Manually merging: - README.md: I added the description from universe/README.md into the heading of dotfiles/README.md. - .envrc: dotfiles/.envrc was a superset of universe/.envrc - .gitignore: Adding some of the ignored patterns from universe/.gitignore to dotfiles/.gitignore Everything else here should be a simple rename.
		
			
				
	
	
		
			179 lines
		
	
	
	
		
			5 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			179 lines
		
	
	
	
		
			5 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
| import unittest
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| from collections import deque
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| 
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| 
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| ################################################################################
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| # Implementation
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| ################################################################################
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| def is_leaf(node):
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|     return node.left is None and node.right is None
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| 
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| 
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| def find_largest(node):
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|     current = node
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|     while current.right is not None:
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|         current = current.right
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|     return current.value
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| 
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| 
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| def find_second_largest(node):
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|     history = deque()
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|     current = node
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| 
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|     while current.right:
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|         history.append(current)
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|         current = current.right
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| 
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|     if current.left:
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|         return find_largest(current.left)
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|     elif history:
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|         return history.pop().value
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|     else:
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|         raise TypeError
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| 
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| 
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| def find_second_largest_backup(node):
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|     history = deque()
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|     current = node
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| 
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|     # traverse -> largest
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|     while current.right:
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|         history.append(current)
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|         current = current.right
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| 
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|     if current.left:
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|         return find_largest(current.left)
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|     elif history:
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|         return history.pop().value
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|     else:
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|         raise ArgumentError
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| 
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| 
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| # Write a iterative version to avoid consuming memory with the call stack.
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| # Commenting out the recursive code for now.
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| def find_second_largest_backup(node):
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|     if node.left is None and node.right is None:
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|         raise ArgumentError
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| 
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|     elif node.right is None and is_leaf(node.left):
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|         return node.left.value
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| 
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|     # recursion
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|     # elif node.right is None:
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|     #     return find_largest(node.left)
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| 
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|     # iterative version
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|     elif node.right is None:
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|         current = node.left
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|         while current.right is not None:
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|             current = current.right
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|         return current.value
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| 
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|     # recursion
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|     # TODO: Remove recursion from here.
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|     elif not is_leaf(node.right):
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|         return find_second_largest(node.right)
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| 
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|     # could do an else here, but let's be more assertive.
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|     elif is_leaf(node.right):
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|         return node.value
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| 
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|     else:
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|         raise ArgumentError
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| 
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| 
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| ################################################################################
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| # Tests
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| ################################################################################
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| class Test(unittest.TestCase):
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|     class BinaryTreeNode(object):
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|         def __init__(self, value):
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|             self.value = value
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|             self.left = None
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|             self.right = None
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| 
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|         def insert_left(self, value):
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|             self.left = Test.BinaryTreeNode(value)
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|             return self.left
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| 
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|         def insert_right(self, value):
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|             self.right = Test.BinaryTreeNode(value)
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|             return self.right
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| 
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|     def test_full_tree(self):
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|         tree = Test.BinaryTreeNode(50)
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|         left = tree.insert_left(30)
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|         right = tree.insert_right(70)
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|         left.insert_left(10)
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|         left.insert_right(40)
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|         right.insert_left(60)
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|         right.insert_right(80)
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|         actual = find_second_largest(tree)
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|         expected = 70
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|         self.assertEqual(actual, expected)
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| 
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|     def test_largest_has_a_left_child(self):
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|         tree = Test.BinaryTreeNode(50)
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|         left = tree.insert_left(30)
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|         right = tree.insert_right(70)
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|         left.insert_left(10)
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|         left.insert_right(40)
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|         right.insert_left(60)
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|         actual = find_second_largest(tree)
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|         expected = 60
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|         self.assertEqual(actual, expected)
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| 
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|     def test_largest_has_a_left_subtree(self):
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|         tree = Test.BinaryTreeNode(50)
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|         left = tree.insert_left(30)
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|         right = tree.insert_right(70)
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|         left.insert_left(10)
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|         left.insert_right(40)
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|         right_left = right.insert_left(60)
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|         right_left_left = right_left.insert_left(55)
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|         right_left.insert_right(65)
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|         right_left_left.insert_right(58)
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|         actual = find_second_largest(tree)
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|         expected = 65
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|         self.assertEqual(actual, expected)
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| 
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|     def test_second_largest_is_root_node(self):
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|         tree = Test.BinaryTreeNode(50)
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|         left = tree.insert_left(30)
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|         tree.insert_right(70)
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|         left.insert_left(10)
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|         left.insert_right(40)
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|         actual = find_second_largest(tree)
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|         expected = 50
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|         self.assertEqual(actual, expected)
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| 
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|     def test_descending_linked_list(self):
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|         tree = Test.BinaryTreeNode(50)
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|         left = tree.insert_left(40)
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|         left_left = left.insert_left(30)
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|         left_left_left = left_left.insert_left(20)
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|         left_left_left.insert_left(10)
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|         actual = find_second_largest(tree)
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|         expected = 40
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|         self.assertEqual(actual, expected)
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| 
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|     def test_ascending_linked_list(self):
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|         tree = Test.BinaryTreeNode(50)
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|         right = tree.insert_right(60)
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|         right_right = right.insert_right(70)
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|         right_right.insert_right(80)
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|         actual = find_second_largest(tree)
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|         expected = 70
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|         self.assertEqual(actual, expected)
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| 
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|     def test_error_when_tree_has_one_node(self):
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|         tree = Test.BinaryTreeNode(50)
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|         with self.assertRaises(Exception):
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|             find_second_largest(tree)
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| 
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|     def test_error_when_tree_is_empty(self):
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|         with self.assertRaises(Exception):
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|             find_second_largest(None)
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| 
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| 
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| unittest.main(verbosity=2)
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