搜索资源列表
曼彻斯特码
- 今天看了一下从fpga上下的曼彻斯特编解码的程序,感觉不是很清楚,仿真了一下,更迷茫了,大家看看为啥这程序要这么编呢? 程序比较长,不过写的应该还是不错的,看了后应该有收获。 总的思路是这样: 1 通过一个高频的时钟检测wrn信号,如果检测到上升沿,则表明开始编码,将输入的8位数据转为串行,并编码,然后输出。 2 定时信号是从高频时钟16分频后得到的,在wrn上升沿后16分频使能,在编码结束后禁止分频输出。 3 no_bits_sent记录串行输出的位数,应该是从0010到1
1001
- 数学加法(实现两位数相加) 输入两位整数-mathematics Adder (double-digit together) two integer input
tcp_server_for_two_client
- tcp协议网络服务器镜像软件 主要用于server端的1001端口开放 对两个client进行数据传送-tcp agreement network server mirroring software for server side of the 1001 opening of two ports 000 client data transmission
1001
- pku 1001 高精度运算,,本人AC过的代码.
1001
- 高精度的N次方算法 利用数组实现大数的N次方的算法 这个大数可以是小数
sy5_2
- 按“开始”按钮可以在文本框中显示所有1001到1100之间的素数。-according to the "start" button in the text box can show all from 1001 to 1100 between the prime numbers.
ZJUT_ACM
- 浙江工业大学acm网站上的大部分题解,对于学习者是很好的帮助。-Zhejiang University of acm title on the site the majority of solutions, for the learners is a very good help.
1002
- Sicily上的1002题,主要是为一些初学者设计的-Problem Given a sequence of consecutive integers n,n+1,n+2,...,m, an anti-prime sequence is a rearrangement of these integers so that each adjacent pair of integers sums to a composite (non-prime) number. For example, if
1001
- pku.acm上的第2道题的解法,解决指数问题,保留了全部精度-pku.acm the first two questions of method, solve the index problem, to retain all the accuracy
1001
- 高精度计算,可适用于浮点型数据的乘法运算,自己编的请指教,题目来源ACMPKU1001-High-precision calculation, applicable to floating-point data multiplication, own please advice ACMPKU1001 Title Source
1001
- pku acm 1001,dev-C++,完成题目-pku acm 1001, dev-C++, the completion of the subject
1001
- pku acm 1001 Problems involving the computation of exact values of very large magnitude and precision are common. For example, the computation of the national debt is a taxing experience for many computer systems.
1001
- pku judgeonline 1001题 很多个源码 适合acm和算法初学者-pku judgeonline 1001 title acm many source and algorithms suitable for beginners
1001
- POJ1001 PASCAL源代码.poj.org Problems 1001-POJ1001 PASCAL Source Code.poj.org Problems 1001
1001
- XDOJ acm上第1001题AC后的结果,希望对大家有用。-XDOJ acm AC results of the 1001, hope that useful.
1001
- PAT基础题1001.害死人不偿命的(3n+1)猜想 简洁易懂 可以给大家提供一些解题思路 扩展思维-PAT basic question 1001. Killed attractiveness of (3n+1) guess concise and can give you some idea of solving the expansion of thinking
1001
- PHPWEB 1001源码,非常给力,值得拥有-PHPWEB 1001 Source
1001
- acm北大测试平台1001题幂的高精度计算的代码,检测通过。-this is the code for the question 1001 of Peking university poj stage
1001 Exponentiation
- 计算乘幂,但结果的数据很大,因此模拟乘法计算,并且用字符串进行处理。(Calculation of power, but the results of the data is large)
local 0.7.1001 rev3
- local 0.7.1001 rev3 32 BITS AND 64BITS