标签:des style blog http io ar color os sp
Scramble String
Given a string s1, we may represent it as a binary tree by partitioning it to two non-empty substrings recursively.
Below is one possible representation of s1 = "great":
great
/ gr eat
/ \ / g r e at
/ a t
To scramble the string, we may choose any non-leaf node and swap its two children.
For example, if we choose the node "gr" and swap its two children, it produces a scrambled string "rgeat".
rgeat
/ rg eat
/ \ / r g e at
/ a t
We say that "rgeat" is a scrambled string of "great".
Similarly, if we continue to swap the children of nodes "eat" and "at", it produces a scrambled string "rgtae".
rgtae
/ rg tae
/ \ / r g ta e
/ t a
We say that "rgtae" is a scrambled string of "great".
Given two strings s1 and s2 of the same length, determine if s2 is a scrambled string of s1.
递归来做,也就是s1分为s11和s12,s2分为s21和s22。
判断isScramble(s11,s21)&&isScramble(s12,s22)或者isScramble(s12,s21)&&isScramble(s11,s22)
base case是字符串相同
另外在进入递归前需要剪枝,判断两个字符串是否包含相同的字母,O(n)复杂度。参考http://blog.csdn.net/doc_sgl/article/details/12401335
class Solution { public: bool isScramble(string s1, string s2) { //base case if(s1 == s2) return true; //to here, s1 != s2 //check permutation vector<int> Dict(26,0); //a~z for(int i = 0; i < s1.size(); i ++) Dict[s1[i]-‘a‘] ++; for(int i = 0; i < s2.size(); i ++) Dict[s2[i]-‘a‘] --; for(int i = 0; i < Dict.size(); i ++) if(Dict[i] != 0) return false; //to here, s1 and s2 must have same size int size = s1.size(); //recursion for(int i = 1; i < size; i ++) { if((isScramble(s1.substr(0, i), s2.substr(0, i))&&isScramble(s1.substr(i), s2.substr(i))) ||(isScramble(s1.substr(0, i), s2.substr(size-i))&&isScramble(s1.substr(i), s2.substr(0, size-i)))) return true; } return false; } };
标签:des style blog http io ar color os sp
原文地址:http://www.cnblogs.com/ganganloveu/p/4148000.html
