Problem Description
After AC all the hardest problems in the world , the ACboy 8006 now has nothing to do . One day he goes to an old library to find a part-time job .It is also a big library which has N books and M users.The user's id is from 1 to M , and the book id is from 1 to N . According to the library rules , every user are only allowed to borrow 9 books .But what surprised him is that there is no computer in the library , and everything is just recorded in paper ! How terrible , I must be crazy after working some weeks , he thinks .So he wants to change the situation .
In the other hand , after 8006's fans know it , they all collect money and buy many computers for the library .
Besides the hardware , the library needs a management program . Though it is just a piece of cake for 8006 , the library turns to you , a excellent programer,for help .
What they need is just a simple library management program . It is just a console program , and have only three commands : Borrow the book , Return the book , Query the user .
1.The Borrow command has two parameters : The user id and the book id
The format is : "B ui bi" (1<=ui<=M , 1<=bi<=N)
The program must first check the book bi wether it's in the library . If it is not , just print "The book is not in the library now" in a line .
If it is , then check the user ui .
If the user has borrowed 9 books already, print "You are not allowed to borrow any more" .
Else let the user ui borrow the book , and print "Borrow success".
2.The Return command only has one parameter : The book id
The format is : "R bi" (1<=bi<=N)
The program must first check the book bi whether it's in the library . If it is , just print "The book is already in the library" . Otherwise , you can return the book , and print "Return success".
3.The Query command has one parameter : The user id
The format is : "Q ui" (1<=ui<=M)
If the number of books which the user ui has borrowed is 0 ,just print "Empty" , otherwise print the books' id which he borrows in increasing order in a line.Seperate two books with a blank.
Input
The input file contains a series of test cases . Please process to the end of file . The first line contains two integers M and N ( 1<= M <= 1000 , 1<=N<=100000),the second line contains a integer C means the number of commands(1<=C<=10000). Then it comes C lines . Each line is a command which is described above.You can assum all the books are in the library at the beginning of each cases.
Output
For each command , print the message which described above .
Please output a blank line after each test.
If you still have some questions , see the Sample
Sample Input
5 10
9
R 1
B 1 5
B 1 2
Q 1
Q 2
R 5
Q 1
R 2
Q 1
5 10
9
R 1
B 1 5
B 1 2
Q 1
Q 2
R 5
Q 1
R 2
Q 1
Sample Output
The book is already in the library
Borrow success
Borrow success
2 5
Empty
Return success
2
Return success
Empty The book is already in the library
Borrow success
Borrow success
2 5
Empty
Return success
2
Return success
Empty //Huge input, the function scanf() may work better than cin
Hint
Hint
纯粹的模拟题
#include<iostream>
#include<algorithm>
#include<cstring>
using namespace std;
int book[];
struct node
{
int x[];
int y;
} p[];
int main()
{
int n,m,b,u;
char a;
while(cin>>n>>m)
{
memset(book,,sizeof(book));
for(int i=; i<=n; i++)
p[i].y=;
int t;
cin>>t;
while(t--)
{
cin>>a;
if(a=='B')
{
cin>>u>>b;
if(book[b])
puts("The book is not in the library now");
else if(p[u].y>=)
puts("You are not allowed to borrow any more");
else
{
p[u].x[p[u].y++]=b;
book[b]=u;
puts("Borrow success");
}
}
else if(a=='R')
{
cin>>b;
if(book[b]==)
puts("The book is already in the library");
else
{
int poit;
u=book[b];
book[b]=;
for(int i=; i<p[u].y; i++)
{
if(p[u].x[i]==b)
{
poit=i;
break;
}
}
for(int i=poit; i<p[u].y-; i++)
p[u].x[i]=p[u].x[i+];
p[u].y--;
puts("Return success");
}
}
else if(a=='Q')
{
cin>>u;
if(p[u].y==)
puts("Empty");
else
{
int b[];
for(int i=; i<p[u].y; i++)
b[i]=p[u].x[i];
sort(b,b+p[u].y);
for(int i=; i<p[u].y; i++)
{
if(i==)
cout<<b[i];
else
cout<<" "<<b[i];
}
cout<<endl; }
}
}
cout<<endl;
}
return ;
}