题目链接:
题意:
一快屏幕分非常多区域,区域之间能够相互覆盖,要覆盖就把属于自己的地方所有覆盖。给出这块屏幕终于的位置。看这块屏幕是对的还是错的。。
思路:
拓扑排序,这个简化点说,就是说跟楚河汉界一样。。分的清清楚楚,要么这块地方是我的,要么这块地方是你的,不纯在一人一办的情况,所以假设排序的时候出现了环,那么就说这快屏幕是坏的。。
。另一点细节要注意的是第i个数字究竟属于第几行第几列。所以这个要发现规律,然后一一枚举就能够了。。
题目:
Window Pains
| Time Limit: 1000MS |
|
Memory Limit: 65536K |
| Total Submissions: 1588 |
|
Accepted: 792 |
Description
Boudreaux likes to multitask, especially when it comes to using his computer. Never satisfied with just running one application at a time, he usually runs nine applications, each in its own window. Due to limited screen real estate, he overlaps these windows
and brings whatever window he currently needs to work with to the foreground. If his screen were a 4 x 4 grid of squares, each of Boudreaux‘s windows would be represented by the following 2 x 2 windows:
| 1 |
1 |
. |
. |
| 1 |
1 |
. |
. |
| . |
. |
. |
. |
| . |
. |
. |
. |
|
| . |
2 |
2 |
. |
| . |
2 |
2 |
. |
| . |
. |
. |
. |
| . |
. |
. |
. |
|
| . |
. |
3 |
3 |
| . |
. |
3 |
3 |
| . |
. |
. |
. |
| . |
. |
. |
. |
|
| . |
. |
. |
. |
| 4 |
4 |
. |
. |
| 4 |
4 |
. |
. |
| . |
. |
. |
. |
|
| . |
. |
. |
. |
| . |
5 |
5 |
. |
| . |
5 |
5 |
. |
| . |
. |
. |
. |
|
| . |
. |
. |
. |
| . |
. |
6 |
6 |
| . |
. |
6 |
6 |
| . |
. |
. |
. |
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| . |
. |
. |
. |
| . |
. |
. |
. |
| 7 |
7 |
. |
. |
| 7 |
7 |
. |
. |
|
| . |
. |
. |
. |
| . |
. |
. |
. |
| . |
8 |
8 |
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| . |
8 |
8 |
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| . |
. |
. |
. |
| . |
. |
. |
. |
| . |
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9 |
9 |
| . |
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9 |
9 |
|
When Boudreaux brings a window to the foreground, all of its squares come to the top, overlapping any squares it shares with other windows. For example, if window
1and then window
2 were brought to the foreground, the resulting representation
would be:
| 1 |
2 |
2 |
?
|
| 1 |
2 |
2 |
? |
| ? |
? |
? |
?
|
| ? |
?
|
? |
?
|
|
If window 4 were then brought to the foreground: |
| 1 |
2 |
2 |
? |
| 4 |
4 |
2 |
?
|
| 4 |
4 |
? |
?
|
| ?
|
? |
? |
?
|
|
. . . and so on . . .
Unfortunately, Boudreaux‘s computer is very unreliable and crashes often. He could easily tell if a crash occurred by looking at the windows and seeing a graphical representation that should not occur if windows were being brought to the foreground correctly.
And this is where you come in . . .
Input
Input to this problem will consist of a (non-empty) series of up to 100 data sets. Each data set will be formatted according to the following description, and there will be no blank lines separating data sets.
A single data set has 3 components:
- Start line - A single line:
START
- Screen Shot - Four lines that represent the current graphical representation of the windows on Boudreaux‘s screen. Each position in this 4 x 4 matrix will represent the current piece of window showing in each square. To make input easier, the list of numbers
on each line will be delimited by a single space.
- End line - A single line:
END
After the last data set, there will be a single line:
ENDOFINPUT
Note that each piece of visible window will appear only in screen areas where the window could appear when brought to the front. For instance, a 1 can only appear in the top left quadrant.
Output
For each data set, there will be exactly one line of output. If there exists a sequence of bringing windows to the foreground that would result in the graphical representation of the windows on Boudreaux‘s screen, the output will be a single line with the statement:
THESE WINDOWS ARE CLEAN
Otherwise, the output will be a single line with the statement:
THESE WINDOWS ARE BROKEN
Sample Input
START
1 2 3 3
4 5 6 6
7 8 9 9
7 8 9 9
END
START
1 1 3 3
4 1 3 3
7 7 9 9
7 7 9 9
END
ENDOFINPUT
Sample Output
THESE WINDOWS ARE CLEAN
THESE WINDOWS ARE BROKEN
Source
代码为:
#include<cstdio>
#include<iostream>
#include<vector>
#include<cstring>
#include<queue>
#include<algorithm>
using namespace std;
const int maxn=5+10;
int map[maxn][maxn],in[maxn];
queue<int>Q;
vector<int>vec[maxn];
int dx[]={0,0,1,1};
int dy[]={0,1,0,1};
int topo()
{
int sum=9;
while(!Q.empty()) Q.pop();
for(int i=1;i<=9;i++)
{
if(in[i]==0)
Q.push(i);
}
while(!Q.empty())
{
int temp=Q.front();
Q.pop();
sum--;
for(int i=0;i<vec[temp].size();i++)
{
if(--in[vec[temp][i]]==0)
Q.push(vec[temp][i]);
}
}
if(sum>0) return 0;
else return 1;
}
void init()
{
char str[10];
for(int i=1;i<=9;i++)
{
vec[i].clear();
in[i]=0;
}
for(int i=1;i<=9;i++)
{
int x=(i-1)/3+1;
int y=i%3==0?3:i%3;
for(int j=0;j<=3;j++)
{
int tx=x+dx[j];
int ty=y+dy[j];
if(map[tx][ty]!=i)
{
vec[i].push_back(map[tx][ty]);
in[map[tx][ty]]++;
}
}
}
scanf("%s",str);
}
void solve()
{
int ans=topo();
if(ans)
cout<<"THESE WINDOWS ARE CLEAN"<<endl;
else
cout<<"THESE WINDOWS ARE BROKEN"<<endl;
}
int main()
{
char str[10];
while(~scanf("%s",str))
{
if(strcmp(str,"ENDOFINPUT")==0) return 0;
for(int i=1;i<=4;i++)
for(int j=1;j<=4;j++)
scanf("%d",&map[i][j]);
init();
solve();
}
return 0;
}
