[LeetCode] 1593. Split a String Into the Max Number of Unique Substrings
作者:互联网
Given a string s
, return the maximum number of unique substrings that the given string can be split into.
You can split string s
into any list of non-empty substrings, where the concatenation of the substrings forms the original string. However, you must split the substrings such that all of them are unique.
A substring is a contiguous sequence of characters within a string.
Example 1:
Input: s = "ababccc" Output: 5 Explanation: One way to split maximally is ['a', 'b', 'ab', 'c', 'cc']. Splitting like ['a', 'b', 'a', 'b', 'c', 'cc'] is not valid as you have 'a' and 'b' multiple times.
Example 2:
Input: s = "aba" Output: 2 Explanation: One way to split maximally is ['a', 'ba'].
Example 3:
Input: s = "aa" Output: 1 Explanation: It is impossible to split the string any further.
Constraints:
-
1 <= s.length <= 16
-
s
contains only lower case English letters.
拆分字符串使唯一子字符串的数目最大。
给你一个字符串 s ,请你拆分该字符串,并返回拆分后唯一子字符串的最大数目。
字符串 s 拆分后可以得到若干 非空子字符串 ,这些子字符串连接后应当能够还原为原字符串。但是拆分出来的每个子字符串都必须是 唯一的 。
注意:子字符串 是字符串中的一个连续字符序列。
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/split-a-string-into-the-max-number-of-unique-substrings
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思路是backtracking。我们需要一个hashset来判断是否存在重复的子串,回溯函数的base case是指针遍历到 input 字符串尾部,就结算 hashset 里面子串的个数。回溯函数往下遍历的过程中,index 指针是当前子串的起点,i 指针找的是当前子串的终点,当新生成的子串不存在于hashset的时候,我们就把他加入hashset并以当前子串的终点 i 作为下个子串的起点进行下一步递归调用。
时间O(16!) - 因为input字符串最长只有16个字母
空间O(n)
Java实现
1 class Solution { 2 int res = 0; 3 4 public int maxUniqueSplit(String s) { 5 HashSet<String> set = new HashSet<>(); 6 helper(s, 0, set); 7 return res; 8 } 9 10 private void helper(String s, int index, HashSet<String> set) { 11 // base case 12 if (index == s.length()) { 13 res = Math.max(res, set.size()); 14 } 15 for (int i = index + 1; i <= s.length(); i++) { 16 String str = s.substring(index, i); 17 if (!set.contains(str)) { 18 set.add(str); 19 helper(s, i, set); 20 set.remove(str); 21 } 22 } 23 } 24 }
标签:子串,String,Max,Into,substrings,split,拆分,字符串,string 来源: https://www.cnblogs.com/cnoodle/p/14244326.html