty devices because other parts of the program still have access to old nodes. This is a godsend for certain kinds of speculative algorithms or other tricks involving so-called "persistent data structures".

Eventually you allocate a new root for your tree and what then? As Dario says, you pass it as a parameter to a function (instead of storing it in a global variable).

So

  • Mutation of a field in a struct allocated on the heap becomes allocation of a new struct on the heap.

  • Mutation of a global variable becomes passing a parameter to a function

Sometimes it also makes sense to take what would have been a collection of global variables in C and put them all in an object allocated on heap.


P.S. If you really want to, you can have mutable global variables in Haskell. It is, after all, the world's finest imperative programming language (according to Wadler or Peyton Jones, I forget whom). But if you are asking this question, you really don't want to. Yet.

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