【LeetCode】37. Sudoku Solver

时间:2021-07-24 19:30:26

Sudoku Solver

Write a program to solve a Sudoku puzzle by filling the empty cells.

Empty cells are indicated by the character '.'.

You may assume that there will be only one unique solution.

【LeetCode】37. Sudoku Solver

A sudoku puzzle...

【LeetCode】37. Sudoku Solver

...and its solution numbers marked in red.

这题跟N-Queens是一个套路,回溯法尝试所有解。

需要注意的区别是:

本题找到解的处理是return true,因此返回值为bool

N-Queen找到解的处理是保存解,因此返回值为void

对于每个空位'.',遍历1~9,check合理之后往下一个位置递归。

由于这里路径尝试本质上是有序的,即1~9逐个尝试,因此无需额外设置状态位记录已经尝试过的方向。

注意:只有正确达到最终81位置(即成功填充)的填充结果才可以返回,若不然,将会得到错误的填充。

因此辅助函数solve需要设为bool而不是void

class Solution {
public:
void solveSudoku(vector<vector<char> > &board) {
solve(board, );
}
bool solve(vector<vector<char> > &board, int position)
{
if(position == )
return true; int row = position / ;
int col = position % ;
if(board[row][col] == '.')
{
for(int i = ; i <= ; i ++)
{//try each digit
board[row][col] = i + '';
if(check(board, position))
if(solve(board, position + ))
//only return valid filling
return true;
board[row][col] = '.';
}
}
else
{
if(solve(board, position + ))
//only return valid filling
return true;
}
return false;
}
bool check(vector<vector<char> > &board, int position)
{
int row = position / ;
int col = position % ;
int gid;
if(row >= && row <= )
{
if(col >= && col <= )
gid = ;
else if(col >= && col <= )
gid = ;
else
gid = ;
}
else if(row >= && row <= )
{
if(col >= && col <= )
gid = ;
else if(col >= && col <= )
gid = ;
else
gid = ;
}
else
{
if(col >= && col <= )
gid = ;
else if(col >= && col <= )
gid = ;
else
gid = ;
} //check row, col, subgrid
for(int i = ; i < ; i ++)
{
//check row
if(i != col && board[row][i] == board[row][col])
return false; //check col
if(i != row && board[i][col] == board[row][col])
return false; //check subgrid
int r = gid/*+i/;
int c = gid%*+i%;
if((r != row || c != col) && board[r][c] == board[row][col])
return false;
}
return true;
}
};

check的另一种实现方式如下:

bool check(vector<vector<char> > &board, int pos)
{
int v = pos/;
int h = pos%;
char target = board[v][h];
//row
for(vector<char>::size_type st = ; st < ; st ++)
{
if(st != h)
{
if(target == board[v][st])
return false;
}
} //col
for(vector<char>::size_type st = ; st < ; st ++)
{
if(st != v)
{
if(target == board[st][h])
return false;
}
} //subgrid
int beginx = v/*;
int beginy = h/*;
for(int i = beginx; i < beginx+; i ++)
{
for(int j = beginy; j < beginy+; j ++)
{
if(i != v && j != h)
{
if(target == board[i][j])
return false;
}
}
} return true;
}

【LeetCode】37. Sudoku Solver