走向物联网取证:数据分析视角

IF 1.5 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS Security and Privacy Pub Date : 2023-03-05 DOI:10.1002/spy2.306
Pimal Khanpara, Ishwa Shah, S. Tanwar, Amit Verma, Ravi Sharma
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引用次数: 0

摘要

最近硬件和软件技术的发展加速了网络、智能和适应性设备在智能城市和家庭自动化、气候控制、制造和物流、医疗保健、教育和农业等各个领域的广泛使用。在所有这些应用领域中,物联网的概念有助于实现流程自动化并降低人工成本。虽然物联网已经建立了很长一段时间,但多年来,它在不同的子领域看到了许多进步和挑战。其中一个子领域是物联网取证,涉及物联网设备、网络或云的数字取证。在从设备、网络或云获取实质性证据的过程中,涉及到大量的数据和对这些数据的操作。因此,通过处理数据的方法(称为数据分析)来查看物联网取证是必不可少的。本文从数据分析的角度对物联网取证进行了解释。为了详细解释这一点,本文重点介绍了物联网取证及其方法,以及它们与数据分析阶段的关系。最后,本文从数据分析的角度讨论了物联网取证的当前发展,现有技术的局限性,采用挑战以及未来可能的进步。
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Toward the internet of things forensics: A data analytics perspective
The widespread use of networked, intelligent, and adaptable devices in various domains, such as smart cities and home automation, climate control, manufacturing and logistics, healthcare, education, and agriculture, has been hastened by recent developments in hardware and software technologies. In all these application domains, the concept of the Internet of Things helps to achieve process automation and decrease labor costs. While IoT has been an established domain for quite a while, it has seen a lot of advances and challenges in different subdomains over the years. One such subdomain is IoT Forensics which involves digital forensics concerning IoT devices, networks, or clouds. In this process of obtaining substantial evidence from the devices, networks, or cloud, a large amount of data and operations on said data are involved. Hence, looking through IoT Forensics through the methodology dealing with data, known as data analytics, is essential. This paper presents an interpretation of IoT Forensics from the standpoint of data analytics. To explain the same in detail, the paper focuses on IoT Forensics, its methodologies, and how they relate to data analytics stages. Toward the end, the paper discusses current developments in IoT Forensics from the data analytics perspective, limitations observed in the existing technologies, adoption challenges, and possible future advancements.
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5.30%
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80
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