UVA - 12001 UVa Panel Discussion
2015-07-12 18:50
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Description
The UVa online judge team is arranging a panel discussion for the next ACM-ICPC World Finals event in Orlando, Florida. They want that three or four of the contestants take part in the panel and as they have about 300 persons for selecting such a little
group, they have decided to put some restrictions in order to reduce the number of possibilities.
After thinking about several options, they finally propose that in case the number of contestants to choice be 3, all of them must be of the same country or from three different countries; and in case the number be 4, at least three of them will be of the
same country or must be from at least three different countries.
Could you help them to calculate the number of different selections they can make following the restrictions above.
The first contains two integers N and
M separated by one space. N (
3
N
300)
is the number of contestants and M (
1
M
50)
the total number of different countries. The second line consists of
N integers between 1 and M, separated by a space, representing the country each contestant is from (It is not necessary that contestants will be from
M countries).
Last line of the input will contain two zeroes and it won't be processed.
The first integer being be the number of ways to select a group of three people, and the second the number of ways to do it of four people.
题意:n个队伍,来自m个国家,如今给出3个队伍的可能是:三个都来自一个国家。或者三个都来自不同的国家;4个队伍的可能是:至少有三个来自不同的国家。至少有三个同样的国家
思路:计数问题。首先是3个队伍的情况是比較好计算的。都来自一个国家或者都不一样。都来自一个国家的时候注意去重,4个队伍的情况就分4个都不一样。2个是一样的,3个是一样的。相同要去重
UVa Panel Discussion |
group, they have decided to put some restrictions in order to reduce the number of possibilities.
After thinking about several options, they finally propose that in case the number of contestants to choice be 3, all of them must be of the same country or from three different countries; and in case the number be 4, at least three of them will be of the
same country or must be from at least three different countries.
Could you help them to calculate the number of different selections they can make following the restrictions above.
Input
The input file contains several test cases; each of them consists of two lines.The first contains two integers N and
M separated by one space. N (
3
N
300)
is the number of contestants and M (
1
M
50)
the total number of different countries. The second line consists of
N integers between 1 and M, separated by a space, representing the country each contestant is from (It is not necessary that contestants will be from
M countries).
Last line of the input will contain two zeroes and it won't be processed.
Output
For each input case write, in a line by itself, two integers separated by a space.The first integer being be the number of ways to select a group of three people, and the second the number of ways to do it of four people.
Sample Input
3 5 5 4 2 5 3 3 1 3 2 2 10 10 1 8 9 1 6 7 3 4 10 4 0 0
Sample Output
1 0 4 4 104 209
题意:n个队伍,来自m个国家,如今给出3个队伍的可能是:三个都来自一个国家。或者三个都来自不同的国家;4个队伍的可能是:至少有三个来自不同的国家。至少有三个同样的国家
思路:计数问题。首先是3个队伍的情况是比較好计算的。都来自一个国家或者都不一样。都来自一个国家的时候注意去重,4个队伍的情况就分4个都不一样。2个是一样的,3个是一样的。相同要去重
#include <iostream> #include <cstdio> #include <cstring> #include <algorithm> typedef long long ll; using namespace std; const int maxn = 100; int n, m, num[maxn]; int main() { while (scanf("%d%d", &n, &m) != EOF && n+m) { memset(num, 0, sizeof(num)); int a; for (int i = 0; i < n; i++) { scanf("%d", &a); num[--a]++; } ll ans3 = 0; for (int i = 0; i < m; i++) { if (num[i] >= 3) ans3 += num[i] * (num[i]-1) * (num[i]-2) / 6; for (int j = i+1; j < m; j++) for (int k = j+1; k < m; k++) ans3 += num[i] * num[j] * num[k]; } ll sum = 0, ans4 = 0; for (int i = 0; i < m; i++) sum += num[i]; for (int i = 0; i < m; i++) if (num[i] >= 3) { ll tmp = num[i] * (num[i]-1) * (num[i]-2) / 6; ans4 += tmp * (sum - num[i]); ans4 += tmp * (num[i] - 3) / 4; } for (int i = 0; i < m; i++) for (int j = i+1; j < m; j++) for (int k = j+1; k < m; k++) { ans4 += num[i] * (num[i]-1) / 2 * num[j] * num[k]; ans4 += num[i] * num[j] * (num[j]-1) / 2 * num[k]; ans4 += num[i] * num[j] * num[k] * (num[k]-1) / 2; } for (int i = 0; i < m; i++) for (int j = i+1; j < m; j++) for (int k = j+1; k < m; k++) for (int l = k+1; l < m; l++) ans4 += num[i] * num[j] * num[k] * num[l]; printf("%lld %lld\n", ans3, ans4); } return 0; }
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