-4
import java.io.*;
public class Magic{

   static final int maxsize = 50;

    public static void main (String [] args) throws IOException{

      int i, j, k, l, n, key;
      boolean n_ok;
      String line;
      int [] [] square = new int [maxsize] [maxsize];

      BufferedReader KeybIn = new BufferedReader(new InputStreamReader(System.in));

      try{


         System.out.print("Size of square? ");
         line  = KeybIn.readLine();
         n = Integer.parseInt(line);

         n_ok = (1<=n) & (n<=maxsize+1) & (n%2==1);


         if ( n_ok ){


            for (i=0;i<n;i++)
               for (j=0;j<n;j++) square[i][j] = 0;
            square[0][(int)(n-1)/2] = 1;

            key = 2;
            i = 0;
            j = (int)(n-1)/2;
            while ( key <= n*n ){

               k = i - 1;

               if ( k < 0 ) k = k + n;
               l = j - 1;

               if ( l < 0 ) l = l + n;

               if ( square[k][l] != 0 ) i = (i+1) % n;

               else { i = k; j = l; }
               square[i][j] = key;
               key = key + 1;
            }


            System.out.println("Magic square of size " + n);

            for (i=0;i<n;i++)

            {

               for (j=0;j<n;j++)
                  System.out.print("\t"+square[i][j]);
               System.out.println();
            }
         }      
      }catch (NumberFormatException e){

         System.out.println("Error in number, try again.");

      }

   }
}

那么我该如何输入“再试一次是或否”?就是这样..然后如果我输入y ..它会再次询问用户正方形的大小..如果字母n它将退出..这是幻方

4

4 回答 4

3
String tryAgain = "y";
do
{
   // you code

   System.out.println("Try again? enter \"y/n\".");
   tryAgain = System.in.readLine();

}
while(!tryAgain.equals("n"));
于 2011-09-30T13:27:56.023 回答
0

例如,将计算魔方的代码放在一个单独的方法中,并让您的输入读取代码在一个 while 循环中,该循环调用该方法,直到用户按下 N。

于 2011-09-30T13:28:14.180 回答
0

用 while 循环包装 try/catch 语句。

while(not true) {
    do foo()
}
于 2011-09-30T13:29:51.547 回答
-1

查看Scanner类。

于 2011-09-30T13:27:36.670 回答