算法训练营Day56（动态规划16）

583. 两个字符串的删除操作 力扣（LeetCode）官网 - 全球极客挚爱的技术成长平台

提醒

本题和动态规划：115.不同的子序列 相比，其实就是两个字符串都可以删除了，情况虽说复杂一些，但整体思路是不变的

class Solution:
    def minDistance(self, word1: str, word2: str) -> int:
        dp = [[0] * (len(word2)+1) for _ in range(len(word1)+1)]
        for i in range(len(word1)+1):
            dp[i][0] = i
        for j in range(len(word2)+1):
            dp[0][j] = j
        for i in range(1, len(word1)+1):
            for j in range(1, len(word2)+1):
                if word1[i-1] == word2[j-1]:
                    dp[i][j] = dp[i-1][j-1]
                else:
                    dp[i][j] = min(dp[i-1][j-1] + 2, dp[i-1][j] + 1, dp[i][j-1] + 1)
        return dp[-1][-1]

72. 编辑距离 力扣（LeetCode）官网 - 全球极客挚爱的技术成长平台

提醒

最终迎来了编辑距离这道题目，之前安排题目都是为了 编辑距离做铺垫

class Solution:
    def minDistance(self, word1: str, word2: str) -> int:
        dp = [[0] * (len(word2)+1) for _ in range(len(word1)+1)]
        for i in range(len(word1)+1):
            dp[i][0] = i
        for j in range(len(word2)+1):
            dp[0][j] = j
        for i in range(1, len(word1)+1):
            for j in range(1, len(word2)+1):
                if word1[i-1] == word2[j-1]:
                    dp[i][j] = dp[i-1][j-1]
                else:
                    dp[i][j] = min(dp[i-1][j-1], dp[i-1][j], dp[i][j-1]) + 1
        return dp[-1][-1]

编辑距离总结篇 代码随想录

一刷没时间，二刷再来