• HDU


    Find a way

    Time Limit: 3000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)
    Total Submission(s): 16184    Accepted Submission(s): 5194


    Problem Description
    Pass a year learning in Hangzhou, yifenfei arrival hometown Ningbo at finally. Leave Ningbo one year, yifenfei have many people to meet. Especially a good friend Merceki.
    Yifenfei’s home is at the countryside, but Merceki’s home is in the center of city. So yifenfei made arrangements with Merceki to meet at a KFC. There are many KFC in Ningbo, they want to choose one that let the total time to it be most smallest. 
    Now give you a Ningbo map, Both yifenfei and Merceki can move up, down ,left, right to the adjacent road by cost 11 minutes.
     
    Input
    The input contains multiple test cases.
    Each test case include, first two integers n, m. (2<=n,m<=200). 
    Next n lines, each line included m character.
    ‘Y’ express yifenfei initial position.
    ‘M’    express Merceki initial position.
    ‘#’ forbid road;
    ‘.’ Road.
    ‘@’ KCF
     
    Output
    For each test case output the minimum total time that both yifenfei and Merceki to arrival one of KFC.You may sure there is always have a KFC that can let them meet.
     
    Sample Input
    4 4
    Y.#@
    ....
    .#..
    @..M
    4 4
    Y.#@
    ....
    .#..
    @#.M
    5 5
    Y..@.
    .#...
    .#...
    @..M.
    #...#
     
    Sample Output
    66
    88
    66
     
    Author
    yifenfei
     
    Source
     
    Recommend
    yifenfei

    题意:Y和M在两个不同起点,他们要到KFC集合,路上有多家KFC,问到哪家KFC能使他们的步数和最少?

    思路:两边bfs,分别存取Y和M到各家KFC的步数,相加求和,枚举各KFC输出最小值。

    #include<stdio.h>
    #include<string.h>
    #include<queue>
    using namespace std;
    
    char a[205][205];
    int b[205][205],c[205][205];
    int t[4][2]={{1,0},{0,1},{-1,0},{0,-1}};
    
    struct Node{
        int x,y,s;
    }node;
    
    int main()
    {
        int n,m,yx,yy,mx,my,i,j;
        while(~scanf("%d%d",&n,&m)){
            memset(c,0,sizeof(c));
            queue<Node> q;
            for(i=0;i<n;i++){
                getchar();
                scanf("%s",a[i]);
                for(j=0;j<m;j++){
                    if(a[i][j]=='Y'){
                        yx=i;
                        yy=j;
                    }
                    if(a[i][j]=='M'){
                        mx=i;
                        my=j;
                    }
                }
            }
            memset(b,0,sizeof(b));
            b[yx][yy]=1;
            node.x=yx;
            node.y=yy;
            node.s=0;
            q.push(node);
            while(q.size()){
                for(i=0;i<4;i++){
                    int tx=q.front().x+t[i][0];
                    int ty=q.front().y+t[i][1];
                    if(tx<0||ty<0||tx>=n||ty>=m) continue;
                    if(a[tx][ty]=='#'||b[tx][ty]==1) continue;
                    b[tx][ty]=1;
                    if(a[tx][ty]=='@'){
                        c[tx][ty]=q.front().s+11;
                    }
                    node.x=tx;
                    node.y=ty;
                    node.s=q.front().s+11;
                    q.push(node);
                }
                q.pop();
            }
            memset(b,0,sizeof(b));
            b[mx][my]=1;
            node.x=mx;
            node.y=my;
            node.s=0;
            q.push(node);
            while(q.size()){
                for(i=0;i<4;i++){
                    int tx=q.front().x+t[i][0];
                    int ty=q.front().y+t[i][1];
                    if(tx<0||ty<0||tx>=n||ty>=m) continue;
                    if(a[tx][ty]=='#'||b[tx][ty]==1) continue;
                    b[tx][ty]=1;
                    if(a[tx][ty]=='@'){
                        c[tx][ty]+=q.front().s+11;
                    }
                    node.x=tx;
                    node.y=ty;
                    node.s=q.front().s+11;
                    q.push(node);
                }
                q.pop();
            }
            int min=1000000000;
            for(i=0;i<n;i++){
                for(j=0;j<m;j++){
                    if(c[i][j]<min&&c[i][j]!=0) min=c[i][j];
                }
            }
            printf("%d
    ",min);
        } 
        return 0;
    }
  • 相关阅读:
    测试文件报告
    Bug Variations
    阶段一 问答题2
    阶段一 问答题1
    HeapSort
    Git系列 (01):git clone 速度太慢解决方法
    ES6系列 (03):链判断运算符和Null 判断运算符
    ES6系列 (02):解构赋值
    ES6系列 (01):箭头函数this指向问题
    我忘却了所有,抛却了信仰,舍弃了轮回,只为,那曾在佛前哭泣的玫瑰,早已失去旧日的光泽。
  • 原文地址:https://www.cnblogs.com/yzm10/p/7252706.html
Copyright © 2020-2023  润新知