https://www.luogu.org/problem/show?pid=1186
考虑暴力,枚举图上每一条边删去后跑Dijkstra,取M次的最大值。
仔细想想就会发现删除最短路以外的边对最短路毫无影响,于是先跑出最短路,然后枚举最短路上的每一条边删去后跑Dijkstra,取这几次的最大值。
#include <iostream>
#include <vector>
#include <queue>
#include <cstring>
#define maxn 1005
using namespace std;
const int inf = 0x3f3f3f3f;
int n, m;
struct edge
{
int from, to, weight;
};
vector<edge> e;
vector<int> g[maxn]; bool known[maxn];
int dist[maxn], front[maxn];
typedef pair<int, int> pin;
priority_queue<pin, vector<pin>, greater<pin>> pq;
void dijkstra()
{
for (int i = ; i <= n; ++i)
{
dist[i] = inf;
known[i] = false;
front[i] = -;
}
while (!pq.empty())
pq.pop();
dist[] = ;
pq.push(make_pair(dist[], ));
while (!pq.empty() && !known[n])
{
int x = pq.top().second;
pq.pop();
if (known[x])
continue;
known[x] = true;
for (int i = ; i < g[x].size(); i++)
{
edge &ed = e[g[x][i]];
if (!known[ed.to] && dist[ed.to] > dist[x] + ed.weight)
{
dist[ed.to] = dist[x] + ed.weight;
front[ed.to] = g[x][i];
pq.push(make_pair(dist[ed.to], ed.to));
}
}
}
}
vector<int> path; int main()
{
cin >> n >> m;
int u, v, w;
for (int i = ; i <= m; i++)
{
cin >> u >> v >> w;
e.push_back((edge){u, v, w});
g[u].push_back(e.size() - );
e.push_back((edge){v, u, w});
g[v].push_back(e.size() - );
}
dijkstra();
for (int i = front[n]; i != -; i = front[e[i].from])
path.push_back(i); int ans = dist[n];
for (int i = ; i < path.size(); i++)
{
w = e[path[i]].weight;
e[path[i]].weight = e[path[i] ^ ].weight = inf;
dijkstra();
if (dist[n] != inf)
ans = max(ans, dist[n]);
e[path[i]].weight = e[path[i] ^ ].weight = w;
}
cout << ans;
return ;
}