C中的井字游戏优化

分类:编程问答

如何解决C中的井字游戏优化

我是C语言的初学者,我得到的其中一项任务是写井字游戏。我正在运行游戏,但是每次您将X放在O位置时(反之亦然),它都会覆盖它。我也很欣赏关于优化代码的评论,因为我是一个初学者,并不了解很多概念。谢谢!这是我到目前为止所得到的

#include<stdio.h>

void redrawBoard(char array[]);
void markBoard (int x,int o,char array[]);
int checkForWin(char array[]);

int checkForWin(char array[])
{   
int a;
char x = 'X';
char o = 'O';

 if (array[0] == x && array[4] == x && array[8] == x)  // winning cases for x 
    return 1;
 if (array[2] == x && array[4] == x && array[6] == x)
    return 1;
 if (array[0] == x && array[1] == x && array[2] == x)
    return 1;
 if (array[3] == x && array[4] == x && array[5] == x)
    return 1;
 if (array[6] == x && array[7] == x && array[8] == x)
    return 1;
 if (array[0] == x && array[3] == x && array[6] == x)
    return 1;
 if (array[1] == x && array[4] == x && array[7] == x)
    return 1;
 if (array[2] == x && array[5] == x && array[8] == x)
    return 1;

 if (array[1] == x && array[4] == x && array[6] == x && array[8] ==x) //checking for draw with x combinations 1st pattern
    return 3;
 if (array[0] == x && array[2] == x && array[4] == x && array[7] ==x)
    return 3;
 if (array[0] == x && array[4] == x && array[5] == x && array[6] ==x)
    return 3;
 if (array[2] == x && array[3] == x && array[4] == x && array[8] ==x)
    return 3;

 if (array[1] == x && array[4] == x && array[5] == x && array[6] ==x) //checking for draw with x combinations 2nd pattern
    return 3;
 if (array[0] == x && array[4] == x && array[5] == x && array[7] ==x)
    return 3;
 if (array[2] == x && array[3] == x && array[4] == x && array[7] ==x)
    return 3;
 if (array[1] == x && array[3] == x && array[4] == x && array[8] ==x)
    return 3;



 if (array[0] == o && array[4] == o && array[8] == o) //// winning cases for o
    return 2;
 if (array[2] == o && array[4] == o && array[6] == o)
    return 2;
 if (array[0] == o && array[1] == o && array[2] == o)
    return 2;
 if (array[3] == o && array[4] == o && array[5] == o)
    return 2;
 if (array[6] == o && array[7] == o && array[8] == o)
    return 2;
 if (array[0] == o && array[3] == o && array[6] == o)
    return 2;
 if (array[1] == o && array[4] == o && array[7] == o)
    return 2;
 if (array[2] == o && array[5] == o && array[8] == o)
    return 2; 

 if (array[1] == o && array[4] == o && array[6] == o && array[8] == o) //checking for draw with o combinations 1st pattern
    return 3;
 if (array[0] == o && array[2] == o && array[4] == o && array[7] == o)
    return 3;
 if (array[0] == o && array[4] == o && array[5] == o && array[6] == o)
    return 3;
 if (array[2] == o && array[3] == o && array[4] == o && array[8] == o)
    return 3;

 if (array[1] == o && array[4] == o && array[5] == o && array[6] == o) //checking for draw with o combinations 2nd pattern
    return 3;
 if (array[0] == o && array[4] == o && array[5] == o && array[7] == o)
    return 3;
 if (array[2] == o && array[3] == o && array[4] == o && array[7] == o)
    return 3;
 if (array[1] == o && array[3] == o && array[4] == o && array[8] == o)
    return 3;
 


 else
    return 0;

 return(a);
}

 void markBoard (int x,char array[])
{
int i = 0;
char j = 'X';
char k = 'O';

while( x >= 1 && x <= 9) 
{
    array[x - 1] = j;
    redrawBoard(array);
    break;
}
while (o >= 1 && o <= 9)
{
    array[o - 1] = k;
    redrawBoard(array);
    break;
}

