链接: https://codeforces.com/contest/1234/problem/B2 题意: The only difference between easy and hard versions are constraints on n and k. You are messaging in one of the popular social networks via your smartphone. Your smartphone can show at most k most…

B2. Character Swap (Hard Version) This problem is different from the easy version. In this version Ujan makes at most 2…

This problem is different from the easy version. In this version Ujan makes at most 2n2n swaps. In addition, k≤1000,n≤50k≤1000,n≤50 and it is necessary to print swaps themselves. You can hack this problem if you solve it. But you can hack the previou…

Codeforces Round #590 (Div. 3) Editorial 题目链接 官方题解 不要因为走得太远,就忘记为什么出发! Problem A 题目大意:商店有n件商品,每件商品有不同的价格,找出一个最小的可能值price,使得price * n >= sum,sum指的是原来商品价格的总和. 知识点:模拟 思路:求出sum/n向上取整即可,有两种方法.一是使用ceil()函数,但注意ceil()返回的是向上取整后的浮点数,所以要进行强制类型转换:二是直接向下取整,然后用if语句…

A. Equalize Prices Again 题目链接:https://codeforces.com/contest/1234/problem/A 题意:给你 n 个数 , 你需要改变这些数使得这 n 个数的值相等 , 并且要求改变后所有数的和需大于等于原来的所有数字的和 , 然后输出满足题意且改变后最小的数值 分析: 签到题.记原来 n 个数的和为 sum , 先取这些数的平均值 ave , 然后每次判断 ave * n >= sum 是否成立成立则直接输出 , 不成立将 ave ++ #…

https://codeforces.com/contest/1234/problem/A A. Equalize Prices Again #include<bits/stdc++.h> using namespace std; typedef long long ll; int main(){ int n,a; int t; cin>>t; ll sum = ,ans; while(t--){ cin>>n;sum = ; ;i < n;++i){ cin&g…

原题 https://codeforces.com/contest/1249/problem/B2 这道题一开始给的数组相当于地图的路标,我们只需对每个没走过的点进行dfs即可 #include <bits/stdc++.h> using namespace std;const int maxn=2e5+20;int a[maxn],b[maxn],c[maxn];int dfs(int pos,int step){//传递坐标与步数 if(b[pos]==1){//再次遇到b[pos],返回…

A题 题意:给你 n 个数 , 你需要改变这些数使得这 n 个数的值相等 , 并且要求改变后所有数的和需大于等于原来的所有数字的和 , 然后输出满足题意且改变后最小的数值. AC代码: #include<bits/stdc++.h> using namespace std; #define int long long signed main(){ int _; cin>>_; while(_--){ int n; cin>>n; ]; ; ;i<=n;i++){…

A题 题意:给你 n 个数 , 你需要改变这些数使得这 n 个数的值相等 , 并且要求改变后所有数的和需大于等于原来的所有数字的和 , 然后输出满足题意且改变后最小的数值. AC代码: #include<bits/stdc++.h> using namespace std; #define int long long signed main(){ int _; cin>>_; while(_--){ int n; cin>>n; ]; ; ;i<=n;i++){…

链接: https://codeforces.com/contest/1234/problem/E 题意: Let's define pi(n) as the following permutation: [i,1,2,-,i−1,i+1,-,n]. This means that the i-th permutation is almost identity (i.e. which maps every element to itself) permutation but the elemen…