LCM Cardinality Input: Standard Input Output: Standard Output Time Limit: 2 Seconds A pair of numbers has a unique LCM but a single number can be the LCM of more than one possible pairs. For example 12 is the LCM of (1, 12), (2, 12), (3,4) etc. For a…

A pair of numbers has a unique LCM but a single number can be the LCM of more than one possiblepairs. For example 12 is the LCM of (1, 12), (2, 12), (3,4) etc. For a given positive integer N, thenumber of different integer pairs with LCM is equal to N…

Problem F LCM Cardinality Input: Standard Input Output: Standard Output Time Limit: 2 Seconds A pair of numbers has a unique LCM but a single number can be the LCM of more than one possible pairs. For example 12 is the LCM of (1, 12), (2, 12), (3,4)…

题意:给出数n,求有多少组A,B的最小公约数为n; 思路:3000ms,直接暴力寻找,找到所有能把n整除的数 pi, 枚举所有pi 代码: #include <iostream> #include <cstdio> #include <vector> #define ll long long using namespace std; ll gcd(ll a,ll b) { ) return a; else return gcd(b,a%b); } int main()…

题目链接 写写,就ok了. #include <cstdio> #include <cstring> #include <string> #include <cmath> #include <ctime> #include <cstdlib> #include <iostream> using namespace std; #define MOD 1000000 #define LL long long ]; ]; int…

LCM Cardinality Time Limit:3000MS     Memory Limit:0KB     64bit IO Format:%lld & %llu Submit Status Description   Problem FLCM CardinalityInput: Standard Input Output: Standard Output Time Limit: 2 Seconds A pair of numbers has a unique LCM but a si…

UVA.129 Krypton Factor (搜索+暴力) 题意分析 搜索的策略是:优先找长串,若长串不合法,则回溯,继续找到合法串,直到找到所求合法串的编号,输出即可. 注意的地方就是合法串的判断,根据后缀的规则来判断,枚举后缀长度[1,len/2],后缀中是否有重复子串,若是的话表明不是合法串. 还有一个注意的地方,每次递归调用时,序号就要+1,无论是回溯回来的递归,还是深度搜索的递归,因为没找到一组可行解,编号就要加一.原因是此题不是用递归深度来判断输出的. 代码总览 #include…

UVA.10986 Fractions Again (经典暴力) 题意分析 同样只枚举1个,根据条件算出另外一个. 代码总览 #include <iostream> #include <iostream> #include <cstdio> #include <algorithm> #include <cstring> #include <sstream> #include <set> #include <map&g…

题目传送门 /* 数论/暴力:找出第一次到a1,a2的次数,再找到完整周期p1,p2,然后以2*m为范围 t1,t2为各自起点开始“赛跑”,谁落后谁加一个周期,等到t1 == t2结束 详细解释:http://blog.csdn.net/u014357885/article/details/46044287 */ #include <cstdio> #include <algorithm> #include <cstring> #include <iostream…

我一直相信这道题有十分巧妙的解法的,去搜了好多题解发现有的太过玄妙不能领会. 最简单的就是枚举n的所有约数,然后二重循环找lcm(a, b) = n的个数 #include <cstdio> #include <vector> #include <algorithm> using namespace std; ? a : gcd(b, a % b); } int lcm(int a, int b) { return a / gcd(a, b) * b; } int ma…