this book mainly shows us how to process digital inmages by Visual C
标签: digital inmages process Visual
上传时间: 2014-01-02
上传用户:cx111111
8/10 位精度 • 7 us, 10-位单次转换时间. • 采样缓冲放大器 • 可编程采样时间 • 左/右 对齐, 有符号/无符号结果数据 • 外部触发控制 • 转换完成中断 • 模拟输入8通道复用 • 模拟/数字输入引脚复用 • 1到8转换序列长度 • 连续转换模式 • 多通道扫描方式
上传时间: 2014-01-09
上传用户:yyq123456789
Prototype.and.script.aculo.us 非常不错的两个js框架
标签: Prototype script aculo and
上传时间: 2016-08-28
上传用户:ls530720646
wcf基础学习 it is good for us to study wcf
上传时间: 2016-10-23
上传用户:caozhizhi
Atmel mcu eeprom design example for us
标签: example eeprom design Atmel
上传时间: 2014-01-08
上传用户:litianchu
The book introduce us how to write the file driver.It is a good book!
标签: book introduce driver write
上传时间: 2016-12-21
上传用户:tzl1975
The book introduce us how to use matlab software.It is a good book!
标签: book introduce software matlab
上传时间: 2013-12-24
上传用户:jhksyghr
epoll bring us many things,so we can study in this doc.
上传时间: 2017-01-11
上传用户:lanwei
编译后只有280K的US-OS操作系统的源码。 自行修改后,可以将编译后变为小于150K。
上传时间: 2017-01-30
上传用户:wl9454
Instead of finding the longest common subsequence, let us try to determine the length of the LCS. Then tracking back to find the LCS. Consider a1a2…am and b1b2…bn. Case 1: am=bn. The LCS must contain am, we have to find the LCS of a1a2…am-1 and b1b2…bn-1. Case 2: am≠bn. Wehave to find the LCS of a1a2…am-1 and b1b2…bn, and a1a2…am and b b b b1b2…bn-1 Let A = a1 a2 … am and B = b1 b2 … bn Let Li j denote the length of the longest i,g g common subsequence of a1 a2 … ai and b1 b2 … bj. Li,j = Li-1,j-1 + 1 if ai=bj max{ L L } a≠b i-1,j, i,j-1 if ai≠j L0,0 = L0,j = Li,0 = 0 for 1≤i≤m, 1≤j≤n.
标签: the subsequence determine Instead
上传时间: 2013-12-17
上传用户:evil
