Codeforces Round #539 (Div. 1) E - Sasha and a Very Easy Test 线段树

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Codeforces Round #539 (Div. 1) E - Sasha and a Very Easy Test 线段树

如果mod是质数就好做了,但是做除法的时候对于合数mod可能没有逆元.所以就只有存一下mod的每个质因数(最多9个)的幂,和剩下一坨与mod互质的一部分.然后就能做了.有点恶心. CODE #include <bits/stdc++.h> using namespace std; typedef long long LL; const int MAXN = 100005; const int MAXP = 9; int n, q, a[MAXN], p[MAXP], cnt, mod, phi…

Codeforces Round #373 (Div. 2) E. Sasha and Array 矩阵快速幂+线段树

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Codeforces Round #539 (Div. 2) - C. Sasha and a Bit of Relax（思维题）

Problem Codeforces Round #539 (Div. 2) - C. Sasha and a Bit of Relax Time Limit: 2000 mSec Problem Description Input The first line contains one integer n (2≤n≤3⋅10^5) — the size of the array. The second line contains n integers a1,a2,…,an (0≤ai<2^…

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转载自:https://blog.csdn.net/Charles_Zaqdt/article/details/87522917 题目链接:https://codeforces.com/contest/1113/problem/C 题意是给了n个数字,让找出一个长度为偶数的区间[l, r],使得al ^ al+1 ^ .... ^ amid = amid + 1 ^ ... ^ ar这个等式成立(l到mid的异或和等于mid+1到r的异或和),求出有多少个满足要求的区间. …

Codeforces Round #539 (Div. 2) C Sasha and a Bit of Relax

题中意思显而易见,即求满足al⊕al+1⊕…⊕amid=amid+1⊕amid+2⊕…⊕ar且l到r的区间长为偶数的这样的数对(l,r)的个数. 若al⊕al+1⊕…⊕amid=amid+1⊕amid+2⊕…⊕ar,我们可以推出al⊕al+1⊕…⊕amiamid+1⊕amid+2⊕…⊕ar=0:反推也是可以成立的. 我们已知任何数0对异或都等于本身.所以当前数异或一段数之后等于本身,那么异或之后的这段数肯定是异或为0的,我们只需要知道这一段是不是长度为偶数即可. 我们从头异或一道,若异或到某个数…