Rotation Lock Puzzle
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 695 Accepted Submission(s): 204
Problem Description
Alice was felling into a cave. She found a strange door with a number square matrix. These numbers can be rotated around the center clockwise or counterclockwise. A fairy came and told her how to solve this puzzle lock: “When the sum of main diagonal and anti-diagonal is maximum, the door is open.”. Here, main diagonal is the diagonal runs from the top left corner to the bottom right corner, and anti-diagonal runs from the top right to the bottom left corner. The size of square matrix is always odd.
9 3 2 5 9
7 4 7 5 4
6 9 3 9 3
5 2 8 7 2
9 9 4 1 9
9 3 2 5 9
7 4 7 5 4
6 9 3 9 3
5 2 8 7 2
9 9 4 1 9
Input
Multi cases is included in the input file. The first line of each case is the size of matrix n, n is a odd number and 3<=n<=9.There are n lines followed, each line contain n integers. It is end of input when n is 0 .
Output
For each test case, output the maximum sum of two diagonals and minimum steps to reach this target in one line.
Sample Input
5
9 3 2 5 9
7 4 7 5 4
6 9 3 9 3
5 2 8 7 2
9 9 4 1 9
0
Sample Output
72
1
Source
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liuyiding
旋转.....用分治做或许更好,但是为了理解今天特地用模拟做了一次.....
代码如下:
1 #include<iostream> 2 #include<cstdio> 3 using namespace std; 4 int min(int a,int b) 5 { 6 return a<b?a:b; 7 } 8 int main() 9 { 10 int n,i,j,max,pos,tpos; 11 int str[10][10],sum; 12 while(cin>>n,n) 13 { 14 for(i=1;i<=n;i++) //输入部分 15 { 16 for(j=1;j<=n;j++) 17 scanf("%d",str[i]+j); 18 } 19 pos=0; 20 max=str[(n+1)/2][(n+1)/2]; 21 for(i=1 ; i<=(n-1)/2 ; i++) //圈数 22 { 23 for(j=i;j<=n-i;j++) 24 { 25 int temp=(str[j][i]+str[n-j+1][n-i+1])+(str[n-i+1][j]+str[i][n-j+1]); //主副对角线相加 26 if(j==i||sum<temp) 27 sum=temp,tpos=min(j-i,n-(i+j)+1); 28 } 29 pos+=tpos; 30 max+=sum; 31 } 32 printf("%d %d ",max,pos); 33 } 34 return 0; 35 }