将机器学习模型作为训练和优化多视图Web服务代理安全层的关键手段

A. Misbah, Ahmed Ettalbi
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引用次数: 1

摘要

多视图Web服务在终端用户需求和约束的早期抽象方面带来了许多优势。因此,这种范例对安全性产生了积极的影响,特别是在Web服务应用程序领域,然后是多视图Web服务。在我们之前的工作中,我们通过提出一个由多视图Web服务组成的代理安全层,将多视图Web服务的概念引入到云基础设施内的物联网架构中,该代理安全层允许对所有交互的物联网对象和应用程序进行识别和分类,从而提高安全级别并改进对事务的控制。此外,人工智能特别是机器学习发展迅速,使得在许多领域模拟人类智能成为可能;因此,越来越有可能自动处理大量数据,以便做出决策,带来新的见解,甚至发现以前我们无法通过简单的人工手段检测到的新威胁/机会。在这项工作中,我们将机器学习模型和多视图Web服务代理安全层的力量结合在一起,以永久验证访问规则的一致性,检测可疑入侵,更新策略,并优化多视图Web服务,以提高整个物联网架构的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards Machine Learning Models as a Key Mean to Train and Optimize Multi-view Web Services Proxy Security Layer
Muti-view Web services have brought many advantages regarding the early abstraction of end users needs and constraints. Thus, security has been positively impacted by this paradigm, particularly, within Web services applications area, and then Multi-view Web services.In our previous work, we introduce the concept of Multi-view Web services to Internet of Things architecture within a Cloud infrastructure by proposing a Proxy Security Layer which consists of Multi-view Web services allowing the identification and categorizing of all interacting IoT objects and applications so as to increase the level of security and improve the control of transactions.Besides, Artificial Intelligence and especially Machine Learning are growing fast and are making it possible to simulate human being intelligence in many domains; consequently, it is more and more possible to process automatically a large amount of data in order to make decision, bring new insights or even detect new threats / opportunities that we were not able to detect before by simple human means.In this work, we are bringing together the power of the Machine Learning models and The Multi-view Web services Proxy Security Layer so as to verify permanently the consistency of the access rules, detect the suspicious intrusions, update the policy and also optimize the Multi-view Web services for a better performance of the whole Internet of Things architecture.
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