CS代考计算机代写 — Jiayu Han (932-907-189)
— Jiayu Han (932-907-189)
— Han-Hsing Pao (933-651-943)
— Grading note: 10pts total
— * 2pts for inBST
— * 1pt for all other definitions
module HW1 where
— | Integer-labeled binary trees.
data Tree
= Node Int Tree Tree — ^ Internal nodes
| Leaf Int — ^ Leaf nodes
deriving (Eq,Show)
— | An example binary tree, which will be used in tests.
t1 :: Tree
t1 = Node 1 (Node 2 (Node 3 (Leaf 4) (Leaf 5))
(Leaf 6))
(Node 7 (Leaf 8) (Leaf 9))
— | Another example binary tree. This one satisfies the BST property.
t2 :: Tree
t2 = Node 6 (Node 2 (Leaf 1) (Node 4 (Leaf 3) (Leaf 5)))
(Node 8 (Leaf 7) (Leaf 9))
— | Some more trees that violate the BST property.
t3, t4, t5, t6 :: Tree
t3 = Node 3 (Node 2 (Leaf 1) (Leaf 4)) (Leaf 5)
t4 = Node 3 (Leaf 1) (Node 4 (Leaf 2) (Leaf 5))
t5 = Node 4 (Node 2 (Leaf 3) (Leaf 1)) (Leaf 5)
t6 = Node 2 (Leaf 1) (Node 4 (Leaf 5) (Leaf 3))
— | All of the example trees in one list.
ts :: [Tree]
ts = [t1,t2,t3,t4,t5,t6]
— | The integer at the left-most node of a binary tree.
—
— >>> leftmost (Leaf 3)
— 3
—
— >>> leftmost (Node 5 (Leaf 6) (Leaf 7))
— 6
—
— >>> map leftmost ts
— [4,1,1,1,3,1]
—
leftmost :: Tree -> Int
leftmost (Leaf x) = x
leftmost (Node _ l _) = leftmost l
— If there is only one leaf, then the leftmost is just the leaf itself.
— If there is a tree, we`ll be only looking for left child under the tree since
— we`re looking for the leftmost. Then do the recursive till the left child becaomes
— a leaf.
— | The integer at the right-most node of a binary tree.
—
— >>> rightmost (Leaf 3)
— 3
—
— >>> rightmost (Node 5 (Leaf 6) (Leaf 7))
— 7
—
— >>> map rightmost ts
— [9,9,5,5,5,3]
—
rightmost :: Tree -> Int
rightmost (Leaf x) = x
rightmost (Node _ _ r) = rightmost r
–Same idea as the leftmost.
— | Get the maximum integer from a binary tree.
—
— >>> maxInt (Leaf 3)
— 3
—
— >>> maxInt (Node 5 (Leaf 4) (Leaf 2))
— 5
—
— >>> maxInt (Node 5 (Leaf 7) (Leaf 2))
— 7
—
— >>> map maxInt ts
— [9,9,5,5,5,5]
—
maxInt :: Tree -> Int
maxInt (Leaf x) = x
maxInt (Node x l r) = maximum [x, maxInt l, maxInt r]
–If there is only one leaf, then the maximum is just the leaf itself.
–If there is a tree, we will just be looking for the maximum number between
— [x, leftchild, rightchild]. Do the recursive for both leftchild and rightchild till
— they become a leaf.
— | Get the minimum integer from a binary tree.
—
— >>> minInt (Leaf 3)
— 3
—
— >>> minInt (Node 2 (Leaf 5) (Leaf 4))
— 2
—
— >>> minInt (Node 5 (Leaf 4) (Leaf 7))
— 4
—
— >>> map minInt ts
— [1,1,1,1,1,1]
—
minInt :: Tree -> Int
minInt (Leaf x) = x
minInt (Node x l r) = minimum [x, minInt l, minInt r]
— Same as maxInt.
— | Get the sum of the integers in a binary tree.
