• Codeforces Round #598 (Div. 3) F. Equalizing Two Strings 构造


    F. Equalizing Two Strings

    You are given two strings s and t both of length n and both consisting of lowercase Latin letters.

    In one move, you can choose any length len from 1 to n and perform the following operation:

    Choose any contiguous substring of the string s of length len and reverse it;
    at the same time choose any contiguous substring of the string t of length len and reverse it as well.
    Note that during one move you reverse exactly one substring of the string s and exactly one substring of the string t.

    Also note that borders of substrings you reverse in s and in t can be different, the only restriction is that you reverse the substrings of equal length. For example, if len=3 and n=5, you can reverse s[1…3] and t[3…5], s[2…4] and t[2…4], but not s[1…3] and t[1…2].

    Your task is to say if it is possible to make strings s and t equal after some (possibly, empty) sequence of moves.

    You have to answer q independent test cases.

    Input

    The first line of the input contains one integer q (1≤q≤104) — the number of test cases. Then q test cases follow.

    The first line of the test case contains one integer n (1≤n≤2⋅105) — the length of s and t.

    The second line of the test case contains one string s consisting of n lowercase Latin letters.

    The third line of the test case contains one string t consisting of n lowercase Latin letters.

    It is guaranteed that the sum of n over all test cases does not exceed 2⋅105 (∑n≤2⋅105).

    Output

    For each test case, print the answer on it — "YES" (without quotes) if it is possible to make strings s and t equal after some (possibly, empty) sequence of moves and "NO" otherwise.

    Example

    input
    4
    4
    abcd
    abdc
    5
    ababa
    baaba
    4
    asdf
    asdg
    4
    abcd
    badc
    output
    NO
    YES
    NO
    YES

    题意

    现在给你两个字符串,你可以进行若干次操作。

    每次操作需要在每个字符串都选择出长度为len的一个区间,然后将这个区间的字符都进行翻转。

    问你进行若干次操作后,这俩字符串能变成一样的吗?

    题解

    按照这个顺序进行判断:

    1. 如果两个字符串存在不同的字符,那么肯定是NO
    2. 如果某个字符串存在两个相同的字符,那么一定是YES,因为可以就在这两个字符中进行无限次的翻转
    3. 如果两个字符串的逆的奇偶性相同,那么一定是YES

    第三个怎么理解呢?在判断1和2之后,我们得到的一定是一个排列,问题就变成你可以翻转若干次,两个排列能否相同。

    我们考虑我们同时翻转相同长度的,我们排列的逆一定会发生奇偶性的变化,那么如果一开始奇偶性就不同,那么不管怎么翻转,都不会相同。

    代码

    #include<bits/stdc++.h>
    using namespace std;
    
    int n;
    string s1,s2,S1,S2;
    int Count(string s){
    	int num=0;
    	for(int i=0;i<s.size();i++){
    		for(int j=0;j<i;j++){
    			if(s[j]>s[i])
    				num++;
    		}
    	}
    	return num;
    }
    void solve(){
    	cin>>n>>S1>>S2;
    	s1=S1;s2=S2;
    	sort(s1.begin(),s1.end());
    	sort(s2.begin(),s2.end());
    	for(int i=0;i<n;i++){
    		if(s1[i]!=s2[i]){
    			puts("NO");
    			return;
    		}
    	}
    	for(int i=1;i<n;i++){
    		if(s1[i]==s1[i-1]){
    			puts("YES");
    			return;
    		}
    		if(s2[i]==s2[i-1]){
    			puts("YES");
    			return;
    		}
    	}
    
    	if(Count(S1)%2==Count(S2)%2){
    		puts("YES");
    	}else{
    		puts("NO");
    	}
    	return;
    }
    int main(){
    	int t;
    	scanf("%d",&t);
    	while(t--)solve();
    }
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  • 原文地址:https://www.cnblogs.com/qscqesze/p/11799050.html
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