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Cited 3 time in webofscience Cited 6 time in scopus
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Optimal and Privacy-Aware Resource Management in Artificial Intelligence of Things Using Osmotic Computingopen access

Authors
Sharma, VishalTan, Teik GuanSingh, SaurabhSharma, Pradip Kumar
Issue Date
May-2022
Publisher
IEEE
Keywords
Servers; Resource management; Privacy; Computational modeling; Safety; Solvents; Internet of Things; Internet of Things (IoT); mobility; osmotic computing; privacy-aware; resource management
Citation
IEEE Transactions on Industrial Informatics, v.18, no.5, pp 3377 - 3386
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
IEEE Transactions on Industrial Informatics
Volume
18
Number
5
Start Page
3377
End Page
3386
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/3233
DOI
10.1109/TII.2021.3102471
ISSN
1551-3203
1941-0050
Abstract
Critical infrastructure comprising on-demand devices, including secondary servers, comes into play when a situation like an overload is involved. The on-demand servers and devices require smart management solutions that form an integral part of Artificial Intelligence of Things (AIoT). This work considers AIoT as a combination of Mobile-Internet of Things (M-IoT) and AI requiring immediate response, secondary support system, and computational resources. Privacy in AIoT is always a concern when sharing information as intruders can eavesdrop on the settings of the system. This article uses an osmotic computing paradigm, which enables the derivation of strategies to decide on the methods of sharing services via optimal and privacy-aware resource management in AIoT. A safety competition is built on top of configuration rewards that help to attain privacy-by-design. The contributions of this article are expressed using theoretical analysis and numerical simulations.
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