hdu 2732 && poj 2711 Leapin' Lizards(dinic && 拆点建图经典)
Leapin' Lizards
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 1651 Accepted Submission(s): 678
The pillars in the room are aligned as a grid, with each pillar one unit away from the pillars to its east, west, north and south. Pillars at the edge of the grid are one unit away from the edge of the room (safety). Not all pillars necessarily have a lizard. A lizard is able to leap onto any unoccupied pillar that is within d units of his current one. A lizard standing on a pillar within leaping distance of the edge of the room may always leap to safety... but there's a catch: each pillar becomes weakened after each jump, and will soon collapse and no longer be usable by other lizards. Leaping onto a pillar does not cause it to weaken or collapse; only leaping off of it causes it to weaken and eventually collapse. Only one lizard may be on a pillar at any given time.
always 1 ≤ d ≤ 3.
4 3 1 1111 1111 1111 LLLL LLLL LLLL 3 2 00000 01110 00000 ..... .LLL. ..... 3 1 00000 01110 00000 ..... .LLL. ..... 5 2 00000000 02000000 00321100 02000000 00000000 ........ ........ ..LLLL.. ........ ........
Case #1: 2 lizards were left behind. Case #2: no lizard was left behind. Case #3: 3 lizards were left behind. Case #4: 1 lizard was left behind.
题目大意:给出两张地图。第一章地图代表的是每根柱子的高度,第二张地图代表的是每仅仅蜥蜴所在的位置
每根柱子仅仅能站一仅仅蜥蜴,蜥蜴离开该柱子时,柱子的高度会下降一个单元,当柱子的高度为0时。该柱子将不可用
如今给出每仅仅蜥蜴能跳跃的距离,问最少有多少仅仅蜥蜴逃不出来
这题还是主要是建图。,对于我这样的菜好难想。,。
解题思路:将柱子拆成2个点,权值为柱子的高度
将每仅仅蜥蜴所在的位置和超级源点连接,权值为1
将能通到外界的柱子连接到超级汇点。权值为INF
假设柱子间的距离满足蜥蜴跳跃的距离,连接起来。权值为INF
这样图就完毕了。
可是我依照这么建图完毕后,提交超时,, 改完提交过了,可是我又改回来后又过了,。这,。。= =+
#include<stdio.h> #include<string.h> #include<queue> #include<algorithm> using namespace std; #define M 1100//这里110会RE #define inf 0x3f3f3f3f #define ABS(a) (a>0 ? a:(-(a))) int head[M],dis[M],n,m,d,s,t,cnt; char g1[M][M],g2[M][M]; struct node{ int u,v,next,w; }mp[M*M]; void add(int u,int v,int w){ mp[cnt].u=u; mp[cnt].v=v; mp[cnt].w=w; mp[cnt].next=head[u]; head[u]=cnt++; mp[cnt].u=v; mp[cnt].v=u; mp[cnt].w=0; mp[cnt].next=head[v]; head[v]=cnt++; } int bfs(){ memset(dis,-1,sizeof(dis)); queue<int> q; dis[s]=0; q.push(s); while(!q.empty()){ int u=q.front(); q.pop(); for(int i=head[u];i!=-1;i=mp[i].next){ int v=mp[i].v; if(dis[v]==-1 && mp[i].w){ dis[v]=dis[u]+1; if(v==t) return 1; q.push(v); } } } return 0; } int dinic(int x,int low){ if(x==t) return low; int a,i,ans=0; for(int i=head[x];i!=-1;i=mp[i].next){ int v=mp[i].v; if(mp[i].w && dis[v]==dis[x]+1 && (a=dinic(v,min(low,mp[i].w)))>0){ mp[i].w-=a; mp[i^1].w+=a; ans+=a; if(low==ans) break; } } return ans; } int main(){ int T,i,j,k,l,cas=1; scanf("%d",&T); while(T--){ scanf("%d%d",&n,&d); for(i=1;i<=n;i++) scanf("%s",g1[i]+1); for(i=1;i<=n;i++) scanf("%s",g2[i]+1); m=strlen(g1[1]+1); memset(head,-1,sizeof(head)); int num=0; cnt=s=0; t=n*m*2+1;//s作为超级源点。t为超级汇点 for(i=1;i<=n;i++) for(j=1;j<=m;j++) if(g1[i][j]-'0'>0) add((i-1)*m+j,(i-1)*m+j+n*m,g1[i][j]-'0');//把有柱子的点拆开。(i-1)*m+j+n*m表示这个点拆开的还有一个点,中间权值为柱子高度 //把点都编号从一開始,编号用坐标表示就是上边写的。 for(i=1;i<=n;i++) for(j=1;j<=m;j++) if(g2[i][j]=='L'){ add(s,(i-1)*m+j,1);//假设这个点上有蜥蜴那么和源点相连 num++; } for(i=1;i<=n;i++) for(j=1;j<=m;j++) if(i<=d || j<=d || j>m-d || i>n-d) add((i-1)*m+j+n*m,t,inf);//假设这个点可以直接跳出去就和汇点相连权值为inf for(i=1;i<=n;i++) for(j=1;j<=m;j++) // if(g1[i][j]-'0'>0){ 開始的时候一直超时,加了这个推断后过了,,可是我又把这个推断凝视了,也过了,,。好诡异。!for(k=1;k<=n;k++) for(l=1;l<=m;l++) if( !(i==k&&j==l) && d>=(ABS(i-k)+ABS(j-l)) ) add((i-1)*m+j+n*m,(k-1)*m+l,inf);//假设这个点可以跳到别的点上那么把这两个点也相连 // } int ans=0; while(bfs()){ ans+=dinic(0,inf); } ans=num-ans; printf("Case #%d: ",cas++); if(ans==0) printf("no lizard was left behind.\n"); else if(ans==1) printf("1 lizard was left behind.\n"); else printf("%d lizards were left behind.\n",ans); } return 0; }