在可信交互技术中使用机器学习对网络流量进行分类的观点

A. B. Arkhipova, M. Medvedev, Vladimir V. Reutov, Igor V. Korotkih
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引用次数: 0

摘要

国际社会当前发展阶段的特点是信息领域的作用日益增强,完全取决于信息资源和技术及其质量和安全。计算机化已成为生活方方面面的主要原因,社会关系的很大一部分要素,如果没有新的信息技术在各个学科领域的应用,就不可能实现,因此也就不可能实现一个可靠的系统的综合安全的信息自动化系统。本文给出了网络流量的概念,考虑了网络流量的分类,其中通过端口号分类,深度数据包分析,随机数据包分析和机器学习的使用进行了识别。定义了使用可信技术保护信息的方法,其中考虑了可信技术的一般表示。主要结论是在可信技术中使用机器学习对网络流量进行分类的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The perspective of using machine learning to classify network traffic in trusted interaction technologies
The current stage of development of the world community is characterized by an everincreasing role of the information sphere and is completely dependent on information resources and technologies, their quality and security. Computerization of all aspects of life has become the main reason that a significant part of the elements of social relations cannot be implemented without the use of new IT in various subject areas, and hence without the implementation of a reliable system of integrated security of the developed information automated systems. This article gives the concept of network traffic, considers the classification of network traffic, in which classification by port numbers, deep packet analysis, stochastic packet analysis, and the use of machine learning were identified. Methods for protecting information using trusted technologies were defined, where a general presentation of trust technologies was considered. The main conclusions are drawn on the prospects of using machine learning to classify network traffic in trusted technologies.
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