Leetcode: Shortest Word Distance II

Leetcode: Shortest Word Distance II

This is a follow up of Shortest Word Distance. The only difference is now you are given the list of words and your method will be called repeatedly many times with different parameters. How would you optimize it?

Design a class which receives a list of words in the constructor, and implements a method that takes two words word1 and word2 and return the shortest distance between these two words in the list.

For example,
Assume that words = ["practice", "makes", "perfect", "coding", "makes"].

Given word1 = “coding”, word2 = “practice”, return 3.
Given word1 = "makes", word2 = "coding", return 1.

Note:
You may assume that word1 does not equal to word2, and word1 and word2 are both in the list.

哈希表法

复杂度

时间 O(N) 空间 O(N)

思路

因为会多次调用,我们不能每次调用的时候再把这两个单词的下标找出来。我们可以用一个哈希表,在传入字符串数组时,使用HashMap来储存word以及word在Array里面出现的index。这样当调用最短距离的方法时,我们只要遍历两个单词的下标列表就行了。具体的比较方法,则类似merge two list,每次比较两个list最小的两个值,得到一个差值。然后把较小的那个给去掉。因为我们遍历输入数组时是从前往后的,所以下标列表也是有序的。

 1 public class WordDistance {
 2     
 3     HashMap<String, ArrayList<Integer>> map;
 4 
 5     public WordDistance(String[] words) {
 6         this.map = new HashMap<String, ArrayList<Integer>>();
 7         for (int i=0; i<words.length; i++) {
 8             String item = words[i];
 9             if (map.containsKey(item)) {
10                 map.get(item).add(i);
11             }
12             else {
13                 ArrayList<Integer> list = new ArrayList<Integer>();
14                 list.add(i);
15                 map.put(item, list);
16             }
17         }
18     }
19 
20     public int shortest(String word1, String word2) {
21         ArrayList<Integer> l1 = map.get(word1);
22         ArrayList<Integer> l2 = map.get(word2);
23         int minDis = Integer.MAX_VALUE;
24         int i=0, j=0;
25         while (i<l1.size() && j<l2.size()) {
26             int p1 = l1.get(i);
27             int p2 = l2.get(j);
28             minDis = Math.min(minDis, Math.abs(p1-p2));
29             if (p1 < p2) i++;
30             else j++;
31         }
32         return minDis;
33     }
34 }
35 
36 // Your WordDistance object will be instantiated and called as such:
37 // WordDistance wordDistance = new WordDistance(words);
38 // wordDistance.shortest("word1", "word2");
39 // wordDistance.shortest("anotherWord1", "anotherWord2");

 

版权声明:本文内容由互联网用户自发贡献,该文观点仅代表作者本人。本站仅提供信息存储空间服务,不拥有所有权,不承担相关法律责任。如发现本站有涉嫌侵权/违法违规的内容, 请发送邮件至 举报,一经查实,本站将立刻删除。

发布者:全栈程序员-用户IM,转载请注明出处:https://javaforall.cn/109200.html原文链接:https://javaforall.cn

【正版授权,激活自己账号】: Jetbrains全家桶Ide使用,1年售后保障,每天仅需1毛

【官方授权 正版激活】: 官方授权 正版激活 支持Jetbrains家族下所有IDE 使用个人JB账号...

(0)


相关推荐

发表回复

您的电子邮箱地址不会被公开。

关注全栈程序员社区公众号