维护一个窗口,每次关注窗口中的字符串,在每次判断中,左窗口和右窗口选择其一向前移动。维护一个HashSet, 正常情况下移动右窗口,如果没有出现重复则继续移动右窗口,如果发现重复字符,则说明当前窗口中的串已经不满足要求,继续移动有窗口不可能得到更好的结果,此时移动左窗口,直到不再有重复字符为止,中间跳过的这些串中不会有更好的结果,因为他们不是重复就是更短。因为左窗口和右窗口都只向前,所以两个窗口都对每个元素访问不超过一遍,因此时间复杂度为O(2*n)=O(n),是线性算法。空间复杂度为HashSet的size,也是O(n). 代码如下:
package edu.bupt.cici.leetcode;
import java.util.ArrayList;
import java.util.HashMap;
import java.util.HashSet;
import java.util.Iterator;
public class LongestSubstringWithoutRepeatingCharacters {
public int lengthOfLongestSubstring(String s) {
if (s == null && s.length() == 0)
return 0;
HashSet<Character> set = new HashSet<Character>();
int max = 0;
int walker = 0;
int runner = 0;
while (runner < s.length()) {
if (set.contains(s.charAt(runner))) {
if (max < runner - walker) {
max = runner - walker;
}
while (s.charAt(walker) != s.charAt(runner)) {
set.remove(s.charAt(walker));
walker++;
}
walker++;
} else {
set.add(s.charAt(runner));
}
runner++;
}
max = Math.max(max, runner - walker);
return max;
}
public static void main(String[] args) {
// TODO Auto-generated method stub
LongestSubstringWithoutRepeatingCharacters sol = new LongestSubstringWithoutRepeatingCharacters();
String s = "abcaaaaabcd";
System.out.println(sol.lengthOfLongestSubstring(s));
}
}
LongestSubstringWithoutRepeatingCharacters - leetcode java
时间: 2024-10-13 12:34:06