An improved WiFi sensing based indoor navigation with reconfigurable intelligent surfaces for 6G enabled IoT network and AI explainable use case

被引:9
作者
Taneja, Ashu [1 ]
Rani, Shalli [1 ]
Brenosa, Jose [2 ,3 ]
Tolba, Amr [4 ]
Kadry, Seifedine [5 ,6 ]
机构
[1] Chitkara Univ, Inst Engn & Technol, Punjab, India
[2] Univ Europea Atlantico, Higher Polytech Sch, C-Isabel Torres 21, Santander 39011, Spain
[3] Univ Int Iberoamericana, Dept Project Management, Arecibo, PR 00613 USA
[4] King Saud Univ, Community Coll, Comp Sci Dept, Riyadh 11437, Saudi Arabia
[5] Noroff Univ Coll, Dept Appl Data Sci, Kristiansand, Norway
[6] Ajman Univ, Artificial Intelligence Res Ctr AIRC, POB 346, Ajman, U Arab Emirates
来源
FUTURE GENERATION COMPUTER SYSTEMS-THE INTERNATIONAL JOURNAL OF ESCIENCE | 2023年 / 149卷
关键词
6G; Reconfigurable intelligent surfaces; Localization; IoT; Received signal strength; LOCALIZATION;
D O I
10.1016/j.future.2023.07.016
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
The expanding number of low cost sensors and smart devices drives the internet-of-things (IoT) ecosystem of the future. These sensing devices are connected to the internet for information exchange. The location and positioning of these nodes is very important information required in vast range of location based services like smart homes, smart healthcare, environmental monitoring, personal navigation and smart transportation. This paper presents an intelligent solution for node localization in a 6G enabled IoT network. An indoor communication network scenario is proposed in which reconfigurable intelligent surfaces (RISs) are installed to locate the sensor nodes operating in that network. The performance evaluation of the proposed scheme is carried out with optimum number of reflecting elements and optimum phase shifts. It is observed that optimized RISs with 100 reflecting elements improve the estimated localization error by 7.4% over non-optimum RISs. Also, the minimum gain of 6% in localization error is offered using equal phase shifts over random phase shifts. Further, the effect of channel conditions on the average estimation error in node locations is also elaborated. In the end, the explainable artificial intelligence (XAI) empowered indoor localization is discussed as a use case scenario and the performance comparison of the algorithms is evaluated.& COPY; 2023 Elsevier B.V. All rights reserved.
引用
收藏
页码:294 / 303
页数:10
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