PAT 1121 Damn Single[简单]
1121 Damn Single (25 分)
"Damn Single (单身狗)" is the Chinese nickname for someone who is being single. You are supposed to find those who are alone in a big party, so they can be taken care of.
Input Specification:
Each input file contains one test case. For each case, the first line gives a positive integer N (≤ 50,000), the total number of couples. Then N lines of the couples follow, each gives a couple of ID's which are 5-digit numbers (i.e. from 00000 to 99999). After the list of couples, there is a positive integer M (≤ 10,000) followed by M ID's of the party guests. The numbers are separated by spaces. It is guaranteed that nobody is having bigamous marriage (重婚) or dangling with more than one companion.
Output Specification:
First print in a line the total number of lonely guests. Then in the next line, print their ID's in increasing order. The numbers must be separated by exactly 1 space, and there must be no extra space at the end of the line.
Sample Input:
3
11111 22222
33333 44444
55555 66666
7
55555 44444 10000 88888 22222 11111 23333
Sample Output:
5
10000 23333 44444 55555 88888
题目大意:给出n对情侣,然后再给出m对参加宴会的人,判断这些人当中有多少人是没有伙伴来参加宴会的(本身已经结婚,但是没带伴侣来的也会被计算进来)
#include <iostream> #include<vector> #include<map> using namespace std; map<string,string> m2f; map<string,string> inp; int main() { int n; cin>>n; string x,y; for(int i=0;i<n;i++){ cin>>x>>y; m2f[x]=y; m2f[y]=x; } int m; cin>>m; string s; for(int i=0;i<m;i++){ cin>>s; inp[s]=1;//因为这里的map是自然排序的,所以最终vector里也是自然排序的。 } int ct=0; vector<string> vt; for(auto it=inp.begin();it!=inp.end();it++){ string str=it->first; if(inp.count(m2f[str])==0){ vt.push_back(str); } } cout<<vt.size()<<'\n'; for(int i=0;i<vt.size();i++){ cout<<vt[i]; if(i!=vt.size()-1)cout<<" "; } return 0; }
//还是比较简单的,但是还是提交了两次,为什么呢?
1.需要主要最后的输出格式,是1!=vt.size()-1,知道了吗?