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基于人工智能的物联网安全挑战及其解决方案分析

Analysis of IoT Security Challenges and Its Solutions Using Artificial Intelligence.

作者信息

Mazhar Tehseen, Talpur Dhani Bux, Shloul Tamara Al, Ghadi Yazeed Yasin, Haq Inayatul, Ullah Inam, Ouahada Khmaies, Hamam Habib

机构信息

Department of Computer Science, Virtual University, Lahore 55150, Pakistan.

Department of Information and Computing, University of Sufism and Modern Sciences, Bhit Shah 70140, Pakistan.

出版信息

Brain Sci. 2023 Apr 19;13(4):683. doi: 10.3390/brainsci13040683.

Abstract

The Internet of Things (IoT) is a well-known technology that has a significant impact on many areas, including connections, work, healthcare, and the economy. IoT has the potential to improve life in a variety of contexts, from smart cities to classrooms, by automating tasks, increasing output, and decreasing anxiety. Cyberattacks and threats, on the other hand, have a significant impact on intelligent IoT applications. Many traditional techniques for protecting the IoT are now ineffective due to new dangers and vulnerabilities. To keep their security procedures, IoT systems of the future will need AI-efficient machine learning and deep learning. The capabilities of artificial intelligence, particularly machine and deep learning solutions, must be used if the next-generation IoT system is to have a continuously changing and up-to-date security system. IoT security intelligence is examined in this paper from every angle available. An innovative method for protecting IoT devices against a variety of cyberattacks is to use machine learning and deep learning to gain information from raw data. Finally, we discuss relevant research issues and potential next steps considering our findings. This article examines how machine learning and deep learning can be used to detect attack patterns in unstructured data and safeguard IoT devices. We discuss the challenges that researchers face, as well as potential future directions for this research area, considering these findings. Anyone with an interest in the IoT or cybersecurity can use this website's content as a technical resource and reference.

摘要

物联网(IoT)是一项广为人知的技术,它对包括通信、工作、医疗保健和经济在内的许多领域都有重大影响。物联网有潜力在从智能城市到教室的各种环境中改善生活,通过自动化任务、提高产量和减轻焦虑。另一方面,网络攻击和威胁对智能物联网应用有重大影响。由于新的危险和漏洞,许多传统的物联网保护技术现在已经失效。为了保持其安全程序,未来的物联网系统将需要人工智能高效的机器学习和深度学习。如果下一代物联网系统要有一个不断变化和最新的安全系统,就必须利用人工智能的能力,特别是机器和深度学习解决方案。本文从各个可用角度研究物联网安全智能。一种保护物联网设备免受各种网络攻击的创新方法是使用机器学习和深度学习从原始数据中获取信息。最后,我们根据研究结果讨论相关的研究问题和潜在的下一步措施。本文研究了如何使用机器学习和深度学习来检测非结构化数据中的攻击模式并保护物联网设备。考虑到这些发现,我们讨论了研究人员面临的挑战以及该研究领域潜在的未来方向。任何对物联网或网络安全感兴趣的人都可以将本网站的内容用作技术资源和参考。

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