CF-828B

B. Black Square
time limit per test
1 second
memory limit per test
256 megabytes
input
standard input
output
standard output

Polycarp has a checkered sheet of paper of size n × m. Polycarp painted some of cells with black, the others remained white. Inspired by Malevich's "Black Square", Polycarp wants to paint minimum possible number of white cells with black so that all black cells form a square.

You are to determine the minimum possible number of cells needed to be painted black so that the black cells form a black square with sides parallel to the painting's sides. All the cells that do not belong to the square should be white. The square's side should have positive length.

Input

The first line contains two integers n and m (1 ≤ n, m ≤ 100) — the sizes of the sheet.

The next n lines contain m letters 'B' or 'W' each — the description of initial cells' colors. If a letter is 'B', then the corresponding cell is painted black, otherwise it is painted white.

Output

Print the minimum number of cells needed to be painted black so that the black cells form a black square with sides parallel to the painting's sides. All the cells that do not belong to the square should be white. If it is impossible, print -1.

Examples
input
5 4
WWWW
WWWB
WWWB
WWBB
WWWW
output
5
input
1 2
BB
output
-1
input
3 3
WWW
WWW
WWW
output
1
Note

In the first example it is needed to paint 5 cells — (2, 2), (2, 3), (3, 2), (3, 3) and (4, 2). Then there will be a square with side equal to three, and the upper left corner in (2, 2).

In the second example all the cells are painted black and form a rectangle, so it's impossible to get a square.

In the third example all cells are colored white, so it's sufficient to color any cell black.

 

 

 

先找出最长b距离,再判断是否可以实现。

 

AC代码:

 1 #include<bits/stdc++.h>
 2 using namespace std;
 3 
 4 const int INF=1<<30;
 5 
 6 char mp[110][110];
 7 int maxx=0,maxy=0,minx=INF,miny=INF;
 8 
 9 int main(){
10     int n,m;
11     cin>>n>>m;
12     int ans=0,t=n*m;
13     for(int i=0;i<n;i++){
14         for(int j=0;j<m;j++){
15             cin>>mp[i][j];
16             if(mp[i][j]=='B'){
17                 ans++;
18                 maxx=max(i,maxx);
19                 maxy=max(j,maxy);
20                 minx=min(i,minx);
21                 miny=min(j,miny);
22             }
23         }
24     }
25     if(ans==t){
26         if(n==m)
27         cout<<0<<endl;
28         else
29         cout<<-1<<endl;
30     }
31     else if(ans==0){
32         cout<<1<<endl;
33     }
34     else{
35         int temp=maxx-minx+1;
36         int temp2=maxy-miny+1;
37         int cnt=max(temp,temp2);
38     //    cout<<cnt<<endl;
39         int res=cnt*cnt-ans;
40         if(cnt<=min(n,m))
41         cout<<res<<endl;
42         else
43         cout<<-1<<endl;
44     }
45     return 0;
46 }

 

posted @ 2017-07-26 10:17  Kiven#5197  阅读(1075)  评论(0编辑  收藏  举报