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#include <bits/stdc++.h>
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using namespace std;
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const int N = 5e3 + 10, M = N;
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typedef pair<int, int> PII;
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int n = 500, m;
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int ans[M], cnt;
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bool st[N];
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int d[N];
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int h[N], e[N], ne[N], idx;
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void add(int a, int b) {
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e[idx] = b, ne[idx] = h[a], h[a] = idx++;
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}
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void dfs(int u) {
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// 从小到大排序,这是题目中要求的字典序决定的,我们不能按原始的输入序来处理点号,需要全部读取后再由小到大排序
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vector<PII> vec;
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for (int i = h[u]; ~i; i = ne[i]) vec.push_back({e[i], i});
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sort(vec.begin(), vec.end());
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// 捋着点号由小到大的顺序来吧,vector里记录的二元组是 点v,和u->v这条边
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for (int i = 0; i < vec.size(); i++) {
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int j = vec[i].second;
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if (st[j]) continue;
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st[j] = st[j ^ 1] = 1;
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dfs(vec[i].first);
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}
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ans[++cnt] = u;
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}
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int main() {
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memset(h, -1, sizeof h);
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scanf("%d", &m);
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while (m--) {
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int a, b;
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scanf("%d %d", &a, &b);
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add(a, b), add(b, a); // 无向图
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d[a]++, d[b]++; // 记录度
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}
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// 找起点
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int u = 0;
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// ① 从小到大,找到度为奇数的点,在无向图中,度为奇数的点,视为起点
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for (int i = 1; i <= n; i++)
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if (d[i] & 1) {
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u = i;
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break;
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}
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// ② 如果没有找到度为奇数的点,可能就是一个环,也就是欧拉回路
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if (!u)
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while (!d[u]) u++;
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// 找到有边连接的点u,本来黄海以为,没有度为奇数的点,那就1号点呗,结果题目中给出的用例居然是10 20
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// 过份了!一共两个点,一个编号为10,另一个编号为20,三营长!你的意大利炮呢!(李云龙只有一营和三营,没有二营)
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// 历尽千辛万苦,终于找到了起点
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dfs(u);
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for (int i = cnt; i; i--) printf("%d\n", ans[i]);
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return 0;
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}
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