题意:有一些机器用来构成一个组装电脑的生产线,每台机器对输入机器的电脑有要求,符合要求的电脑被送入机器后会输出一台规定配件情况的电脑。而且分别告知每台机器在单位时间内处理电脑的台数。将这些机器连成一个生产线,使得单位时间内出产的完整的电脑数量最多,完整的电脑就是具有所有配件的电脑。输出单位时间内的最大出产台数。
分析:这个是一个网络流,对流过每个点的流量有限制,这样就需要拆点,把每个结点拆成两个,一个入点,一个出点,并从入点到出点连接一条边流量为点的的流向限制,把所有接入该点的边接入它的入点,从该点流出的边从出点流出。
这题的建图方法是,每个机器是一个点,把源与所有没有必须元件的点连接,所有完整元件的点与汇连接,若一台机器的输出能符合另一台机器的输入条件则连一条边。把每个机器拆点,其内部边流量为其生产速度。
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#include <iostream>
#include <cstdio>
#include <cstdlib>
#include <cstring>
usingnamespace std;
#define maxp 11
#define maxn 55
#define inf 0x3f3f3f3f
struct edge
{
int x, y, nxt;
int c;
} bf[maxn * maxn * maxn];
struct Machine
{
int q, s[maxp], d[maxp];
} machine[maxn];
int p, n, s, t, ans;
int ne, head[maxn], cur[maxn], ps[maxn], dep[maxn];
void addedge(int x, int y, int c)
{
bf[ne].x = x;
bf[ne].y = y;
bf[ne].c = c;
bf[ne].nxt = head[x];
head[x] = ne++;
bf[ne].x = y;
bf[ne].y = x;
bf[ne].c =0;
bf[ne].nxt = head[y];
head[y] = ne++;
}
int flow(int n, int s, int t)
{
int tr, res =0;
int i, j, k, f, r, top;
while (1)
{
memset(dep, -1, n *sizeof(int));
for (f = dep[ps[0] = s] =0, r =1; f != r;)
for (i = ps[f++], j = head[i]; j; j = bf[j].nxt)
{
if (bf[j].c &&-1== dep[k = bf[j].y])
{
dep[k] = dep[i] +1;
ps[r++] = k;
if (k == t)
{
f = r;
break;
}
}
}
if (-1== dep[t])
break;
memcpy(cur, head, n *sizeof(int));
for (i = s, top =0;;)
{
if (i == t)
{
for (k =0, tr = inf; k < top; ++k)
if (bf[ps[k]].c < tr)
tr = bf[ps[f = k]].c;
for (k =0; k < top; ++k)
bf[ps[k]].c -= tr, bf[ps[k] ^1].c += tr;
res += tr;
i = bf[ps[top = f]].x;
}
for (j = cur[i]; cur[i]; j = cur[i] = bf[cur[i]].nxt)
if (bf[j].c && dep[i] +1== dep[bf[j].y])
break;
if (cur[i])
{
ps[top++] = cur[i];
i = bf[cur[i]].y;
}
else
{
if (0== top)
break;
dep[i] =-1;
i = bf[ps[--top]].x;
}
}
}
return res;
}
bool ok(int a, int b)
{
if (a == b)
returnfalse;
for (int i =0; i < p; i++)
if (machine[a].d[i] + machine[b].s[i] ==1)
returnfalse;
returntrue;
}
void input()
{
for (int i =1; i <=2* n; i +=2)
{
scanf("%d", &machine[i /2].q);
for (int j =0; j < p; j++)
scanf("%d", &machine[i /2].s[j]);
for (int j =0; j < p; j++)
scanf("%d", &machine[i /2].d[j]);
addedge(i, i +1, machine[i /2].q);
}
s =0;
t =2* n +1;
for (int i =0; i < n; i++)
{
bool ok =true;
for (int j =0; j < p; j++)
if (machine[i].s[j] ==1)
{
ok =false;
break;
}
if (ok)
addedge(s, i *2+1, inf);
}
for (int i =0; i < n; i++)
{
bool ok =true;
for (int j =0; j < p; j++)
if (machine[i].d[j] !=1)
{
ok =false;
break;
}
if (ok)
addedge(i *2+2, t, inf);
}
for (int i =0; i < n; i++)
for (int j =0; j < n; j++)
if (ok(i, j))
addedge(i *2+2, j *2+1, inf);
}
bool ok(edge &a)
{
if (!(a.c >0&& a.x != s && a.y != s && a.x != t && a.y != t))
returnfalse;
if ((a.y &1) &&!(a.x &1) && (a.y +1== a.x))
returnfalse;
returntrue;
}
void output()
{
printf("%d ", ans);
int ecount =0;
for (int i =2; i < ne; i++)
if ((i &1) && ok(bf[i]))
ecount++;
printf("%d\n", ecount);
for (int i =2; i < ne; i++)
if ((i &1) && ok(bf[i]))
