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ID题目提交者结果用时内存语言文件大小提交时间测评时间
#391412#6619. Line Graph Matchingtz3528WA 1ms5700kbC++201.5kb2024-04-16 16:14:452024-04-16 16:14:45

Judging History

你现在查看的是最新测评结果

  • [2024-04-16 16:14:45]
  • 评测
  • 测评结果:WA
  • 用时:1ms
  • 内存:5700kb
  • [2024-04-16 16:14:45]
  • 提交

answer

#include <bits/stdc++.h>
using namespace std;
typedef long long ll;
const int N = 100010, M = 400010;
int head[N], ver[M], nxt[M], edge[M], vis[N];
int dfn[N], low[N], cnt[N], n, m, tot, num;
int Min;
void add(int x, int y, int z) {
	ver[++tot] = y, edge[tot] = z,  nxt[tot] = head[x], head[x] = tot;
}
void tarjan(int x, int in_edge) {
	dfn[x] = low[x] = ++num;
	for (int i=head[x]; i; i = nxt[i]) {
		int y = ver[i];
		if (!dfn[y]) {
			tarjan(y, i);
			cnt[x] += cnt[y] + 1; // x 所在的连通分量边数增加
			low[x] = min(low[x], low[y]);
			if (low[y] > dfn[x]) {
				if (cnt[y] % 2 == 0) { // 如果该边是割边,那么要判断 y 所在连通分量边数是否为偶数
					Min = min(Min, edge[i]);
				}
			}
			else { // 如果不是割边,则不需要限制
				Min = min(Min, edge[i]);
			}
		}
		else  { // 如果出现返祖边,即搜索树中,子孙指向祖先的边
            if(dfn[x] > dfn[y]) { // 这条边记录到时间戳更大的点上(只是为了防止重复计数)
                cnt[x] ++;
            }
			low[x] = min(low[x], dfn[y]);
			Min = min(Min, edge[i]);
		}
	}
}
int main() {
	scanf("%d%d", &n, &m);
	tot = 1;
	ll res = 0;
	for (int i = 1; i <= m; i++) {
		int x, y, z;
		scanf("%d%d%d", &x, &y, &z);
		add(x, y, z); add(y, x, z);
		res += z;
	}
    Min = 1e9; // 如果要删边,Min 记录可以删除的边中的最小权值
    tarjan(1, 0);
    if(m & 1) res -= Min;
	cout << res << endl;
	return 0;
}

詳細信息

Test #1:

score: 100
Accepted
time: 1ms
memory: 5688kb

input:

5 6
1 2 1
1 3 2
1 4 3
4 3 4
4 5 5
2 5 6

output:

21

result:

ok 1 number(s): "21"

Test #2:

score: -100
Wrong Answer
time: 1ms
memory: 5700kb

input:

6 5
1 2 4
2 3 1
3 4 3
4 5 2
5 6 5

output:

14

result:

wrong answer 1st numbers differ - expected: '12', found: '14'