Source: PAT A1093 Count PAT's (25 分) Description: The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now g…

1093. Count PAT's (25) 时间限制 120 ms 内存限制 65536 kB 代码长度限制 16000 B 判题程序 Standard 作者 CAO, Peng The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3r…

1093 Count PAT's (25 分) The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now given any string, you are s…

1093. Count PAT's (25) 时间限制 120 ms 内存限制 65536 kB 代码长度限制 16000 B 判题程序 Standard 作者 CAO, Peng The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3r…

本文同步发布在CSDN:https://blog.csdn.net/weixin_44385565/article/details/93389073 1093 Count PAT's (25 分)   The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed…

The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now given any string, you are supposed to tell the numb…

The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now given any string, you are supposed to tell the numb…

如题,统计PAT出现的个数,注意PAT不一定要相邻,看题目给的例子就知道了. num1代表目前为止P出现的个数,num12代表目前为止PA出现的个数,num123代表目前为止PAT出现的个数. 遇到P,num1++. 遇到A,那么PA的个数为:前面统计的PA的个数(num12)+前面的P与当前A组成的个数(num1) 遇到T,那么PAT的个数为:前面统计的PAT的个数(num123)+前面的PA与当前的T组成的个数(num12) #include <iostream> #include <…

The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now given any string, you are supposed to tell the numb…

http://www.patest.cn/contests/pat-a-practise/1093 The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now g…

The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now given any string, you are supposed to tell the numb…

一.技术总结 这是一个逻辑题,题目大职意思是可以组成多少个PAT,可以以A为中心计算两边的P和T,然后数量乘积最后相加便是答案. 还有一个注意的是每次相加后记得mod,取余,不要等到最后加完再取余,会报错可能会溢出. 二.参考代码 #include<iostream> #include<cstring> using namespace std; const int maxn = 100010; const int inf = 1000000007; int leftNump[max…

The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters. Now given any string, you are supposed to tell the numb…

题意: 输入一行由大写字母'P','A','T',组成的字符串,输出一共有多少个三元组"PAT"(相对顺序为PAT即可),答案对1e9+7取模. AAAAAccepted code: #define HAVE_STRUCT_TIMESPEC #include<bits/stdc++.h> using namespace std; ; string s; ],numpa[]; ]; int main(){ ios::sync_with_stdio(false); cin.ti…

题目分析: 由于本题字符串长度有10^5所以直接暴力是不可取的,猜测最后的算法应该是先预处理一下再走一层循环就能得到答案,所以本题的关键就在于这个预处理的过程,由于本题字符串匹配的内容的固定的PAT,所以我们可以这样想,对于一个输入的串,我们找到每个A的位置,只要知道这个A的前面有几个P,这个A的后面有几个T,就可以得到以这个A为中心的所有种数,二者相乘即可,然后如果我们能得到0~s.size()-1范围内每个A的前面有多少个P,每个A后面有多少个T,只要从头遍历一遍并且求和就能得到最终答案,由…

题目 原题链接 The string APPAPT contains two PAT's as substrings. The first one is formed by the 2nd, the 4th, and the 6th characters, and the second one is formed by the 3rd, the 4th, and the 6th characters.Now given any string, you are supposed to tell t…

预处理每个位置之前有多少个P,每个位置之后有多少个T. 对于每个A,贡献的答案是这个A之前的P个数*这个A之后T个数. #include<cstdio> #include<cstring> ; ; long long dp1[maxn],dp2[maxn]; char s[maxn]; int main() { scanf("%s",s); memset(dp1,,sizeof dp1); ]==]=; ;s[i];i++) { dp1[i]=dp1[i-];…

2019/4/3 1063 Set Similarity n个序列分别先放进集合里去重.在询问的时候,遍历A集合中每个数,判断下该数在B集合中是否存在,统计存在个数(分子),分母就是两个集合大小减去分子. // 1063 Set Similarity #include <set> #include <map> #include <cstdio> #include <iostream> #include <algorithm> using name…

博主欢迎转载,但请给出本文链接,我尊重你,你尊重我,谢谢~http://www.cnblogs.com/chenxiwenruo/p/6102219.html特别不喜欢那些随便转载别人的原创文章又不给出链接的所以不准偷偷复制博主的博客噢~~ 时隔两年,又开始刷题啦,这篇用于PAT甲级题解,会随着不断刷题持续更新中,至于更新速度呢,嘿嘿,无法估计,不知道什么时候刷完这100多道题. 带*的是我认为比较不错的题目,其它的难点也顶多是细节处理的问题~ 做着做着,发现有些题目真的是太水了,都不想写题解了…

