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78 lines
2.3 KiB
Python
78 lines
2.3 KiB
Python
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"""
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author: Aayush Soni
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Given n pairs of parentheses, write a function to generate all
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combinations of well-formed parentheses.
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Input: n = 2
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Output: ["(())","()()"]
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Leetcode link: https://leetcode.com/problems/generate-parentheses/description/
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"""
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def backtrack(
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partial: str, open_count: int, close_count: int, n: int, result: list[str]
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) -> None:
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"""
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Generate valid combinations of balanced parentheses using recursion.
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:param partial: A string representing the current combination.
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:param open_count: An integer representing the count of open parentheses.
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:param close_count: An integer representing the count of close parentheses.
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:param n: An integer representing the total number of pairs.
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:param result: A list to store valid combinations.
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:return: None
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This function uses recursion to explore all possible combinations,
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ensuring that at each step, the parentheses remain balanced.
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Example:
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>>> result = []
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>>> backtrack("", 0, 0, 2, result)
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>>> result
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['(())', '()()']
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"""
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if len(partial) == 2 * n:
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# When the combination is complete, add it to the result.
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result.append(partial)
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return
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if open_count < n:
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# If we can add an open parenthesis, do so, and recurse.
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backtrack(partial + "(", open_count + 1, close_count, n, result)
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if close_count < open_count:
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# If we can add a close parenthesis (it won't make the combination invalid),
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# do so, and recurse.
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backtrack(partial + ")", open_count, close_count + 1, n, result)
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def generate_parenthesis(n: int) -> list[str]:
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"""
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Generate valid combinations of balanced parentheses for a given n.
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:param n: An integer representing the number of pairs of parentheses.
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:return: A list of strings with valid combinations.
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This function uses a recursive approach to generate the combinations.
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Time Complexity: O(2^(2n)) - In the worst case, we have 2^(2n) combinations.
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Space Complexity: O(n) - where 'n' is the number of pairs.
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Example 1:
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>>> generate_parenthesis(3)
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['((()))', '(()())', '(())()', '()(())', '()()()']
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Example 2:
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>>> generate_parenthesis(1)
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['()']
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"""
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result: list[str] = []
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backtrack("", 0, 0, n, result)
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return result
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if __name__ == "__main__":
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import doctest
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doctest.testmod()
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