printf("%d %d %d\n", bf[i].y /2, (bf[i].x +1) /2, bf[i].c);
}
int main()
{
//freopen("t.txt", "r", stdin);
scanf("%d%d", &p, &n);
ne =2;
memset(head, 0, sizeof(head));
input();
ans = flow(n *2+2, s, t);
output();
return0;
}
#include <cstdio>
#include <cstdlib>
#include <cstring>
usingnamespace std;
#define maxp 11
#define maxn 55
#define inf 0x3f3f3f3f
struct edge
{
int x, y, nxt;
int c;
} bf[maxn * maxn * maxn];
struct Machine
{
int q, s[maxp], d[maxp];
} machine[maxn];
int p, n, s, t, ans;
int ne, head[maxn], cur[maxn], ps[maxn], dep[maxn];
void addedge(int x, int y, int c)
{
bf[ne].x = x;
bf[ne].y = y;
bf[ne].c = c;
bf[ne].nxt = head[x];
head[x] = ne++;
bf[ne].x = y;
bf[ne].y = x;
bf[ne].c =0;
bf[ne].nxt = head[y];
head[y] = ne++;
}
int flow(int n, int s, int t)
{
int tr, res =0;
int i, j, k, f, r, top;
while (1)
{
memset(dep, -1, n *sizeof(int));
for (f = dep[ps[0] = s] =0, r =1; f != r;)
for (i = ps[f++], j = head[i]; j; j = bf[j].nxt)
{
if (bf[j].c &&-1== dep[k = bf[j].y])
{
dep[k] = dep[i] +1;
ps[r++] = k;
if (k == t)
{
f = r;
break;
}
}
}
if (-1== dep[t])
break;
memcpy(cur, head, n *sizeof(int));
for (i = s, top =0;;)
{
if (i == t)
{
for (k =0, tr = inf; k < top; ++k)
if (bf[ps[k]].c < tr)
tr = bf[ps[f = k]].c;
for (k =0; k < top; ++k)
bf[ps[k]].c -= tr, bf[ps[k] ^1].c += tr;
res += tr;
i = bf[ps[top = f]].x;
}
for (j = cur[i]; cur[i]; j = cur[i] = bf[cur[i]].nxt)
if (bf[j].c && dep[i] +1== dep[bf[j].y])
break;
if (cur[i])
{
ps[top++] = cur[i];
i = bf[cur[i]].y;
}
else
{
if (0== top)
break;
dep[i] =-1;
i = bf[ps[--top]].x;
}
}
}
return res;
}
bool ok(int a, int b)
{
if (a == b)
returnfalse;
for (int i =0; i < p; i++)
if (machine[a].d[i] + machine[b].s[i] ==1)
returnfalse;
returntrue;
}
void input()
{
for (int i =1; i <=2* n; i +=2)
{
scanf("%d", &machine[i /2].q);
for (int j =0; j < p; j++)
scanf("%d", &machine[i /2].s[j]);
for (int j =0; j < p; j++)
scanf("%d", &machine[i /2].d[j]);
addedge(i, i +1, machine[i /2].q);
}
s =0;
t =2* n +1;
for (int i =0; i < n; i++)
{
bool ok =true;
for (int j =0; j < p; j++)
if (machine[i].s[j] ==1)
{
ok =false;
break;
}
if (ok)
addedge(s, i *2+1, inf);
}
for (int i =0; i < n; i++)
{
bool ok =true;
for (int j =0; j < p; j++)
if (machine[i].d[j] !=1)
{
ok =false;
break;
}
if (ok)
addedge(i *2+2, t, inf);
}
for (int i =0; i < n; i++)
for (int j =0; j < n; j++)
if (ok(i, j))
addedge(i *2+2, j *2+1, inf);
}
bool ok(edge &a)
{
if (!(a.c >0&& a.x != s && a.y != s && a.x != t && a.y != t))
returnfalse;
if ((a.y &1) &&!(a.x &1) && (a.y +1== a.x))
returnfalse;
returntrue;
}
void output()
{
printf("%d ", ans);
int ecount =0;
for (int i =2; i < ne; i++)
if ((i &1) && ok(bf[i]))
ecount++;
printf("%d\n", ecount);
for (int i =2; i < ne; i++)
if ((i &1) && ok(bf[i]))
printf("%d %d %d\n", bf[i].y /2, (bf[i].x +1) /2, bf[i].c);
}
int main()
{
//freopen("t.txt", "r", stdin);
scanf("%d%d", &p, &n);
ne =2;
memset(head, 0, sizeof(head));
input();
ans = flow(n *2+2, s, t);
output();
return0;
}