csp20170304地铁修建_Solution

ccf20170304地铁修建_Solution

这里最短路为所以从点1到点n的路径中最长的道路的长度。

因为1 ≤ n ≤ 100000，1 ≤ m ≤ 200000，属于稀疏图，所以使用Spfa(循环队列)较适合，如果使用dijkstra需要堆优化。

 

其实这道题用并查集最好，对所有道路长度从小到大排序，依次添加道路，直到点1和点n相连(属于同一个集合)。

1.并查集

#include <stdio.h>
#include <stdlib.h>
#define maxn 100000
#define maxm 200000

//并查集 UnionFind
//171s

struct node
{
    long x,y,len;
};

long father[maxn+1];

long cmp(const void *a,const void *b)
{
    return (*(struct node *)a).len-(*(struct node *)b).len;
}

long getfather(long d)
{
    if (father[d]==d)
        return d;
    father[d]=getfather(father[d]);
    return father[d];
}

int main()
{
    long n,m,i,u,v;
    struct node *road=(struct node *) malloc (sizeof(struct node)*(maxm+1));
    scanf("%ld%ld",&n,&m);
    for (i=1;i<=m;i++)
        scanf("%ld%ld%ld",&road[i].x,&road[i].y,&road[i].len);
    qsort(&road[1],m,sizeof(struct node),cmp);
    for (i=1;i<=n;i++)
        father[i]=i;
    //边从小到大 加入图中，直到1到n可达
    //每次加边(x,y) father[y]=x
    for (i=1;i<=m;i++)
    {
        u=getfather(road[i].x);
        v=getfather(road[i].y);
        father[v]=u;

        //每一次判断1,n的父亲是否相同，如果是，即1到n可达
        if (getfather(father[1])==getfather(father[n]))
            break;
    }
    //即1到n必经过该边i，而该边长度最长
    printf("%ld
",road[i].len);
    return 0;
}

2.Spfa(循环队列)

#include <stdio.h>
#include <stdlib.h>
#include <malloc.h>
#include <stdbool.h>
#define maxn 100000
#define maxm 200000
#define maxc 1000000

long max(long a,long b)
{
    if (a>b)
        return a;
    else
        return b;
}

int main()
{
    struct node
    {
        long d,len;
        struct node *next;
    };
    long n,m,head,tail,d,value,i,a,b,c;
    long *dis=(long *) malloc (sizeof(long)*(maxn+1));
    //循环队列
    long *line=(long *) malloc (sizeof(long)*(maxn+1));
    bool *vis=(bool *) malloc (sizeof(bool)*(maxn+1));
    //本身已经是struct node *point，创建数组再加"*"
    struct node **point=(struct node **) malloc (sizeof(struct node *)*(maxn+1));
    struct node *t;
    scanf("%ld%ld",&n,&m);

    for (i=1;i<=n;i++)
    {
        point[i]=NULL;
        //1 ≤ c ≤ 1000000
        //max<=c
        dis[i]=maxc;
        vis[i]=true;
    }
    for (i=1;i<=m;i++)
    {
        scanf("%ld%ld%ld",&a,&b,&c);
        //build a
        t=(struct node *) malloc (sizeof(struct node));
        t->d=b;
        t->len=c;
        if (point[a]!=NULL)
            t->next=point[a];
        else
            t->next=NULL;
        point[a]=t;
        //build b
        t=(struct node *) malloc (sizeof(struct node));
        t->d=a;
        t->len=c;
        if (point[b]!=NULL)
            t->next=point[b];
        else
            t->next=NULL;
        point[b]=t;
    }
    dis[1]=0;
    vis[1]=false;
    line[1]=1;
    //head=front-1 牺牲一个位置 front为队列头位置
    head=0;
    tail=1;
    //这里的循环队列不用判断空或者溢出
    //因为如果那样的话，已经不能用了。
    //不存在空的情况。而数组要开的足够大，使队列不溢出。
    while (head!=tail)
    {
        //head++;
        //队列为0~n
        head++;
        if (head==n+1)
            head=0;
        d=line[head];
        t=point[d];
        while (t)
        {
            if (dis[d]<t->len)
                value=t->len;
            else
                value=dis[d];
            if (value<dis[t->d])
            {
                dis[t->d]=value;
                //如果该点未被放在队列里，则入队；否则不入队
                //即在队列里的点都不重复
                //则队列(tail-head)最多有n+1个数(n个点+空位置(head))
                if (vis[t->d])
                {
                    //tail++;
                    tail++;
                    if (tail==n+1)
                        tail=0;
                    line[tail]=t->d;
                    vis[t->d]=false;
                }
            }
            t=t->next;
        }
        vis[d]=true;
    }
    printf("%ld
",dis[n]);
    return 0;
}

