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Status已发表Published
TitleA low-cost physical location discovery scheme for large-scale Internet of Things in smart city through joint use of vehicles and UAVs
Creator
Date Issued2021-05-01
Source PublicationFuture Generation Computer Systems
ISSN0167-739X
Volume118Pages:310-326
Abstract

With the development of Information and Communication Technology (ICT), the construction of the smart city came into being. Compared with the traditional city, a smart city can reduce resource consumption, improve energy efficiency, reduce environmental pollution, reduce traffic congestion, reduce potential safety hazards, improve the quality of life of citizens, etc. In order to collect a large amount of data to provide accurate decision-making recommendations for the management of smart cities, a large-scale Internet of Things (IoT) system needs to be built as the basis. For most applications in smart cities, it is very important to obtain the physical location information of the data during the data collection. However, it is a challenging issue for most sensor devices in the IoT system, because sensor devices are hard to equip positioning equipment as limited by cost. To tackle this, a Low-Cost Physical Locations Discovery (LCPLD) Scheme is proposed in this paper. In LCPLD scheme, mobile vehicles and unmanned aerial vehicles (UAVs) are used for physical location discovery on the wireless sensor networks which are the important component of the IoT system in a smart city. In order to further reduce cost, we propose a task application mechanism to reduce the cost of vehicle broadcasting and the Adaptive UAV Flight Path Planning (AUPPP) algorithm to reduce UAV flight cost. In order to reduce localization error, the Large Error Rejection (LER) algorithm and the UAV Same Position Broadcast Repeat (USPBR) algorithm are proposed in this paper. After simulation experiments based on real vehicle driving data, the experimental results prove the effectiveness of the proposed scheme: Compared with the comparison scheme, the LCPLD scheme proposed has a cost reduction of 16.58% ∼19.88%, an average reduction of 78.80% in positioning error, and an average reduction of 99.88% in the variance of positioning error.

KeywordInternet of Things Low cost Mobile vehicles Physical location discovery Smart city Unmanned aerial vehicle
DOI10.1016/j.future.2021.01.032
URLView source
Indexed BySCIE
Language英语English
WOS Research AreaComputer Science
WOS SubjectComputer Science, Theory & Methods
WOS IDWOS:000620451300002
Scopus ID2-s2.0-85099786711
Citation statistics
Cited Times:39[WOS]   [WOS Record]     [Related Records in WOS]
Document TypeJournal article
Identifierhttp://repository.uic.edu.cn/handle/39GCC9TT/7044
CollectionResearch outside affiliated institution
Corresponding AuthorLiu, Yuxin
Affiliation
1.School of Computer Science and Engineering, Central South University, ChangSha, 410083, China
2.Department of Information and Electronic Engineering, Muroran Institute of Technology, Japan
3.College of Computer Science and Technology, Huaqiao University, Xiamen, 361021, China
4.College of Electronic and Information Engineering, South China University of Technology, Guangzhou, 510641, China
Recommended Citation
GB/T 7714
Teng, Haojun,Dong, Mianxiong,Liu, Yuxinet al. A low-cost physical location discovery scheme for large-scale Internet of Things in smart city through joint use of vehicles and UAVs[J]. Future Generation Computer Systems, 2021, 118: 310-326.
APA Teng, Haojun, Dong, Mianxiong, Liu, Yuxin, Tian, Wang, & Liu, Xuxun. (2021). A low-cost physical location discovery scheme for large-scale Internet of Things in smart city through joint use of vehicles and UAVs. Future Generation Computer Systems, 118, 310-326.
MLA Teng, Haojun,et al."A low-cost physical location discovery scheme for large-scale Internet of Things in smart city through joint use of vehicles and UAVs". Future Generation Computer Systems 118(2021): 310-326.
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