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#include <bits/stdc++.h>
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using namespace std;
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const int N = 100;
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int a[N], n, ans;
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int b1[N];//列桶
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int b2[N];//正对角线桶
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int b3[N];//反对角线桶
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//解决:第x行的皇后放在哪里?
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void dfs(int x) {
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if (x == n + 1) {
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//方案数量
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ans++;
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if (ans <= 3) {
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for (int i = 1; i <= n; i++) printf("%d ", a[i]);
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printf("\n");
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}
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return;
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}
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//尝试在第i列放入皇后
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for (int i = 1; i <= n; i++) {
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//因为x上按行一行一行来的,所以不用考虑行的冲突,只需要考虑列、正对角线,反对角线三个方向
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//b2[x+i] 因为同一正角线的位置,行+列是相等的,如果我们设置了 行+列使用过了,
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//那么,其它再检查到同一对角线时,就会发现行+列已使用过
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//b3[x - i + 15] 因为同一反对角线的位置,行-列是相等的,但可能行>列,也可能列>行,
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//这要看它是最长对角线的右上方还是左下方,右上方x>y,左下方x<y
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//为了防止出现负数数组下标,所以,采用了加一个偏移量的办法,这样,不管是大于还是小于,都规划到一个下标大于零的位置上。
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//注意:这里不能使用abs,因为 abs(x-y)与abs(y-x)不是一条反对角线!!!
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//为什么是15?就是因为n的范围是13,大于13即可!
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if (!b1[i] && !b2[x + i] && !b3[x - i + 15]) {
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//标识使用
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a[x] = i;
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//打上标识
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b1[i] = b2[x + i] = b3[x - i + 15] = 1;
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//递归下一行
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dfs(x + 1);
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//解除标识
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b1[i] = b2[x + i] = b3[x - i + 15] = 0;
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}
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}
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}
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int main() {
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//n皇后问题
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cin >> n;
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//放第几行
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dfs(1);
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//输出大吉
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printf("%d\n", ans);
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return 0;
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}
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