题目链接: C. Primes or Palindromes? time limit per test 3 seconds memory limit per test 256 megabytes input standard input output standard output Rikhail Mubinchik believes that the current definition of prime numbers is obsolete as they are too complex…
time limit per test3 seconds memory limit per test256 megabytes inputstandard input outputstandard output Rikhail Mubinchik believes that the current definition of prime numbers is obsolete as they are too complex and unpredictable. A palindromic num…
题目链接: A. Mashmokh and Numbers time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output It's holiday. Mashmokh and his boss, Bimokh, are playing a game invented by Mashmokh. In this game Mashmokh wri…
题目:Click here 题意:π(n)表示不大于n的素数个数,rub(n)表示不大于n的回文数个数,求最大n,满足π(n) ≤ A·rub(n).A=p/q; 分析:由于这个题A是给定范围的,所以可以先暴力求下最大的n满足上式,可以想象下随着n的增大A也在增大(总体正相关,并不是严格递增的),所以二分查找时不行的,所以对给定的A,n是一定存在的.这个题的关键就是快速得到素数表最好在O(n)的时间以内.(杭电15多校的一个题也用到了这个算法点这里查看) #include <bits/stdc+…
题目链接:http://codeforces.com/problemset/problem/449/C 给你n个数,从1到n.然后从这些数中挑选出不互质的数对最多有多少对. 先是素数筛,显然2的倍数的个数是最多的,所以最后处理.然后处理3,5,7,11...的倍数的数,之前已经挑过的就不能再选了.要是一个素数p的倍数个数是奇数,就把2*p给2 的倍数.这样可以满足p倍数搭配的对数是最优的.最后处理2的倍数就行了. #include <bits/stdc++.h> using namespace…
A. Primes or Palindromes?Time Limit: 20 Sec Memory Limit: 256 MB 题目连接 http://poj.org/problem?id=3261 Description Rikhail Mubinchik believes that the current definition of prime numbers is obsolete as they are too complex and unpredictable. A palindro…
C. Primes or Palindromes? time limit per test 3 seconds memory limit per test 256 megabytes input standard input output standard output Rikhail Mubinchik believes that the current definition of prime numbers is obsolete as they are too complex and un…
传送门:http://codeforces.com/contest/1047/problem/C 题意: 给定n个数,问最少要去掉几个数,使得剩下的数gcd 大于原来n个数的gcd值. 思路: 自己一开始想把每个数的因子都找出来,找到这些因子中出现次数最多且因子大于n个数的最大公约数的,(n - 次数 )就是答案.但是复杂度是1e9,差那么一点. 自己还是对素数筛理解的不够深.这道题可以枚举素数x,对于每个x,找到所有(a[i]/gcd(all)) 是x倍数的个数,就是一个次数.找这个次数的过程…
题目链接:http://codeforces.com/contest/822/problem/D 题解:做这题首先要推倒一下f(x)假设第各个阶段分成d1,d2,d3...di组取任意一组来说,如果第i组有n个人参加分成di组那么所需要的为(n/di)*(di*(di-1)/2)=n*(di-1)/2 显然di还可以再分成两阶段di=a*b那么这样的价值就是(n/a)*(a*(a-1)/2)+((n/a)/b)*(b*(b-1)/2)=n*(a-1)/2+n*(b-1)/2a.其实还可以再分那么…
385C - Bear and Prime Numbers 思路:记录数组中1-1e7中每个数出现的次数,然后用素数筛看哪些能被素数整除,并加到记录该素数的数组中,然后1-1e7求一遍前缀和. 代码: #include<bits/stdc++.h> using namespace std; #define ll long long #define pb push_back #define mem(a,b) memset((a),(b),sizeof(a)) const int INF=0x3f…