codeforces 122C perfect team
You may have already known that a standard ICPC team consists of exactly three members. The perfect team however has more restrictions. A student can have some specialization: coder or mathematician.?She/he can have no specialization,but can‘t have both at the same time. So the team is considered perfect if it includes at least one coder,at least one mathematician and it consists of exactly three members. You are a coach at a very large university and you know that?cc?of your students are coders,?mm?are mathematicians and?xx?have no specialization. What is the maximum number of full perfect teams you can distribute them into? Note that some students can be left without a team and each student can be a part of no more than one team. You are also asked to answer?qq?independent queries. Input The first line contains a single integer?qq?(1≤q≤1041≤q≤104) — the number of queries. Each of the next?qq?lines contains three integers?cc,?mm?and?xx?(0≤c,m,x≤1080≤c,m,x≤108) — the number of coders,mathematicians and students without any specialization in the university,respectively. Note that the no student is both coder and mathematician at the same time. Output Print?qq?integers — the?ii-th of them should be the answer to the?ii?query in the order they are given in the input. The answer is the maximum number of full perfect teams you can distribute your students into. Example
Input
6 1 1 1 3 6 0 0 0 0 0 1 1 10 1 10 4 4 1
Output
1 3 0 0 1 3 Note In the first example here are how teams are formed:
题接:题目描述的意思就是 x个a y个b,z个c ,在a和b中至少选择一个,最终凑成3个数,c有选不选都可以,问,,最多能有多少种选择? FS: 马虎,,,下次做这种多中过程的题目时,可以把每个过程的做法以及思路写下来。 思路: 因为z可有可无,所以我们首先要考虑z,如果z比x或者y任何一个数大的话,那就直接输出x和y的最小值。否则优先使用z即答案ans+=z,然后x和y的个数都减去个z,在考虑x和y较大的那个,求差y1,如果y>x和y最小值; 那么输出abs+=x和y的最小值,否则 用掉y? 这时x=y=x-y1,,答案为ans+=(x+x)/3‘ #include<bits/stdc++.h> using namespace std; int main(){ int t; cin>>t; while(t--){ int x,y,z; scanf("%d%d%d",&x,&y,&z); int x1=min(x,y); int x2=max(x,y); if(x1<=z) printf("%dn",x1); else { int ans=0; ans=z; x1=x1-z; x2=x2-z; int y; y=x2-x1; if(y>=x1) cout<<x1+ans<<endl; else { ans+=y; x1-=y; cout<<ans+(x1+x1)/3<<endl; } } } return 0; } (编辑:李大同) 【声明】本站内容均来自网络,其相关言论仅代表作者个人观点,不代表本站立场。若无意侵犯到您的权利,请及时与联系站长删除相关内容! |