3.dijkstra(80 Points)

#include <stdio.h>
#include <stdlib.h>
#include <malloc.h>
#include <stdbool.h>
#define maxn 100000
#define maxm 200000
#define maxc 1000000
#define maxdist 1000000000

//裸dijkstra 80分 超时

long max(long a,long b)
{
    if (a>b)
        return a;
    else
        return b;
}

int main()
{
    struct node
    {
        long d,len;
        struct node *next;
    };
    struct node **point=(struct node **) malloc (sizeof(struct node *)*(maxn+1));
    struct node *p;
    bool *vis=(bool *) malloc (sizeof(bool)*(maxn+1));
    long *dist=(long *) malloc (sizeof(long)*(maxn+1));
    long n,m,i,j,a,b,c,d,value,mindist;
    scanf("%ld%ld",&n,&m);
    for (i=1;i<=n;i++)
    {
        point[i]=NULL;
        dist[i]=maxc;
        vis[i]=true;
    }
    for (i=1;i<=m;i++)
    {
        scanf("%ld%ld%ld",&a,&b,&c);
        //build a
        p=(struct node *) malloc (sizeof(struct node));
        p->d=b;
        p->len=c;
        if (point[a]!=NULL)
            p->next=point[a];
        else
            p->next=NULL;
        point[a]=p;
        //build b
        p=(struct node *) malloc (sizeof(struct node));
        p->d=a;
        p->len=c;
        if (point[b]!=NULL)
            p->next=point[b];
        else
            p->next=NULL;
        point[b]=p;
    }
    for (i=1;i<=n;i++)
    {
        vis[i]=true;
        dist[i]=maxdist;
    }
    //从点1开始
    dist[1]=0;
    d=1;
    vis[1]=false;
    for (i=1;i<n;i++)
    {
        p=point[d];
        while (p)
        {
            if (dist[d]<p->len)
                value=p->len;
            else
                value=dist[d];
            if (value<dist[p->d])
                dist[p->d]=value;
            p=p->next;
        }
        mindist=maxdist;
        for (j=2;j<=n;j++)
            if (vis[j] && dist[j]<mindist)
            {
                mindist=dist[j];
                d=j;
            }
        //从点n结束
        if (d==n)
            break;
        vis[d]=false;
    }
    printf("%ld
",dist[n]);
    //最小堆优化
    return 0;
}

4.dijkstra堆优化

#include <stdio.h>
#include <stdlib.h>
#include <malloc.h>
#include <stdbool.h>
#define maxn 100000
#define maxm 200000
#define maxc 1000000
#define maxdist 1000000000

//裸dijkstra 80分 超时

long max(long a,long b)
{
    if (a>b)
        return a;
    else
        return b;
}

int main()
{
    struct node
    {
        long d,len;
        struct node *next;
    };
    struct node **point=(struct node **) malloc (sizeof(struct node *)*(maxn+1));
    struct node *p;
    bool *vis=(bool *) malloc (sizeof(bool)*(maxn+1));
    long *dist=(long *) malloc (sizeof(long)*(maxn+1));
    long n,m,i,j,a,b,c,d,value,mindist;
    scanf("%ld%ld",&n,&m);
    for (i=1;i<=n;i++)
    {
        point[i]=NULL;
        dist[i]=maxc;
        vis[i]=true;
    }
    for (i=1;i<=m;i++)
    {
        scanf("%ld%ld%ld",&a,&b,&c);
        //build a
        p=(struct node *) malloc (sizeof(struct node));
        p->d=b;
        p->len=c;
        if (point[a]!=NULL)
            p->next=point[a];
        else
            p->next=NULL;
        point[a]=p;
        //build b
        p=(struct node *) malloc (sizeof(struct node));
        p->d=a;
        p->len=c;
        if (point[b]!=NULL)
            p->next=point[b];
        else
            p->next=NULL;
        point[b]=p;
    }
    for (i=1;i<=n;i++)
    {
        vis[i]=true;
        dist[i]=maxdist;
    }
    //从点1开始
    dist[1]=0;
    d=1;
    vis[1]=false;
    for (i=1;i<n;i++)
    {
        p=point[d];
        while (p)
        {
            if (dist[d]<p->len)
                value=p->len;
            else
                value=dist[d];
            if (value<dist[p->d])
                dist[p->d]=value;
            p=p->next;
        }
        mindist=maxdist;
        for (j=2;j<=n;j++)
            if (vis[j] && dist[j]<mindist)
            {
                mindist=dist[j];
                d=j;
            }
        //从点n结束
        if (d==n)
            break;
        vis[d]=false;
    }
    printf("%ld
",dist[n]);
    //最小堆优化
    return 0;
}