树(23) 备注 1004 Counting Leaves   1020 Tree Traversals   1043 Is It a Binary Search Tree 判断BST,BST的性质 1053 Path of Equal Weight   1064 Complete Binary Search Tree 完全二叉树的顺序存储,BST的性质 1066 Root of AVL Tree 构建AVL树,模板题,需理解记忆 1079 Total Sales of Supply Chain…

本文为PAT甲级分类汇编系列文章. 集合.散列.数学.算法,这几类的题目都比较少,放到一起讲. 题号 标题 分数 大意 类型 1063 Set Similarity 25 集合相似度 集合 1067 Sort with Swap(0, i) 25 通过与0号元素交换来排序 数学 1068 Find More Coins 30 子集和问题 算法 1070 Mooncake 25 背包问题 算法 1078 Hashing 25 散列 散列 1085 Perfect Sequence 25 符合约束的…

今天开个坑,分类整理PAT甲级题目(https://pintia.cn/problem-sets/994805342720868352/problems/type/7)中1051~1100部分.语言是modern C++. 为什么要整理呢,因为我2019年9月要考PAT甲级,虽然是第一次考,虽然只学了数据结构(https://mooc.study.163.com/course/1000033001?tid=2402970002#/info),但我要冲着高分(2019年9月8日更新:满分)去. 下…

题目AC汇总 甲级AC PAT A1001 A+B Format (20 分) PAT A1002 A+B for Polynomials(25) PAT A1005 Spell It Right (20) PAT A1006 Sign In and Sign Out (25) PAT A1009 Product of Polynomials(25) PAT A1011 World Cup Betting(20) PAT A1012 Best Rank(25) PAT A1016 Phone B…

新建显示病人信息控件PatientElement Add-->NewItem-->WPF-->UserControl(WPF),名称:PatientElement.xmal <UserControl x:Class="WPF_OPDrug.PatientElement" xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation" xmlns:x="http://…

Pandas手册汉化 此页面概述了所有公共pandas对象,函数和方法.pandas.*命名空间中公开的所有类和函数都是公共的. 一些子包是公共的,其中包括pandas.errors, pandas.plotting,和pandas.testing.文档中提到了公共函数 pandas.io和pandas.tseries子模块.pandas.api.types分包包含一些与pandas中的数据类型相关的公共函数 输入/输出 Pickling read_pickle(path[, compressi…

thinkphp默认的参数方法只能读取,或者动态修改不能永久修改. 这是自己摸索出来的特发出来给需要的朋友(懂的朋友别笑话,功能我自己使用是没任何问题).有些参数还是保存在配置文件方便快捷!不一定所有的东西都是存数据库才是王道! 参数可以传递多个值 只要2个数组的值对应就行 [0][1][2] 以此对应 如果需要动态修改数据的 将config 改为数据库就行了 我是只要改config 所以是直接固定了! /** * 修改config的函数 * @param $arr1 配置前缀 * @param…

题目链接:https://nanti.jisuanke.com/t/41389 The value of a string sss is equal to the number of different letters which appear in this string. Your task is to calculate the total value of all the palindrome substring. Input The input consists of a single…

原数据 import pandas as pd a = pd.Series(['aSd', 'asd', 'dfd fsAsf sfs']) b = pd.Series([None, 'asd', 'fgh']) index a b 0 aSd None 1 asd asd 2 dfd fsAsf sfs fgh 字符大小写转换 a.str.lower() a.str.upper() a.str.title() a.str.capitalize() a.str.swapcase()   lowe…

文档首页 英文版文档 本作品采用知识共享署名-非商业性使用 3.0 未本地化版本许可协议进行许可. Node.js v0.10.18 手册 & 文档 索引 | 在单一页面中浏览 | JSON格式 目录 关于本文档 稳定度 JSON 输出 概述 全局对象 global process console 类: Buffer require() require.resolve() require.cache require.extensions __filename __dirname module e…

1009. 说反话 (20) 时间限制 400 ms 内存限制 65536 kB 代码长度限制 8000 B 判题程序 Standard 作者 CHEN, Yue 给定一句英语,要求你编写程序,将句中所有单词的顺序颠倒输出. 输入格式:测试输入包含一个测试用例,在一行内给出总长度不超过80的字符串.字符串由若干单词和若干空格组成,其中单词是由英文字母(大小写有区分)组成的字符串,单词之间用1个空格分开,输入保证句子末尾没有多余的空格. 输出格式:每个测试用例的输出占一行,输出倒序后的句子. 输入…