A. Table
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Simon has a rectangular table consisting of n rows and m columns. Simon numbered the rows of the table from top to bottom starting from one and the columns — from left to right starting from one. We'll represent the cell on the x-th row and the y-th column as a pair of numbers (x, y). The table corners are cells: (1, 1), (n, 1), (1, m), (n, m).
Simon thinks that some cells in this table are good. Besides, it's known that no good cell is the corner of the table.
Initially, all cells of the table are colorless. Simon wants to color all cells of his table. In one move, he can choose any good cell of table(x1, y1), an arbitrary corner of the table (x2, y2) and color all cells of the table (p, q), which meet both inequations: min(x1, x2) ≤ p ≤ max(x1, x2), min(y1, y2) ≤ q ≤ max(y1, y2).
Help Simon! Find the minimum number of operations needed to color all cells of the table. Note that you can color one cell multiple times.
The first line contains exactly two integers n, m (3 ≤ n, m ≤ 50).
Next n lines contain the description of the table cells. Specifically, the i-th line contains m space-separated integers ai1, ai2, ..., aim. Ifaij equals zero, then cell (i, j) isn't good. Otherwise aij equals one. It is guaranteed that at least one cell is good. It is guaranteed that no good cell is a corner.
Print a single number — the minimum number of operations Simon needs to carry out his idea.
3 30 0 00 1 00 0 0
4
4 30 0 00 0 11 0 00 0 0
2
In the first sample, the sequence of operations can be like this:
- For the first time you need to choose cell (2, 2) and corner (1, 1).
- For the second time you need to choose cell (2, 2) and corner (3, 3).
- For the third time you need to choose cell (2, 2) and corner (3, 1).
- For the fourth time you need to choose cell (2, 2) and corner (1, 3).
In the second sample the sequence of operations can be like this:
- For the first time you need to choose cell (3, 1) and corner (4, 3).
- For the second time you need to choose cell (2, 3) and corner (1, 1).
解题说明:这道题要求对桌面进行涂色,每次涂色要求为矩形,其中至少包括一块good cell,也就是1所在的位置。分析下来可以发现涂色次数只有两次或者四次,四次是good cell位于桌面中间,两次是good cell位于边界。
#include <iostream>#include<cstdio>#include <cstring>#include<string>using namespace std;int main(){int m,n,x,i,j;scanf("%d%d",&n,&m);int ans=4;for(i=0;i<n;i++){for(j=0;j<m;j++){scanf("%d",&x);if(x==1 && (i==0 ||j==0 ||i==n-1 || j==m-1 ) ){ans=2;}}}printf("%d",ans);return 0;}
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