• Pebbles


    Pebbles

    Time Limit: 3000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
    Total Submission(s): 689    Accepted Submission(s): 373

     

    Problem Description
    You're given an unlimited number of pebbles to distribute across an N x N game board (N drawn from [3, 15]), where each square on the board contains some positive point value between 10 and 99, inclusive. A 6 x 6 board might look like this:

     

    The player distributes pebbles across the board so that:

     

    ?At most one pebble resides in any given square.
    ?No two pebbles are placed on adjacent squares. Two squares are considered adjacent if they are horizontal, vertical, or even diagonal neighbors. There's no board wrap, so 44 and 61 of row three aren't neighbors. Neither are 33 and 75 nor 55 and 92.

     

    The goal is to maximize the number of points claimed by your placement of pebbles.

     

    Write a program that reads in a sequence of boards from an input file and prints to stdout the maximum number of points attainable by an optimal pebble placement for each.

     

     

     

    Input
    Each board is expressed as a series of lines, where each line is a space-delimited series of numbers. A blank line marks the end of each board (including the last one)

     

     

     

    Output
    then your program would print the maximum number of points one can get by optimally distributing pebbles while respecting the two rules, which would be this (each output should be printed on a single line and followed with a newline):

     

     

     

    Sample Input
    71 24 95 56 54
    85 50 74 94 28
    92 96 23 71 10
    23 61 31 30 46
    64 33 32 95 89

     

    78 78 11 55 20 11
    98 54 81 43 39 97
    12 15 79 99 58 10
    13 79 83 65 34 17
    85 59 61 12 58 97
    40 63 97 85 66 90

     

    33 49 78 79 30 16 34 88 54 39 26
    80 21 32 71 89 63 39 52 90 14 89
    49 66 33 19 45 61 31 29 84 98 58
    36 53 35 33 88 90 19 23 76 23 76
    77 27 25 42 70 36 35 91 17 79 43
    33 85 33 59 47 46 63 75 98 96 55
    75 88 10 57 85 71 34 10 59 84 45
    29 34 43 46 75 28 47 63 48 16 19
    62 57 91 85 89 70 80 30 19 38 14
    61 35 36 20 38 18 89 64 63 88 83
    45 46 89 53 83 59 48 45 87 98 21

     

    15 95 24 35 79 35 55 66 91 95 86 87
    94 15 84 42 88 83 64 50 22 99 13 32
    85 12 43 39 41 23 35 97 54 98 18 85
    84 61 77 96 49 38 75 95 16 71 22 14
    18 72 97 94 43 18 59 78 33 80 68 59
    26 94 78 87 78 92 59 83 26 88 91 91
    34 84 53 98 83 49 60 11 55 17 51 75
    29 80 14 79 15 18 94 39 69 24 93 41
    66 64 88 82 21 56 16 41 57 74 51 79
    49 15 59 21 37 27 78 41 38 82 19 62
    54 91 47 29 38 67 52 92 81 99 11 27
    31 62 32 97 42 93 43 79 88 44 54 48
     

     

    Sample Output
    572
    683
    2096
    2755
     

     

    Source
    2007 ACM-ICPC Pacific Northwest Region
     

     

    Recommend
    lcy

    把每行取或不取的情况看成二进制数DP[i][u]表示到第i行为止且第i行以第u种状态能取到的最大值.
    状态转移方程:DP[i][u]=Max(DP[i-1][v])+sum(i,u).

     

    #include<stdio.h>
    #include<string.h>
    #include<vector>
    #include<iostream>
    using namespace std;
    int N,S=0;
    int s[20],state[1600],d[20][20];
    vector<int> G[1600];
    int DP[20][1600];
    bool legal(int x)
    {
        int i;
        for (i=1;i<15;i++)
        if ((x & s[i])&&(x & s[i-1])) return false;
        return true;
    }
    void getstate()
    {
        int i;
        for (i=0;i<=15;i++) s[i]=1<<i;
        for (i=0;i<(1<<15);i++)
        if (legal(i))
        {
            S++;
            state[S]=i;
        }
    }
    bool link(int u,int v)
    {
        int i;
        if ((u & s[0])&&((v & s[0])||(v & s[1]))) return false;
        if ((u & s[14])&&((v & s[14])||(v & s[13]))) return false;
        for (i=1;i<14;i++)
        if ((u & s[i])&&((v & s[i-1])||(v & s[i])||(v & s[i+1]))) return false;
        return true;
    }
    void neibour()
    {
        int i,j;
        for (i=1;i<=S;i++) G[i].clear();
        for (i=1;i<=S;i++)
         for (j=1;j<=S;j++)
         if (link(state[i],state[j]))
             G[i].push_back(j);
    }
    int sum(int l,int st)
    {
        int ans=0,i;
        if (st>=s[N]) return 0;
        for (i=0;i<N;i++)
        if (st & s[i]) ans+=d[l][i];
        return ans;
    }
    int main()
    {
        char str[200],ch;
        getstate();
        neibour();
        while(gets(str))
        {
            int i,j,k;
            N=(strlen(str)+1)/3;
            for (i=0;i<N;i++)
            {
                char ch1=str[3*i]-'0',ch2=str[3*i+1]-'0';
                d[0][i]=ch1*10+ch2;
            }
            for (i=1;i<N;i++)
             for (j=0;j<N;j++)
                 scanf("%d",&d[i][j]);
            ch=getchar();
            ch=getchar();
            memset(DP,0,sizeof(DP));
            for (i=1;i<=S;i++)
            {
                if (state[i]>=s[N]) break;
                DP[0][i]=sum(0,state[i]);
            }
            for (i=1;i<N;i++)
             for (j=1;j<=S;j++)
             {
                 if (state[j]>s[N]) break;
                 int tmp=sum(i,state[j]);
                 for (k=0;k<G[j].size();k++)
                 if (DP[i-1][G[j][k]]>DP[i][j]) DP[i][j]=DP[i-1][G[j][k]];
                 DP[i][j]+=tmp;
             }
            int Max=0;
            for (i=1;i<=S;i++)
            if (DP[N-1][i]>Max) Max=DP[N-1][i];
            printf("%d
    ",Max);
        }
        return 0;    
    }
    

     

     

     

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  • 原文地址:https://www.cnblogs.com/dramstadt/p/3199074.html
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