Opportunistic Access Point Selection for Mobile Edge Computing Networks
| dc.contributor.author | Xia, Junjuan | |
| dc.contributor.author | Fan, Lisheng | |
| dc.contributor.author | Yang, Nan | |
| dc.contributor.author | Deng, Yansha | |
| dc.contributor.author | Duong, Trung Q | |
| dc.contributor.author | Karagiannidis, George K | |
| dc.contributor.author | Nallanathan, Arumugam | |
| dc.date.accessioned | 2023-08-15T00:31:26Z | |
| dc.date.issued | 2021 | |
| dc.date.updated | 2022-07-24T08:18:37Z | |
| dc.description.abstract | In this paper, we investigate a mobile edge computing (MEC) network with two computational access points (CAPs), where the source is equipped with multiple antennas and it has some computational tasks to be accomplished by the CAPs through Nakagami- $m$ distributed wireless links. Since the MEC network involves both communication and computation, we first define the outage probability by taking into account the joint impact of latency and energy consumption. From this new definition, we then employ receiver antenna selection (RAS) or maximal ratio combining (MRC) at the receiver, and apply selection combining (SC) or switch-and-stay combining (SSC) protocol to choose a CAP to accomplish the computational task from the source. For both protocols along with the RAS and MRC, we further analyze the network performance by deriving new and easy-to-use analytical expressions for the outage probability over Nakagami- $m$ fading channels, and study the impact of the network parameters on the outage performance. Furthermore, we provide the asymptotic outage probability in the low regime of noise power, from which we obtain some important insights on the system design. Finally, simulations and numerical results are demonstrated to verify the effectiveness of the proposed approach. It is shown that the number of transmit antenna and Nakagami parameter can help reduce the latency and energy consumption effectively, and the SSC protocol can achieve the same performance as the SC protocol with proper switching thresholds of latency and energy consumption. | en_AU |
| dc.description.sponsorship | This work was supported in part by NSFC under Grant 61871139, in part by the International Science and Technology Cooperation Projects of Guangdong Province under Grant 2020A0505100060, in part by the Science and Technology Program of Guangzhou under Grant 201807010103, and in part by the research program of Guangzhou University under Grant YK2020008. The work of Nan Yang was supported by the Australian Research Council’s Discovery under Project DP180104062. The work of Trung Q. Duong was supported in part by the Royal Academy of Engineering (RAEng) through the RAEng Research Chair and the Senior Research Fellowship Scheme under Grant RCSRF2021\11\41 and in part by the RAEng Research Fellowships Scheme under Grant RF1415\14\22. The work of George K. Karagiannidis was supported co-financed by the European Union and Greek national funds through the Competitiveness, Entrepreneurship and Innovation Operational Program (EPAnEK), under the special actions AQUACULTURE C INDUSTRIAL MATERIALS C OPEN INNOVATION IN CULTURE under Project T6YBP-00134. The associate editor coordinating the review of this article and approving it for publication was A. Abrardo. (Corresponding author: Lisheng Fan.) | en_AU |
| dc.format.mimetype | application/pdf | en_AU |
| dc.identifier.issn | 1536-1276 | en_AU |
| dc.identifier.uri | http://hdl.handle.net/1885/295580 | |
| dc.language.iso | en_AU | en_AU |
| dc.publisher | Institute of Electrical and Electronics Engineers (IEEE Inc) | en_AU |
| dc.relation | http://purl.org/au-research/grants/arc/DP180104062 | en_AU |
| dc.rights | © 2020 IEEE | en_AU |
| dc.source | IEEE Transactions on Wireless Communications | en_AU |
| dc.subject | Mobile edge computing | en_AU |
| dc.subject | latency | en_AU |
| dc.subject | energy consumption | en_AU |
| dc.subject | opportunistic selection | en_AU |
| dc.title | Opportunistic Access Point Selection for Mobile Edge Computing Networks | en_AU |
| dc.type | Journal article | en_AU |
| local.bibliographicCitation.issue | 1 | en_AU |
| local.bibliographicCitation.lastpage | 709 | en_AU |
| local.bibliographicCitation.startpage | 695 | en_AU |
| local.contributor.affiliation | Xia, Junjuan, Guangzhou University | en_AU |
| local.contributor.affiliation | Fan, Lisheng, Guangzhou University | en_AU |
| local.contributor.affiliation | Yang, Nan, College of Engineering and Computer Science, ANU | en_AU |
| local.contributor.affiliation | Deng, Yansha, King’s College London | en_AU |
| local.contributor.affiliation | Duong, Trung Q, Queen's University Belfast | en_AU |
| local.contributor.affiliation | Karagiannidis, George K, Aristotle University of Thessaloniki | en_AU |
| local.contributor.affiliation | Nallanathan, Arumugam, Queen Mary University of London | en_AU |
| local.contributor.authoruid | Yang, Nan, u5549237 | en_AU |
| local.description.embargo | 2099-12-31 | |
| local.description.notes | Imported from ARIES | en_AU |
| local.identifier.absfor | 400608 - Wireless communication systems and technologies (incl. microwave and millimetrewave) | en_AU |
| local.identifier.ariespublication | a383154xPUB18151 | en_AU |
| local.identifier.citationvolume | 20 | en_AU |
| local.identifier.doi | 10.1109/TWC.2020.3028102 | en_AU |
| local.identifier.scopusID | 2-s2.0-85099523807 | |
| local.identifier.thomsonID | WOS:000607808800049 | |
| local.publisher.url | https://www.ieee.org/ | en_AU |
| local.type.status | Published Version | en_AU |
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