Kblack loves flag
Kblack loves flag
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)Total Submission(s): 265 Accepted Submission(s): 190
Problem Description
Kblack loves flags, so he has infinite flags in his pocket.
One day, Kblack is given an n∗m chessboard and he decides to plant flags on the chessboard where the position of each flag is described as a coordinate (x,y), which means that the flag is planted at the xth line of the yth row.
After planting the flags, Kblack feels sorry for those lines and rows that have no flags planted on, so he would like to know that how many lines and rows there are that have no flags planted on.
Well, Kblack, unlike you, has a date tonight, so he leaves the problem to you. please resolve the problem for him.
Input
You should generate the input data in your programme.
We have a private variable x in the generation,which equals to seed initially.When you call for a random number ranged from [l,r],the generation will trans x into (50268147x+6082187) mod 100000007.And then,it will return x mod (r−l+1)+l.
The first line contains a single integer T refers to the number of testcases.
For each testcase,there is a single line contains 4 integers n,m,k,seed.
Then,you need to generate the k flags' coordinates.
For i=1⋯k,firstly generate a random number in the range of [1,n].Then generate a random number in the range of [1,m].
You can also copy the following code and run "Init" to generate the x[],y[] (only for C++ players).
const int _K=50268147,_B=6082187,_P=100000007;
int _X;
inline int get_rand(int _l,int _r){
_X=((long long)_K*_X+_B)%_P;
return _X%(_r-_l+1)+_l;
}
int n,m,k,seed;
int x[1000001],y[1000001];
void Init(){
scanf("%d%d%d%d",&n,&m,&k,&seed);
_X=seed;
for (int i=1;i<=k;++i)
x[i]=get_rand(1,n),
y[i]=get_rand(1,m);
}
(1≤T≤7),(1≤n,m≤1000000),(0≤k≤1000000),(0≤seed<100000007)
Output
For each testcase,print a single line contained two integers,which respectively represent the number of lines and rows that have no flags planted.
Sample Input
2
4 2 3 233
3 4 4 2333
Sample Output
2 1
1 0
Hint
the flags in the first case:$\left(4,2\right)$,$\left(1,2\right)$,$\left(1,2\right)$
the flags in the second case:$\left(2,1 \right)$,$\left(2,3\right)$,$\left(3,4\right)$,$\left(3,2\right)$
题意
真的没有读懂题目啥意思,,,
很简单的一道题目,有一个棋盘,和一些棋子,现在给你出棋子的坐标,让你求出还有多少行,多少列没有放过棋子。但是,这些棋子的坐标不是直接输入的,而是通过一个随机函数来生成的,这个函数呢,人家又给你了,直接复制过来就行了。输入格式: 棋盘的行数和列数,以及棋子的个数,和生成棋子坐标的种子。
代码
#include <iostream>
#include<cstring>
#include<cstdio>
#include<algorithm>
using namespace std;
const int _K=50268147,_B=6082187,_P=100000007;
int _X;
inline int get_rand(int _l,int _r)
{
_X=((long long)_K*_X+_B)%_P;
return _X%(_r-_l+1)+_l;
}
int n,m,k,seed;
int rowN=0,lineN=0;
int x[1000001],y[1000001];
bool row[1000001]= {false};
bool line[1000001]= {false};
void Init()
{
scanf("%d%d%d%d",&n,&m,&k,&seed);
rowN=0,lineN=0;
memset(row,false,sizeof(row));
memset(line,false,sizeof(line));
_X=seed;
for (int i=1; i<=k; ++i)
{
x[i]=get_rand(1,n);
y[i]=get_rand(1,m);
if(row[x[i]]==false)
{
row[x[i]]=true;
rowN++;
}
if(line[y[i]]==false)
{
line[y[i]]=true;
lineN++;
}
}
}
int main()
{
int t;
cin>>t;
while(t--)
{
Init();
cout<<n-rowN<<" "<<m-lineN<<endl;
}
return 0;
}
