• cf228 div2 B. Fox and Cross ( 贪心, 模拟)


    题目给出一个图, 问图中所有的“#”能否恰好独立的组成十字架(一个#只能在一个十字架中)一开始用dfs写的好混乱。。 后面发现从左上到右下,如果一个#满足正好在中间且四周可以消去,那就一定要消去,否则就NO。这样枚举一遍就好了。

    题目:

    B. Fox and Cross
    time limit per test
    1 second
    memory limit per test
    256 megabytes
    input
    standard input
    output
    standard output

    Fox Ciel has a board with n rows and n columns. So, the board consists of n × n cells. Each cell contains either a symbol '.', or a symbol '#'.

    A cross on the board is a connected set of exactly five cells of the board that looks like a cross. The picture below shows how it looks.

    Ciel wants to draw several (may be zero) crosses on the board. Each cross must cover exactly five cells with symbols '#', and any cell with symbol '#' must belong to some cross. No two crosses can share a cell.

    Please, tell Ciel if she can draw the crosses in the described way.

    Input

    The first line contains an integer n (3 ≤ n ≤ 100) — the size of the board.

    Each of the next n lines describes one row of the board. The i-th line describes the i-th row of the board and consists of n characters. Each character is either a symbol '.', or a symbol '#'.

    Output

    Output a single line with "YES" if Ciel can draw the crosses in the described way. Otherwise output a single line with "NO".

    Sample test(s)
    Input
    5
    .#...
    ####.
    .####
    ...#.
    .....
    Output
    YES
    Input
    4
    ####
    ####
    ####
    ####
    Output
    NO
    Input
    6
    .#....
    ####..
    .####.
    .#.##.
    ######
    .#..#.
    Output
    YES
    Input
    6
    .#..#.
    ######
    .####.
    .####.
    ######
    .#..#.
    Output
    NO
    Input
    3
    ...
    ...
    ...
    Output
    YES
    Note

    In example 1, you can draw two crosses. The picture below shows what they look like.

    In example 2, the board contains 16 cells with '#', but each cross contains 5. Since 16 is not a multiple of 5, so it's impossible to cover all.

    代码:

     1 #include <iostream>
     2 #include <algorithm>
     3 #include <cstdio>
     4 #include <vector>
     5 #include <queue>
     6 #include <stack>
     7 #include <cmath>
     8 #include <cstring>
     9 #include <string>
    10 #include <cstdlib>
    11 using namespace std;
    12 #define LL lolng long
    13 
    14 int n;
    15 char G[105][105];
    16 void init()
    17 {
    18     scanf("%d",&n);
    19     getchar();
    20 
    21     for(int i=0;i<n;i++)
    22     {
    23         for(int j=0;j<n;j++)
    24         {
    25             scanf("%c",&G[i][j]);
    26         }
    27         getchar();
    28     }
    29 }
    30 
    31 bool inmap(int x,int y)
    32 {
    33     if(x>=0&&x<n &&y>=0&&y<n)
    34         return true;
    35     return false;
    36 }
    37 
    38 int dx[]= {1,-1,0,0};
    39 int dy[] ={0,0,1,-1};
    40 
    41 
    42 int main()
    43 {
    44     init();
    45     int cnt=0;
    46     int mm=0;
    47     for(int i=0;i<n;i++)
    48     {
    49         for(int j=0;j<n;j++)
    50         {
    51             if( G[i][j] =='#')
    52             {
    53                 mm++;
    54                 cnt =1;
    55                 for(int p=0;p<4;p++)
    56                 {
    57                     if(inmap(i+dx[p],j+dy[p])&&G[i+dx[p]][j+dy[p]]=='#')
    58                         cnt++;
    59                 }
    60                 if(cnt==5)
    61                 {
    62                     G[i][j]='.';
    63                     for(int p=0;p<4;p++)
    64                     {
    65                         G[i+dx[p]][j+dy[p]]='.';
    66                     }
    67                 }
    68                 //flag = dfs(i,j);
    69             }
    70         }
    71 
    72     }
    73     cnt=0;
    74      for(int i=0;i<n;i++)
    75     {
    76         for(int j=0;j<n;j++)
    77         {
    78                 if(G[i][j] =='#')
    79                 {
    80                     cnt=1;
    81                     break;
    82                 }
    83         }
    84     }
    85     if(!cnt||mm==0)cout<<"YES"<<endl;
    86     else
    87         cout<<"NO"<<endl;
    88     return 0;
    89 }
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  • 原文地址:https://www.cnblogs.com/doubleshik/p/3537806.html
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