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LeetCode: 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.
地址:https://oj.leetcode.com/problems/scramble-string/
算法:如果字串S1[0~i]和S2[0~i]以及S1[i+1~n]和S2[i+1~n]都满足scrambled条件,那么S1和S2也满足;如果字串S1[0~i]和S2[n-i~n]以及S1[i+1~n]和S2[0~n-i-1]满足scrambled条件,那么S1和S2也满足,其中i=1...n。注意,我们在递归调用之前,用函数isReasonString先判断一下是否有可能满足scrambled条件,这样可以减少递归的次数。代码:
1 class Solution {
2 public:
3 bool isScramble(string s1, string s2) {
4 if(s1 == s2){
5 return true;
6 }
7 if(s1.size() == 1){
8 return false;
9 }
10 int len = s1.size();
11 for(int i = 1; i < len; ++i){
12 string s11 = s1.substr(0,i);
13 string s21 = s2.substr(0,i);
14 string s12 = s1.substr(i,len-i);
15 string s22 = s2.substr(i,len-i);
16 if(isReasonString(s11,s21) && isReasonString(s12,s22) && isScramble(s11,s21) && isScramble(s12,s22)){
17 return true;
18 }
19 s21 = s2.substr(len-i,i);
20 s22 = s2.substr(0,len-i);
21 if(isReasonString(s11,s21) && isReasonString(s12,s22) && isScramble(s11,s21) && isScramble(s12,s22)){
22 return true;
23 }
24 }
25 return false;
26 }
27 bool isReasonString(string s1, string s2){
28 sort(s1.begin(),s1.end());
29 sort(s2.begin(),s2.end());
30 return s1 == s2;
31 }
32 };
标签:des style blog http color os io strong ar
原文地址:http://www.cnblogs.com/boostable/p/leetcode_scramble_string.html