题目
Given a string s and a string t, check if s is subsequence of t.
You may assume that there is only lower case English letters in both s and t. t is potentially a very long (length ~= 500,000) string, and s is a short string (<=100).
A subsequence of a string is a new string which is formed from the original string by deleting some (can be none) of the characters without disturbing the relative positions of the remaining characters. (ie, "ace" is a subsequence of "abcde" while "aec" is not).
Example 1:
s = "abc", t = "ahbgdc"
Return true.
Example 2:
s = "axc", t = "ahbgdc"
Return false.
Follow up:
If there are lots of incoming S, say S1, S2, … , Sk where k >= 1B, and you want to check one by one to see if T has its subsequence. In this scenario, how would you change your code?
题意
关键概念:一个字符串的子序列是指,从最初的字符串中删除一些字符生成一个新的字符串,并且不改变剩下字符的相对顺序。
分析及解答
说明:
需要思考
1.为何这个问题适合使用贪心策略?
2.如何将子问题与原问题 通过贪心策略联系起来?
分析:
- 【主要变量】问题中涉及的两个主要变量,一个源串,一个是目标串。
- 【变量有序性】源串以及目标串都具有有序性,即我不能利用排序带来的优化。
- 【问题分解+无后效性】分解的子问题之间应该具有一定的独立性(无后效性),两个指针标识的位置意味着将问题分解成了新的源串和目标串,后面的子问题中不需要考虑之前的子问题的内容,即后面的子问题不需看到之前的问题。
public boolean isSubsequence(String s, String t) {
int i,j;
for(i=0,j=0;i < s.length() && j < t.length();){
if(s.charAt(i) == t.charAt(j)){
i++;
j++;
}else{
j++;
}
}
if(i == s.length()){
return true;
}
return false;
}