• Codeforces Round #436 (Div. 2) B.Polycarp and Letters


    因为难得又一次CF的比赛是非常清真的傍晚,超级少见啊

    所以当然要打啦,于是rank:87,rating+=76,滞留在上紫的边缘

    下面把几道觉得还不错的题目来总结一下

    B.Polycarp and Letters

    Polycarp loves lowercase letters and dislikes uppercase ones. Once he got a string s consisting only of lowercase and uppercase Latin letters.

    Let A be a set of positions in the string. Let's call it pretty if following conditions are met:

    • letters on positions from A in the string are all distinct and lowercase;
    • there are no uppercase letters in the string which are situated between positions from A (i.e. there is no such j that s[j] is an uppercase letter, and a1 < j < a2 for some a1 and a2 from A).

    Write a program that will determine the maximum number of elements in a pretty set of positions.

    input
    11
    aaaaBaabAbA
    output
    2
    input
    12
    zACaAbbaazzC
    output
    3
    Note

    In the first example the desired positions might be 6 and 8 or 7 and 8. Positions 6 and 7 contain letters 'a', position 8 contains letter 'b'. The pair of positions 1 and 8 is not suitable because there is an uppercase letter 'B' between these position.

    In the second example desired positions can be 7, 8 and 11. There are other ways to choose pretty set consisting of three elements.

    一句话题意:让你选择最多的字母,使得这些字母都是不同的小写字母,并且它们在原串的位置之间没有大写字母。

    我觉得就以这道题的难度都可以做A了吧

    总之就是暴力,反正数据范围小,就算n^3的都没事(我打的就是这种辣鸡算法)

    先枚举头和尾,然后在用bool数组来记录出现了那些小写字母,

    然后的然后就可以A了啊,完全没有坑.

     1 #include<bits/stdc++.h>
     2 using namespace std;
     3 int n,ans,res;
     4 char s[1000];
     5 bool bo[1000];
     6 int main(){
     7     scanf("%d%s",&n,s+1);
     8     for (int i=1;i<=n;++i)
     9         for (int j=1;j<=n;++j){
    10             ans=0; memset(bo,0,sizeof(bo));
    11             for (int k=i;k<=j;++k){
    12                 if (s[k]>='A'&&s[k]<='Z'){
    13                     ans=0; break;
    14                 }
    15                 if (!bo[s[k]]) ans++,bo[s[k]]=1;
    16                 res=max(res,ans);
    17             }
    18         }
    19     printf("%d",res);    
    20 }
    View Code
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  • 原文地址:https://www.cnblogs.com/logic-yzf/p/7612589.html
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