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用于基于认知无线电的物联网网络的频谱感知、聚类算法和能量收集技术

Spectrum Sensing, Clustering Algorithms, and Energy-Harvesting Technology for Cognitive-Radio-Based Internet-of-Things Networks.

作者信息

Fernando Xavier, Lăzăroiu George

机构信息

Intelligent Communication and Computing Laboratory, Toronto Metropolitan University, Toronto, ON M5B 2K3, Canada.

Department of Economic Sciences, Spiru Haret University, 030045 Bucharest, Romania.

出版信息

Sensors (Basel). 2023 Sep 11;23(18):7792. doi: 10.3390/s23187792.

Abstract

The aim of this systematic review was to identify the correlations between spectrum sensing, clustering algorithms, and energy-harvesting technology for cognitive-radio-based internet of things (IoT) networks in terms of deep-learning-based, nonorthogonal, multiple-access techniques. The search results and screening procedures were configured with the use of a web-based Shiny app in the Preferred Reporting Items for Systematic Reviews and Meta-analysis (PRISMA) flow design. AMSTAR, DistillerSR, Eppi-Reviewer, PICO Portal, Rayyan, and ROBIS were the review software systems harnessed for screening and quality assessment, while bibliometric mapping (dimensions) and layout algorithms (VOSviewer) configured data visualization and analysis. Cognitive radio is pivotal in the utilization of an adequate radio spectrum source, with spectrum sensing optimizing cognitive radio network operations, opportunistic spectrum access and sensing able to boost the efficiency of cognitive radio networks, and cooperative spectrum sharing together with simultaneous wireless information and power transfer able increase spectrum and energy efficiency in 6G wireless communication networks and across IoT devices for efficient data exchange.

摘要

本系统综述的目的是,就基于深度学习的非正交多址技术,确定认知无线电物联网(IoT)网络中频谱感知、聚类算法和能量收集技术之间的相关性。搜索结果和筛选程序是在系统评价与Meta分析的首选报告项目(PRISMA)流程设计中,使用基于网络的Shiny应用程序配置的。AMSTAR、DistillerSR、Eppi-Reviewer、PICO Portal、Rayyan和ROBIS是用于筛选和质量评估的综述软件系统,而文献计量映射(维度)和布局算法(VOSviewer)用于配置数据可视化和分析。认知无线电在充分利用无线电频谱资源方面至关重要,频谱感知可优化认知无线电网络运行,机会频谱接入和感知能够提高认知无线电网络的效率,而协作频谱共享以及同时进行的无线信息与功率传输,能够提高6G无线通信网络以及物联网设备间高效数据交换的频谱和能量效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/23db/10537307/09f87eb82e2a/sensors-23-07792-g001.jpg

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