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餐饮管理系统源代码,包含详细的发展…
餐饮管理系统源vc++代码,包含详细开发文档.rar-Restaurant Management System source vc++ code, and contains a detailed development documentation
- 2022-05-30 16:24:26下载
- 积分:1
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JS28F640的datasheet. 详细的介绍了使用方法,网上不好找的哟!
JS28F640的datasheet. 详细的介绍了使用方法,网上不好找的哟!-JS28F640 the datasheet. A detailed introduction of the use of online不好找yo!
- 2022-05-09 00:00:35下载
- 积分:1
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点击treeview进行选择数据的例子,非常实用。
点击treeview进行选择数据的例子,非常实用。-Click to select the data treeview example, very useful.
- 2023-05-13 09:20:02下载
- 积分:1
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matlab的标定工具箱,功能强大.可进行摄象机标定
matlab的标定工具箱,功能强大.可进行摄象机标定-matlab calibration toolbox and powerful. camera calibration can be carried out
- 2022-04-13 16:54:46下载
- 积分:1
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最新版dnf 的 g 不会掉线的啊 我们应啊罢了健康噶哈的就离开家的时候都不敢不断加快两个...
最新版dnf 的 g 不会掉线的啊 我们应啊罢了健康噶哈的就离开家的时候都不敢不断加快两个 -Dnf latest version of g does not drop, ah, ah we should be healthy Karma Kazakhstan Bale leave home when they are not accelerating 2
- 2022-02-03 01:23:09下载
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AD73360 interface with a wide variety of DSP applications academic journals info...
AD73360 与多种DSP接口应用的学术期刊资料,比较有参考价值,比前一个完整,包括从国外BBS上下载的资料。-AD73360 interface with a wide variety of DSP applications academic journals information, more useful than the previous integrity, including from abroad BBS download information.
- 2022-03-20 23:37:33下载
- 积分:1
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RTX51是一个适用于8051 家族的实时多任务操作系统。RTX51使复杂的系统和软件设计
以及有时间限制的工程开发变得简单。RTX51是一个强大的工具,它...
RTX51是一个适用于8051 家族的实时多任务操作系统。RTX51使复杂的系统和软件设计
以及有时间限制的工程开发变得简单。RTX51是一个强大的工具,它可以在单个CPU上管理
几个作业(任务)。RTX51有两种不同的版本-RTX51 for 8051 are a family of real-time multi-tasking operating system. RTX51 to make complex systems and software design, as well as time limits have become easy to develop the project. RTX51 is a powerful tool, it can be managed in a single CPU on some homework (mission). RTX51 There are two different versions of
- 2022-05-06 09:36:33下载
- 积分:1
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高质量C++/C编程指南,程序员必备资料。
高质量C++/C编程指南,程序员必备资料。-High-quality C++/C Programming Guide, programmers essential information.
- 2022-08-17 17:31:02下载
- 积分:1
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DTMF Generator DIP芯片说明书
DTMF Generator DIP芯片说明书-DTMF Generator DIP manual
- 2022-03-19 02:38:16下载
- 积分:1
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还有一个缺陷就是在只知道密文 x 及公钥(n,e)的情况下,只要将 (x^e) mod n 所得余数 s 再不断地循环操作 s = s^e mod n,此运算不...
还有一个缺陷就是在只知道密文 x 及公钥(n,e)的情况下,只要将 (x^e) mod n 所得余数 s 再不断地循环操作 s = s^e mod n,此运算不断地循环 e 次之后,很多情况下都可以循环出原文,只是计算量过余多一些罢了。不过有不少情况下,根本都无须循环 e 次,不过对于1024位的 n 级别来说,e 也是一个相当大的数值,所以循环密文的余数以解得原文是有些不现实。 以上内容仅供参考,如有不实,请予更正-there is a defect in only know that the secret and public key-x (n, e) the circumstances, as long as (x ^ e) mod n from the remaining s to continuously cycle operation s = s ^ e mod n, this constant cycle of Operational e occasion, the very many circumstances can be recycled from the original, but I calculated the volume more than just. There are, however, many instances, simply do not need e cycle times, but for 1024 the level n, e is a very large figure, so secret circle the remainder of the text was obtained in the original is a bit unrealistic. The above is for reference only, if not true, I corrected
- 2022-08-03 02:51:21下载
- 积分:1