—
— >>> sumInts (Leaf 3)
— 3
—
— >>> sumInts (Node 2 (Leaf 5) (Leaf 4))
— 11
—
— >>> sumInts (Node 10 t1 t2)
— 100
—
— >>> map sumInts ts
— [45,45,15,15,15,15]
—
sumInts :: Tree -> Int
sumInts (Leaf x) = x
sumInts (Node x l r) = x + sumInts l + sumInts r
— If there is only one leaf, then the sum is just the leaf itself.
— If there is a tree, then the sum would x + (the sum of leftchild) +
— (the sum of rightchild), which is just recursive.
— | The list of integers encountered by a pre-order traversal of the tree.
—
— >>> preorder (Leaf 3)
— [3]
—
— >>> preorder (Node 5 (Leaf 6) (Leaf 7))
— [5,6,7]
—
— >>> preorder t1
— [1,2,3,4,5,6,7,8,9]
—
— >>> preorder t2
— [6,2,1,4,3,5,8,7,9]
—
— >>> map preorder [t3,t4,t5,t6]
— [[3,2,1,4,5],[3,1,4,2,5],[4,2,3,1,5],[2,1,4,5,3]]
—
preorder :: Tree -> [Int]
preorder (Leaf x) = [x]
preorder (Node x l r) = [x] ++ preorder l ++ preorder r
— If there is only one leaf, then the preorder is just the leaf itself.
— If there is a tree, we just need to add the int into the list [x] from left to right.
— | The list of integers encountered by an in-order traversal of the tree.
—
— >>> inorder (Leaf 3)
— [3]
—
— >>> inorder (Node 5 (Leaf 6) (Leaf 7))
— [6,5,7]
—
— >>> inorder t1
— [4,3,5,2,6,1,8,7,9]
—
— >>> inorder t2
— [1,2,3,4,5,6,7,8,9]
—
— >>> map inorder [t3,t4,t5,t6]
— [[1,2,4,3,5],[1,3,2,4,5],[3,2,1,4,5],[1,2,5,4,3]]
—
inorder :: Tree -> [Int]
inorder (Leaf x) = [x]
inorder (Node x l r) = inorder l ++ [x] ++ inorder r
— Similar idea as preorder.
— | Check whether a binary tree is a binary search tree.
—
— >>> isBST (Leaf 3)
— True
—
— >>> isBST (Node 5 (Leaf 6) (Leaf 7))
— False
—
— >>> map isBST ts
— [False,True,False,False,False,False]
—
isBST :: Tree -> Bool
isBST (Leaf x) = True
isBST (Node x l r) = (maxInt l < x) && (minInt r > x) && (isBST l) && (isBST r)
— If there is only one leaf, then isBST is true.
— Based on the definition of BST, the maxInt l < x < maxInt r. Then we should
-- do recursive for both l and r. It is only true when all of them match.
-- | Check whether a number is contained in a binary search tree.
-- You should assume that the given tree is a binary search tree
-- and *not* explore branches that cannot contain the value if
-- this assumption holds. The last two test cases violate the
-- assumption, but are there to help ensure that you do not
-- explore irrelevant branches.
--
-- >>> inBST 2 (Node 5 (Leaf 2) (Leaf 7))
— True
—
— >>> inBST 3 (Node 5 (Leaf 2) (Leaf 7))
— False
—
— >>> inBST 4 t2
— True
—
— >>> inBST 10 t2
— False
—
— >>> inBST 4 t3
— False
—
— >>> inBST 2 t4
— False
—
inBST :: Int -> Tree -> Bool
inBST i (Leaf x) = i == x
inBST i (Node x l r) = (isBST (Node x l r)) && ((i == x) || (inBST i l) || (inBST i r))
— If there only a leaf, we just need to check whether they match or not.
— If there is a tree, we need to check whether the tree is in BST or not,
— if true, then check if the int is included,
— if yes, return true,
— else false.
— else false.