UVA_10594
这个题目没看懂什么意思,但看样例觉得应该是把边的容量都设成K,把费用设成时间,然后求个从1到N的最小费用流。为了限制流量,我们可以连一条容量为D、费用为0的0->1这样的有向边,然后求图的最小费用最大流即可。
#include<stdio.h>
#include<string.h>
#define MAXD 110
#define MAXM 20100
const long long int INF = 10000000000000000ll;
int first[MAXD], next[MAXM], v[MAXM], a[MAXM], b[MAXM], N, M, e;
int p[MAXD], link[MAXD], q[MAXD], inq[MAXD];
long long int w[MAXM], cost[MAXM], flow[MAXM], D, K;
long long int d[MAXD];
void add(int x, int y, long long int c, long long int f)
{
v[e] = y;
cost[e] = c;
flow[e] = f;
next[e] = first[x];
first[x] = e;
e ++;
}
int init()
{
int i;
if(scanf("%d%d", &N, &M) != 2)
return 0;
for(i = 0; i < M; i ++)
scanf("%d%d%lld", &a[i], &b[i], &w[i]);
scanf("%lld%lld", &D, &K);
e = 0;
memset(first, -1, sizeof(first));
for(i = 0; i < M; i ++)
{
add(a[i], b[i], w[i], K);
add(b[i], a[i], -w[i], 0);
add(b[i], a[i], w[i], K);
add(a[i], b[i], -w[i], 0);
}
add(0, 1, 0, D);
add(1, 0, 0, 0);
return 1;
}
void SPFA()
{
int i, u, front, rear;
for(i = 1; i <= N; i ++)
d[i] = INF;
d[0] = 0;
memset(inq, 0, sizeof(inq));
front = rear = 0;
q[rear ++] = 0;
inq[0] = 1;
while(front != rear)
{
u = q[front ++];
if(front > N)
front = 0;
inq[u] = 0;
for(i = first[u]; i != -1; i = next[i])
if(flow[i] && d[u] + cost[i] < d[v[i]])
{
d[v[i]] = d[u] + cost[i];
p[v[i]] = u;
link[v[i]] = i;
if(!inq[v[i]])
{
q[rear ++] = v[i];
if(rear > N)
rear = 0;
inq[v[i]] = 1;
}
}
}
}
long long int mincost()
{
long long int res = 0, f = 0, a;
int i, u;
for(;;)
{
SPFA();
if(d[N] == INF)
break;
a = INF;
for(u = N; u != 0; u = p[u])
{
int y =link[u];
if(flow[y] < a)
a = flow[y];
}
for(u = N; u != 0; u = p[u])
{
int y = link[u];
flow[y] -= a;
flow[y ^ 1] += a;
}
res += a * d[N];
f += a;
}
if(f == D)
return res;
else
return -1;
}
int main()
{
while(init())
{
long long int res = mincost();
if(res >= 0)
printf("%lld\n", res);
else
printf("Impossible.\n");
}
return 0;
}