搜索资源列表
pkuacm1007
- PKU ACM 1007 的源码,求逆序的算法时间复杂度控制在O(n)-PKU ACM 1007 source code, and reverse time complexity of the algorithm control in O (n)
UEStudio09_KeyGen
- UEStudio_09_注册机, 亲测09.20.0.1007完全可用, 网上给的基本都不能用。 找了好久的东东,共享之:) 注意打开注册机时必须关闭卡巴等杀毒软件,否则会被当做病毒给灭了-UEStudio_09_ RI, the pro-test 09.20.0.1007 fully available online to the fundamental are unusable. Looking for a long time to Dongdong, share of:)
1007
- Descr iption Calculate a*b Input Two integer a,b (0<=a,b<=101000) Output Output a * b-Descr iption Calculate a*b Input Two integer a,b (0<=a,b<=101000) Output Output a* b
1007
- acm.bnu.edu.cn 1007 acm.bnu.edu.cn 1007
boj1007
- 北邮ACM第1007题的程序,已通过测试,绝对可用。-Beijing University of Posts and Telecommunications ACM theme of the first 1007 program, has been tested, absolutely free.
PKU1007
- PKU的第1007题,这虽然是个比较简单的习题,但对于编码的训练也是有一定好处的-PKU in the first 1007 issue, which although is a relatively simple exercise, but also for encoding the training there are certain advantages
1007
- plc使用说明,西门子s-7系列产品,欢迎大家下载察看-Help plc, Siemens s-7 series of products, are welcome to download View
cainiao
- Sicily15个代码(1007~1232)-Sicily15 code (1007 to 1232)
main
- 九度在线判题系统 题目1007:奥运排序问题-Nine degrees topic 1007: Olympic scheduling problem
sicily-code--2
- 本程序是中山大学sicily 1004-1007-1010-1014-1021 参考代码-This program is for sicily 1004-1007-1010-1014-1021 in Sun Yat-Sen University.
sicily
- 1007-To and Fro 1012-Stacking Cylinders 1014-Specialized Four-Dig 1020-Big Integer sicily 代码-1007-To and Fro 1012-Stacking Cylinders 1014-Specialized Four-Dig 1020-Big Integer sicily code
1007
- 约瑟夫环的一个解法,是天津大学toj上编号1007的解答,采用打表法,可能您之前并没有遇到过这么让您“无语”的解法哦!-Josephus problem!A very important problem on your code life
No4-1007
- 第一行包括两个整数:一个正整数n(0<N <=50),得到串的长度 和一个正整数米(0<米<= 100),得到串的个数。这些都是其次m行,每个都包含长度为n的串。 输出输入的字符串,安排从``的最排序“名单”来``至少排序 “。由于两个字符串可以同样排序,然后再输出按照原来的顺序它们。-The first line contains two integers: a positive integer n (0 < n <= 50) giving the le
main
- 杭电ACM上1007问题的已经通过的源码,主要采用分治法来解决这个问题-Hangzhou Electric ACM 1007 on the issue of the source code has been adopted, mainly uses divide and conquer to solve the problem
1007
- Poj 1007 给出一系列DNA字母串(高中生物知识可知仅含ACTG四个字母),以逆序数作为评判标准,从好到坏排序。-Poj 1007 question code gives a series of DNA string (high school biology knowledge can only contain ACTG four letters), in order to judge the reverse ordinal number, good to bad sort.
整合版作业(闰年+学生成绩系统)
- 1、 闰年函数:计算闰年。 2、 学生成绩系统 已在程序中保存10条学生信息,方便直接检验查询功能而无需先录入,10条记录的学号分别是1001/1002/1003/1004/1005/1006/1007/1008/1009/1010 ① 录入学生信息 ② 录入学生分数 ③ 查询信息及分数 ④ 修改信息 ⑤ 删除学生信息 (各功能均能循环进行,且实现如输入不存在的学号要求重新输入)(1 leap year function: calculate leap year. 2 stud
06057109
- 北大ACM题库中的部分已AC题目源码1001,1002,1003,1004,1005,1006,1007,1008()
10.1007%2Fs11071-017-3899-x
- H无穷控制针对马尔科夫调变系统的非脆弱控制研究。(This paper gives attention to the issue of nonfragile state estimation for a class of Markov jump systems with repeated scalar nonlinearities and redundant channels.)