AtCoDeer and Election Report
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问题 F: AtCoDeer and Election Report
时间限制: 1 Sec 内存限制: 128 MB提交: 200 解决: 52
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题目描述
AtCoDeer the deer is seeing a quick report of election results on TV. Two candidates are standing for the election: Takahashi and Aoki. The report shows the ratio of the current numbers of votes the two candidates have obtained, but not the actual numbers of votes. AtCoDeer has checked the report N times, and when he checked it for the i-th (1≤i≤N) time, the ratio was Ti:Ai. It is known that each candidate had at least one vote when he checked the report for the first time.
Find the minimum possible total number of votes obtained by the two candidates when he checked the report for the N-th time. It can be assumed that the number of votes obtained by each candidate never decreases.
Constraints
1≤N≤1000
1≤Ti,Ai≤1000(1≤i≤N)
Ti and Ai (1≤i≤N) are coprime.
It is guaranteed that the correct answer is at most 1018.
Find the minimum possible total number of votes obtained by the two candidates when he checked the report for the N-th time. It can be assumed that the number of votes obtained by each candidate never decreases.
Constraints
1≤N≤1000
1≤Ti,Ai≤1000(1≤i≤N)
Ti and Ai (1≤i≤N) are coprime.
It is guaranteed that the correct answer is at most 1018.
输入
The input is given from Standard Input in the following format:
N
T1 A1
T2 A2
:
TN AN
N
T1 A1
T2 A2
:
TN AN
输出
Print the minimum possible total number of votes obtained by Takahashi and Aoki when AtCoDeer checked the report for the N-th time.
样例输入
3
2 3
1 1
3 2
样例输出
10
提示
When the numbers of votes obtained by the two candidates change as 2,3→3,3→6,4, the total number of votes at the end is 10, which is the minimum possible number.
#include <iostream> #include <cstdio> #include <cstring> #include <cmath> #include <algorithm> using namespace std; int main() { long long int n; scanf("%lld",&n); long long int a,b; long long int x,y; a = 1,b = 1; for(int i=0;i<n;i++) { scanf("%lld %lld",&x,&y); long long int t,t1,t2; t1 = 1; t2 = 1; t = 1; if(x>=a) { ; } else { t1 = a/x; if(a%x!=0) t1++; //t1 = ceil(a*1.0/x); } if(y>=b) { ; } else { t2 = b/y; if(b%y!=0) t2++; // t2 = ceil(b*1.0/y); } t = max(t1,t2); a = x*t; b = y*t; } long long int ans = a+b; printf("%lld",ans); }
//要让a,b其中一个加上某个数成为x,y的t倍 需要求的只有这个t
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