HDU 6106 Classes【简单思维】
2017-08-10 22:58
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题目来戳呀
Now the school wants to count the number of students who enrolled in at least one course in each class and records the maximum number of students.
Each class uploaded 7 data, the number of students enrolled in course A in the class, the number of students enrolled in course B, the number of students enrolled in course C, the number of students enrolled in course AB, the number of students enrolled in course BC, the number of students enrolled in course AC, the number of students enrolled in course ABC. The school can calculate the number of students in this class based on these 7 data.
However, due to statistical errors, some data are wrong and these data should be ignored.
Smart you must know how to write a program to find the maximum number of students.
Each case begins with one line with one integer N, indicates the number of class.
Then N lines follow, each line contains 7 data: a, b, c, d, e, f, g, indicates the number of students enrolled in A, B, C, AB, BC, AC, ABC in this class.
It’s guaranteed that at least one data is right in each test case.
Limits
T≤100
1≤N≤100
0≤a,b,c,d,e,f,g≤100
2
4 5 4 4 3 2 2
5 3 1 2 0 0 0
2
0 4 10 2 3 4 9
6 12 6 3 5 3 2
15
Because we can’t find a solution which satisfies the limitation.
As for Class 2, we can calculate the number of students who only enrolled in course A is 2,
the number of students who only enrolled in course B is 6, and nobody enrolled in course C,
the number of students who only enrolled in courses A and B is 1,
the number of students who only enrolled in courses B and C is 3,
the number of students who only enrolled in courses A and C is 1,
the number of students who enrolled in all courses is 2,
so the total number in Class 2
4000
is 2 + 6 + 0 + 1 + 3 + 1 + 2 = 15.
A中包含只参加A的,同时参加AB的,AC的,ABC的
同理AB中包含 同时参加AB的 ABC的
我们发现 只有ABC就是ABC本身
所以ABC的值为突破口,逆推回去,就能依次找到每种课程的人数了。
唯一的思考点就在理解为什么说有的数据可能不对的情况了+_+
ps:刚开始以为前后数据意义一样+_+
Problem Description
The school set up three elective courses, assuming that these courses are A, B, C. N classes of students enrolled in these courses.Now the school wants to count the number of students who enrolled in at least one course in each class and records the maximum number of students.
Each class uploaded 7 data, the number of students enrolled in course A in the class, the number of students enrolled in course B, the number of students enrolled in course C, the number of students enrolled in course AB, the number of students enrolled in course BC, the number of students enrolled in course AC, the number of students enrolled in course ABC. The school can calculate the number of students in this class based on these 7 data.
However, due to statistical errors, some data are wrong and these data should be ignored.
Smart you must know how to write a program to find the maximum number of students.
Input
The first line of the input gives the number of test cases T; T test cases follow.Each case begins with one line with one integer N, indicates the number of class.
Then N lines follow, each line contains 7 data: a, b, c, d, e, f, g, indicates the number of students enrolled in A, B, C, AB, BC, AC, ABC in this class.
It’s guaranteed that at least one data is right in each test case.
Limits
T≤100
1≤N≤100
0≤a,b,c,d,e,f,g≤100
Output
For each test case output one line contains one integer denotes the max number of students who enrolled in at least one course among N classes.Sample Input
22
4 5 4 4 3 2 2
5 3 1 2 0 0 0
2
0 4 10 2 3 4 9
6 12 6 3 5 3 2
Sample Output
715
Hint
In the second test case, the data uploaded by Class 1 is wrong.Because we can’t find a solution which satisfies the limitation.
As for Class 2, we can calculate the number of students who only enrolled in course A is 2,
the number of students who only enrolled in course B is 6, and nobody enrolled in course C,
the number of students who only enrolled in courses A and B is 1,
the number of students who only enrolled in courses B and C is 3,
the number of students who only enrolled in courses A and C is 1,
the number of students who enrolled in all courses is 2,
so the total number in Class 2
4000
is 2 + 6 + 0 + 1 + 3 + 1 + 2 = 15.
Source
2017 Multi-University Training Contest - Team 6题意:
给你n个班级,A,B,C三门课,每个班级下给你7个数据,分别表示上A,B,C,AB,BC,AC,ABC 7种课程的人数。求出这些班级中上的课程门数≥1的人数中最多的。但是给的7个数据不完全正确。想法:
由给出的样例解释,我们易发现 题目给出的7个数据中A中包含只参加A的,同时参加AB的,AC的,ABC的
同理AB中包含 同时参加AB的 ABC的
我们发现 只有ABC就是ABC本身
所以ABC的值为突破口,逆推回去,就能依次找到每种课程的人数了。
唯一的思考点就在理解为什么说有的数据可能不对的情况了+_+
#include<bits/stdc++.h> using namespace std; int main() { int t,n,k,ans[110],a[110]; scanf("%d",&t); while(t--) { scanf("%d",&n); memset(ans,0,sizeof ans); for( k=1; k<=n; ++k) { memset(a,0,sizeof a); for(int i=1; i<=7; ++i) scanf("%d",&a[i]); a[6]=a[6]-a[7]; a[5]=a[5]-a[7]; a[4]=a[4]-a[7]; a[3]=a[3]-a[5]-a[6]-a[7]; a[2]=a[2]-a[4]-a[5]-a[7]; a[1]=a[1]-a[4]-a[6]-a[7]; for(int i=1; i<=7; ++i) { if(a[i]<0) { ans[k]=0;///注意这里不符合时要清零 否则会计算到下面的ans中 break; } else ans[k]+=a[i]; } } sort(ans+1,ans+n+1); printf("%d\n",ans ); } return 0; }
ps:刚开始以为前后数据意义一样+_+
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