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G-P
- G-P算法程序,用matlab编写,希望能共享,同时我也想下载一些源码,因为是新手,希望多多支持!谢谢!-G-P algorithm procedures, using Matlab prepared hope sharing, I also want to download the source code, as a greenhorn, hoping for their support! Thank you!
GassianXY
- 利用二元域的高斯消元法得到输入矩阵H对应的生成矩阵G,同时返回与G满足mod(G*P ,2)=0的矩阵P,其中P 表示P的转置 使用方法:[P,G]=Gaussian(H,x),x=1 or 2,1表示G的左边为单位阵-binary domain PGE law input matrix corresponding to the formation of H matrix G, Meanwhile the return of mod meet with the G (G * P, 2) =
ACE60SRC ACE 6.0 源码 ACE自适配通信环境
- ACE 6.0 源码 ACE自适配通信环境(ADAPTIVE Communication Environment)是可自由使用、开放源码的面向对象(OO)框架(framework),它实现了许多用于并发通信软件的核心模式。ACE提供了一组丰富的可重用C++包装外观(wrapper facade)和框架组件,可跨多种平台完成通用的通信软件任务,其中包括:事件多路分离和事件处理器分派、信号处理、服务初始化、进程间通信、共享内存管理、消息路由、分布式服务动态(重)配置、并发执行和同步,等等。 AC
youxiangtu
- 有n个选手 P 1 ,P 2 ,P 3 ,… ,P n 参加了的单循环赛,每对选手之间非胜即负。现要求求出一个选手序列 P 1 ,P 2 ,P 3 ,… ,P n , 使其满足 P i 胜 P i+ 1 (i=1,… ,n-1) 。-There are n players of P 1, P 2, P 3, ..., P n participated in a single round robin, each of the players that is negative between the
MiddleWare
- 厦门大学计算机学院_中间件课件 课件浅显易懂适合入门者学习-Xiamen University, Computer Science Courseware Courseware _ middleware easy to understand for beginners to learn
16---DAC-SSP-P-ADC
- This a project with pic18f4550 and with mickroC Compiler. It s read from a 200ksps adc and after editing signal send signal to 8 chanels of dac.-This is a project with pic18f4550 and with mickroC Compiler. It s read from a 200ksps adc and after editi
bank
- 新成立的Drunbee 银行,在福州开辟了办事处。他们对每个客户都有一个确定且唯一的 编号ID,去银行办理业务的客户都会得到一个优先级P,并在休息室等候。该银行打破传统, 并非总是从休息室中取优先级最高的客户办理业务。因此,银行的服务系统需要完成以下功 能: 0-Drunbee newly established bank, has opened an office in Fuzhou. They have one of each customer and to determin
WpsTest
- 用第三方调用 WPS 来播放 p p t -use my app to Drive WPS PPT