标签:close end har lib 长度 can printf uri scan
Fat brother and Maze are playing a kind of special (hentai) game on a string S. Now they would like to count the length of this string. But as both Fat brother and Maze are programmers, they can recognize only two numbers 0 and 1. So instead of judging the length of this string, they decide to judge weather this number is even.
Input
The first line of the date is an integer T, which is the number of the text cases.
Then T cases follow, each case contains a line describe the string S in the treasure map. Not that S only contains lower case letters.
1 <= T <= 100, the length of the string is less than 10086
Output
For each case, output the case number first, and then output “Odd” if the length of S is odd, otherwise just output “Even”.
Sample Input
4
well
thisisthesimplest
problem
inthiscontest
Sample Output
Case 1: Even
Case 2: Odd
Case 3: Odd
Case 4: Odd
Means:
给你一串字符,问你这串字符的长度是奇数还是偶数
Solve:
一个水题,不是吗
Code:
1 #include <cstdio> 2 #include <cstring> 3 using namespace std; 4 #define CLR(x , v) memset(x , v , sizeof(x)) 5 #define CASE(x) printf("Case %d: " , x) 6 static const int MAXN = 10086; 7 char data[MAXN]; 8 int main() 9 { 10 int t; 11 scanf("%d" , &t); 12 for(int c = 1 ; c <= t ; ++c) 13 { 14 CLR(data , ‘\0‘); 15 scanf(" %s" , data); 16 int len = strlen(data); 17 CASE(c); 18 if(len & 1) 19 printf("Odd\n"); 20 else 21 printf("Even\n"); 22 } 23 }
Fat brother and Maze are playing a kind of special (hentai) game by two integers A and B. First Fat brother write an integer A on a white paper and then Maze start to change this integer. Every time Maze can select an integer x between 1 and A-1 then change A into A-(A%x). The game ends when this integer is less than or equals to B. Here is the problem, at least how many times Maze needs to perform to end this special (hentai) game.
Input
The first line of the date is an integer T, which is the number of the text cases.
Then T cases follow, each case contains two integers A and B described above.
1 <= T <=100, 2 <= B < A < 100861008610086
Output
For each case, output the case number first, and then output an integer describes the number of times Maze needs to perform. See the sample input and output for more details.
Sample Input
2
5 3
10086 110
Sample Output
Case 1: 1
Case 2: 7
Means:
给你一个数A,一个数B,问你最少经过多少次可以使得A小于等于B,A的操作为A - (A % x) , 其中x为[1 , A - 1]的任意一个数。
Solve:
贪心,每次取X最大,那么什么时候X最大,当X = A / 2 + 1的时候,因为A/2的话,偶数就GG了,然后就能保证每次A减去的就是最大的,剩下的A就是A/2 + 1
Code:
1 #include <cstdio> 2 #include <cstring> 3 #include <iostream> 4 using namespace std; 5 #define CLR(x , v) memset(x , v , sizeof(x)) 6 #define CASE(x) printf("Case %d: " , x) 7 typedef unsigned long long LL; 8 int t; 9 LL a , b; 10 int main() 11 { 12 scanf("%d" , &t); 13 for(int c = 1 ; c <= t ; ++c) 14 { 15 LL ans = 0; 16 scanf("%lld%lld" , &a , &b); 17 while(a > b) 18 { 19 a = a >> 1 | 1; 20 ++ans; 21 } 22 CASE(c); 23 printf("%d\n" , ans); 24 } 25 }
标签:close end har lib 长度 can printf uri scan
原文地址:http://www.cnblogs.com/jianglingxin/p/6711216.html