4.7 Article

Energy-Constrained UAV Data Collection Systems: NOMA and OMA

期刊

IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY
卷 70, 期 7, 页码 6898-6912

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TVT.2021.3086556

关键词

NOMA; Data collection; Unmanned aerial vehicles; Trajectory; Resource management; Data models; Communication systems; Energy-constrained; non-orthogonal multiple access; trajectory design; unmanned aerial vehicle

资金

  1. Beijing Natural Science Foundation [L192032]
  2. National Key Research and Development Program of China [2019YFB1406500]
  3. Key Project Plan of Blockchain in Ministry of Education of the People's Republic of China [2020KJ010802]
  4. Shandong Province Key Research and Development Program, China [2019JZZY020901]
  5. National Natural Science Foundation of China [61771066]
  6. China Scholarship Council

向作者/读者索取更多资源

This paper investigates UAV data collection systems with different multiple access schemes to maximize the minimum UAV data collection throughput from GNs. Proposed algorithms based on AO and penalty-based methods show improved performance compared to benchmark schemes, with NOMA outperforming OMA when GNs have sufficient energy.
This paper investigates unmanned aerial vehicle (UAV) data collection systems with different multiple access schemes, where a rotary-wing UAV is dispatched to collect data from multiple ground nodes (GNs). Our goal is to maximize the minimum UAV data collection throughput from GNs for both orthogonal multiple access (OMA) and non-orthogonal multiple access (NOMA) transmission, subject to the energy budgets at both the UAV and GNs, namely double energy limitations. 1) For OMA, we propose an efficient algorithm by invoking alternating optimization (AO) method, where each subproblem is alternately solved by applying successive convex approximation (SCA) technique. 2) For NOMA, we first handle subproblems with fixed decoding order using SCA technique. Then, we develop a penalty-based algorithm to solve the decoding order design subproblem. Numerical results show that: i) The proposed algorithms are capable of improving the max-min throughput performance compared with other benchmark schemes; and ii) NOMA yields a higher performance gain than OMA when GNs have sufficient energy.

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