资源列表
DSJF
- 大数加法,算法课后的一个作业,用以语言写的,长度可以自己改变如果需要。-Addition of large numbers of a job, after school algorithm for language, length can be changed if their own needs.
dd_ex4
- 单类分类器,同时定义两个分类,一个错误的目标类,另一个为有用的尺度范围。-Single-class classifier, while the definition of two categories, one wrong target class, the other is a useful range of scales.
Doolittle
- Doolittle分解,实现矩阵的LU分解,并显示分解后的矩阵-Doolittle decomposition, LU decomposition of the matrix to achieve, and the display matrix decomposition
poj_1002_487
- 这是北大在线测试的第1002题,方便记忆的电话号码的解题例程,题目中有一个列表,记录着许多方便记忆的电话号码。不同的方便记忆的电话号码可能对应相同的标准号码,这个程序的任务就是找到它们-This is the answer for the 1002th question of the Peking University Open judge
watershed
- 风水岭图像分割 Image Segmentation by Watershed-Image Segmentation by Watershed
RK2a4
- RK2 RK4 RK 2 RK4 RK2 RK4-RK2 RK4 RK2 RK4 RK2 RK4 RK2 RK4
Rapid-Fire-Source-Code_mpgh.net
- Rapid fire source code ava源码-rapid fire
sttext
- 使用迪杰斯特拉算法,解决学校最佳选址问题。-Use Dijkstra algorithm to solve the school problem best location.
main
- 实现简单的C++拆分文件,用二进制方式打开,但是文件的数据结构不清楚导致拆分后的文件无法使用,欢迎修改。-Achieve a simple C++ split files, open binary mode, but the data structure of the document is unclear causes the file can not be used after the split, welcome changes.
formant
- CODE FOR WINDOWED VOICED PART OF SIGNALS AND CALCULATING CEPSTRUM OF VOICED SPEECH BY USING PEAK PICKING ALGARITHM
COCKS-AND-RABBITS
- 鸡兔同笼是中国古代著名趣题之一。大约在1500年前 ,《孙子算经》中就记载了这个有趣的问题。书中是这样叙述的:“今有雉兔同笼,上有三十五头,下有九十四足,问雉兔各几何?”这四句话的意思是:有若干只鸡和兔同在一个笼子里,从上面数,有35个头;从下面数,有94只脚。问笼中各有几只鸡和兔。-Chickens and rabbits with cage is one of China' s famous ancient interesting question. About 1,500 years
Sync_ZCseq_genr
- 此文件用于生成ZC序列,可用于通信系统中的仿真-This file is used to generate a ZC sequence, it can be used in a communication system simulation