• 2017 ICPC区域赛(西安站)--- J题 LOL(DP)


    题目链接

    problem description

    5 friends play LOL together . Every one should BAN one character and PICK one character . The enemy should BAN 55 characters and PICK 55 characters . All these 2020 heroes must be different .

    Every one can BAN any heroes by his personal washes . But he can only PICK heroes which he has bought .

    Suppose the enemy can PICK or BAN any heroes. How many different ways are there satisfying the conditions?

    For example , a valid way is :

    Player 11 : picks hero 11, bans hero 22

    Player 22 : picks hero 33, bans hero 44

    Player 33 : picks hero 5, bans hero 66

    Player 44 : picks hero 77, bans hero 88

    Player 55 : picks hero 99, bans hero 1010

    Enemies pick heroes 11,12,13,14,1511,12,13,14,15 , ban heroes 16,17,18,19,2016,17,18,19,20 .

    Input

    The input contains multiple test cases.(No more than 2020)

    In each test case . there’s 55 strings S[1] sim S[5]S[1]S[5] ,respectively whose lengths are 100100 , For the ii-th person if he has bought the jj-th hero, the jj-th character of S[i]S[i] is '11', or '00' if not. The total number of heroes is exactly 100100 .

    Output

    For each test case , print the answer mod 10000000071000000007 in a single line .

    样例输入

    0110011100011001001100011110001110001110001010010111111110101010010011010000110100011001001111101011
    1000111101111110110100001101001101010001111001001011110001111110101000011101000001011100001001011010
    0100101100011110011100110110011100111100010010011001111110101111111000000110001110000110001100001110
    1110010101010001000110100011101010001010000110001111111110101010000000001111001110110101110000010011
    1000010011111110001101100000101001110100011000111010011111110110111010011111010110101111011111011011

    样例输出

    515649254

    题目来源

    ACM-ICPC 2017 Asia Xi'an

     

    题意:题意说的很乱,简单来说就是输入5个长为100的‘0’ ‘1’字符串,要求从每一行中取出一个‘1’ 但是这5个‘1’得在不同的列,求有多少种取法? 注意输出的结果乘以常数tmp=531192758

    思路:我们可以用DP解决这个问题,dp[i][j]=(dp[i][j]+dp[i-1][j-1])%mod  保证当前行取得一个‘1’ 是在前一行的‘1’的后面,然后把这5行字符串用全排列颠倒顺序即可,把所有排列顺序下的dp值dp[5][100]求和即可

            这题正解是状压DP复杂度O(n)=2^5*500, 我上面的DP复杂度O(n)=5!*500, 这题现场赛的时候大多数人是暴力过的,唉~ 当时我傻了,DP想了一半觉得不太可行,赛后又想了想可行,比赛的时候压力有点大,有点紧张,特别是最后半个小时。

     

    代码如下:

    #include <iostream>
    #include <algorithm>
    #include <stdio.h>
    #include <cstring>
    using namespace std;
    typedef long long LL;
    const LL mod=1e9+7;
    char s[6][105];
    LL dp[6][105],ans;
    
    void Backtrack(int t)
    {
        if(t==5)
        {
            memset(dp,0,sizeof(dp));
            for(int i=1;i<=100;i++)
            {
                dp[1][i]=dp[1][i-1];
                if(s[1][i]=='1') dp[1][i]++;
            }
            for(int i=2;i<=5;i++)
            {
                for(int j=1;j<=100;j++)
                {
                    dp[i][j]=dp[i][j-1];
                    if(s[i][j]=='1') dp[i][j]=(dp[i][j]+dp[i-1][j-1])%mod;
                }
            }
            ans=(ans+dp[5][100])%mod;
            return ;
        }
        for(int i=t;i<=5;i++)
        {
            swap(s[i],s[t]);
            Backtrack(t+1);
            swap(s[i],s[t]);
        }
    }
    
    int main()
    {
        LL tmp=531192758; /// 常数 tmp=A(95,5)*C(90,5)*C(85,5);
        while(scanf("%s",s[1]+1)!=EOF)
        {
            for(int i=2;i<=5;i++) scanf("%s",s[i]+1);
            ans=0;
            Backtrack(1);
            printf("%lld
    ",ans*tmp%mod);
        }
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/chen9510/p/8323994.html
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