The n-queens puzzle is the problem of placing n queens on an n×n chessboard such that no two queens attack each other.
Given an integer n, return all distinct solutions to the n-queens puzzle.
Each solution contains a distinct board configuration of the n-queens' placement, where 'Q' and '.' both
indicate a queen and an empty space respectively.
For example,
There exist two distinct solutions to the 4-queens puzzle:
[ [".Q..", // Solution 1 "...Q", "Q...", "..Q."], ["..Q.", // Solution 2 "Q...", "...Q", ".Q.."] ]
皇后不能互相攻击,满足同一行,同一列,对角,不能同时存在两个Queen.
我利用了在解决Permutation时的思路,采用swap选择每行的列。这样,可以简化isvalid的函数,它只需要验证是否对角上已经存在一个Queen就可以了。
此算法在leetcode上,实际执行时为9ms。
class Solution {
public:
vector<vector<string> > solveNQueens(int n) {
vector<vector<string> > ans;
vector<int> solution;
for (int i=0; i<n; i++)
solution.push_back(i);
helper(ans, solution, 0);
return ans;
}
void helper(vector<vector<string> > &ans, vector<int> &solution, int start) {
if (start == solution.size()) {
ans.push_back(vector<string>());
for (int i=0; i<solution.size(); i++) {
ans.back().push_back(string(solution.size(), '.'));
ans.back().back()[solution[i]] = 'Q';
}
return;
}
for (int i=start; i<solution.size(); i++) {
swap(solution[start], solution[i]);
if (isValid(solution, start)) {
helper(ans, solution, start+1);
}
swap(solution[start], solution[i]);
}
}
bool isValid(vector<int> &solution, int index) {
for (int row=index-1; row>=0; --row) {
if (index-row == abs(solution[index] - solution[row]))
return false;
}
return true;
}
};
同时我也在leetcode上分享了上面这段代码:N Queens