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2020 Fiscal Year Research-status Report

Radio Resource Management in 5G and Beyond Networks: A Layered In-network Learning Approach

Research Project

Project/Area Number 20K11764
Research InstitutionIbaraki University

Principal Investigator

王 瀟岩  茨城大学, 理工学研究科(工学野), 准教授 (10725667)

Co-Investigator(Kenkyū-buntansha) 梅比良 正弘  茨城大学, 理工学研究科(工学野), 教授 (00436239)
Project Period (FY) 2020-04-01 – 2023-03-31
Keywordswireless access / reinforcement learning
Outline of Annual Research Achievements

In FY2020, we started from the fundamental workload, i.e., optimizing local radio resource management, by
designing distributed deep reinforcement learning based approach. The intelligence is placed at user equipments, who learn their wireless access decisions by relying only on a local set of observations from the wireless environment, such as channel quality and interference levels. We clarified the tradeoff between
allocated radio resource’s granularity and learning algorithm’s convergence speed by simulations on TensorFlow. We also evaluated the performance of the proposed scheme in terms of transmission delay and packet drop rate by comparing baseline schemes.

Current Status of Research Progress
Current Status of Research Progress

2: Research has progressed on the whole more than it was originally planned.

Reason

We consider that the research progresses smoothly. We have published 2 journal papers, 2 internal conference papers and multiple domestic conference papers in FY2020 under the support of this funding.

Strategy for Future Research Activity

In the following year, we will consider the problems with sophisticated and practical models. Meanwhile, we will perform the experiments by realizing the proposed scheme in testbeds.

Causes of Carryover

コロナウィルス感染防止のため、多数の国際・国内学会が中止するため、残額が生じてしまう。残りの助成金は2021年度の学会の参加費と学術論文の登録費として使用する予定である。

  • Research Products

    (4 results)

All 2021 2020

All Journal Article (2 results) (of which Int'l Joint Research: 2 results,  Peer Reviewed: 2 results,  Open Access: 1 results) Presentation (2 results) (of which Int'l Joint Research: 2 results)

  • [Journal Article] Wireless Access Control in Edge-Aided Disaster Response: A Deep Reinforcement Learning-based Approach2021

    • Author(s)
      Hang Zhou, Xiaoyan Wang*, Masahiro Umehira, Xianfu Chen, Celimuge Wu, and Yusheng Ji
    • Journal Title

      IEEE Access

      Volume: 9 Pages: 46600 - 46611

    • DOI

      10.1109/ACCESS.2021.3067662

    • Peer Reviewed / Open Access / Int'l Joint Research
  • [Journal Article] When Vehicular Fog Computing Meets Autonomous Driving: Computational Resource Management and Task Offloading2020

    • Author(s)
      Zhenyu Zhou, Haijun Liao, Xiaoyan Wang*, Shahid Mumtaz, Jonathan Rodriguez
    • Journal Title

      IEEE Network

      Volume: 34 Pages: 70-76

    • DOI

      10.1109/MNET.001.1900527

    • Peer Reviewed / Int'l Joint Research
  • [Presentation] Reinforcement Learning based Joint Channel/Subframe Selection Scheme for Fair LTE-WiFi Coexistence2020

    • Author(s)
      Yuki Kishimoto, Xiaoyan Wang and Masahiro Umehira
    • Organizer
      IEEE MSN
    • Int'l Joint Research
  • [Presentation] Deep Reinforcement Learning based Access Control for Disaster Response Networks2020

    • Author(s)
      Hang Zhou, Xiaoyan Wang, Masahiro Umehira, Xianfu Chen, Celimuge Wu, Yusheng Ji
    • Organizer
      IEEE Globecom
    • Int'l Joint Research

URL: 

Published: 2021-12-27  

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