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	* Add the intial translation of code of all the languages * test * revert * Remove * Add Python and Java code for EN version
		
			
				
	
	
		
			124 lines
		
	
	
		
			4.4 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			124 lines
		
	
	
		
			4.4 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
"""
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File: edit_distancde.py
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Created Time: 2023-07-04
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Author: krahets (krahets@163.com)
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"""
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def edit_distance_dfs(s: str, t: str, i: int, j: int) -> int:
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    """Edit distance: Brute force search"""
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    # If both s and t are empty, return 0
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    if i == 0 and j == 0:
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        return 0
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    # If s is empty, return the length of t
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    if i == 0:
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        return j
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    # If t is empty, return the length of s
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    if j == 0:
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        return i
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    # If the two characters are equal, skip these two characters
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    if s[i - 1] == t[j - 1]:
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        return edit_distance_dfs(s, t, i - 1, j - 1)
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    # The minimum number of edits = the minimum number of edits from three operations (insert, remove, replace) + 1
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    insert = edit_distance_dfs(s, t, i, j - 1)
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    delete = edit_distance_dfs(s, t, i - 1, j)
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    replace = edit_distance_dfs(s, t, i - 1, j - 1)
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    # Return the minimum number of edits
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    return min(insert, delete, replace) + 1
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def edit_distance_dfs_mem(s: str, t: str, mem: list[list[int]], i: int, j: int) -> int:
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    """Edit distance: Memoized search"""
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    # If both s and t are empty, return 0
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    if i == 0 and j == 0:
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        return 0
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    # If s is empty, return the length of t
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    if i == 0:
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        return j
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    # If t is empty, return the length of s
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    if j == 0:
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        return i
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    # If there is a record, return it
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    if mem[i][j] != -1:
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        return mem[i][j]
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    # If the two characters are equal, skip these two characters
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    if s[i - 1] == t[j - 1]:
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        return edit_distance_dfs_mem(s, t, mem, i - 1, j - 1)
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    # The minimum number of edits = the minimum number of edits from three operations (insert, remove, replace) + 1
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    insert = edit_distance_dfs_mem(s, t, mem, i, j - 1)
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    delete = edit_distance_dfs_mem(s, t, mem, i - 1, j)
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    replace = edit_distance_dfs_mem(s, t, mem, i - 1, j - 1)
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    # Record and return the minimum number of edits
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    mem[i][j] = min(insert, delete, replace) + 1
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    return mem[i][j]
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def edit_distance_dp(s: str, t: str) -> int:
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    """Edit distance: Dynamic programming"""
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    n, m = len(s), len(t)
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    dp = [[0] * (m + 1) for _ in range(n + 1)]
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    # State transition: first row and first column
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    for i in range(1, n + 1):
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        dp[i][0] = i
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    for j in range(1, m + 1):
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        dp[0][j] = j
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    # State transition: the rest of the rows and columns
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    for i in range(1, n + 1):
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        for j in range(1, m + 1):
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            if s[i - 1] == t[j - 1]:
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                # If the two characters are equal, skip these two characters
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                dp[i][j] = dp[i - 1][j - 1]
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            else:
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                # The minimum number of edits = the minimum number of edits from three operations (insert, remove, replace) + 1
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                dp[i][j] = min(dp[i][j - 1], dp[i - 1][j], dp[i - 1][j - 1]) + 1
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    return dp[n][m]
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def edit_distance_dp_comp(s: str, t: str) -> int:
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    """Edit distance: Space-optimized dynamic programming"""
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    n, m = len(s), len(t)
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    dp = [0] * (m + 1)
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    # State transition: first row
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    for j in range(1, m + 1):
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        dp[j] = j
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    # State transition: the rest of the rows
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    for i in range(1, n + 1):
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        # State transition: first column
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        leftup = dp[0]  # Temporarily store dp[i-1, j-1]
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        dp[0] += 1
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        # State transition: the rest of the columns
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        for j in range(1, m + 1):
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            temp = dp[j]
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            if s[i - 1] == t[j - 1]:
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                # If the two characters are equal, skip these two characters
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                dp[j] = leftup
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            else:
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                # The minimum number of edits = the minimum number of edits from three operations (insert, remove, replace) + 1
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                dp[j] = min(dp[j - 1], dp[j], leftup) + 1
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            leftup = temp  # Update for the next round of dp[i-1, j-1]
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    return dp[m]
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"""Driver Code"""
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if __name__ == "__main__":
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    s = "bag"
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    t = "pack"
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    n, m = len(s), len(t)
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    # Brute force search
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    res = edit_distance_dfs(s, t, n, m)
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    print(f"To change {s} to {t}, the minimum number of edits required is {res}")
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    # Memoized search
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    mem = [[-1] * (m + 1) for _ in range(n + 1)]
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    res = edit_distance_dfs_mem(s, t, mem, n, m)
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    print(f"To change {s} to {t}, the minimum number of edits required is {res}")
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    # Dynamic programming
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    res = edit_distance_dp(s, t)
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    print(f"To change {s} to {t}, the minimum number of edits required is {res}")
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    # Space-optimized dynamic programming
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    res = edit_distance_dp_comp(s, t)
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    print(f"To change {s} to {t}, the minimum number of edits required is {res}")
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