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  • [LeetCode] 72. Edit Distance 编辑距离

    Given two words word1 and word2, find the minimum number of operations required to convert word1 to word2.

    You have the following 3 operations permitted on a word:

    1. Insert a character
    2. Delete a character
    3. Replace a character

    Example 1:

    Input: word1 = "horse", word2 = "ros"
    Output: 3
    Explanation: 
    horse -> rorse (replace 'h' with 'r')
    rorse -> rose (remove 'r')
    rose -> ros (remove 'e')
    

    Example 2:

    Input: word1 = "intention", word2 = "execution"
    Output: 5
    Explanation: 
    intention -> inention (remove 't')
    inention -> enention (replace 'i' with 'e')
    enention -> exention (replace 'n' with 'x')
    exention -> exection (replace 'n' with 'c')
    exection -> execution (insert 'u')

    给2个单词,求从一个单词变成另一个单词需要的步骤,有三种变换方式,插入,删除和替换。

    解法:dp, dp[i][j]表示从word1的前i个字符转换到word2的前j个字符所需要的步骤。

    Python:  Time: O(n * m)  Space: O(n + m)

    class Solution:
        # @return an integer
        def minDistance(self, word1, word2):
            if len(word1) < len(word2):
                return self.minDistance(word2, word1)
            
            distance = [i for i in xrange(len(word2) + 1)]
            
            for i in xrange(1, len(word1) + 1):
                pre_distance_i_j = distance[0]
                distance[0] = i
                for j in xrange(1, len(word2) + 1):
                    insert = distance[j - 1] + 1
                    delete = distance[j] + 1
                    replace = pre_distance_i_j
                    if word1[i - 1] != word2[j - 1]:
                        replace += 1
                    pre_distance_i_j = distance[j]
                    distance[j] = min(insert, delete, replace)
    
            return distance[-1]
    

    Python:  Time: O(n * m)  Space: O(n * m)

    class Solution:
        # @return an integer
        def minDistance(self, word1, word2):        
            distance = [[i] for i in xrange(len(word1) + 1)]
            distance[0] = [j for j in xrange(len(word2) + 1)]
            
            for i in xrange(1, len(word1) + 1):
                for j in xrange(1, len(word2) + 1):
                    insert = distance[i][j - 1] + 1
                    delete = distance[i - 1][j] + 1
                    replace = distance[i - 1][j - 1]
                    if word1[i - 1] != word2[j - 1]:
                        replace += 1
                    distance[i].append(min(insert, delete, replace))
                    
            return distance[-1][-1]
    

    C++:

    class Solution {
    public:
        int minDistance(string word1, string word2) {
            int n1 = word1.size(), n2 = word2.size();
            int dp[n1 + 1][n2 + 1];
            for (int i = 0; i <= n1; ++i) dp[i][0] = i;
            for (int i = 0; i <= n2; ++i) dp[0][i] = i;
            for (int i = 1; i <= n1; ++i) {
                for (int j = 1; j <= n2; ++j) {
                    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], min(dp[i - 1][j], dp[i][j - 1])) + 1;
                    }
                }
            }
            return dp[n1][n2];
        }
    };
    

     

    类似题目:

    [LeetCode] 161. One Edit Distance 一个编辑距离

    All LeetCode Questions List 题目汇总

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  • 原文地址:https://www.cnblogs.com/lightwindy/p/8606870.html
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