• CodeForces


    Codeforces Round #597 (Div. 2)

    Constanze is the smartest girl in her village but she has bad eyesight.

    One day, she was able to invent an incredible machine! When you pronounce letters, the machine will inscribe them onto a piece of paper. For example, if you pronounce 'c', 'o', 'd', and 'e' in that order, then the machine will inscribe "code" onto the paper. Thanks to this machine, she can finally write messages without using her glasses.

    However, her dumb friend Akko decided to play a prank on her. Akko tinkered with the machine so that if you pronounce 'w', it will inscribe "uu" instead of "w", and if you pronounce 'm', it will inscribe "nn" instead of "m"! Since Constanze had bad eyesight, she was not able to realize what Akko did.

    The rest of the letters behave the same as before: if you pronounce any letter besides 'w' and 'm', the machine will just inscribe it onto a piece of paper.

    The next day, I received a letter in my mailbox. I can't understand it so I think it's either just some gibberish from Akko, or Constanze made it using her machine. But since I know what Akko did, I can just list down all possible strings that Constanze's machine would have turned into the message I got and see if anything makes sense.

    But I need to know how much paper I will need, and that's why I'm asking you for help. Tell me the number of strings that Constanze's machine would've turned into the message I got.

    But since this number can be quite large, tell me instead its remainder when divided by 109+7109+7.

    If there are no strings that Constanze's machine would've turned into the message I got, then print 00.

    Input

    Input consists of a single line containing a string ss (1≤|s|≤1051≤|s|≤105) — the received message. ss contains only lowercase Latin letters.

    Output

    Print a single integer — the number of strings that Constanze's machine would've turned into the message ss, modulo 109+7109+7.

    Examples

    Input

    ouuokarinn
    

    Output

    4
    

    Input

    banana
    

    Output

    1
    

    Input

    nnn
    

    Output

    3
    

    Input

    amanda
    

    Output

    0
    

    Note

    For the first example, the candidate strings are the following: "ouuokarinn", "ouuokarim", "owokarim", and "owokarinn".

    For the second example, there is only one: "banana".

    For the third example, the candidate strings are the following: "nm", "mn" and "nnn".

    For the last example, there are no candidate strings that the machine can turn into "amanda", since the machine won't inscribe 'm'.

    这个题是斐波那契数列+累乘法求方案数,就行了,同样是o(N+1E5)的复杂度,就别说什么DP快,DP好的了。

    n=1 ,cnt=1

    n=2, cnt=2

    n=3, cnt=3

    n=4, cnt=5

    n=5, cnt=8

    n是连续的字符数量 cnt是能够组成几种解读方式。累乘求和即可。

    #include<iostream>
    #include<cstring>
    #include<map>
    using namespace std;
    #define ll long long
    char s[100004];
    ll fb[100005];
    int main()
    {
        ll c=1,t1=0,t2=0;
        cin>>s;
        fb[2]=2,fb[3]=3;
        for(ll i=4; i<=100000; i++)
            fb[i]=(fb[i-1]+fb[i-2])%1000000007;
        ll l=strlen(s);
        for(ll i=0; i<l; i++)
        {
            if(s[i]=='m'||s[i]=='w')
            {
                cout<<0;
                return 0;
            }
            if(s[i]=='u')
            {
                if(t2>1)
                {
                    c=(c*fb[t2])%1000000007;
                }
                t1++;
                t2=0;
                continue;
            }
            if(s[i]=='n')
            {
                if(t1>1)
                {
                    c=(c*fb[t1])%1000000007;
                }
                t2++;
                t1=0;
                continue;
            }
             if(s[i]!='u'&&s[i]!='n')
            {
                if(t1>1)
                {
                    c=(c*fb[t1])%1000000007;
                }
                if(t2>1)
                {
                    c=(c*fb[t2])%1000000007;
                }
                t1=0,t2=0;
            }
        }
        if(t1>1)
        {
            c=(c*fb[t1])%1000000007;
        }
        if(t2>1)
        {
            c=(c*fb[t2])%1000000007;
        }
        cout<<c<<endl;
        return 0;
    }
    
  • 相关阅读:
    大二下学期第一次结对作业(第二阶段)
    大二下学期阅读笔记(人月神话)
    大二下每周总结
    大二下学期第一次结对作业(第二阶段)
    大二下学期第一次结对作业(第二阶段)
    elasticsearch mappings之dynamic的三种状态
    elasticsearch mapping映射属性_source、_all、store和index
    Java学习
    Java学习
    Java学习
  • 原文地址:https://www.cnblogs.com/lunatic-talent/p/12798612.html
Copyright © 2020-2023  润新知