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TAPI 2 Sample
- TAPI 2 Sample TAPI 2示例编程代码,用Visua C 6.0开发的.
ucosv251源代码
- *** *** *** *** *** *** *** *** *** *** RELEASE NOTES *** *** ***** *** *** *** *** *** *** *** 1) RELEASE NOTES: --- ---- The release notes are now provided in PDF format in the file: \\SOFTWARE\\uCOS-II\\DOC\\RelV251.PDF
USBhub
- //{{NO_DEPENDENCIES}} // Microsoft Developer Studio generated include file. // Used by USBPort.rc // #define IDM_ABOUTBOX 0x0010 #define IDD_ABOUTBOX 100 #define IDS_ABOUTBOX 101 #define IDD_USBPORT_DIALOG 102 #define IDR_MAINFRAME 12
zju1007
- zju 1007 Numerical Summation of a Series http://acm.zju.edu.cn/show_problem.php?pid=1007-zju 1007 Numerical Summation of a Series ht tp : / / acm.zju.edu.cn / show_problem.php pid = 100 7
3026731_AC_15MS_248K
- pku acm 1007的源代码,凝聚了本人的心血啊 1003--1005文件太小传不上来啊
1007
- 一个使用FOR的小程序,可以作到抛砖引玉吧
Sicily_ACM_Accepted.rar
- 中山大学ACM网站Sicily上的50题AC源码!效率高,算法好!,Sun Yat-sen University Sicily on the ACM web site AC source 50 title! High efficiency, good algorithm!
acm
- 北大ACM题库中的部分已AC题目源码(1001,1002,1003,1004,1005,1006,1007,1008)-ACM sharPKUngfu some questions have been the subject AC source (1001,1002,1003,1004,1005,1006,1007,1008)
lfono-1.3.tar
- Linux XForms语音Modem控制程序 -Voice modem contorlling in Linux XForms
1007
- 北京大学ACM练习网站1007题,具体请参考http://acm.pku.edu.cn/JudgeOnline/problem?id=1007-1007 Peking University ACM practice site title, please refer to the specific http://acm.pku.edu.cn/JudgeOnline/problem?id=1007
jihe
- 三道几何题:hdu 1007、hdu 2289、poj 3714-Three geometry question: hdu 1007, hdu 2289, poj 3714
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.
ACM-reoprt
- ACM解题报告 第一题…… …… …… HDOJ 1011 (动态规划+路径拓扑) 第二题………………………… POJ 1007 (排序算法) 第三题………………………… HDOJ 1018 (大数运算) 第四题………………………… POJ 1011 (深度优先搜索) 第五题………………………… POJ 1032 (数学题) -Report of the First ACM solving problems ... ... ... ... ... ... ... .
zoj-1007-Do-the-Untwist
- zoj 1007 源代码。已经测试通过 AC-zoj 1007 source code. Has been tested by AC
1007
- 北大1007,纯正源代码,可以辅助同学学习,很有用-beijing 1007
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
swftools-2013-04-09-1007.tar
- swftools-2013-04-09-1007 源码
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.