Black And White
Time Limit: 2000/2000 MS (Java/Others) Memory Limit: 512000/512000 K (Java/Others)
Total Submission(s): 7177 Accepted Submission(s): 1933
Special Judge
Problem Description
In mathematics, the four color theorem, or the four color map
theorem, states that, given any separation of a plane into contiguous
regions, producing a figure called a map, no more than four colors are
required to color the regions of the map so that no two adjacent regions
have the same color.
— Wikipedia, the free encyclopedia
In this problem, you have to solve the 4-color problem. Hey, I’m just joking.
You are asked to solve a similar problem:
Color an N × M chessboard with K colors numbered from 1 to K such that no two adjacent cells have the same color (two cells are adjacent if they share an edge). The i-th color should be used in exactly ci cells.
Matt hopes you can tell him a possible coloring.
— Wikipedia, the free encyclopedia
In this problem, you have to solve the 4-color problem. Hey, I’m just joking.
You are asked to solve a similar problem:
Color an N × M chessboard with K colors numbered from 1 to K such that no two adjacent cells have the same color (two cells are adjacent if they share an edge). The i-th color should be used in exactly ci cells.
Matt hopes you can tell him a possible coloring.
Input
The first line contains only one integer T (1 ≤ T ≤ 5000), which indicates the number of test cases.
For each test case, the first line contains three integers: N, M, K (0 < N, M ≤ 5, 0 < K ≤ N × M ).
The second line contains K integers ci (ci > 0), denoting the number of cells where the i-th color should be used.
It’s guaranteed that c1 + c2 + · · · + cK = N × M .
For each test case, the first line contains three integers: N, M, K (0 < N, M ≤ 5, 0 < K ≤ N × M ).
The second line contains K integers ci (ci > 0), denoting the number of cells where the i-th color should be used.
It’s guaranteed that c1 + c2 + · · · + cK = N × M .
Output
For each test case, the first line contains “Case #x:”, where x is the case number (starting from 1).
In the second line, output “NO” if there is no coloring satisfying the requirements. Otherwise, output “YES” in one line. Each of the following N lines contains M numbers seperated by single whitespace, denoting the color of the cells.
If there are multiple solutions, output any of them.
In the second line, output “NO” if there is no coloring satisfying the requirements. Otherwise, output “YES” in one line. Each of the following N lines contains M numbers seperated by single whitespace, denoting the color of the cells.
If there are multiple solutions, output any of them.
Sample Input
4
1 5 2
4 1
3 3 4
1 2 2 4
2 3 3
2 2 2
3 2 3
2 2 2
Sample Output
Case #1:
NO
Case #2:
YES
4 3 4
2 1 2
4 3 4
Case #3:
YES
1 2 3
2 3 1
Case #4:
YES
1 2
2 3
3 1
题目大意与分析
N*M块砖,分别涂成K种颜色,每种颜色可以涂c[i]块砖,问能否涂色使得相邻的砖块不一样
dfs,从左上角搜索到右下角,只需要判断是否和上面与左面的砖块颜色是否相同,不剪枝会TLE
剪枝:当剩下的砖块数量+1小于某种颜色的数量的两倍,则return,因为这时必然会相邻
#include<bits/stdc++.h> using namespace std; int flag,mp[10][10],n,m,k,c[50],Case,t; int check(int x,int y,int color) { if(x==1&&y==1) { return 1; } if(x==1) { if(mp[x][y-1]!=color) return 1; else return 0; } if(y==1) { if(mp[x-1][y]!=color) return 1; else return 0; } if(mp[x][y-1]!=color&&mp[x-1][y]!=color) { return 1; } else { return 0; } } void dfs(int x,int y,int sum) { if(flag) return; for(int i=1;i<=k;i++) { if((sum+1)/2<c[i]) return; } for(int i=1;i<=k;i++) { if(check(x,y,i)&&c[i]>0) { mp[x][y]=i; c[i]--; if(x==n&&y==m&&flag==0) { flag=1; cout<<"Case #"<<Case<<":"<<endl; cout<<"YES"<<endl; for(int ii=1;ii<=n;ii++) { cout<<mp[ii][1]; for(int jj=2;jj<=m;jj++) { cout<<' '<<mp[ii][jj]; } cout<<endl; } } else if(y==m) { dfs(x+1,1,sum-1); } else { dfs(x,y+1,sum-1); } mp[x][y]=0; c[i]++; } } } int main() { cin>>t; while(t--) { flag=0; memset(mp,0,sizeof(mp)); Case++; cin>>n>>m>>k; for(int i=1;i<=k;i++) { cin>>c[i]; } dfs(1,1,n*m); if(flag==0) { cout<<"Case #"<<Case<<":"<<endl; cout<<"NO"<<endl; } } }