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Assuming a binary search tree, I would like to return an error in case we are trying to insert an element that is already there. Is there a way to make this work?

data BST2 a = EmptyBST2 | Node2 a (BST2 a) (BST2 a)  deriving Show

insert2 :: a -> Either b (BST2 a) -> Either b (BST2 a)
insert2 elem (Right EmptyBST2) = Right (Node2 elem EmptyBST2 EmptyBST2)
insert2 elem (Right (Node2 root left right))
  | (elem == root) = Left "Error: Element already exist."
  | (elem < root) = (Node2 root (insert2 elem left) right)
  | otherwise = (Node2 root left (insert2 elem right))

Note: I am new to Haskell.

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3 Answers 3

up vote 1 down vote accepted

This problem is simpler to solve using helper functions:

insert2 :: (Ord a) => a -> BST2 a -> Either String (BST2 a)
insert2 newVal tree
  | contains newVal tree = Left "Error:  element already in tree"
  | otherwise = Right $ insert newVal tree

Now you need contains and insert:

contains :: (Ord a) => a -> BST2 a -> Bool
contains .... implementation .... -- checks whether a BST2 contains an element

insert :: (Ord a) => a -> BST2 a -> BST2 a
insert .... implementation .... -- inserts an element if not already there,
                                --   otherwise returns original tree

Alternatively, instead of Either String (BST2 a), you could use one of Haskell's many other approaches to errors.

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@Andre just tried to provide a minimal fix for your code. An idiomatic way to implement your error handling task in Haskell is to use the Error monad. The main reason for that is a possibity to reuse liftM2 library function to implement combine. throwError and return can be replaced by Left and Right, but the generic functions explain the purpose of your code more clearly.

module Err where

import Control.Monad (liftM2)
import Control.Monad.Error (throwError)

data BST2 a = EmptyBST2 | Node2 a (BST2 a) (BST2 a)  deriving Show

combine root = liftM2 (Node2 root)

insert2 :: (Ord a) => a -> BST2 a -> Either String (BST2 a)
insert2 elem EmptyBST2 = return $ Node2 elem EmptyBST2 EmptyBST2
insert2 elem (Node2 root left right)
  | (elem == root) = throwError "insert2 error: Element already exists."
  | (elem < root) = combine root (insert2 elem left) (return right)
  | otherwise = combine root (return left) (insert2 elem right)

Note that combine can be shorter: combine = liftM2 . Node2 or longer: combine root left right = liftM2 (Node2 root) left right. Use the style you understand best.

Also some comments regarding the errors @Andre fixed:

  • insert2 was not polymorphic in error type - it always returned a String in case of failure. So he used String in the type declaration instead of b.
  • Unlike lists, ordered collections cannot store any type - only types which can be compared (ordered) can be put into a tree. So he added Ord a => constraint on tree value type to indicate that < and == must be implemented for the type.
  • insert2 returns Either. You tried to pass Left or Right to Node2 and Node2 root (Left foo) right fails because it expects Node2 a but Either String (Node2 a) is provided.

Finally, one more reason to use throwError and return is that the function becomes generic:

insert2 :: (Ord a, MonadError String m) => a -> BST2 a -> m (BST2 a)

and you can use it with instances of MonadError other than Either, but you need to add {-# LANGUAGE FlexibleContexts #-} pragma at the top of your source file before the module declaration.

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thanks for the improvement. (BTW, I deliberately did not mention monads.) –  Andre Nov 9 '11 at 9:53
    
My policy is to provide two answers for wrong code: a minimal fix and a better implementation. A better implementation alone has low educational value so my answer is not an improvement but an additional clue. –  nponeccop Nov 9 '11 at 10:05
    
Looks like the type could be more general: insert2 :: (Ord a, MonadError String m) => a -> BST2 a -> m (BST2 a)? –  ephemient Nov 9 '11 at 16:19
    
1) Not in Haskell98 2) We wanted to avoid scary monads as much as possible 3) Yes –  nponeccop Nov 9 '11 at 17:10

Just a quick solution (not necessarily simple):

data BST2 a = EmptyBST2 | Node2 a (BST2 a) (BST2 a)  deriving Show

combine :: a -> Either b (BST2 a) -> Either b (BST2 a) -> Either b (BST2 a)
combine a (Left b) _ = Left b
combine a _ (Left b) = Left b
combine a (Right left_subtree) (Right right_subtree) = Right (Node2 a left_subtree right_subtree)

insert2 :: (Ord a) => a -> Either String (BST2 a) -> Either String (BST2 a)
insert2 elem (Right EmptyBST2) = Right (Node2 elem EmptyBST2 EmptyBST2)
insert2 elem (Right (Node2 root left right))
  | (elem == root) = Left "Error: Element already exist."
  | (elem < root) = combine root (insert2 elem (Right left)) (Right right)
  | otherwise = combine root (Right left) (insert2 elem (Right right))

-- test data
t1 = EmptyBST2
t2 = Node2 17 t1 t1
t3 = Node2 42 t2 t1
t4 = insert2 11 (Right t3)
t5 = insert2 17 (Right t3)
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There is really no reason for insert2's second argument to be of type Either String (BST2 a), BST2 a would suffice! –  adamse Nov 9 '11 at 8:22
    
combine is just liftM2 . Node2 –  nponeccop Nov 9 '11 at 9:36

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