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/6789189.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~~ 水题,找出哪个数只出现过一次,输出那个数如果没有的话,输出None #include <iostream> #include <cstdio> #include <algorithm> #include <string.h&g…

#include <iostream> #include <cstdio> #include <string.h> #include <algorithm> using namespace std; /* 水题,注意字符范围是整个ASCII编码即可. */ ; int vis[maxn]; +]; +]; int main() { gets(s1); //getchar(); gets(s2); int len1=strlen(s1); int len2=s…

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/6789775.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~~ 水题,就是统计n个数的数位和有多少个不同的,并且输出即可. #include <iostream> #include <cstdio> #include <algorithm> #include <string> #in…

PAT (Advanced Level) Practice 1041 Be Unique (20 分) 凌宸1642 题目描述: Being unique is so important to people on Mars that even their lottery is designed in a unique way. The rule of winning is simple: one bets on a number chosen from [1,10 4 ]. The first…

#include <iostream> #include <cstdio> #include <algorithm> #include <string.h> #include <cmath> using namespace std; /* 链表题 水 */ int n; struct Word{ int addr; char ch; ; }word[]; ]; int main() { int first1,first2; int adr,nxt…

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/6789787.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~~ 给出n个couple和m个宾客如果宾客没有couple或者couple没来,则被认为lonely问你有多少个lonely的宾客,并且按照id的升序输出 #include <iostream> #include <cstdio> #include…

1041. Be Unique (20) 时间限制 100 ms 内存限制 65536 kB 代码长度限制 16000 B 判题程序 Standard 作者 CHEN, Yue Being unique is so important to people on Mars that even their lottery is designed in a unique way. The rule of winning is simple: one bets on a number chosen fr…

1041 Be Unique (20 分)   Being unique is so important to people on Mars that even their lottery is designed in a unique way. The rule of winning is simple: one bets on a number chosen from [1]. The first one who bets on a unique number wins. For examp…

题目链接 现在代码能力没上升,倒是越来越会找水题了(比例题还水的裸题你值得拥有) 这网站不是针对竞赛的,所以时空限制都很宽松 然后就让我水过去了 对于每个点,包括自己的前m个元素是否取都是一种状态,所以状压一下(才1024不要怂) #include <cstdio> int n,m,q; ]; ][]; int max(int a,int b){return(a<b)?b:a;} int main() { scanf("%d%d%d",&n,&m,&a…

输入为两个分数,让你计算+,-,*,\四种结果,并且输出对应的式子,分数要按带分数的格式k a/b输出如果为负数,则带分数两边要有括号如果除数为0,则式子中的结果输出Inf模拟题最好自己动手实现,考验细节处理,其它没啥好说的. #include <iostream> #include <cstdio> #include <algorithm> #include <cstring> using namespace std; ]; ]; long long GC…