算是康复福利了,以前没做过,但是实际是非常水的题目,应该可以作为入门题了
诡异的是 这道题description莫名奇妙没了。
题意:
两个人从 1 -> n ,每条路径最多走两次,走第一次为 d ,走第二次为 d+a ,问最短的路径。
思路:
对于一组数据,建两次边即可。容量为1,花费分别为 d , d + a。
源点流入1 容量为 2 , 花费 0
n流入汇点 容量 2 ,花费 0
注: 给定的边为有向边
AC code
#include <algorithm>
#include <cmath>
#include <cstdio>
#include <cstring>
#include <queue>
using namespace std;
const int inf = 99999999;
const int maxn = 1005;
const int maxe = 10005 * 4;
struct MCMF {
private:
int st, en, idx;
int head[maxn], dis[maxe], preID[maxe];
bool vis[maxe];
queue<int> que;
struct node {
int to, next, pre;
int flow, cost;
node() {}
node(int _to, int _next, int _pre, int _flow, int _cost)
: to(_to)
, next(_next)
, pre(_pre)
, flow(_flow)
, cost(_cost)
{
}
} edges[maxe];
bool spfa()
{
memset(vis, false, sizeof(vis));
for (int i = st; i <= en; i++)
dis[i] = inf;
vis[st] = true;
dis[st] = 0;
que.push(st);
int u;
while (!que.empty()) {
u = que.front();
que.pop();
for (int id = head[u]; ~id; id = edges[id].next) {
int v = edges[id].to;
if ((edges[id].flow > 0) && (dis[u] + edges[id].cost < dis[v])) {
dis[v] = dis[u] + edges[id].cost;
preID[v] = id;
if (!vis[v]) {
vis[v] = true;
que.push(v);
}
}
}
vis[u] = false;
}
return dis[en] != inf;
}
public:
void addEdge(int u, int v, int f, int c)
{
edges[idx] = node(v, head[u], u, f, c);
head[u] = idx++;
edges[idx] = node(u, head[v], v, 0, -c);
head[v] = idx++;
}
void init(int s, int e)
{
st = s, en = e;
memset(head, -1, sizeof head);
idx = 0;
}
int minCost()
{
int ans = 0;
while (spfa()) {
ans += dis[en];
for (int id = preID[en]; id != st; id = preID[edges[id].pre]) {
edges[id].flow--;
edges[id ^ 1].flow++;
}
}
return ans;
}
} mcmf;
int main()
{
int n, m, u, v, c, c1, cas = 0;
while (scanf("%d %d", &n, &m) != EOF) {
mcmf.init(0, n + 1);
mcmf.addEdge(0, 1, 2, 0);
mcmf.addEdge(n, n + 1, 2, 0);
while (m--) {
scanf("%d %d %d %d", &u, &v, &c, &c1);
mcmf.addEdge(u, v, 1, c);
mcmf.addEdge(u, v, 1, c + c1);
}
printf("Case %d: %d\n", ++cas, mcmf.minCost());
}
return 0;
}