https://ac.nowcoder.com/acm/contest/5668/D
题意
无穷大平面上,初始全是白点,问能否放置n个黑点,使得相邻的黑白点对的数目恰好为m,给出一种放置方法
题解
首先,如果m是奇数肯定无解,因为从每一行和每一列看过去,黑点的两侧必定有两个白点。
显然一个黑点最多形成4个黑白点对,所以(m > 4n)也无解
因为对于每一行黑点和每一列黑点,都贡献2的答案,所以我们可以遍历行数和列数,计算最小的答案,小于这个答案也无解。
其余情况必定有解,我们先按答案最小时放置,之后取出点单独放置,答案会增加2或者增加4,如果增加4后答案超过m,则把单独放置的点重新摆到第一排即可。
代码
#include <bits/stdc++.h>
#define pii pair<int, int>
using namespace std;
typedef long long ll;
struct READ {
inline char read() {
#ifdef _WIN32
return getchar();
#endif
static const int IN_LEN = 1 << 18 | 1;
static char buf[IN_LEN], *s, *t;
return (s == t) && (t = (s = buf) + fread(buf, 1, IN_LEN, stdin)), s == t ? -1 : *s++;
}
template <typename _Tp> inline READ & operator >> (_Tp&x) {
static char c11, boo;
for(c11 = read(),boo = 0; !isdigit(c11); c11 = read()) {
if(c11 == -1) return *this;
boo |= c11 == '-';
}
for(x = 0; isdigit(c11); c11 = read()) x = x * 10 + (c11 ^ '0');
boo && (x = -x);
return *this;
}
} in;
const int N = 2e5 + 50;
int main() {
int t; in >> t;
while (t--) {
int n, m;
in >> n >> m;
if (m > 4 * n || (m & 1)) puts("No");
else {
int a, b, mn = 1e9;
for (int i = 1; i <= n; i++) {
for (int j = 1; j <= n; j++) {
if (i * j >= n && (i + j) * 2 < mn) {
mn = 2 * (i + j);
a = i, b = j;
}
}
}
vector<pii> ans;
vector<pii> ans2;
int tmp = n;
for (int i = 1; i <= a; i++) {
for (int j = 1; j <= b; j++) {
ans.push_back(pii(i, j));
tmp--;
if (tmp == 0) break;
}
}
int now = 2 * (a + b);
if (m < now) {
puts("No");
continue;
}
puts("Yes");
int x = 1e8, y = 1e8;
while (now < m) {
pii p = ans.back();
if (p.second == 1 || p.first == 1) {
ans.pop_back();
now += 2;
ans2.push_back(pii(--x, --y));
}
else {
ans.pop_back();
now += 4;
ans2.push_back(pii(--x, --y));
}
}
if (now > m) {
ans2.pop_back();
pii p = ans.back();
ans.push_back(pii(p.first + 1, p.second));
}
for (auto e : ans) printf("%d %d
", e.first, e.second);
for (auto e : ans2) printf("%d %d
", e.first, e.second);
}
}
return 0;
}