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time limit: 2 sspace limit: 128000 KBtopic rank: Master MasterTitle Description DescriptionGiven a forward graph, each edge has a capacity of C and an expansion fee of W. The expansion fee here refers to the cost of expanding the capacity by 1. Please:
1, in the case of no expansion, the maximum flow of 1 to N ;
2, the maximum flow of 1 to N to increase the minimum required for the expansion of K cost.
Enter a description Input DescriptionThe first line of the input file contains three integers N,M,K, indicating the number of points, sides, and the amount of traffic that is required for the graph.
The next M -line contains four integers per line u,v,c,W, representing a from u to v, a capacity of C, The expansion cost is the side of W .
Output description Output DescriptionThe output file contains two integers in a row, representing the answers to question 1 and question 2, respectively.
Sample input Sample Input5 8 2
1 2 5 8
2 5 9 9
5 1 6 2
5 1 1 8
1 2 8 7
2 5 4 9
1 2 1 1
1 4 2 1
Sample output Sample Output13 19
Data range and Tips Data Size & Hint30% of the data,N<=100
100% of the data,N<=1000,M<=5000,K<=10
Exercises
Add new Edge running minimum cost maximum flow on participating networks with maximum flow!
Code:
1#include <cstdio>2#include <iostream>3#include <algorithm>4#include <queue>5 #defineMAXN 100106 #defineINF 0x7fffffff7 #defineS 18 #defineT N9 Ten using namespacestd; One A intN,m,k,cnt=1, VW[MAXN],ANS1,ANS2,U[MAXN],V[MAXN],HEAD[MAXN],X,DIS[MAXN],INQ[MAXN], from[MAXN]; - - structSS the { - intto ; - intNext; - intC; + intW; - int from; +}e[100010]; A at voidAddintUintVintCintW) - { -e[++cnt].to=v; -e[cnt].next=Head[u]; -E[CNT]. from=u; -E[cnt].c=C; ine[cnt].w=W; -head[u]=CNT; to } + - voidInsertintUintVintCintW) the { * Add (u,v,c,w); $Add (V,u,0,-W);Panax Notoginseng } - the BOOLBFS () + { A for(intI=1; i<=t;i++) dis[i]=inf; thequeue<int>que; + Que.push (S); -dis[s]=0; $ while(!que.empty ()) $ { - intnow=Que.front (); - Que.pop (); the for(intI=head[now];i;i=e[i].next) - if(e[i].c&&dis[e[i].to]>dis[now]+1)Wuyi { thedis[e[i].to]=dis[now]+1; - Que.push (e[i].to); Wu if(e[i].to==t)return 1; - } About } $ return 0; - } - - intDinic (intXintINF) A { + if(x==t)returnINF; the intrest=INF; - for(intI=head[x];i;i=e[i].next) $ if(e[i].c&&dis[e[i].to]==dis[x]+1) the { the intnow=dinic (E[i].to,min (REST,E[I].C)); thee[i].c-=Now ; the if(!now) dis[now]=0; -e[i^1].c+=Now ; inrest-=Now ; the } the returninf-rest; About } the the BOOLSPFA () the { + for(intI=0; i<=t;i++) dis[i]=inf; -queue<int>que; theQue.push (0);Bayiinq[0]=1; thedis[0]=0; the while(!que.empty ()) - { - intnow=Que.front (); the Que.pop (); theinq[now]=0; the for(intI=head[now];i;i=e[i].next) the if(e[i].c&&dis[e[i].to]>dis[now]+E[I].W) - { thedis[e[i].to]=dis[now]+E[I].W; the from[e[i].to]=i; the if(!inq[e[i].to])94 { theinq[e[i].to]=1; the Que.push (e[i].to); the }98 } About } - if(Dis[t]==inf)return 0;101 Else return 1; 102 } 103 104 intBCF () the {106 intx=inf;107 for(intI= from[t];i;i= from[E[i]. from])108x=min (x,e[i].c);109 for(intI= from[t];i;i= from[E[i]. from]) the {111ans2+=x*E[I].W; thee[i].c-=x;113e[i^1].c+=x; the } the } the 117 intMain ()118 {119scanf"%d%d%d",&n,&m,&K); - for(intI=1; i<=m;i++)121 {122 intu,v,w,c;123scanf"%d%d%d%d",&u[i],&v[i],&c,&vw[i]);124Insert (U[i],v[i],c,0); the }126 while(BFS ())127 while(X=dinic (S,inf)) ans1+=x; -Insert0,1K0); 129printf"%d", ans1); the for(intI=1; i<=m;i++)131 Insert (U[i],v[i],k,vw[i]); the while(SPFA ()) BCF ();133printf"%d\n", ANS2); 134 return 0;135}
C + + Path advanced--Network flow (network expansion)
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