资源列表
2006127171849802
- 单片机开发实力,精辟 ?テ
circel
- 基于hough的圆检测,功能比较简单,但对于一般简单图像比较适用-based on the round-detection function is relatively simple, but simple image more generally applicable
AD1240soft
- 针对Ad1240芯片应用开发的应用软件,向销售商要得,子程序可以直接应用.-against Ad1240 chip development of the application software, wants to vendors, subroutines can be used directly.
mccombobox
- vc++,MFC,GDI 绘图程序,一个绘制简单图形的软件.-vc, MFC, GDI drawing procedure, a simple graphics rendering software.
vc123321
- 媒体播放软件,使用visual c++编写,非常使用的,欢迎批评指正-Media Player software, the use of visual c preparation, the use of the very welcome criticism correction
fdhzzb
- 任意汉字放大,可用wintc或turboc2打开-arbitrary, or available wintc open turboc2
robot-opengl_case
- 这是我毕设作品,实现六自由度运动学逆解算法,界面中有opengl动画,可以示教.-This is my complete works of established and achieve 6-DOF inverse kinematics algorithm interface with opengl animation, can teach.
AIToSH
- 一个用于两地间交通方案选择的小决策支持系统-a way for the traffic between two options small Decision Support System
LDPCcode
- 利用函数MadHG生成规则LDPC码的校验矩阵H,其行重为6,列重为3,行数为列数一半(行数越大越好),H中任意两列没有围长为4的圈,并得到H对应的生成矩阵G,可以保证mod(G*H ,2)=0。使用方法为:[H,G] = MadHG(m,n,x),x= 1(得到的G左半部分为单位阵) or 2(G右半部分为单位阵),-use function MadHG Generation rules LDPC check matrix H, re-6, series of three, out for a
MadHG
- 利用函数MadHG生成规则LDPC码的校验矩阵H,其行重为6,列重为3,行数为列数一半(行数越大越好),H中任意两列没有围长为4的圈,并得到H对应的生成矩阵G,可以保证mod(G*H ,2)=0。使用方法为:[H,G] = MadHG(m,n,x),x= 1(得到的G左半部分为单位阵) or 2(G右半部分为单位阵),-use function MadHG Generation rules LDPC check matrix H, re-6, series of three, out for a
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) =
HGrandom2
- 生成一个规则LDPC码的教研矩阵H,其行数(越大越好)为列数的一半,行重为6,列重为3,任意两行没有围长为4的圈 使用方法:H=HGrandom2(m,n)。m表示行数,n表示列数-rules of a generation of research LDPC matrix H, its (larger the better) half of the series, re-6, series of three, two arbitrary line is not girth of the ri