}

void redrawBoard(char array[])
{
printf(" Player 1 is X;       Player 2 is O;\n\n");
printf("              |      |        \n");
printf("           %c  |  %c   |  %c    \n",array[0],array[1],array[2]);
printf("        ______|______|______  \n");
printf("              |      |        \n");
printf("           %c  |  %c   |  %c    \n",array[3],array[4],array[5]);
printf("        ______|______|______  \n");
printf("              |      |        \n");
printf("           %c  |  %c   |  %c    \n",array[6],array[7],array[8]);
printf("              |      |        \n");
}

int main()
{
int x;
int o;
char array[9] = {'1','2','3','4','5','6','7','8','9'};

printf("tic tac toe game\n");
redrawBoard(array);


while (checkForWin(array) == 0)
{
    printf("P1 start \n");
    scanf("%d",&x);
    markBoard(x,o,array);

    printf("P2 go on\n");
    scanf("%d",&o);
    markBoard(x,array);
}
if (checkForWin(array) == 1)
    printf("P1 won\n");
if (checkForWin(array) == 2)
    printf("P2 won\n");
if (checkForWin(array) == 3)
    printf("draw \n");
return 0;
}

解决方法

  • 您提到的问题是,在此单元格中已经有一个值时,您没有测试。

  • 关于优化:

  1. 避免大量使用if cases!考虑更好的检查以检查谁是赢家。 例如,查看此检查:

     char winnerIs(char** Board,int i,int j) {
   if (Board[i][j] == Board[i][(j+1)%3]
    && Board[i][j] == Board[i][(j+2)%3])
   {
     // got a column
     return Board[i][j];
   }
   else if (Board[i][j] == Board[(i+1)%3][j] && Board[i][j] == Board[(i+2)%3][j])
   {
     // got a row
     return Board[i][j];
   }
   else if (i == j && Board[i][j] == Board[(i+1)%3][(j+1)%3]
                   && Board[i][j] == Board[(i+2)%3][(j+2)%3])
   {
     // got the forward diagonal
     return Board[i][j];
   }
   else if (i+j == 2 && Board[i][j] == Board[(i+2)%3][(j+1)%3]
                     && Board[i][j] == Board[(i+1)%3][(j+2)%3])
   {
     // got the reverse diagonal
     return Board[i][j];
   }
   else {
     // got nothing
     return 0;
   }

  2. 避免大量打印!最好为游戏使用一种结构,例如棋盘-如果您想使用动态游戏,则为char board[][]或更好的char** Board。并打印整个board一次。

  3. 代替下一个代码:

     printf("P1 start \n");
 scanf("%d",&x);
 markBoard(x,o,array);

 printf("P2 go on\n");
 scanf("%d",&o);
 markBoard(x,array);

进行如下操作:

    int player = 1;
    char row,col; 
    player = (player % 2) ? 1 : 2;
    scanf("%c %c",&row,&col);
    markBoard(row,col,board);

就像您不需要重复相同的代码一样,它会自动知道每个回合,现在轮到谁了。

  1. 代替下一个代码:

     if (checkForWin(array) == 1)
     printf("P1 won\n");
 if (checkForWin(array) == 2)
     printf("P2 won\n");
 if (checkForWin(array) == 3)
     printf("draw \n");

连接一些条件,例如:

    if (checkForWin(array) == 1 || checkForWin(array) == 2) {
        printf("Congratulations %c!\n",winner);
    } else {
        printf("Game ends in a draw.\n");
    }

  1. 要制作更多的“美人”代码,您可以添加一个结构来管理整个游戏,例如:

     typedef struct {
   int size;
   int **board; // the board
   /* scores of all options */
   int *rowScores;
   int *colScores;
   int topLeftBottomRightDiagonalScores;
   int topRightBottomLeftDiagonalScores;
 } Game;

 typedef struct { // position on the board
   int x;
   int y;
 } Position;

  2. 您的void markBoard (int x,int o,char array[])函数进行了大量迭代以印刷整个电路板。最好一次创建整个董事会,然后在整个董事会上运行。

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